1/* 2 * This file contains miscellaneous low-level functions. 3 * Copyright (C) 1995-1996 Gary Thomas (gdt@linuxppc.org) 4 * 5 * Largely rewritten by Cort Dougan (cort@cs.nmt.edu) 6 * and Paul Mackerras. 7 * 8 * kexec bits: 9 * Copyright (C) 2002-2003 Eric Biederman <ebiederm@xmission.com> 10 * GameCube/ppc32 port Copyright (C) 2004 Albert Herranz 11 * PPC44x port. Copyright (C) 2011, IBM Corporation 12 * Author: Suzuki Poulose <suzuki@in.ibm.com> 13 * 14 * This program is free software; you can redistribute it and/or 15 * modify it under the terms of the GNU General Public License 16 * as published by the Free Software Foundation; either version 17 * 2 of the License, or (at your option) any later version. 18 * 19 */ 20 21#include <linux/sys.h> 22#include <asm/unistd.h> 23#include <asm/errno.h> 24#include <asm/reg.h> 25#include <asm/page.h> 26#include <asm/cache.h> 27#include <asm/cputable.h> 28#include <asm/mmu.h> 29#include <asm/ppc_asm.h> 30#include <asm/thread_info.h> 31#include <asm/asm-offsets.h> 32#include <asm/processor.h> 33#include <asm/kexec.h> 34#include <asm/bug.h> 35#include <asm/ptrace.h> 36 37 .text 38 39/* 40 * We store the saved ksp_limit in the unused part 41 * of the STACK_FRAME_OVERHEAD 42 */ 43_GLOBAL(call_do_softirq) 44 mflr r0 45 stw r0,4(r1) 46 lwz r10,THREAD+KSP_LIMIT(r2) 47 addi r11,r3,THREAD_INFO_GAP 48 stwu r1,THREAD_SIZE-STACK_FRAME_OVERHEAD(r3) 49 mr r1,r3 50 stw r10,8(r1) 51 stw r11,THREAD+KSP_LIMIT(r2) 52 bl __do_softirq 53 lwz r10,8(r1) 54 lwz r1,0(r1) 55 lwz r0,4(r1) 56 stw r10,THREAD+KSP_LIMIT(r2) 57 mtlr r0 58 blr 59 60_GLOBAL(call_do_irq) 61 mflr r0 62 stw r0,4(r1) 63 lwz r10,THREAD+KSP_LIMIT(r2) 64 addi r11,r3,THREAD_INFO_GAP 65 stwu r1,THREAD_SIZE-STACK_FRAME_OVERHEAD(r4) 66 mr r1,r4 67 stw r10,8(r1) 68 stw r11,THREAD+KSP_LIMIT(r2) 69 bl __do_irq 70 lwz r10,8(r1) 71 lwz r1,0(r1) 72 lwz r0,4(r1) 73 stw r10,THREAD+KSP_LIMIT(r2) 74 mtlr r0 75 blr 76 77/* 78 * This returns the high 64 bits of the product of two 64-bit numbers. 79 */ 80_GLOBAL(mulhdu) 81 cmpwi r6,0 82 cmpwi cr1,r3,0 83 mr r10,r4 84 mulhwu r4,r4,r5 85 beq 1f 86 mulhwu r0,r10,r6 87 mullw r7,r10,r5 88 addc r7,r0,r7 89 addze r4,r4 901: beqlr cr1 /* all done if high part of A is 0 */ 91 mr r10,r3 92 mullw r9,r3,r5 93 mulhwu r3,r3,r5 94 beq 2f 95 mullw r0,r10,r6 96 mulhwu r8,r10,r6 97 addc r7,r0,r7 98 adde r4,r4,r8 99 addze r3,r3 1002: addc r4,r4,r9 101 addze r3,r3 102 blr 103 104/* 105 * sub_reloc_offset(x) returns x - reloc_offset(). 106 */ 107_GLOBAL(sub_reloc_offset) 108 mflr r0 109 bl 1f 1101: mflr r5 111 lis r4,1b@ha 112 addi r4,r4,1b@l 113 subf r5,r4,r5 114 subf r3,r5,r3 115 mtlr r0 116 blr 117 118/* 119 * reloc_got2 runs through the .got2 section adding an offset 120 * to each entry. 121 */ 122_GLOBAL(reloc_got2) 123 mflr r11 124 lis r7,__got2_start@ha 125 addi r7,r7,__got2_start@l 126 lis r8,__got2_end@ha 127 addi r8,r8,__got2_end@l 128 subf r8,r7,r8 129 srwi. r8,r8,2 130 beqlr 131 mtctr r8 132 bl 1f 1331: mflr r0 134 lis r4,1b@ha 135 addi r4,r4,1b@l 136 subf r0,r4,r0 137 add r7,r0,r7 1382: lwz r0,0(r7) 139 add r0,r0,r3 140 stw r0,0(r7) 141 addi r7,r7,4 142 bdnz 2b 143 mtlr r11 144 blr 145 146/* 147 * call_setup_cpu - call the setup_cpu function for this cpu 148 * r3 = data offset, r24 = cpu number 149 * 150 * Setup function is called with: 151 * r3 = data offset 152 * r4 = ptr to CPU spec (relocated) 153 */ 154_GLOBAL(call_setup_cpu) 155 addis r4,r3,cur_cpu_spec@ha 156 addi r4,r4,cur_cpu_spec@l 157 lwz r4,0(r4) 158 add r4,r4,r3 159 lwz r5,CPU_SPEC_SETUP(r4) 160 cmpwi 0,r5,0 161 add r5,r5,r3 162 beqlr 163 mtctr r5 164 bctr 165 166#if