1 // SPDX-License-Identifier: GPL-2.0 2 /* Copyright(c) 1999 - 2006 Intel Corporation. */ 3 4 /* e1000_hw.c 5 * Shared functions for accessing and configuring the MAC 6 */ 7 8 #include "e1000.h" 9 10 static s32 e1000_check_downshift(struct e1000_hw *hw); 11 static s32 e1000_check_polarity(struct e1000_hw *hw, 12 e1000_rev_polarity *polarity); 13 static void e1000_clear_hw_cntrs(struct e1000_hw *hw); 14 static void e1000_clear_vfta(struct e1000_hw *hw); 15 static s32 e1000_config_dsp_after_link_change(struct e1000_hw *hw, 16 bool link_up); 17 static s32 e1000_config_fc_after_link_up(struct e1000_hw *hw); 18 static s32 e1000_detect_gig_phy(struct e1000_hw *hw); 19 static s32 e1000_get_auto_rd_done(struct e1000_hw *hw); 20 static s32 e1000_get_cable_length(struct e1000_hw *hw, u16 *min_length, 21 u16 *max_length); 22 static s32 e1000_get_phy_cfg_done(struct e1000_hw *hw); 23 static s32 e1000_id_led_init(struct e1000_hw *hw); 24 static void e1000_init_rx_addrs(struct e1000_hw *hw); 25 static s32 e1000_phy_igp_get_info(struct e1000_hw *hw, 26 struct e1000_phy_info *phy_info); 27 static s32 e1000_phy_m88_get_info(struct e1000_hw *hw, 28 struct e1000_phy_info *phy_info); 29 static s32 e1000_set_d3_lplu_state(struct e1000_hw *hw, bool active); 30 static s32 e1000_wait_autoneg(struct e1000_hw *hw); 31 static void e1000_write_reg_io(struct e1000_hw *hw, u32 offset, u32 value); 32 static s32 e1000_set_phy_type(struct e1000_hw *hw); 33 static void e1000_phy_init_script(struct e1000_hw *hw); 34 static s32 e1000_setup_copper_link(struct e1000_hw *hw); 35 static s32 e1000_setup_fiber_serdes_link(struct e1000_hw *hw); 36 static s32 e1000_adjust_serdes_amplitude(struct e1000_hw *hw); 37 static s32 e1000_phy_force_speed_duplex(struct e1000_hw *hw); 38 static s32 e1000_config_mac_to_phy(struct e1000_hw *hw); 39 static void e1000_raise_mdi_clk(struct e1000_hw *hw, u32 *ctrl); 40 static void e1000_lower_mdi_clk(struct e1000_hw *hw, u32 *ctrl); 41 static void e1000_shift_out_mdi_bits(struct e1000_hw *hw, u32 data, u16 count); 42 static u16 e1000_shift_in_mdi_bits(struct e1000_hw *hw); 43 static s32 e1000_phy_reset_dsp(struct e1000_hw *hw); 44 static s32 e1000_write_eeprom_spi(struct e1000_hw *hw, u16 offset, 45 u16 words, u16 *data); 46 static s32 e1000_write_eeprom_microwire(struct e1000_hw *hw, u16 offset, 47 u16 words, u16 *data); 48 static s32 e1000_spi_eeprom_ready(struct e1000_hw *hw); 49 static void e1000_raise_ee_clk(struct e1000_hw *hw, u32 *eecd); 50 static void e1000_lower_ee_clk(struct e1000_hw *hw, u32 *eecd); 51 static void e1000_shift_out_ee_bits(struct e1000_hw *hw, u16 data, u16 count); 52 static s32 e1000_write_phy_reg_ex(struct e1000_hw *hw, u32 reg_addr, 53 u16 phy_data); 54 static s32 e1000_read_phy_reg_ex(struct e1000_hw *hw, u32 reg_addr, 55 u16 *phy_data); 56 static u16 e1000_shift_in_ee_bits(struct e1000_hw *hw, u16 count); 57 static s32 e1000_acquire_eeprom(struct e1000_hw *hw); 58 static void e1000_release_eeprom(struct e1000_hw *hw); 59 static void e1000_standby_eeprom(struct e1000_hw *hw); 60 static s32 e1000_set_vco_speed(struct e1000_hw *hw); 61 static s32 e1000_polarity_reversal_workaround(struct e1000_hw *hw); 62 static s32 e1000_set_phy_mode(struct e1000_hw *hw); 63 static s32 e1000_do_read_eeprom(struct e1000_hw *hw, u16 offset, u16 words, 64 u16 *data); 65 static s32 e1000_do_write_eeprom(struct e1000_hw *hw, u16 offset, u16 words, 66 u16 *data); 67 68 /* IGP cable length table */ 69 static const 70 u16 e1000_igp_cable_length_table[IGP01E1000_AGC_LENGTH_TABLE_SIZE] = { 71 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 72 5, 10, 10, 10, 10, 10, 10, 10, 20, 20, 20, 20, 20, 25, 25, 25, 73 25, 25, 25, 25, 30, 30, 30, 30, 40, 40, 40, 40, 40, 40, 40, 40, 74 40, 50, 50, 50, 50, 50, 50, 50, 60, 60, 60, 60, 60, 60, 60, 60, 75 60, 70, 70, 70, 70, 70, 70, 80, 80, 80, 80, 80, 80, 90, 90, 90, 76 90, 90, 90, 90, 90, 90, 100, 100, 100, 100, 100, 100, 100, 100, 100, 77 100, 78 100, 100, 100, 100, 110, 110, 110, 110, 110, 110, 110, 110, 110, 110, 79 110, 110, 80 110, 110, 110, 110, 110, 110, 120, 120, 120, 120, 120, 120, 120, 120, 81 120, 120 82 }; 83 84 static DEFINE_MUTEX(e1000_eeprom_lock); 85 static DEFINE_SPINLOCK(e1000_phy_lock); 86 87 /** 88 * e1000_set_phy_type - Set the phy type member in the hw struct. 89 * @hw: Struct containing variables accessed by shared code 90 */ 91 static s32 e1000_set_phy_type(struct e1000_hw *hw) 92 { 93 if (hw->mac_type == e1000_undefined) 94 return -E1000_ERR_PHY_TYPE; 95 96 switch (hw->phy_id) { 97 case M88E1000_E_PHY_ID: 98 case M88E1000_I_PHY_ID: 99 case M88E1011_I_PHY_ID: 100 case M88E1111_I_PHY_ID: 101 case M88E1118_E_PHY_ID: 102 hw->phy_type = e1000_phy_m88; 103 break; 104 case IGP01E1000_I_PHY_ID: 105 if (hw->mac_type == e1000_82541 || 106 hw->mac_type == e1000_82541_rev_2 || 107 hw->mac_type == e1000_82547 || 108 hw->mac_type == e1000_82547_rev_2) 109 hw->phy_type = e1000_phy_igp; 110 break; 111 case RTL8211B_PHY_ID: 112 hw->phy_type = e1000_phy_8211; 113 break; 114 case RTL8201N_PHY_ID: 115 hw->phy_type = e1000_phy_8201; 116 break; 117 default: 118 /* Should never have loaded on this device */ 119 hw->phy_type = e1000_phy_undefined; 120 return -E1000_ERR_PHY_TYPE; 121 } 122 123 return E1000_SUCCESS; 124 } 125 126 /** 127 * e1000_phy_init_script - IGP phy init script - initializes the GbE PHY 128 * @hw: Struct containing variables accessed by shared code 129 */ 130 static void e1000_phy_init_script(struct e1000_hw *hw) 131 { 132 u16 phy_saved_data; 133 134 if (hw->phy_init_script) { 135 msleep(20); 136 137 /* Save off the current value of register 0x2F5B to be restored 138 * at the end of this routine. 139 */ 140 e1000_read_phy_reg(hw, 0x2F5B, &phy_saved_data); 141 142 /* Disabled the PHY transmitter */ 143 e1000_write_phy_reg(hw, 0x2F5B, 0x0003); 144 msleep(20); 145 146 e1000_write_phy_reg(hw, 0x0000, 0x0140); 147 msleep(5); 148 149 switch (hw->mac_type) { 150 case e1000_82541: 151 case e1000_82547: 152 e1000_write_phy_reg(hw, 0x1F95, 0x0001); 153 e1000_write_phy_reg(hw, 0x1F71, 0xBD21); 154 e1000_write_phy_reg(hw, 0x1F79, 0x0018); 155 e1000_write_phy_reg(hw, 0x1F30, 0x1600); 156 e1000_write_phy_reg(hw, 0x1F31, 0x0014); 157 e1000_write_phy_reg(hw, 0x1F32, 0x161C); 158 e1000_write_phy_reg(hw, 0x1F94, 0x0003); 159 e1000_write_phy_reg(hw, 0x1F96, 0x003F); 160 e1000_write_phy_reg(hw, 0x2010, 0x0008); 161 break; 162 163 case e1000_82541_rev_2: 164 case e1000_82547_rev_2: 165 e1000_write_phy_reg(hw, 0x1F73, 0x0099); 166 break; 167 default: 168 break; 169 } 170 171 e1000_write_phy_reg(hw, 0x0000, 0x3300); 172 msleep(20); 173 174 /* Now enable the transmitter */ 175 e1000_write_phy_reg(hw, 0x2F5B, phy_saved_data); 176 177 if (hw->mac_type == e1000_82547) { 178 u16 fused, fine, coarse; 179 180 /* Move to analog registers page */ 181 e1000_read_phy_reg(hw, 182 IGP01E1000_ANALOG_SPARE_FUSE_STATUS, 183 &fused); 184 185 if (!(fused & IGP01E1000_ANALOG_SPARE_FUSE_ENABLED)) { 186 e1000_read_phy_reg(hw, 187 IGP01E1000_ANALOG_FUSE_STATUS, 188 &fused); 189 190 fine = fused & IGP01E1000_ANALOG_FUSE_FINE_MASK; 191 coarse = 192 fused & IGP01E1000_ANALOG_FUSE_COARSE_MASK; 193 194 if (coarse > 195 IGP01E1000_ANALOG_FUSE_COARSE_THRESH) { 196 coarse -= 197 IGP01E1000_ANALOG_FUSE_COARSE_10; 198 fine -= IGP01E1000_ANALOG_FUSE_FINE_1; 199 } else if (coarse == 200 IGP01E1000_ANALOG_FUSE_COARSE_THRESH) 201 fine -= IGP01E1000_ANALOG_FUSE_FINE_10; 202 203 fused = 204 (fused & IGP01E1000_ANALOG_FUSE_POLY_MASK) | 205 (fine & IGP01E1000_ANALOG_FUSE_FINE_MASK) | 206 (coarse & 207 IGP01E1000_ANALOG_FUSE_COARSE_MASK); 208 209 e1000_write_phy_reg(hw, 210 IGP01E1000_ANALOG_FUSE_CONTROL, 211 fused); 212 e1000_write_phy_reg(hw, 213 IGP01E1000_ANALOG_FUSE_BYPASS, 214 IGP01E1000_ANALOG_FUSE_ENABLE_SW_CONTROL); 215 } 216 } 217 } 218 } 219 220 /** 221 * e1000_set_mac_type - Set the mac type member in the hw struct. 222 * @hw: Struct containing variables accessed by shared code 223 */ 224 s32 e1000_set_mac_type(struct e1000_hw *hw) 225 { 226 switch (hw->device_id) { 227 case E1000_DEV_ID_82542: 228 switch (hw->revision_id) { 229 case E1000_82542_2_0_REV_ID: 230 hw->mac_type = e1000_82542_rev2_0; 231 break; 232 case E1000_82542_2_1_REV_ID: 233 hw->mac_type = e1000_82542_rev2_1; 234 break; 235 default: 236 /* Invalid 82542 revision ID */ 237 return -E1000_ERR_MAC_TYPE; 238 } 239 break; 240 case E1000_DEV_ID_82543GC_FIBER: 241 case E1000_DEV_ID_82543GC_COPPER: 242 hw->mac_type = e1000_82543; 243 break; 244 case E1000_DEV_ID_82544EI_COPPER: 245 case E1000_DEV_ID_82544EI_FIBER: 246 case E1000_DEV_ID_82544GC_COPPER: 247 case E1000_DEV_ID_82544GC_LOM: 248 hw->mac_type = e1000_82544; 249 break; 250 case E1000_DEV_ID_82540EM: 251 case E1000_DEV_ID_82540EM_LOM: 252 case E1000_DEV_ID_82540EP: 253 case E1000_DEV_ID_82540EP_LOM: 254 case E1000_DEV_ID_82540EP_LP: 255 hw->mac_type = e1000_82540; 256 break; 257 case E1000_DEV_ID_82545EM_COPPER: 258 case E1000_DEV_ID_82545EM_FIBER: 259 hw->mac_type = e1000_82545; 260 break; 261 case E1000_DEV_ID_82545GM_COPPER: 262 case E1000_DEV_ID_82545GM_FIBER: 263 case E1000_DEV_ID_82545GM_SERDES: 264 hw->mac_type = e1000_82545_rev_3; 265 break; 266 case E1000_DEV_ID_82546EB_COPPER: 267 case E1000_DEV_ID_82546EB_FIBER: 268 case E1000_DEV_ID_82546EB_QUAD_COPPER: 269 hw->mac_type = e1000_82546; 270 break; 271 case E1000_DEV_ID_82546GB_COPPER: 272 case E1000_DEV_ID_82546GB_FIBER: 273 case E1000_DEV_ID_82546GB_SERDES: 274 case E1000_DEV_ID_82546GB_PCIE: 275 case E1000_DEV_ID_82546GB_QUAD_COPPER: 276 case E1000_DEV_ID_82546GB_QUAD_COPPER_KSP3: 277 hw->mac_type = e1000_82546_rev_3; 278 break; 279 case E1000_DEV_ID_82541EI: 280 case E1000_DEV_ID_82541EI_MOBILE: 281 case E1000_DEV_ID_82541ER_LOM: 282 hw->mac_type = e1000_82541; 283 break; 284 case E1000_DEV_ID_82541ER: 285 case E1000_DEV_ID_82541GI: 286 case E1000_DEV_ID_82541GI_LF: 287 case E1000_DEV_ID_82541GI_MOBILE: 288 hw->mac_type = e1000_82541_rev_2; 289 break; 290 case E1000_DEV_ID_82547EI: 291 case E1000_DEV_ID_82547EI_MOBILE: 292 hw->mac_type = e1000_82547; 293 break; 294 case E1000_DEV_ID_82547GI: 295 hw->mac_type = e1000_82547_rev_2; 296 break; 297 case E1000_DEV_ID_INTEL_CE4100_GBE: 298 hw->mac_type = e1000_ce4100; 299 break; 300 default: 301 /* Should never have loaded on this device */ 302 return -E1000_ERR_MAC_TYPE; 303 } 304 305 switch (hw->mac_type) { 306 case e1000_82541: 307 case e1000_82547: 308 case e1000_82541_rev_2: 309 case e1000_82547_rev_2: 310 hw->asf_firmware_present = true; 311 break; 312 default: 313 break; 314 } 315 316 /* The 82543 chip does not count tx_carrier_errors properly in 317 * FD mode 318 */ 319 if (hw->mac_type == e1000_82543) 320 hw->bad_tx_carr_stats_fd = true; 321 322 if (hw->mac_type > e1000_82544) 323 hw->has_smbus = true; 324 325 return E1000_SUCCESS; 326 } 327 328 /** 329 * e1000_set_media_type - Set media type and TBI compatibility. 330 * @hw: Struct containing variables accessed by shared code 331 */ 332 void e1000_set_media_type(struct e1000_hw *hw) 333 { 334 u32 status; 335 336 if (hw->mac_type != e1000_82543) { 337 /* tbi_compatibility is only valid on 82543 */ 338 hw->tbi_compatibility_en = false; 339 } 340 341 switch (hw->device_id) { 342 case E1000_DEV_ID_82545GM_SERDES: 343 case E1000_DEV_ID_82546GB_SERDES: 344 hw->media_type = e1000_media_type_internal_serdes; 345 break; 346 default: 347 switch (hw->mac_type) { 348 case e1000_82542_rev2_0: 349 case e1000_82542_rev2_1: 350 hw->media_type = e1000_media_type_fiber; 351 break; 352 case e1000_ce4100: 353 hw->media_type = e1000_media_type_copper; 354 break; 355 default: 356 status = er32(STATUS); 357 if (status & E1000_STATUS_TBIMODE) { 358 hw->media_type = e1000_media_type_fiber; 359 /* tbi_compatibility not valid on fiber */ 360 hw->tbi_compatibility_en = false; 361 } else { 362 hw->media_type = e1000_media_type_copper; 363 } 364 break; 365 } 366 } 367 } 368 369 /** 370 * e1000_reset_hw - reset the hardware completely 371 * @hw: Struct containing variables accessed by shared code 372 * 373 * Reset the transmit and receive units; mask and clear all interrupts. 374 */ 375 s32 e1000_reset_hw(struct e1000_hw *hw) 376 { 377 u32 ctrl; 378 u32 ctrl_ext; 379 u32 manc; 380 u32 led_ctrl; 381 s32 ret_val; 382 383 /* For 82542 (rev 2.0), disable MWI before issuing a device reset */ 384 if (hw->mac_type == e1000_82542_rev2_0) { 385 e_dbg("Disabling MWI on 82542 rev 2.0\n"); 386 e1000_pci_clear_mwi(hw); 387 } 388 389 /* Clear interrupt mask to stop board from generating interrupts */ 390 e_dbg("Masking off all interrupts\n"); 391 ew32(IMC, 0xffffffff); 392 393 /* Disable the Transmit and Receive units. Then delay to allow 394 * any pending transactions to complete before we hit the MAC with 395 * the global reset. 396 */ 397 ew32(RCTL, 0); 398 ew32(TCTL, E1000_TCTL_PSP); 399 E1000_WRITE_FLUSH(); 400 401 /* The tbi_compatibility_on Flag must be cleared when Rctl is cleared. */ 402 hw->tbi_compatibility_on = false; 403 404 /* Delay to allow any outstanding PCI transactions to complete before 405 * resetting the device 406 */ 407 msleep(10); 408 409 ctrl = er32(CTRL); 410 411 /* Must reset the PHY before resetting the MAC */ 412 if ((hw->mac_type == e1000_82541) || (hw->mac_type == e1000_82547)) { 413 ew32(CTRL, (ctrl | E1000_CTRL_PHY_RST)); 414 E1000_WRITE_FLUSH(); 415 msleep(5); 416 } 417 418 /* Issue a global reset to the MAC. This will reset the chip's 419 * transmit, receive, DMA, and link units. It will not effect 420 * the current PCI configuration. The global reset bit is self- 421 * clearing, and should clear within a microsecond. 422 */ 423 e_dbg("Issuing a global reset to MAC\n"); 424 425 switch (hw->mac_type) { 426 case e1000_82544: 427 case e1000_82540: 428 case e1000_82545: 429 case e1000_82546: 430 case e1000_82541: 431 case e1000_82541_rev_2: 432 /* These controllers can't ack the 64-bit write when issuing the 433 * reset, so use IO-mapping as a workaround to issue the reset 434 */ 435 E1000_WRITE_REG_IO(hw, CTRL, (ctrl | E1000_CTRL_RST)); 436 break; 437 case e1000_82545_rev_3: 438 case e1000_82546_rev_3: 439 /* Reset is performed on a shadow of the control register */ 440 ew32(CTRL_DUP, (ctrl | E1000_CTRL_RST)); 441 break; 442 case e1000_ce4100: 443 default: 444 ew32(CTRL, (ctrl | E1000_CTRL_RST)); 445 break; 446 } 447 448 /* After MAC reset, force reload of EEPROM to restore power-on settings 449 * to device. Later controllers reload the EEPROM automatically, so 450 * just wait for reload to complete. 451 */ 452 switch (hw->mac_type) { 453 case e1000_82542_rev2_0: 454 case e1000_82542_rev2_1: 455 case e1000_82543: 456 case e1000_82544: 457 /* Wait for reset to complete */ 458 udelay(10); 459 ctrl_ext = er32(CTRL_EXT); 460 ctrl_ext |= E1000_CTRL_EXT_EE_RST; 461 ew32(CTRL_EXT, ctrl_ext); 462 E1000_WRITE_FLUSH(); 463 /* Wait for EEPROM reload */ 464 msleep(2); 465 break; 466 case e1000_82541: 467 case e1000_82541_rev_2: 468 case e1000_82547: 469 case e1000_82547_rev_2: 470 /* Wait for EEPROM reload */ 471 msleep(20); 472 break; 473 default: 474 /* Auto read done will delay 5ms or poll based on mac type */ 475 ret_val = e1000_get_auto_rd_done(hw); 476 if (ret_val) 477 return ret_val; 478 break; 479 } 480 481 /* Disable HW ARPs on ASF enabled adapters */ 482 if (hw->mac_type >= e1000_82540) { 483 manc = er32(MANC); 484 manc &= ~(E1000_MANC_ARP_EN); 485 ew32(MANC, manc); 486 } 487 488 if ((hw->mac_type == e1000_82541) || (hw->mac_type == e1000_82547)) { 489 e1000_phy_init_script(hw); 490 491 /* Configure activity LED after PHY reset */ 492 led_ctrl = er32(LEDCTL); 493 led_ctrl &= IGP_ACTIVITY_LED_MASK; 494 led_ctrl |= (IGP_ACTIVITY_LED_ENABLE | IGP_LED3_MODE); 495 ew32(LEDCTL, led_ctrl); 496 } 497 498 /* Clear interrupt mask to stop board from generating interrupts */ 499 e_dbg("Masking off all interrupts\n"); 500 ew32(IMC, 0xffffffff); 501 502 /* Clear any pending interrupt events. */ 503 er32(ICR); 504 505 /* If MWI was previously enabled, reenable it. */ 506 if (hw->mac_type == e1000_82542_rev2_0) { 507 if (hw->pci_cmd_word & PCI_COMMAND_INVALIDATE) 508 e1000_pci_set_mwi(hw); 509 } 510 511 return E1000_SUCCESS; 512 } 513 514 /** 515 * e1000_init_hw - Performs basic configuration of the adapter. 516 * @hw: Struct containing variables accessed by shared code 517 * 518 * Assumes that the controller has previously been reset and is in a 519 * post-reset uninitialized state. Initializes the receive address registers, 520 * multicast table, and VLAN filter table. Calls routines to setup link 521 * configuration and flow control settings. Clears all on-chip counters. Leaves 522 * the transmit and receive units disabled and uninitialized. 523 */ 524 s32 e1000_init_hw(struct e1000_hw *hw) 525 { 526 u32 ctrl; 527 u32 i; 528 s32 ret_val; 529 u32 mta_size; 530 u32 ctrl_ext; 531 532 /* Initialize Identification LED */ 533 ret_val = e1000_id_led_init(hw); 534 if (ret_val) { 535 e_dbg("Error Initializing Identification LED\n"); 536 return ret_val; 537 } 538 539 /* Set the media type and TBI compatibility */ 540 e1000_set_media_type(hw); 541 542 /* Disabling VLAN filtering. */ 543 e_dbg("Initializing the IEEE VLAN\n"); 544 if (hw->mac_type < e1000_82545_rev_3) 545 ew32(VET, 0); 546 e1000_clear_vfta(hw); 547 548 /* For 82542 (rev 2.0), disable MWI and put the receiver into reset */ 549 if (hw->mac_type == e1000_82542_rev2_0) { 550 e_dbg("Disabling MWI on 82542 rev 2.0\n"); 551 e1000_pci_clear_mwi(hw); 552 ew32(RCTL, E1000_RCTL_RST); 553 E1000_WRITE_FLUSH(); 554 msleep(5); 555 } 556 557 /* Setup the receive address. This involves initializing all of the 558 * Receive Address Registers (RARs 0 - 15). 559 */ 560 e1000_init_rx_addrs(hw); 561 562 /* For 82542 (rev 2.0), take the receiver out of reset and enable MWI */ 563 if (hw->mac_type == e1000_82542_rev2_0) { 564 ew32(RCTL, 0); 565 E1000_WRITE_FLUSH(); 566 msleep(1); 567 if (hw->pci_cmd_word & PCI_COMMAND_INVALIDATE) 568 e1000_pci_set_mwi(hw); 569 } 570 571 /* Zero out the Multicast HASH table */ 572 e_dbg("Zeroing the MTA\n"); 573 mta_size = E1000_MC_TBL_SIZE; 574 for (i = 0; i < mta_size; i++) { 575 E1000_WRITE_REG_ARRAY(hw, MTA, i, 0); 576 /* use write flush to prevent Memory Write Block (MWB) from 577 * occurring when accessing our register space 578 */ 579 E1000_WRITE_FLUSH(); 580 } 581 582 /* Set the PCI priority bit correctly in the CTRL register. This 583 * determines if the adapter gives priority to receives, or if it 584 * gives equal priority to transmits and receives. Valid only on 585 * 82542 and 82543 silicon. 586 */ 587 if (hw->dma_fairness && hw->mac_type <= e1000_82543) { 588 ctrl = er32(CTRL); 589 ew32(CTRL, ctrl | E1000_CTRL_PRIOR); 590 } 591 592 switch (hw->mac_type) { 593 case e1000_82545_rev_3: 594 case e1000_82546_rev_3: 595 break; 596 default: 597 /* Workaround for PCI-X problem when BIOS sets MMRBC 598 * incorrectly. 599 */ 600 if (hw->bus_type == e1000_bus_type_pcix && 601 e1000_pcix_get_mmrbc(hw) > 2048) 602 e1000_pcix_set_mmrbc(hw, 2048); 603 break; 604 } 605 606 /* Call a subroutine to configure the link and setup flow control. */ 607 ret_val = e1000_setup_link(hw); 608 609 /* Set the transmit descriptor write-back policy */ 610 if (hw->mac_type > e1000_82544) { 611 ctrl = er32(TXDCTL); 612 ctrl = 613 (ctrl & ~E1000_TXDCTL_WTHRESH) | 614 E1000_TXDCTL_FULL_TX_DESC_WB; 615 ew32(TXDCTL, ctrl); 616 } 617 618 /* Clear all of the statistics registers (clear on read). It is 619 * important that we do this after we have tried to establish link 620 * because the symbol error count will increment wildly if there 621 * is no link. 622 */ 623 e1000_clear_hw_cntrs(hw); 624 625 if (hw->device_id == E1000_DEV_ID_82546GB_QUAD_COPPER || 626 hw->device_id == E1000_DEV_ID_82546GB_QUAD_COPPER_KSP3) { 627 ctrl_ext = er32(CTRL_EXT); 628 /* Relaxed ordering must be disabled to avoid a parity 629 * error crash in a PCI slot. 630 */ 631 ctrl_ext |= E1000_CTRL_EXT_RO_DIS; 632 ew32(CTRL_EXT, ctrl_ext); 633 } 634 635 return ret_val; 636 } 637 638 /** 639 * e1000_adjust_serdes_amplitude - Adjust SERDES output amplitude based on EEPROM setting. 640 * @hw: Struct containing variables accessed by shared code. 641 */ 642 static s32 e1000_adjust_serdes_amplitude(struct e1000_hw *hw) 643 { 644 u16 eeprom_data; 645 s32 ret_val; 646 647 if (hw->media_type != e1000_media_type_internal_serdes) 648 return E1000_SUCCESS; 649 650 switch (hw->mac_type) { 651 case e1000_82545_rev_3: 652 case e1000_82546_rev_3: 653 break; 654 default: 655 return E1000_SUCCESS; 656 } 657 658 ret_val = e1000_read_eeprom(hw, EEPROM_SERDES_AMPLITUDE, 1, 659 &eeprom_data); 660 if (ret_val) 661 return ret_val; 662 663 if (eeprom_data != EEPROM_RESERVED_WORD) { 664 /* Adjust SERDES output amplitude only. */ 665 eeprom_data &= EEPROM_SERDES_AMPLITUDE_MASK; 666 ret_val = 667 e1000_write_phy_reg(hw, M88E1000_PHY_EXT_CTRL, eeprom_data); 668 if (ret_val) 669 return ret_val; 670 } 671 672 return E1000_SUCCESS; 673 } 674 675 /** 676 * e1000_setup_link - Configures flow control and link settings. 677 * @hw: Struct containing variables accessed by shared code 678 * 679 * Determines which flow control settings to use. Calls the appropriate media- 680 * specific link configuration function. Configures the flow control settings. 681 * Assuming the adapter has a valid link partner, a valid link should be 682 * established. Assumes the hardware has previously been reset and the 683 * transmitter and receiver are not enabled. 684 */ 685 s32 e1000_setup_link(struct e1000_hw *hw) 686 { 687 u32 ctrl_ext; 688 s32 ret_val; 689 u16 eeprom_data; 690 691 /* Read and store word 0x0F of the EEPROM. This word contains bits 692 * that determine the hardware's default PAUSE (flow control) mode, 693 * a bit that determines whether the HW defaults to enabling or 694 * disabling auto-negotiation, and the direction of the 695 * SW defined pins. If there is no SW over-ride of the flow 696 * control setting, then the variable hw->fc will 697 * be initialized based on a value in the EEPROM. 