1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright 2015-2017 Google, Inc
4 *
5 * USB Type-C Port Controller Interface.
6 */
7
8 #include <linux/bitfield.h>
9 #include <linux/delay.h>
10 #include <linux/kernel.h>
11 #include <linux/module.h>
12 #include <linux/i2c.h>
13 #include <linux/interrupt.h>
14 #include <linux/property.h>
15 #include <linux/regmap.h>
16 #include <linux/usb/pd.h>
17 #include <linux/usb/tcpci.h>
18 #include <linux/usb/tcpm.h>
19 #include <linux/usb/typec.h>
20
21 #define PD_RETRY_COUNT_DEFAULT 3
22 #define PD_RETRY_COUNT_3_0_OR_HIGHER 2
23 #define AUTO_DISCHARGE_DEFAULT_THRESHOLD_MV 3500
24 #define VSINKPD_MIN_IR_DROP_MV 750
25 #define VSRC_NEW_MIN_PERCENT 95
26 #define VSRC_VALID_MIN_MV 500
27 #define VPPS_NEW_MIN_PERCENT 95
28 #define VPPS_VALID_MIN_MV 100
29 #define VSINKDISCONNECT_PD_MIN_PERCENT 90
30 #define VPPS_SHUTDOWN_MIN_PERCENT 85
31
32 struct tcpci {
33 struct device *dev;
34
35 struct tcpm_port *port;
36
37 struct regmap *regmap;
38 unsigned int alert_mask;
39
40 bool controls_vbus;
41
42 struct tcpc_dev tcpc;
43 struct tcpci_data *data;
44 };
45
46 struct tcpci_chip {
47 struct tcpci *tcpci;
48 struct tcpci_data data;
49 };
50
tcpci_get_tcpm_port(struct tcpci * tcpci)51 struct tcpm_port *tcpci_get_tcpm_port(struct tcpci *tcpci)
52 {
53 return tcpci->port;
54 }
55 EXPORT_SYMBOL_GPL(tcpci_get_tcpm_port);
56
tcpc_to_tcpci(struct tcpc_dev * tcpc)57 static inline struct tcpci *tcpc_to_tcpci(struct tcpc_dev *tcpc)
58 {
59 return container_of(tcpc, struct tcpci, tcpc);
60 }
61
tcpci_read16(struct tcpci * tcpci,unsigned int reg,u16 * val)62 static int tcpci_read16(struct tcpci *tcpci, unsigned int reg, u16 *val)
63 {
64 return regmap_raw_read(tcpci->regmap, reg, val, sizeof(u16));
65 }
66
tcpci_write16(struct tcpci * tcpci,unsigned int reg,u16 val)67 static int tcpci_write16(struct tcpci *tcpci, unsigned int reg, u16 val)
68 {
69 return regmap_raw_write(tcpci->regmap, reg, &val, sizeof(u16));
70 }
71
tcpci_check_std_output_cap(struct regmap * regmap,u8 mask)72 static int tcpci_check_std_output_cap(struct regmap *regmap, u8 mask)
73 {
74 unsigned int reg;
75 int ret;
76
77 ret = regmap_read(regmap, TCPC_STD_OUTPUT_CAP, ®);
78 if (ret < 0)
79 return ret;
80
81 return (reg & mask) == mask;
82 }
83
tcpci_set_cc(struct tcpc_dev * tcpc,enum typec_cc_status cc)84 static int tcpci_set_cc(struct tcpc_dev *tcpc, enum typec_cc_status cc)
85 {
86 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
87 bool vconn_pres;
88 enum typec_cc_polarity polarity = TYPEC_POLARITY_CC1;
89 unsigned int reg;
90 int ret;
91
92 ret = regmap_read(tcpci->regmap, TCPC_POWER_STATUS, ®);
93 if (ret < 0)
94 return ret;
95
96 vconn_pres = !!(reg & TCPC_POWER_STATUS_VCONN_PRES);
97 if (vconn_pres) {
98 ret = regmap_read(tcpci->regmap, TCPC_TCPC_CTRL, ®);
99 if (ret < 0)
100 return ret;
101
102 if (reg & TCPC_TCPC_CTRL_ORIENTATION)
103 polarity = TYPEC_POLARITY_CC2;
104 }
105
106 switch (cc) {
107 case TYPEC_CC_RA:
108 reg = (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RA)
109 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RA));
110 break;
111 case TYPEC_CC_RD:
112 reg = (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RD)
113 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RD));
114 break;
115 case TYPEC_CC_RP_DEF:
116 reg = (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RP)
117 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RP)
118 | FIELD_PREP(TCPC_ROLE_CTRL_RP_VAL,
119 TCPC_ROLE_CTRL_RP_VAL_DEF));
120 break;
121 case TYPEC_CC_RP_1_5:
122 reg = (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RP)
123 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RP)
124 | FIELD_PREP(TCPC_ROLE_CTRL_RP_VAL,
125 TCPC_ROLE_CTRL_RP_VAL_1_5));
126 break;
127 case TYPEC_CC_RP_3_0:
128 reg = (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RP)
129 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RP)
130 | FIELD_PREP(TCPC_ROLE_CTRL_RP_VAL,
131 TCPC_ROLE_CTRL_RP_VAL_3_0));
132 break;
133 case TYPEC_CC_OPEN:
134 default:
135 reg = (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_OPEN)
136 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_OPEN));
137 break;
138 }
139
140 if (vconn_pres) {
141 if (polarity == TYPEC_POLARITY_CC2) {
142 reg &= ~TCPC_ROLE_CTRL_CC1;
143 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_OPEN);
144 } else {
145 reg &= ~TCPC_ROLE_CTRL_CC2;
146 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_OPEN);
147 }
148 }
149
150 ret = regmap_write(tcpci->regmap, TCPC_ROLE_CTRL, reg);
151 if (ret < 0)
152 return ret;
153
154 return 0;
155 }
156
tcpci_apply_rc(struct tcpc_dev * tcpc,enum typec_cc_status cc,enum typec_cc_polarity polarity)157 static int tcpci_apply_rc(struct tcpc_dev *tcpc, enum typec_cc_status cc,
158 enum typec_cc_polarity polarity)
159 {
160 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
161 unsigned int reg;
162 int ret;
163
164 ret = regmap_read(tcpci->regmap, TCPC_ROLE_CTRL, ®);
165 if (ret < 0)
166 return ret;
167
168 /*
169 * APPLY_RC state is when ROLE_CONTROL.CC1 != ROLE_CONTROL.CC2 and vbus autodischarge on
170 * disconnect is disabled. Bail out when ROLE_CONTROL.CC1 != ROLE_CONTROL.CC2.