defined(CONFIG_CPU_FREQ_PMAC) && defined(CONFIG_6xx) 167 168/* This gets called by via-pmu.c to switch the PLL selection 169 * on 750fx CPU. This function should really be moved to some 170 * other place (as most of the cpufreq code in via-pmu 171 */ 172_GLOBAL(low_choose_750fx_pll) 173 /* Clear MSR:EE */ 174 mfmsr r7 175 rlwinm r0,r7,0,17,15 176 mtmsr r0 177 178 /* If switching to PLL1, disable HID0:BTIC */ 179 cmplwi cr0,r3,0 180 beq 1f 181 mfspr r5,SPRN_HID0 182 rlwinm r5,r5,0,27,25 183 sync 184 mtspr SPRN_HID0,r5 185 isync 186 sync 187 1881: 189 /* Calc new HID1 value */ 190 mfspr r4,SPRN_HID1 /* Build a HID1:PS bit from parameter */ 191 rlwinm r5,r3,16,15,15 /* Clear out HID1:PS from value read */ 192 rlwinm r4,r4,0,16,14 /* Could have I used rlwimi here ? */ 193 or r4,r4,r5 194 mtspr SPRN_HID1,r4 195 196 /* Store new HID1 image */ 197 CURRENT_THREAD_INFO(r6, r1) 198 lwz r6,TI_CPU(r6) 199 slwi r6,r6,2 200 addis r6,r6,nap_save_hid1@ha 201 stw r4,nap_save_hid1@l(r6) 202 203 /* If switching to PLL0, enable HID0:BTIC */ 204 cmplwi cr0,r3,0 205 bne 1f 206 mfspr r5,SPRN_HID0 207 ori r5,r5,HID0_BTIC 208 sync 209 mtspr SPRN_HID0,r5 210 isync 211 sync 212 2131: 214 /* Return */ 215 mtmsr r7 216 blr 217 218_GLOBAL(low_choose_7447a_dfs) 219 /* Clear MSR:EE */ 220 mfmsr r7 221 rlwinm r0,r7,0,17,15 222 mtmsr r0 223 224 /* Calc new HID1 value */ 225 mfspr r4,SPRN_HID1 226 insrwi r4,r3,1,9 /* insert parameter into bit 9 */ 227 sync 228 mtspr SPRN_HID1,r4 229 sync 230 isync 231 232 /* Return */ 233 mtmsr r7 234 blr 235 236#endif /* CONFIG_CPU_FREQ_PMAC && CONFIG_6xx */ 237 238/* 239 * complement mask on the msr then "or" some values on. 240 * _nmask_and_or_msr(nmask, value_to_or) 241 */ 242_GLOBAL(_nmask_and_or_msr) 243 mfmsr r0 /* Get current msr */ 244 andc r0,r0,r3 /* And off the bits set in r3 (first parm) */ 245 or r0,r0,r4 /* Or on the bits in r4 (second parm) */ 246 SYNC /* Some chip revs have problems here... */ 247 mtmsr r0 /* Update machine state */ 248 isync 249 blr /* Done */ 250 251#ifdef CONFIG_40x 252 253/* 254 * Do an IO access in real mode 255 */ 256_GLOBAL(real_readb) 257 mfmsr r7 258 ori r0,r7,MSR_DR 259 xori r0,r0,MSR_DR 260 sync 261 mtmsr r0 262 sync 263 isync 264 lbz r3,0(r3) 265 sync 266 mtmsr r7 267 sync 268 isync 269 blr 270 271 /* 272 * Do an IO access in real mode 273 */ 274_GLOBAL(real_writeb) 275 mfmsr r7 276 ori r0,r7,MSR_DR 277 xori r0,r0,MSR_DR 278 sync 279 mtmsr r0 280 sync 281 isync 282 stb r3,0(r4) 283 sync 284 mtmsr r7 285 sync 286 isync 287 blr 288 289#endif /* CONFIG_40x */ 290 291 292/* 293 * Flush instruction cache. 294 * This is a no-op on the 601. 295 */ 296_GLOBAL(flush_instruction_cache) 297#if defined(CONFIG_8xx) 298 isync 299 lis r5, IDC_INVALL@h 300 mtspr SPRN_IC_CST, r5 301#elif defined(CONFIG_4xx) 302#ifdef CONFIG_403GCX 303 li r3, 512 304 mtctr r3 305 lis r4, KERNELBASE@h 3061: iccci 0, r4 307 addi r4, r4, 16 308 bdnz 1b 309#else 310 lis r3, KERNELBASE@h 311 iccci 0,r3 312#endif 313#elif CONFIG_FSL_BOOKE 314BEGIN_FTR_SECTION 315 mfspr r3,SPRN_L1CSR0 316 ori r3,r3,L1CSR0_CFI|L1CSR0_CLFC 317 /* msync; isync recommended here */ 318 mtspr SPRN_L1CSR0,r3 319 isync 320 blr 321END_FTR_SECTION_IFSET(CPU_FTR_UNIFIED_ID_CACHE) 322 mfspr r3,SPRN_L1CSR1 323 ori r3,r3,L1CSR1_ICFI|L1CSR1_ICLFR 324 mtspr SPRN_L1CSR1,r3 325#else 326 mfspr r3,SPRN_PVR 327 rlwinm r3,r3,16,16,31 328 cmpwi 0,r3,1 329 beqlr /* for 601, do nothing */ 330 /* 603/604 processor - use invalidate-all bit in HID0 */ 331 mfspr r3,SPRN_HID0 332 ori r3,r3,HID0_ICFI 333 mtspr SPRN_HID0,r3 334#endif /* CONFIG_8xx/4xx */ 335 isync 336 blr 337 338/* 339 * Write any modified data cache blocks out to memory 340 * and invalidate the corresponding instruction cache blocks. 