dev-smartcard-reader.c 47 KB

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  1. /*
  2. * Copyright (C) 2011 Red Hat, Inc.
  3. *
  4. * CCID Device emulation
  5. *
  6. * Written by Alon Levy, with contributions from Robert Relyea.
  7. *
  8. * Based on usb-serial.c, see its copyright and attributions below.
  9. *
  10. * This work is licensed under the terms of the GNU GPL, version 2.1 or later.
  11. * See the COPYING file in the top-level directory.
  12. * ------- (original copyright & attribution for usb-serial.c below) --------
  13. * Copyright (c) 2006 CodeSourcery.
  14. * Copyright (c) 2008 Samuel Thibault <samuel.thibault@ens-lyon.org>
  15. * Written by Paul Brook, reused for FTDI by Samuel Thibault,
  16. */
  17. /*
  18. * References:
  19. *
  20. * CCID Specification Revision 1.1 April 22nd 2005
  21. * "Universal Serial Bus, Device Class: Smart Card"
  22. * Specification for Integrated Circuit(s) Cards Interface Devices
  23. *
  24. * Endianness note: from the spec (1.3)
  25. * "Fields that are larger than a byte are stored in little endian"
  26. *
  27. * KNOWN BUGS
  28. * 1. remove/insert can sometimes result in removed state instead of inserted.
  29. * This is a result of the following:
  30. * symptom: dmesg shows ERMOTEIO (-121), pcscd shows -99. This can happen
  31. * when a short packet is sent, as seen in uhci-usb.c, resulting from a urb
  32. * from the guest requesting SPD and us returning a smaller packet.
  33. * Not sure which messages trigger this.
  34. */
  35. #include "qemu-common.h"
  36. #include "qemu/error-report.h"
  37. #include "hw/usb.h"
  38. #include "hw/usb/desc.h"
  39. #include "monitor/monitor.h"
  40. #include "ccid.h"
  41. #define DPRINTF(s, lvl, fmt, ...) \
  42. do { \
  43. if (lvl <= s->debug) { \
  44. printf("usb-ccid: " fmt , ## __VA_ARGS__); \
  45. } \
  46. } while (0)
  47. #define D_WARN 1
  48. #define D_INFO 2
  49. #define D_MORE_INFO 3
  50. #define D_VERBOSE 4
  51. #define CCID_DEV_NAME "usb-ccid"
  52. /*
  53. * The two options for variable sized buffers:
  54. * make them constant size, for large enough constant,
  55. * or handle the migration complexity - VMState doesn't handle this case.
  56. * sizes are expected never to be exceeded, unless guest misbehaves.
  57. */
  58. #define BULK_OUT_DATA_SIZE 65536
  59. #define PENDING_ANSWERS_NUM 128
  60. #define BULK_IN_BUF_SIZE 384
  61. #define BULK_IN_PENDING_NUM 8
  62. #define CCID_MAX_PACKET_SIZE 64
  63. #define CCID_CONTROL_ABORT 0x1
  64. #define CCID_CONTROL_GET_CLOCK_FREQUENCIES 0x2
  65. #define CCID_CONTROL_GET_DATA_RATES 0x3
  66. #define CCID_PRODUCT_DESCRIPTION "QEMU USB CCID"
  67. #define CCID_VENDOR_DESCRIPTION "QEMU"
  68. #define CCID_INTERFACE_NAME "CCID Interface"
  69. #define CCID_SERIAL_NUMBER_STRING "1"
  70. /*
  71. * Using Gemplus Vendor and Product id
  72. * Effect on various drivers:
  73. * usbccid.sys (winxp, others untested) is a class driver so it doesn't care.
  74. * linux has a number of class drivers, but openct filters based on
  75. * vendor/product (/etc/openct.conf under fedora), hence Gemplus.