171 */
172 if (FIELD_GET(TCPC_ROLE_CTRL_CC2, reg) != FIELD_GET(TCPC_ROLE_CTRL_CC1, reg))
173 return 0;
174
175 return regmap_update_bits(tcpci->regmap, TCPC_ROLE_CTRL, polarity == TYPEC_POLARITY_CC1 ?
176 TCPC_ROLE_CTRL_CC2 : TCPC_ROLE_CTRL_CC1,
177 TCPC_ROLE_CTRL_CC_OPEN);
178 }
179
tcpci_start_toggling(struct tcpc_dev * tcpc,enum typec_port_type port_type,enum typec_cc_status cc)180 static int tcpci_start_toggling(struct tcpc_dev *tcpc,
181 enum typec_port_type port_type,
182 enum typec_cc_status cc)
183 {
184 int ret;
185 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
186 unsigned int reg = TCPC_ROLE_CTRL_DRP;
187
188 if (port_type != TYPEC_PORT_DRP)
189 return -EOPNOTSUPP;
190
191 /* Handle vendor drp toggling */
192 if (tcpci->data->start_drp_toggling) {
193 ret = tcpci->data->start_drp_toggling(tcpci, tcpci->data, cc);
194 if (ret < 0)
195 return ret;
196 }
197
198 switch (cc) {
199 default:
200 case TYPEC_CC_RP_DEF:
201 reg |= FIELD_PREP(TCPC_ROLE_CTRL_RP_VAL,
202 TCPC_ROLE_CTRL_RP_VAL_DEF);
203 break;
204 case TYPEC_CC_RP_1_5:
205 reg |= FIELD_PREP(TCPC_ROLE_CTRL_RP_VAL,
206 TCPC_ROLE_CTRL_RP_VAL_1_5);
207 break;
208 case TYPEC_CC_RP_3_0:
209 reg |= FIELD_PREP(TCPC_ROLE_CTRL_RP_VAL,
210 TCPC_ROLE_CTRL_RP_VAL_3_0);
211 break;
212 }
213
214 if (cc == TYPEC_CC_RD)
215 reg |= (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RD)
216 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RD));
217 else
218 reg |= (FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RP)
219 | FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RP));
220 ret = regmap_write(tcpci->regmap, TCPC_ROLE_CTRL, reg);
221 if (ret < 0)
222 return ret;
223 return regmap_write(tcpci->regmap, TCPC_COMMAND,
224 TCPC_CMD_LOOK4CONNECTION);
225 }
226
tcpci_get_cc(struct tcpc_dev * tcpc,enum typec_cc_status * cc1,enum typec_cc_status * cc2)227 static int tcpci_get_cc(struct tcpc_dev *tcpc,
228 enum typec_cc_status *cc1, enum typec_cc_status *cc2)
229 {
230 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
231 unsigned int reg, role_control;
232 int ret;
233
234 ret = regmap_read(tcpci->regmap, TCPC_ROLE_CTRL, &role_control);
235 if (ret < 0)
236 return ret;
237
238 ret = regmap_read(tcpci->regmap, TCPC_CC_STATUS, ®);
239 if (ret < 0)
240 return ret;
241
242 *cc1 = tcpci_to_typec_cc(FIELD_GET(TCPC_CC_STATUS_CC1, reg),
243 reg & TCPC_CC_STATUS_TERM ||
244 tcpc_presenting_rd(role_control, CC1));
245 *cc2 = tcpci_to_typec_cc(FIELD_GET(TCPC_CC_STATUS_CC2, reg),
246 reg & TCPC_CC_STATUS_TERM ||
247 tcpc_presenting_rd(role_control, CC2));
248
249 return 0;
250 }
251
tcpci_set_polarity(struct tcpc_dev * tcpc,enum typec_cc_polarity polarity)252 static int tcpci_set_polarity(struct tcpc_dev *tcpc,
253 enum typec_cc_polarity polarity)
254 {
255 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
256 unsigned int reg;
257 int ret;
258 enum typec_cc_status cc1, cc2;
259
260 /* Obtain Rp setting from role control */
261 ret = regmap_read(tcpci->regmap, TCPC_ROLE_CTRL, ®);
262 if (ret < 0)
263 return ret;
264
265 ret = tcpci_get_cc(tcpc, &cc1, &cc2);
266 if (ret < 0)
267 return ret;
268
269 /*
270 * When port has drp toggling enabled, ROLE_CONTROL would only have the initial
271 * terminations for the toggling and does not indicate the final cc
272 * terminations when ConnectionResult is 0 i.e. drp toggling stops and
273 * the connection is resolved. Infer port role from TCPC_CC_STATUS based on the
274 * terminations seen. The port role is then used to set the cc terminations.