341 * This is a no-op on the 601. 342 * 343 * flush_icache_range(unsigned long start, unsigned long stop) 344 */ 345_KPROBE(flush_icache_range) 346BEGIN_FTR_SECTION 347 isync 348 blr /* for 601, do nothing */ 349END_FTR_SECTION_IFSET(CPU_FTR_COHERENT_ICACHE) 350 li r5,L1_CACHE_BYTES-1 351 andc r3,r3,r5 352 subf r4,r3,r4 353 add r4,r4,r5 354 srwi. r4,r4,L1_CACHE_SHIFT 355 beqlr 356 mtctr r4 357 mr r6,r3 3581: dcbst 0,r3 359 addi r3,r3,L1_CACHE_BYTES 360 bdnz 1b 361 sync /* wait for dcbst's to get to ram */ 362#ifndef CONFIG_44x 363 mtctr r4 3642: icbi 0,r6 365 addi r6,r6,L1_CACHE_BYTES 366 bdnz 2b 367#else 368 /* Flash invalidate on 44x because we are passed kmapped addresses and 369 this doesn't work for userspace pages due to the virtually tagged 370 icache. Sigh. */ 371 iccci 0, r0 372#endif 373 sync /* additional sync needed on g4 */ 374 isync 375 blr 376/* 377 * Write any modified data cache blocks out to memory. 378 * Does not invalidate the corresponding cache lines (especially for 379 * any corresponding instruction cache). 380 * 381 * clean_dcache_range(unsigned long start, unsigned long stop) 382 */ 383_GLOBAL(clean_dcache_range) 384 li r5,L1_CACHE_BYTES-1 385 andc r3,r3,r5 386 subf r4,r3,r4 387 add r4,r4,r5 388 srwi. r4,r4,L1_CACHE_SHIFT 389 beqlr 390 mtctr r4 391 3921: dcbst 0,r3 393 addi r3,r3,L1_CACHE_BYTES 394 bdnz 1b 395 sync /* wait for dcbst's to get to ram */ 396 blr 397 398/* 399 * Write any modified data cache blocks out to memory and invalidate them. 400 * Does not invalidate the corresponding instruction cache blocks. 401 * 402 * flush_dcache_range(unsigned long start, unsigned long stop) 403 */ 404_GLOBAL(flush_dcache_range) 405 li r5,L1_CACHE_BYTES-1 406 andc r3,r3,r5 407 subf r4,r3,r4 408 add r4,r4,r5 409 srwi. r4,r4,L1_CACHE_SHIFT 410 beqlr 411 mtctr r4 412 4131: dcbf 0,r3 414 addi r3,r3,L1_CACHE_BYTES 415 bdnz 1b 416 sync /* wait for dcbst's to get to ram */ 417 blr 418 419/* 420 * Like above, but invalidate the D-cache. This is used by the 8xx 421 * to invalidate the cache so the PPC core doesn't get stale data 422 * from the CPM (no cache snooping here :-). 423 * 424 * invalidate_dcache_range(unsigned long start, unsigned long stop) 425 */ 426_GLOBAL(invalidate_dcache_range) 427 li r5,L1_CACHE_BYTES-1 428 andc r3,r3,r5 429 subf r4,r3,r4 430 add r4,r4,r5 431 srwi. r4,r4,L1_CACHE_SHIFT 432 beqlr 433 mtctr r4 434 4351: dcbi 0,r3 436 addi r3,r3,L1_CACHE_BYTES 437 bdnz 1b 438 sync /* wait for dcbi's to get to ram */ 439 blr 440 441/* 442 * Flush a particular page from the data cache to RAM. 443 * Note: this is necessary because the instruction cache does *not* 444 * snoop from the data cache. 445 * This is a no-op on the 601 which has a unified cache. 446 * 447 * void __flush_dcache_icache(void *page) 448 */ 449_GLOBAL(__flush_dcache_icache) 450BEGIN_FTR_SECTION 451 blr 452END_FTR_SECTION_IFSET(CPU_FTR_COHERENT_ICACHE) 453 rlwinm r3,r3,0,0,31-PAGE_SHIFT /* Get page base address */ 454 li r4,PAGE_SIZE/L1_CACHE_BYTES /* Number of lines in a page */ 455 mtctr r4 456 mr r6,r3 4570: dcbst 0,r3 /* Write line to ram */ 458 addi r3,r3,L1_CACHE_BYTES 459 bdnz 0b 460 sync 461#ifdef CONFIG_44x 462 /* We don't flush the icache on 44x. Those have a virtual icache 463 * and we don't have access to the virtual address here (it's 464 * not the page vaddr but where it's mapped in user space). The 465 * flushing of the icache on these is handled elsewhere, when 466 * a change in the address space occurs, before returning to 467 * user space 468 */ 469BEGIN_MMU_FTR_SECTION 470 blr 471END_MMU_FTR_SECTION_IFSET(MMU_FTR_TYPE_44x) 472#endif /* CONFIG_44x */ 473 mtctr r4 4741: icbi 0,r6 475 addi r6,r6,L1_CACHE_BYTES 476 bdnz 1b 477 sync 478 isync 479 blr 480 481#ifndef CONFIG_BOOKE 482/* 483 * Flush a particular page from the data cache to RAM, identified 484 * by its physical address. We turn off the MMU so we can just use 485 * the physical address (this may be a highmem page without a kernel 486 * mapping). 