xref: /openbmc/linux/drivers/usb/serial/cp210x.c (revision 3bf90eca)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Silicon Laboratories CP210x USB to RS232 serial adaptor driver
4  *
5  * Copyright (C) 2005 Craig Shelley (craig@microtron.org.uk)
6  * Copyright (C) 2010-2021 Johan Hovold (johan@kernel.org)
7  *
8  * Support to set flow control line levels using TIOCMGET and TIOCMSET
9  * thanks to Karl Hiramoto karl@hiramoto.org. RTSCTS hardware flow
10  * control thanks to Munir Nassar nassarmu@real-time.com
11  *
12  */
13 
14 #include <linux/kernel.h>
15 #include <linux/errno.h>
16 #include <linux/slab.h>
17 #include <linux/tty.h>
18 #include <linux/tty_flip.h>
19 #include <linux/module.h>
20 #include <linux/usb.h>
21 #include <linux/usb/serial.h>
22 #include <linux/gpio/driver.h>
23 #include <linux/bitops.h>
24 #include <linux/mutex.h>
25 
26 #define DRIVER_DESC "Silicon Labs CP210x RS232 serial adaptor driver"
27 
28 /*
29  * Function Prototypes
30  */
31 static int cp210x_open(struct tty_struct *tty, struct usb_serial_port *);
32 static void cp210x_close(struct usb_serial_port *);
33 static void cp210x_change_speed(struct tty_struct *, struct usb_serial_port *,
34 				const struct ktermios *);
35 static void cp210x_set_termios(struct tty_struct *, struct usb_serial_port *,
36 			       const struct ktermios *);
37 static bool cp210x_tx_empty(struct usb_serial_port *port);
38 static int cp210x_tiocmget(struct tty_struct *);
39 static int cp210x_tiocmset(struct tty_struct *, unsigned int, unsigned int);
40 static int cp210x_tiocmset_port(struct usb_serial_port *port,
41 		unsigned int, unsigned int);
42 static void cp210x_break_ctl(struct tty_struct *, int);
43 static int cp210x_attach(struct usb_serial *);
44 static void cp210x_disconnect(struct usb_serial *);
45 static void cp210x_release(struct usb_serial *);
46 static int cp210x_port_probe(struct usb_serial_port *);
47 static void cp210x_port_remove(struct usb_serial_port *);
48 static void cp210x_dtr_rts(struct usb_serial_port *port, int on);
49 static void cp210x_process_read_urb(struct urb *urb);
50 static void cp210x_enable_event_mode(struct usb_serial_port *port);
51 static void cp210x_disable_event_mode(struct usb_serial_port *port);
52 
53 static const struct usb_device_id id_table[] = {
54 	{ USB_DEVICE(0x0404, 0x034C) },	/* NCR Retail IO Box */
55 	{ USB_DEVICE(0x045B, 0x0053) }, /* Renesas RX610 RX-Stick */
56 	{ USB_DEVICE(0x0471, 0x066A) }, /* AKTAKOM ACE-1001 cable */
57 	{ USB_DEVICE(0x0489, 0xE000) }, /* Pirelli Broadband S.p.A, DP-L10 SIP/GSM Mobile */
58 	{ USB_DEVICE(0x0489, 0xE003) }, /* Pirelli Broadband S.p.A, DP-L10 SIP/GSM Mobile */
59 	{ USB_DEVICE(0x0745, 0x1000) }, /* CipherLab USB CCD Barcode Scanner 1000 */
60 	{ USB_DEVICE(0x0846, 0x1100) }, /* NetGear Managed Switch M4100 series, M5300 series, M7100 series */
61 	{ USB_DEVICE(0x08e6, 0x5501) }, /* Gemalto Prox-PU/CU contactless smartcard reader */
62 	{ USB_DEVICE(0x08FD, 0x000A) }, /* Digianswer A/S , ZigBee/802.15.4 MAC Device */
63 	{ USB_DEVICE(0x0908, 0x01FF) }, /* Siemens RUGGEDCOM USB Serial Console */
64 	{ USB_DEVICE(0x0988, 0x0578) }, /* Teraoka AD2000 */
65 	{ USB_DEVICE(0x0B00, 0x3070) }, /* Ingenico 3070 */
66 	{ USB_DEVICE(0x0BED, 0x1100) }, /* MEI (TM) Cashflow-SC Bill/Voucher Acceptor */
67 	{ USB_DEVICE(0x0BED, 0x1101) }, /* MEI series 2000 Combo Acceptor */
68 	{ USB_DEVICE(0x0FCF, 0x1003) }, /* Dynastream ANT development board */
69 	{ USB_DEVICE(0x0FCF, 0x1004) }, /* Dynastream ANT2USB */
70 	{ USB_DEVICE(0x0FCF, 0x1006) }, /* Dynastream ANT development board */
71 	{ USB_DEVICE(0x0FDE, 0xCA05) }, /* OWL Wireless Electricity Monitor CM-160 */
72 	{ USB_DEVICE(0x106F, 0x0003) },	/* CPI / Money Controls Bulk Coin Recycler */
73 	{ USB_DEVICE(0x10A6, 0xAA26) }, /* Knock-off DCU-11 cable */
74 	{ USB_DEVICE(0x10AB, 0x10C5) }, /* Siemens MC60 Cable */
75 	{ USB_DEVICE(0x10B5, 0xAC70) }, /* Nokia CA-42 USB */
76 	{ USB_DEVICE(0x10C4, 0x0F91) }, /* Vstabi */
77 	{ USB_DEVICE(0x10C4, 0x1101) }, /* Arkham Technology DS101 Bus Monitor */
78 	{ USB_DEVICE(0x10C4, 0x1601) }, /* Arkham Technology DS101 Adapter */
79 	{ USB_DEVICE(0x10C4, 0x800A) }, /* SPORTident BSM7-D-USB main station */
80 	{ USB_DEVICE(0x10C4, 0x803B) }, /* Pololu USB-serial converter */
81 	{ USB_DEVICE(0x10C4, 0x8044) }, /* Cygnal Debug Adapter */
82 	{ USB_DEVICE(0x10C4, 0x804E) }, /* Software Bisque Paramount ME build-in converter */
83 	{ USB_DEVICE(0x10C4, 0x8053) }, /* Enfora EDG1228 */
84 	{ USB_DEVICE(0x10C4, 0x8054) }, /* Enfora GSM2228 */
85 	{ USB_DEVICE(0x10C4, 0x8056) }, /* Lorenz Messtechnik devices */
86 	{ USB_DEVICE(0x10C4, 0x8066) }, /* Argussoft In-System Programmer */
87 	{ USB_DEVICE(0x10C4, 0x806F) }, /* IMS USB to RS422 Converter Cable */
88 	{ USB_DEVICE(0x10C4, 0x807A) }, /* Crumb128 board */
89 	{ USB_DEVICE(0x10C4, 0x80C4) }, /* Cygnal Integrated Products, Inc., Optris infrared thermometer */
90 	{ USB_DEVICE(0x10C4, 0x80CA) }, /* Degree Controls Inc */
91 	{ USB_DEVICE(0x10C4, 0x80DD) }, /* Tracient RFID */
92 	{ USB_DEVICE(0x10C4, 0x80F6) }, /* Suunto sports instrument */
93 	{ USB_DEVICE(0x10C4, 0x8115) }, /* Arygon NFC/Mifare Reader */
94 	{ USB_DEVICE(0x10C4, 0x813D) }, /* Burnside Telecom Deskmobile */
95 	{ USB_DEVICE(0x10C4, 0x813F) }, /* Tams Master Easy Control */
96 	{ USB_DEVICE(0x10C4, 0x814A) }, /* West Mountain Radio RIGblaster P&P */
97 	{ USB_DEVICE(0x10C4, 0x814B) }, /* West Mountain Radio RIGtalk */
98 	{ USB_DEVICE(0x2405, 0x0003) }, /* West Mountain Radio RIGblaster Advantage */
99 	{ USB_DEVICE(0x10C4, 0x8156) }, /* B&G H3000 link cable */
100 	{ USB_DEVICE(0x10C4, 0x815E) }, /* Helicomm IP-Link 1220-DVM */
101 	{ USB_DEVICE(0x10C4, 0x815F) }, /* Timewave HamLinkUSB */
102 	{ USB_DEVICE(0x10C4, 0x817C) }, /* CESINEL MEDCAL N Power Quality Monitor */
103 	{ USB_DEVICE(0x10C4, 0x817D) }, /* CESINEL MEDCAL NT Power Quality Monitor */
104 	{ USB_DEVICE(0x10C4, 0x817E) }, /* CESINEL MEDCAL S Power Quality Monitor */
105 	{ USB_DEVICE(0x10C4, 0x818B) }, /* AVIT Research USB to TTL */
106 	{ USB_DEVICE(0x10C4, 0x819F) }, /* MJS USB Toslink Switcher */
107 	{ USB_DEVICE(0x10C4, 0x81A6) }, /* ThinkOptics WavIt */
108 	{ USB_DEVICE(0x10C4, 0x81A9) }, /* Multiplex RC Interface */
109 	{ USB_DEVICE(0x10C4, 0x81AC) }, /* MSD Dash Hawk */
110 	{ USB_DEVICE(0x10C4, 0x81AD) }, /* INSYS USB Modem */
111 	{ USB_DEVICE(0x10C4, 0x81C8) }, /* Lipowsky Industrie Elektronik GmbH, Baby-JTAG */
112 	{ USB_DEVICE(0x10C4, 0x81D7) }, /* IAI Corp. RCB-CV-USB USB to RS485 Adaptor */
113 	{ USB_DEVICE(0x10C4, 0x81E2) }, /* Lipowsky Industrie Elektronik GmbH, Baby-LIN */
114 	{ USB_DEVICE(0x10C4, 0x81E7) }, /* Aerocomm Radio */
115 	{ USB_DEVICE(0x10C4, 0x81E8) }, /* Zephyr Bioharness */
116 	{ USB_DEVICE(0x10C4, 0x81F2) }, /* C1007 HF band RFID controller */
117 	{ USB_DEVICE(0x10C4, 0x8218) }, /* Lipowsky Industrie Elektronik GmbH, HARP-1 */
118 	{ USB_DEVICE(0x10C4, 0x822B) }, /* Modem EDGE(GSM) Comander 2 */
119 	{ USB_DEVICE(0x10C4, 0x826B) }, /* Cygnal Integrated Products, Inc., Fasttrax GPS demonstration module */
120 	{ USB_DEVICE(0x10C4, 0x8281) }, /* Nanotec Plug & Drive */
121 	{ USB_DEVICE(0x10C4, 0x8293) }, /* Telegesis ETRX2USB */
122 	{ USB_DEVICE(0x10C4, 0x82EF) }, /* CESINEL FALCO 6105 AC Power Supply */
123 	{ USB_DEVICE(0x10C4, 0x82F1) }, /* CESINEL MEDCAL EFD Earth Fault Detector */
124 	{ USB_DEVICE(0x10C4, 0x82F2) }, /* CESINEL MEDCAL ST Network Analyzer */
125 	{ USB_DEVICE(0x10C4, 0x82F4) }, /* Starizona MicroTouch */
126 	{ USB_DEVICE(0x10C4, 0x82F9) }, /* Procyon AVS */
127 	{ USB_DEVICE(0x10C4, 0x8341) }, /* Siemens MC35PU GPRS Modem */
128 	{ USB_DEVICE(0x10C4, 0x8382) }, /* Cygnal Integrated Products, Inc. */
129 	{ USB_DEVICE(0x10C4, 0x83A8) }, /* Amber Wireless AMB2560 */
130 	{ USB_DEVICE(0x10C4, 0x83AA) }, /* Mark-10 Digital Force Gauge */
131 	{ USB_DEVICE(0x10C4, 0x83D8) }, /* DekTec DTA Plus VHF/UHF Booster/Attenuator */
132 	{ USB_DEVICE(0x10C4, 0x8411) }, /* Kyocera GPS Module */
133 	{ USB_DEVICE(0x10C4, 0x8414) }, /* Decagon USB Cable Adapter */
134 	{ USB_DEVICE(0x10C4, 0x8418) }, /* IRZ Automation Teleport SG-10 GSM/GPRS Modem */
135 	{ USB_DEVICE(0x10C4, 0x846E) }, /* BEI USB Sensor Interface (VCP) */
136 	{ USB_DEVICE(0x10C4, 0x8470) }, /* Juniper Networks BX Series System Console */
137 	{ USB_DEVICE(0x10C4, 0x8477) }, /* Balluff RFID */
138 	{ USB_DEVICE(0x10C4, 0x84B6) }, /* Starizona Hyperion */
139 	{ USB_DEVICE(0x10C4, 0x851E) }, /* CESINEL MEDCAL PT Network Analyzer */
140 	{ USB_DEVICE(0x10C4, 0x85A7) }, /* LifeScan OneTouch Verio IQ */
141 	{ USB_DEVICE(0x10C4, 0x85B8) }, /* CESINEL ReCon T Energy Logger */
142 	{ USB_DEVICE(0x10C4, 0x85EA) }, /* AC-Services IBUS-IF */
143 	{ USB_DEVICE(0x10C4, 0x85EB) }, /* AC-Services CIS-IBUS */
144 	{ USB_DEVICE(0x10C4, 0x85F8) }, /* Virtenio Preon32 */