698 */ 699 if (hw->fc == E1000_FC_DEFAULT) { 700 ret_val = e1000_read_eeprom(hw, EEPROM_INIT_CONTROL2_REG, 701 1, &eeprom_data); 702 if (ret_val) { 703 e_dbg("EEPROM Read Error\n"); 704 return -E1000_ERR_EEPROM; 705 } 706 if ((eeprom_data & EEPROM_WORD0F_PAUSE_MASK) == 0) 707 hw->fc = E1000_FC_NONE; 708 else if ((eeprom_data & EEPROM_WORD0F_PAUSE_MASK) == 709 EEPROM_WORD0F_ASM_DIR) 710 hw->fc = E1000_FC_TX_PAUSE; 711 else 712 hw->fc = E1000_FC_FULL; 713 } 714 715 /* We want to save off the original Flow Control configuration just 716 * in case we get disconnected and then reconnected into a different 717 * hub or switch with different Flow Control capabilities. 718 */ 719 if (hw->mac_type == e1000_82542_rev2_0) 720 hw->fc &= (~E1000_FC_TX_PAUSE); 721 722 if ((hw->mac_type < e1000_82543) && (hw->report_tx_early == 1)) 723 hw->fc &= (~E1000_FC_RX_PAUSE); 724 725 hw->original_fc = hw->fc; 726 727 e_dbg("After fix-ups FlowControl is now = %x\n", hw->fc); 728 729 /* Take the 4 bits from EEPROM word 0x0F that determine the initial 730 * polarity value for the SW controlled pins, and setup the 731 * Extended Device Control reg with that info. 732 * This is needed because one of the SW controlled pins is used for 733 * signal detection. So this should be done before e1000_setup_pcs_link() 734 * or e1000_phy_setup() is called. 735 */ 736 if (hw->mac_type == e1000_82543) { 737 ret_val = e1000_read_eeprom(hw, EEPROM_INIT_CONTROL2_REG, 738 1, &eeprom_data); 739 if (ret_val) { 740 e_dbg("EEPROM Read Error\n"); 741 return -E1000_ERR_EEPROM; 742 } 743 ctrl_ext = ((eeprom_data & EEPROM_WORD0F_SWPDIO_EXT) << 744 SWDPIO__EXT_SHIFT); 745 ew32(CTRL_EXT, ctrl_ext); 746 } 747 748 /* Call the necessary subroutine to configure the link. */ 749 ret_val = (hw->media_type == e1000_media_type_copper) ? 750 e1000_setup_copper_link(hw) : e1000_setup_fiber_serdes_link(hw); 751 752 /* Initialize the flow control address, type, and PAUSE timer 753 * registers to their default values. This is done even if flow 754 * control is disabled, because it does not hurt anything to 755 * initialize these registers. 756 */ 757 e_dbg("Initializing the Flow Control address, type and timer regs\n"); 758 759 ew32(FCT, FLOW_CONTROL_TYPE); 760 ew32(FCAH, FLOW_CONTROL_ADDRESS_HIGH); 761 ew32(FCAL, FLOW_CONTROL_ADDRESS_LOW); 762 763 ew32(FCTTV, hw->fc_pause_time); 764 765 /* Set the flow control receive threshold registers. Normally, 766 * these registers will be set to a default threshold that may be 767 * adjusted later by the driver's runtime code. However, if the 768 * ability to transmit pause frames in not enabled, then these 769 * registers will be set to 0. 770 */ 771 if (!(hw->fc & E1000_FC_TX_PAUSE)) { 772 ew32(FCRTL, 0); 773 ew32(FCRTH, 0); 774 } else { 775 /* We need to set up the Receive Threshold high and low water 776 * marks as well as (optionally) enabling the transmission of 777 * XON frames. 778 */ 779 if (hw->fc_send_xon) { 780 ew32(FCRTL, (hw->fc_low_water | E1000_FCRTL_XONE)); 781 ew32(FCRTH, hw->fc_high_water); 782 } else { 783 ew32(FCRTL, hw->fc_low_water); 784 ew32(FCRTH, hw->fc_high_water); 785 } 786 } 787 return ret_val; 788 } 789 790 /** 791 * e1000_setup_fiber_serdes_link - prepare fiber or serdes link 792 * @hw: Struct containing variables accessed by shared code 793 * 794 * Manipulates Physical Coding Sublayer functions in order to configure 795 * link. Assumes the hardware has been previously reset and the transmitter 796 * and receiver are not enabled. 797 */ 798 static s32 e1000_setup_fiber_serdes_link(struct e1000_hw *hw) 799 { 800 u32 ctrl; 801 u32 status; 802 u32 txcw = 0; 803 u32 i; 804 u32 signal = 0; 805 s32 ret_val; 806 807 /* On adapters with a MAC newer than 82544, SWDP 1 will be 808 * set when the optics detect a signal. On older adapters, it will be 809 * cleared when there is a signal. This applies to fiber media only. 810 * If we're on serdes media, adjust the output amplitude to value 811 * set in the EEPROM. 812 */ 813 ctrl = er32(CTRL); 814 if (hw->media_type == e1000_media_type_fiber) 815 signal = (hw->mac_type > e1000_82544) ? E1000_CTRL_SWDPIN1 : 0; 816 817 ret_val = e1000_adjust_serdes_amplitude(hw); 818 if (ret_val) 819 return ret_val; 820 821 /* Take the link out of reset */ 822 ctrl &= ~(E1000_CTRL_LRST); 823 824 /* Adjust VCO speed to improve BER performance */ 825 ret_val = e1000_set_vco_speed(hw); 826 if (ret_val) 827 return ret_val; 828 829 e1000_config_collision_dist(hw); 830 831 /* Check for a software override of the flow control settings, and setup 832 * the device accordingly. If auto-negotiation is enabled, then 833 * software will have to set the "PAUSE" bits to the correct value in 834 * the Tranmsit Config Word Register (TXCW) and re-start 835 * auto-negotiation. However, if auto-negotiation is disabled, then 836 * software will have to manually configure the two flow control enable 837 * bits in the CTRL register. 838 * 839 * The possible values of the "fc" parameter are: 840 * 0: Flow control is completely disabled 841 * 1: Rx flow control is enabled (we can receive pause frames, but 842 * not send pause frames). 843 * 2: Tx flow control is enabled (we can send pause frames but we do 844 * not support receiving pause frames). 845 * 3: Both Rx and TX flow control (symmetric) are enabled. 846 */ 847 switch (hw->fc) { 848 case E1000_FC_NONE: 849 /* Flow ctrl is completely disabled by a software over-ride */ 850 txcw = (E1000_TXCW_ANE | E1000_TXCW_FD); 851 break; 852 case E1000_FC_RX_PAUSE: 853 /* Rx Flow control is enabled and Tx Flow control is disabled by 854 * a software over-ride. Since there really isn't a way to 855 * advertise that we are capable of Rx Pause ONLY, we will 856 * advertise that we support both symmetric and asymmetric Rx 857 * PAUSE. Later, we will disable the adapter's ability to send 858 * PAUSE frames. 859 */ 860 txcw = (E1000_TXCW_ANE | E1000_TXCW_FD | E1000_TXCW_PAUSE_MASK); 861 break; 862 case E1000_FC_TX_PAUSE: 863 /* Tx Flow control is enabled, and Rx Flow control is disabled, 864 * by a software over-ride. 865 */ 866 txcw = (E1000_TXCW_ANE | E1000_TXCW_FD | E1000_TXCW_ASM_DIR); 867 break; 868 case E1000_FC_FULL: 869 /* Flow control (both Rx and Tx) is enabled by a software 870 * over-ride. 871 */ 872 txcw = (E1000_TXCW_ANE | E1000_TXCW_FD | E1000_TXCW_PAUSE_MASK); 873 break; 874 default: 875 e_dbg("Flow control param set incorrectly\n"); 876 return -E1000_ERR_CONFIG; 877 } 878 879 /* Since auto-negotiation is enabled, take the link out of reset (the 880 * link will be in reset, because we previously reset the chip). This 881 * will restart auto-negotiation. If auto-negotiation is successful 882 * then the link-up status bit will be set and the flow control enable 883 * bits (RFCE and TFCE) will be set according to their negotiated value. 884 */ 885 e_dbg("Auto-negotiation enabled\n"); 886 887 ew32(TXCW, txcw); 888 ew32(CTRL, ctrl); 889 E1000_WRITE_FLUSH(); 890 891 hw->txcw = txcw; 892 msleep(1); 893 894 /* If we have a signal (the cable is plugged in) then poll for a 895 * "Link-Up" indication in the Device Status Register. Time-out if a 896 * link isn't seen in 500 milliseconds seconds (Auto-negotiation should 897 * complete in less than 500 milliseconds even if the other end is doing 898 * it in SW). For internal serdes, we just assume a signal is present, 899 * then poll. 900 */ 901 if (hw->media_type == e1000_media_type_internal_serdes || 902 (er32(CTRL) & E1000_CTRL_SWDPIN1) == signal) { 903 e_dbg("Looking for Link\n"); 904 for (i = 0; i < (LINK_UP_TIMEOUT / 10); i++) { 905 msleep(10); 906 status = er32(STATUS); 907 if (status & E1000_STATUS_LU) 908 break; 909 } 910 if (i == (LINK_UP_TIMEOUT / 10)) { 911 e_dbg("Never got a valid link from auto-neg!!!\n"); 912 hw->autoneg_failed = 1; 913 /* AutoNeg failed to achieve a link, so we'll call 914 * e1000_check_for_link. This routine will force the 915 * link up if we detect a signal. This will allow us to 916 * communicate with non-autonegotiating link partners. 917 */ 918 ret_val = e1000_check_for_link(hw); 919 if (ret_val) { 920 e_dbg("Error while checking for link\n"); 921 return ret_val; 922 } 923 hw->autoneg_failed = 0; 924 } else { 925 hw->autoneg_failed = 0; 926 e_dbg("Valid Link Found\n"); 927 } 928 } else { 929 e_dbg("No Signal Detected\n"); 930 } 931 return E1000_SUCCESS; 932 } 933 934 /** 935 * e1000_copper_link_rtl_setup - Copper link setup for e1000_phy_rtl series. 936 * @hw: Struct containing variables accessed by shared code 937 * 938 * Commits changes to PHY configuration by calling e1000_phy_reset(). 939 */ 940 static s32 e1000_copper_link_rtl_setup(struct e1000_hw *hw) 941 { 942 s32 ret_val; 943 944 /* SW reset the PHY so all changes take effect */ 945 ret_val = e1000_phy_reset(hw); 946 if (ret_val) { 947 e_dbg("Error Resetting the PHY\n"); 948 return ret_val; 949 } 950 951 return E1000_SUCCESS; 952 } 953 954 static s32 gbe_dhg_phy_setup(struct e1000_hw *hw) 955 { 956 s32 ret_val; 957 u32 ctrl_aux; 958 959 switch (hw->phy_type) { 960 case e1000_phy_8211: 961 ret_val = e1000_copper_link_rtl_setup(hw); 962 if (ret_val) { 963 e_dbg("e1000_copper_link_rtl_setup failed!\n"); 964 return ret_val; 965 } 966 break; 967 case e1000_phy_8201: 968 /* Set RMII mode */ 969 ctrl_aux = er32(CTL_AUX); 970 ctrl_aux |= E1000_CTL_AUX_RMII; 971 ew32(CTL_AUX, ctrl_aux); 972 E1000_WRITE_FLUSH(); 973 974 /* Disable the J/K bits required for receive */ 975 ctrl_aux = er32(CTL_AUX); 976 ctrl_aux |= 0x4; 977 ctrl_aux &= ~0x2; 978 ew32(CTL_AUX, ctrl_aux); 979 E1000_WRITE_FLUSH(); 980 ret_val = e1000_copper_link_rtl_setup(hw); 981 982 if (ret_val) { 983 e_dbg("e1000_copper_link_rtl_setup failed!\n"); 984 return ret_val; 985 } 986 break; 987 default: 988 e_dbg("Error Resetting the PHY\n"); 989 return E1000_ERR_PHY_TYPE; 990 } 991 992 return E1000_SUCCESS; 993 } 994 995 /** 996 * e1000_copper_link_preconfig - early configuration for copper 997 * @hw: Struct containing variables accessed by shared code 998 * 999 * Make sure we have a valid PHY and change PHY mode before link setup. 1000 */ 1001 static s32 e1000_copper_link_preconfig(struct e1000_hw *hw) 1002 { 1003 u32 ctrl; 1004 s32 ret_val; 1005 u16 phy_data; 1006 1007 ctrl = er32(CTRL); 1008 /* With 82543, we need to force speed and duplex on the MAC equal to 1009 * what the PHY speed and duplex configuration is. In addition, we need 1010 * to perform a hardware reset on the PHY to take it out of reset. 1011 */ 1012 if (hw->mac_type > e1000_82543) { 1013 ctrl |= E1000_CTRL_SLU; 1014 ctrl &= ~(E1000_CTRL_FRCSPD | E1000_CTRL_FRCDPX); 1015 ew32(CTRL, ctrl); 1016 } else { 1017 ctrl |= 1018 (E1000_CTRL_FRCSPD | E1000_CTRL_FRCDPX | E1000_CTRL_SLU); 1019 ew32(CTRL, ctrl); 1020 ret_val = e1000_phy_hw_reset(hw); 1021 if (ret_val) 1022 return ret_val; 1023 } 1024 1025 /* Make sure we have a valid PHY */ 1026 ret_val = e1000_detect_gig_phy(hw); 1027 if (ret_val) { 1028 e_dbg("Error, did not detect valid phy.\n"); 1029 return ret_val; 1030 } 1031 e_dbg("Phy ID = %x\n", hw->phy_id); 1032 1033 /* Set PHY to class A mode (if necessary) */ 1034 ret_val = e1000_set_phy_mode(hw); 1035 if (ret_val) 1036 return ret_val; 1037 1038 if ((hw->mac_type == e1000_82545_rev_3) || 1039 (hw->mac_type == e1000_82546_rev_3)) { 1040 ret_val = 1041 e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, &phy_data); 1042 phy_data |= 0x00000008; 1043 ret_val = 1044 e1000_write_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, phy_data); 1045 } 1046 1047 if (hw->mac_type <= e1000_82543 || 1048 hw->mac_type == e1000_82541 || hw->mac_type == e1000_82547 || 1049 hw->mac_type == e1000_82541_rev_2 || 1050 hw->mac_type == e1000_82547_rev_2) 1051 hw->phy_reset_disable = false; 1052 1053 return E1000_SUCCESS; 1054 } 1055 1056 /** 1057 * e1000_copper_link_igp_setup - Copper link setup for e1000_phy_igp series. 1058 * @hw: Struct containing variables accessed by shared code 1059 */ 1060 static s32 e1000_copper_link_igp_setup(struct e1000_hw *hw) 1061 { 1062 u32 led_ctrl; 1063 s32 ret_val; 1064 u16 phy_data; 1065 1066 if (hw->phy_reset_disable) 1067 return E1000_SUCCESS; 1068 1069 ret_val = e1000_phy_reset(hw); 1070 if (ret_val) { 1071 e_dbg("Error Resetting the PHY\n"); 1072 return ret_val; 1073 } 1074 1075 /* Wait 15ms for MAC to configure PHY from eeprom settings */ 1076 msleep(15); 1077 /* Configure activity LED after PHY reset */ 1078 led_ctrl = er32(LEDCTL); 1079 led_ctrl &= IGP_ACTIVITY_LED_MASK; 1080 led_ctrl |= (IGP_ACTIVITY_LED_ENABLE | IGP_LED3_MODE); 1081 ew32(LEDCTL, led_ctrl); 1082 1083 /* The NVM settings will configure LPLU in D3 for IGP2 and IGP3 PHYs */ 1084 if (hw->phy_type == e1000_phy_igp) { 1085 /* disable lplu d3 during driver init */ 1086 ret_val = e1000_set_d3_lplu_state(hw, false); 1087 if (ret_val) { 1088 e_dbg("Error Disabling LPLU D3\n"); 1089 return ret_val; 1090 } 1091 } 1092 1093 /* Configure mdi-mdix settings */ 1094 ret_val = e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_CTRL, &phy_data); 1095 if (ret_val) 1096 return ret_val; 1097 1098 if ((hw->mac_type == e1000_82541) || (hw->mac_type == e1000_82547)) { 1099 hw->dsp_config_state = e1000_dsp_config_disabled; 1100 /* Force MDI for earlier revs of the IGP PHY */ 1101 phy_data &= 1102 ~(IGP01E1000_PSCR_AUTO_MDIX | 1103 IGP01E1000_PSCR_FORCE_MDI_MDIX); 1104 hw->mdix = 1; 1105 1106 } else { 1107 hw->dsp_config_state = e1000_dsp_config_enabled; 1108 phy_data &= ~IGP01E1000_PSCR_AUTO_MDIX; 1109 1110 switch (hw->mdix) { 1111 case 1: 1112 phy_data &= ~IGP01E1000_PSCR_FORCE_MDI_MDIX; 1113 break; 1114 case 2: 1115 phy_data |= IGP01E1000_PSCR_FORCE_MDI_MDIX; 1116 break; 1117 case 0: 1118 default: 1119 phy_data |= IGP01E1000_PSCR_AUTO_MDIX; 1120 break; 1121 } 1122 } 1123 ret_val = e1000_write_phy_reg(hw, IGP01E1000_PHY_PORT_CTRL, phy_data); 1124 if (ret_val) 1125 return ret_val; 1126 1127 /* set auto-master slave resolution settings */ 1128 if (hw->autoneg) { 1129 e1000_ms_type phy_ms_setting = hw->master_slave; 1130 1131 if (hw->ffe_config_state == e1000_ffe_config_active) 1132 hw->ffe_config_state = e1000_ffe_config_enabled; 1133 1134 if (hw->dsp_config_state == e1000_dsp_config_activated) 1135 hw->dsp_config_state = e1000_dsp_config_enabled; 1136 1137 /* when autonegotiation advertisement is only 1000Mbps then we 1138 * should disable SmartSpeed and enable Auto MasterSlave 1139 * resolution as hardware default. 1140 */ 1141 if (hw->autoneg_advertised == ADVERTISE_1000_FULL) { 1142 /* Disable SmartSpeed */ 1143 ret_val = 1144 e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 1145 &phy_data); 1146 if (ret_val) 1147 return ret_val; 1148 phy_data &= ~IGP01E1000_PSCFR_SMART_SPEED; 1149 ret_val = 1150 e1000_write_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 1151 phy_data); 1152 if (ret_val) 1153 return ret_val; 1154 /* Set auto Master/Slave resolution process */ 1155 ret_val = 1156 e1000_read_phy_reg(hw, PHY_1000T_CTRL, &phy_data); 1157 if (ret_val) 1158 return ret_val; 1159 phy_data &= ~CR_1000T_MS_ENABLE; 1160 ret_val = 1161 e1000_write_phy_reg(hw, PHY_1000T_CTRL, phy_data); 1162 if (ret_val) 1163 return ret_val; 1164 } 1165 1166 ret_val = e1000_read_phy_reg(hw, PHY_1000T_CTRL, &phy_data); 1167 if (ret_val) 1168 return ret_val; 1169 1170 /* load defaults for future use */ 1171 hw->original_master_slave = (phy_data & CR_1000T_MS_ENABLE) ? 1172 ((phy_data & CR_1000T_MS_VALUE) ? 1173 e1000_ms_force_master : 1174 e1000_ms_force_slave) : e1000_ms_auto; 1175 1176 switch (phy_ms_setting) { 1177 case e1000_ms_force_master: 1178 phy_data |= (CR_1000T_MS_ENABLE | CR_1000T_MS_VALUE); 1179 break; 1180 case e1000_ms_force_slave: 1181 phy_data |= CR_1000T_MS_ENABLE; 1182 phy_data &= ~(CR_1000T_MS_VALUE); 1183 break; 1184 case e1000_ms_auto: 1185 phy_data &= ~CR_1000T_MS_ENABLE; 1186 default: 1187 break; 1188 } 1189 ret_val = e1000_write_phy_reg(hw, PHY_1000T_CTRL, phy_data); 1190 if (ret_val) 1191 return ret_val; 1192 } 1193 1194 return E1000_SUCCESS; 1195 } 1196 1197 /** 1198 * e1000_copper_link_mgp_setup - Copper link setup for e1000_phy_m88 series. 1199 * @hw: Struct containing variables accessed by shared code 1200 */ 1201 static s32 e1000_copper_link_mgp_setup(struct e1000_hw *hw) 1202 { 1203 s32 ret_val; 1204 u16 phy_data; 1205 1206 if (hw->phy_reset_disable) 1207 return E1000_SUCCESS; 1208 1209 /* Enable CRS on TX. This must be set for half-duplex operation. */ 1210 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, &phy_data); 1211 if (ret_val) 1212 return ret_val; 1213 1214 phy_data |= M88E1000_PSCR_ASSERT_CRS_ON_TX; 1215 1216 /* Options: 1217 * MDI/MDI-X = 0 (default) 1218 * 0 - Auto for all speeds 1219 * 1 - MDI mode 1220 * 2 - MDI-X mode 1221 * 3 - Auto for 1000Base-T only (MDI-X for 10/100Base-T modes) 1222 */ 1223 phy_data &= ~M88E1000_PSCR_AUTO_X_MODE; 1224 1225 switch (hw->mdix) { 1226 case 1: 1227 phy_data |= M88E1000_PSCR_MDI_MANUAL_MODE; 1228 break; 1229 case 2: 1230 phy_data |= M88E1000_PSCR_MDIX_MANUAL_MODE; 1231 break; 1232 case 3: 1233 phy_data |= M88E1000_PSCR_AUTO_X_1000T; 1234 break; 1235 case 0: 1236 default: 1237 phy_data |= M88E1000_PSCR_AUTO_X_MODE; 1238 break; 1239 } 1240 1241 /* Options: 1242 * disable_polarity_correction = 0 (default) 1243 * Automatic Correction for Reversed Cable Polarity 1244 * 0 - Disabled 1245 * 1 - Enabled 1246 */ 1247 phy_data &= ~M88E1000_PSCR_POLARITY_REVERSAL; 1248 if (hw->disable_polarity_correction == 1) 1249 phy_data |= M88E1000_PSCR_POLARITY_REVERSAL; 1250 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, phy_data); 1251 if (ret_val) 1252 return ret_val; 1253 1254 if (hw->phy_revision < M88E1011_I_REV_4) { 1255 /* Force TX_CLK in the Extended PHY Specific Control Register 1256 * to 25MHz clock. 1257 */ 1258 ret_val = 1259 e1000_read_phy_reg(hw, M88E1000_EXT_PHY_SPEC_CTRL, 1260 &phy_data); 1261 if (ret_val) 1262 return ret_val; 1263 1264 phy_data |= M88E1000_EPSCR_TX_CLK_25; 1265 1266 if ((hw->phy_revision == E1000_REVISION_2) && 1267 (hw->phy_id == M88E1111_I_PHY_ID)) { 1268 /* Vidalia Phy, set the downshift counter to 5x */ 1269 phy_data &= ~(M88EC018_EPSCR_DOWNSHIFT_COUNTER_MASK); 1270 phy_data |= M88EC018_EPSCR_DOWNSHIFT_COUNTER_5X; 1271 ret_val = e1000_write_phy_reg(hw, 1272 M88E1000_EXT_PHY_SPEC_CTRL, 1273 phy_data); 1274 if (ret_val) 1275 return ret_val; 1276 } else { 1277 /* Configure Master and Slave downshift values */ 1278 phy_data &= ~(M88E1000_EPSCR_MASTER_DOWNSHIFT_MASK | 1279 M88E1000_EPSCR_SLAVE_DOWNSHIFT_MASK); 1280 phy_data |= (M88E1000_EPSCR_MASTER_DOWNSHIFT_1X | 1281 M88E1000_EPSCR_SLAVE_DOWNSHIFT_1X); 1282 ret_val = e1000_write_phy_reg(hw, 1283 M88E1000_EXT_PHY_SPEC_CTRL, 1284 phy_data); 1285 if (ret_val) 1286 return ret_val; 1287 } 1288 } 1289 1290 /* SW Reset the PHY so all changes take effect */ 1291 ret_val = e1000_phy_reset(hw); 1292 if (ret_val) { 1293 e_dbg("Error Resetting the PHY\n"); 1294 return ret_val; 1295 } 1296 1297 return E1000_SUCCESS; 1298 } 1299 1300 /** 1301 * e1000_copper_link_autoneg - setup auto-neg 1302 * @hw: Struct containing variables accessed by shared code 1303 * 1304 * Setup auto-negotiation and flow control advertisements, 1305 * and then perform auto-negotiation. 1306 */ 1307 static s32 e1000_copper_link_autoneg(struct e1000_hw *hw) 1308 { 1309 s32 ret_val; 1310 u16 phy_data; 1311 1312 /* Perform some bounds checking on the hw->autoneg_advertised 1313 * parameter. If this variable is zero, then set it to the default. 1314 */ 1315 hw->autoneg_advertised &= AUTONEG_ADVERTISE_SPEED_DEFAULT; 1316 1317 /* If autoneg_advertised is zero, we assume it was not defaulted 1318 * by the calling code so we set to advertise full capability. 1319 */ 1320 if (hw->autoneg_advertised == 0) 1321 hw->autoneg_advertised = AUTONEG_ADVERTISE_SPEED_DEFAULT; 1322 1323 /* IFE/RTL8201N PHY only supports 10/100 */ 1324 if (hw->phy_type == e1000_phy_8201) 1325 hw->autoneg_advertised &= AUTONEG_ADVERTISE_10_100_ALL; 1326 1327 e_dbg("Reconfiguring auto-neg advertisement params\n"); 1328 ret_val = e1000_phy_setup_autoneg(hw); 1329 if (ret_val) { 1330 e_dbg("Error Setting up Auto-Negotiation\n"); 1331 return ret_val; 1332 } 1333 e_dbg("Restarting Auto-Neg\n"); 1334 1335 /* Restart auto-negotiation by setting the Auto Neg Enable bit and 1336 * the Auto Neg Restart bit in the PHY control register. 1337 */ 1338 ret_val = e1000_read_phy_reg(hw, PHY_CTRL, &phy_data); 1339 if (ret_val) 1340 return ret_val; 1341 1342 phy_data |= (MII_CR_AUTO_NEG_EN | MII_CR_RESTART_AUTO_NEG); 1343 ret_val = e1000_write_phy_reg(hw, PHY_CTRL, phy_data); 1344 if (ret_val) 1345 return ret_val; 1346 1347 /* Does the user want to wait for Auto-Neg to complete here, or 1348 * check at a later time (for example, callback routine). 1349 */ 1350 if (hw->wait_autoneg_complete) { 1351 ret_val = e1000_wait_autoneg(hw); 1352 if (ret_val) { 1353 e_dbg 1354 ("Error while waiting for autoneg to complete\n"); 1355 return ret_val; 1356 } 1357 } 1358 1359 hw->get_link_status = true; 1360 1361 return E1000_SUCCESS; 1362 } 1363 1364 /** 1365 * e1000_copper_link_postconfig - post link setup 1366 * @hw: Struct containing variables accessed by shared code 1367 * 1368 * Config the MAC and the PHY after link is up. 1369 * 1) Set up the MAC to the current PHY speed/duplex 1370 * if we are on 82543. If we 1371 * are on newer silicon, we only need to configure 1372 * collision distance in the Transmit Control Register. 1373 * 2) Set up flow control on the MAC to that established with 1374 * the link partner. 1375 * 3) Config DSP to improve Gigabit link quality for some PHY revisions. 