487 * 488 * void __flush_dcache_icache_phys(unsigned long physaddr) 489 */ 490_GLOBAL(__flush_dcache_icache_phys) 491BEGIN_FTR_SECTION 492 blr /* for 601, do nothing */ 493END_FTR_SECTION_IFSET(CPU_FTR_COHERENT_ICACHE) 494 mfmsr r10 495 rlwinm r0,r10,0,28,26 /* clear DR */ 496 mtmsr r0 497 isync 498 rlwinm r3,r3,0,0,31-PAGE_SHIFT /* Get page base address */ 499 li r4,PAGE_SIZE/L1_CACHE_BYTES /* Number of lines in a page */ 500 mtctr r4 501 mr r6,r3 5020: dcbst 0,r3 /* Write line to ram */ 503 addi r3,r3,L1_CACHE_BYTES 504 bdnz 0b 505 sync 506 mtctr r4 5071: icbi 0,r6 508 addi r6,r6,L1_CACHE_BYTES 509 bdnz 1b 510 sync 511 mtmsr r10 /* restore DR */ 512 isync 513 blr 514#endif /* CONFIG_BOOKE */ 515 516/* 517 * Clear pages using the dcbz instruction, which doesn't cause any 518 * memory traffic (except to write out any cache lines which get 519 * displaced). This only works on cacheable memory. 520 * 521 * void clear_pages(void *page, int order) ; 522 */ 523_GLOBAL(clear_pages) 524 li r0,PAGE_SIZE/L1_CACHE_BYTES 525 slw r0,r0,r4 526 mtctr r0 5271: dcbz 0,r3 528 addi r3,r3,L1_CACHE_BYTES 529 bdnz 1b 530 blr 531 532/* 533 * Copy a whole page. We use the dcbz instruction on the destination 534 * to reduce memory traffic (it eliminates the unnecessary reads of 535 * the destination into cache). This requires that the destination 536 * is cacheable. 537 */ 538#define COPY_16_BYTES \ 539 lwz r6,4(r4); \ 540 lwz r7,8(r4); \ 541 lwz r8,12(r4); \ 542 lwzu r9,16(r4); \ 543 stw r6,4(r3); \ 544 stw r7,8(r3); \ 545 stw r8,12(r3); \ 546 stwu r9,16(r3) 547 548_GLOBAL(copy_page) 549 addi r3,r3,-4 550 addi r4,r4,-4 551 552 li r5,4 553 554#if MAX_COPY_PREFETCH > 1 555 li r0,MAX_COPY_PREFETCH 556 li r11,4 557 mtctr r0 55811: dcbt r11,r4 559 addi r11,r11,L1_CACHE_BYTES 560 bdnz 11b 561#else /* MAX_COPY_PREFETCH == 1 */ 562 dcbt r5,r4 563 li r11,L1_CACHE_BYTES+4 564#endif /* MAX_COPY_PREFETCH */ 565 li r0,PAGE_SIZE/L1_CACHE_BYTES - MAX_COPY_PREFETCH 566 crclr 4*cr0+eq 5672: 568 mtctr r0 5691: 570 dcbt r11,r4 571 dcbz r5,r3 572 COPY_16_BYTES 573#if L1_CACHE_BYTES >= 32 574 COPY_16_BYTES 575#if L1_CACHE_BYTES >= 64 576 COPY_16_BYTES 577 COPY_16_BYTES 578#if L1_CACHE_BYTES >= 128 579 COPY_16_BYTES 580 COPY_16_BYTES 581 COPY_16_BYTES 582 COPY_16_BYTES 583#endif 584#endif 585#endif 586 bdnz 1b 587 beqlr 588 crnot 4*cr0+eq,4*cr0+eq 589 li r0,MAX_COPY_PREFETCH 590 li r11,4 591 b 2b 592 593/* 594 * void atomic_clear_mask(atomic_t mask, atomic_t *addr) 595 * void atomic_set_mask(atomic_t mask, atomic_t *addr); 596 */ 597_GLOBAL(atomic_clear_mask) 59810: lwarx r5,0,r4 599 andc r5,r5,r3 600 PPC405_ERR77(0,r4) 601 stwcx. r5,0,r4 602 bne- 10b 603 blr 604_GLOBAL(atomic_set_mask) 60510: lwarx r5,0,r4 606 or r5,r5,r3 607 PPC405_ERR77(0,r4) 608 stwcx. r5,0,r4 609 bne- 10b 610 blr 611 612/* 613 * Extended precision shifts. 614 * 615 * Updated to be valid for shift counts from 0 to 63 inclusive. 616 * -- Gabriel 617 * 618 * R3/R4 has 64 bit value 619 * R5 has shift count 620 * result in R3/R4 621 * 622 * ashrdi3: arithmetic right shift (sign propagation) 623 * lshrdi3: logical right shift 624 * ashldi3: left shift 625 */ 626_GLOBAL(__ashrdi3) 627 subfic r6,r5,32 628 srw r4,r4,r5 # LSW = count > 31 ? 