145 	{ USB_DEVICE(0x10C4, 0x8664) }, /* AC-Services CAN-IF */
146 	{ USB_DEVICE(0x10C4, 0x8665) }, /* AC-Services OBD-IF */
147 	{ USB_DEVICE(0x10C4, 0x8856) },	/* CEL EM357 ZigBee USB Stick - LR */
148 	{ USB_DEVICE(0x10C4, 0x8857) },	/* CEL EM357 ZigBee USB Stick */
149 	{ USB_DEVICE(0x10C4, 0x88A4) }, /* MMB Networks ZigBee USB Device */
150 	{ USB_DEVICE(0x10C4, 0x88A5) }, /* Planet Innovation Ingeni ZigBee USB Device */
151 	{ USB_DEVICE(0x10C4, 0x88D8) }, /* Acuity Brands nLight Air Adapter */
152 	{ USB_DEVICE(0x10C4, 0x88FB) }, /* CESINEL MEDCAL STII Network Analyzer */
153 	{ USB_DEVICE(0x10C4, 0x8938) }, /* CESINEL MEDCAL S II Network Analyzer */
154 	{ USB_DEVICE(0x10C4, 0x8946) }, /* Ketra N1 Wireless Interface */
155 	{ USB_DEVICE(0x10C4, 0x8962) }, /* Brim Brothers charging dock */
156 	{ USB_DEVICE(0x10C4, 0x8977) },	/* CEL MeshWorks DevKit Device */
157 	{ USB_DEVICE(0x10C4, 0x8998) }, /* KCF Technologies PRN */
158 	{ USB_DEVICE(0x10C4, 0x89A4) }, /* CESINEL FTBC Flexible Thyristor Bridge Controller */
159 	{ USB_DEVICE(0x10C4, 0x89FB) }, /* Qivicon ZigBee USB Radio Stick */
160 	{ USB_DEVICE(0x10C4, 0x8A2A) }, /* HubZ dual ZigBee and Z-Wave dongle */
161 	{ USB_DEVICE(0x10C4, 0x8A5B) }, /* CEL EM3588 ZigBee USB Stick */
162 	{ USB_DEVICE(0x10C4, 0x8A5E) }, /* CEL EM3588 ZigBee USB Stick Long Range */
163 	{ USB_DEVICE(0x10C4, 0x8B34) }, /* Qivicon ZigBee USB Radio Stick */
164 	{ USB_DEVICE(0x10C4, 0xEA60) }, /* Silicon Labs factory default */
165 	{ USB_DEVICE(0x10C4, 0xEA61) }, /* Silicon Labs factory default */
166 	{ USB_DEVICE(0x10C4, 0xEA63) }, /* Silicon Labs Windows Update (CP2101-4/CP2102N) */
167 	{ USB_DEVICE(0x10C4, 0xEA70) }, /* Silicon Labs factory default */
168 	{ USB_DEVICE(0x10C4, 0xEA71) }, /* Infinity GPS-MIC-1 Radio Monophone */
169 	{ USB_DEVICE(0x10C4, 0xEA7A) }, /* Silicon Labs Windows Update (CP2105) */
170 	{ USB_DEVICE(0x10C4, 0xEA7B) }, /* Silicon Labs Windows Update (CP2108) */
171 	{ USB_DEVICE(0x10C4, 0xF001) }, /* Elan Digital Systems USBscope50 */
172 	{ USB_DEVICE(0x10C4, 0xF002) }, /* Elan Digital Systems USBwave12 */
173 	{ USB_DEVICE(0x10C4, 0xF003) }, /* Elan Digital Systems USBpulse100 */
174 	{ USB_DEVICE(0x10C4, 0xF004) }, /* Elan Digital Systems USBcount50 */
175 	{ USB_DEVICE(0x10C5, 0xEA61) }, /* Silicon Labs MobiData GPRS USB Modem */
176 	{ USB_DEVICE(0x10CE, 0xEA6A) }, /* Silicon Labs MobiData GPRS USB Modem 100EU */
177 	{ USB_DEVICE(0x12B8, 0xEC60) }, /* Link G4 ECU */
178 	{ USB_DEVICE(0x12B8, 0xEC62) }, /* Link G4+ ECU */
179 	{ USB_DEVICE(0x13AD, 0x9999) }, /* Baltech card reader */
180 	{ USB_DEVICE(0x1555, 0x0004) }, /* Owen AC4 USB-RS485 Converter */
181 	{ USB_DEVICE(0x155A, 0x1006) },	/* ELDAT Easywave RX09 */
182 	{ USB_DEVICE(0x166A, 0x0201) }, /* Clipsal 5500PACA C-Bus Pascal Automation Controller */
183 	{ USB_DEVICE(0x166A, 0x0301) }, /* Clipsal 5800PC C-Bus Wireless PC Interface */
184 	{ USB_DEVICE(0x166A, 0x0303) }, /* Clipsal 5500PCU C-Bus USB interface */
185 	{ USB_DEVICE(0x166A, 0x0304) }, /* Clipsal 5000CT2 C-Bus Black and White Touchscreen */
186 	{ USB_DEVICE(0x166A, 0x0305) }, /* Clipsal C-5000CT2 C-Bus Spectrum Colour Touchscreen */
187 	{ USB_DEVICE(0x166A, 0x0401) }, /* Clipsal L51xx C-Bus Architectural Dimmer */
188 	{ USB_DEVICE(0x166A, 0x0101) }, /* Clipsal 5560884 C-Bus Multi-room Audio Matrix Switcher */
189 	{ USB_DEVICE(0x16C0, 0x09B0) }, /* Lunatico Seletek */
190 	{ USB_DEVICE(0x16C0, 0x09B1) }, /* Lunatico Seletek */
191 	{ USB_DEVICE(0x16D6, 0x0001) }, /* Jablotron serial interface */
192 	{ USB_DEVICE(0x16DC, 0x0010) }, /* W-IE-NE-R Plein & Baus GmbH PL512 Power Supply */
193 	{ USB_DEVICE(0x16DC, 0x0011) }, /* W-IE-NE-R Plein & Baus GmbH RCM Remote Control for MARATON Power Supply */
194 	{ USB_DEVICE(0x16DC, 0x0012) }, /* W-IE-NE-R Plein & Baus GmbH MPOD Multi Channel Power Supply */
195 	{ USB_DEVICE(0x16DC, 0x0015) }, /* W-IE-NE-R Plein & Baus GmbH CML Control, Monitoring and Data Logger */
196 	{ USB_DEVICE(0x17A8, 0x0001) }, /* Kamstrup Optical Eye/3-wire */
197 	{ USB_DEVICE(0x17A8, 0x0005) }, /* Kamstrup M-Bus Master MultiPort 250D */
198 	{ USB_DEVICE(0x17A8, 0x0011) }, /* Kamstrup 444 MHz RF sniffer */
199 	{ USB_DEVICE(0x17A8, 0x0013) }, /* Kamstrup 870 MHz RF sniffer */
200 	{ USB_DEVICE(0x17A8, 0x0101) }, /* Kamstrup 868 MHz wM-Bus C-Mode Meter Reader (Int Ant) */
201 	{ USB_DEVICE(0x17A8, 0x0102) }, /* Kamstrup 868 MHz wM-Bus C-Mode Meter Reader (Ext Ant) */
202 	{ USB_DEVICE(0x17F4, 0xAAAA) }, /* Wavesense Jazz blood glucose meter */
203 	{ USB_DEVICE(0x1843, 0x0200) }, /* Vaisala USB Instrument Cable */
204 	{ USB_DEVICE(0x18EF, 0xE00F) }, /* ELV USB-I2C-Interface */
205 	{ USB_DEVICE(0x18EF, 0xE025) }, /* ELV Marble Sound Board 1 */
206 	{ USB_DEVICE(0x18EF, 0xE030) }, /* ELV ALC 8xxx Battery Charger */
207 	{ USB_DEVICE(0x18EF, 0xE032) }, /* ELV TFD500 Data Logger */
208 	{ USB_DEVICE(0x1901, 0x0190) }, /* GE B850 CP2105 Recorder interface */
209 	{ USB_DEVICE(0x1901, 0x0193) }, /* GE B650 CP2104 PMC interface */
210 	{ USB_DEVICE(0x1901, 0x0194) },	/* GE Healthcare Remote Alarm Box */
211 	{ USB_DEVICE(0x1901, 0x0195) },	/* GE B850/B650/B450 CP2104 DP UART interface */
212 	{ USB_DEVICE(0x1901, 0x0196) },	/* GE B850 CP2105 DP UART interface */
213 	{ USB_DEVICE(0x1901, 0x0197) }, /* GE CS1000 M.2 Key E serial interface */
214 	{ USB_DEVICE(0x1901, 0x0198) }, /* GE CS1000 Display serial interface */
215 	{ USB_DEVICE(0x199B, 0xBA30) }, /* LORD WSDA-200-USB */
216 	{ USB_DEVICE(0x19CF, 0x3000) }, /* Parrot NMEA GPS Flight Recorder */
217 	{ USB_DEVICE(0x1ADB, 0x0001) }, /* Schweitzer Engineering C662 Cable */
218 	{ USB_DEVICE(0x1B1C, 0x1C00) }, /* Corsair USB Dongle */
219 	{ USB_DEVICE(0x1BA4, 0x0002) },	/* Silicon Labs 358x factory default */
220 	{ USB_DEVICE(0x1BE3, 0x07A6) }, /* WAGO 750-923 USB Service Cable */
221 	{ USB_DEVICE(0x1D6F, 0x0010) }, /* Seluxit ApS RF Dongle */
222 	{ USB_DEVICE(0x1E29, 0x0102) }, /* Festo CPX-USB */
223 	{ USB_DEVICE(0x1E29, 0x0501) }, /* Festo CMSP */
224 	{ USB_DEVICE(0x1FB9, 0x0100) }, /* Lake Shore Model 121 Current Source */
225 	{ USB_DEVICE(0x1FB9, 0x0200) }, /* Lake Shore Model 218A Temperature Monitor */
226 	{ USB_DEVICE(0x1FB9, 0x0201) }, /* Lake Shore Model 219 Temperature Monitor */
227 	{ USB_DEVICE(0x1FB9, 0x0202) }, /* Lake Shore Model 233 Temperature Transmitter */
228 	{ USB_DEVICE(0x1FB9, 0x0203) }, /* Lake Shore Model 235 Temperature Transmitter */
229 	{ USB_DEVICE(0x1FB9, 0x0300) }, /* Lake Shore Model 335 Temperature Controller */
230 	{ USB_DEVICE(0x1FB9, 0x0301) }, /* Lake Shore Model 336 Temperature Controller */
231 	{ USB_DEVICE(0x1FB9, 0x0302) }, /* Lake Shore Model 350 Temperature Controller */
232 	{ USB_DEVICE(0x1FB9, 0x0303) }, /* Lake Shore Model 371 AC Bridge */
233 	{ USB_DEVICE(0x1FB9, 0x0400) }, /* Lake Shore Model 411 Handheld Gaussmeter */
234 	{ USB_DEVICE(0x1FB9, 0x0401) }, /* Lake Shore Model 425 Gaussmeter */
235 	{ USB_DEVICE(0x1FB9, 0x0402) }, /* Lake Shore Model 455A Gaussmeter */
236 	{ USB_DEVICE(0x1FB9, 0x0403) }, /* Lake Shore Model 475A Gaussmeter */
237 	{ USB_DEVICE(0x1FB9, 0x0404) }, /* Lake Shore Model 465 Three Axis Gaussmeter */
238 	{ USB_DEVICE(0x1FB9, 0x0600) }, /* Lake Shore Model 625A Superconducting MPS */
239 	{ USB_DEVICE(0x1FB9, 0x0601) }, /* Lake Shore Model 642A Magnet Power Supply */
240 	{ USB_DEVICE(0x1FB9, 0x0602) }, /* Lake Shore Model 648 Magnet Power Supply */
241 	{ USB_DEVICE(0x1FB9, 0x0700) }, /* Lake Shore Model 737 VSM Controller */
242 	{ USB_DEVICE(0x1FB9, 0x0701) }, /* Lake Shore Model 776 Hall Matrix */
243 	{ USB_DEVICE(0x2184, 0x0030) }, /* GW Instek GDM-834x Digital Multimeter */
244 	{ USB_DEVICE(0x2626, 0xEA60) }, /* Aruba Networks 7xxx USB Serial Console */
245 	{ USB_DEVICE(0x3195, 0xF190) }, /* Link Instruments MSO-19 */
246 	{ USB_DEVICE(0x3195, 0xF280) }, /* Link Instruments MSO-28 */
247 	{ USB_DEVICE(0x3195, 0xF281) }, /* Link Instruments MSO-28 */
248 	{ USB_DEVICE(0x3923, 0x7A0B) }, /* National Instruments USB Serial Console */
249 	{ USB_DEVICE(0x413C, 0x9500) }, /* DW700 GPS USB interface */
250 	{ } /* Terminating Entry */
251 };
252 
253 MODULE_DEVICE_TABLE(usb, id_table);
254 
255 struct cp210x_serial_private {
256 #ifdef CONFIG_GPIOLIB
257 	struct gpio_chip	gc;
258 	bool			gpio_registered;
259 	u16			gpio_pushpull;
260 	u16			gpio_altfunc;
261 	u16			gpio_input;
262 #endif
263 	u8			partnum;
264 	u32			fw_version;
265 	speed_t			min_speed;
266 	speed_t			max_speed;
267 	bool			use_actual_rate;
268 	bool			no_flow_control;
269 	bool			no_event_mode;
270 };
271 
272 enum cp210x_event_state {
273 	ES_DATA,
274 	ES_ESCAPE,
275 	ES_LSR,
276 	ES_LSR_DATA_0,
277 	ES_LSR_DATA_1,
278 	ES_MSR
279 };
280 
281 struct cp210x_port_private {
282 	u8			bInterfaceNumber;
283 	bool			event_mode;