1376 */ 1377 static s32 e1000_copper_link_postconfig(struct e1000_hw *hw) 1378 { 1379 s32 ret_val; 1380 1381 if ((hw->mac_type >= e1000_82544) && (hw->mac_type != e1000_ce4100)) { 1382 e1000_config_collision_dist(hw); 1383 } else { 1384 ret_val = e1000_config_mac_to_phy(hw); 1385 if (ret_val) { 1386 e_dbg("Error configuring MAC to PHY settings\n"); 1387 return ret_val; 1388 } 1389 } 1390 ret_val = e1000_config_fc_after_link_up(hw); 1391 if (ret_val) { 1392 e_dbg("Error Configuring Flow Control\n"); 1393 return ret_val; 1394 } 1395 1396 /* Config DSP to improve Giga link quality */ 1397 if (hw->phy_type == e1000_phy_igp) { 1398 ret_val = e1000_config_dsp_after_link_change(hw, true); 1399 if (ret_val) { 1400 e_dbg("Error Configuring DSP after link up\n"); 1401 return ret_val; 1402 } 1403 } 1404 1405 return E1000_SUCCESS; 1406 } 1407 1408 /** 1409 * e1000_setup_copper_link - phy/speed/duplex setting 1410 * @hw: Struct containing variables accessed by shared code 1411 * 1412 * Detects which PHY is present and sets up the speed and duplex 1413 */ 1414 static s32 e1000_setup_copper_link(struct e1000_hw *hw) 1415 { 1416 s32 ret_val; 1417 u16 i; 1418 u16 phy_data; 1419 1420 /* Check if it is a valid PHY and set PHY mode if necessary. */ 1421 ret_val = e1000_copper_link_preconfig(hw); 1422 if (ret_val) 1423 return ret_val; 1424 1425 if (hw->phy_type == e1000_phy_igp) { 1426 ret_val = e1000_copper_link_igp_setup(hw); 1427 if (ret_val) 1428 return ret_val; 1429 } else if (hw->phy_type == e1000_phy_m88) { 1430 ret_val = e1000_copper_link_mgp_setup(hw); 1431 if (ret_val) 1432 return ret_val; 1433 } else { 1434 ret_val = gbe_dhg_phy_setup(hw); 1435 if (ret_val) { 1436 e_dbg("gbe_dhg_phy_setup failed!\n"); 1437 return ret_val; 1438 } 1439 } 1440 1441 if (hw->autoneg) { 1442 /* Setup autoneg and flow control advertisement 1443 * and perform autonegotiation 1444 */ 1445 ret_val = e1000_copper_link_autoneg(hw); 1446 if (ret_val) 1447 return ret_val; 1448 } else { 1449 /* PHY will be set to 10H, 10F, 100H,or 100F 1450 * depending on value from forced_speed_duplex. 1451 */ 1452 e_dbg("Forcing speed and duplex\n"); 1453 ret_val = e1000_phy_force_speed_duplex(hw); 1454 if (ret_val) { 1455 e_dbg("Error Forcing Speed and Duplex\n"); 1456 return ret_val; 1457 } 1458 } 1459 1460 /* Check link status. Wait up to 100 microseconds for link to become 1461 * valid. 1462 */ 1463 for (i = 0; i < 10; i++) { 1464 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 1465 if (ret_val) 1466 return ret_val; 1467 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 1468 if (ret_val) 1469 return ret_val; 1470 1471 if (phy_data & MII_SR_LINK_STATUS) { 1472 /* Config the MAC and PHY after link is up */ 1473 ret_val = e1000_copper_link_postconfig(hw); 1474 if (ret_val) 1475 return ret_val; 1476 1477 e_dbg("Valid link established!!!\n"); 1478 return E1000_SUCCESS; 1479 } 1480 udelay(10); 1481 } 1482 1483 e_dbg("Unable to establish link!!!\n"); 1484 return E1000_SUCCESS; 1485 } 1486 1487 /** 1488 * e1000_phy_setup_autoneg - phy settings 1489 * @hw: Struct containing variables accessed by shared code 1490 * 1491 * Configures PHY autoneg and flow control advertisement settings 1492 */ 1493 s32 e1000_phy_setup_autoneg(struct e1000_hw *hw) 1494 { 1495 s32 ret_val; 1496 u16 mii_autoneg_adv_reg; 1497 u16 mii_1000t_ctrl_reg; 1498 1499 /* Read the MII Auto-Neg Advertisement Register (Address 4). */ 1500 ret_val = e1000_read_phy_reg(hw, PHY_AUTONEG_ADV, &mii_autoneg_adv_reg); 1501 if (ret_val) 1502 return ret_val; 1503 1504 /* Read the MII 1000Base-T Control Register (Address 9). */ 1505 ret_val = e1000_read_phy_reg(hw, PHY_1000T_CTRL, &mii_1000t_ctrl_reg); 1506 if (ret_val) 1507 return ret_val; 1508 else if (hw->phy_type == e1000_phy_8201) 1509 mii_1000t_ctrl_reg &= ~REG9_SPEED_MASK; 1510 1511 /* Need to parse both autoneg_advertised and fc and set up 1512 * the appropriate PHY registers. First we will parse for 1513 * autoneg_advertised software override. Since we can advertise 1514 * a plethora of combinations, we need to check each bit 1515 * individually. 1516 */ 1517 1518 /* First we clear all the 10/100 mb speed bits in the Auto-Neg 1519 * Advertisement Register (Address 4) and the 1000 mb speed bits in 1520 * the 1000Base-T Control Register (Address 9). 1521 */ 1522 mii_autoneg_adv_reg &= ~REG4_SPEED_MASK; 1523 mii_1000t_ctrl_reg &= ~REG9_SPEED_MASK; 1524 1525 e_dbg("autoneg_advertised %x\n", hw->autoneg_advertised); 1526 1527 /* Do we want to advertise 10 Mb Half Duplex? */ 1528 if (hw->autoneg_advertised & ADVERTISE_10_HALF) { 1529 e_dbg("Advertise 10mb Half duplex\n"); 1530 mii_autoneg_adv_reg |= NWAY_AR_10T_HD_CAPS; 1531 } 1532 1533 /* Do we want to advertise 10 Mb Full Duplex? */ 1534 if (hw->autoneg_advertised & ADVERTISE_10_FULL) { 1535 e_dbg("Advertise 10mb Full duplex\n"); 1536 mii_autoneg_adv_reg |= NWAY_AR_10T_FD_CAPS; 1537 } 1538 1539 /* Do we want to advertise 100 Mb Half Duplex? */ 1540 if (hw->autoneg_advertised & ADVERTISE_100_HALF) { 1541 e_dbg("Advertise 100mb Half duplex\n"); 1542 mii_autoneg_adv_reg |= NWAY_AR_100TX_HD_CAPS; 1543 } 1544 1545 /* Do we want to advertise 100 Mb Full Duplex? */ 1546 if (hw->autoneg_advertised & ADVERTISE_100_FULL) { 1547 e_dbg("Advertise 100mb Full duplex\n"); 1548 mii_autoneg_adv_reg |= NWAY_AR_100TX_FD_CAPS; 1549 } 1550 1551 /* We do not allow the Phy to advertise 1000 Mb Half Duplex */ 1552 if (hw->autoneg_advertised & ADVERTISE_1000_HALF) { 1553 e_dbg 1554 ("Advertise 1000mb Half duplex requested, request denied!\n"); 1555 } 1556 1557 /* Do we want to advertise 1000 Mb Full Duplex? */ 1558 if (hw->autoneg_advertised & ADVERTISE_1000_FULL) { 1559 e_dbg("Advertise 1000mb Full duplex\n"); 1560 mii_1000t_ctrl_reg |= CR_1000T_FD_CAPS; 1561 } 1562 1563 /* Check for a software override of the flow control settings, and 1564 * setup the PHY advertisement registers accordingly. If 1565 * auto-negotiation is enabled, then software will have to set the 1566 * "PAUSE" bits to the correct value in the Auto-Negotiation 1567 * Advertisement Register (PHY_AUTONEG_ADV) and re-start 1568 * auto-negotiation. 1569 * 1570 * The possible values of the "fc" parameter are: 1571 * 0: Flow control is completely disabled 1572 * 1: Rx flow control is enabled (we can receive pause frames 1573 * but not send pause frames). 1574 * 2: Tx flow control is enabled (we can send pause frames 1575 * but we do not support receiving pause frames). 1576 * 3: Both Rx and TX flow control (symmetric) are enabled. 1577 * other: No software override. The flow control configuration 1578 * in the EEPROM is used. 1579 */ 1580 switch (hw->fc) { 1581 case E1000_FC_NONE: /* 0 */ 1582 /* Flow control (RX & TX) is completely disabled by a 1583 * software over-ride. 1584 */ 1585 mii_autoneg_adv_reg &= ~(NWAY_AR_ASM_DIR | NWAY_AR_PAUSE); 1586 break; 1587 case E1000_FC_RX_PAUSE: /* 1 */ 1588 /* RX Flow control is enabled, and TX Flow control is 1589 * disabled, by a software over-ride. 1590 */ 1591 /* Since there really isn't a way to advertise that we are 1592 * capable of RX Pause ONLY, we will advertise that we 1593 * support both symmetric and asymmetric RX PAUSE. Later 1594 * (in e1000_config_fc_after_link_up) we will disable the 1595 * hw's ability to send PAUSE frames. 1596 */ 1597 mii_autoneg_adv_reg |= (NWAY_AR_ASM_DIR | NWAY_AR_PAUSE); 1598 break; 1599 case E1000_FC_TX_PAUSE: /* 2 */ 1600 /* TX Flow control is enabled, and RX Flow control is 1601 * disabled, by a software over-ride. 1602 */ 1603 mii_autoneg_adv_reg |= NWAY_AR_ASM_DIR; 1604 mii_autoneg_adv_reg &= ~NWAY_AR_PAUSE; 1605 break; 1606 case E1000_FC_FULL: /* 3 */ 1607 /* Flow control (both RX and TX) is enabled by a software 1608 * over-ride. 1609 */ 1610 mii_autoneg_adv_reg |= (NWAY_AR_ASM_DIR | NWAY_AR_PAUSE); 1611 break; 1612 default: 1613 e_dbg("Flow control param set incorrectly\n"); 1614 return -E1000_ERR_CONFIG; 1615 } 1616 1617 ret_val = e1000_write_phy_reg(hw, PHY_AUTONEG_ADV, mii_autoneg_adv_reg); 1618 if (ret_val) 1619 return ret_val; 1620 1621 e_dbg("Auto-Neg Advertising %x\n", mii_autoneg_adv_reg); 1622 1623 if (hw->phy_type == e1000_phy_8201) { 1624 mii_1000t_ctrl_reg = 0; 1625 } else { 1626 ret_val = e1000_write_phy_reg(hw, PHY_1000T_CTRL, 1627 mii_1000t_ctrl_reg); 1628 if (ret_val) 1629 return ret_val; 1630 } 1631 1632 return E1000_SUCCESS; 1633 } 1634 1635 /** 1636 * e1000_phy_force_speed_duplex - force link settings 1637 * @hw: Struct containing variables accessed by shared code 1638 * 1639 * Force PHY speed and duplex settings to hw->forced_speed_duplex 1640 */ 1641 static s32 e1000_phy_force_speed_duplex(struct e1000_hw *hw) 1642 { 1643 u32 ctrl; 1644 s32 ret_val; 1645 u16 mii_ctrl_reg; 1646 u16 mii_status_reg; 1647 u16 phy_data; 1648 u16 i; 1649 1650 /* Turn off Flow control if we are forcing speed and duplex. */ 1651 hw->fc = E1000_FC_NONE; 1652 1653 e_dbg("hw->fc = %d\n", hw->fc); 1654 1655 /* Read the Device Control Register. */ 1656 ctrl = er32(CTRL); 1657 1658 /* Set the bits to Force Speed and Duplex in the Device Ctrl Reg. */ 1659 ctrl |= (E1000_CTRL_FRCSPD | E1000_CTRL_FRCDPX); 1660 ctrl &= ~(DEVICE_SPEED_MASK); 1661 1662 /* Clear the Auto Speed Detect Enable bit. */ 1663 ctrl &= ~E1000_CTRL_ASDE; 1664 1665 /* Read the MII Control Register. */ 1666 ret_val = e1000_read_phy_reg(hw, PHY_CTRL, &mii_ctrl_reg); 1667 if (ret_val) 1668 return ret_val; 1669 1670 /* We need to disable autoneg in order to force link and duplex. */ 1671 1672 mii_ctrl_reg &= ~MII_CR_AUTO_NEG_EN; 1673 1674 /* Are we forcing Full or Half Duplex? */ 1675 if (hw->forced_speed_duplex == e1000_100_full || 1676 hw->forced_speed_duplex == e1000_10_full) { 1677 /* We want to force full duplex so we SET the full duplex bits 1678 * in the Device and MII Control Registers. 1679 */ 1680 ctrl |= E1000_CTRL_FD; 1681 mii_ctrl_reg |= MII_CR_FULL_DUPLEX; 1682 e_dbg("Full Duplex\n"); 1683 } else { 1684 /* We want to force half duplex so we CLEAR the full duplex bits 1685 * in the Device and MII Control Registers. 1686 */ 1687 ctrl &= ~E1000_CTRL_FD; 1688 mii_ctrl_reg &= ~MII_CR_FULL_DUPLEX; 1689 e_dbg("Half Duplex\n"); 1690 } 1691 1692 /* Are we forcing 100Mbps??? */ 1693 if (hw->forced_speed_duplex == e1000_100_full || 1694 hw->forced_speed_duplex == e1000_100_half) { 1695 /* Set the 100Mb bit and turn off the 1000Mb and 10Mb bits. */ 1696 ctrl |= E1000_CTRL_SPD_100; 1697 mii_ctrl_reg |= MII_CR_SPEED_100; 1698 mii_ctrl_reg &= ~(MII_CR_SPEED_1000 | MII_CR_SPEED_10); 1699 e_dbg("Forcing 100mb "); 1700 } else { 1701 /* Set the 10Mb bit and turn off the 1000Mb and 100Mb bits. */ 1702 ctrl &= ~(E1000_CTRL_SPD_1000 | E1000_CTRL_SPD_100); 1703 mii_ctrl_reg |= MII_CR_SPEED_10; 1704 mii_ctrl_reg &= ~(MII_CR_SPEED_1000 | MII_CR_SPEED_100); 1705 e_dbg("Forcing 10mb "); 1706 } 1707 1708 e1000_config_collision_dist(hw); 1709 1710 /* Write the configured values back to the Device Control Reg. */ 1711 ew32(CTRL, ctrl); 1712 1713 if (hw->phy_type == e1000_phy_m88) { 1714 ret_val = 1715 e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, &phy_data); 1716 if (ret_val) 1717 return ret_val; 1718 1719 /* Clear Auto-Crossover to force MDI manually. M88E1000 requires 1720 * MDI forced whenever speed are duplex are forced. 1721 */ 1722 phy_data &= ~M88E1000_PSCR_AUTO_X_MODE; 1723 ret_val = 1724 e1000_write_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, phy_data); 1725 if (ret_val) 1726 return ret_val; 1727 1728 e_dbg("M88E1000 PSCR: %x\n", phy_data); 1729 1730 /* Need to reset the PHY or these changes will be ignored */ 1731 mii_ctrl_reg |= MII_CR_RESET; 1732 1733 /* Disable MDI-X support for 10/100 */ 1734 } else { 1735 /* Clear Auto-Crossover to force MDI manually. IGP requires MDI 1736 * forced whenever speed or duplex are forced. 1737 */ 1738 ret_val = 1739 e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_CTRL, &phy_data); 1740 if (ret_val) 1741 return ret_val; 1742 1743 phy_data &= ~IGP01E1000_PSCR_AUTO_MDIX; 1744 phy_data &= ~IGP01E1000_PSCR_FORCE_MDI_MDIX; 1745 1746 ret_val = 1747 e1000_write_phy_reg(hw, IGP01E1000_PHY_PORT_CTRL, phy_data); 1748 if (ret_val) 1749 return ret_val; 1750 } 1751 1752 /* Write back the modified PHY MII control register. */ 1753 ret_val = e1000_write_phy_reg(hw, PHY_CTRL, mii_ctrl_reg); 1754 if (ret_val) 1755 return ret_val; 1756 1757 udelay(1); 1758 1759 /* The wait_autoneg_complete flag may be a little misleading here. 1760 * Since we are forcing speed and duplex, Auto-Neg is not enabled. 1761 * But we do want to delay for a period while forcing only so we 1762 * don't generate false No Link messages. So we will wait here 1763 * only if the user has set wait_autoneg_complete to 1, which is 1764 * the default. 1765 */ 1766 if (hw->wait_autoneg_complete) { 1767 /* We will wait for autoneg to complete. */ 1768 e_dbg("Waiting for forced speed/duplex link.\n"); 1769 mii_status_reg = 0; 1770 1771 /* Wait for autoneg to complete or 4.5 seconds to expire */ 1772 for (i = PHY_FORCE_TIME; i > 0; i--) { 1773 /* Read the MII Status Register and wait for Auto-Neg 1774 * Complete bit to be set. 1775 */ 1776 ret_val = 1777 e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 1778 if (ret_val) 1779 return ret_val; 1780 1781 ret_val = 1782 e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 1783 if (ret_val) 1784 return ret_val; 1785 1786 if (mii_status_reg & MII_SR_LINK_STATUS) 1787 break; 1788 msleep(100); 1789 } 1790 if ((i == 0) && (hw->phy_type == e1000_phy_m88)) { 1791 /* We didn't get link. Reset the DSP and wait again 1792 * for link. 1793 */ 1794 ret_val = e1000_phy_reset_dsp(hw); 1795 if (ret_val) { 1796 e_dbg("Error Resetting PHY DSP\n"); 1797 return ret_val; 1798 } 1799 } 1800 /* This loop will early-out if the link condition has been 1801 * met 1802 */ 1803 for (i = PHY_FORCE_TIME; i > 0; i--) { 1804 if (mii_status_reg & MII_SR_LINK_STATUS) 1805 break; 1806 msleep(100); 1807 /* Read the MII Status Register and wait for Auto-Neg 1808 * Complete bit to be set. 1809 */ 1810 ret_val = 1811 e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 1812 if (ret_val) 1813 return ret_val; 1814 1815 ret_val = 1816 e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 1817 if (ret_val) 1818 return ret_val; 1819 } 1820 } 1821 1822 if (hw->phy_type == e1000_phy_m88) { 1823 /* Because we reset the PHY above, we need to re-force TX_CLK in 1824 * the Extended PHY Specific Control Register to 25MHz clock. 1825 * This value defaults back to a 2.5MHz clock when the PHY is 1826 * reset. 1827 */ 1828 ret_val = 1829 e1000_read_phy_reg(hw, M88E1000_EXT_PHY_SPEC_CTRL, 1830 &phy_data); 1831 if (ret_val) 1832 return ret_val; 1833 1834 phy_data |= M88E1000_EPSCR_TX_CLK_25; 1835 ret_val = 1836 e1000_write_phy_reg(hw, M88E1000_EXT_PHY_SPEC_CTRL, 1837 phy_data); 1838 if (ret_val) 1839 return ret_val; 1840 1841 /* In addition, because of the s/w reset above, we need to 1842 * enable CRS on Tx. This must be set for both full and half 1843 * duplex operation. 1844 */ 1845 ret_val = 1846 e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, &phy_data); 1847 if (ret_val) 1848 return ret_val; 1849 1850 phy_data |= M88E1000_PSCR_ASSERT_CRS_ON_TX; 1851 ret_val = 1852 e1000_write_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, phy_data); 1853 if (ret_val) 1854 return ret_val; 1855 1856 if ((hw->mac_type == e1000_82544 || 1857 hw->mac_type == e1000_82543) && 1858 (!hw->autoneg) && 1859 (hw->forced_speed_duplex == e1000_10_full || 1860 hw->forced_speed_duplex == e1000_10_half)) { 1861 ret_val = e1000_polarity_reversal_workaround(hw); 1862 if (ret_val) 1863 return ret_val; 1864 } 1865 } 1866 return E1000_SUCCESS; 1867 } 1868 1869 /** 1870 * e1000_config_collision_dist - set collision distance register 1871 * @hw: Struct containing variables accessed by shared code 1872 * 1873 * Sets the collision distance in the Transmit Control register. 1874 * Link should have been established previously. Reads the speed and duplex 1875 * information from the Device Status register. 1876 */ 1877 void e1000_config_collision_dist(struct e1000_hw *hw) 1878 { 1879 u32 tctl, coll_dist; 1880 1881 if (hw->mac_type < e1000_82543) 1882 coll_dist = E1000_COLLISION_DISTANCE_82542; 1883 else 1884 coll_dist = E1000_COLLISION_DISTANCE; 1885 1886 tctl = er32(TCTL); 1887 1888 tctl &= ~E1000_TCTL_COLD; 1889 tctl |= coll_dist << E1000_COLD_SHIFT; 1890 1891 ew32(TCTL, tctl); 1892 E1000_WRITE_FLUSH(); 1893 } 1894 1895 /** 1896 * e1000_config_mac_to_phy - sync phy and mac settings 1897 * @hw: Struct containing variables accessed by shared code 1898 * 1899 * Sets MAC speed and duplex settings to reflect the those in the PHY 1900 * The contents of the PHY register containing the needed information need to 1901 * be passed in. 1902 */ 1903 static s32 e1000_config_mac_to_phy(struct e1000_hw *hw) 1904 { 1905 u32 ctrl; 1906 s32 ret_val; 1907 u16 phy_data; 1908 1909 /* 82544 or newer MAC, Auto Speed Detection takes care of 1910 * MAC speed/duplex configuration. 1911 */ 1912 if ((hw->mac_type >= e1000_82544) && (hw->mac_type != e1000_ce4100)) 1913 return E1000_SUCCESS; 1914 1915 /* Read the Device Control Register and set the bits to Force Speed 1916 * and Duplex. 1917 */ 1918 ctrl = er32(CTRL); 1919 ctrl |= (E1000_CTRL_FRCSPD | E1000_CTRL_FRCDPX); 1920 ctrl &= ~(E1000_CTRL_SPD_SEL | E1000_CTRL_ILOS); 1921 1922 switch (hw->phy_type) { 1923 case e1000_phy_8201: 1924 ret_val = e1000_read_phy_reg(hw, PHY_CTRL, &phy_data); 1925 if (ret_val) 1926 return ret_val; 1927 1928 if (phy_data & RTL_PHY_CTRL_FD) 1929 ctrl |= E1000_CTRL_FD; 1930 else 1931 ctrl &= ~E1000_CTRL_FD; 1932 1933 if (phy_data & RTL_PHY_CTRL_SPD_100) 1934 ctrl |= E1000_CTRL_SPD_100; 1935 else 1936 ctrl |= E1000_CTRL_SPD_10; 1937 1938 e1000_config_collision_dist(hw); 1939 break; 1940 default: 1941 /* Set up duplex in the Device Control and Transmit Control 1942 * registers depending on negotiated values. 1943 */ 1944 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_STATUS, 1945 &phy_data); 1946 if (ret_val) 1947 return ret_val; 1948 1949 if (phy_data & M88E1000_PSSR_DPLX) 1950 ctrl |= E1000_CTRL_FD; 1951 else 1952 ctrl &= ~E1000_CTRL_FD; 1953 1954 e1000_config_collision_dist(hw); 1955 1956 /* Set up speed in the Device Control register depending on 1957 * negotiated values. 1958 */ 1959 if ((phy_data & M88E1000_PSSR_SPEED) == M88E1000_PSSR_1000MBS) 1960 ctrl |= E1000_CTRL_SPD_1000; 1961 else if ((phy_data & M88E1000_PSSR_SPEED) == 1962 M88E1000_PSSR_100MBS) 1963 ctrl |= E1000_CTRL_SPD_100; 1964 } 1965 1966 /* Write the configured values back to the Device Control Reg. */ 1967 ew32(CTRL, ctrl); 1968 return E1000_SUCCESS; 1969 } 1970 1971 /** 1972 * e1000_force_mac_fc - force flow control settings 1973 * @hw: Struct containing variables accessed by shared code 1974 * 1975 * Forces the MAC's flow control settings. 1976 * Sets the TFCE and RFCE bits in the device control register to reflect 1977 * the adapter settings. TFCE and RFCE need to be explicitly set by 1978 * software when a Copper PHY is used because autonegotiation is managed 1979 * by the PHY rather than the MAC. Software must also configure these 1980 * bits when link is forced on a fiber connection. 1981 */ 1982 s32 e1000_force_mac_fc(struct e1000_hw *hw) 1983 { 1984 u32 ctrl; 1985 1986 /* Get the current configuration of the Device Control Register */ 1987 ctrl = er32(CTRL); 1988 1989 /* Because we didn't get link via the internal auto-negotiation 1990 * mechanism (we either forced link or we got link via PHY 1991 * auto-neg), we have to manually enable/disable transmit an 1992 * receive flow control. 1993 * 1994 * The "Case" statement below enables/disable flow control 1995 * according to the "hw->fc" parameter. 1996 * 1997 * The possible values of the "fc" parameter are: 1998 * 0: Flow control is completely disabled 1999 * 1: Rx flow control is enabled (we can receive pause 2000 * frames but not send pause frames). 2001 * 2: Tx flow control is enabled (we can send pause frames 2002 * frames but we do not receive pause frames). 2003 * 3: Both Rx and TX flow control (symmetric) is enabled. 2004 * other: No other values should be possible at this point. 2005 */ 2006 2007 switch (hw->fc) { 2008 case E1000_FC_NONE: 2009 ctrl &= (~(E1000_CTRL_TFCE | E1000_CTRL_RFCE)); 2010 break; 2011 case E1000_FC_RX_PAUSE: 2012 ctrl &= (~E1000_CTRL_TFCE); 2013 ctrl |= E1000_CTRL_RFCE; 2014 break; 2015 case E1000_FC_TX_PAUSE: 2016 ctrl &= (~E1000_CTRL_RFCE); 2017 ctrl |= E1000_CTRL_TFCE; 2018 break; 2019 case E1000_FC_FULL: 2020 ctrl |= (E1000_CTRL_TFCE | E1000_CTRL_RFCE); 2021 break; 2022 default: 2023 e_dbg("Flow control param set incorrectly\n"); 2024 return -E1000_ERR_CONFIG; 2025 } 2026 2027 /* Disable TX Flow Control for 82542 (rev 2.0) */ 2028 if (hw->mac_type == e1000_82542_rev2_0) 2029 ctrl &= (~E1000_CTRL_TFCE); 2030 2031 ew32(CTRL, ctrl); 2032 return E1000_SUCCESS; 2033 } 2034 2035 /** 2036 * e1000_config_fc_after_link_up - configure flow control after autoneg 2037 * @hw: Struct containing variables accessed by shared code 2038 * 2039 * Configures flow control settings after link is established 2040 * Should be called immediately after a valid link has been established. 2041 * Forces MAC flow control settings if link was forced. When in MII/GMII mode 2042 * and autonegotiation is enabled, the MAC flow control settings will be set 2043 * based on the flow control negotiated by the PHY. In TBI mode, the TFCE 2044 * and RFCE bits will be automatically set to the negotiated flow control mode. 2045 */ 2046 static s32 e1000_config_fc_after_link_up(struct e1000_hw *hw) 2047 { 2048 s32 ret_val; 2049 u16 mii_status_reg; 2050 u16 mii_nway_adv_reg; 2051 u16 mii_nway_lp_ability_reg; 2052 u16 speed; 2053 u16 duplex; 2054 2055 /* Check for the case where we have fiber media and auto-neg failed 2056 * so we had to force link. In this case, we need to force the 2057 * configuration of the MAC to match the "fc" parameter. 