0 : LSW >> count 629 addi r7,r5,32 # could be xori, or addi with -32 630 slw r6,r3,r6 # t1 = count > 31 ? 0 : MSW << (32-count) 631 rlwinm r8,r7,0,32 # t3 = (count < 32) ? 32 : 0 632 sraw r7,r3,r7 # t2 = MSW >> (count-32) 633 or r4,r4,r6 # LSW |= t1 634 slw r7,r7,r8 # t2 = (count < 32) ? 0 : t2 635 sraw r3,r3,r5 # MSW = MSW >> count 636 or r4,r4,r7 # LSW |= t2 637 blr 638 639_GLOBAL(__ashldi3) 640 subfic r6,r5,32 641 slw r3,r3,r5 # MSW = count > 31 ? 0 : MSW << count 642 addi r7,r5,32 # could be xori, or addi with -32 643 srw r6,r4,r6 # t1 = count > 31 ? 0 : LSW >> (32-count) 644 slw r7,r4,r7 # t2 = count < 32 ? 0 : LSW << (count-32) 645 or r3,r3,r6 # MSW |= t1 646 slw r4,r4,r5 # LSW = LSW << count 647 or r3,r3,r7 # MSW |= t2 648 blr 649 650_GLOBAL(__lshrdi3) 651 subfic r6,r5,32 652 srw r4,r4,r5 # LSW = count > 31 ? 0 : LSW >> count 653 addi r7,r5,32 # could be xori, or addi with -32 654 slw r6,r3,r6 # t1 = count > 31 ? 0 : MSW << (32-count) 655 srw r7,r3,r7 # t2 = count < 32 ? 0 : MSW >> (count-32) 656 or r4,r4,r6 # LSW |= t1 657 srw r3,r3,r5 # MSW = MSW >> count 658 or r4,r4,r7 # LSW |= t2 659 blr 660 661/* 662 * 64-bit comparison: __ucmpdi2(u64 a, u64 b) 663 * Returns 0 if a < b, 1 if a == b, 2 if a > b. 664 */ 665_GLOBAL(__ucmpdi2) 666 cmplw r3,r5 667 li r3,1 668 bne 1f 669 cmplw r4,r6 670 beqlr 6711: li r3,0 672 bltlr 673 li r3,2 674 blr 675 676_GLOBAL(__bswapdi2) 677 rotlwi r9,r4,8 678 rotlwi r10,r3,8 679 rlwimi r9,r4,24,0,7 680 rlwimi r10,r3,24,0,7 681 rlwimi r9,r4,24,16,23 682 rlwimi r10,r3,24,16,23 683 mr r3,r9 684 mr r4,r10 685 blr 686 687_GLOBAL(abs) 688 srawi r4,r3,31 689 xor r3,r3,r4 690 sub r3,r3,r4 691 blr 692 693#ifdef CONFIG_SMP 694_GLOBAL(start_secondary_resume) 695 /* Reset stack */ 696 CURRENT_THREAD_INFO(r1, r1) 697 addi r1,r1,THREAD_SIZE-STACK_FRAME_OVERHEAD 698 li r3,0 699 stw r3,0(r1) /* Zero the stack frame pointer */ 700 bl start_secondary 701 b . 702#endif /* CONFIG_SMP */ 703 704/* 705 * This routine is just here to keep GCC happy - sigh... 706 */ 707_GLOBAL(__main) 708 blr 709 710#ifdef CONFIG_KEXEC 711 /* 712 * Must be relocatable PIC code callable as a C function. 713 */ 714 .globl relocate_new_kernel 715relocate_new_kernel: 716 /* r3 = page_list */ 717 /* r4 = reboot_code_buffer */ 718 /* r5 = start_address */ 719 720#ifdef CONFIG_FSL_BOOKE 721 722 mr r29, r3 723 mr r30, r4 724 mr r31, r5 725 726#define ENTRY_MAPPING_KEXEC_SETUP 727#include "fsl_booke_entry_mapping.S" 728#undef ENTRY_MAPPING_KEXEC_SETUP 729 730 mr r3, r29 731 mr r4, r30 732 mr r5, r31 733 734 li r0, 0 735#elif defined(CONFIG_44x) 736 737 /* Save our parameters */ 738 mr r29, r3 739 mr r30, r4 740 mr r31, r5 741 742#ifdef CONFIG_PPC_47x 743 /* Check for 47x cores */ 744 mfspr r3,SPRN_PVR 745 srwi r3,r3,16 746 cmplwi cr0,r3,PVR_476@h 747 beq setup_map_47x 748 cmplwi cr0,r3,PVR_476_ISS@h 749 beq setup_map_47x 750#endif /* CONFIG_PPC_47x */ 751 752/* 753 * Code for setting up 1:1 mapping for PPC440x for KEXEC 754 * 755 * We cannot switch off the MMU on PPC44x. 756 * So we: 757 * 1) Invalidate all the mappings except the one we are running from. 758 * 2) Create a tmp mapping for our code in the other address space(TS) and 759 * jump to it. Invalidate the entry we started in. 760 * 3) Create a 1:1 mapping for 0-2GiB in chunks of 256M in original TS. 761 * 4) Jump to the 1:1 mapping in original TS. 762 * 5) Invalidate the tmp mapping. 763 * 764 * - Based on the kexec support code for FSL BookE 765 * 766 */ 767 768 /* 769 * Load the PID with kernel PID (0). 