284 	enum cp210x_event_state event_state;
285 	u8			lsr;
286 
287 	struct mutex		mutex;
288 	bool			crtscts;
289 	bool			dtr;
290 	bool			rts;
291 };
292 
293 static struct usb_serial_driver cp210x_device = {
294 	.driver = {
295 		.owner =	THIS_MODULE,
296 		.name =		"cp210x",
297 	},
298 	.id_table		= id_table,
299 	.num_ports		= 1,
300 	.bulk_in_size		= 256,
301 	.bulk_out_size		= 256,
302 	.open			= cp210x_open,
303 	.close			= cp210x_close,
304 	.break_ctl		= cp210x_break_ctl,
305 	.set_termios		= cp210x_set_termios,
306 	.tx_empty		= cp210x_tx_empty,
307 	.throttle		= usb_serial_generic_throttle,
308 	.unthrottle		= usb_serial_generic_unthrottle,
309 	.tiocmget		= cp210x_tiocmget,
310 	.tiocmset		= cp210x_tiocmset,
311 	.get_icount		= usb_serial_generic_get_icount,
312 	.attach			= cp210x_attach,
313 	.disconnect		= cp210x_disconnect,
314 	.release		= cp210x_release,
315 	.port_probe		= cp210x_port_probe,
316 	.port_remove		= cp210x_port_remove,
317 	.dtr_rts		= cp210x_dtr_rts,
318 	.process_read_urb	= cp210x_process_read_urb,
319 };
320 
321 static struct usb_serial_driver * const serial_drivers[] = {
322 	&cp210x_device, NULL
323 };
324 
325 /* Config request types */
326 #define REQTYPE_HOST_TO_INTERFACE	0x41
327 #define REQTYPE_INTERFACE_TO_HOST	0xc1
328 #define REQTYPE_HOST_TO_DEVICE	0x40
329 #define REQTYPE_DEVICE_TO_HOST	0xc0
330 
331 /* Config request codes */
332 #define CP210X_IFC_ENABLE	0x00
333 #define CP210X_SET_BAUDDIV	0x01
334 #define CP210X_GET_BAUDDIV	0x02
335 #define CP210X_SET_LINE_CTL	0x03
336 #define CP210X_GET_LINE_CTL	0x04
337 #define CP210X_SET_BREAK	0x05
338 #define CP210X_IMM_CHAR		0x06
339 #define CP210X_SET_MHS		0x07
340 #define CP210X_GET_MDMSTS	0x08
341 #define CP210X_SET_XON		0x09
342 #define CP210X_SET_XOFF		0x0A
343 #define CP210X_SET_EVENTMASK	0x0B
344 #define CP210X_GET_EVENTMASK	0x0C
345 #define CP210X_SET_CHAR		0x0D
346 #define CP210X_GET_CHARS	0x0E
347 #define CP210X_GET_PROPS	0x0F
348 #define CP210X_GET_COMM_STATUS	0x10
349 #define CP210X_RESET		0x11
350 #define CP210X_PURGE		0x12
351 #define CP210X_SET_FLOW		0x13
352 #define CP210X_GET_FLOW		0x14
353 #define CP210X_EMBED_EVENTS	0x15
354 #define CP210X_GET_EVENTSTATE	0x16
355 #define CP210X_SET_CHARS	0x19
356 #define CP210X_GET_BAUDRATE	0x1D
357 #define CP210X_SET_BAUDRATE	0x1E
358 #define CP210X_VENDOR_SPECIFIC	0xFF
359 
360 /* CP210X_IFC_ENABLE */
361 #define UART_ENABLE		0x0001
362 #define UART_DISABLE		0x0000
363 
364 /* CP210X_(SET|GET)_BAUDDIV */
365 #define BAUD_RATE_GEN_FREQ	0x384000
366 
367 /* CP210X_(SET|GET)_LINE_CTL */
368 #define BITS_DATA_MASK		0X0f00
369 #define BITS_DATA_5		0X0500
370 #define BITS_DATA_6		0X0600
371 #define BITS_DATA_7		0X0700
372 #define BITS_DATA_8		0X0800
373 #define BITS_DATA_9		0X0900
374 
375 #define BITS_PARITY_MASK	0x00f0
376 #define BITS_PARITY_NONE	0x0000
377 #define BITS_PARITY_ODD		0x0010
378 #define BITS_PARITY_EVEN	0x0020
379 #define BITS_PARITY_MARK	0x0030
380 #define BITS_PARITY_SPACE	0x0040
381 
382 #define BITS_STOP_MASK		0x000f
383 #define BITS_STOP_1		0x0000
384 #define BITS_STOP_1_5		0x0001
385 #define BITS_STOP_2		0x0002
386 
387 /* CP210X_SET_BREAK */
388 #define BREAK_ON		0x0001
389 #define BREAK_OFF		0x0000
390 
391 /* CP210X_(SET_MHS|GET_MDMSTS) */
392 #define CONTROL_DTR		0x0001
393 #define CONTROL_RTS		0x0002
394 #define CONTROL_CTS		0x0010
395 #define CONTROL_DSR		0x0020
396 #define CONTROL_RING		0x0040
397 #define CONTROL_DCD		0x0080
398 #define CONTROL_WRITE_DTR	0x0100
399 #define CONTROL_WRITE_RTS	0x0200
400 
401 /* CP210X_(GET|SET)_CHARS */
402 struct cp210x_special_chars {
403 	u8	bEofChar;
404 	u8	bErrorChar;
405 	u8	bBreakChar;
406 	u8	bEventChar;
407 	u8	bXonChar;
408 	u8	bXoffChar;
409 };
410 
411 /* CP210X_VENDOR_SPECIFIC values */
412 #define CP210X_GET_FW_VER	0x000E
413 #define CP210X_READ_2NCONFIG	0x000E
414 #define CP210X_GET_FW_VER_2N	0x0010
415 #define CP210X_READ_LATCH	0x00C2
416 #define CP210X_GET_PARTNUM	0x370B
417 #define CP210X_GET_PORTCONFIG	0x370C
418 #define CP210X_GET_DEVICEMODE	0x3711
419 #define CP210X_WRITE_LATCH	0x37E1
420 
421 /* Part number definitions */
422 #define CP210X_PARTNUM_CP2101	0x01
423 #define CP210X_PARTNUM_CP2102	0x02
424 #define CP210X_PARTNUM_CP2103	0x03
425 #define CP210X_PARTNUM_CP2104	0x04
426 #define CP210X_PARTNUM_CP2105	0x05
427 #define CP210X_PARTNUM_CP2108	0x08
428 #define CP210X_PARTNUM_CP2102N_QFN28	0x20
429 #define CP210X_PARTNUM_CP2102N_QFN24	0x21
430 #define CP210X_PARTNUM_CP2102N_QFN20	0x22
431 #define CP210X_PARTNUM_UNKNOWN	0xFF
432 
433 /* CP210X_GET_COMM_STATUS returns these 0x13 bytes */
434 struct cp210x_comm_status {
435 	__le32   ulErrors;
436 	__le32   ulHoldReasons;
437 	__le32   ulAmountInInQueue;
438 	__le32   ulAmountInOutQueue;
439 	u8       bEofReceived;
440 	u8       bWaitForImmediate;
441 	u8       bReserved;
442 } __packed;
443 
444 /*
445  * CP210X_PURGE - 16 bits passed in wValue of USB request.
446  * SiLabs app note AN571 gives a strange description of the 4 bits:
447  * bit 0 or bit 2 clears the transmit queue and 1 or 3 receive.
448  * writing 1 to all, however, purges cp2108 well enough to avoid the hang.
449  */
450 #define PURGE_ALL		0x000f
451 
452 /* CP210X_EMBED_EVENTS */
453 #define CP210X_ESCCHAR		0xec
454 
455 #define CP210X_LSR_OVERRUN	BIT(1)
456 #define CP210X_LSR_PARITY	BIT(2)
457 #define CP210X_LSR_FRAME	BIT(3)
458 #define CP210X_LSR_BREAK	BIT(4)
459 
460 
461 /* CP210X_GET_FLOW/CP210X_SET_FLOW read/write these 0x10 bytes */
462 struct cp210x_flow_ctl {
463 	__le32	ulControlHandshake;
464 	__le32	ulFlowReplace;
465 	__le32	ulXonLimit;
466 	__le32	ulXoffLimit;
467 };
468 
469 /* cp210x_flow_ctl::ulControlHandshake */
470 #define CP210X_SERIAL_DTR_MASK		GENMASK(1, 0)
471 #define CP210X_SERIAL_DTR_INACTIVE	(0 << 0)
472 #define CP210X_SERIAL_DTR_ACTIVE	(1 << 0)
473 #define CP210X_SERIAL_DTR_FLOW_CTL	(2 << 0)
474 #define CP210X_SERIAL_CTS_HANDSHAKE	BIT(3)
475 #define CP210X_SERIAL_DSR_HANDSHAKE	BIT(4)
476 #define CP210X_SERIAL_DCD_HANDSHAKE	BIT(5)
477 #define CP210X_SERIAL_DSR_SENSITIVITY	BIT(6)
478 
479 /* cp210x_flow_ctl::ulFlowReplace */
480 #define CP210X_SERIAL_AUTO_TRANSMIT	BIT(0)
481 #define CP210X_SERIAL_AUTO_RECEIVE	BIT(1)
482 #define CP210X_SERIAL_ERROR_CHAR	BIT(2)
483 #define CP210X_SERIAL_NULL_STRIPPING	BIT(3)
484 #define CP210X_SERIAL_BREAK_CHAR	BIT(4)
485 #define CP210X_SERIAL_RTS_MASK		GENMASK(7, 6)
486 #define CP210X_SERIAL_RTS_INACTIVE	(0 << 6)
487 #define CP210X_SERIAL_RTS_ACTIVE	(1 << 6)
488 #define CP210X_SERIAL_RTS_FLOW_CTL	(2 << 6)
489 #define CP210X_SERIAL_XOFF_CONTINUE	BIT(31)
490 
491 /* CP210X_VENDOR_SPECIFIC, CP210X_GET_DEVICEMODE call reads these 0x2 bytes. */
492 struct cp210x_pin_mode {
493 	u8	eci;
494 	u8	sci;
495 };
496 
497 #define CP210X_PIN_MODE_MODEM		0
498 #define CP210X_PIN_MODE_GPIO		BIT(0)
499 
500 /*
501  * CP210X_VENDOR_SPECIFIC, CP210X_GET_PORTCONFIG call reads these 0xf bytes
502  * on a CP2105 chip. Structure needs padding due to unused/unspecified bytes.
503  */
504 struct cp210x_dual_port_config {
505 	__le16	gpio_mode;
506 	u8	__pad0[2];
507 	__le16	reset_state;
508 	u8	__pad1[4];
509 	__le16	suspend_state;
510 	u8	sci_cfg;
511 	u8	eci_cfg;
512 	u8	device_cfg;
513 } __packed;
514 
515 /*
516  * CP210X_VENDOR_SPECIFIC, CP210X_GET_PORTCONFIG call reads these 0xd bytes
517  * on a CP2104 chip. Structure needs padding due to unused/unspecified bytes.
518  */
519 struct cp210x_single_port_config {
520 	__le16	gpio_mode;
521 	u8	__pad0[2];
522 	__le16	reset_state;
523 	u8	__pad1[4];
524 	__le16	suspend_state;
525 	u8	device_cfg;
526 } __packed;
527 
528 /* GPIO modes */
529 #define CP210X_SCI_GPIO_MODE_OFFSET	9
530 #define CP210X_SCI_GPIO_MODE_MASK	GENMASK(11, 9)
531 
532 #define CP210X_ECI_GPIO_MODE_OFFSET	2
533 #define CP210X_ECI_GPIO_MODE_MASK	GENMASK(3, 2)
534 
535 #define CP210X_GPIO_MODE_OFFSET		8
536 #define CP210X_GPIO_MODE_MASK		GENMASK(11, 8)
537 
538 /* CP2105 port configuration values */
539 #define CP2105_GPIO0_TXLED_MODE		BIT(0)
540 #define CP2105_GPIO1_RXLED_MODE		BIT(1)
541 #define CP2105_GPIO1_RS485_MODE		BIT(2)
542 
543 /* CP2104 port configuration values */
544 #define CP2104_GPIO0_TXLED_MODE		BIT(0)
545 #define CP2104_GPIO1_RXLED_MODE		BIT(1)
546 #define CP2104_GPIO2_RS485_MODE		BIT(2)
547 
548 struct cp210x_quad_port_state {
549 	__le16 gpio_mode_pb0;
550 	__le16 gpio_mode_pb1;
551 	__le16 gpio_mode_pb2;
552 	__le16 gpio_mode_pb3;
553 	__le16 gpio_mode_pb4;
554 
555 	__le16 gpio_lowpower_pb0;
556 	__le16 gpio_lowpower_pb1;
557 	__le16 gpio_lowpower_pb2;
558 	__le16 gpio_lowpower_pb3;
559 	__le16 gpio_lowpower_pb4;
560 
561 	__le16 gpio_latch_pb0;
562 	__le16 gpio_latch_pb1;
563 	__le16 gpio_latch_pb2;
564 	__le16 gpio_latch_pb3;
565 	__le16 gpio_latch_pb4;
566 };
567 
568 /*
569  * CP210X_VENDOR_SPECIFIC, CP210X_GET_PORTCONFIG call reads these 0x49 bytes
570  * on a CP2108 chip.