  76. */
  77. #define CCID_VENDOR_ID 0x08e6
  78. #define CCID_PRODUCT_ID 0x4433
  79. #define CCID_DEVICE_VERSION 0x0000
  80. /*
  81. * BULK_OUT messages from PC to Reader
  82. * Defined in CCID Rev 1.1 6.1 (page 26)
  83. */
  84. #define CCID_MESSAGE_TYPE_PC_to_RDR_IccPowerOn 0x62
  85. #define CCID_MESSAGE_TYPE_PC_to_RDR_IccPowerOff 0x63
  86. #define CCID_MESSAGE_TYPE_PC_to_RDR_GetSlotStatus 0x65
  87. #define CCID_MESSAGE_TYPE_PC_to_RDR_XfrBlock 0x6f
  88. #define CCID_MESSAGE_TYPE_PC_to_RDR_GetParameters 0x6c
  89. #define CCID_MESSAGE_TYPE_PC_to_RDR_ResetParameters 0x6d
  90. #define CCID_MESSAGE_TYPE_PC_to_RDR_SetParameters 0x61
  91. #define CCID_MESSAGE_TYPE_PC_to_RDR_Escape 0x6b
  92. #define CCID_MESSAGE_TYPE_PC_to_RDR_IccClock 0x6e
  93. #define CCID_MESSAGE_TYPE_PC_to_RDR_T0APDU 0x6a
  94. #define CCID_MESSAGE_TYPE_PC_to_RDR_Secure 0x69
  95. #define CCID_MESSAGE_TYPE_PC_to_RDR_Mechanical 0x71
  96. #define CCID_MESSAGE_TYPE_PC_to_RDR_Abort 0x72
  97. #define CCID_MESSAGE_TYPE_PC_to_RDR_SetDataRateAndClockFrequency 0x73
  98. /*
  99. * BULK_IN messages from Reader to PC
  100. * Defined in CCID Rev 1.1 6.2 (page 48)
  101. */
  102. #define CCID_MESSAGE_TYPE_RDR_to_PC_DataBlock 0x80
  103. #define CCID_MESSAGE_TYPE_RDR_to_PC_SlotStatus 0x81
  104. #define CCID_MESSAGE_TYPE_RDR_to_PC_Parameters 0x82
  105. #define CCID_MESSAGE_TYPE_RDR_to_PC_Escape 0x83
  106. #define CCID_MESSAGE_TYPE_RDR_to_PC_DataRateAndClockFrequency 0x84
  107. /*
  108. * INTERRUPT_IN messages from Reader to PC
  109. * Defined in CCID Rev 1.1 6.3 (page 56)
  110. */
  111. #define CCID_MESSAGE_TYPE_RDR_to_PC_NotifySlotChange 0x50
  112. #define CCID_MESSAGE_TYPE_RDR_to_PC_HardwareError 0x51
  113. /*
  114. * Endpoints for CCID - addresses are up to us to decide.
  115. * To support slot insertion and removal we must have an interrupt in ep
  116. * in addition we need a bulk in and bulk out ep
  117. * 5.2, page 20
  118. */
  119. #define CCID_INT_IN_EP 1
  120. #define CCID_BULK_IN_EP 2
  121. #define CCID_BULK_OUT_EP 3
  122. /* bmSlotICCState masks */
  123. #define SLOT_0_STATE_MASK 1
  124. #define SLOT_0_CHANGED_MASK 2
  125. /* Status codes that go in bStatus (see 6.2.6) */
  126. enum {
  127. ICC_STATUS_PRESENT_ACTIVE = 0,
  128. ICC_STATUS_PRESENT_INACTIVE,
  129. ICC_STATUS_NOT_PRESENT
  130. };
  131. enum {
  132. COMMAND_STATUS_NO_ERROR = 0,
  133. COMMAND_STATUS_FAILED,
  134. COMMAND_STATUS_TIME_EXTENSION_REQUIRED
  135. };
  136. /* Error codes that go in bError (see 6.2.6) */
  137. enum {
  138. ERROR_CMD_NOT_SUPPORTED = 0,
  139. ERROR_CMD_ABORTED = -1,
  140. ERROR_ICC_MUTE = -2,
  141. ERROR_XFR_PARITY_ERROR = -3,
  142. ERROR_XFR_OVERRUN = -4,
  143. ERROR_HW_ERROR = -5,
  144. };
  145. /* 6.2.6 RDR_to_PC_SlotStatus definitions */
  146. enum {
  147. CLOCK_STATUS_RUNNING = 0,
  148. /*
  149. * 0 - Clock Running, 1 - Clock stopped in State L, 2 - H,
  150. * 3 - unknown state. rest are RFU
  151. */
  152. };
  153. typedef struct QEMU_PACKED CCID_Header {
  154. uint8_t bMessageType;
  155. uint32_t dwLength;
  156. uint8_t bSlot;
  157. uint8_t bSeq;
  158. } CCID_Header;
  159. typedef struct QEMU_PACKED CCID_BULK_IN {
  160. CCID_Header hdr;
  161. uint8_t bStatus; /* Only used in BULK_IN */
  162. uint8_t bError; /* Only used in BULK_IN */
  163. } CCID_BULK_IN;
  164. typedef struct QEMU_PACKED CCID_SlotStatus {
  165. CCID_BULK_IN b;
  166. uint8_t bClockStatus;
  167. } CCID_SlotStatus;
