PD Buddy Sink Firmware
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device_policy_manager.c 10KB

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  1. /*
  2. * PD Buddy - USB Power Delivery for everyone
  3. * Copyright (C) 2017 Clayton G. Hobbs <clay@lakeserv.net>
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, either version 3 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. */
  18. #include "device_policy_manager.h"
  19. #include <stdint.h>
  20. #include <hal.h>
  21. #include "led.h"
  22. #include "config.h"
  23. #include "pd.h"
  24. /* The current draw when the output is disabled */
  25. #define DPM_MIN_CURRENT PD_MA2PDI(100)
  26. /* Whether or not the power supply is unconstrained */
  27. static bool dpm_unconstrained_power;
  28. /* The last explicitly or implicitly negotiated voltage in PDV */
  29. static int dpm_present_voltage = PD_MV2PDV(5000);
  30. /* The requested voltage */
  31. static int dpm_requested_voltage;
  32. /* Whether our capabilities matched or not */
  33. static bool dpm_capability_match;
  34. bool pdbs_dpm_evaluate_capability(struct pdb_config *cfg,
  35. const union pd_msg *capabilities, union pd_msg *request)
  36. {
  37. /* Cast the dpm_data to the right type */
  38. struct pdbs_dpm_data *dpm_data = cfg->dpm_data;
  39. /* Update the stored Source_Capabilities */
  40. if (capabilities != NULL) {
  41. if (dpm_data->capabilities != NULL) {
  42. chPoolFree(&pdb_msg_pool, (union pd_msg *) dpm_data->capabilities);
  43. }
  44. dpm_data->capabilities = capabilities;
  45. } else {
  46. /* No new capabilities; use a shorter name for the stored ones. */
  47. capabilities = dpm_data->capabilities;
  48. }
  49. /* Get the current configuration */
  50. struct pdbs_config *scfg = pdbs_config_flash_read();
  51. /* Get the number of PDOs */
  52. uint8_t numobj = PD_NUMOBJ_GET(capabilities);
  53. /* Make the LED blink to indicate ongoing power negotiations */
  54. if (dpm_data->led_pd_status) {
  55. chEvtSignal(pdbs_led_thread, PDBS_EVT_LED_NEGOTIATING);
  56. }
  57. /* Get whether or not the power supply is constrained */
  58. dpm_unconstrained_power = capabilities->obj[0] & PD_PDO_SRC_FIXED_UNCONSTRAINED;
  59. /* Make sure we have configuration */
  60. if (scfg != NULL && dpm_data->output_enabled) {
  61. /* Look at the PDOs to see if one matches our desires */
  62. for (uint8_t i = 0; i < numobj; i++) {
  63. /* Fixed Supply PDOs come first, so when we see a PDO that isn't a
  64. * Fixed Supply, stop reading. */
  65. if ((capabilities->obj[i] & PD_PDO_TYPE) != PD_PDO_TYPE_FIXED) {
  66. break;
  67. }
  68. /* If the V from the PDO equals our desired V and the I is at least
  69. * our desired I */
  70. if (PD_PDO_SRC_FIXED_VOLTAGE_GET(capabilities, i) == scfg->v
  71. && PD_PDO_SRC_FIXED_CURRENT_GET(capabilities, i) >= scfg->i) {
  72. /* We got what we wanted, so build a request for that */
  73. request->hdr = PD_MSGTYPE_REQUEST | PD_DATAROLE_UFP |
  74. PD_SPECREV_2_0 | PD_POWERROLE_SINK | PD_NUMOBJ(1);
  75. if (scfg->flags & PDBS_CONFIG_FLAGS_GIVEBACK) {
  76. /* GiveBack enabled */
  77. request->obj[0] = PD_RDO_FV_MIN_CURRENT_SET(DPM_MIN_CURRENT)
  78. | PD_RDO_FV_CURRENT_SET(scfg->i)
  79. | PD_RDO_NO_USB_SUSPEND | PD_RDO_GIVEBACK
  80. | PD_RDO_OBJPOS_SET(i + 1);
  81. } else {
  82. /* GiveBack disabled */