571  *
572  * See https://www.silabs.com/documents/public/application-notes/an978-cp210x-usb-to-uart-api-specification.pdf
573  */
574 struct cp210x_quad_port_config {
575 	struct cp210x_quad_port_state reset_state;
576 	struct cp210x_quad_port_state suspend_state;
577 	u8 ipdelay_ifc[4];
578 	u8 enhancedfxn_ifc[4];
579 	u8 enhancedfxn_device;
580 	u8 extclkfreq[4];
581 } __packed;
582 
583 #define CP2108_EF_IFC_GPIO_TXLED		0x01
584 #define CP2108_EF_IFC_GPIO_RXLED		0x02
585 #define CP2108_EF_IFC_GPIO_RS485		0x04
586 #define CP2108_EF_IFC_GPIO_RS485_LOGIC		0x08
587 #define CP2108_EF_IFC_GPIO_CLOCK		0x10
588 #define CP2108_EF_IFC_DYNAMIC_SUSPEND		0x40
589 
590 /* CP2102N configuration array indices */
591 #define CP210X_2NCONFIG_CONFIG_VERSION_IDX	2
592 #define CP210X_2NCONFIG_GPIO_MODE_IDX		581
593 #define CP210X_2NCONFIG_GPIO_RSTLATCH_IDX	587
594 #define CP210X_2NCONFIG_GPIO_CONTROL_IDX	600
595 
596 /* CP2102N QFN20 port configuration values */
597 #define CP2102N_QFN20_GPIO2_TXLED_MODE		BIT(2)
598 #define CP2102N_QFN20_GPIO3_RXLED_MODE		BIT(3)
599 #define CP2102N_QFN20_GPIO1_RS485_MODE		BIT(4)
600 #define CP2102N_QFN20_GPIO0_CLK_MODE		BIT(6)
601 
602 /*
603  * CP210X_VENDOR_SPECIFIC, CP210X_WRITE_LATCH call writes these 0x02 bytes
604  * for CP2102N, CP2103, CP2104 and CP2105.
605  */
606 struct cp210x_gpio_write {
607 	u8	mask;
608 	u8	state;
609 };
610 
611 /*
612  * CP210X_VENDOR_SPECIFIC, CP210X_WRITE_LATCH call writes these 0x04 bytes
613  * for CP2108.
614  */
615 struct cp210x_gpio_write16 {
616 	__le16	mask;
617 	__le16	state;
618 };
619 
620 /*
621  * Helper to get interface number when we only have struct usb_serial.
622  */
623 static u8 cp210x_interface_num(struct usb_serial *serial)
624 {
625 	struct usb_host_interface *cur_altsetting;
626 
627 	cur_altsetting = serial->interface->cur_altsetting;
628 
629 	return cur_altsetting->desc.bInterfaceNumber;
630 }
631 
632 /*
633  * Reads a variable-sized block of CP210X_ registers, identified by req.
634  * Returns data into buf in native USB byte order.
635  */
636 static int cp210x_read_reg_block(struct usb_serial_port *port, u8 req,
637 		void *buf, int bufsize)
638 {
639 	struct usb_serial *serial = port->serial;
640 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
641 	int result;
642 
643 
644 	result = usb_control_msg_recv(serial->dev, 0, req,
645 			REQTYPE_INTERFACE_TO_HOST, 0,
646 			port_priv->bInterfaceNumber, buf, bufsize,
647 			USB_CTRL_SET_TIMEOUT, GFP_KERNEL);
648 	if (result) {
649 		dev_err(&port->dev, "failed get req 0x%x size %d status: %d\n",
650 				req, bufsize, result);
651 		return result;
652 	}
653 
654 	return 0;
655 }
656 
657 /*
658  * Reads any 8-bit CP210X_ register identified by req.
659  */
660 static int cp210x_read_u8_reg(struct usb_serial_port *port, u8 req, u8 *val)
661 {
662 	return cp210x_read_reg_block(port, req, val, sizeof(*val));
663 }
664 
665 /*
666  * Reads a variable-sized vendor block of CP210X_ registers, identified by val.
667  * Returns data into buf in native USB byte order.
668  */
669 static int cp210x_read_vendor_block(struct usb_serial *serial, u8 type, u16 val,
670 				    void *buf, int bufsize)
671 {
672 	int result;
673 
674 	result = usb_control_msg_recv(serial->dev, 0, CP210X_VENDOR_SPECIFIC,
675 			type, val, cp210x_interface_num(serial), buf, bufsize,
676 			USB_CTRL_GET_TIMEOUT, GFP_KERNEL);
677 	if (result) {
678 		dev_err(&serial->interface->dev,
679 			"failed to get vendor val 0x%04x size %d: %d\n", val,
680 			bufsize, result);
681 		return result;
682 	}
683 
684 	return 0;
685 }
686 
687 /*
688  * Writes any 16-bit CP210X_ register (req) whose value is passed
689  * entirely in the wValue field of the USB request.
690  */
691 static int cp210x_write_u16_reg(struct usb_serial_port *port, u8 req, u16 val)
692 {
693 	struct usb_serial *serial = port->serial;
694 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
695 	int result;
696 
697 	result = usb_control_msg(serial->dev, usb_sndctrlpipe(serial->dev, 0),
698 			req, REQTYPE_HOST_TO_INTERFACE, val,
699 			port_priv->bInterfaceNumber, NULL, 0,
700 			USB_CTRL_SET_TIMEOUT);
701 	if (result < 0) {
702 		dev_err(&port->dev, "failed set request 0x%x status: %d\n",
703 				req, result);
704 	}
705 
706 	return result;
707 }
708 
709 /*
710  * Writes a variable-sized block of CP210X_ registers, identified by req.
711  * Data in buf must be in native USB byte order.
712  */
713 static int cp210x_write_reg_block(struct usb_serial_port *port, u8 req,
714 		void *buf, int bufsize)
715 {
716 	struct usb_serial *serial = port->serial;
717 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
718 	int result;
719 
720 	result = usb_control_msg_send(serial->dev, 0, req,
721 			REQTYPE_HOST_TO_INTERFACE, 0,
722 			port_priv->bInterfaceNumber, buf, bufsize,
723 			USB_CTRL_SET_TIMEOUT, GFP_KERNEL);
724 	if (result) {
725 		dev_err(&port->dev, "failed set req 0x%x size %d status: %d\n",
726 				req, bufsize, result);
727 		return result;
728 	}
729 
730 	return 0;
731 }
732 
733 /*
734  * Writes any 32-bit CP210X_ register identified by req.
735  */
736 static int cp210x_write_u32_reg(struct usb_serial_port *port, u8 req, u32 val)
737 {
738 	__le32 le32_val;
739 
740 	le32_val = cpu_to_le32(val);
741 
742 	return cp210x_write_reg_block(port, req, &le32_val, sizeof(le32_val));
743 }
744 
745 #ifdef CONFIG_GPIOLIB
746 /*
747  * Writes a variable-sized vendor block of CP210X_ registers, identified by val.
748  * Data in buf must be in native USB byte order.
749  */
750 static int cp210x_write_vendor_block(struct usb_serial *serial, u8 type,
751 				     u16 val, void *buf, int bufsize)
752 {
753 	int result;
754 
755 	result = usb_control_msg_send(serial->dev, 0, CP210X_VENDOR_SPECIFIC,
756 			type, val, cp210x_interface_num(serial), buf, bufsize,
757 			USB_CTRL_SET_TIMEOUT, GFP_KERNEL);
758 	if (result) {
759 		dev_err(&serial->interface->dev,
760 			"failed to set vendor val 0x%04x size %d: %d\n", val,
761 			bufsize, result);
762 		return result;
763 	}
764 
765 	return 0;
766 }
767 #endif
768 
769 static int cp210x_open(struct tty_struct *tty, struct usb_serial_port *port)
770 {
771 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
772 	int result;
773 
774 	result = cp210x_write_u16_reg(port, CP210X_IFC_ENABLE, UART_ENABLE);
775 	if (result) {
776 		dev_err(&port->dev, "%s - Unable to enable UART\n", __func__);
777 		return result;
778 	}
779 
780 	if (tty)
781 		cp210x_set_termios(tty, port, NULL);
782 
783 	result = usb_serial_generic_open(tty, port);
784 	if (result)
785 		goto err_disable;
786 
787 	return 0;
788 
789 err_disable:
790 	cp210x_write_u16_reg(port, CP210X_IFC_ENABLE, UART_DISABLE);
791 	port_priv->event_mode = false;
792 
793 	return result;
794 }
795 
796 static void cp210x_close(struct usb_serial_port *port)
797 {
798 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
799 
800 	usb_serial_generic_close(port);
801 
802 	/* Clear both queues; cp2108 needs this to avoid an occasional hang */
803 	cp210x_write_u16_reg(port, CP210X_PURGE, PURGE_ALL);
804 
805 	cp210x_write_u16_reg(port, CP210X_IFC_ENABLE, UART_DISABLE);
806 
807 	/* Disabling the interface disables event-insertion mode. */
808 	port_priv->event_mode = false;
809 }
810 
811 static void cp210x_process_lsr(struct usb_serial_port *port, unsigned char lsr, char *flag)
812 {
813 	if (lsr & CP210X_LSR_BREAK) {
814 		port->icount.brk++;
815 		*flag = TTY_BREAK;
816 	} else if (lsr & CP210X_LSR_PARITY) {
817 		port->icount.parity++;
818 		*flag = TTY_PARITY;
819 	} else if (lsr & CP210X_LSR_FRAME) {
820 		port->icount.frame++;
821 		*flag = TTY_FRAME;
822 	}
823 
824 	if (lsr & CP210X_LSR_OVERRUN) {
825 		port->icount.overrun++;
826 		tty_insert_flip_char(&port->port, 0, TTY_OVERRUN);
827 	}
828 }
829 
830 static bool cp210x_process_char(struct usb_serial_port *port, unsigned char *ch, char *flag)
831 {
832 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
833 
834 	switch (port_priv->event_state) {
835 	case ES_DATA:
836 		if (*ch == CP210X_ESCCHAR) {
837 			port_priv->event_state = ES_ESCAPE;
838 			break;
839 		}
840 		return false;
841 	case ES_ESCAPE:
842 		switch (*ch) {
843 		case 0:
844 			dev_dbg(&port->dev, "%s - escape char\n", __func__);
845 			*ch = CP210X_ESCCHAR;
846 			port_priv->event_state = ES_DATA;
847 			return false;
848 		case 1:
849 			port_priv->event_state = ES_LSR_DATA_0;
850 			break;
851 		case 2:
852 			port_priv->event_state = ES_LSR;
853 			break;
854 		case 3:
855 			port_priv->event_state = ES_MSR;
856 			break;
857 		default:
858 			dev_err(&port->dev, "malformed event 0x%02x\n", *ch);
859 			port_priv->event_state = ES_DATA;
860 			break;
861 		}
862 		break;
863 	case ES_LSR_DATA_0:
864 		port_priv->lsr = *ch;
865 		port_priv->event_state = ES_LSR_DATA_1;
866 		break;
867 	case ES_LSR_DATA_1:
868 		dev_dbg(&port->dev, "%s - lsr = 0x%02x, data = 0x%02x\n",
869 				__func__, port_priv->lsr, *ch);
870 		cp210x_process_lsr(port, port_priv->lsr, flag);
871 		port_priv->event_state = ES_DATA;
872 		return false;
873 	case ES_LSR:
874 		dev_dbg(&port->dev, "%s - lsr = 0x%02x\n", __func__, *ch);
875 		port_priv->lsr = *ch;
876 		cp210x_process_lsr(port, port_priv->lsr, flag);
877 		port_priv->event_state = ES_DATA;
878 		break;
879 	case ES_MSR:
880 		dev_dbg(&port->dev, "%s - msr = 0x%02x\n", __func__, *ch);
881 		/* unimplemented */
882 		port_priv->event_state = ES_DATA;
883 		break;
884 	}
885 
886 	return true;
887 }
888 
889 static void cp210x_process_read_urb(struct urb *urb)
890 {
891 	struct usb_serial_port *port = urb->context;
892 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
893 	unsigned char *ch = urb->transfer_buffer;
894 	char flag;
895 	int i;
896 
897 	if (!urb->actual_length)
898 		return;
899 
900 	if (port_priv->event_mode) {
901 		for (i = 0; i < urb->actual_length; i++, ch++) {
902 			flag = TTY_NORMAL;
903 
904 			if (cp210x_process_char(port, ch, &flag))
905 				continue;
906 
907 			tty_insert_flip_char(&port->port, *ch, flag);
908 		}
909 	} else {
910 		tty_insert_flip_string(&port->port, ch, urb->actual_length);
911 	}
912 	tty_flip_buffer_push(&port->port);
913 }
914 
915 /*
916  * Read how many bytes are waiting in the TX queue.