2058 */ 2059 if (((hw->media_type == e1000_media_type_fiber) && 2060 (hw->autoneg_failed)) || 2061 ((hw->media_type == e1000_media_type_internal_serdes) && 2062 (hw->autoneg_failed)) || 2063 ((hw->media_type == e1000_media_type_copper) && 2064 (!hw->autoneg))) { 2065 ret_val = e1000_force_mac_fc(hw); 2066 if (ret_val) { 2067 e_dbg("Error forcing flow control settings\n"); 2068 return ret_val; 2069 } 2070 } 2071 2072 /* Check for the case where we have copper media and auto-neg is 2073 * enabled. In this case, we need to check and see if Auto-Neg 2074 * has completed, and if so, how the PHY and link partner has 2075 * flow control configured. 2076 */ 2077 if ((hw->media_type == e1000_media_type_copper) && hw->autoneg) { 2078 /* Read the MII Status Register and check to see if AutoNeg 2079 * has completed. We read this twice because this reg has 2080 * some "sticky" (latched) bits. 2081 */ 2082 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 2083 if (ret_val) 2084 return ret_val; 2085 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 2086 if (ret_val) 2087 return ret_val; 2088 2089 if (mii_status_reg & MII_SR_AUTONEG_COMPLETE) { 2090 /* The AutoNeg process has completed, so we now need to 2091 * read both the Auto Negotiation Advertisement Register 2092 * (Address 4) and the Auto_Negotiation Base Page 2093 * Ability Register (Address 5) to determine how flow 2094 * control was negotiated. 2095 */ 2096 ret_val = e1000_read_phy_reg(hw, PHY_AUTONEG_ADV, 2097 &mii_nway_adv_reg); 2098 if (ret_val) 2099 return ret_val; 2100 ret_val = e1000_read_phy_reg(hw, PHY_LP_ABILITY, 2101 &mii_nway_lp_ability_reg); 2102 if (ret_val) 2103 return ret_val; 2104 2105 /* Two bits in the Auto Negotiation Advertisement 2106 * Register (Address 4) and two bits in the Auto 2107 * Negotiation Base Page Ability Register (Address 5) 2108 * determine flow control for both the PHY and the link 2109 * partner. The following table, taken out of the IEEE 2110 * 802.3ab/D6.0 dated March 25, 1999, describes these 2111 * PAUSE resolution bits and how flow control is 2112 * determined based upon these settings. 2113 * NOTE: DC = Don't Care 2114 * 2115 * LOCAL DEVICE | LINK PARTNER 2116 * PAUSE | ASM_DIR | PAUSE | ASM_DIR | NIC Resolution 2117 *-------|---------|-------|---------|------------------ 2118 * 0 | 0 | DC | DC | E1000_FC_NONE 2119 * 0 | 1 | 0 | DC | E1000_FC_NONE 2120 * 0 | 1 | 1 | 0 | E1000_FC_NONE 2121 * 0 | 1 | 1 | 1 | E1000_FC_TX_PAUSE 2122 * 1 | 0 | 0 | DC | E1000_FC_NONE 2123 * 1 | DC | 1 | DC | E1000_FC_FULL 2124 * 1 | 1 | 0 | 0 | E1000_FC_NONE 2125 * 1 | 1 | 0 | 1 | E1000_FC_RX_PAUSE 2126 * 2127 */ 2128 /* Are both PAUSE bits set to 1? If so, this implies 2129 * Symmetric Flow Control is enabled at both ends. The 2130 * ASM_DIR bits are irrelevant per the spec. 2131 * 2132 * For Symmetric Flow Control: 2133 * 2134 * LOCAL DEVICE | LINK PARTNER 2135 * PAUSE | ASM_DIR | PAUSE | ASM_DIR | Result 2136 *-------|---------|-------|---------|------------------ 2137 * 1 | DC | 1 | DC | E1000_FC_FULL 2138 * 2139 */ 2140 if ((mii_nway_adv_reg & NWAY_AR_PAUSE) && 2141 (mii_nway_lp_ability_reg & NWAY_LPAR_PAUSE)) { 2142 /* Now we need to check if the user selected Rx 2143 * ONLY of pause frames. In this case, we had 2144 * to advertise FULL flow control because we 2145 * could not advertise Rx ONLY. Hence, we must 2146 * now check to see if we need to turn OFF the 2147 * TRANSMISSION of PAUSE frames. 2148 */ 2149 if (hw->original_fc == E1000_FC_FULL) { 2150 hw->fc = E1000_FC_FULL; 2151 e_dbg("Flow Control = FULL.\n"); 2152 } else { 2153 hw->fc = E1000_FC_RX_PAUSE; 2154 e_dbg 2155 ("Flow Control = RX PAUSE frames only.\n"); 2156 } 2157 } 2158 /* For receiving PAUSE frames ONLY. 2159 * 2160 * LOCAL DEVICE | LINK PARTNER 2161 * PAUSE | ASM_DIR | PAUSE | ASM_DIR | Result 2162 *-------|---------|-------|---------|------------------ 2163 * 0 | 1 | 1 | 1 | E1000_FC_TX_PAUSE 2164 * 2165 */ 2166 else if (!(mii_nway_adv_reg & NWAY_AR_PAUSE) && 2167 (mii_nway_adv_reg & NWAY_AR_ASM_DIR) && 2168 (mii_nway_lp_ability_reg & NWAY_LPAR_PAUSE) && 2169 (mii_nway_lp_ability_reg & NWAY_LPAR_ASM_DIR)) { 2170 hw->fc = E1000_FC_TX_PAUSE; 2171 e_dbg 2172 ("Flow Control = TX PAUSE frames only.\n"); 2173 } 2174 /* For transmitting PAUSE frames ONLY. 2175 * 2176 * LOCAL DEVICE | LINK PARTNER 2177 * PAUSE | ASM_DIR | PAUSE | ASM_DIR | Result 2178 *-------|---------|-------|---------|------------------ 2179 * 1 | 1 | 0 | 1 | E1000_FC_RX_PAUSE 2180 * 2181 */ 2182 else if ((mii_nway_adv_reg & NWAY_AR_PAUSE) && 2183 (mii_nway_adv_reg & NWAY_AR_ASM_DIR) && 2184 !(mii_nway_lp_ability_reg & NWAY_LPAR_PAUSE) && 2185 (mii_nway_lp_ability_reg & NWAY_LPAR_ASM_DIR)) { 2186 hw->fc = E1000_FC_RX_PAUSE; 2187 e_dbg 2188 ("Flow Control = RX PAUSE frames only.\n"); 2189 } 2190 /* Per the IEEE spec, at this point flow control should 2191 * be disabled. However, we want to consider that we 2192 * could be connected to a legacy switch that doesn't 2193 * advertise desired flow control, but can be forced on 2194 * the link partner. So if we advertised no flow 2195 * control, that is what we will resolve to. If we 2196 * advertised some kind of receive capability (Rx Pause 2197 * Only or Full Flow Control) and the link partner 2198 * advertised none, we will configure ourselves to 2199 * enable Rx Flow Control only. We can do this safely 2200 * for two reasons: If the link partner really 2201 * didn't want flow control enabled, and we enable Rx, 2202 * no harm done since we won't be receiving any PAUSE 2203 * frames anyway. If the intent on the link partner was 2204 * to have flow control enabled, then by us enabling Rx 2205 * only, we can at least receive pause frames and 2206 * process them. This is a good idea because in most 2207 * cases, since we are predominantly a server NIC, more 2208 * times than not we will be asked to delay transmission 2209 * of packets than asking our link partner to pause 2210 * transmission of frames. 2211 */ 2212 else if ((hw->original_fc == E1000_FC_NONE || 2213 hw->original_fc == E1000_FC_TX_PAUSE) || 2214 hw->fc_strict_ieee) { 2215 hw->fc = E1000_FC_NONE; 2216 e_dbg("Flow Control = NONE.\n"); 2217 } else { 2218 hw->fc = E1000_FC_RX_PAUSE; 2219 e_dbg 2220 ("Flow Control = RX PAUSE frames only.\n"); 2221 } 2222 2223 /* Now we need to do one last check... If we auto- 2224 * negotiated to HALF DUPLEX, flow control should not be 2225 * enabled per IEEE 802.3 spec. 2226 */ 2227 ret_val = 2228 e1000_get_speed_and_duplex(hw, &speed, &duplex); 2229 if (ret_val) { 2230 e_dbg 2231 ("Error getting link speed and duplex\n"); 2232 return ret_val; 2233 } 2234 2235 if (duplex == HALF_DUPLEX) 2236 hw->fc = E1000_FC_NONE; 2237 2238 /* Now we call a subroutine to actually force the MAC 2239 * controller to use the correct flow control settings. 2240 */ 2241 ret_val = e1000_force_mac_fc(hw); 2242 if (ret_val) { 2243 e_dbg 2244 ("Error forcing flow control settings\n"); 2245 return ret_val; 2246 } 2247 } else { 2248 e_dbg 2249 ("Copper PHY and Auto Neg has not completed.\n"); 2250 } 2251 } 2252 return E1000_SUCCESS; 2253 } 2254 2255 /** 2256 * e1000_check_for_serdes_link_generic - Check for link (Serdes) 2257 * @hw: pointer to the HW structure 2258 * 2259 * Checks for link up on the hardware. If link is not up and we have 2260 * a signal, then we need to force link up. 2261 */ 2262 static s32 e1000_check_for_serdes_link_generic(struct e1000_hw *hw) 2263 { 2264 u32 rxcw; 2265 u32 ctrl; 2266 u32 status; 2267 s32 ret_val = E1000_SUCCESS; 2268 2269 ctrl = er32(CTRL); 2270 status = er32(STATUS); 2271 rxcw = er32(RXCW); 2272 2273 /* If we don't have link (auto-negotiation failed or link partner 2274 * cannot auto-negotiate), and our link partner is not trying to 2275 * auto-negotiate with us (we are receiving idles or data), 2276 * we need to force link up. We also need to give auto-negotiation 2277 * time to complete. 2278 */ 2279 /* (ctrl & E1000_CTRL_SWDPIN1) == 1 == have signal */ 2280 if ((!(status & E1000_STATUS_LU)) && (!(rxcw & E1000_RXCW_C))) { 2281 if (hw->autoneg_failed == 0) { 2282 hw->autoneg_failed = 1; 2283 goto out; 2284 } 2285 e_dbg("NOT RXing /C/, disable AutoNeg and force link.\n"); 2286 2287 /* Disable auto-negotiation in the TXCW register */ 2288 ew32(TXCW, (hw->txcw & ~E1000_TXCW_ANE)); 2289 2290 /* Force link-up and also force full-duplex. */ 2291 ctrl = er32(CTRL); 2292 ctrl |= (E1000_CTRL_SLU | E1000_CTRL_FD); 2293 ew32(CTRL, ctrl); 2294 2295 /* Configure Flow Control after forcing link up. */ 2296 ret_val = e1000_config_fc_after_link_up(hw); 2297 if (ret_val) { 2298 e_dbg("Error configuring flow control\n"); 2299 goto out; 2300 } 2301 } else if ((ctrl & E1000_CTRL_SLU) && (rxcw & E1000_RXCW_C)) { 2302 /* If we are forcing link and we are receiving /C/ ordered 2303 * sets, re-enable auto-negotiation in the TXCW register 2304 * and disable forced link in the Device Control register 2305 * in an attempt to auto-negotiate with our link partner. 2306 */ 2307 e_dbg("RXing /C/, enable AutoNeg and stop forcing link.\n"); 2308 ew32(TXCW, hw->txcw); 2309 ew32(CTRL, (ctrl & ~E1000_CTRL_SLU)); 2310 2311 hw->serdes_has_link = true; 2312 } else if (!(E1000_TXCW_ANE & er32(TXCW))) { 2313 /* If we force link for non-auto-negotiation switch, check 2314 * link status based on MAC synchronization for internal 2315 * serdes media type. 2316 */ 2317 /* SYNCH bit and IV bit are sticky. */ 2318 udelay(10); 2319 rxcw = er32(RXCW); 2320 if (rxcw & E1000_RXCW_SYNCH) { 2321 if (!(rxcw & E1000_RXCW_IV)) { 2322 hw->serdes_has_link = true; 2323 e_dbg("SERDES: Link up - forced.\n"); 2324 } 2325 } else { 2326 hw->serdes_has_link = false; 2327 e_dbg("SERDES: Link down - force failed.\n"); 2328 } 2329 } 2330 2331 if (E1000_TXCW_ANE & er32(TXCW)) { 2332 status = er32(STATUS); 2333 if (status & E1000_STATUS_LU) { 2334 /* SYNCH bit and IV bit are sticky, so reread rxcw. */ 2335 udelay(10); 2336 rxcw = er32(RXCW); 2337 if (rxcw & E1000_RXCW_SYNCH) { 2338 if (!(rxcw & E1000_RXCW_IV)) { 2339 hw->serdes_has_link = true; 2340 e_dbg("SERDES: Link up - autoneg " 2341 "completed successfully.\n"); 2342 } else { 2343 hw->serdes_has_link = false; 2344 e_dbg("SERDES: Link down - invalid" 2345 "codewords detected in autoneg.\n"); 2346 } 2347 } else { 2348 hw->serdes_has_link = false; 2349 e_dbg("SERDES: Link down - no sync.\n"); 2350 } 2351 } else { 2352 hw->serdes_has_link = false; 2353 e_dbg("SERDES: Link down - autoneg failed\n"); 2354 } 2355 } 2356 2357 out: 2358 return ret_val; 2359 } 2360 2361 /** 2362 * e1000_check_for_link 2363 * @hw: Struct containing variables accessed by shared code 2364 * 2365 * Checks to see if the link status of the hardware has changed. 2366 * Called by any function that needs to check the link status of the adapter. 2367 */ 2368 s32 e1000_check_for_link(struct e1000_hw *hw) 2369 { 2370 u32 status; 2371 u32 rctl; 2372 u32 icr; 2373 s32 ret_val; 2374 u16 phy_data; 2375 2376 er32(CTRL); 2377 status = er32(STATUS); 2378 2379 /* On adapters with a MAC newer than 82544, SW Definable pin 1 will be 2380 * set when the optics detect a signal. On older adapters, it will be 2381 * cleared when there is a signal. This applies to fiber media only. 2382 */ 2383 if ((hw->media_type == e1000_media_type_fiber) || 2384 (hw->media_type == e1000_media_type_internal_serdes)) { 2385 er32(RXCW); 2386 2387 if (hw->media_type == e1000_media_type_fiber) { 2388 if (status & E1000_STATUS_LU) 2389 hw->get_link_status = false; 2390 } 2391 } 2392 2393 /* If we have a copper PHY then we only want to go out to the PHY 2394 * registers to see if Auto-Neg has completed and/or if our link 2395 * status has changed. The get_link_status flag will be set if we 2396 * receive a Link Status Change interrupt or we have Rx Sequence 2397 * Errors. 2398 */ 2399 if ((hw->media_type == e1000_media_type_copper) && hw->get_link_status) { 2400 /* First we want to see if the MII Status Register reports 2401 * link. If so, then we want to get the current speed/duplex 2402 * of the PHY. 2403 * Read the register twice since the link bit is sticky. 2404 */ 2405 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 2406 if (ret_val) 2407 return ret_val; 2408 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 2409 if (ret_val) 2410 return ret_val; 2411 2412 if (phy_data & MII_SR_LINK_STATUS) { 2413 hw->get_link_status = false; 2414 /* Check if there was DownShift, must be checked 2415 * immediately after link-up 2416 */ 2417 e1000_check_downshift(hw); 2418 2419 /* If we are on 82544 or 82543 silicon and speed/duplex 2420 * are forced to 10H or 10F, then we will implement the 2421 * polarity reversal workaround. We disable interrupts 2422 * first, and upon returning, place the devices 2423 * interrupt state to its previous value except for the 2424 * link status change interrupt which will 2425 * happen due to the execution of this workaround. 2426 */ 2427 2428 if ((hw->mac_type == e1000_82544 || 2429 hw->mac_type == e1000_82543) && 2430 (!hw->autoneg) && 2431 (hw->forced_speed_duplex == e1000_10_full || 2432 hw->forced_speed_duplex == e1000_10_half)) { 2433 ew32(IMC, 0xffffffff); 2434 ret_val = 2435 e1000_polarity_reversal_workaround(hw); 2436 icr = er32(ICR); 2437 ew32(ICS, (icr & ~E1000_ICS_LSC)); 2438 ew32(IMS, IMS_ENABLE_MASK); 2439 } 2440 2441 } else { 2442 /* No link detected */ 2443 e1000_config_dsp_after_link_change(hw, false); 2444 return 0; 2445 } 2446 2447 /* If we are forcing speed/duplex, then we simply return since 2448 * we have already determined whether we have link or not. 2449 */ 2450 if (!hw->autoneg) 2451 return -E1000_ERR_CONFIG; 2452 2453 /* optimize the dsp settings for the igp phy */ 2454 e1000_config_dsp_after_link_change(hw, true); 2455 2456 /* We have a M88E1000 PHY and Auto-Neg is enabled. If we 2457 * have Si on board that is 82544 or newer, Auto 2458 * Speed Detection takes care of MAC speed/duplex 2459 * configuration. So we only need to configure Collision 2460 * Distance in the MAC. Otherwise, we need to force 2461 * speed/duplex on the MAC to the current PHY speed/duplex 2462 * settings. 2463 */ 2464 if ((hw->mac_type >= e1000_82544) && 2465 (hw->mac_type != e1000_ce4100)) 2466 e1000_config_collision_dist(hw); 2467 else { 2468 ret_val = e1000_config_mac_to_phy(hw); 2469 if (ret_val) { 2470 e_dbg 2471 ("Error configuring MAC to PHY settings\n"); 2472 return ret_val; 2473 } 2474 } 2475 2476 /* Configure Flow Control now that Auto-Neg has completed. 2477 * First, we need to restore the desired flow control settings 2478 * because we may have had to re-autoneg with a different link 2479 * partner. 2480 */ 2481 ret_val = e1000_config_fc_after_link_up(hw); 2482 if (ret_val) { 2483 e_dbg("Error configuring flow control\n"); 2484 return ret_val; 2485 } 2486 2487 /* At this point we know that we are on copper and we have 2488 * auto-negotiated link. These are conditions for checking the 2489 * link partner capability register. We use the link speed to 2490 * determine if TBI compatibility needs to be turned on or off. 2491 * If the link is not at gigabit speed, then TBI compatibility 2492 * is not needed. If we are at gigabit speed, we turn on TBI 2493 * compatibility. 2494 */ 2495 if (hw->tbi_compatibility_en) { 2496 u16 speed, duplex; 2497 2498 ret_val = 2499 e1000_get_speed_and_duplex(hw, &speed, &duplex); 2500 2501 if (ret_val) { 2502 e_dbg 2503 ("Error getting link speed and duplex\n"); 2504 return ret_val; 2505 } 2506 if (speed != SPEED_1000) { 2507 /* If link speed is not set to gigabit speed, we 2508 * do not need to enable TBI compatibility. 2509 */ 2510 if (hw->tbi_compatibility_on) { 2511 /* If we previously were in the mode, 2512 * turn it off. 2513 */ 2514 rctl = er32(RCTL); 2515 rctl &= ~E1000_RCTL_SBP; 2516 ew32(RCTL, rctl); 2517 hw->tbi_compatibility_on = false; 2518 } 2519 } else { 2520 /* If TBI compatibility is was previously off, 2521 * turn it on. For compatibility with a TBI link 2522 * partner, we will store bad packets. Some 2523 * frames have an additional byte on the end and 2524 * will look like CRC errors to to the hardware. 2525 */ 2526 if (!hw->tbi_compatibility_on) { 2527 hw->tbi_compatibility_on = true; 2528 rctl = er32(RCTL); 2529 rctl |= E1000_RCTL_SBP; 2530 ew32(RCTL, rctl); 2531 } 2532 } 2533 } 2534 } 2535 2536 if ((hw->media_type == e1000_media_type_fiber) || 2537 (hw->media_type == e1000_media_type_internal_serdes)) 2538 e1000_check_for_serdes_link_generic(hw); 2539 2540 return E1000_SUCCESS; 2541 } 2542 2543 /** 2544 * e1000_get_speed_and_duplex 2545 * @hw: Struct containing variables accessed by shared code 2546 * @speed: Speed of the connection 2547 * @duplex: Duplex setting of the connection 2548 * 2549 * Detects the current speed and duplex settings of the hardware. 2550 */ 2551 s32 e1000_get_speed_and_duplex(struct e1000_hw *hw, u16 *speed, u16 *duplex) 2552 { 2553 u32 status; 2554 s32 ret_val; 2555 u16 phy_data; 2556 2557 if (hw->mac_type >= e1000_82543) { 2558 status = er32(STATUS); 2559 if (status & E1000_STATUS_SPEED_1000) { 2560 *speed = SPEED_1000; 2561 e_dbg("1000 Mbs, "); 2562 } else if (status & E1000_STATUS_SPEED_100) { 2563 *speed = SPEED_100; 2564 e_dbg("100 Mbs, "); 2565 } else { 2566 *speed = SPEED_10; 2567 e_dbg("10 Mbs, "); 2568 } 2569 2570 if (status & E1000_STATUS_FD) { 2571 *duplex = FULL_DUPLEX; 2572 e_dbg("Full Duplex\n"); 2573 } else { 2574 *duplex = HALF_DUPLEX; 2575 e_dbg(" Half Duplex\n"); 2576 } 2577 } else { 2578 e_dbg("1000 Mbs, Full Duplex\n"); 2579 *speed = SPEED_1000; 2580 *duplex = FULL_DUPLEX; 2581 } 2582 2583 /* IGP01 PHY may advertise full duplex operation after speed downgrade 2584 * even if it is operating at half duplex. Here we set the duplex 2585 * settings to match the duplex in the link partner's capabilities. 2586 */ 2587 if (hw->phy_type == e1000_phy_igp && hw->speed_downgraded) { 2588 ret_val = e1000_read_phy_reg(hw, PHY_AUTONEG_EXP, &phy_data); 2589 if (ret_val) 2590 return ret_val; 2591 2592 if (!(phy_data & NWAY_ER_LP_NWAY_CAPS)) 2593 *duplex = HALF_DUPLEX; 2594 else { 2595 ret_val = 2596 e1000_read_phy_reg(hw, PHY_LP_ABILITY, &phy_data); 2597 if (ret_val) 2598 return ret_val; 2599 if ((*speed == SPEED_100 && 2600 !(phy_data & NWAY_LPAR_100TX_FD_CAPS)) || 2601 (*speed == SPEED_10 && 2602 !(phy_data & NWAY_LPAR_10T_FD_CAPS))) 2603 *duplex = HALF_DUPLEX; 2604 } 2605 } 2606 2607 return E1000_SUCCESS; 2608 } 2609 2610 /** 2611 * e1000_wait_autoneg 2612 * @hw: Struct containing variables accessed by shared code 2613 * 2614 * Blocks until autoneg completes or times out (~4.5 seconds) 2615 */ 2616 static s32 e1000_wait_autoneg(struct e1000_hw *hw) 2617 { 2618 s32 ret_val; 2619 u16 i; 2620 u16 phy_data; 2621 2622 e_dbg("Waiting for Auto-Neg to complete.\n"); 2623 2624 /* We will wait for autoneg to complete or 4.5 seconds to expire. */ 2625 for (i = PHY_AUTO_NEG_TIME; i > 0; i--) { 2626 /* Read the MII Status Register and wait for Auto-Neg 2627 * Complete bit to be set. 2628 */ 2629 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 2630 if (ret_val) 2631 return ret_val; 2632 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 2633 if (ret_val) 2634 return ret_val; 2635 if (phy_data & MII_SR_AUTONEG_COMPLETE) 2636 return E1000_SUCCESS; 2637 2638 msleep(100); 2639 } 2640 return E1000_SUCCESS; 2641 } 2642 2643 /** 2644 * e1000_raise_mdi_clk - Raises the Management Data Clock 2645 * @hw: Struct containing variables accessed by shared code 2646 * @ctrl: Device control register's current value 2647 */ 2648 static void e1000_raise_mdi_clk(struct e1000_hw *hw, u32 *ctrl) 2649 { 2650 /* Raise the clock input to the Management Data Clock (by setting the 2651 * MDC bit), and then delay 10 microseconds. 2652 */ 2653 ew32(CTRL, (*ctrl | E1000_CTRL_MDC)); 2654 E1000_WRITE_FLUSH(); 2655 udelay(10); 2656 } 2657 2658 /** 2659 * e1000_lower_mdi_clk - Lowers the Management Data Clock 2660 * @hw: Struct containing variables accessed by shared code 2661 * @ctrl: Device control register's current value 2662 */ 2663 static void e1000_lower_mdi_clk(struct e1000_hw *hw, u32 *ctrl) 2664 { 2665 /* Lower the clock input to the Management Data Clock (by clearing the 2666 * MDC bit), and then delay 10 microseconds. 2667 */ 2668 ew32(CTRL, (*ctrl & ~E1000_CTRL_MDC)); 2669 E1000_WRITE_FLUSH(); 2670 udelay(10); 2671 } 2672 2673 /** 2674 * e1000_shift_out_mdi_bits - Shifts data bits out to the PHY 2675 * @hw: Struct containing variables accessed by shared code 2676 * @data: Data to send out to the PHY 2677 * @count: Number of bits to shift out 2678 * 2679 * Bits are shifted out in MSB to LSB order. 2680 */ 2681 static void e1000_shift_out_mdi_bits(struct e1000_hw *hw, u32 data, u16 count) 2682 { 2683 u32 ctrl; 2684 u32 mask; 2685 2686 /* We need to shift "count" number of bits out to the PHY. So, the value 2687 * in the "data" parameter will be shifted out to the PHY one bit at a 2688 * time. In order to do this, "data" must be broken down into bits. 2689 */ 2690 mask = 0x01; 2691 mask <<= (count - 1); 2692 2693 ctrl = er32(CTRL); 2694 2695 /* Set MDIO_DIR and MDC_DIR direction bits to be used as output pins. */ 2696 ctrl |= (E1000_CTRL_MDIO_DIR | E1000_CTRL_MDC_DIR); 2697 2698 while (mask) { 2699 /* A "1" is shifted out to the PHY by setting the MDIO bit to 2700 * "1" and then raising and lowering the Management Data Clock. 2701 * A "0" is shifted out to the PHY by setting the MDIO bit to 2702 * "0" and then raising and lowering the clock. 2703 */ 2704 if (data & mask) 2705 ctrl |= E1000_CTRL_MDIO; 2706 else 2707 ctrl &= ~E1000_CTRL_MDIO; 2708 2709 ew32(CTRL, ctrl); 2710 E1000_WRITE_FLUSH(); 2711 2712 udelay(10); 2713 2714 e1000_raise_mdi_clk(hw, &ctrl); 2715 e1000_lower_mdi_clk(hw, &ctrl); 2716 2717 mask = mask >> 1; 2718 } 2719 } 2720 2721 /** 2722 * e1000_shift_in_mdi_bits - Shifts data bits in from the PHY 2723 * @hw: Struct containing variables accessed by shared code 2724 * 2725 * Bits are shifted in in MSB to LSB order. 