275 */
276 if (reg & TCPC_ROLE_CTRL_DRP) {
277 /* Disable DRP for the OPEN setting to take effect */
278 reg = reg & ~TCPC_ROLE_CTRL_DRP;
279
280 if (polarity == TYPEC_POLARITY_CC2) {
281 reg &= ~TCPC_ROLE_CTRL_CC2;
282 /* Local port is source */
283 if (cc2 == TYPEC_CC_RD)
284 /* Role control would have the Rp setting when DRP was enabled */
285 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RP);
286 else if (cc2 >= TYPEC_CC_RP_DEF)
287 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_RD);
288 } else {
289 reg &= ~TCPC_ROLE_CTRL_CC1;
290 /* Local port is source */
291 if (cc1 == TYPEC_CC_RD)
292 /* Role control would have the Rp setting when DRP was enabled */
293 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RP);
294 else if (cc1 >= TYPEC_CC_RP_DEF)
295 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_RD);
296 }
297 }
298
299 if (polarity == TYPEC_POLARITY_CC2)
300 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC1, TCPC_ROLE_CTRL_CC_OPEN);
301 else
302 reg |= FIELD_PREP(TCPC_ROLE_CTRL_CC2, TCPC_ROLE_CTRL_CC_OPEN);
303 ret = regmap_write(tcpci->regmap, TCPC_ROLE_CTRL, reg);
304 if (ret < 0)
305 return ret;
306
307 return regmap_write(tcpci->regmap, TCPC_TCPC_CTRL,
308 (polarity == TYPEC_POLARITY_CC2) ?
309 TCPC_TCPC_CTRL_ORIENTATION : 0);
310 }
311
tcpci_set_orientation(struct tcpc_dev * tcpc,enum typec_orientation orientation)312 static int tcpci_set_orientation(struct tcpc_dev *tcpc,
313 enum typec_orientation orientation)
314 {
315 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
316 unsigned int reg;
317
318 switch (orientation) {
319 case TYPEC_ORIENTATION_NONE:
320 /* We can't put a single output into high impedance */
321 fallthrough;
322 case TYPEC_ORIENTATION_NORMAL:
323 reg = TCPC_CONFIG_STD_OUTPUT_ORIENTATION_NORMAL;
324 break;
325 case TYPEC_ORIENTATION_REVERSE:
326 reg = TCPC_CONFIG_STD_OUTPUT_ORIENTATION_FLIPPED;
327 break;
328 }
329
330 return regmap_update_bits(tcpci->regmap, TCPC_CONFIG_STD_OUTPUT,
331 TCPC_CONFIG_STD_OUTPUT_ORIENTATION_MASK, reg);
332 }
333
tcpci_set_partner_usb_comm_capable(struct tcpc_dev * tcpc,bool capable)334 static void tcpci_set_partner_usb_comm_capable(struct tcpc_dev *tcpc, bool capable)
335 {
336 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
337
338 if (tcpci->data->set_partner_usb_comm_capable)
339 tcpci->data->set_partner_usb_comm_capable(tcpci, tcpci->data, capable);
340 }
341
tcpci_set_vconn(struct tcpc_dev * tcpc,bool enable)342 static int tcpci_set_vconn(struct tcpc_dev *tcpc, bool enable)
343 {
344 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
345 int ret;
346
347 /* Handle vendor set vconn */
348 if (tcpci->data->set_vconn) {
349 ret = tcpci->data->set_vconn(tcpci, tcpci->data, enable);
350 if (ret < 0)
351 return ret;
352 }
353
354 return regmap_update_bits(tcpci->regmap, TCPC_POWER_CTRL,
355 TCPC_POWER_CTRL_VCONN_ENABLE,
356 enable ? TCPC_POWER_CTRL_VCONN_ENABLE : 0);
357 }
358
tcpci_enable_auto_vbus_discharge(struct tcpc_dev * dev,bool enable)359 static int tcpci_enable_auto_vbus_discharge(struct tcpc_dev *dev, bool enable)
360 {
361 struct tcpci *tcpci = tcpc_to_tcpci(dev);
362 int ret;
363
364 ret = regmap_update_bits(tcpci->regmap, TCPC_POWER_CTRL, TCPC_POWER_CTRL_AUTO_DISCHARGE,
365 enable ? TCPC_POWER_CTRL_AUTO_DISCHARGE : 0);
366 return ret;
367 }
368
tcpci_set_auto_vbus_discharge_threshold(struct tcpc_dev * dev,enum typec_pwr_opmode mode,bool pps_active,u32 requested_vbus_voltage_mv,u32 apdo_min_voltage_mv)369 static int tcpci_set_auto_vbus_discharge_threshold(struct tcpc_dev *dev, enum typec_pwr_opmode mode,
370 bool pps_active, u32 requested_vbus_voltage_mv,
371 u32 apdo_min_voltage_mv)
372 {
373 struct tcpci *tcpci = tcpc_to_tcpci(dev);
374 unsigned int pwr_ctrl, threshold = 0;
375 int ret;
376
377 /*
378 * Indicates that vbus is going to go away due PR_SWAP, hard reset etc.