  83. request->obj[0] = PD_RDO_FV_MAX_CURRENT_SET(scfg->i)
  84. | PD_RDO_FV_CURRENT_SET(scfg->i)
  85. | PD_RDO_NO_USB_SUSPEND | PD_RDO_OBJPOS_SET(i + 1);
  86. }
  87. if (dpm_data->usb_comms) {
  88. request->obj[0] |= PD_RDO_USB_COMMS;
  89. }
  90. /* Update requested voltage */
  91. dpm_requested_voltage = scfg->v;
  92. dpm_capability_match = true;
  93. return true;
  94. }
  95. }
  96. }
  97. /* Nothing matched (or no configuration), so get 5 V at low current */
  98. request->hdr = PD_MSGTYPE_REQUEST | PD_DATAROLE_UFP |
  99. PD_SPECREV_2_0 | PD_POWERROLE_SINK | PD_NUMOBJ(1);
  100. request->obj[0] = PD_RDO_FV_MAX_CURRENT_SET(DPM_MIN_CURRENT)
  101. | PD_RDO_FV_CURRENT_SET(DPM_MIN_CURRENT)
  102. | PD_RDO_NO_USB_SUSPEND
  103. | PD_RDO_OBJPOS_SET(1);
  104. /* If the output is enabled and we got here, it must be a capability
  105. * mismatch. */
  106. if (dpm_data->output_enabled) {
  107. request->obj[0] |= PD_RDO_CAP_MISMATCH;
  108. }
  109. /* If we can do USB communications, tell the power supply */
  110. if (dpm_data->usb_comms) {
  111. request->obj[0] |= PD_RDO_USB_COMMS;
  112. }
  113. /* Update requested voltage */
  114. dpm_requested_voltage = PD_MV2PDV(5000);
  115. /* At this point, we have a capability match iff the output is disabled */
  116. dpm_capability_match = !dpm_data->output_enabled;
  117. return !dpm_data->output_enabled;
  118. }
  119. void pdbs_dpm_get_sink_capability(struct pdb_config *cfg, union pd_msg *cap)
  120. {
  121. /* Keep track of how many PDOs we've added */
  122. int numobj = 0;
  123. /* Get the current configuration */
  124. struct pdbs_config *scfg = pdbs_config_flash_read();
  125. /* Cast the dpm_data to the right type */
  126. struct pdbs_dpm_data *dpm_data = cfg->dpm_data;
  127. /* If we have no configuration or want something other than 5 V, add a PDO
  128. * for vSafe5V */
  129. if (scfg == NULL || scfg->v != PD_MV2PDV(5000)) {
  130. /* Minimum current, 5 V, and higher capability. */
  131. cap->obj[numobj++] = PD_PDO_TYPE_FIXED
  132. | PD_PDO_SNK_FIXED_VOLTAGE_SET(PD_MV2PDV(5000))
  133. | PD_PDO_SNK_FIXED_CURRENT_SET(DPM_MIN_CURRENT);
  134. }
  135. /* Add a PDO for the desired power. */
  136. if (scfg != NULL) {
  137. cap->obj[numobj++] = PD_PDO_TYPE_FIXED
  138. | PD_PDO_SNK_FIXED_VOLTAGE_SET(scfg->v)
  139. | PD_PDO_SNK_FIXED_CURRENT_SET(scfg->i);
  140. /* If we want more than 5 V, set the Higher Capability flag */
  141. if (scfg->v != PD_MV2PDV(5000)) {
  142. cap->obj[0] |= PD_PDO_SNK_FIXED_HIGHER_CAP;
  143. }
  144. }
  145. /* Set the unconstrained power flag. */
  146. if (dpm_unconstrained_power) {
  147. cap->obj[0] |= PD_PDO_SNK_FIXED_UNCONSTRAINED;
  148. }
  149. /* Set the USB communications capable flag. */
  150. if (dpm_data->usb_comms) {
  151. cap->obj[0] |= PD_PDO_SNK_FIXED_USB_COMMS;
  152. }
  153. /* Set the Sink_Capabilities message header */
  154. cap->hdr = PD_MSGTYPE_SINK_CAPABILITIES | PD_DATAROLE_UFP | PD_SPECREV_2_0
  155. | PD_POWERROLE_SINK | PD_NUMOBJ(numobj);
  156. }
  157. bool pdbs_dpm_giveback_enabled(struct pdb_config *cfg)
  158. {
  159. struct pdbs_config *scfg = pdbs_config_flash_read();
  160. return scfg->flags & PDBS_CONFIG_FLAGS_GIVEBACK;
  161. }
  162. bool pdbs_dpm_evaluate_typec_current(struct pdb_config *cfg,
  163. enum fusb_typec_current tcc)
  164. {