2726 */ 2727 static u16 e1000_shift_in_mdi_bits(struct e1000_hw *hw) 2728 { 2729 u32 ctrl; 2730 u16 data = 0; 2731 u8 i; 2732 2733 /* In order to read a register from the PHY, we need to shift in a total 2734 * of 18 bits from the PHY. The first two bit (turnaround) times are 2735 * used to avoid contention on the MDIO pin when a read operation is 2736 * performed. These two bits are ignored by us and thrown away. Bits are 2737 * "shifted in" by raising the input to the Management Data Clock 2738 * (setting the MDC bit), and then reading the value of the MDIO bit. 2739 */ 2740 ctrl = er32(CTRL); 2741 2742 /* Clear MDIO_DIR (SWDPIO1) to indicate this bit is to be used as 2743 * input. 2744 */ 2745 ctrl &= ~E1000_CTRL_MDIO_DIR; 2746 ctrl &= ~E1000_CTRL_MDIO; 2747 2748 ew32(CTRL, ctrl); 2749 E1000_WRITE_FLUSH(); 2750 2751 /* Raise and Lower the clock before reading in the data. This accounts 2752 * for the turnaround bits. The first clock occurred when we clocked out 2753 * the last bit of the Register Address. 2754 */ 2755 e1000_raise_mdi_clk(hw, &ctrl); 2756 e1000_lower_mdi_clk(hw, &ctrl); 2757 2758 for (data = 0, i = 0; i < 16; i++) { 2759 data = data << 1; 2760 e1000_raise_mdi_clk(hw, &ctrl); 2761 ctrl = er32(CTRL); 2762 /* Check to see if we shifted in a "1". */ 2763 if (ctrl & E1000_CTRL_MDIO) 2764 data |= 1; 2765 e1000_lower_mdi_clk(hw, &ctrl); 2766 } 2767 2768 e1000_raise_mdi_clk(hw, &ctrl); 2769 e1000_lower_mdi_clk(hw, &ctrl); 2770 2771 return data; 2772 } 2773 2774 /** 2775 * e1000_read_phy_reg - read a phy register 2776 * @hw: Struct containing variables accessed by shared code 2777 * @reg_addr: address of the PHY register to read 2778 * @phy_data: pointer to the value on the PHY register 2779 * 2780 * Reads the value from a PHY register, if the value is on a specific non zero 2781 * page, sets the page first. 2782 */ 2783 s32 e1000_read_phy_reg(struct e1000_hw *hw, u32 reg_addr, u16 *phy_data) 2784 { 2785 u32 ret_val; 2786 unsigned long flags; 2787 2788 spin_lock_irqsave(&e1000_phy_lock, flags); 2789 2790 if ((hw->phy_type == e1000_phy_igp) && 2791 (reg_addr > MAX_PHY_MULTI_PAGE_REG)) { 2792 ret_val = e1000_write_phy_reg_ex(hw, IGP01E1000_PHY_PAGE_SELECT, 2793 (u16) reg_addr); 2794 if (ret_val) 2795 goto out; 2796 } 2797 2798 ret_val = e1000_read_phy_reg_ex(hw, MAX_PHY_REG_ADDRESS & reg_addr, 2799 phy_data); 2800 out: 2801 spin_unlock_irqrestore(&e1000_phy_lock, flags); 2802 2803 return ret_val; 2804 } 2805 2806 static s32 e1000_read_phy_reg_ex(struct e1000_hw *hw, u32 reg_addr, 2807 u16 *phy_data) 2808 { 2809 u32 i; 2810 u32 mdic = 0; 2811 const u32 phy_addr = (hw->mac_type == e1000_ce4100) ? hw->phy_addr : 1; 2812 2813 if (reg_addr > MAX_PHY_REG_ADDRESS) { 2814 e_dbg("PHY Address %d is out of range\n", reg_addr); 2815 return -E1000_ERR_PARAM; 2816 } 2817 2818 if (hw->mac_type > e1000_82543) { 2819 /* Set up Op-code, Phy Address, and register address in the MDI 2820 * Control register. The MAC will take care of interfacing with 2821 * the PHY to retrieve the desired data. 2822 */ 2823 if (hw->mac_type == e1000_ce4100) { 2824 mdic = ((reg_addr << E1000_MDIC_REG_SHIFT) | 2825 (phy_addr << E1000_MDIC_PHY_SHIFT) | 2826 (INTEL_CE_GBE_MDIC_OP_READ) | 2827 (INTEL_CE_GBE_MDIC_GO)); 2828 2829 writel(mdic, E1000_MDIO_CMD); 2830 2831 /* Poll the ready bit to see if the MDI read 2832 * completed 2833 */ 2834 for (i = 0; i < 64; i++) { 2835 udelay(50); 2836 mdic = readl(E1000_MDIO_CMD); 2837 if (!(mdic & INTEL_CE_GBE_MDIC_GO)) 2838 break; 2839 } 2840 2841 if (mdic & INTEL_CE_GBE_MDIC_GO) { 2842 e_dbg("MDI Read did not complete\n"); 2843 return -E1000_ERR_PHY; 2844 } 2845 2846 mdic = readl(E1000_MDIO_STS); 2847 if (mdic & INTEL_CE_GBE_MDIC_READ_ERROR) { 2848 e_dbg("MDI Read Error\n"); 2849 return -E1000_ERR_PHY; 2850 } 2851 *phy_data = (u16)mdic; 2852 } else { 2853 mdic = ((reg_addr << E1000_MDIC_REG_SHIFT) | 2854 (phy_addr << E1000_MDIC_PHY_SHIFT) | 2855 (E1000_MDIC_OP_READ)); 2856 2857 ew32(MDIC, mdic); 2858 2859 /* Poll the ready bit to see if the MDI read 2860 * completed 2861 */ 2862 for (i = 0; i < 64; i++) { 2863 udelay(50); 2864 mdic = er32(MDIC); 2865 if (mdic & E1000_MDIC_READY) 2866 break; 2867 } 2868 if (!(mdic & E1000_MDIC_READY)) { 2869 e_dbg("MDI Read did not complete\n"); 2870 return -E1000_ERR_PHY; 2871 } 2872 if (mdic & E1000_MDIC_ERROR) { 2873 e_dbg("MDI Error\n"); 2874 return -E1000_ERR_PHY; 2875 } 2876 *phy_data = (u16)mdic; 2877 } 2878 } else { 2879 /* We must first send a preamble through the MDIO pin to signal 2880 * the beginning of an MII instruction. This is done by sending 2881 * 32 consecutive "1" bits. 2882 */ 2883 e1000_shift_out_mdi_bits(hw, PHY_PREAMBLE, PHY_PREAMBLE_SIZE); 2884 2885 /* Now combine the next few fields that are required for a read 2886 * operation. We use this method instead of calling the 2887 * e1000_shift_out_mdi_bits routine five different times. The 2888 * format of a MII read instruction consists of a shift out of 2889 * 14 bits and is defined as follows: 2890 * <Preamble><SOF><Op Code><Phy Addr><Reg Addr> 2891 * followed by a shift in of 18 bits. This first two bits 2892 * shifted in are TurnAround bits used to avoid contention on 2893 * the MDIO pin when a READ operation is performed. These two 2894 * bits are thrown away followed by a shift in of 16 bits which 2895 * contains the desired data. 2896 */ 2897 mdic = ((reg_addr) | (phy_addr << 5) | 2898 (PHY_OP_READ << 10) | (PHY_SOF << 12)); 2899 2900 e1000_shift_out_mdi_bits(hw, mdic, 14); 2901 2902 /* Now that we've shifted out the read command to the MII, we 2903 * need to "shift in" the 16-bit value (18 total bits) of the 2904 * requested PHY register address. 2905 */ 2906 *phy_data = e1000_shift_in_mdi_bits(hw); 2907 } 2908 return E1000_SUCCESS; 2909 } 2910 2911 /** 2912 * e1000_write_phy_reg - write a phy register 2913 * 2914 * @hw: Struct containing variables accessed by shared code 2915 * @reg_addr: address of the PHY register to write 2916 * @phy_data: data to write to the PHY 2917 * 2918 * Writes a value to a PHY register 2919 */ 2920 s32 e1000_write_phy_reg(struct e1000_hw *hw, u32 reg_addr, u16 phy_data) 2921 { 2922 u32 ret_val; 2923 unsigned long flags; 2924 2925 spin_lock_irqsave(&e1000_phy_lock, flags); 2926 2927 if ((hw->phy_type == e1000_phy_igp) && 2928 (reg_addr > MAX_PHY_MULTI_PAGE_REG)) { 2929 ret_val = e1000_write_phy_reg_ex(hw, IGP01E1000_PHY_PAGE_SELECT, 2930 (u16)reg_addr); 2931 if (ret_val) { 2932 spin_unlock_irqrestore(&e1000_phy_lock, flags); 2933 return ret_val; 2934 } 2935 } 2936 2937 ret_val = e1000_write_phy_reg_ex(hw, MAX_PHY_REG_ADDRESS & reg_addr, 2938 phy_data); 2939 spin_unlock_irqrestore(&e1000_phy_lock, flags); 2940 2941 return ret_val; 2942 } 2943 2944 static s32 e1000_write_phy_reg_ex(struct e1000_hw *hw, u32 reg_addr, 2945 u16 phy_data) 2946 { 2947 u32 i; 2948 u32 mdic = 0; 2949 const u32 phy_addr = (hw->mac_type == e1000_ce4100) ? hw->phy_addr : 1; 2950 2951 if (reg_addr > MAX_PHY_REG_ADDRESS) { 2952 e_dbg("PHY Address %d is out of range\n", reg_addr); 2953 return -E1000_ERR_PARAM; 2954 } 2955 2956 if (hw->mac_type > e1000_82543) { 2957 /* Set up Op-code, Phy Address, register address, and data 2958 * intended for the PHY register in the MDI Control register. 2959 * The MAC will take care of interfacing with the PHY to send 2960 * the desired data. 2961 */ 2962 if (hw->mac_type == e1000_ce4100) { 2963 mdic = (((u32)phy_data) | 2964 (reg_addr << E1000_MDIC_REG_SHIFT) | 2965 (phy_addr << E1000_MDIC_PHY_SHIFT) | 2966 (INTEL_CE_GBE_MDIC_OP_WRITE) | 2967 (INTEL_CE_GBE_MDIC_GO)); 2968 2969 writel(mdic, E1000_MDIO_CMD); 2970 2971 /* Poll the ready bit to see if the MDI read 2972 * completed 2973 */ 2974 for (i = 0; i < 640; i++) { 2975 udelay(5); 2976 mdic = readl(E1000_MDIO_CMD); 2977 if (!(mdic & INTEL_CE_GBE_MDIC_GO)) 2978 break; 2979 } 2980 if (mdic & INTEL_CE_GBE_MDIC_GO) { 2981 e_dbg("MDI Write did not complete\n"); 2982 return -E1000_ERR_PHY; 2983 } 2984 } else { 2985 mdic = (((u32)phy_data) | 2986 (reg_addr << E1000_MDIC_REG_SHIFT) | 2987 (phy_addr << E1000_MDIC_PHY_SHIFT) | 2988 (E1000_MDIC_OP_WRITE)); 2989 2990 ew32(MDIC, mdic); 2991 2992 /* Poll the ready bit to see if the MDI read 2993 * completed 2994 */ 2995 for (i = 0; i < 641; i++) { 2996 udelay(5); 2997 mdic = er32(MDIC); 2998 if (mdic & E1000_MDIC_READY) 2999 break; 3000 } 3001 if (!(mdic & E1000_MDIC_READY)) { 3002 e_dbg("MDI Write did not complete\n"); 3003 return -E1000_ERR_PHY; 3004 } 3005 } 3006 } else { 3007 /* We'll need to use the SW defined pins to shift the write 3008 * command out to the PHY. We first send a preamble to the PHY 3009 * to signal the beginning of the MII instruction. This is done 3010 * by sending 32 consecutive "1" bits. 3011 */ 3012 e1000_shift_out_mdi_bits(hw, PHY_PREAMBLE, PHY_PREAMBLE_SIZE); 3013 3014 /* Now combine the remaining required fields that will indicate 3015 * a write operation. We use this method instead of calling the 3016 * e1000_shift_out_mdi_bits routine for each field in the 3017 * command. The format of a MII write instruction is as follows: 3018 * <Preamble><SOF><OpCode><PhyAddr><RegAddr><Turnaround><Data>. 3019 */ 3020 mdic = ((PHY_TURNAROUND) | (reg_addr << 2) | (phy_addr << 7) | 3021 (PHY_OP_WRITE << 12) | (PHY_SOF << 14)); 3022 mdic <<= 16; 3023 mdic |= (u32)phy_data; 3024 3025 e1000_shift_out_mdi_bits(hw, mdic, 32); 3026 } 3027 3028 return E1000_SUCCESS; 3029 } 3030 3031 /** 3032 * e1000_phy_hw_reset - reset the phy, hardware style 3033 * @hw: Struct containing variables accessed by shared code 3034 * 3035 * Returns the PHY to the power-on reset state 3036 */ 3037 s32 e1000_phy_hw_reset(struct e1000_hw *hw) 3038 { 3039 u32 ctrl, ctrl_ext; 3040 u32 led_ctrl; 3041 3042 e_dbg("Resetting Phy...\n"); 3043 3044 if (hw->mac_type > e1000_82543) { 3045 /* Read the device control register and assert the 3046 * E1000_CTRL_PHY_RST bit. Then, take it out of reset. 3047 * For e1000 hardware, we delay for 10ms between the assert 3048 * and de-assert. 3049 */ 3050 ctrl = er32(CTRL); 3051 ew32(CTRL, ctrl | E1000_CTRL_PHY_RST); 3052 E1000_WRITE_FLUSH(); 3053 3054 msleep(10); 3055 3056 ew32(CTRL, ctrl); 3057 E1000_WRITE_FLUSH(); 3058 3059 } else { 3060 /* Read the Extended Device Control Register, assert the 3061 * PHY_RESET_DIR bit to put the PHY into reset. Then, take it 3062 * out of reset. 3063 */ 3064 ctrl_ext = er32(CTRL_EXT); 3065 ctrl_ext |= E1000_CTRL_EXT_SDP4_DIR; 3066 ctrl_ext &= ~E1000_CTRL_EXT_SDP4_DATA; 3067 ew32(CTRL_EXT, ctrl_ext); 3068 E1000_WRITE_FLUSH(); 3069 msleep(10); 3070 ctrl_ext |= E1000_CTRL_EXT_SDP4_DATA; 3071 ew32(CTRL_EXT, ctrl_ext); 3072 E1000_WRITE_FLUSH(); 3073 } 3074 udelay(150); 3075 3076 if ((hw->mac_type == e1000_82541) || (hw->mac_type == e1000_82547)) { 3077 /* Configure activity LED after PHY reset */ 3078 led_ctrl = er32(LEDCTL); 3079 led_ctrl &= IGP_ACTIVITY_LED_MASK; 3080 led_ctrl |= (IGP_ACTIVITY_LED_ENABLE | IGP_LED3_MODE); 3081 ew32(LEDCTL, led_ctrl); 3082 } 3083 3084 /* Wait for FW to finish PHY configuration. */ 3085 return e1000_get_phy_cfg_done(hw); 3086 } 3087 3088 /** 3089 * e1000_phy_reset - reset the phy to commit settings 3090 * @hw: Struct containing variables accessed by shared code 3091 * 3092 * Resets the PHY 3093 * Sets bit 15 of the MII Control register 3094 */ 3095 s32 e1000_phy_reset(struct e1000_hw *hw) 3096 { 3097 s32 ret_val; 3098 u16 phy_data; 3099 3100 switch (hw->phy_type) { 3101 case e1000_phy_igp: 3102 ret_val = e1000_phy_hw_reset(hw); 3103 if (ret_val) 3104 return ret_val; 3105 break; 3106 default: 3107 ret_val = e1000_read_phy_reg(hw, PHY_CTRL, &phy_data); 3108 if (ret_val) 3109 return ret_val; 3110 3111 phy_data |= MII_CR_RESET; 3112 ret_val = e1000_write_phy_reg(hw, PHY_CTRL, phy_data); 3113 if (ret_val) 3114 return ret_val; 3115 3116 udelay(1); 3117 break; 3118 } 3119 3120 if (hw->phy_type == e1000_phy_igp) 3121 e1000_phy_init_script(hw); 3122 3123 return E1000_SUCCESS; 3124 } 3125 3126 /** 3127 * e1000_detect_gig_phy - check the phy type 3128 * @hw: Struct containing variables accessed by shared code 3129 * 3130 * Probes the expected PHY address for known PHY IDs 3131 */ 3132 static s32 e1000_detect_gig_phy(struct e1000_hw *hw) 3133 { 3134 s32 phy_init_status, ret_val; 3135 u16 phy_id_high, phy_id_low; 3136 bool match = false; 3137 3138 if (hw->phy_id != 0) 3139 return E1000_SUCCESS; 3140 3141 /* Read the PHY ID Registers to identify which PHY is onboard. */ 3142 ret_val = e1000_read_phy_reg(hw, PHY_ID1, &phy_id_high); 3143 if (ret_val) 3144 return ret_val; 3145 3146 hw->phy_id = (u32)(phy_id_high << 16); 3147 udelay(20); 3148 ret_val = e1000_read_phy_reg(hw, PHY_ID2, &phy_id_low); 3149 if (ret_val) 3150 return ret_val; 3151 3152 hw->phy_id |= (u32)(phy_id_low & PHY_REVISION_MASK); 3153 hw->phy_revision = (u32)phy_id_low & ~PHY_REVISION_MASK; 3154 3155 switch (hw->mac_type) { 3156 case e1000_82543: 3157 if (hw->phy_id == M88E1000_E_PHY_ID) 3158 match = true; 3159 break; 3160 case e1000_82544: 3161 if (hw->phy_id == M88E1000_I_PHY_ID) 3162 match = true; 3163 break; 3164 case e1000_82540: 3165 case e1000_82545: 3166 case e1000_82545_rev_3: 3167 case e1000_82546: 3168 case e1000_82546_rev_3: 3169 if (hw->phy_id == M88E1011_I_PHY_ID) 3170 match = true; 3171 break; 3172 case e1000_ce4100: 3173 if ((hw->phy_id == RTL8211B_PHY_ID) || 3174 (hw->phy_id == RTL8201N_PHY_ID) || 3175 (hw->phy_id == M88E1118_E_PHY_ID)) 3176 match = true; 3177 break; 3178 case e1000_82541: 3179 case e1000_82541_rev_2: 3180 case e1000_82547: 3181 case e1000_82547_rev_2: 3182 if (hw->phy_id == IGP01E1000_I_PHY_ID) 3183 match = true; 3184 break; 3185 default: 3186 e_dbg("Invalid MAC type %d\n", hw->mac_type); 3187 return -E1000_ERR_CONFIG; 3188 } 3189 phy_init_status = e1000_set_phy_type(hw); 3190 3191 if ((match) && (phy_init_status == E1000_SUCCESS)) { 3192 e_dbg("PHY ID 0x%X detected\n", hw->phy_id); 3193 return E1000_SUCCESS; 3194 } 3195 e_dbg("Invalid PHY ID 0x%X\n", hw->phy_id); 3196 return -E1000_ERR_PHY; 3197 } 3198 3199 /** 3200 * e1000_phy_reset_dsp - reset DSP 3201 * @hw: Struct containing variables accessed by shared code 3202 * 3203 * Resets the PHY's DSP 3204 */ 3205 static s32 e1000_phy_reset_dsp(struct e1000_hw *hw) 3206 { 3207 s32 ret_val; 3208 3209 do { 3210 ret_val = e1000_write_phy_reg(hw, 29, 0x001d); 3211 if (ret_val) 3212 break; 3213 ret_val = e1000_write_phy_reg(hw, 30, 0x00c1); 3214 if (ret_val) 3215 break; 3216 ret_val = e1000_write_phy_reg(hw, 30, 0x0000); 3217 if (ret_val) 3218 break; 3219 ret_val = E1000_SUCCESS; 3220 } while (0); 3221 3222 return ret_val; 3223 } 3224 3225 /** 3226 * e1000_phy_igp_get_info - get igp specific registers 3227 * @hw: Struct containing variables accessed by shared code 3228 * @phy_info: PHY information structure 3229 * 3230 * Get PHY information from various PHY registers for igp PHY only. 3231 */ 3232 static s32 e1000_phy_igp_get_info(struct e1000_hw *hw, 3233 struct e1000_phy_info *phy_info) 3234 { 3235 s32 ret_val; 3236 u16 phy_data, min_length, max_length, average; 3237 e1000_rev_polarity polarity; 3238 3239 /* The downshift status is checked only once, after link is established, 3240 * and it stored in the hw->speed_downgraded parameter. 3241 */ 3242 phy_info->downshift = (e1000_downshift) hw->speed_downgraded; 3243 3244 /* IGP01E1000 does not need to support it. */ 3245 phy_info->extended_10bt_distance = e1000_10bt_ext_dist_enable_normal; 3246 3247 /* IGP01E1000 always correct polarity reversal */ 3248 phy_info->polarity_correction = e1000_polarity_reversal_enabled; 3249 3250 /* Check polarity status */ 3251 ret_val = e1000_check_polarity(hw, &polarity); 3252 if (ret_val) 3253 return ret_val; 3254 3255 phy_info->cable_polarity = polarity; 3256 3257 ret_val = e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_STATUS, &phy_data); 3258 if (ret_val) 3259 return ret_val; 3260 3261 phy_info->mdix_mode = 3262 (e1000_auto_x_mode) ((phy_data & IGP01E1000_PSSR_MDIX) >> 3263 IGP01E1000_PSSR_MDIX_SHIFT); 3264 3265 if ((phy_data & IGP01E1000_PSSR_SPEED_MASK) == 3266 IGP01E1000_PSSR_SPEED_1000MBPS) { 3267 /* Local/Remote Receiver Information are only valid @ 1000 3268 * Mbps 3269 */ 3270 ret_val = e1000_read_phy_reg(hw, PHY_1000T_STATUS, &phy_data); 3271 if (ret_val) 3272 return ret_val; 3273 3274 phy_info->local_rx = ((phy_data & SR_1000T_LOCAL_RX_STATUS) >> 3275 SR_1000T_LOCAL_RX_STATUS_SHIFT) ? 3276 e1000_1000t_rx_status_ok : e1000_1000t_rx_status_not_ok; 3277 phy_info->remote_rx = ((phy_data & SR_1000T_REMOTE_RX_STATUS) >> 3278 SR_1000T_REMOTE_RX_STATUS_SHIFT) ? 3279 e1000_1000t_rx_status_ok : e1000_1000t_rx_status_not_ok; 3280 3281 /* Get cable length */ 3282 ret_val = e1000_get_cable_length(hw, &min_length, &max_length); 3283 if (ret_val) 3284 return ret_val; 3285 3286 /* Translate to old method */ 3287 average = (max_length + min_length) / 2; 3288 3289 if (average <= e1000_igp_cable_length_50) 3290 phy_info->cable_length = e1000_cable_length_50; 3291 else if (average <= e1000_igp_cable_length_80) 3292 phy_info->cable_length = e1000_cable_length_50_80; 3293 else if (average <= e1000_igp_cable_length_110) 3294 phy_info->cable_length = e1000_cable_length_80_110; 3295 else if (average <= e1000_igp_cable_length_140) 3296 phy_info->cable_length = e1000_cable_length_110_140; 3297 else 3298 phy_info->cable_length = e1000_cable_length_140; 3299 } 3300 3301 return E1000_SUCCESS; 3302 } 3303 3304 /** 3305 * e1000_phy_m88_get_info - get m88 specific registers 3306 * @hw: Struct containing variables accessed by shared code 3307 * @phy_info: PHY information structure 3308 * 3309 * Get PHY information from various PHY registers for m88 PHY only. 3310 */ 3311 static s32 e1000_phy_m88_get_info(struct e1000_hw *hw, 3312 struct e1000_phy_info *phy_info) 3313 { 3314 s32 ret_val; 3315 u16 phy_data; 3316 e1000_rev_polarity polarity; 3317 3318 /* The downshift status is checked only once, after link is established, 3319 * and it stored in the hw->speed_downgraded parameter. 3320 */ 3321 phy_info->downshift = (e1000_downshift) hw->speed_downgraded; 3322 3323 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_CTRL, &phy_data); 3324 if (ret_val) 3325 return ret_val; 3326 3327 phy_info->extended_10bt_distance = 3328 ((phy_data & M88E1000_PSCR_10BT_EXT_DIST_ENABLE) >> 3329 M88E1000_PSCR_10BT_EXT_DIST_ENABLE_SHIFT) ? 3330 e1000_10bt_ext_dist_enable_lower : 3331 e1000_10bt_ext_dist_enable_normal; 3332 3333 phy_info->polarity_correction = 3334 ((phy_data & M88E1000_PSCR_POLARITY_REVERSAL) >> 3335 M88E1000_PSCR_POLARITY_REVERSAL_SHIFT) ? 3336 e1000_polarity_reversal_disabled : e1000_polarity_reversal_enabled; 3337 3338 /* Check polarity status */ 3339 ret_val = e1000_check_polarity(hw, &polarity); 3340 if (ret_val) 3341 return ret_val; 3342 phy_info->cable_polarity = polarity; 3343 3344 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_STATUS, &phy_data); 3345 if (ret_val) 3346 return ret_val; 3347 3348 phy_info->mdix_mode = 3349 (e1000_auto_x_mode) ((phy_data & M88E1000_PSSR_MDIX) >> 3350 M88E1000_PSSR_MDIX_SHIFT); 3351 3352 if ((phy_data & M88E1000_PSSR_SPEED) == M88E1000_PSSR_1000MBS) { 3353 /* Cable Length Estimation and Local/Remote Receiver Information 3354 * are only valid at 1000 Mbps. 3355 */ 3356 phy_info->cable_length = 3357 (e1000_cable_length) ((phy_data & 3358 M88E1000_PSSR_CABLE_LENGTH) >> 3359 M88E1000_PSSR_CABLE_LENGTH_SHIFT); 3360 3361 ret_val = e1000_read_phy_reg(hw, PHY_1000T_STATUS, &phy_data); 3362 if (ret_val) 3363 return ret_val; 3364 3365 phy_info->local_rx = ((phy_data & SR_1000T_LOCAL_RX_STATUS) >> 3366 SR_1000T_LOCAL_RX_STATUS_SHIFT) ? 3367 e1000_1000t_rx_status_ok : e1000_1000t_rx_status_not_ok; 3368 phy_info->remote_rx = ((phy_data & SR_1000T_REMOTE_RX_STATUS) >> 3369 SR_1000T_REMOTE_RX_STATUS_SHIFT) ? 3370 e1000_1000t_rx_status_ok : e1000_1000t_rx_status_not_ok; 3371 } 3372 3373 return E1000_SUCCESS; 3374 } 3375 3376 /** 3377 * e1000_phy_get_info - request phy info 3378 * @hw: Struct containing variables accessed by shared code 3379 * @phy_info: PHY information structure 3380 * 3381 * Get PHY information from various PHY registers 3382 */ 3383 s32 e1000_phy_get_info(struct e1000_hw *hw, struct e1000_phy_info *phy_info) 3384 { 3385 s32 ret_val; 3386 u16 phy_data; 3387 3388 phy_info->cable_length = e1000_cable_length_undefined; 3389 phy_info->extended_10bt_distance = e1000_10bt_ext_dist_enable_undefined; 3390 phy_info->cable_polarity = e1000_rev_polarity_undefined; 3391 phy_info->downshift = e1000_downshift_undefined; 3392 phy_info->polarity_correction = e1000_polarity_reversal_undefined; 3393 phy_info->mdix_mode = e1000_auto_x_mode_undefined; 3394 phy_info->local_rx = e1000_1000t_rx_status_undefined; 3395 phy_info->remote_rx = e1000_1000t_rx_status_undefined; 3396 3397 if (hw->media_type != e1000_media_type_copper) { 3398 e_dbg("PHY info is only valid for copper media\n"); 3399 return -E1000_ERR_CONFIG; 3400 } 3401 3402 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 3403 if (ret_val) 3404 return ret_val; 3405 3406 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &phy_data); 3407 if (ret_val) 3408 return ret_val; 3409 3410 if ((phy_data & MII_SR_LINK_STATUS) != MII_SR_LINK_STATUS) { 3411 e_dbg("PHY info is only valid if link is up\n"); 3412 return -E1000_ERR_CONFIG; 3413 } 3414 3415 if (hw->phy_type == e1000_phy_igp) 3416 return e1000_phy_igp_get_info(hw, phy_info); 3417 else if ((hw->phy_type == e1000_phy_8211) || 3418 (hw->phy_type == e1000_phy_8201)) 3419 return E1000_SUCCESS; 3420 else 3421 return e1000_phy_m88_get_info(hw, phy_info); 3422 } 3423 3424 s32 e1000_validate_mdi_setting(struct e1000_hw *hw) 3425 { 3426 if (!hw->autoneg && (hw->mdix == 0 || hw->mdix == 3)) { 3427 e_dbg("Invalid MDI setting detected\n"); 3428 hw->mdix = 1; 3429 return -E1000_ERR_CONFIG; 3430 } 3431 return E1000_SUCCESS; 3432 } 3433 3434 /** 3435 * e1000_init_eeprom_params - initialize sw eeprom vars 3436 * @hw: Struct containing variables accessed by shared code 3437 * 3438 * Sets up eeprom variables in the hw struct. Must be called after mac_type 3439 * is configured. 