379 * Do not discharge vbus here.
380 */
381 if (requested_vbus_voltage_mv == 0)
382 goto write_thresh;
383
384 ret = regmap_read(tcpci->regmap, TCPC_POWER_CTRL, &pwr_ctrl);
385 if (ret < 0)
386 return ret;
387
388 if (pwr_ctrl & TCPC_FAST_ROLE_SWAP_EN) {
389 /* To prevent disconnect when the source is fast role swap is capable. */
390 threshold = AUTO_DISCHARGE_DEFAULT_THRESHOLD_MV;
391 } else if (mode == TYPEC_PWR_MODE_PD) {
392 if (pps_active)
393 /*
394 * To prevent disconnect when the source is in Current Limit Mode.
395 * Set the threshold to the lowest possible voltage vPpsShutdown (min)
396 */
397 threshold = VPPS_SHUTDOWN_MIN_PERCENT * apdo_min_voltage_mv / 100 -
398 VSINKPD_MIN_IR_DROP_MV;
399 else
400 threshold = ((VSRC_NEW_MIN_PERCENT * requested_vbus_voltage_mv / 100) -
401 VSINKPD_MIN_IR_DROP_MV - VSRC_VALID_MIN_MV) *
402 VSINKDISCONNECT_PD_MIN_PERCENT / 100;
403 } else {
404 /* 3.5V for non-pd sink */
405 threshold = AUTO_DISCHARGE_DEFAULT_THRESHOLD_MV;
406 }
407
408 threshold = threshold / TCPC_VBUS_SINK_DISCONNECT_THRESH_LSB_MV;
409
410 if (threshold > TCPC_VBUS_SINK_DISCONNECT_THRESH_MAX)
411 return -EINVAL;
412
413 write_thresh:
414 return tcpci_write16(tcpci, TCPC_VBUS_SINK_DISCONNECT_THRESH, threshold);
415 }
416
tcpci_enable_frs(struct tcpc_dev * dev,bool enable)417 static int tcpci_enable_frs(struct tcpc_dev *dev, bool enable)
418 {
419 struct tcpci *tcpci = tcpc_to_tcpci(dev);
420 int ret;
421
422 /* To prevent disconnect during FRS, set disconnect threshold to 3.5V */
423 ret = tcpci_write16(tcpci, TCPC_VBUS_SINK_DISCONNECT_THRESH, enable ? 0 : 0x8c);
424 if (ret < 0)
425 return ret;
426
427 ret = regmap_update_bits(tcpci->regmap, TCPC_POWER_CTRL, TCPC_FAST_ROLE_SWAP_EN, enable ?
428 TCPC_FAST_ROLE_SWAP_EN : 0);
429
430 return ret;
431 }
432
tcpci_frs_sourcing_vbus(struct tcpc_dev * dev)433 static void tcpci_frs_sourcing_vbus(struct tcpc_dev *dev)
434 {
435 struct tcpci *tcpci = tcpc_to_tcpci(dev);
436
437 if (tcpci->data->frs_sourcing_vbus)
438 tcpci->data->frs_sourcing_vbus(tcpci, tcpci->data);
439 }
440
tcpci_check_contaminant(struct tcpc_dev * dev)441 static void tcpci_check_contaminant(struct tcpc_dev *dev)
442 {
443 struct tcpci *tcpci = tcpc_to_tcpci(dev);
444
445 if (tcpci->data->check_contaminant)
446 tcpci->data->check_contaminant(tcpci, tcpci->data);
447 }
448
tcpci_set_bist_data(struct tcpc_dev * tcpc,bool enable)449 static int tcpci_set_bist_data(struct tcpc_dev *tcpc, bool enable)
450 {
451 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
452
453 return regmap_update_bits(tcpci->regmap, TCPC_TCPC_CTRL, TCPC_TCPC_CTRL_BIST_TM,
454 enable ? TCPC_TCPC_CTRL_BIST_TM : 0);
455 }
456
tcpci_set_roles(struct tcpc_dev * tcpc,bool attached,enum typec_role role,enum typec_data_role data)457 static int tcpci_set_roles(struct tcpc_dev *tcpc, bool attached,
458 enum typec_role role, enum typec_data_role data)
459 {
460 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
461 unsigned int reg;
462 int ret;
463
464 reg = FIELD_PREP(TCPC_MSG_HDR_INFO_REV, PD_REV20);
465 if (role == TYPEC_SOURCE)
466 reg |= TCPC_MSG_HDR_INFO_PWR_ROLE;
467 if (data == TYPEC_HOST)
468 reg |= TCPC_MSG_HDR_INFO_DATA_ROLE;
469 ret = regmap_write(tcpci->regmap, TCPC_MSG_HDR_INFO, reg);
470 if (ret < 0)
471 return ret;
472
473 return 0;
474 }
475
tcpci_set_pd_rx(struct tcpc_dev * tcpc,bool enable)476 static int tcpci_set_pd_rx(struct tcpc_dev *tcpc, bool enable)
477 {
478 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
479 unsigned int reg = 0;
480 int ret;
481
482 if (enable) {