917  */
918 static int cp210x_get_tx_queue_byte_count(struct usb_serial_port *port,
919 		u32 *count)
920 {
921 	struct usb_serial *serial = port->serial;
922 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
923 	struct cp210x_comm_status sts;
924 	int result;
925 
926 	result = usb_control_msg_recv(serial->dev, 0, CP210X_GET_COMM_STATUS,
927 			REQTYPE_INTERFACE_TO_HOST, 0,
928 			port_priv->bInterfaceNumber, &sts, sizeof(sts),
929 			USB_CTRL_GET_TIMEOUT, GFP_KERNEL);
930 	if (result) {
931 		dev_err(&port->dev, "failed to get comm status: %d\n", result);
932 		return result;
933 	}
934 
935 	*count = le32_to_cpu(sts.ulAmountInOutQueue);
936 
937 	return 0;
938 }
939 
940 static bool cp210x_tx_empty(struct usb_serial_port *port)
941 {
942 	int err;
943 	u32 count;
944 
945 	err = cp210x_get_tx_queue_byte_count(port, &count);
946 	if (err)
947 		return true;
948 
949 	return !count;
950 }
951 
952 struct cp210x_rate {
953 	speed_t rate;
954 	speed_t high;
955 };
956 
957 static const struct cp210x_rate cp210x_an205_table1[] = {
958 	{ 300, 300 },
959 	{ 600, 600 },
960 	{ 1200, 1200 },
961 	{ 1800, 1800 },
962 	{ 2400, 2400 },
963 	{ 4000, 4000 },
964 	{ 4800, 4803 },
965 	{ 7200, 7207 },
966 	{ 9600, 9612 },
967 	{ 14400, 14428 },
968 	{ 16000, 16062 },
969 	{ 19200, 19250 },
970 	{ 28800, 28912 },
971 	{ 38400, 38601 },
972 	{ 51200, 51558 },
973 	{ 56000, 56280 },
974 	{ 57600, 58053 },
975 	{ 64000, 64111 },
976 	{ 76800, 77608 },
977 	{ 115200, 117028 },
978 	{ 128000, 129347 },
979 	{ 153600, 156868 },
980 	{ 230400, 237832 },
981 	{ 250000, 254234 },
982 	{ 256000, 273066 },
983 	{ 460800, 491520 },
984 	{ 500000, 567138 },
985 	{ 576000, 670254 },
986 	{ 921600, UINT_MAX }
987 };
988 
989 /*
990  * Quantises the baud rate as per AN205 Table 1
991  */
992 static speed_t cp210x_get_an205_rate(speed_t baud)
993 {
994 	int i;
995 
996 	for (i = 0; i < ARRAY_SIZE(cp210x_an205_table1); ++i) {
997 		if (baud <= cp210x_an205_table1[i].high)
998 			break;
999 	}
1000 
1001 	return cp210x_an205_table1[i].rate;
1002 }
1003 
1004 static speed_t cp210x_get_actual_rate(speed_t baud)
1005 {
1006 	unsigned int prescale = 1;
1007 	unsigned int div;
1008 
1009 	if (baud <= 365)
1010 		prescale = 4;
1011 
1012 	div = DIV_ROUND_CLOSEST(48000000, 2 * prescale * baud);
1013 	baud = 48000000 / (2 * prescale * div);
1014 
1015 	return baud;
1016 }
1017 
1018 /*
1019  * CP2101 supports the following baud rates:
1020  *
1021  *	300, 600, 1200, 1800, 2400, 4800, 7200, 9600, 14400, 19200, 28800,
1022  *	38400, 56000, 57600, 115200, 128000, 230400, 460800, 921600
1023  *
1024  * CP2102 and CP2103 support the following additional rates:
1025  *
1026  *	4000, 16000, 51200, 64000, 76800, 153600, 250000, 256000, 500000,
1027  *	576000
1028  *
1029  * The device will map a requested rate to a supported one, but the result
1030  * of requests for rates greater than 1053257 is undefined (see AN205).
1031  *
1032  * CP2104, CP2105 and CP2110 support most rates up to 2M, 921k and 1M baud,
1033  * respectively, with an error less than 1%. The actual rates are determined
1034  * by
1035  *
1036  *	div = round(freq / (2 x prescale x request))
1037  *	actual = freq / (2 x prescale x div)
1038  *
1039  * For CP2104 and CP2105 freq is 48Mhz and prescale is 4 for request <= 365bps
1040  * or 1 otherwise.
1041  * For CP2110 freq is 24Mhz and prescale is 4 for request <= 300bps or 1
1042  * otherwise.
1043  */
1044 static void cp210x_change_speed(struct tty_struct *tty,
1045 				struct usb_serial_port *port,
1046 				const struct ktermios *old_termios)
1047 {
1048 	struct usb_serial *serial = port->serial;
1049 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1050 	u32 baud;
1051 
1052 	if (tty->termios.c_ospeed == 0)
1053 		return;
1054 
1055 	/*
1056 	 * This maps the requested rate to the actual rate, a valid rate on
1057 	 * cp2102 or cp2103, or to an arbitrary rate in [1M, max_speed].
1058 	 */
1059 	baud = clamp(tty->termios.c_ospeed, priv->min_speed, priv->max_speed);
1060 
1061 	if (priv->use_actual_rate)
1062 		baud = cp210x_get_actual_rate(baud);
1063 	else if (baud < 1000000)
1064 		baud = cp210x_get_an205_rate(baud);
1065 
1066 	dev_dbg(&port->dev, "%s - setting baud rate to %u\n", __func__, baud);
1067 	if (cp210x_write_u32_reg(port, CP210X_SET_BAUDRATE, baud)) {
1068 		dev_warn(&port->dev, "failed to set baud rate to %u\n", baud);
1069 		if (old_termios)
1070 			baud = old_termios->c_ospeed;
1071 		else
1072 			baud = 9600;
1073 	}
1074 
1075 	tty_encode_baud_rate(tty, baud, baud);
1076 }
1077 
1078 static void cp210x_enable_event_mode(struct usb_serial_port *port)
1079 {
1080 	struct cp210x_serial_private *priv = usb_get_serial_data(port->serial);
1081 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
1082 	int ret;
1083 
1084 	if (port_priv->event_mode)
1085 		return;
1086 
1087 	if (priv->no_event_mode)
1088 		return;
1089 
1090 	port_priv->event_state = ES_DATA;
1091 	port_priv->event_mode = true;
1092 
1093 	ret = cp210x_write_u16_reg(port, CP210X_EMBED_EVENTS, CP210X_ESCCHAR);
1094 	if (ret) {
1095 		dev_err(&port->dev, "failed to enable events: %d\n", ret);
1096 		port_priv->event_mode = false;
1097 	}
1098 }
1099 
1100 static void cp210x_disable_event_mode(struct usb_serial_port *port)
1101 {
1102 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
1103 	int ret;
1104 
1105 	if (!port_priv->event_mode)
1106 		return;
1107 
1108 	ret = cp210x_write_u16_reg(port, CP210X_EMBED_EVENTS, 0);
1109 	if (ret) {
1110 		dev_err(&port->dev, "failed to disable events: %d\n", ret);
1111 		return;
1112 	}
1113 
1114 	port_priv->event_mode = false;
1115 }
1116 
1117 static bool cp210x_termios_change(const struct ktermios *a, const struct ktermios *b)
1118 {
1119 	bool iflag_change, cc_change;
1120 
1121 	iflag_change = ((a->c_iflag ^ b->c_iflag) & (INPCK | IXON | IXOFF));
1122 	cc_change = a->c_cc[VSTART] != b->c_cc[VSTART] ||
1123 			a->c_cc[VSTOP] != b->c_cc[VSTOP];
1124 
1125 	return tty_termios_hw_change(a, b) || iflag_change || cc_change;
1126 }
1127 
1128 static void cp210x_set_flow_control(struct tty_struct *tty,
1129 				    struct usb_serial_port *port,
1130 				    const struct ktermios *old_termios)
1131 {
1132 	struct cp210x_serial_private *priv = usb_get_serial_data(port->serial);
1133 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
1134 	struct cp210x_special_chars chars;
1135 	struct cp210x_flow_ctl flow_ctl;
1136 	u32 flow_repl;
1137 	u32 ctl_hs;
1138 	bool crtscts;
1139 	int ret;
1140 
1141 	/*
1142 	 * Some CP2102N interpret ulXonLimit as ulFlowReplace (erratum
1143 	 * CP2102N_E104). Report back that flow control is not supported.
1144 	 */
1145 	if (priv->no_flow_control) {
1146 		tty->termios.c_cflag &= ~CRTSCTS;
1147 		tty->termios.c_iflag &= ~(IXON | IXOFF);
1148 	}
1149 
1150 	if (tty->termios.c_ospeed != 0 &&
1151 			old_termios && old_termios->c_ospeed != 0 &&
1152 			C_CRTSCTS(tty) == (old_termios->c_cflag & CRTSCTS) &&
1153 			I_IXON(tty) == (old_termios->c_iflag & IXON) &&
1154 			I_IXOFF(tty) == (old_termios->c_iflag & IXOFF) &&
1155 			START_CHAR(tty) == old_termios->c_cc[VSTART] &&
1156 			STOP_CHAR(tty) == old_termios->c_cc[VSTOP]) {
1157 		return;
1158 	}
1159 
1160 	if (I_IXON(tty) || I_IXOFF(tty)) {
1161 		memset(&chars, 0, sizeof(chars));
1162 
1163 		chars.bXonChar = START_CHAR(tty);
1164 		chars.bXoffChar = STOP_CHAR(tty);
1165 
1166 		ret = cp210x_write_reg_block(port, CP210X_SET_CHARS, &chars,
1167 				sizeof(chars));
1168 		if (ret) {
1169 			dev_err(&port->dev, "failed to set special chars: %d\n",
1170 					ret);
1171 		}
1172 	}
1173 
1174 	mutex_lock(&port_priv->mutex);
1175 
1176 	if (tty->termios.c_ospeed == 0) {
1177 		port_priv->dtr = false;
1178 		port_priv->rts = false;
1179 	} else if (old_termios && old_termios->c_ospeed == 0) {
1180 		port_priv->dtr = true;
1181 		port_priv->rts = true;
1182 	}
1183 
1184 	ret = cp210x_read_reg_block(port, CP210X_GET_FLOW, &flow_ctl,
1185 			sizeof(flow_ctl));
1186 	if (ret)
1187 		goto out_unlock;
1188 
1189 	ctl_hs = le32_to_cpu(flow_ctl.ulControlHandshake);
1190 	flow_repl = le32_to_cpu(flow_ctl.ulFlowReplace);
1191 
1192 	ctl_hs &= ~CP210X_SERIAL_DSR_HANDSHAKE;
1193 	ctl_hs &= ~CP210X_SERIAL_DCD_HANDSHAKE;
1194 	ctl_hs &= ~CP210X_SERIAL_DSR_SENSITIVITY;
1195 	ctl_hs &= ~CP210X_SERIAL_DTR_MASK;
1196 	if (port_priv->dtr)
1197 		ctl_hs |= CP210X_SERIAL_DTR_ACTIVE;
1198 	else
1199 		ctl_hs |= CP210X_SERIAL_DTR_INACTIVE;
1200 
1201 	flow_repl &= ~CP210X_SERIAL_RTS_MASK;
1202 	if (C_CRTSCTS(tty)) {
1203 		ctl_hs |= CP210X_SERIAL_CTS_HANDSHAKE;
1204 		if (port_priv->rts)
1205 			flow_repl |= CP210X_SERIAL_RTS_FLOW_CTL;
1206 		else
1207 			flow_repl |= CP210X_SERIAL_RTS_INACTIVE;
1208 		crtscts = true;
1209 	} else {
1210 		ctl_hs &= ~CP210X_SERIAL_CTS_HANDSHAKE;
1211 		if (port_priv->rts)
1212 			flow_repl |= CP210X_SERIAL_RTS_ACTIVE;
1213 		else
1214 			flow_repl |= CP210X_SERIAL_RTS_INACTIVE;
1215 		crtscts = false;
1216 	}
1217 
1218 	if (I_IXOFF(tty)) {
1219 		flow_repl |= CP210X_SERIAL_AUTO_RECEIVE;
1220 
1221 		flow_ctl.ulXonLimit = cpu_to_le32(128);
1222 		flow_ctl.ulXoffLimit = cpu_to_le32(128);
1223 	} else {
1224 		flow_repl &= ~CP210X_SERIAL_AUTO_RECEIVE;
1225 	}
1226 
1227 	if (I_IXON(tty))
1228 		flow_repl |= CP210X_SERIAL_AUTO_TRANSMIT;
1229 	else
1230 		flow_repl &= ~CP210X_SERIAL_AUTO_TRANSMIT;
1231 
1232 	dev_dbg(&port->dev, "%s - ctrl = 0x%02x, flow = 0x%02x\n", __func__,
1233 			ctl_hs, flow_repl);
1234 
1235 	flow_ctl.ulControlHandshake = cpu_to_le32(ctl_hs);
1236 	flow_ctl.ulFlowReplace = cpu_to_le32(flow_repl);
1237 
1238 	ret = cp210x_write_reg_block(port, CP210X_SET_FLOW, &flow_ctl,
1239 			sizeof(flow_ctl));
1240 	if (ret)
1241 		goto out_unlock;
1242 
1243 	port_priv->crtscts = crtscts;
1244 out_unlock:
1245 	mutex_unlock(&port_priv->mutex);
1246 }
1247 
1248 static void cp210x_set_termios(struct tty_struct *tty,
1249 		               struct usb_serial_port *port,
1250 		               const struct ktermios *old_termios)
1251 {
1252 	struct cp210x_serial_private *priv = usb_get_serial_data(port->serial);
1253 	u16 bits;
1254 	int ret;
1255 
1256 	if (old_termios && !cp210x_termios_change(&tty->termios, old_termios) &&
1257 			tty->termios.c_ospeed != 0)
1258 		return;
1259 
1260 	if (!old_termios || tty->termios.c_ospeed != old_termios->c_ospeed)
1261 		cp210x_change_speed(tty, port, old_termios);
1262 
1263 	/* CP2101 only supports CS8, 1 stop bit and non-stick parity. */
1264 	if (priv->partnum == CP210X_PARTNUM_CP2101) {
1265 		tty->termios.c_cflag &= ~(CSIZE | CSTOPB | CMSPAR);
1266 		tty->termios.c_cflag |= CS8;
1267 	}
1268 
1269 	bits = 0;
1270 
1271 	switch (C_CSIZE(tty)) {
1272 	case CS5:
1273 		bits |= BITS_DATA_5;
1274 		break;
1275 	case CS6:
1276 		bits |= BITS_DATA_6;
1277 		break;
1278 	case CS7:
1279 		bits |= BITS_DATA_7;
1280 		break;
1281 	case CS8:
1282 	default:
1283 		bits |= BITS_DATA_8;
1284 		break;
1285 	}
1286 
1287 	if (C_PARENB(tty)) {
1288 		if (C_CMSPAR(tty)) {
1289 			if (C_PARODD(tty))
1290 				bits |= BITS_PARITY_MARK;
1291 			else
1292 				bits |= BITS_PARITY_SPACE;
1293 		} else {
1294 			if (C_PARODD(tty))
1295 				bits |= BITS_PARITY_ODD;
1296 			else
1297 				bits |= BITS_PARITY_EVEN;
1298 		}
1299 	}
1300 
1301 	if (C_CSTOPB(tty))
1302 		bits |= BITS_STOP_2;
1303 	else
1304 		bits |= BITS_STOP_1;
1305 
1306 	ret = cp210x_write_u16_reg(port, CP210X_SET_LINE_CTL, bits);
1307 	if (ret)
1308 		dev_err(&port->dev, "failed to set line control: %d\n", ret);
1309 
1310 	cp210x_set_flow_control(tty, port, old_termios);
1311 
1312 	/*
1313 	 * Enable event-insertion mode only if input parity checking is
1314 	 * enabled for now.