  165. struct pdbs_config *scfg = pdbs_config_flash_read();
  166. /* Cast the dpm_data to the right type */
  167. struct pdbs_dpm_data *dpm_data = cfg->dpm_data;
  168. /* We don't control the voltage anymore; it will always be 5 V. */
  169. dpm_requested_voltage = PD_MV2PDV(5000);
  170. /* Make the present Type-C Current advertisement available to the rest of
  171. * the DPM */
  172. dpm_data->typec_current = tcc;
  173. /* If we have no configuration or don't want 5 V, Type-C Current can't
  174. * possibly satisfy our needs */
  175. if (scfg == NULL || scfg->v != PD_MV2PDV(5000)) {
  176. dpm_capability_match = false;
  177. return false;
  178. }
  179. /* If 1.5 A is available and we want no more than that, great. */
  180. if (tcc == OnePointFiveAmps && scfg->i <= 150) {
  181. dpm_capability_match = true;
  182. return true;
  183. }
  184. /* If 3 A is available and we want no more than that, that's great too. */
  185. if (tcc == ThreePointZeroAmps && scfg->i <= 300) {
  186. dpm_capability_match = true;
  187. return true;
  188. }
  189. /* We're overly cautious if USB default current is available, since that
  190. * could mean different things depending on the port we're connected to,
  191. * and since we're really supposed to enumerate in order to request more
  192. * than 100 mA. This could be changed in the future. */
  193. dpm_capability_match = false;
  194. return false;
  195. }
  196. void pdbs_dpm_pd_start(struct pdb_config *cfg)
  197. {
  198. /* Cast the dpm_data to the right type */
  199. struct pdbs_dpm_data *dpm_data = cfg->dpm_data;
  200. if (dpm_data->led_pd_status) {
  201. chEvtSignal(pdbs_led_thread, PDBS_EVT_LED_NEGOTIATING);
  202. }
  203. }
  204. /*
  205. * Set the output state, with LED indication.
  206. */
  207. static void dpm_output_set(struct pdbs_dpm_data *dpm_data, bool state)
  208. {
  209. /* Update the present voltage */
  210. dpm_present_voltage = dpm_requested_voltage;
  211. /* Set the power output */
  212. if (state && dpm_data->output_enabled) {
  213. /* Turn the output on */
  214. if (dpm_data->led_pd_status) {
  215. chEvtSignal(pdbs_led_thread, PDBS_EVT_LED_OUTPUT_ON);
  216. }
  217. palSetLine(LINE_OUT_CTRL);
  218. } else {
  219. /* Turn the output off */
  220. if (dpm_data->led_pd_status) {
  221. chEvtSignal(pdbs_led_thread, PDBS_EVT_LED_OUTPUT_OFF);
  222. }
  223. palClearLine(LINE_OUT_CTRL);
  224. }
  225. }
  226. void pdbs_dpm_transition_default(struct pdb_config *cfg)
  227. {
  228. /* Pretend we requested 5 V */
  229. dpm_requested_voltage = PD_MV2PDV(5000);
  230. /* Turn the output off */
  231. dpm_output_set(cfg->dpm_data, false);
  232. }
  233. void pdbs_dpm_transition_min(struct pdb_config *cfg)
  234. {
  235. dpm_output_set(cfg->dpm_data, false);
  236. }
  237. void pdbs_dpm_transition_standby(struct pdb_config *cfg)
  238. {
  239. /* If the voltage is changing, enter Sink Standby */
  240. if (dpm_requested_voltage != dpm_present_voltage) {
  241. /* For the PD Buddy Sink, entering Sink Standby is equivalent to
  242. * turning the output off. However, we don't want to change the LED
  243. * state for standby mode. */
  244. palClearLine(LINE_OUT_CTRL);
  245. }
  246. }
  247. void pdbs_dpm_transition_requested(struct pdb_config *cfg)
  248. {
  249. dpm_output_set(cfg->dpm_data, dpm_capability_match);
  250. }