483 reg = TCPC_RX_DETECT_SOP | TCPC_RX_DETECT_HARD_RESET;
484 if (tcpci->data->cable_comm_capable)
485 reg |= TCPC_RX_DETECT_SOP1;
486 }
487 ret = regmap_write(tcpci->regmap, TCPC_RX_DETECT, reg);
488 if (ret < 0)
489 return ret;
490
491 return 0;
492 }
493
tcpci_get_vbus(struct tcpc_dev * tcpc)494 static int tcpci_get_vbus(struct tcpc_dev *tcpc)
495 {
496 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
497 unsigned int reg;
498 int ret;
499
500 ret = regmap_read(tcpci->regmap, TCPC_POWER_STATUS, ®);
501 if (ret < 0)
502 return ret;
503
504 return !!(reg & TCPC_POWER_STATUS_VBUS_PRES);
505 }
506
tcpci_is_vbus_vsafe0v(struct tcpc_dev * tcpc)507 static bool tcpci_is_vbus_vsafe0v(struct tcpc_dev *tcpc)
508 {
509 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
510 unsigned int reg;
511 int ret;
512
513 ret = regmap_read(tcpci->regmap, TCPC_EXTENDED_STATUS, ®);
514 if (ret < 0)
515 return false;
516
517 return !!(reg & TCPC_EXTENDED_STATUS_VSAFE0V);
518 }
519
tcpci_set_vbus(struct tcpc_dev * tcpc,bool source,bool sink)520 static int tcpci_set_vbus(struct tcpc_dev *tcpc, bool source, bool sink)
521 {
522 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
523 int ret;
524
525 if (tcpci->data->set_vbus) {
526 ret = tcpci->data->set_vbus(tcpci, tcpci->data, source, sink);
527 /* Bypass when ret > 0 */
528 if (ret != 0)
529 return ret < 0 ? ret : 0;
530 }
531
532 /* Disable both source and sink first before enabling anything */
533
534 if (!source) {
535 ret = regmap_write(tcpci->regmap, TCPC_COMMAND,
536 TCPC_CMD_DISABLE_SRC_VBUS);
537 if (ret < 0)
538 return ret;
539 }
540
541 if (!sink) {
542 ret = regmap_write(tcpci->regmap, TCPC_COMMAND,
543 TCPC_CMD_DISABLE_SINK_VBUS);
544 if (ret < 0)
545 return ret;
546 }
547
548 if (source) {
549 ret = regmap_write(tcpci->regmap, TCPC_COMMAND,
550 TCPC_CMD_SRC_VBUS_DEFAULT);
551 if (ret < 0)
552 return ret;
553 }
554
555 if (sink) {
556 ret = regmap_write(tcpci->regmap, TCPC_COMMAND,
557 TCPC_CMD_SINK_VBUS);
558 if (ret < 0)
559 return ret;
560 }
561
562 return 0;
563 }
564
tcpci_pd_transmit(struct tcpc_dev * tcpc,enum tcpm_transmit_type type,const struct pd_message * msg,unsigned int negotiated_rev)565 static int tcpci_pd_transmit(struct tcpc_dev *tcpc, enum tcpm_transmit_type type,
566 const struct pd_message *msg, unsigned int negotiated_rev)
567 {
568 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
569 u16 header = msg ? le16_to_cpu(msg->header) : 0;
570 unsigned int reg, cnt;
571 int ret;
572
573 cnt = msg ? pd_header_cnt(header) * 4 : 0;
574 /**
575 * TCPCI spec forbids direct access of TCPC_TX_DATA.
576 * But, since some of the chipsets offer this capability,
577 * it's fair to support both.
578 */
579 if (tcpci->data->TX_BUF_BYTE_x_hidden) {
580 u8 buf[TCPC_TRANSMIT_BUFFER_MAX_LEN] = {0,};
581 u8 pos = 0;
582
583 /* Payload + header + TCPC_TX_BYTE_CNT */
584 buf[pos++] = cnt + 2;
585
586 if (msg)
587 memcpy(&buf[pos], &msg->header, sizeof(msg->header));
588
589 pos += sizeof(header);
590
591 if (cnt > 0)
592 memcpy(&buf[pos], msg->payload, cnt);
593
594 pos += cnt;
595 ret = regmap_raw_write(tcpci->regmap, TCPC_TX_BYTE_CNT, buf, pos);
596 if (ret < 0)
597 return ret;
598 } else {
599 ret = regmap_write(tcpci->regmap, TCPC_TX_BYTE_CNT, cnt + 2);
600 if (ret < 0)
601 return ret;
602
603 ret = tcpci_write16(tcpci, TCPC_TX_HDR, header);
604 if (ret < 0)
605 return ret;
606
607 if (cnt > 0) {
608 ret = regmap_raw_write(tcpci->regmap, TCPC_TX_DATA, &msg->payload, cnt);
609 if (ret < 0)
610 return ret;
611 }
612 }
613
614 /* nRetryCount is 3 in PD2.0 spec where 2 in PD3.0 spec */