770 * Also load our MSR_IS and TID to MMUCR for TLB search. 771 */ 772 li r3, 0 773 mtspr SPRN_PID, r3 774 mfmsr r4 775 andi. r4,r4,MSR_IS@l 776 beq wmmucr 777 oris r3,r3,PPC44x_MMUCR_STS@h 778wmmucr: 779 mtspr SPRN_MMUCR,r3 780 sync 781 782 /* 783 * Invalidate all the TLB entries except the current entry 784 * where we are running from 785 */ 786 bl 0f /* Find our address */ 7870: mflr r5 /* Make it accessible */ 788 tlbsx r23,0,r5 /* Find entry we are in */ 789 li r4,0 /* Start at TLB entry 0 */ 790 li r3,0 /* Set PAGEID inval value */ 7911: cmpw r23,r4 /* Is this our entry? */ 792 beq skip /* If so, skip the inval */ 793 tlbwe r3,r4,PPC44x_TLB_PAGEID /* If not, inval the entry */ 794skip: 795 addi r4,r4,1 /* Increment */ 796 cmpwi r4,64 /* Are we done? */ 797 bne 1b /* If not, repeat */ 798 isync 799 800 /* Create a temp mapping and jump to it */ 801 andi. r6, r23, 1 /* Find the index to use */ 802 addi r24, r6, 1 /* r24 will contain 1 or 2 */ 803 804 mfmsr r9 /* get the MSR */ 805 rlwinm r5, r9, 27, 31, 31 /* Extract the MSR[IS] */ 806 xori r7, r5, 1 /* Use the other address space */ 807 808 /* Read the current mapping entries */ 809 tlbre r3, r23, PPC44x_TLB_PAGEID 810 tlbre r4, r23, PPC44x_TLB_XLAT 811 tlbre r5, r23, PPC44x_TLB_ATTRIB 812 813 /* Save our current XLAT entry */ 814 mr r25, r4 815 816 /* Extract the TLB PageSize */ 817 li r10, 1 /* r10 will hold PageSize */ 818 rlwinm r11, r3, 0, 24, 27 /* bits 24-27 */ 819 820 /* XXX: As of now we use 256M, 4K pages */ 821 cmpwi r11, PPC44x_TLB_256M 822 bne tlb_4k 823 rotlwi r10, r10, 28 /* r10 = 256M */ 824 b write_out 825tlb_4k: 826 cmpwi r11, PPC44x_TLB_4K 827 bne default 828 rotlwi r10, r10, 12 /* r10 = 4K */ 829 b write_out 830default: 831 rotlwi r10, r10, 10 /* r10 = 1K */ 832 833write_out: 834 /* 835 * Write out the tmp 1:1 mapping for this code in other address space 836 * Fixup EPN = RPN , TS=other address space 837 */ 838 insrwi r3, r7, 1, 23 /* Bit 23 is TS for PAGEID field */ 839 840 /* Write out the tmp mapping entries */ 841 tlbwe r3, r24, PPC44x_TLB_PAGEID 842 tlbwe r4, r24, PPC44x_TLB_XLAT 843 tlbwe r5, r24, PPC44x_TLB_ATTRIB 844 845 subi r11, r10, 1 /* PageOffset Mask = PageSize - 1 */ 846 not r10, r11 /* Mask for PageNum */ 847 848 /* Switch to other address space in MSR */ 849 insrwi r9, r7, 1, 26 /* Set MSR[IS] = r7 */ 850 851 bl 1f 8521: mflr r8 853 addi r8, r8, (2f-1b) /* Find the target offset */ 854 855 /* Jump to the tmp mapping */ 856 mtspr SPRN_SRR0, r8 857 mtspr SPRN_SRR1, r9 858 rfi 859 8602: 861 /* Invalidate the entry we were executing from */ 862 li r3, 0 863 tlbwe r3, r23, PPC44x_TLB_PAGEID 864 865 /* attribute fields. rwx for SUPERVISOR mode */ 866 li r5, 0 867 ori r5, r5, (PPC44x_TLB_SW | PPC44x_TLB_SR | PPC44x_TLB_SX | PPC44x_TLB_G) 868 869 /* Create 1:1 mapping in 256M pages */ 870 xori r7, r7, 1 /* Revert back to Original TS */ 871 872 li r8, 0 /* PageNumber */ 873 li r6, 3 /* TLB Index, start at 3 */ 874 875next_tlb: 876 rotlwi r3, r8, 28 /* Create EPN (bits 0-3) */ 877 mr r4, r3 /* RPN = EPN */ 878 ori r3, r3, (PPC44x_TLB_VALID | PPC44x_TLB_256M) /* SIZE = 256M, Valid */ 879 insrwi r3, r7, 1, 23 /* Set TS from r7 */ 880 881 tlbwe r3, r6, PPC44x_TLB_PAGEID /* PageID field : EPN, V, SIZE */ 882 tlbwe r4, r6, PPC44x_TLB_XLAT /* Address translation : RPN */ 883 tlbwe r5, r6, PPC44x_TLB_ATTRIB /* Attributes */ 884 885 addi r8, r8, 1 /* Increment PN */ 886 addi r6, r6, 1 /* Increment TLB Index */ 887 cmpwi r8, 8 /* Are we done ? */ 888 bne next_tlb 889 isync 890 891 /* Jump to the new mapping 1:1 */ 892 li r9,0 893 insrwi r9, r7, 1, 26 /* Set MSR[IS] = r7 */ 894 895 bl 1f 8961: mflr r8 897 and r8, r8, r11 /* Get our offset within page */ 898 addi r8, r8, (2f-1b) 899 900 and r5, r25, r10 /* Get our target PageNum */ 901 or r8, r8, r5 /* Target jump address */ 902 903 mtspr SPRN_SRR0, r8 904 mtspr SPRN_SRR1, r9 905 rfi 9062: 907 /* Invalidate the tmp entry we used */ 908 li r3, 0 909 tlbwe r3, r24, PPC44x_TLB_PAGEID 910 sync 911 b ppc44x_map_done 912 913#ifdef CONFIG_PPC_47x 914 915 /* 1:1 mapping for 47x */ 916 917setup_map_47x: 918 919 /* 920 * Load the kernel pid (0) to PID and also to MMUCR[TID]. 921 * Also set the MSR IS->MMUCR STS 922 */ 923 li r3, 0 924 mtspr SPRN_PID, r3 /* Set PID */ 925 mfmsr r4 /* Get MSR */ 926 andi. r4, r4, MSR_IS@l /* TS=1? */ 927 beq 1f /* If not, leave STS=0 */ 928 oris r3, r3, PPC47x_MMUCR_STS@h /* Set STS=1 */ 9291: mtspr SPRN_MMUCR, r3 /* Put MMUCR */ 930 sync 931 932 /* Find the entry we are running from */ 933 bl 2f 9342: mflr r23 935 tlbsx r23, 0, r23 936 tlbre r24, r23, 0 /* TLB Word 0 */ 937 tlbre r25, r23, 1 /* TLB Word 1 */ 938 tlbre r26, r23, 2 /* TLB Word 2 */ 939 940 941 /* 942 * Invalidates all the tlb entries by writing to 256 RPNs(r4) 943 * of 4k page size in all 4 ways (0-3 in r3). 944 * This would invalidate the entire UTLB including the one we are 945 * running from. However the shadow TLB entries would help us 946 * to continue the execution, until we flush them (rfi/isync). 947 */ 948 addis r3, 0, 0x8000 /* specify the way */ 949 addi r4, 0, 0 /* TLB Word0 = (EPN=0, VALID = 0) */ 950 addi r5, 0, 0 951 b clear_utlb_entry 952 953 /* Align the loop to speed things up. from head_44x.S */ 954 .align 6 955 956clear_utlb_entry: 957 958 tlbwe r4, r3, 0 959 tlbwe r5, r3, 1 960 tlbwe r5, r3, 2 961 addis r3, r3, 0x2000 /* Increment the way */ 962 cmpwi r3, 0 963 bne clear_utlb_entry 964 addis r3, 0, 0x8000 965 addis r4, r4, 0x100 /* Increment the EPN */ 966 cmpwi r4, 0 967 bne clear_utlb_entry 968 969 /* Create the entries in the other address space */ 970 mfmsr r5 971 rlwinm r7, r5, 27, 31, 31 /* Get the TS (Bit 26) from MSR */ 972 xori r7, r7, 1 /* r7 = !TS */ 973 974 insrwi r24, r7, 1, 21 /* Change the TS in the saved TLB word 0 */ 975 976 /* 977 * write out the TLB entries for the tmp mapping 978 * Use way '0' so that we could easily invalidate it later. 979 */ 980 lis r3, 0x8000 /* Way '0' */ 981 982 tlbwe r24, r3, 0 983 tlbwe r25, r3, 1 984 tlbwe r26, r3, 2 985 986 /* Update the msr to the new TS */ 987 insrwi r5, r7, 1, 26 988 989 bl 1f 9901: mflr r6 991 addi r6, r6, (2f-1b) 992 993 mtspr SPRN_SRR0, r6 994 mtspr SPRN_SRR1, r5 995 rfi 996 997 /* 998 * Now we are in the tmp address space. 999 * Create a 1:1 mapping for 0-2GiB in the original TS. 1000 */ 10012: 1002 li r3, 0 1003 li r4, 0 /* TLB Word 0 */ 1004 li r5, 0 /* TLB Word 1 */ 1005 li r6, 0 1006 ori r6, r6, PPC47x_TLB2_S_RWX /* TLB word 2 */ 1007 1008 li r8, 0 /* PageIndex */ 1009 1010 xori r7, r7, 1 /* revert back to original TS */ 1011 1012write_utlb: 1013 rotlwi r5, r8, 28 /* RPN = PageIndex * 256M */ 1014 /* ERPN = 0 as we don't use memory above 2G */ 1015 1016 mr r4, r5 /* EPN = RPN */ 1017 ori r4, r4, (PPC47x_TLB0_VALID | PPC47x_TLB0_256M) 1018 insrwi r4, r7, 1, 21 /* Insert the TS to Word 0 */ 1019 1020 tlbwe r4, r3, 0 /* Write out the entries */ 1021 tlbwe r5, r3, 1 1022 tlbwe r6, r3, 2 1023 addi r8, r8, 1 1024 cmpwi r8, 8 /* Have we completed ? */ 1025 bne write_utlb 1026 1027 /* make sure we complete the TLB write up */ 1028 isync 1029 1030 /* 1031 * Prepare to jump to the 1:1 mapping. 