1315 	 */
1316 	if (I_INPCK(tty))
1317 		cp210x_enable_event_mode(port);
1318 	else
1319 		cp210x_disable_event_mode(port);
1320 }
1321 
1322 static int cp210x_tiocmset(struct tty_struct *tty,
1323 		unsigned int set, unsigned int clear)
1324 {
1325 	struct usb_serial_port *port = tty->driver_data;
1326 	return cp210x_tiocmset_port(port, set, clear);
1327 }
1328 
1329 static int cp210x_tiocmset_port(struct usb_serial_port *port,
1330 		unsigned int set, unsigned int clear)
1331 {
1332 	struct cp210x_port_private *port_priv = usb_get_serial_port_data(port);
1333 	struct cp210x_flow_ctl flow_ctl;
1334 	u32 ctl_hs, flow_repl;
1335 	u16 control = 0;
1336 	int ret;
1337 
1338 	mutex_lock(&port_priv->mutex);
1339 
1340 	if (set & TIOCM_RTS) {
1341 		port_priv->rts = true;
1342 		control |= CONTROL_RTS;
1343 		control |= CONTROL_WRITE_RTS;
1344 	}
1345 	if (set & TIOCM_DTR) {
1346 		port_priv->dtr = true;
1347 		control |= CONTROL_DTR;
1348 		control |= CONTROL_WRITE_DTR;
1349 	}
1350 	if (clear & TIOCM_RTS) {
1351 		port_priv->rts = false;
1352 		control &= ~CONTROL_RTS;
1353 		control |= CONTROL_WRITE_RTS;
1354 	}
1355 	if (clear & TIOCM_DTR) {
1356 		port_priv->dtr = false;
1357 		control &= ~CONTROL_DTR;
1358 		control |= CONTROL_WRITE_DTR;
1359 	}
1360 
1361 	/*
1362 	 * Use SET_FLOW to set DTR and enable/disable auto-RTS when hardware
1363 	 * flow control is enabled.
1364 	 */
1365 	if (port_priv->crtscts && control & CONTROL_WRITE_RTS) {
1366 		ret = cp210x_read_reg_block(port, CP210X_GET_FLOW, &flow_ctl,
1367 				sizeof(flow_ctl));
1368 		if (ret)
1369 			goto out_unlock;
1370 
1371 		ctl_hs = le32_to_cpu(flow_ctl.ulControlHandshake);
1372 		flow_repl = le32_to_cpu(flow_ctl.ulFlowReplace);
1373 
1374 		ctl_hs &= ~CP210X_SERIAL_DTR_MASK;
1375 		if (port_priv->dtr)
1376 			ctl_hs |= CP210X_SERIAL_DTR_ACTIVE;
1377 		else
1378 			ctl_hs |= CP210X_SERIAL_DTR_INACTIVE;
1379 
1380 		flow_repl &= ~CP210X_SERIAL_RTS_MASK;
1381 		if (port_priv->rts)
1382 			flow_repl |= CP210X_SERIAL_RTS_FLOW_CTL;
1383 		else
1384 			flow_repl |= CP210X_SERIAL_RTS_INACTIVE;
1385 
1386 		flow_ctl.ulControlHandshake = cpu_to_le32(ctl_hs);
1387 		flow_ctl.ulFlowReplace = cpu_to_le32(flow_repl);
1388 
1389 		dev_dbg(&port->dev, "%s - ctrl = 0x%02x, flow = 0x%02x\n",
1390 				__func__, ctl_hs, flow_repl);
1391 
1392 		ret = cp210x_write_reg_block(port, CP210X_SET_FLOW, &flow_ctl,
1393 				sizeof(flow_ctl));
1394 	} else {
1395 		dev_dbg(&port->dev, "%s - control = 0x%04x\n", __func__, control);
1396 
1397 		ret = cp210x_write_u16_reg(port, CP210X_SET_MHS, control);
1398 	}
1399 out_unlock:
1400 	mutex_unlock(&port_priv->mutex);
1401 
1402 	return ret;
1403 }
1404 
1405 static void cp210x_dtr_rts(struct usb_serial_port *port, int on)
1406 {
1407 	if (on)
1408 		cp210x_tiocmset_port(port, TIOCM_DTR | TIOCM_RTS, 0);
1409 	else
1410 		cp210x_tiocmset_port(port, 0, TIOCM_DTR | TIOCM_RTS);
1411 }
1412 
1413 static int cp210x_tiocmget(struct tty_struct *tty)
1414 {
1415 	struct usb_serial_port *port = tty->driver_data;
1416 	u8 control;
1417 	int result;
1418 
1419 	result = cp210x_read_u8_reg(port, CP210X_GET_MDMSTS, &control);
1420 	if (result)
1421 		return result;
1422 
1423 	result = ((control & CONTROL_DTR) ? TIOCM_DTR : 0)
1424 		|((control & CONTROL_RTS) ? TIOCM_RTS : 0)
1425 		|((control & CONTROL_CTS) ? TIOCM_CTS : 0)
1426 		|((control & CONTROL_DSR) ? TIOCM_DSR : 0)
1427 		|((control & CONTROL_RING)? TIOCM_RI  : 0)
1428 		|((control & CONTROL_DCD) ? TIOCM_CD  : 0);
1429 
1430 	dev_dbg(&port->dev, "%s - control = 0x%02x\n", __func__, control);
1431 
1432 	return result;
1433 }
1434 
1435 static void cp210x_break_ctl(struct tty_struct *tty, int break_state)
1436 {
1437 	struct usb_serial_port *port = tty->driver_data;
1438 	u16 state;
1439 
1440 	if (break_state == 0)
1441 		state = BREAK_OFF;
1442 	else
1443 		state = BREAK_ON;
1444 	dev_dbg(&port->dev, "%s - turning break %s\n", __func__,
1445 		state == BREAK_OFF ? "off" : "on");
1446 	cp210x_write_u16_reg(port, CP210X_SET_BREAK, state);
1447 }
1448 
1449 #ifdef CONFIG_GPIOLIB
1450 static int cp210x_gpio_get(struct gpio_chip *gc, unsigned int gpio)
1451 {
1452 	struct usb_serial *serial = gpiochip_get_data(gc);
1453 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1454 	u8 req_type;
1455 	u16 mask;
1456 	int result;
1457 	int len;
1458 
1459 	result = usb_autopm_get_interface(serial->interface);
1460 	if (result)
1461 		return result;
1462 
1463 	switch (priv->partnum) {
1464 	case CP210X_PARTNUM_CP2105:
1465 		req_type = REQTYPE_INTERFACE_TO_HOST;
1466 		len = 1;
1467 		break;
1468 	case CP210X_PARTNUM_CP2108:
1469 		req_type = REQTYPE_INTERFACE_TO_HOST;
1470 		len = 2;
1471 		break;
1472 	default:
1473 		req_type = REQTYPE_DEVICE_TO_HOST;
1474 		len = 1;
1475 		break;
1476 	}
1477 
1478 	mask = 0;
1479 	result = cp210x_read_vendor_block(serial, req_type, CP210X_READ_LATCH,
1480 					  &mask, len);
1481 
1482 	usb_autopm_put_interface(serial->interface);
1483 
1484 	if (result < 0)
1485 		return result;
1486 
1487 	le16_to_cpus(&mask);
1488 
1489 	return !!(mask & BIT(gpio));
1490 }
1491 
1492 static void cp210x_gpio_set(struct gpio_chip *gc, unsigned int gpio, int value)
1493 {
1494 	struct usb_serial *serial = gpiochip_get_data(gc);
1495 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1496 	struct cp210x_gpio_write16 buf16;
1497 	struct cp210x_gpio_write buf;
1498 	u16 mask, state;
1499 	u16 wIndex;
1500 	int result;
1501 
1502 	if (value == 1)
1503 		state = BIT(gpio);
1504 	else
1505 		state = 0;
1506 
1507 	mask = BIT(gpio);
1508 
1509 	result = usb_autopm_get_interface(serial->interface);
1510 	if (result)
1511 		goto out;
1512 
1513 	switch (priv->partnum) {
1514 	case CP210X_PARTNUM_CP2105:
1515 		buf.mask = (u8)mask;
1516 		buf.state = (u8)state;
1517 		result = cp210x_write_vendor_block(serial,
1518 						   REQTYPE_HOST_TO_INTERFACE,
1519 						   CP210X_WRITE_LATCH, &buf,
1520 						   sizeof(buf));
1521 		break;
1522 	case CP210X_PARTNUM_CP2108:
1523 		buf16.mask = cpu_to_le16(mask);
1524 		buf16.state = cpu_to_le16(state);
1525 		result = cp210x_write_vendor_block(serial,
1526 						   REQTYPE_HOST_TO_INTERFACE,
1527 						   CP210X_WRITE_LATCH, &buf16,
1528 						   sizeof(buf16));
1529 		break;
1530 	default:
1531 		wIndex = state << 8 | mask;
1532 		result = usb_control_msg(serial->dev,
1533 					 usb_sndctrlpipe(serial->dev, 0),
1534 					 CP210X_VENDOR_SPECIFIC,
1535 					 REQTYPE_HOST_TO_DEVICE,
1536 					 CP210X_WRITE_LATCH,
1537 					 wIndex,
1538 					 NULL, 0, USB_CTRL_SET_TIMEOUT);
1539 		break;
1540 	}
1541 
1542 	usb_autopm_put_interface(serial->interface);
1543 out:
1544 	if (result < 0) {
1545 		dev_err(&serial->interface->dev, "failed to set GPIO value: %d\n",
1546 				result);
1547 	}
1548 }
1549 
1550 static int cp210x_gpio_direction_get(struct gpio_chip *gc, unsigned int gpio)
1551 {
1552 	struct usb_serial *serial = gpiochip_get_data(gc);
1553 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1554 
1555 	return priv->gpio_input & BIT(gpio);
1556 }
1557 
1558 static int cp210x_gpio_direction_input(struct gpio_chip *gc, unsigned int gpio)
1559 {
1560 	struct usb_serial *serial = gpiochip_get_data(gc);
1561 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1562 
1563 	if (priv->partnum == CP210X_PARTNUM_CP2105) {
1564 		/* hardware does not support an input mode */
1565 		return -ENOTSUPP;
1566 	}
1567 
1568 	/* push-pull pins cannot be changed to be inputs */
1569 	if (priv->gpio_pushpull & BIT(gpio))
1570 		return -EINVAL;
1571 
1572 	/* make sure to release pin if it is being driven low */
1573 	cp210x_gpio_set(gc, gpio, 1);
1574 
1575 	priv->gpio_input |= BIT(gpio);
1576 
1577 	return 0;
1578 }
1579 
1580 static int cp210x_gpio_direction_output(struct gpio_chip *gc, unsigned int gpio,
1581 					int value)
1582 {
1583 	struct usb_serial *serial = gpiochip_get_data(gc);
1584 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1585 
1586 	priv->gpio_input &= ~BIT(gpio);
1587 	cp210x_gpio_set(gc, gpio, value);
1588 
1589 	return 0;
1590 }
1591 
1592 static int cp210x_gpio_set_config(struct gpio_chip *gc, unsigned int gpio,
1593 				  unsigned long config)
1594 {
1595 	struct usb_serial *serial = gpiochip_get_data(gc);
1596 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1597 	enum pin_config_param param = pinconf_to_config_param(config);
1598 
1599 	/* Succeed only if in correct mode (this can't be set at runtime) */
1600 	if ((param == PIN_CONFIG_DRIVE_PUSH_PULL) &&
1601 	    (priv->gpio_pushpull & BIT(gpio)))
1602 		return 0;
1603 
1604 	if ((param == PIN_CONFIG_DRIVE_OPEN_DRAIN) &&
1605 	    !(priv->gpio_pushpull & BIT(gpio)))
1606 		return 0;
1607 
1608 	return -ENOTSUPP;
1609 }
1610 
1611 static int cp210x_gpio_init_valid_mask(struct gpio_chip *gc,
1612 		unsigned long *valid_mask, unsigned int ngpios)
1613 {
1614 	struct usb_serial *serial = gpiochip_get_data(gc);
1615 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1616 	struct device *dev = &serial->interface->dev;
1617 	unsigned long altfunc_mask = priv->gpio_altfunc;
1618 
1619 	bitmap_complement(valid_mask, &altfunc_mask, ngpios);
1620 
1621 	if (bitmap_empty(valid_mask, ngpios))
1622 		dev_dbg(dev, "no pin configured for GPIO\n");
1623 	else
1624 		dev_dbg(dev, "GPIO.%*pbl configured for GPIO\n", ngpios,
1625 				valid_mask);
1626 	return 0;
1627 }
1628 
1629 /*
1630  * This function is for configuring GPIO using shared pins, where other signals
1631  * are made unavailable by configuring the use of GPIO. This is believed to be
1632  * only applicable to the cp2105 at this point, the other devices supported by
1633  * this driver that provide GPIO do so in a way that does not impact other
1634  * signals and are thus expected to have very different initialisation.