615 reg = FIELD_PREP(TCPC_TRANSMIT_RETRY,
616 (negotiated_rev > PD_REV20
617 ? PD_RETRY_COUNT_3_0_OR_HIGHER
618 : PD_RETRY_COUNT_DEFAULT));
619 reg |= FIELD_PREP(TCPC_TRANSMIT_TYPE, type);
620 ret = regmap_write(tcpci->regmap, TCPC_TRANSMIT, reg);
621 if (ret < 0)
622 return ret;
623
624 return 0;
625 }
626
tcpci_cable_comm_capable(struct tcpc_dev * tcpc)627 static bool tcpci_cable_comm_capable(struct tcpc_dev *tcpc)
628 {
629 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
630
631 return tcpci->data->cable_comm_capable;
632 }
633
tcpci_attempt_vconn_swap_discovery(struct tcpc_dev * tcpc)634 static bool tcpci_attempt_vconn_swap_discovery(struct tcpc_dev *tcpc)
635 {
636 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
637
638 if (tcpci->data->attempt_vconn_swap_discovery)
639 return tcpci->data->attempt_vconn_swap_discovery(tcpci, tcpci->data);
640
641 return false;
642 }
643
tcpci_init(struct tcpc_dev * tcpc)644 static int tcpci_init(struct tcpc_dev *tcpc)
645 {
646 struct tcpci *tcpci = tcpc_to_tcpci(tcpc);
647 unsigned long timeout = jiffies + msecs_to_jiffies(2000); /* XXX */
648 unsigned int reg;
649 int ret;
650
651 while (time_before_eq(jiffies, timeout)) {
652 ret = regmap_read(tcpci->regmap, TCPC_POWER_STATUS, ®);
653 if (ret < 0)
654 return ret;
655 if (!(reg & TCPC_POWER_STATUS_UNINIT))
656 break;
657 usleep_range(10000, 20000);
658 }
659 if (time_after(jiffies, timeout))
660 return -ETIMEDOUT;
661
662 ret = tcpci_write16(tcpci, TCPC_FAULT_STATUS, TCPC_FAULT_STATUS_ALL_REG_RST_TO_DEFAULT);
663 if (ret < 0)
664 return ret;
665
666 /* Handle vendor init */
667 if (tcpci->data->init) {
668 ret = tcpci->data->init(tcpci, tcpci->data);
669 if (ret < 0)
670 return ret;
671 }
672
673 /* Clear all events */
674 ret = tcpci_write16(tcpci, TCPC_ALERT, 0xffff);
675 if (ret < 0)
676 return ret;
677
678 if (tcpci->controls_vbus)
679 reg = TCPC_POWER_STATUS_VBUS_PRES;
680 else
681 reg = 0;
682 ret = regmap_write(tcpci->regmap, TCPC_POWER_STATUS_MASK, reg);
683 if (ret < 0)
684 return ret;
685
686 /* Enable Vbus detection */
687 ret = regmap_write(tcpci->regmap, TCPC_COMMAND,
688 TCPC_CMD_ENABLE_VBUS_DETECT);
689 if (ret < 0)
690 return ret;
691
692 reg = TCPC_ALERT_TX_SUCCESS | TCPC_ALERT_TX_FAILED |
693 TCPC_ALERT_TX_DISCARDED | TCPC_ALERT_RX_STATUS |
694 TCPC_ALERT_RX_HARD_RST | TCPC_ALERT_CC_STATUS;
695 if (tcpci->controls_vbus)
696 reg |= TCPC_ALERT_POWER_STATUS;
697 /* Enable VSAFE0V status interrupt when detecting VSAFE0V is supported */
698 if (tcpci->data->vbus_vsafe0v) {
699 reg |= TCPC_ALERT_EXTENDED_STATUS;
700 ret = regmap_write(tcpci->regmap, TCPC_EXTENDED_STATUS_MASK,
701 TCPC_EXTENDED_STATUS_VSAFE0V);
702 if (ret < 0)
703 return ret;
704 }
705
706 tcpci->alert_mask = reg;
707
708 return 0;
709 }
710
tcpci_irq(struct tcpci * tcpci)711 irqreturn_t tcpci_irq(struct tcpci *tcpci)
712 {
713 u16 status;
714 int ret;
715 int irq_ret;
716 unsigned int raw;
717
718 tcpci_read16(tcpci, TCPC_ALERT, &status);
719 irq_ret = status & tcpci->alert_mask;
720
721 process_status:
722 /*
723 * Clear alert status for everything except RX_STATUS, which shouldn't
724 * be cleared until we have successfully retrieved message.
725 */
726 if (status & ~TCPC_ALERT_RX_STATUS)
727 tcpci_write16(tcpci, TCPC_ALERT,
728 status & ~TCPC_ALERT_RX_STATUS);
729
730 if (status & TCPC_ALERT_CC_STATUS)
731 tcpm_cc_change(tcpci->port);
732
733 if (status & TCPC_ALERT_POWER_STATUS) {
734 regmap_read(tcpci->regmap, TCPC_POWER_STATUS_MASK, &raw);
735 /*
736 * If power status mask has been reset, then the TCPC
737 * has reset.