3440 */ 3441 s32 e1000_init_eeprom_params(struct e1000_hw *hw) 3442 { 3443 struct e1000_eeprom_info *eeprom = &hw->eeprom; 3444 u32 eecd = er32(EECD); 3445 s32 ret_val = E1000_SUCCESS; 3446 u16 eeprom_size; 3447 3448 switch (hw->mac_type) { 3449 case e1000_82542_rev2_0: 3450 case e1000_82542_rev2_1: 3451 case e1000_82543: 3452 case e1000_82544: 3453 eeprom->type = e1000_eeprom_microwire; 3454 eeprom->word_size = 64; 3455 eeprom->opcode_bits = 3; 3456 eeprom->address_bits = 6; 3457 eeprom->delay_usec = 50; 3458 break; 3459 case e1000_82540: 3460 case e1000_82545: 3461 case e1000_82545_rev_3: 3462 case e1000_82546: 3463 case e1000_82546_rev_3: 3464 eeprom->type = e1000_eeprom_microwire; 3465 eeprom->opcode_bits = 3; 3466 eeprom->delay_usec = 50; 3467 if (eecd & E1000_EECD_SIZE) { 3468 eeprom->word_size = 256; 3469 eeprom->address_bits = 8; 3470 } else { 3471 eeprom->word_size = 64; 3472 eeprom->address_bits = 6; 3473 } 3474 break; 3475 case e1000_82541: 3476 case e1000_82541_rev_2: 3477 case e1000_82547: 3478 case e1000_82547_rev_2: 3479 if (eecd & E1000_EECD_TYPE) { 3480 eeprom->type = e1000_eeprom_spi; 3481 eeprom->opcode_bits = 8; 3482 eeprom->delay_usec = 1; 3483 if (eecd & E1000_EECD_ADDR_BITS) { 3484 eeprom->page_size = 32; 3485 eeprom->address_bits = 16; 3486 } else { 3487 eeprom->page_size = 8; 3488 eeprom->address_bits = 8; 3489 } 3490 } else { 3491 eeprom->type = e1000_eeprom_microwire; 3492 eeprom->opcode_bits = 3; 3493 eeprom->delay_usec = 50; 3494 if (eecd & E1000_EECD_ADDR_BITS) { 3495 eeprom->word_size = 256; 3496 eeprom->address_bits = 8; 3497 } else { 3498 eeprom->word_size = 64; 3499 eeprom->address_bits = 6; 3500 } 3501 } 3502 break; 3503 default: 3504 break; 3505 } 3506 3507 if (eeprom->type == e1000_eeprom_spi) { 3508 /* eeprom_size will be an enum [0..8] that maps to eeprom sizes 3509 * 128B to 32KB (incremented by powers of 2). 3510 */ 3511 /* Set to default value for initial eeprom read. */ 3512 eeprom->word_size = 64; 3513 ret_val = e1000_read_eeprom(hw, EEPROM_CFG, 1, &eeprom_size); 3514 if (ret_val) 3515 return ret_val; 3516 eeprom_size = 3517 (eeprom_size & EEPROM_SIZE_MASK) >> EEPROM_SIZE_SHIFT; 3518 /* 256B eeprom size was not supported in earlier hardware, so we 3519 * bump eeprom_size up one to ensure that "1" (which maps to 3520 * 256B) is never the result used in the shifting logic below. 3521 */ 3522 if (eeprom_size) 3523 eeprom_size++; 3524 3525 eeprom->word_size = 1 << (eeprom_size + EEPROM_WORD_SIZE_SHIFT); 3526 } 3527 return ret_val; 3528 } 3529 3530 /** 3531 * e1000_raise_ee_clk - Raises the EEPROM's clock input. 3532 * @hw: Struct containing variables accessed by shared code 3533 * @eecd: EECD's current value 3534 */ 3535 static void e1000_raise_ee_clk(struct e1000_hw *hw, u32 *eecd) 3536 { 3537 /* Raise the clock input to the EEPROM (by setting the SK bit), and then 3538 * wait <delay> microseconds. 3539 */ 3540 *eecd = *eecd | E1000_EECD_SK; 3541 ew32(EECD, *eecd); 3542 E1000_WRITE_FLUSH(); 3543 udelay(hw->eeprom.delay_usec); 3544 } 3545 3546 /** 3547 * e1000_lower_ee_clk - Lowers the EEPROM's clock input. 3548 * @hw: Struct containing variables accessed by shared code 3549 * @eecd: EECD's current value 3550 */ 3551 static void e1000_lower_ee_clk(struct e1000_hw *hw, u32 *eecd) 3552 { 3553 /* Lower the clock input to the EEPROM (by clearing the SK bit), and 3554 * then wait 50 microseconds. 3555 */ 3556 *eecd = *eecd & ~E1000_EECD_SK; 3557 ew32(EECD, *eecd); 3558 E1000_WRITE_FLUSH(); 3559 udelay(hw->eeprom.delay_usec); 3560 } 3561 3562 /** 3563 * e1000_shift_out_ee_bits - Shift data bits out to the EEPROM. 3564 * @hw: Struct containing variables accessed by shared code 3565 * @data: data to send to the EEPROM 3566 * @count: number of bits to shift out 3567 */ 3568 static void e1000_shift_out_ee_bits(struct e1000_hw *hw, u16 data, u16 count) 3569 { 3570 struct e1000_eeprom_info *eeprom = &hw->eeprom; 3571 u32 eecd; 3572 u32 mask; 3573 3574 /* We need to shift "count" bits out to the EEPROM. So, value in the 3575 * "data" parameter will be shifted out to the EEPROM one bit at a time. 3576 * In order to do this, "data" must be broken down into bits. 3577 */ 3578 mask = 0x01 << (count - 1); 3579 eecd = er32(EECD); 3580 if (eeprom->type == e1000_eeprom_microwire) 3581 eecd &= ~E1000_EECD_DO; 3582 else if (eeprom->type == e1000_eeprom_spi) 3583 eecd |= E1000_EECD_DO; 3584 3585 do { 3586 /* A "1" is shifted out to the EEPROM by setting bit "DI" to a 3587 * "1", and then raising and then lowering the clock (the SK bit 3588 * controls the clock input to the EEPROM). A "0" is shifted 3589 * out to the EEPROM by setting "DI" to "0" and then raising and 3590 * then lowering the clock. 3591 */ 3592 eecd &= ~E1000_EECD_DI; 3593 3594 if (data & mask) 3595 eecd |= E1000_EECD_DI; 3596 3597 ew32(EECD, eecd); 3598 E1000_WRITE_FLUSH(); 3599 3600 udelay(eeprom->delay_usec); 3601 3602 e1000_raise_ee_clk(hw, &eecd); 3603 e1000_lower_ee_clk(hw, &eecd); 3604 3605 mask = mask >> 1; 3606 3607 } while (mask); 3608 3609 /* We leave the "DI" bit set to "0" when we leave this routine. */ 3610 eecd &= ~E1000_EECD_DI; 3611 ew32(EECD, eecd); 3612 } 3613 3614 /** 3615 * e1000_shift_in_ee_bits - Shift data bits in from the EEPROM 3616 * @hw: Struct containing variables accessed by shared code 3617 * @count: number of bits to shift in 3618 */ 3619 static u16 e1000_shift_in_ee_bits(struct e1000_hw *hw, u16 count) 3620 { 3621 u32 eecd; 3622 u32 i; 3623 u16 data; 3624 3625 /* In order to read a register from the EEPROM, we need to shift 'count' 3626 * bits in from the EEPROM. Bits are "shifted in" by raising the clock 3627 * input to the EEPROM (setting the SK bit), and then reading the value 3628 * of the "DO" bit. During this "shifting in" process the "DI" bit 3629 * should always be clear. 3630 */ 3631 3632 eecd = er32(EECD); 3633 3634 eecd &= ~(E1000_EECD_DO | E1000_EECD_DI); 3635 data = 0; 3636 3637 for (i = 0; i < count; i++) { 3638 data = data << 1; 3639 e1000_raise_ee_clk(hw, &eecd); 3640 3641 eecd = er32(EECD); 3642 3643 eecd &= ~(E1000_EECD_DI); 3644 if (eecd & E1000_EECD_DO) 3645 data |= 1; 3646 3647 e1000_lower_ee_clk(hw, &eecd); 3648 } 3649 3650 return data; 3651 } 3652 3653 /** 3654 * e1000_acquire_eeprom - Prepares EEPROM for access 3655 * @hw: Struct containing variables accessed by shared code 3656 * 3657 * Lowers EEPROM clock. Clears input pin. Sets the chip select pin. This 3658 * function should be called before issuing a command to the EEPROM. 3659 */ 3660 static s32 e1000_acquire_eeprom(struct e1000_hw *hw) 3661 { 3662 struct e1000_eeprom_info *eeprom = &hw->eeprom; 3663 u32 eecd, i = 0; 3664 3665 eecd = er32(EECD); 3666 3667 /* Request EEPROM Access */ 3668 if (hw->mac_type > e1000_82544) { 3669 eecd |= E1000_EECD_REQ; 3670 ew32(EECD, eecd); 3671 eecd = er32(EECD); 3672 while ((!(eecd & E1000_EECD_GNT)) && 3673 (i < E1000_EEPROM_GRANT_ATTEMPTS)) { 3674 i++; 3675 udelay(5); 3676 eecd = er32(EECD); 3677 } 3678 if (!(eecd & E1000_EECD_GNT)) { 3679 eecd &= ~E1000_EECD_REQ; 3680 ew32(EECD, eecd); 3681 e_dbg("Could not acquire EEPROM grant\n"); 3682 return -E1000_ERR_EEPROM; 3683 } 3684 } 3685 3686 /* Setup EEPROM for Read/Write */ 3687 3688 if (eeprom->type == e1000_eeprom_microwire) { 3689 /* Clear SK and DI */ 3690 eecd &= ~(E1000_EECD_DI | E1000_EECD_SK); 3691 ew32(EECD, eecd); 3692 3693 /* Set CS */ 3694 eecd |= E1000_EECD_CS; 3695 ew32(EECD, eecd); 3696 } else if (eeprom->type == e1000_eeprom_spi) { 3697 /* Clear SK and CS */ 3698 eecd &= ~(E1000_EECD_CS | E1000_EECD_SK); 3699 ew32(EECD, eecd); 3700 E1000_WRITE_FLUSH(); 3701 udelay(1); 3702 } 3703 3704 return E1000_SUCCESS; 3705 } 3706 3707 /** 3708 * e1000_standby_eeprom - Returns EEPROM to a "standby" state 3709 * @hw: Struct containing variables accessed by shared code 3710 */ 3711 static void e1000_standby_eeprom(struct e1000_hw *hw) 3712 { 3713 struct e1000_eeprom_info *eeprom = &hw->eeprom; 3714 u32 eecd; 3715 3716 eecd = er32(EECD); 3717 3718 if (eeprom->type == e1000_eeprom_microwire) { 3719 eecd &= ~(E1000_EECD_CS | E1000_EECD_SK); 3720 ew32(EECD, eecd); 3721 E1000_WRITE_FLUSH(); 3722 udelay(eeprom->delay_usec); 3723 3724 /* Clock high */ 3725 eecd |= E1000_EECD_SK; 3726 ew32(EECD, eecd); 3727 E1000_WRITE_FLUSH(); 3728 udelay(eeprom->delay_usec); 3729 3730 /* Select EEPROM */ 3731 eecd |= E1000_EECD_CS; 3732 ew32(EECD, eecd); 3733 E1000_WRITE_FLUSH(); 3734 udelay(eeprom->delay_usec); 3735 3736 /* Clock low */ 3737 eecd &= ~E1000_EECD_SK; 3738 ew32(EECD, eecd); 3739 E1000_WRITE_FLUSH(); 3740 udelay(eeprom->delay_usec); 3741 } else if (eeprom->type == e1000_eeprom_spi) { 3742 /* Toggle CS to flush commands */ 3743 eecd |= E1000_EECD_CS; 3744 ew32(EECD, eecd); 3745 E1000_WRITE_FLUSH(); 3746 udelay(eeprom->delay_usec); 3747 eecd &= ~E1000_EECD_CS; 3748 ew32(EECD, eecd); 3749 E1000_WRITE_FLUSH(); 3750 udelay(eeprom->delay_usec); 3751 } 3752 } 3753 3754 /** 3755 * e1000_release_eeprom - drop chip select 3756 * @hw: Struct containing variables accessed by shared code 3757 * 3758 * Terminates a command by inverting the EEPROM's chip select pin 3759 */ 3760 static void e1000_release_eeprom(struct e1000_hw *hw) 3761 { 3762 u32 eecd; 3763 3764 eecd = er32(EECD); 3765 3766 if (hw->eeprom.type == e1000_eeprom_spi) { 3767 eecd |= E1000_EECD_CS; /* Pull CS high */ 3768 eecd &= ~E1000_EECD_SK; /* Lower SCK */ 3769 3770 ew32(EECD, eecd); 3771 E1000_WRITE_FLUSH(); 3772 3773 udelay(hw->eeprom.delay_usec); 3774 } else if (hw->eeprom.type == e1000_eeprom_microwire) { 3775 /* cleanup eeprom */ 3776 3777 /* CS on Microwire is active-high */ 3778 eecd &= ~(E1000_EECD_CS | E1000_EECD_DI); 3779 3780 ew32(EECD, eecd); 3781 3782 /* Rising edge of clock */ 3783 eecd |= E1000_EECD_SK; 3784 ew32(EECD, eecd); 3785 E1000_WRITE_FLUSH(); 3786 udelay(hw->eeprom.delay_usec); 3787 3788 /* Falling edge of clock */ 3789 eecd &= ~E1000_EECD_SK; 3790 ew32(EECD, eecd); 3791 E1000_WRITE_FLUSH(); 3792 udelay(hw->eeprom.delay_usec); 3793 } 3794 3795 /* Stop requesting EEPROM access */ 3796 if (hw->mac_type > e1000_82544) { 3797 eecd &= ~E1000_EECD_REQ; 3798 ew32(EECD, eecd); 3799 } 3800 } 3801 3802 /** 3803 * e1000_spi_eeprom_ready - Reads a 16 bit word from the EEPROM. 3804 * @hw: Struct containing variables accessed by shared code 3805 */ 3806 static s32 e1000_spi_eeprom_ready(struct e1000_hw *hw) 3807 { 3808 u16 retry_count = 0; 3809 u8 spi_stat_reg; 3810 3811 /* Read "Status Register" repeatedly until the LSB is cleared. The 3812 * EEPROM will signal that the command has been completed by clearing 3813 * bit 0 of the internal status register. If it's not cleared within 3814 * 5 milliseconds, then error out. 3815 */ 3816 retry_count = 0; 3817 do { 3818 e1000_shift_out_ee_bits(hw, EEPROM_RDSR_OPCODE_SPI, 3819 hw->eeprom.opcode_bits); 3820 spi_stat_reg = (u8)e1000_shift_in_ee_bits(hw, 8); 3821 if (!(spi_stat_reg & EEPROM_STATUS_RDY_SPI)) 3822 break; 3823 3824 udelay(5); 3825 retry_count += 5; 3826 3827 e1000_standby_eeprom(hw); 3828 } while (retry_count < EEPROM_MAX_RETRY_SPI); 3829 3830 /* ATMEL SPI write time could vary from 0-20mSec on 3.3V devices (and 3831 * only 0-5mSec on 5V devices) 3832 */ 3833 if (retry_count >= EEPROM_MAX_RETRY_SPI) { 3834 e_dbg("SPI EEPROM Status error\n"); 3835 return -E1000_ERR_EEPROM; 3836 } 3837 3838 return E1000_SUCCESS; 3839 } 3840 3841 /** 3842 * e1000_read_eeprom - Reads a 16 bit word from the EEPROM. 3843 * @hw: Struct containing variables accessed by shared code 3844 * @offset: offset of word in the EEPROM to read 3845 * @data: word read from the EEPROM 3846 * @words: number of words to read 3847 */ 3848 s32 e1000_read_eeprom(struct e1000_hw *hw, u16 offset, u16 words, u16 *data) 3849 { 3850 s32 ret; 3851 3852 mutex_lock(&e1000_eeprom_lock); 3853 ret = e1000_do_read_eeprom(hw, offset, words, data); 3854 mutex_unlock(&e1000_eeprom_lock); 3855 return ret; 3856 } 3857 3858 static s32 e1000_do_read_eeprom(struct e1000_hw *hw, u16 offset, u16 words, 3859 u16 *data) 3860 { 3861 struct e1000_eeprom_info *eeprom = &hw->eeprom; 3862 u32 i = 0; 3863 3864 if (hw->mac_type == e1000_ce4100) { 3865 GBE_CONFIG_FLASH_READ(GBE_CONFIG_BASE_VIRT, offset, words, 3866 data); 3867 return E1000_SUCCESS; 3868 } 3869 3870 /* A check for invalid values: offset too large, too many words, and 3871 * not enough words. 3872 */ 3873 if ((offset >= eeprom->word_size) || 3874 (words > eeprom->word_size - offset) || 3875 (words == 0)) { 3876 e_dbg("\"words\" parameter out of bounds. Words = %d," 3877 "size = %d\n", offset, eeprom->word_size); 3878 return -E1000_ERR_EEPROM; 3879 } 3880 3881 /* EEPROM's that don't use EERD to read require us to bit-bang the SPI 3882 * directly. In this case, we need to acquire the EEPROM so that 3883 * FW or other port software does not interrupt. 3884 */ 3885 /* Prepare the EEPROM for bit-bang reading */ 3886 if (e1000_acquire_eeprom(hw) != E1000_SUCCESS) 3887 return -E1000_ERR_EEPROM; 3888 3889 /* Set up the SPI or Microwire EEPROM for bit-bang reading. We have 3890 * acquired the EEPROM at this point, so any returns should release it 3891 */ 3892 if (eeprom->type == e1000_eeprom_spi) { 3893 u16 word_in; 3894 u8 read_opcode = EEPROM_READ_OPCODE_SPI; 3895 3896 if (e1000_spi_eeprom_ready(hw)) { 3897 e1000_release_eeprom(hw); 3898 return -E1000_ERR_EEPROM; 3899 } 3900 3901 e1000_standby_eeprom(hw); 3902 3903 /* Some SPI eeproms use the 8th address bit embedded in the 3904 * opcode 3905 */ 3906 if ((eeprom->address_bits == 8) && (offset >= 128)) 3907 read_opcode |= EEPROM_A8_OPCODE_SPI; 3908 3909 /* Send the READ command (opcode + addr) */ 3910 e1000_shift_out_ee_bits(hw, read_opcode, eeprom->opcode_bits); 3911 e1000_shift_out_ee_bits(hw, (u16)(offset * 2), 3912 eeprom->address_bits); 3913 3914 /* Read the data. The address of the eeprom internally 3915 * increments with each byte (spi) being read, saving on the 3916 * overhead of eeprom setup and tear-down. The address counter 3917 * will roll over if reading beyond the size of the eeprom, thus 3918 * allowing the entire memory to be read starting from any 3919 * offset. 3920 */ 3921 for (i = 0; i < words; i++) { 3922 word_in = e1000_shift_in_ee_bits(hw, 16); 3923 data[i] = (word_in >> 8) | (word_in << 8); 3924 } 3925 } else if (eeprom->type == e1000_eeprom_microwire) { 3926 for (i = 0; i < words; i++) { 3927 /* Send the READ command (opcode + addr) */ 3928 e1000_shift_out_ee_bits(hw, 3929 EEPROM_READ_OPCODE_MICROWIRE, 3930 eeprom->opcode_bits); 3931 e1000_shift_out_ee_bits(hw, (u16)(offset + i), 3932 eeprom->address_bits); 3933 3934 /* Read the data. For microwire, each word requires the 3935 * overhead of eeprom setup and tear-down. 3936 */ 3937 data[i] = e1000_shift_in_ee_bits(hw, 16); 3938 e1000_standby_eeprom(hw); 3939 cond_resched(); 3940 } 3941 } 3942 3943 /* End this read operation */ 3944 e1000_release_eeprom(hw); 3945 3946 return E1000_SUCCESS; 3947 } 3948 3949 /** 3950 * e1000_validate_eeprom_checksum - Verifies that the EEPROM has a valid checksum 3951 * @hw: Struct containing variables accessed by shared code 3952 * 3953 * Reads the first 64 16 bit words of the EEPROM and sums the values read. 3954 * If the sum of the 64 16 bit words is 0xBABA, the EEPROM's checksum is 3955 * valid. 3956 */ 3957 s32 e1000_validate_eeprom_checksum(struct e1000_hw *hw) 3958 { 3959 u16 checksum = 0; 3960 u16 i, eeprom_data; 3961 3962 for (i = 0; i < (EEPROM_CHECKSUM_REG + 1); i++) { 3963 if (e1000_read_eeprom(hw, i, 1, &eeprom_data) < 0) { 3964 e_dbg("EEPROM Read Error\n"); 3965 return -E1000_ERR_EEPROM; 3966 } 3967 checksum += eeprom_data; 3968 } 3969 3970 #ifdef CONFIG_PARISC 3971 /* This is a signature and not a checksum on HP c8000 */ 3972 if ((hw->subsystem_vendor_id == 0x103C) && (eeprom_data == 0x16d6)) 3973 return E1000_SUCCESS; 3974 3975 #endif 3976 if (checksum == (u16)EEPROM_SUM) 3977 return E1000_SUCCESS; 3978 else { 3979 e_dbg("EEPROM Checksum Invalid\n"); 3980 return -E1000_ERR_EEPROM; 3981 } 3982 } 3983 3984 /** 3985 * e1000_update_eeprom_checksum - Calculates/writes the EEPROM checksum 3986 * @hw: Struct containing variables accessed by shared code 3987 * 3988 * Sums the first 63 16 bit words of the EEPROM. Subtracts the sum from 0xBABA. 3989 * Writes the difference to word offset 63 of the EEPROM. 3990 */ 3991 s32 e1000_update_eeprom_checksum(struct e1000_hw *hw) 3992 { 3993 u16 checksum = 0; 3994 u16 i, eeprom_data; 3995 3996 for (i = 0; i < EEPROM_CHECKSUM_REG; i++) { 3997 if (e1000_read_eeprom(hw, i, 1, &eeprom_data) < 0) { 3998 e_dbg("EEPROM Read Error\n"); 3999 return -E1000_ERR_EEPROM; 4000 } 4001 checksum += eeprom_data; 4002 } 4003 checksum = (u16)EEPROM_SUM - checksum; 4004 if (e1000_write_eeprom(hw, EEPROM_CHECKSUM_REG, 1, &checksum) < 0) { 4005 e_dbg("EEPROM Write Error\n"); 4006 return -E1000_ERR_EEPROM; 4007 } 4008 return E1000_SUCCESS; 4009 } 4010 4011 /** 4012 * e1000_write_eeprom - write words to the different EEPROM types. 4013 * @hw: Struct containing variables accessed by shared code 4014 * @offset: offset within the EEPROM to be written to 4015 * @words: number of words to write 4016 * @data: 16 bit word to be written to the EEPROM 4017 * 4018 * If e1000_update_eeprom_checksum is not called after this function, the 4019 * EEPROM will most likely contain an invalid checksum. 4020 */ 4021 s32 e1000_write_eeprom(struct e1000_hw *hw, u16 offset, u16 words, u16 *data) 4022 { 4023 s32 ret; 4024 4025 mutex_lock(&e1000_eeprom_lock); 4026 ret = e1000_do_write_eeprom(hw, offset, words, data); 4027 mutex_unlock(&e1000_eeprom_lock); 4028 return ret; 4029 } 4030 4031 static s32 e1000_do_write_eeprom(struct e1000_hw *hw, u16 offset, u16 words, 4032 u16 *data) 4033 { 4034 struct e1000_eeprom_info *eeprom = &hw->eeprom; 4035 s32 status = 0; 4036 4037 if (hw->mac_type == e1000_ce4100) { 4038 GBE_CONFIG_FLASH_WRITE(GBE_CONFIG_BASE_VIRT, offset, words, 4039 data); 4040 return E1000_SUCCESS; 4041 } 4042 4043 /* A check for invalid values: offset too large, too many words, and 4044 * not enough words. 4045 */ 4046 if ((offset >= eeprom->word_size) || 4047 (words > eeprom->word_size - offset) || 4048 (words == 0)) { 4049 e_dbg("\"words\" parameter out of bounds\n"); 4050 return -E1000_ERR_EEPROM; 4051 } 4052 4053 /* Prepare the EEPROM for writing */ 4054 if (e1000_acquire_eeprom(hw) != E1000_SUCCESS) 4055 return -E1000_ERR_EEPROM; 4056 4057 if (eeprom->type == e1000_eeprom_microwire) { 4058 status = e1000_write_eeprom_microwire(hw, offset, words, data); 4059 } else { 4060 status = e1000_write_eeprom_spi(hw, offset, words, data); 4061 msleep(10); 4062 } 4063 4064 /* Done with writing */ 4065 e1000_release_eeprom(hw); 4066 4067 return status; 4068 } 4069 4070 /** 4071 * e1000_write_eeprom_spi - Writes a 16 bit word to a given offset in an SPI EEPROM. 4072 * @hw: Struct containing variables accessed by shared code 4073 * @offset: offset within the EEPROM to be written to 4074 * @words: number of words to write 4075 * @data: pointer to array of 8 bit words to be written to the EEPROM 4076 */ 4077 static s32 e1000_write_eeprom_spi(struct e1000_hw *hw, u16 offset, u16 words, 4078 u16 *data) 4079 { 4080 struct e1000_eeprom_info *eeprom = &hw->eeprom; 4081 u16 widx = 0; 4082 4083 while (widx < words) { 4084 u8 write_opcode = EEPROM_WRITE_OPCODE_SPI; 4085 4086 if (e1000_spi_eeprom_ready(hw)) 4087 return -E1000_ERR_EEPROM; 4088 4089 e1000_standby_eeprom(hw); 4090 cond_resched(); 4091 4092 /* Send the WRITE ENABLE command (8 bit opcode ) */ 4093 e1000_shift_out_ee_bits(hw, EEPROM_WREN_OPCODE_SPI, 4094 eeprom->opcode_bits); 4095 4096 e1000_standby_eeprom(hw); 4097 4098 /* Some SPI eeproms use the 8th address bit embedded in the 4099 * opcode 4100 */ 4101 if ((eeprom->address_bits == 8) && (offset >= 128)) 4102 write_opcode |= EEPROM_A8_OPCODE_SPI; 4103 4104 /* Send the Write command (8-bit opcode + addr) */ 4105 e1000_shift_out_ee_bits(hw, write_opcode, eeprom->opcode_bits); 4106 4107 e1000_shift_out_ee_bits(hw, (u16)((offset + widx) * 2), 4108 eeprom->address_bits); 4109 4110 /* Send the data */ 4111 4112 /* Loop to allow for up to whole page write (32 bytes) of 4113 * eeprom 4114 */ 4115 while (widx < words) { 4116 u16 word_out = data[widx]; 4117 4118 word_out = (word_out >> 8) | (word_out << 8); 4119 e1000_shift_out_ee_bits(hw, word_out, 16); 4120 widx++; 4121 4122 /* Some larger eeprom sizes are capable of a 32-byte 4123 * PAGE WRITE operation, while the smaller eeproms are 4124 * capable of an 8-byte PAGE WRITE operation. Break the 4125 * inner loop to pass new address 4126 */ 4127 if ((((offset + widx) * 2) % eeprom->page_size) == 0) { 4128 e1000_standby_eeprom(hw); 4129 break; 4130 } 4131 } 4132 } 4133 4134 return E1000_SUCCESS; 4135 } 4136 4137 /** 4138 * e1000_write_eeprom_microwire - Writes a 16 bit word to a given offset in a Microwire EEPROM. 4139 * @hw: Struct containing variables accessed by shared code 4140 * @offset: offset within the EEPROM to be written to 4141 * @words: number of words to write 4142 * @data: pointer to array of 8 bit words to be written to the EEPROM 4143 */ 4144 static s32 e1000_write_eeprom_microwire(struct e1000_hw *hw, u16 offset, 4145 u16 words, u16 *data) 4146 { 4147 struct e1000_eeprom_info *eeprom = &hw->eeprom; 4148 u32 eecd; 4149 u16 words_written = 0; 4150 u16 i = 0; 4151 4152 /* Send the write enable command to the EEPROM (3-bit opcode plus 4153 * 6/8-bit dummy address beginning with 11). It's less work to include 4154 * the 11 of the dummy address as part of the opcode than it is to shift 4155 * it over the correct number of bits for the address. This puts the 4156 * EEPROM into write/erase mode. 4157 */ 4158 e1000_shift_out_ee_bits(hw, EEPROM_EWEN_OPCODE_MICROWIRE, 4159 (u16)(eeprom->opcode_bits + 2)); 4160 4161 e1000_shift_out_ee_bits(hw, 0, (u16)(eeprom->address_bits - 2)); 4162 4163 /* Prepare the EEPROM */ 4164 e1000_standby_eeprom(hw); 4165 4166 while (words_written < words) { 4167 /* Send the Write command (3-bit opcode + addr) */ 4168 e1000_shift_out_ee_bits(hw, EEPROM_WRITE_OPCODE_MICROWIRE, 4169 eeprom->opcode_bits); 4170 4171 e1000_shift_out_ee_bits(hw, (u16)(offset + words_written), 4172 eeprom->address_bits); 4173 4174 /* Send the data */ 4175 e1000_shift_out_ee_bits(hw, data[words_written], 16); 4176 4177 /* Toggle the CS line. This in effect tells the EEPROM to 4178 * execute the previous command. 