1635  */
1636 static int cp2105_gpioconf_init(struct usb_serial *serial)
1637 {
1638 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1639 	struct cp210x_pin_mode mode;
1640 	struct cp210x_dual_port_config config;
1641 	u8 intf_num = cp210x_interface_num(serial);
1642 	u8 iface_config;
1643 	int result;
1644 
1645 	result = cp210x_read_vendor_block(serial, REQTYPE_DEVICE_TO_HOST,
1646 					  CP210X_GET_DEVICEMODE, &mode,
1647 					  sizeof(mode));
1648 	if (result < 0)
1649 		return result;
1650 
1651 	result = cp210x_read_vendor_block(serial, REQTYPE_DEVICE_TO_HOST,
1652 					  CP210X_GET_PORTCONFIG, &config,
1653 					  sizeof(config));
1654 	if (result < 0)
1655 		return result;
1656 
1657 	/*  2 banks of GPIO - One for the pins taken from each serial port */
1658 	if (intf_num == 0) {
1659 		priv->gc.ngpio = 2;
1660 
1661 		if (mode.eci == CP210X_PIN_MODE_MODEM) {
1662 			/* mark all GPIOs of this interface as reserved */
1663 			priv->gpio_altfunc = 0xff;
1664 			return 0;
1665 		}
1666 
1667 		iface_config = config.eci_cfg;
1668 		priv->gpio_pushpull = (u8)((le16_to_cpu(config.gpio_mode) &
1669 						CP210X_ECI_GPIO_MODE_MASK) >>
1670 						CP210X_ECI_GPIO_MODE_OFFSET);
1671 	} else if (intf_num == 1) {
1672 		priv->gc.ngpio = 3;
1673 
1674 		if (mode.sci == CP210X_PIN_MODE_MODEM) {
1675 			/* mark all GPIOs of this interface as reserved */
1676 			priv->gpio_altfunc = 0xff;
1677 			return 0;
1678 		}
1679 
1680 		iface_config = config.sci_cfg;
1681 		priv->gpio_pushpull = (u8)((le16_to_cpu(config.gpio_mode) &
1682 						CP210X_SCI_GPIO_MODE_MASK) >>
1683 						CP210X_SCI_GPIO_MODE_OFFSET);
1684 	} else {
1685 		return -ENODEV;
1686 	}
1687 
1688 	/* mark all pins which are not in GPIO mode */
1689 	if (iface_config & CP2105_GPIO0_TXLED_MODE)	/* GPIO 0 */
1690 		priv->gpio_altfunc |= BIT(0);
1691 	if (iface_config & (CP2105_GPIO1_RXLED_MODE |	/* GPIO 1 */
1692 			CP2105_GPIO1_RS485_MODE))
1693 		priv->gpio_altfunc |= BIT(1);
1694 
1695 	/* driver implementation for CP2105 only supports outputs */
1696 	priv->gpio_input = 0;
1697 
1698 	return 0;
1699 }
1700 
1701 static int cp2104_gpioconf_init(struct usb_serial *serial)
1702 {
1703 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1704 	struct cp210x_single_port_config config;
1705 	u8 iface_config;
1706 	u8 gpio_latch;
1707 	int result;
1708 	u8 i;
1709 
1710 	result = cp210x_read_vendor_block(serial, REQTYPE_DEVICE_TO_HOST,
1711 					  CP210X_GET_PORTCONFIG, &config,
1712 					  sizeof(config));
1713 	if (result < 0)
1714 		return result;
1715 
1716 	priv->gc.ngpio = 4;
1717 
1718 	iface_config = config.device_cfg;
1719 	priv->gpio_pushpull = (u8)((le16_to_cpu(config.gpio_mode) &
1720 					CP210X_GPIO_MODE_MASK) >>
1721 					CP210X_GPIO_MODE_OFFSET);
1722 	gpio_latch = (u8)((le16_to_cpu(config.reset_state) &
1723 					CP210X_GPIO_MODE_MASK) >>
1724 					CP210X_GPIO_MODE_OFFSET);
1725 
1726 	/* mark all pins which are not in GPIO mode */
1727 	if (iface_config & CP2104_GPIO0_TXLED_MODE)	/* GPIO 0 */
1728 		priv->gpio_altfunc |= BIT(0);
1729 	if (iface_config & CP2104_GPIO1_RXLED_MODE)	/* GPIO 1 */
1730 		priv->gpio_altfunc |= BIT(1);
1731 	if (iface_config & CP2104_GPIO2_RS485_MODE)	/* GPIO 2 */
1732 		priv->gpio_altfunc |= BIT(2);
1733 
1734 	/*
1735 	 * Like CP2102N, CP2104 has also no strict input and output pin
1736 	 * modes.
1737 	 * Do the same input mode emulation as CP2102N.
1738 	 */
1739 	for (i = 0; i < priv->gc.ngpio; ++i) {
1740 		/*
1741 		 * Set direction to "input" iff pin is open-drain and reset
1742 		 * value is 1.
1743 		 */
1744 		if (!(priv->gpio_pushpull & BIT(i)) && (gpio_latch & BIT(i)))
1745 			priv->gpio_input |= BIT(i);
1746 	}
1747 
1748 	return 0;
1749 }
1750 
1751 static int cp2108_gpio_init(struct usb_serial *serial)
1752 {
1753 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1754 	struct cp210x_quad_port_config config;
1755 	u16 gpio_latch;
1756 	int result;
1757 	u8 i;
1758 
1759 	result = cp210x_read_vendor_block(serial, REQTYPE_DEVICE_TO_HOST,
1760 					  CP210X_GET_PORTCONFIG, &config,
1761 					  sizeof(config));
1762 	if (result < 0)
1763 		return result;
1764 
1765 	priv->gc.ngpio = 16;
1766 	priv->gpio_pushpull = le16_to_cpu(config.reset_state.gpio_mode_pb1);
1767 	gpio_latch = le16_to_cpu(config.reset_state.gpio_latch_pb1);
1768 
1769 	/*
1770 	 * Mark all pins which are not in GPIO mode.
1771 	 *
1772 	 * Refer to table 9.1 "GPIO Mode alternate Functions" in the datasheet:
1773 	 * https://www.silabs.com/documents/public/data-sheets/cp2108-datasheet.pdf
1774 	 *
1775 	 * Alternate functions of GPIO0 to GPIO3 are determine by enhancedfxn_ifc[0]
1776 	 * and the similarly for the other pins; enhancedfxn_ifc[1]: GPIO4 to GPIO7,
1777 	 * enhancedfxn_ifc[2]: GPIO8 to GPIO11, enhancedfxn_ifc[3]: GPIO12 to GPIO15.
1778 	 */
1779 	for (i = 0; i < 4; i++) {
1780 		if (config.enhancedfxn_ifc[i] & CP2108_EF_IFC_GPIO_TXLED)
1781 			priv->gpio_altfunc |= BIT(i * 4);
1782 		if (config.enhancedfxn_ifc[i] & CP2108_EF_IFC_GPIO_RXLED)
1783 			priv->gpio_altfunc |= BIT((i * 4) + 1);
1784 		if (config.enhancedfxn_ifc[i] & CP2108_EF_IFC_GPIO_RS485)
1785 			priv->gpio_altfunc |= BIT((i * 4) + 2);
1786 		if (config.enhancedfxn_ifc[i] & CP2108_EF_IFC_GPIO_CLOCK)
1787 			priv->gpio_altfunc |= BIT((i * 4) + 3);
1788 	}
1789 
1790 	/*
1791 	 * Like CP2102N, CP2108 has also no strict input and output pin
1792 	 * modes. Do the same input mode emulation as CP2102N.
1793 	 */
1794 	for (i = 0; i < priv->gc.ngpio; ++i) {
1795 		/*
1796 		 * Set direction to "input" iff pin is open-drain and reset
1797 		 * value is 1.
1798 		 */
1799 		if (!(priv->gpio_pushpull & BIT(i)) && (gpio_latch & BIT(i)))
1800 			priv->gpio_input |= BIT(i);
1801 	}
1802 
1803 	return 0;
1804 }
1805 
1806 static int cp2102n_gpioconf_init(struct usb_serial *serial)
1807 {
1808 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1809 	const u16 config_size = 0x02a6;
1810 	u8 gpio_rst_latch;
1811 	u8 config_version;
1812 	u8 gpio_pushpull;
1813 	u8 *config_buf;
1814 	u8 gpio_latch;
1815 	u8 gpio_ctrl;
1816 	int result;
1817 	u8 i;
1818 
1819 	/*
1820 	 * Retrieve device configuration from the device.
1821 	 * The array received contains all customization settings done at the
1822 	 * factory/manufacturer. Format of the array is documented at the
1823 	 * time of writing at:
1824 	 * https://www.silabs.com/community/interface/knowledge-base.entry.html/2017/03/31/cp2102n_setconfig-xsfa
1825 	 */
1826 	config_buf = kmalloc(config_size, GFP_KERNEL);
1827 	if (!config_buf)
1828 		return -ENOMEM;
1829 
1830 	result = cp210x_read_vendor_block(serial,
1831 					  REQTYPE_DEVICE_TO_HOST,
1832 					  CP210X_READ_2NCONFIG,
1833 					  config_buf,
1834 					  config_size);
1835 	if (result < 0) {
1836 		kfree(config_buf);
1837 		return result;
1838 	}
1839 
1840 	config_version = config_buf[CP210X_2NCONFIG_CONFIG_VERSION_IDX];
1841 	gpio_pushpull = config_buf[CP210X_2NCONFIG_GPIO_MODE_IDX];
1842 	gpio_ctrl = config_buf[CP210X_2NCONFIG_GPIO_CONTROL_IDX];
1843 	gpio_rst_latch = config_buf[CP210X_2NCONFIG_GPIO_RSTLATCH_IDX];
1844 
1845 	kfree(config_buf);
1846 
1847 	/* Make sure this is a config format we understand. */
1848 	if (config_version != 0x01)
1849 		return -ENOTSUPP;
1850 
1851 	priv->gc.ngpio = 4;
1852 
1853 	/*
1854 	 * Get default pin states after reset. Needed so we can determine
1855 	 * the direction of an open-drain pin.