738 */
739 if (raw == 0xff)
740 tcpm_tcpc_reset(tcpci->port);
741 else
742 tcpm_vbus_change(tcpci->port);
743 }
744
745 if (status & TCPC_ALERT_RX_STATUS) {
746 struct pd_message msg;
747 unsigned int cnt, payload_cnt;
748 u16 header;
749
750 regmap_read(tcpci->regmap, TCPC_RX_BYTE_CNT, &cnt);
751 /*
752 * 'cnt' corresponds to READABLE_BYTE_COUNT in section 4.4.14
753 * of the TCPCI spec [Rev 2.0 Ver 1.0 October 2017] and is
754 * defined in table 4-36 as one greater than the number of
755 * bytes received. And that number includes the header. So:
756 */
757 if (cnt > 3)
758 payload_cnt = cnt - (1 + sizeof(msg.header));
759 else
760 payload_cnt = 0;
761
762 tcpci_read16(tcpci, TCPC_RX_HDR, &header);
763 msg.header = cpu_to_le16(header);
764
765 if (WARN_ON(payload_cnt > sizeof(msg.payload)))
766 payload_cnt = sizeof(msg.payload);
767
768 if (payload_cnt > 0)
769 regmap_raw_read(tcpci->regmap, TCPC_RX_DATA,
770 &msg.payload, payload_cnt);
771
772 /* Read complete, clear RX status alert bit */
773 tcpci_write16(tcpci, TCPC_ALERT, TCPC_ALERT_RX_STATUS);
774
775 tcpm_pd_receive(tcpci->port, &msg, TCPC_TX_SOP);
776 }
777
778 if (tcpci->data->vbus_vsafe0v && (status & TCPC_ALERT_EXTENDED_STATUS)) {
779 ret = regmap_read(tcpci->regmap, TCPC_EXTENDED_STATUS, &raw);
780 if (!ret && (raw & TCPC_EXTENDED_STATUS_VSAFE0V))
781 tcpm_vbus_change(tcpci->port);
782 }
783
784 if (status & TCPC_ALERT_RX_HARD_RST)
785 tcpm_pd_hard_reset(tcpci->port);
786
787 if (status & TCPC_ALERT_TX_SUCCESS)
788 tcpm_pd_transmit_complete(tcpci->port, TCPC_TX_SUCCESS);
789 else if (status & TCPC_ALERT_TX_DISCARDED)
790 tcpm_pd_transmit_complete(tcpci->port, TCPC_TX_DISCARDED);
791 else if (status & TCPC_ALERT_TX_FAILED)
792 tcpm_pd_transmit_complete(tcpci->port, TCPC_TX_FAILED);
793
794 tcpci_read16(tcpci, TCPC_ALERT, &status);
795
796 if (status & tcpci->alert_mask)
797 goto process_status;
798
799 return IRQ_RETVAL(irq_ret);
800 }
801 EXPORT_SYMBOL_GPL(tcpci_irq);
802
_tcpci_irq(int irq,void * dev_id)803 static irqreturn_t _tcpci_irq(int irq, void *dev_id)
804 {
805 struct tcpci_chip *chip = dev_id;
806
807 return tcpci_irq(chip->tcpci);
808 }
809
810 static const struct regmap_config tcpci_regmap_config = {
811 .reg_bits = 8,
812 .val_bits = 8,
813
814 .max_register = 0x7F, /* 0x80 .. 0xFF are vendor defined */
815 };
816
tcpci_parse_config(struct tcpci * tcpci)817 static int tcpci_parse_config(struct tcpci *tcpci)
818 {
819 tcpci->controls_vbus = true; /* XXX */
820
821 tcpci->tcpc.fwnode = device_get_named_child_node(tcpci->dev,
822 "connector");
823 if (!tcpci->tcpc.fwnode) {
824 dev_err(tcpci->dev, "Can't find connector node.\n");
825 return -EINVAL;
826 }
827
828 return 0;
829 }
830
tcpci_register_port(struct device * dev,struct tcpci_data * data)831 struct tcpci *tcpci_register_port(struct device *dev, struct tcpci_data *data)
832 {
833 struct tcpci *tcpci;
834 int err;
835
836 tcpci = devm_kzalloc(dev, sizeof(*tcpci), GFP_KERNEL);
837 if (!tcpci)
838 return ERR_PTR(-ENOMEM);
839
840 tcpci->dev = dev;
841 tcpci->data = data;
842 tcpci->regmap = data->regmap;
843
844 tcpci->tcpc.init = tcpci_init;
845 tcpci->tcpc.get_vbus = tcpci_get_vbus;
846 tcpci->tcpc.set_vbus = tcpci_set_vbus;
847 tcpci->tcpc.set_cc = tcpci_set_cc;
848 tcpci->tcpc.apply_rc = tcpci_apply_rc;
849 tcpci->tcpc.get_cc = tcpci_get_cc;
850 tcpci->tcpc.set_polarity = tcpci_set_polarity;
851 tcpci->tcpc.set_vconn = tcpci_set_vconn;
852 tcpci->tcpc.start_toggling = tcpci_start_toggling;
853
854 tcpci->tcpc.set_pd_rx = tcpci_set_pd_rx;
855 tcpci->tcpc.set_roles = tcpci_set_roles;
856 tcpci->tcpc.pd_transmit = tcpci_pd_transmit;
857 tcpci->tcpc.set_bist_data = tcpci_set_bist_data;
858 tcpci->tcpc.enable_frs = tcpci_enable_frs;
859 tcpci->tcpc.frs_sourcing_vbus = tcpci_frs_sourcing_vbus;
860 tcpci->tcpc.set_partner_usb_comm_capable = tcpci_set_partner_usb_comm_capable;
861 tcpci->tcpc.cable_comm_capable = tcpci_cable_comm_capable;