4179 */ 4180 e1000_standby_eeprom(hw); 4181 4182 /* Read DO repeatedly until it is high (equal to '1'). The 4183 * EEPROM will signal that the command has been completed by 4184 * raising the DO signal. If DO does not go high in 10 4185 * milliseconds, then error out. 4186 */ 4187 for (i = 0; i < 200; i++) { 4188 eecd = er32(EECD); 4189 if (eecd & E1000_EECD_DO) 4190 break; 4191 udelay(50); 4192 } 4193 if (i == 200) { 4194 e_dbg("EEPROM Write did not complete\n"); 4195 return -E1000_ERR_EEPROM; 4196 } 4197 4198 /* Recover from write */ 4199 e1000_standby_eeprom(hw); 4200 cond_resched(); 4201 4202 words_written++; 4203 } 4204 4205 /* Send the write disable command to the EEPROM (3-bit opcode plus 4206 * 6/8-bit dummy address beginning with 10). It's less work to include 4207 * the 10 of the dummy address as part of the opcode than it is to shift 4208 * it over the correct number of bits for the address. This takes the 4209 * EEPROM out of write/erase mode. 4210 */ 4211 e1000_shift_out_ee_bits(hw, EEPROM_EWDS_OPCODE_MICROWIRE, 4212 (u16)(eeprom->opcode_bits + 2)); 4213 4214 e1000_shift_out_ee_bits(hw, 0, (u16)(eeprom->address_bits - 2)); 4215 4216 return E1000_SUCCESS; 4217 } 4218 4219 /** 4220 * e1000_read_mac_addr - read the adapters MAC from eeprom 4221 * @hw: Struct containing variables accessed by shared code 4222 * 4223 * Reads the adapter's MAC address from the EEPROM and inverts the LSB for the 4224 * second function of dual function devices 4225 */ 4226 s32 e1000_read_mac_addr(struct e1000_hw *hw) 4227 { 4228 u16 offset; 4229 u16 eeprom_data, i; 4230 4231 for (i = 0; i < NODE_ADDRESS_SIZE; i += 2) { 4232 offset = i >> 1; 4233 if (e1000_read_eeprom(hw, offset, 1, &eeprom_data) < 0) { 4234 e_dbg("EEPROM Read Error\n"); 4235 return -E1000_ERR_EEPROM; 4236 } 4237 hw->perm_mac_addr[i] = (u8)(eeprom_data & 0x00FF); 4238 hw->perm_mac_addr[i + 1] = (u8)(eeprom_data >> 8); 4239 } 4240 4241 switch (hw->mac_type) { 4242 default: 4243 break; 4244 case e1000_82546: 4245 case e1000_82546_rev_3: 4246 if (er32(STATUS) & E1000_STATUS_FUNC_1) 4247 hw->perm_mac_addr[5] ^= 0x01; 4248 break; 4249 } 4250 4251 for (i = 0; i < NODE_ADDRESS_SIZE; i++) 4252 hw->mac_addr[i] = hw->perm_mac_addr[i]; 4253 return E1000_SUCCESS; 4254 } 4255 4256 /** 4257 * e1000_init_rx_addrs - Initializes receive address filters. 4258 * @hw: Struct containing variables accessed by shared code 4259 * 4260 * Places the MAC address in receive address register 0 and clears the rest 4261 * of the receive address registers. Clears the multicast table. Assumes 4262 * the receiver is in reset when the routine is called. 4263 */ 4264 static void e1000_init_rx_addrs(struct e1000_hw *hw) 4265 { 4266 u32 i; 4267 u32 rar_num; 4268 4269 /* Setup the receive address. */ 4270 e_dbg("Programming MAC Address into RAR[0]\n"); 4271 4272 e1000_rar_set(hw, hw->mac_addr, 0); 4273 4274 rar_num = E1000_RAR_ENTRIES; 4275 4276 /* Zero out the following 14 receive addresses. RAR[15] is for 4277 * manageability 4278 */ 4279 e_dbg("Clearing RAR[1-14]\n"); 4280 for (i = 1; i < rar_num; i++) { 4281 E1000_WRITE_REG_ARRAY(hw, RA, (i << 1), 0); 4282 E1000_WRITE_FLUSH(); 4283 E1000_WRITE_REG_ARRAY(hw, RA, ((i << 1) + 1), 0); 4284 E1000_WRITE_FLUSH(); 4285 } 4286 } 4287 4288 /** 4289 * e1000_hash_mc_addr - Hashes an address to determine its location in the multicast table 4290 * @hw: Struct containing variables accessed by shared code 4291 * @mc_addr: the multicast address to hash 4292 */ 4293 u32 e1000_hash_mc_addr(struct e1000_hw *hw, u8 *mc_addr) 4294 { 4295 u32 hash_value = 0; 4296 4297 /* The portion of the address that is used for the hash table is 4298 * determined by the mc_filter_type setting. 4299 */ 4300 switch (hw->mc_filter_type) { 4301 /* [0] [1] [2] [3] [4] [5] 4302 * 01 AA 00 12 34 56 4303 * LSB MSB 4304 */ 4305 case 0: 4306 /* [47:36] i.e. 0x563 for above example address */ 4307 hash_value = ((mc_addr[4] >> 4) | (((u16)mc_addr[5]) << 4)); 4308 break; 4309 case 1: 4310 /* [46:35] i.e. 0xAC6 for above example address */ 4311 hash_value = ((mc_addr[4] >> 3) | (((u16)mc_addr[5]) << 5)); 4312 break; 4313 case 2: 4314 /* [45:34] i.e. 0x5D8 for above example address */ 4315 hash_value = ((mc_addr[4] >> 2) | (((u16)mc_addr[5]) << 6)); 4316 break; 4317 case 3: 4318 /* [43:32] i.e. 0x634 for above example address */ 4319 hash_value = ((mc_addr[4]) | (((u16)mc_addr[5]) << 8)); 4320 break; 4321 } 4322 4323 hash_value &= 0xFFF; 4324 return hash_value; 4325 } 4326 4327 /** 4328 * e1000_rar_set - Puts an ethernet address into a receive address register. 4329 * @hw: Struct containing variables accessed by shared code 4330 * @addr: Address to put into receive address register 4331 * @index: Receive address register to write 4332 */ 4333 void e1000_rar_set(struct e1000_hw *hw, u8 *addr, u32 index) 4334 { 4335 u32 rar_low, rar_high; 4336 4337 /* HW expects these in little endian so we reverse the byte order 4338 * from network order (big endian) to little endian 4339 */ 4340 rar_low = ((u32)addr[0] | ((u32)addr[1] << 8) | 4341 ((u32)addr[2] << 16) | ((u32)addr[3] << 24)); 4342 rar_high = ((u32)addr[4] | ((u32)addr[5] << 8)); 4343 4344 /* Disable Rx and flush all Rx frames before enabling RSS to avoid Rx 4345 * unit hang. 4346 * 4347 * Description: 4348 * If there are any Rx frames queued up or otherwise present in the HW 4349 * before RSS is enabled, and then we enable RSS, the HW Rx unit will 4350 * hang. To work around this issue, we have to disable receives and 4351 * flush out all Rx frames before we enable RSS. To do so, we modify we 4352 * redirect all Rx traffic to manageability and then reset the HW. 4353 * This flushes away Rx frames, and (since the redirections to 4354 * manageability persists across resets) keeps new ones from coming in 4355 * while we work. Then, we clear the Address Valid AV bit for all MAC 4356 * addresses and undo the re-direction to manageability. 4357 * Now, frames are coming in again, but the MAC won't accept them, so 4358 * far so good. We now proceed to initialize RSS (if necessary) and 4359 * configure the Rx unit. Last, we re-enable the AV bits and continue 4360 * on our merry way. 4361 */ 4362 switch (hw->mac_type) { 4363 default: 4364 /* Indicate to hardware the Address is Valid. */ 4365 rar_high |= E1000_RAH_AV; 4366 break; 4367 } 4368 4369 E1000_WRITE_REG_ARRAY(hw, RA, (index << 1), rar_low); 4370 E1000_WRITE_FLUSH(); 4371 E1000_WRITE_REG_ARRAY(hw, RA, ((index << 1) + 1), rar_high); 4372 E1000_WRITE_FLUSH(); 4373 } 4374 4375 /** 4376 * e1000_write_vfta - Writes a value to the specified offset in the VLAN filter table. 4377 * @hw: Struct containing variables accessed by shared code 4378 * @offset: Offset in VLAN filer table to write 4379 * @value: Value to write into VLAN filter table 4380 */ 4381 void e1000_write_vfta(struct e1000_hw *hw, u32 offset, u32 value) 4382 { 4383 u32 temp; 4384 4385 if ((hw->mac_type == e1000_82544) && ((offset & 0x1) == 1)) { 4386 temp = E1000_READ_REG_ARRAY(hw, VFTA, (offset - 1)); 4387 E1000_WRITE_REG_ARRAY(hw, VFTA, offset, value); 4388 E1000_WRITE_FLUSH(); 4389 E1000_WRITE_REG_ARRAY(hw, VFTA, (offset - 1), temp); 4390 E1000_WRITE_FLUSH(); 4391 } else { 4392 E1000_WRITE_REG_ARRAY(hw, VFTA, offset, value); 4393 E1000_WRITE_FLUSH(); 4394 } 4395 } 4396 4397 /** 4398 * e1000_clear_vfta - Clears the VLAN filer table 4399 * @hw: Struct containing variables accessed by shared code 4400 */ 4401 static void e1000_clear_vfta(struct e1000_hw *hw) 4402 { 4403 u32 offset; 4404 u32 vfta_value = 0; 4405 u32 vfta_offset = 0; 4406 u32 vfta_bit_in_reg = 0; 4407 4408 for (offset = 0; offset < E1000_VLAN_FILTER_TBL_SIZE; offset++) { 4409 /* If the offset we want to clear is the same offset of the 4410 * manageability VLAN ID, then clear all bits except that of the 4411 * manageability unit 4412 */ 4413 vfta_value = (offset == vfta_offset) ? vfta_bit_in_reg : 0; 4414 E1000_WRITE_REG_ARRAY(hw, VFTA, offset, vfta_value); 4415 E1000_WRITE_FLUSH(); 4416 } 4417 } 4418 4419 static s32 e1000_id_led_init(struct e1000_hw *hw) 4420 { 4421 u32 ledctl; 4422 const u32 ledctl_mask = 0x000000FF; 4423 const u32 ledctl_on = E1000_LEDCTL_MODE_LED_ON; 4424 const u32 ledctl_off = E1000_LEDCTL_MODE_LED_OFF; 4425 u16 eeprom_data, i, temp; 4426 const u16 led_mask = 0x0F; 4427 4428 if (hw->mac_type < e1000_82540) { 4429 /* Nothing to do */ 4430 return E1000_SUCCESS; 4431 } 4432 4433 ledctl = er32(LEDCTL); 4434 hw->ledctl_default = ledctl; 4435 hw->ledctl_mode1 = hw->ledctl_default; 4436 hw->ledctl_mode2 = hw->ledctl_default; 4437 4438 if (e1000_read_eeprom(hw, EEPROM_ID_LED_SETTINGS, 1, &eeprom_data) < 0) { 4439 e_dbg("EEPROM Read Error\n"); 4440 return -E1000_ERR_EEPROM; 4441 } 4442 4443 if ((eeprom_data == ID_LED_RESERVED_0000) || 4444 (eeprom_data == ID_LED_RESERVED_FFFF)) { 4445 eeprom_data = ID_LED_DEFAULT; 4446 } 4447 4448 for (i = 0; i < 4; i++) { 4449 temp = (eeprom_data >> (i << 2)) & led_mask; 4450 switch (temp) { 4451 case ID_LED_ON1_DEF2: 4452 case ID_LED_ON1_ON2: 4453 case ID_LED_ON1_OFF2: 4454 hw->ledctl_mode1 &= ~(ledctl_mask << (i << 3)); 4455 hw->ledctl_mode1 |= ledctl_on << (i << 3); 4456 break; 4457 case ID_LED_OFF1_DEF2: 4458 case ID_LED_OFF1_ON2: 4459 case ID_LED_OFF1_OFF2: 4460 hw->ledctl_mode1 &= ~(ledctl_mask << (i << 3)); 4461 hw->ledctl_mode1 |= ledctl_off << (i << 3); 4462 break; 4463 default: 4464 /* Do nothing */ 4465 break; 4466 } 4467 switch (temp) { 4468 case ID_LED_DEF1_ON2: 4469 case ID_LED_ON1_ON2: 4470 case ID_LED_OFF1_ON2: 4471 hw->ledctl_mode2 &= ~(ledctl_mask << (i << 3)); 4472 hw->ledctl_mode2 |= ledctl_on << (i << 3); 4473 break; 4474 case ID_LED_DEF1_OFF2: 4475 case ID_LED_ON1_OFF2: 4476 case ID_LED_OFF1_OFF2: 4477 hw->ledctl_mode2 &= ~(ledctl_mask << (i << 3)); 4478 hw->ledctl_mode2 |= ledctl_off << (i << 3); 4479 break; 4480 default: 4481 /* Do nothing */ 4482 break; 4483 } 4484 } 4485 return E1000_SUCCESS; 4486 } 4487 4488 /** 4489 * e1000_setup_led 4490 * @hw: Struct containing variables accessed by shared code 4491 * 4492 * Prepares SW controlable LED for use and saves the current state of the LED. 4493 */ 4494 s32 e1000_setup_led(struct e1000_hw *hw) 4495 { 4496 u32 ledctl; 4497 s32 ret_val = E1000_SUCCESS; 4498 4499 switch (hw->mac_type) { 4500 case e1000_82542_rev2_0: 4501 case e1000_82542_rev2_1: 4502 case e1000_82543: 4503 case e1000_82544: 4504 /* No setup necessary */ 4505 break; 4506 case e1000_82541: 4507 case e1000_82547: 4508 case e1000_82541_rev_2: 4509 case e1000_82547_rev_2: 4510 /* Turn off PHY Smart Power Down (if enabled) */ 4511 ret_val = e1000_read_phy_reg(hw, IGP01E1000_GMII_FIFO, 4512 &hw->phy_spd_default); 4513 if (ret_val) 4514 return ret_val; 4515 ret_val = e1000_write_phy_reg(hw, IGP01E1000_GMII_FIFO, 4516 (u16)(hw->phy_spd_default & 4517 ~IGP01E1000_GMII_SPD)); 4518 if (ret_val) 4519 return ret_val; 4520 fallthrough; 4521 default: 4522 if (hw->media_type == e1000_media_type_fiber) { 4523 ledctl = er32(LEDCTL); 4524 /* Save current LEDCTL settings */ 4525 hw->ledctl_default = ledctl; 4526 /* Turn off LED0 */ 4527 ledctl &= ~(E1000_LEDCTL_LED0_IVRT | 4528 E1000_LEDCTL_LED0_BLINK | 4529 E1000_LEDCTL_LED0_MODE_MASK); 4530 ledctl |= (E1000_LEDCTL_MODE_LED_OFF << 4531 E1000_LEDCTL_LED0_MODE_SHIFT); 4532 ew32(LEDCTL, ledctl); 4533 } else if (hw->media_type == e1000_media_type_copper) 4534 ew32(LEDCTL, hw->ledctl_mode1); 4535 break; 4536 } 4537 4538 return E1000_SUCCESS; 4539 } 4540 4541 /** 4542 * e1000_cleanup_led - Restores the saved state of the SW controlable LED. 4543 * @hw: Struct containing variables accessed by shared code 4544 */ 4545 s32 e1000_cleanup_led(struct e1000_hw *hw) 4546 { 4547 s32 ret_val = E1000_SUCCESS; 4548 4549 switch (hw->mac_type) { 4550 case e1000_82542_rev2_0: 4551 case e1000_82542_rev2_1: 4552 case e1000_82543: 4553 case e1000_82544: 4554 /* No cleanup necessary */ 4555 break; 4556 case e1000_82541: 4557 case e1000_82547: 4558 case e1000_82541_rev_2: 4559 case e1000_82547_rev_2: 4560 /* Turn on PHY Smart Power Down (if previously enabled) */ 4561 ret_val = e1000_write_phy_reg(hw, IGP01E1000_GMII_FIFO, 4562 hw->phy_spd_default); 4563 if (ret_val) 4564 return ret_val; 4565 fallthrough; 4566 default: 4567 /* Restore LEDCTL settings */ 4568 ew32(LEDCTL, hw->ledctl_default); 4569 break; 4570 } 4571 4572 return E1000_SUCCESS; 4573 } 4574 4575 /** 4576 * e1000_led_on - Turns on the software controllable LED 4577 * @hw: Struct containing variables accessed by shared code 4578 */ 4579 s32 e1000_led_on(struct e1000_hw *hw) 4580 { 4581 u32 ctrl = er32(CTRL); 4582 4583 switch (hw->mac_type) { 4584 case e1000_82542_rev2_0: 4585 case e1000_82542_rev2_1: 4586 case e1000_82543: 4587 /* Set SW Defineable Pin 0 to turn on the LED */ 4588 ctrl |= E1000_CTRL_SWDPIN0; 4589 ctrl |= E1000_CTRL_SWDPIO0; 4590 break; 4591 case e1000_82544: 4592 if (hw->media_type == e1000_media_type_fiber) { 4593 /* Set SW Defineable Pin 0 to turn on the LED */ 4594 ctrl |= E1000_CTRL_SWDPIN0; 4595 ctrl |= E1000_CTRL_SWDPIO0; 4596 } else { 4597 /* Clear SW Defineable Pin 0 to turn on the LED */ 4598 ctrl &= ~E1000_CTRL_SWDPIN0; 4599 ctrl |= E1000_CTRL_SWDPIO0; 4600 } 4601 break; 4602 default: 4603 if (hw->media_type == e1000_media_type_fiber) { 4604 /* Clear SW Defineable Pin 0 to turn on the LED */ 4605 ctrl &= ~E1000_CTRL_SWDPIN0; 4606 ctrl |= E1000_CTRL_SWDPIO0; 4607 } else if (hw->media_type == e1000_media_type_copper) { 4608 ew32(LEDCTL, hw->ledctl_mode2); 4609 return E1000_SUCCESS; 4610 } 4611 break; 4612 } 4613 4614 ew32(CTRL, ctrl); 4615 4616 return E1000_SUCCESS; 4617 } 4618 4619 /** 4620 * e1000_led_off - Turns off the software controllable LED 4621 * @hw: Struct containing variables accessed by shared code 4622 */ 4623 s32 e1000_led_off(struct e1000_hw *hw) 4624 { 4625 u32 ctrl = er32(CTRL); 4626 4627 switch (hw->mac_type) { 4628 case e1000_82542_rev2_0: 4629 case e1000_82542_rev2_1: 4630 case e1000_82543: 4631 /* Clear SW Defineable Pin 0 to turn off the LED */ 4632 ctrl &= ~E1000_CTRL_SWDPIN0; 4633 ctrl |= E1000_CTRL_SWDPIO0; 4634 break; 4635 case e1000_82544: 4636 if (hw->media_type == e1000_media_type_fiber) { 4637 /* Clear SW Defineable Pin 0 to turn off the LED */ 4638 ctrl &= ~E1000_CTRL_SWDPIN0; 4639 ctrl |= E1000_CTRL_SWDPIO0; 4640 } else { 4641 /* Set SW Defineable Pin 0 to turn off the LED */ 4642 ctrl |= E1000_CTRL_SWDPIN0; 4643 ctrl |= E1000_CTRL_SWDPIO0; 4644 } 4645 break; 4646 default: 4647 if (hw->media_type == e1000_media_type_fiber) { 4648 /* Set SW Defineable Pin 0 to turn off the LED */ 4649 ctrl |= E1000_CTRL_SWDPIN0; 4650 ctrl |= E1000_CTRL_SWDPIO0; 4651 } else if (hw->media_type == e1000_media_type_copper) { 4652 ew32(LEDCTL, hw->ledctl_mode1); 4653 return E1000_SUCCESS; 4654 } 4655 break; 4656 } 4657 4658 ew32(CTRL, ctrl); 4659 4660 return E1000_SUCCESS; 4661 } 4662 4663 /** 4664 * e1000_clear_hw_cntrs - Clears all hardware statistics counters. 4665 * @hw: Struct containing variables accessed by shared code 4666 */ 4667 static void e1000_clear_hw_cntrs(struct e1000_hw *hw) 4668 { 4669 er32(CRCERRS); 4670 er32(SYMERRS); 4671 er32(MPC); 4672 er32(SCC); 4673 er32(ECOL); 4674 er32(MCC); 4675 er32(LATECOL); 4676 er32(COLC); 4677 er32(DC); 4678 er32(SEC); 4679 er32(RLEC); 4680 er32(XONRXC); 4681 er32(XONTXC); 4682 er32(XOFFRXC); 4683 er32(XOFFTXC); 4684 er32(FCRUC); 4685 4686 er32(PRC64); 4687 er32(PRC127); 4688 er32(PRC255); 4689 er32(PRC511); 4690 er32(PRC1023); 4691 er32(PRC1522); 4692 4693 er32(GPRC); 4694 er32(BPRC); 4695 er32(MPRC); 4696 er32(GPTC); 4697 er32(GORCL); 4698 er32(GORCH); 4699 er32(GOTCL); 4700 er32(GOTCH); 4701 er32(RNBC); 4702 er32(RUC); 4703 er32(RFC); 4704 er32(ROC); 4705 er32(RJC); 4706 er32(TORL); 4707 er32(TORH); 4708 er32(TOTL); 4709 er32(TOTH); 4710 er32(TPR); 4711 er32(TPT); 4712 4713 er32(PTC64); 4714 er32(PTC127); 4715 er32(PTC255); 4716 er32(PTC511); 4717 er32(PTC1023); 4718 er32(PTC1522); 4719 4720 er32(MPTC); 4721 er32(BPTC); 4722 4723 if (hw->mac_type < e1000_82543) 4724 return; 4725 4726 er32(ALGNERRC); 4727 er32(RXERRC); 4728 er32(TNCRS); 4729 er32(CEXTERR); 4730 er32(TSCTC); 4731 er32(TSCTFC); 4732 4733 if (hw->mac_type <= e1000_82544) 4734 return; 4735 4736 er32(MGTPRC); 4737 er32(MGTPDC); 4738 er32(MGTPTC); 4739 } 4740 4741 /** 4742 * e1000_reset_adaptive - Resets Adaptive IFS to its default state. 4743 * @hw: Struct containing variables accessed by shared code 4744 * 4745 * Call this after e1000_init_hw. You may override the IFS defaults by setting 4746 * hw->ifs_params_forced to true. However, you must initialize hw-> 4747 * current_ifs_val, ifs_min_val, ifs_max_val, ifs_step_size, and ifs_ratio 4748 * before calling this function. 4749 */ 4750 void e1000_reset_adaptive(struct e1000_hw *hw) 4751 { 4752 if (hw->adaptive_ifs) { 4753 if (!hw->ifs_params_forced) { 4754 hw->current_ifs_val = 0; 4755 hw->ifs_min_val = IFS_MIN; 4756 hw->ifs_max_val = IFS_MAX; 4757 hw->ifs_step_size = IFS_STEP; 4758 hw->ifs_ratio = IFS_RATIO; 4759 } 4760 hw->in_ifs_mode = false; 4761 ew32(AIT, 0); 4762 } else { 4763 e_dbg("Not in Adaptive IFS mode!\n"); 4764 } 4765 } 4766 4767 /** 4768 * e1000_update_adaptive - update adaptive IFS 4769 * @hw: Struct containing variables accessed by shared code 4770 * 4771 * Called during the callback/watchdog routine to update IFS value based on 4772 * the ratio of transmits to collisions. 4773 */ 4774 void e1000_update_adaptive(struct e1000_hw *hw) 4775 { 4776 if (hw->adaptive_ifs) { 4777 if ((hw->collision_delta * hw->ifs_ratio) > hw->tx_packet_delta) { 4778 if (hw->tx_packet_delta > MIN_NUM_XMITS) { 4779 hw->in_ifs_mode = true; 4780 if (hw->current_ifs_val < hw->ifs_max_val) { 4781 if (hw->current_ifs_val == 0) 4782 hw->current_ifs_val = 4783 hw->ifs_min_val; 4784 else 4785 hw->current_ifs_val += 4786 hw->ifs_step_size; 4787 ew32(AIT, hw->current_ifs_val); 4788 } 4789 } 4790 } else { 4791 if (hw->in_ifs_mode && 4792 (hw->tx_packet_delta <= MIN_NUM_XMITS)) { 4793 hw->current_ifs_val = 0; 4794 hw->in_ifs_mode = false; 4795 ew32(AIT, 0); 4796 } 4797 } 4798 } else { 4799 e_dbg("Not in Adaptive IFS mode!\n"); 4800 } 4801 } 4802 4803 /** 4804 * e1000_get_bus_info 4805 * @hw: Struct containing variables accessed by shared code 4806 * 4807 * Gets the current PCI bus type, speed, and width of the hardware 4808 */ 4809 void e1000_get_bus_info(struct e1000_hw *hw) 4810 { 4811 u32 status; 4812 4813 switch (hw->mac_type) { 4814 case e1000_82542_rev2_0: 4815 case e1000_82542_rev2_1: 4816 hw->bus_type = e1000_bus_type_pci; 4817 hw->bus_speed = e1000_bus_speed_unknown; 4818 hw->bus_width = e1000_bus_width_unknown; 4819 break; 4820 default: 4821 status = er32(STATUS); 4822 hw->bus_type = (status & E1000_STATUS_PCIX_MODE) ? 4823 e1000_bus_type_pcix : e1000_bus_type_pci; 4824 4825 if (hw->device_id == E1000_DEV_ID_82546EB_QUAD_COPPER) { 4826 hw->bus_speed = (hw->bus_type == e1000_bus_type_pci) ? 4827 e1000_bus_speed_66 : e1000_bus_speed_120; 4828 } else if (hw->bus_type == e1000_bus_type_pci) { 4829 hw->bus_speed = (status & E1000_STATUS_PCI66) ? 4830 e1000_bus_speed_66 : e1000_bus_speed_33; 4831 } else { 4832 switch (status & E1000_STATUS_PCIX_SPEED) { 4833 case E1000_STATUS_PCIX_SPEED_66: 4834 hw->bus_speed = e1000_bus_speed_66; 4835 break; 4836 case E1000_STATUS_PCIX_SPEED_100: 4837 hw->bus_speed = e1000_bus_speed_100; 4838 break; 4839 case E1000_STATUS_PCIX_SPEED_133: 4840 hw->bus_speed = e1000_bus_speed_133; 4841 break; 4842 default: 4843 hw->bus_speed = e1000_bus_speed_reserved; 4844 break; 4845 } 4846 } 4847 hw->bus_width = (status & E1000_STATUS_BUS64) ? 4848 e1000_bus_width_64 : e1000_bus_width_32; 4849 break; 4850 } 4851 } 4852 4853 /** 4854 * e1000_write_reg_io 4855 * @hw: Struct containing variables accessed by shared code 4856 * @offset: offset to write to 4857 * @value: value to write 4858 * 4859 * Writes a value to one of the devices registers using port I/O (as opposed to 4860 * memory mapped I/O). Only 82544 and newer devices support port I/O. 4861 */ 4862 static void e1000_write_reg_io(struct e1000_hw *hw, u32 offset, u32 value) 4863 { 4864 unsigned long io_addr = hw->io_base; 4865 unsigned long io_data = hw->io_base + 4; 4866 4867 e1000_io_write(hw, io_addr, offset); 4868 e1000_io_write(hw, io_data, value); 4869 } 4870 4871 /** 4872 * e1000_get_cable_length - Estimates the cable length. 4873 * @hw: Struct containing variables accessed by shared code 4874 * @min_length: The estimated minimum length 4875 * @max_length: The estimated maximum length 4876 * 4877 * returns: - E1000_ERR_XXX 4878 * E1000_SUCCESS 4879 * 4880 * This function always returns a ranged length (minimum & maximum). 4881 * So for M88 phy's, this function interprets the one value returned from the 4882 * register to the minimum and maximum range. 4883 * For IGP phy's, the function calculates the range by the AGC registers. 