1856 	 */
1857 	gpio_latch = (gpio_rst_latch >> 3) & 0x0f;
1858 
1859 	/* 0 indicates open-drain mode, 1 is push-pull */
1860 	priv->gpio_pushpull = (gpio_pushpull >> 3) & 0x0f;
1861 
1862 	/* 0 indicates GPIO mode, 1 is alternate function */
1863 	if (priv->partnum == CP210X_PARTNUM_CP2102N_QFN20) {
1864 		/* QFN20 is special... */
1865 		if (gpio_ctrl & CP2102N_QFN20_GPIO0_CLK_MODE)   /* GPIO 0 */
1866 			priv->gpio_altfunc |= BIT(0);
1867 		if (gpio_ctrl & CP2102N_QFN20_GPIO1_RS485_MODE) /* GPIO 1 */
1868 			priv->gpio_altfunc |= BIT(1);
1869 		if (gpio_ctrl & CP2102N_QFN20_GPIO2_TXLED_MODE) /* GPIO 2 */
1870 			priv->gpio_altfunc |= BIT(2);
1871 		if (gpio_ctrl & CP2102N_QFN20_GPIO3_RXLED_MODE) /* GPIO 3 */
1872 			priv->gpio_altfunc |= BIT(3);
1873 	} else {
1874 		priv->gpio_altfunc = (gpio_ctrl >> 2) & 0x0f;
1875 	}
1876 
1877 	if (priv->partnum == CP210X_PARTNUM_CP2102N_QFN28) {
1878 		/*
1879 		 * For the QFN28 package, GPIO4-6 are controlled by
1880 		 * the low three bits of the mode/latch fields.
1881 		 * Contrary to the document linked above, the bits for
1882 		 * the SUSPEND pins are elsewhere.  No alternate
1883 		 * function is available for these pins.
1884 		 */
1885 		priv->gc.ngpio = 7;
1886 		gpio_latch |= (gpio_rst_latch & 7) << 4;
1887 		priv->gpio_pushpull |= (gpio_pushpull & 7) << 4;
1888 	}
1889 
1890 	/*
1891 	 * The CP2102N does not strictly has input and output pin modes,
1892 	 * it only knows open-drain and push-pull modes which is set at
1893 	 * factory. An open-drain pin can function both as an
1894 	 * input or an output. We emulate input mode for open-drain pins
1895 	 * by making sure they are not driven low, and we do not allow
1896 	 * push-pull pins to be set as an input.
1897 	 */
1898 	for (i = 0; i < priv->gc.ngpio; ++i) {
1899 		/*
1900 		 * Set direction to "input" iff pin is open-drain and reset
1901 		 * value is 1.
1902 		 */
1903 		if (!(priv->gpio_pushpull & BIT(i)) && (gpio_latch & BIT(i)))
1904 			priv->gpio_input |= BIT(i);
1905 	}
1906 
1907 	return 0;
1908 }
1909 
1910 static int cp210x_gpio_init(struct usb_serial *serial)
1911 {
1912 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1913 	int result;
1914 
1915 	switch (priv->partnum) {
1916 	case CP210X_PARTNUM_CP2104:
1917 		result = cp2104_gpioconf_init(serial);
1918 		break;
1919 	case CP210X_PARTNUM_CP2105:
1920 		result = cp2105_gpioconf_init(serial);
1921 		break;
1922 	case CP210X_PARTNUM_CP2108:
1923 		/*
1924 		 * The GPIOs are not tied to any specific port so only register
1925 		 * once for interface 0.
1926 		 */
1927 		if (cp210x_interface_num(serial) != 0)
1928 			return 0;
1929 		result = cp2108_gpio_init(serial);
1930 		break;
1931 	case CP210X_PARTNUM_CP2102N_QFN28:
1932 	case CP210X_PARTNUM_CP2102N_QFN24:
1933 	case CP210X_PARTNUM_CP2102N_QFN20:
1934 		result = cp2102n_gpioconf_init(serial);
1935 		break;
1936 	default:
1937 		return 0;
1938 	}
1939 
1940 	if (result < 0)
1941 		return result;
1942 
1943 	priv->gc.label = "cp210x";
1944 	priv->gc.get_direction = cp210x_gpio_direction_get;
1945 	priv->gc.direction_input = cp210x_gpio_direction_input;
1946 	priv->gc.direction_output = cp210x_gpio_direction_output;
1947 	priv->gc.get = cp210x_gpio_get;
1948 	priv->gc.set = cp210x_gpio_set;
1949 	priv->gc.set_config = cp210x_gpio_set_config;
1950 	priv->gc.init_valid_mask = cp210x_gpio_init_valid_mask;
1951 	priv->gc.owner = THIS_MODULE;
1952 	priv->gc.parent = &serial->interface->dev;
1953 	priv->gc.base = -1;
1954 	priv->gc.can_sleep = true;
1955 
1956 	result = gpiochip_add_data(&priv->gc, serial);
1957 	if (!result)
1958 		priv->gpio_registered = true;
1959 
1960 	return result;
1961 }
1962 
1963 static void cp210x_gpio_remove(struct usb_serial *serial)
1964 {
1965 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
1966 
1967 	if (priv->gpio_registered) {
1968 		gpiochip_remove(&priv->gc);
1969 		priv->gpio_registered = false;
1970 	}
1971 }
1972 
1973 #else
1974 
1975 static int cp210x_gpio_init(struct usb_serial *serial)
1976 {
1977 	return 0;
1978 }
1979 
1980 static void cp210x_gpio_remove(struct usb_serial *serial)
1981 {
1982 	/* Nothing to do */
1983 }
1984 
1985 #endif
1986 
1987 static int cp210x_port_probe(struct usb_serial_port *port)
1988 {
1989 	struct usb_serial *serial = port->serial;
1990 	struct cp210x_port_private *port_priv;
1991 
1992 	port_priv = kzalloc(sizeof(*port_priv), GFP_KERNEL);
1993 	if (!port_priv)
1994 		return -ENOMEM;
1995 
1996 	port_priv->bInterfaceNumber = cp210x_interface_num(serial);
1997 	mutex_init(&port_priv->mutex);
1998 
1999 	usb_set_serial_port_data(port, port_priv);
2000 
2001 	return 0;
2002 }
2003 
2004 static void cp210x_port_remove(struct usb_serial_port *port)
2005 {
2006 	struct cp210x_port_private *port_priv;
2007 
2008 	port_priv = usb_get_serial_port_data(port);
2009 	kfree(port_priv);
2010 }
2011 
2012 static void cp210x_init_max_speed(struct usb_serial *serial)
2013 {
2014 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
2015 	bool use_actual_rate = false;
2016 	speed_t min = 300;
2017 	speed_t max;
2018 
2019 	switch (priv->partnum) {
2020 	case CP210X_PARTNUM_CP2101:
2021 		max = 921600;
2022 		break;
2023 	case CP210X_PARTNUM_CP2102:
2024 	case CP210X_PARTNUM_CP2103:
2025 		max = 1000000;
2026 		break;
2027 	case CP210X_PARTNUM_CP2104:
2028 		use_actual_rate = true;
2029 		max = 2000000;
2030 		break;
2031 	case CP210X_PARTNUM_CP2108:
2032 		max = 2000000;
2033 		break;
2034 	case CP210X_PARTNUM_CP2105:
2035 		if (cp210x_interface_num(serial) == 0) {
2036 			use_actual_rate = true;
2037 			max = 2000000;	/* ECI */
2038 		} else {
2039 			min = 2400;
2040 			max = 921600;	/* SCI */
2041 		}
2042 		break;
2043 	case CP210X_PARTNUM_CP2102N_QFN28:
2044 	case CP210X_PARTNUM_CP2102N_QFN24:
2045 	case CP210X_PARTNUM_CP2102N_QFN20:
2046 		use_actual_rate = true;
2047 		max = 3000000;
2048 		break;
2049 	default:
2050 		max = 2000000;
2051 		break;
2052 	}
2053 
2054 	priv->min_speed = min;
2055 	priv->max_speed = max;
2056 	priv->use_actual_rate = use_actual_rate;
2057 }
2058 
2059 static void cp2102_determine_quirks(struct usb_serial *serial)
2060 {
2061 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
2062 	u8 *buf;
2063 	int ret;
2064 
2065 	buf = kmalloc(2, GFP_KERNEL);
2066 	if (!buf)
2067 		return;
2068 	/*
2069 	 * Some (possibly counterfeit) CP2102 do not support event-insertion
2070 	 * mode and respond differently to malformed vendor requests.
2071 	 * Specifically, they return one instead of two bytes when sent a
2072 	 * two-byte part-number request.
2073 	 */
2074 	ret = usb_control_msg(serial->dev, usb_rcvctrlpipe(serial->dev, 0),
2075 			CP210X_VENDOR_SPECIFIC, REQTYPE_DEVICE_TO_HOST,
2076 			CP210X_GET_PARTNUM, 0, buf, 2, USB_CTRL_GET_TIMEOUT);
2077 	if (ret == 1) {
2078 		dev_dbg(&serial->interface->dev,
2079 				"device does not support event-insertion mode\n");
2080 		priv->no_event_mode = true;
2081 	}
2082 
2083 	kfree(buf);
2084 }
2085 
2086 static int cp210x_get_fw_version(struct usb_serial *serial, u16 value)
2087 {
2088 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
2089 	u8 ver[3];
2090 	int ret;
2091 
2092 	ret = cp210x_read_vendor_block(serial, REQTYPE_DEVICE_TO_HOST, value,
2093 			ver, sizeof(ver));
2094 	if (ret)
2095 		return ret;
2096 
2097 	dev_dbg(&serial->interface->dev, "%s - %d.%d.%d\n", __func__,
2098 			ver[0], ver[1], ver[2]);
2099 
2100 	priv->fw_version = ver[0] << 16 | ver[1] << 8 | ver[2];
2101 
2102 	return 0;
2103 }
2104 
2105 static void cp210x_determine_type(struct usb_serial *serial)
2106 {
2107 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
2108 	int ret;
2109 
2110 	ret = cp210x_read_vendor_block(serial, REQTYPE_DEVICE_TO_HOST,
2111 			CP210X_GET_PARTNUM, &priv->partnum,
2112 			sizeof(priv->partnum));
2113 	if (ret < 0) {
2114 		dev_warn(&serial->interface->dev,
2115 				"querying part number failed\n");
2116 		priv->partnum = CP210X_PARTNUM_UNKNOWN;
2117 		return;
2118 	}
2119 
2120 	dev_dbg(&serial->interface->dev, "partnum = 0x%02x\n", priv->partnum);
2121 
2122 	switch (priv->partnum) {
2123 	case CP210X_PARTNUM_CP2102:
2124 		cp2102_determine_quirks(serial);
2125 		break;
2126 	case CP210X_PARTNUM_CP2105:
2127 	case CP210X_PARTNUM_CP2108:
2128 		cp210x_get_fw_version(serial, CP210X_GET_FW_VER);
2129 		break;
2130 	case CP210X_PARTNUM_CP2102N_QFN28:
2131 	case CP210X_PARTNUM_CP2102N_QFN24:
2132 	case CP210X_PARTNUM_CP2102N_QFN20:
2133 		ret = cp210x_get_fw_version(serial, CP210X_GET_FW_VER_2N);
2134 		if (ret)
2135 			break;
2136 		if (priv->fw_version <= 0x10004)
2137 			priv->no_flow_control = true;
2138 		break;
2139 	default:
2140 		break;
2141 	}
2142 }
2143 
2144 static int cp210x_attach(struct usb_serial *serial)
2145 {
2146 	int result;
2147 	struct cp210x_serial_private *priv;
2148 
2149 	priv = kzalloc(sizeof(*priv), GFP_KERNEL);
2150 	if (!priv)
2151 		return -ENOMEM;
2152 
2153 	usb_set_serial_data(serial, priv);
2154 
2155 	cp210x_determine_type(serial);
2156 	cp210x_init_max_speed(serial);
2157 
2158 	result = cp210x_gpio_init(serial);
2159 	if (result < 0) {
2160 		dev_err(&serial->interface->dev, "GPIO initialisation failed: %d\n",
2161 				result);
2162 	}
2163 
2164 	return 0;
2165 }
2166 
2167 static void cp210x_disconnect(struct usb_serial *serial)
2168 {
2169 	cp210x_gpio_remove(serial);
2170 }
2171 
2172 static void cp210x_release(struct usb_serial *serial)
2173 {
2174 	struct cp210x_serial_private *priv = usb_get_serial_data(serial);
2175 
2176 	cp210x_gpio_remove(serial);
2177 
2178 	kfree(priv);
2179 }
2180 
2181 module_usb_serial_driver(serial_drivers, id_table);
2182 
2183 MODULE_DESCRIPTION(DRIVER_DESC);
2184 MODULE_LICENSE("GPL v2");
2185