862 tcpci->tcpc.attempt_vconn_swap_discovery = tcpci_attempt_vconn_swap_discovery;
863
864 if (tcpci->data->check_contaminant)
865 tcpci->tcpc.check_contaminant = tcpci_check_contaminant;
866
867 if (tcpci->data->auto_discharge_disconnect) {
868 tcpci->tcpc.enable_auto_vbus_discharge = tcpci_enable_auto_vbus_discharge;
869 tcpci->tcpc.set_auto_vbus_discharge_threshold =
870 tcpci_set_auto_vbus_discharge_threshold;
871 regmap_update_bits(tcpci->regmap, TCPC_POWER_CTRL, TCPC_POWER_CTRL_BLEED_DISCHARGE,
872 TCPC_POWER_CTRL_BLEED_DISCHARGE);
873 }
874
875 if (tcpci->data->vbus_vsafe0v)
876 tcpci->tcpc.is_vbus_vsafe0v = tcpci_is_vbus_vsafe0v;
877
878 if (tcpci->data->set_orientation)
879 tcpci->tcpc.set_orientation = tcpci_set_orientation;
880
881 err = tcpci_parse_config(tcpci);
882 if (err < 0)
883 return ERR_PTR(err);
884
885 tcpci->port = tcpm_register_port(tcpci->dev, &tcpci->tcpc);
886 if (IS_ERR(tcpci->port)) {
887 fwnode_handle_put(tcpci->tcpc.fwnode);
888 return ERR_CAST(tcpci->port);
889 }
890
891 return tcpci;
892 }
893 EXPORT_SYMBOL_GPL(tcpci_register_port);
894
tcpci_unregister_port(struct tcpci * tcpci)895 void tcpci_unregister_port(struct tcpci *tcpci)
896 {
897 tcpm_unregister_port(tcpci->port);
898 fwnode_handle_put(tcpci->tcpc.fwnode);
899 }
900 EXPORT_SYMBOL_GPL(tcpci_unregister_port);
901
tcpci_probe(struct i2c_client * client)902 static int tcpci_probe(struct i2c_client *client)
903 {
904 struct tcpci_chip *chip;
905 int err;
906 u16 val = 0;
907
908 chip = devm_kzalloc(&client->dev, sizeof(*chip), GFP_KERNEL);
909 if (!chip)
910 return -ENOMEM;
911
912 chip->data.regmap = devm_regmap_init_i2c(client, &tcpci_regmap_config);
913 if (IS_ERR(chip->data.regmap))
914 return PTR_ERR(chip->data.regmap);
915
916 i2c_set_clientdata(client, chip);
917
918 /* Disable chip interrupts before requesting irq */
919 err = regmap_raw_write(chip->data.regmap, TCPC_ALERT_MASK, &val,
920 sizeof(u16));
921 if (err < 0)
922 return err;
923
924 err = tcpci_check_std_output_cap(chip->data.regmap,
925 TCPC_STD_OUTPUT_CAP_ORIENTATION);
926 if (err < 0)
927 return err;
928
929 chip->data.set_orientation = err;
930
931 chip->tcpci = tcpci_register_port(&client->dev, &chip->data);
932 if (IS_ERR(chip->tcpci))
933 return PTR_ERR(chip->tcpci);
934
935 err = devm_request_threaded_irq(&client->dev, client->irq, NULL,
936 _tcpci_irq,
937 IRQF_SHARED | IRQF_ONESHOT,
938 dev_name(&client->dev), chip);
939 if (err < 0)
940 goto unregister_port;
941
942 /* Enable chip interrupts at last */
943 err = tcpci_write16(chip->tcpci, TCPC_ALERT_MASK, chip->tcpci->alert_mask);
944 if (err < 0)
945 goto unregister_port;
946
947 return 0;
948
949 unregister_port:
950 tcpci_unregister_port(chip->tcpci);
951 return err;
952 }
953
tcpci_remove(struct i2c_client * client)954 static void tcpci_remove(struct i2c_client *client)
955 {
956 struct tcpci_chip *chip = i2c_get_clientdata(client);
957 int err;
958
959 /* Disable chip interrupts before unregistering port */
960 err = tcpci_write16(chip->tcpci, TCPC_ALERT_MASK, 0);
961 if (err < 0)
962 dev_warn(&client->dev, "Failed to disable irqs (%pe)\n", ERR_PTR(err));
963
964 tcpci_unregister_port(chip->tcpci);
965 }
966
967 static const struct i2c_device_id tcpci_id[] = {
968 { "tcpci" },
969 { }
970 };
971 MODULE_DEVICE_TABLE(i2c, tcpci_id);
972
973 #ifdef CONFIG_OF
974 static const struct of_device_id tcpci_of_match[] = {
975 { .compatible = "nxp,ptn5110", },
976 { .compatible = "tcpci", },
977 {},
978 };
979 MODULE_DEVICE_TABLE(of, tcpci_of_match);
980 #endif
981
982 static struct i2c_driver tcpci_i2c_driver = {
983 .driver = {
984 .name = "tcpci",
985 .of_match_table = of_match_ptr(tcpci_of_match),
986 },
987 .probe = tcpci_probe,
988 .remove = tcpci_remove,
989 .id_table = tcpci_id,
990 };
991 module_i2c_driver(tcpci_i2c_driver);
992
993 MODULE_DESCRIPTION("USB Type-C Port Controller Interface driver");
994 MODULE_LICENSE("GPL");
995