4884 */ 4885 static s32 e1000_get_cable_length(struct e1000_hw *hw, u16 *min_length, 4886 u16 *max_length) 4887 { 4888 s32 ret_val; 4889 u16 agc_value = 0; 4890 u16 i, phy_data; 4891 u16 cable_length; 4892 4893 *min_length = *max_length = 0; 4894 4895 /* Use old method for Phy older than IGP */ 4896 if (hw->phy_type == e1000_phy_m88) { 4897 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_STATUS, 4898 &phy_data); 4899 if (ret_val) 4900 return ret_val; 4901 cable_length = (phy_data & M88E1000_PSSR_CABLE_LENGTH) >> 4902 M88E1000_PSSR_CABLE_LENGTH_SHIFT; 4903 4904 /* Convert the enum value to ranged values */ 4905 switch (cable_length) { 4906 case e1000_cable_length_50: 4907 *min_length = 0; 4908 *max_length = e1000_igp_cable_length_50; 4909 break; 4910 case e1000_cable_length_50_80: 4911 *min_length = e1000_igp_cable_length_50; 4912 *max_length = e1000_igp_cable_length_80; 4913 break; 4914 case e1000_cable_length_80_110: 4915 *min_length = e1000_igp_cable_length_80; 4916 *max_length = e1000_igp_cable_length_110; 4917 break; 4918 case e1000_cable_length_110_140: 4919 *min_length = e1000_igp_cable_length_110; 4920 *max_length = e1000_igp_cable_length_140; 4921 break; 4922 case e1000_cable_length_140: 4923 *min_length = e1000_igp_cable_length_140; 4924 *max_length = e1000_igp_cable_length_170; 4925 break; 4926 default: 4927 return -E1000_ERR_PHY; 4928 } 4929 } else if (hw->phy_type == e1000_phy_igp) { /* For IGP PHY */ 4930 u16 cur_agc_value; 4931 u16 min_agc_value = IGP01E1000_AGC_LENGTH_TABLE_SIZE; 4932 static const u16 agc_reg_array[IGP01E1000_PHY_CHANNEL_NUM] = { 4933 IGP01E1000_PHY_AGC_A, 4934 IGP01E1000_PHY_AGC_B, 4935 IGP01E1000_PHY_AGC_C, 4936 IGP01E1000_PHY_AGC_D 4937 }; 4938 /* Read the AGC registers for all channels */ 4939 for (i = 0; i < IGP01E1000_PHY_CHANNEL_NUM; i++) { 4940 ret_val = 4941 e1000_read_phy_reg(hw, agc_reg_array[i], &phy_data); 4942 if (ret_val) 4943 return ret_val; 4944 4945 cur_agc_value = phy_data >> IGP01E1000_AGC_LENGTH_SHIFT; 4946 4947 /* Value bound check. */ 4948 if ((cur_agc_value >= 4949 IGP01E1000_AGC_LENGTH_TABLE_SIZE - 1) || 4950 (cur_agc_value == 0)) 4951 return -E1000_ERR_PHY; 4952 4953 agc_value += cur_agc_value; 4954 4955 /* Update minimal AGC value. */ 4956 if (min_agc_value > cur_agc_value) 4957 min_agc_value = cur_agc_value; 4958 } 4959 4960 /* Remove the minimal AGC result for length < 50m */ 4961 if (agc_value < 4962 IGP01E1000_PHY_CHANNEL_NUM * e1000_igp_cable_length_50) { 4963 agc_value -= min_agc_value; 4964 4965 /* Get the average length of the remaining 3 channels */ 4966 agc_value /= (IGP01E1000_PHY_CHANNEL_NUM - 1); 4967 } else { 4968 /* Get the average length of all the 4 channels. */ 4969 agc_value /= IGP01E1000_PHY_CHANNEL_NUM; 4970 } 4971 4972 /* Set the range of the calculated length. */ 4973 *min_length = ((e1000_igp_cable_length_table[agc_value] - 4974 IGP01E1000_AGC_RANGE) > 0) ? 4975 (e1000_igp_cable_length_table[agc_value] - 4976 IGP01E1000_AGC_RANGE) : 0; 4977 *max_length = e1000_igp_cable_length_table[agc_value] + 4978 IGP01E1000_AGC_RANGE; 4979 } 4980 4981 return E1000_SUCCESS; 4982 } 4983 4984 /** 4985 * e1000_check_polarity - Check the cable polarity 4986 * @hw: Struct containing variables accessed by shared code 4987 * @polarity: output parameter : 0 - Polarity is not reversed 4988 * 1 - Polarity is reversed. 4989 * 4990 * returns: - E1000_ERR_XXX 4991 * E1000_SUCCESS 4992 * 4993 * For phy's older than IGP, this function simply reads the polarity bit in the 4994 * Phy Status register. For IGP phy's, this bit is valid only if link speed is 4995 * 10 Mbps. If the link speed is 100 Mbps there is no polarity so this bit will 4996 * return 0. If the link speed is 1000 Mbps the polarity status is in the 4997 * IGP01E1000_PHY_PCS_INIT_REG. 4998 */ 4999 static s32 e1000_check_polarity(struct e1000_hw *hw, 5000 e1000_rev_polarity *polarity) 5001 { 5002 s32 ret_val; 5003 u16 phy_data; 5004 5005 if (hw->phy_type == e1000_phy_m88) { 5006 /* return the Polarity bit in the Status register. */ 5007 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_STATUS, 5008 &phy_data); 5009 if (ret_val) 5010 return ret_val; 5011 *polarity = ((phy_data & M88E1000_PSSR_REV_POLARITY) >> 5012 M88E1000_PSSR_REV_POLARITY_SHIFT) ? 5013 e1000_rev_polarity_reversed : e1000_rev_polarity_normal; 5014 5015 } else if (hw->phy_type == e1000_phy_igp) { 5016 /* Read the Status register to check the speed */ 5017 ret_val = e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_STATUS, 5018 &phy_data); 5019 if (ret_val) 5020 return ret_val; 5021 5022 /* If speed is 1000 Mbps, must read the 5023 * IGP01E1000_PHY_PCS_INIT_REG to find the polarity status 5024 */ 5025 if ((phy_data & IGP01E1000_PSSR_SPEED_MASK) == 5026 IGP01E1000_PSSR_SPEED_1000MBPS) { 5027 /* Read the GIG initialization PCS register (0x00B4) */ 5028 ret_val = 5029 e1000_read_phy_reg(hw, IGP01E1000_PHY_PCS_INIT_REG, 5030 &phy_data); 5031 if (ret_val) 5032 return ret_val; 5033 5034 /* Check the polarity bits */ 5035 *polarity = (phy_data & IGP01E1000_PHY_POLARITY_MASK) ? 5036 e1000_rev_polarity_reversed : 5037 e1000_rev_polarity_normal; 5038 } else { 5039 /* For 10 Mbps, read the polarity bit in the status 5040 * register. (for 100 Mbps this bit is always 0) 5041 */ 5042 *polarity = 5043 (phy_data & IGP01E1000_PSSR_POLARITY_REVERSED) ? 5044 e1000_rev_polarity_reversed : 5045 e1000_rev_polarity_normal; 5046 } 5047 } 5048 return E1000_SUCCESS; 5049 } 5050 5051 /** 5052 * e1000_check_downshift - Check if Downshift occurred 5053 * @hw: Struct containing variables accessed by shared code 5054 * 5055 * returns: - E1000_ERR_XXX 5056 * E1000_SUCCESS 5057 * 5058 * For phy's older than IGP, this function reads the Downshift bit in the Phy 5059 * Specific Status register. For IGP phy's, it reads the Downgrade bit in the 5060 * Link Health register. In IGP this bit is latched high, so the driver must 5061 * read it immediately after link is established. 5062 */ 5063 static s32 e1000_check_downshift(struct e1000_hw *hw) 5064 { 5065 s32 ret_val; 5066 u16 phy_data; 5067 5068 if (hw->phy_type == e1000_phy_igp) { 5069 ret_val = e1000_read_phy_reg(hw, IGP01E1000_PHY_LINK_HEALTH, 5070 &phy_data); 5071 if (ret_val) 5072 return ret_val; 5073 5074 hw->speed_downgraded = 5075 (phy_data & IGP01E1000_PLHR_SS_DOWNGRADE) ? 1 : 0; 5076 } else if (hw->phy_type == e1000_phy_m88) { 5077 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_SPEC_STATUS, 5078 &phy_data); 5079 if (ret_val) 5080 return ret_val; 5081 5082 hw->speed_downgraded = (phy_data & M88E1000_PSSR_DOWNSHIFT) >> 5083 M88E1000_PSSR_DOWNSHIFT_SHIFT; 5084 } 5085 5086 return E1000_SUCCESS; 5087 } 5088 5089 static const u16 dsp_reg_array[IGP01E1000_PHY_CHANNEL_NUM] = { 5090 IGP01E1000_PHY_AGC_PARAM_A, 5091 IGP01E1000_PHY_AGC_PARAM_B, 5092 IGP01E1000_PHY_AGC_PARAM_C, 5093 IGP01E1000_PHY_AGC_PARAM_D 5094 }; 5095 5096 static s32 e1000_1000Mb_check_cable_length(struct e1000_hw *hw) 5097 { 5098 u16 min_length, max_length; 5099 u16 phy_data, i; 5100 s32 ret_val; 5101 5102 ret_val = e1000_get_cable_length(hw, &min_length, &max_length); 5103 if (ret_val) 5104 return ret_val; 5105 5106 if (hw->dsp_config_state != e1000_dsp_config_enabled) 5107 return 0; 5108 5109 if (min_length >= e1000_igp_cable_length_50) { 5110 for (i = 0; i < IGP01E1000_PHY_CHANNEL_NUM; i++) { 5111 ret_val = e1000_read_phy_reg(hw, dsp_reg_array[i], 5112 &phy_data); 5113 if (ret_val) 5114 return ret_val; 5115 5116 phy_data &= ~IGP01E1000_PHY_EDAC_MU_INDEX; 5117 5118 ret_val = e1000_write_phy_reg(hw, dsp_reg_array[i], 5119 phy_data); 5120 if (ret_val) 5121 return ret_val; 5122 } 5123 hw->dsp_config_state = e1000_dsp_config_activated; 5124 } else { 5125 u16 ffe_idle_err_timeout = FFE_IDLE_ERR_COUNT_TIMEOUT_20; 5126 u32 idle_errs = 0; 5127 5128 /* clear previous idle error counts */ 5129 ret_val = e1000_read_phy_reg(hw, PHY_1000T_STATUS, &phy_data); 5130 if (ret_val) 5131 return ret_val; 5132 5133 for (i = 0; i < ffe_idle_err_timeout; i++) { 5134 udelay(1000); 5135 ret_val = e1000_read_phy_reg(hw, PHY_1000T_STATUS, 5136 &phy_data); 5137 if (ret_val) 5138 return ret_val; 5139 5140 idle_errs += (phy_data & SR_1000T_IDLE_ERROR_CNT); 5141 if (idle_errs > SR_1000T_PHY_EXCESSIVE_IDLE_ERR_COUNT) { 5142 hw->ffe_config_state = e1000_ffe_config_active; 5143 5144 ret_val = e1000_write_phy_reg(hw, 5145 IGP01E1000_PHY_DSP_FFE, 5146 IGP01E1000_PHY_DSP_FFE_CM_CP); 5147 if (ret_val) 5148 return ret_val; 5149 break; 5150 } 5151 5152 if (idle_errs) 5153 ffe_idle_err_timeout = 5154 FFE_IDLE_ERR_COUNT_TIMEOUT_100; 5155 } 5156 } 5157 5158 return 0; 5159 } 5160 5161 /** 5162 * e1000_config_dsp_after_link_change 5163 * @hw: Struct containing variables accessed by shared code 5164 * @link_up: was link up at the time this was called 5165 * 5166 * returns: - E1000_ERR_PHY if fail to read/write the PHY 5167 * E1000_SUCCESS at any other case. 5168 * 5169 * 82541_rev_2 & 82547_rev_2 have the capability to configure the DSP when a 5170 * gigabit link is achieved to improve link quality. 5171 */ 5172 5173 static s32 e1000_config_dsp_after_link_change(struct e1000_hw *hw, bool link_up) 5174 { 5175 s32 ret_val; 5176 u16 phy_data, phy_saved_data, speed, duplex, i; 5177 5178 if (hw->phy_type != e1000_phy_igp) 5179 return E1000_SUCCESS; 5180 5181 if (link_up) { 5182 ret_val = e1000_get_speed_and_duplex(hw, &speed, &duplex); 5183 if (ret_val) { 5184 e_dbg("Error getting link speed and duplex\n"); 5185 return ret_val; 5186 } 5187 5188 if (speed == SPEED_1000) { 5189 ret_val = e1000_1000Mb_check_cable_length(hw); 5190 if (ret_val) 5191 return ret_val; 5192 } 5193 } else { 5194 if (hw->dsp_config_state == e1000_dsp_config_activated) { 5195 /* Save off the current value of register 0x2F5B to be 5196 * restored at the end of the routines. 5197 */ 5198 ret_val = 5199 e1000_read_phy_reg(hw, 0x2F5B, &phy_saved_data); 5200 5201 if (ret_val) 5202 return ret_val; 5203 5204 /* Disable the PHY transmitter */ 5205 ret_val = e1000_write_phy_reg(hw, 0x2F5B, 0x0003); 5206 5207 if (ret_val) 5208 return ret_val; 5209 5210 msleep(20); 5211 5212 ret_val = e1000_write_phy_reg(hw, 0x0000, 5213 IGP01E1000_IEEE_FORCE_GIGA); 5214 if (ret_val) 5215 return ret_val; 5216 for (i = 0; i < IGP01E1000_PHY_CHANNEL_NUM; i++) { 5217 ret_val = 5218 e1000_read_phy_reg(hw, dsp_reg_array[i], 5219 &phy_data); 5220 if (ret_val) 5221 return ret_val; 5222 5223 phy_data &= ~IGP01E1000_PHY_EDAC_MU_INDEX; 5224 phy_data |= IGP01E1000_PHY_EDAC_SIGN_EXT_9_BITS; 5225 5226 ret_val = 5227 e1000_write_phy_reg(hw, dsp_reg_array[i], 5228 phy_data); 5229 if (ret_val) 5230 return ret_val; 5231 } 5232 5233 ret_val = e1000_write_phy_reg(hw, 0x0000, 5234 IGP01E1000_IEEE_RESTART_AUTONEG); 5235 if (ret_val) 5236 return ret_val; 5237 5238 msleep(20); 5239 5240 /* Now enable the transmitter */ 5241 ret_val = 5242 e1000_write_phy_reg(hw, 0x2F5B, phy_saved_data); 5243 5244 if (ret_val) 5245 return ret_val; 5246 5247 hw->dsp_config_state = e1000_dsp_config_enabled; 5248 } 5249 5250 if (hw->ffe_config_state == e1000_ffe_config_active) { 5251 /* Save off the current value of register 0x2F5B to be 5252 * restored at the end of the routines. 5253 */ 5254 ret_val = 5255 e1000_read_phy_reg(hw, 0x2F5B, &phy_saved_data); 5256 5257 if (ret_val) 5258 return ret_val; 5259 5260 /* Disable the PHY transmitter */ 5261 ret_val = e1000_write_phy_reg(hw, 0x2F5B, 0x0003); 5262 5263 if (ret_val) 5264 return ret_val; 5265 5266 msleep(20); 5267 5268 ret_val = e1000_write_phy_reg(hw, 0x0000, 5269 IGP01E1000_IEEE_FORCE_GIGA); 5270 if (ret_val) 5271 return ret_val; 5272 ret_val = 5273 e1000_write_phy_reg(hw, IGP01E1000_PHY_DSP_FFE, 5274 IGP01E1000_PHY_DSP_FFE_DEFAULT); 5275 if (ret_val) 5276 return ret_val; 5277 5278 ret_val = e1000_write_phy_reg(hw, 0x0000, 5279 IGP01E1000_IEEE_RESTART_AUTONEG); 5280 if (ret_val) 5281 return ret_val; 5282 5283 msleep(20); 5284 5285 /* Now enable the transmitter */ 5286 ret_val = 5287 e1000_write_phy_reg(hw, 0x2F5B, phy_saved_data); 5288 5289 if (ret_val) 5290 return ret_val; 5291 5292 hw->ffe_config_state = e1000_ffe_config_enabled; 5293 } 5294 } 5295 return E1000_SUCCESS; 5296 } 5297 5298 /** 5299 * e1000_set_phy_mode - Set PHY to class A mode 5300 * @hw: Struct containing variables accessed by shared code 5301 * 5302 * Assumes the following operations will follow to enable the new class mode. 5303 * 1. Do a PHY soft reset 5304 * 2. Restart auto-negotiation or force link. 5305 */ 5306 static s32 e1000_set_phy_mode(struct e1000_hw *hw) 5307 { 5308 s32 ret_val; 5309 u16 eeprom_data; 5310 5311 if ((hw->mac_type == e1000_82545_rev_3) && 5312 (hw->media_type == e1000_media_type_copper)) { 5313 ret_val = 5314 e1000_read_eeprom(hw, EEPROM_PHY_CLASS_WORD, 1, 5315 &eeprom_data); 5316 if (ret_val) 5317 return ret_val; 5318 5319 if ((eeprom_data != EEPROM_RESERVED_WORD) && 5320 (eeprom_data & EEPROM_PHY_CLASS_A)) { 5321 ret_val = 5322 e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 5323 0x000B); 5324 if (ret_val) 5325 return ret_val; 5326 ret_val = 5327 e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, 5328 0x8104); 5329 if (ret_val) 5330 return ret_val; 5331 5332 hw->phy_reset_disable = false; 5333 } 5334 } 5335 5336 return E1000_SUCCESS; 5337 } 5338 5339 /** 5340 * e1000_set_d3_lplu_state - set d3 link power state 5341 * @hw: Struct containing variables accessed by shared code 5342 * @active: true to enable lplu false to disable lplu. 5343 * 5344 * This function sets the lplu state according to the active flag. When 5345 * activating lplu this function also disables smart speed and vise versa. 5346 * lplu will not be activated unless the device autonegotiation advertisement 5347 * meets standards of either 10 or 10/100 or 10/100/1000 at all duplexes. 5348 * 5349 * returns: - E1000_ERR_PHY if fail to read/write the PHY 5350 * E1000_SUCCESS at any other case. 5351 */ 5352 static s32 e1000_set_d3_lplu_state(struct e1000_hw *hw, bool active) 5353 { 5354 s32 ret_val; 5355 u16 phy_data; 5356 5357 if (hw->phy_type != e1000_phy_igp) 5358 return E1000_SUCCESS; 5359 5360 /* During driver activity LPLU should not be used or it will attain link 5361 * from the lowest speeds starting from 10Mbps. The capability is used 5362 * for Dx transitions and states 5363 */ 5364 if (hw->mac_type == e1000_82541_rev_2 || 5365 hw->mac_type == e1000_82547_rev_2) { 5366 ret_val = 5367 e1000_read_phy_reg(hw, IGP01E1000_GMII_FIFO, &phy_data); 5368 if (ret_val) 5369 return ret_val; 5370 } 5371 5372 if (!active) { 5373 if (hw->mac_type == e1000_82541_rev_2 || 5374 hw->mac_type == e1000_82547_rev_2) { 5375 phy_data &= ~IGP01E1000_GMII_FLEX_SPD; 5376 ret_val = 5377 e1000_write_phy_reg(hw, IGP01E1000_GMII_FIFO, 5378 phy_data); 5379 if (ret_val) 5380 return ret_val; 5381 } 5382 5383 /* LPLU and SmartSpeed are mutually exclusive. LPLU is used 5384 * during Dx states where the power conservation is most 5385 * important. During driver activity we should enable 5386 * SmartSpeed, so performance is maintained. 5387 */ 5388 if (hw->smart_speed == e1000_smart_speed_on) { 5389 ret_val = 5390 e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 5391 &phy_data); 5392 if (ret_val) 5393 return ret_val; 5394 5395 phy_data |= IGP01E1000_PSCFR_SMART_SPEED; 5396 ret_val = 5397 e1000_write_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 5398 phy_data); 5399 if (ret_val) 5400 return ret_val; 5401 } else if (hw->smart_speed == e1000_smart_speed_off) { 5402 ret_val = 5403 e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 5404 &phy_data); 5405 if (ret_val) 5406 return ret_val; 5407 5408 phy_data &= ~IGP01E1000_PSCFR_SMART_SPEED; 5409 ret_val = 5410 e1000_write_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 5411 phy_data); 5412 if (ret_val) 5413 return ret_val; 5414 } 5415 } else if ((hw->autoneg_advertised == AUTONEG_ADVERTISE_SPEED_DEFAULT) || 5416 (hw->autoneg_advertised == AUTONEG_ADVERTISE_10_ALL) || 5417 (hw->autoneg_advertised == AUTONEG_ADVERTISE_10_100_ALL)) { 5418 if (hw->mac_type == e1000_82541_rev_2 || 5419 hw->mac_type == e1000_82547_rev_2) { 5420 phy_data |= IGP01E1000_GMII_FLEX_SPD; 5421 ret_val = 5422 e1000_write_phy_reg(hw, IGP01E1000_GMII_FIFO, 5423 phy_data); 5424 if (ret_val) 5425 return ret_val; 5426 } 5427 5428 /* When LPLU is enabled we should disable SmartSpeed */ 5429 ret_val = 5430 e1000_read_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 5431 &phy_data); 5432 if (ret_val) 5433 return ret_val; 5434 5435 phy_data &= ~IGP01E1000_PSCFR_SMART_SPEED; 5436 ret_val = 5437 e1000_write_phy_reg(hw, IGP01E1000_PHY_PORT_CONFIG, 5438 phy_data); 5439 if (ret_val) 5440 return ret_val; 5441 } 5442 return E1000_SUCCESS; 5443 } 5444 5445 /** 5446 * e1000_set_vco_speed 5447 * @hw: Struct containing variables accessed by shared code 5448 * 5449 * Change VCO speed register to improve Bit Error Rate performance of SERDES. 5450 */ 5451 static s32 e1000_set_vco_speed(struct e1000_hw *hw) 5452 { 5453 s32 ret_val; 5454 u16 default_page = 0; 5455 u16 phy_data; 5456 5457 switch (hw->mac_type) { 5458 case e1000_82545_rev_3: 5459 case e1000_82546_rev_3: 5460 break; 5461 default: 5462 return E1000_SUCCESS; 5463 } 5464 5465 /* Set PHY register 30, page 5, bit 8 to 0 */ 5466 5467 ret_val = 5468 e1000_read_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, &default_page); 5469 if (ret_val) 5470 return ret_val; 5471 5472 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 0x0005); 5473 if (ret_val) 5474 return ret_val; 5475 5476 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, &phy_data); 5477 if (ret_val) 5478 return ret_val; 5479 5480 phy_data &= ~M88E1000_PHY_VCO_REG_BIT8; 5481 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, phy_data); 5482 if (ret_val) 5483 return ret_val; 5484 5485 /* Set PHY register 30, page 4, bit 11 to 1 */ 5486 5487 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 0x0004); 5488 if (ret_val) 5489 return ret_val; 5490 5491 ret_val = e1000_read_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, &phy_data); 5492 if (ret_val) 5493 return ret_val; 5494 5495 phy_data |= M88E1000_PHY_VCO_REG_BIT11; 5496 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, phy_data); 5497 if (ret_val) 5498 return ret_val; 5499 5500 ret_val = 5501 e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, default_page); 5502 if (ret_val) 5503 return ret_val; 5504 5505 return E1000_SUCCESS; 5506 } 5507 5508 /** 5509 * e1000_enable_mng_pass_thru - check for bmc pass through 5510 * @hw: Struct containing variables accessed by shared code 5511 * 5512 * Verifies the hardware needs to allow ARPs to be processed by the host 5513 * returns: - true/false 5514 */ 5515 u32 e1000_enable_mng_pass_thru(struct e1000_hw *hw) 5516 { 5517 u32 manc; 5518 5519 if (hw->asf_firmware_present) { 5520 manc = er32(MANC); 5521 5522 if (!(manc & E1000_MANC_RCV_TCO_EN) || 5523 !(manc & E1000_MANC_EN_MAC_ADDR_FILTER)) 5524 return false; 5525 if ((manc & E1000_MANC_SMBUS_EN) && !(manc & E1000_MANC_ASF_EN)) 5526 return true; 5527 } 5528 return false; 5529 } 5530 5531 static s32 e1000_polarity_reversal_workaround(struct e1000_hw *hw) 5532 { 5533 s32 ret_val; 5534 u16 mii_status_reg; 5535 u16 i; 5536 5537 /* Polarity reversal workaround for forced 10F/10H links. */ 5538 5539 /* Disable the transmitter on the PHY */ 5540 5541 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 0x0019); 5542 if (ret_val) 5543 return ret_val; 5544 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, 0xFFFF); 5545 if (ret_val) 5546 return ret_val; 5547 5548 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 0x0000); 5549 if (ret_val) 5550 return ret_val; 5551 5552 /* This loop will early-out if the NO link condition has been met. */ 5553 for (i = PHY_FORCE_TIME; i > 0; i--) { 5554 /* Read the MII Status Register and wait for Link Status bit 5555 * to be clear. 5556 */ 5557 5558 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 5559 if (ret_val) 5560 return ret_val; 5561 5562 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 5563 if (ret_val) 5564 return ret_val; 5565 5566 if ((mii_status_reg & ~MII_SR_LINK_STATUS) == 0) 5567 break; 5568 msleep(100); 5569 } 5570 5571 /* Recommended delay time after link has been lost */ 5572 msleep(1000); 5573 5574 /* Now we will re-enable th transmitter on the PHY */ 5575 5576 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 0x0019); 5577 if (ret_val) 5578 return ret_val; 5579 msleep(50); 5580 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, 0xFFF0); 5581 if (ret_val) 5582 return ret_val; 5583 msleep(50); 5584 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, 0xFF00); 5585 if (ret_val) 5586 return ret_val; 5587 msleep(50); 5588 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_GEN_CONTROL, 0x0000); 5589 if (ret_val) 5590 return ret_val; 5591 5592 ret_val = e1000_write_phy_reg(hw, M88E1000_PHY_PAGE_SELECT, 0x0000); 5593 if (ret_val) 5594 return ret_val; 5595 5596 /* This loop will early-out if the link condition has been met. */ 5597 for (i = PHY_FORCE_TIME; i > 0; i--) { 5598 /* Read the MII Status Register and wait for Link Status bit 5599 * to be set. 5600 */ 5601 5602 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 5603 if (ret_val) 5604 return ret_val; 5605 5606 ret_val = e1000_read_phy_reg(hw, PHY_STATUS, &mii_status_reg); 5607 if (ret_val) 5608 return ret_val; 5609 5610 if (mii_status_reg & MII_SR_LINK_STATUS) 5611 break; 5612 msleep(100); 5613 } 5614 return E1000_SUCCESS; 5615 } 5616 5617 /** 5618 * e1000_get_auto_rd_done 5619 * @hw: Struct containing variables accessed by shared code 5620 * 5621 * Check for EEPROM Auto Read bit done. 5622 * returns: - E1000_ERR_RESET if fail to reset MAC 5623 * E1000_SUCCESS at any other case. 5624 */ 5625 static s32 e1000_get_auto_rd_done(struct e1000_hw *hw) 5626 { 5627 msleep(5); 5628 return E1000_SUCCESS; 5629 } 5630 5631 /** 5632 * e1000_get_phy_cfg_done 5633 * @hw: Struct containing variables accessed by shared code 5634 * 5635 * Checks if the PHY configuration is done 5636 * returns: - E1000_ERR_RESET if fail to reset MAC 5637 * E1000_SUCCESS at any other case. 5638 */ 5639 static s32 e1000_get_phy_cfg_done(struct e1000_hw *hw) 5640 { 5641 msleep(10); 5642 return E1000_SUCCESS; 5643 } 5644