1032 * 1) Extract page size of the tmp mapping 1033 * DSIZ = TLB_Word0[22:27] 1034 * 2) Calculate the physical address of the address 1035 * to jump to. 1036 */ 1037 rlwinm r10, r24, 0, 22, 27 1038 1039 cmpwi r10, PPC47x_TLB0_4K 1040 bne 0f 1041 li r10, 0x1000 /* r10 = 4k */ 1042 bl 1f 1043 10440: 1045 /* Defaults to 256M */ 1046 lis r10, 0x1000 1047 1048 bl 1f 10491: mflr r4 1050 addi r4, r4, (2f-1b) /* virtual address of 2f */ 1051 1052 subi r11, r10, 1 /* offsetmask = Pagesize - 1 */ 1053 not r10, r11 /* Pagemask = ~(offsetmask) */ 1054 1055 and r5, r25, r10 /* Physical page */ 1056 and r6, r4, r11 /* offset within the current page */ 1057 1058 or r5, r5, r6 /* Physical address for 2f */ 1059 1060 /* Switch the TS in MSR to the original one */ 1061 mfmsr r8 1062 insrwi r8, r7, 1, 26 1063 1064 mtspr SPRN_SRR1, r8 1065 mtspr SPRN_SRR0, r5 1066 rfi 1067 10682: 1069 /* Invalidate the tmp mapping */ 1070 lis r3, 0x8000 /* Way '0' */ 1071 1072 clrrwi r24, r24, 12 /* Clear the valid bit */ 1073 tlbwe r24, r3, 0 1074 tlbwe r25, r3, 1 1075 tlbwe r26, r3, 2 1076 1077 /* Make sure we complete the TLB write and flush the shadow TLB */ 1078 isync 1079 1080#endif 1081 1082ppc44x_map_done: 1083 1084 1085 /* Restore the parameters */ 1086 mr r3, r29 1087 mr r4, r30 1088 mr r5, r31 1089 1090 li r0, 0 1091#else 1092 li r0, 0 1093 1094 /* 1095 * Set Machine Status Register to a known status, 1096 * switch the MMU off and jump to 1: in a single step. 1097 */ 1098 1099 mr r8, r0 1100 ori r8, r8, MSR_RI|MSR_ME 1101 mtspr SPRN_SRR1, r8 1102 addi r8, r4, 1f - relocate_new_kernel 1103 mtspr SPRN_SRR0, r8 1104 sync 1105 rfi 1106 11071: 1108#endif 1109 /* from this point address translation is turned off */ 1110 /* and interrupts are disabled */ 1111 1112 /* set a new stack at the bottom of our page... */ 1113 /* (not really needed now) */ 1114 addi r1, r4, KEXEC_CONTROL_PAGE_SIZE - 8 /* for LR Save+Back Chain */ 1115 stw r0, 0(r1) 1116 1117 /* Do the copies */ 1118 li r6, 0 /* checksum */ 1119 mr r0, r3 1120 b 1f 1121 11220: /* top, read another word for the indirection page */ 1123 lwzu r0, 4(r3) 1124 11251: 1126 /* is it a destination page? (r8) */ 1127 rlwinm. r7, r0, 0, 31, 31 /* IND_DESTINATION (1<<0) */ 1128 beq 2f 1129 1130 rlwinm r8, r0, 0, 0, 19 /* clear kexec flags, page align */ 1131 b 0b 1132 11332: /* is it an indirection page? (r3) */ 1134 rlwinm. r7, r0, 0, 30, 30 /* IND_INDIRECTION (1<<1) */ 1135 beq 2f 1136 1137 rlwinm r3, r0, 0, 0, 19 /* clear kexec flags, page align */ 1138 subi r3, r3, 4 1139 b 0b 1140 11412: /* are we done? */ 1142 rlwinm. r7, r0, 0, 29, 29 /* IND_DONE (1<<2) */ 1143 beq 2f 1144 b 3f 1145 11462: /* is it a source page? (r9) */ 1147 rlwinm. r7, r0, 0, 28, 28 /* IND_SOURCE (1<<3) */ 1148 beq 0b 1149 1150 rlwinm r9, r0, 0, 0, 19 /* clear kexec flags, page align */ 1151 1152 li r7, PAGE_SIZE / 4 1153 mtctr r7 1154 subi r9, r9, 4 1155 subi r8, r8, 4 11569: 1157 lwzu r0, 4(r9) /* do the copy */ 1158 xor r6, r6, r0 1159 stwu r0, 4(r8) 1160 dcbst 0, r8 1161 sync 1162 icbi 0, r8 1163 bdnz 9b 1164 1165 addi r9, r9, 4 1166 addi r8, r8, 4 1167 b 0b 1168 11693: 1170 1171 /* To be certain of avoiding problems with self-modifying code 1172 * execute a serializing instruction here. 1173 */ 1174 isync 1175 sync 1176 1177 mfspr r3, SPRN_PIR /* current core we are running on */ 1178 mr r4, r5 /* load physical address of chunk called */ 1179 1180 /* jump to the entry point, usually the setup routine */ 1181 mtlr r5 1182 blrl 1183 11841: b 1b 1185 1186relocate_new_kernel_end: 1187 1188 .globl relocate_new_kernel_size 1189relocate_new_kernel_size: 1190 .long relocate_new_kernel_end - relocate_new_kernel 1191#endif 1192