  168. typedef struct QEMU_PACKED CCID_T0ProtocolDataStructure {
  169. uint8_t bmFindexDindex;
  170. uint8_t bmTCCKST0;
  171. uint8_t bGuardTimeT0;
  172. uint8_t bWaitingIntegerT0;
  173. uint8_t bClockStop;
  174. } CCID_T0ProtocolDataStructure;
  175. typedef struct QEMU_PACKED CCID_T1ProtocolDataStructure {
  176. uint8_t bmFindexDindex;
  177. uint8_t bmTCCKST1;
  178. uint8_t bGuardTimeT1;
  179. uint8_t bWaitingIntegerT1;
  180. uint8_t bClockStop;
  181. uint8_t bIFSC;
  182. uint8_t bNadValue;
  183. } CCID_T1ProtocolDataStructure;
  184. typedef union CCID_ProtocolDataStructure {
  185. CCID_T0ProtocolDataStructure t0;
  186. CCID_T1ProtocolDataStructure t1;
  187. uint8_t data[7]; /* must be = max(sizeof(t0), sizeof(t1)) */
  188. } CCID_ProtocolDataStructure;
  189. typedef struct QEMU_PACKED CCID_Parameter {
  190. CCID_BULK_IN b;
  191. uint8_t bProtocolNum;
  192. CCID_ProtocolDataStructure abProtocolDataStructure;
  193. } CCID_Parameter;
  194. typedef struct QEMU_PACKED CCID_DataBlock {
  195. CCID_BULK_IN b;
  196. uint8_t bChainParameter;
  197. uint8_t abData[0];
  198. } CCID_DataBlock;
  199. /* 6.1.4 PC_to_RDR_XfrBlock */
  200. typedef struct QEMU_PACKED CCID_XferBlock {
  201. CCID_Header hdr;
  202. uint8_t bBWI; /* Block Waiting Timeout */
  203. uint16_t wLevelParameter; /* XXX currently unused */
  204. uint8_t abData[0];
  205. } CCID_XferBlock;
  206. typedef struct QEMU_PACKED CCID_IccPowerOn {
  207. CCID_Header hdr;
  208. uint8_t bPowerSelect;
  209. uint16_t abRFU;
  210. } CCID_IccPowerOn;
  211. typedef struct QEMU_PACKED CCID_IccPowerOff {
  212. CCID_Header hdr;
  213. uint16_t abRFU;
  214. } CCID_IccPowerOff;
  215. typedef struct QEMU_PACKED CCID_SetParameters {
  216. CCID_Header hdr;
  217. uint8_t bProtocolNum;
  218. uint16_t abRFU;
  219. CCID_ProtocolDataStructure abProtocolDataStructure;
  220. } CCID_SetParameters;
  221. typedef struct CCID_Notify_Slot_Change {
  222. uint8_t bMessageType; /* CCID_MESSAGE_TYPE_RDR_to_PC_NotifySlotChange */
  223. uint8_t bmSlotICCState;
  224. } CCID_Notify_Slot_Change;
  225. /* used for DataBlock response to XferBlock */
  226. typedef struct Answer {
  227. uint8_t slot;
  228. uint8_t seq;
  229. } Answer;
  230. /* pending BULK_IN messages */
  231. typedef struct BulkIn {
  232. uint8_t data[BULK_IN_BUF_SIZE];
  233. uint32_t len;
  234. uint32_t pos;
  235. } BulkIn;
  236. enum {
  237. MIGRATION_NONE,
  238. MIGRATION_MIGRATED,
  239. };
  240. typedef struct CCIDBus {
  241. BusState qbus;
  242. } CCIDBus;
  243. /*
  244. * powered - defaults to true, changed by PowerOn/PowerOff messages
  245. */
  246. typedef struct USBCCIDState {
  247. USBDevice dev;
  248. USBEndpoint *intr;
  249. CCIDBus bus;
  250. CCIDCardState *card;
  251. BulkIn bulk_in_pending[BULK_IN_PENDING_NUM]; /* circular */
  252. uint32_t bulk_in_pending_start;
  253. uint32_t bulk_in_pending_end; /* first free */
  254. uint32_t bulk_in_pending_num;
  255. BulkIn *current_bulk_in;
  256. uint8_t bulk_out_data[BULK_OUT_DATA_SIZE];
  257. uint32_t bulk_out_pos;
  258. uint64_t last_answer_error;
  259. Answer pending_answers[PENDING_ANSWERS_NUM];
  260. uint32_t pending_answers_start;
  261. uint32_t pending_answers_end;
  262. uint32_t pending_answers_num;
  263. uint8_t bError;
  264. uint8_t bmCommandStatus;
  265. uint8_t bProtocolNum;
  266. CCID_ProtocolDataStructure abProtocolDataStructure;
  267. uint32_t ulProtocolDataStructureSize;
  268. uint32_t state_vmstate;
  269. uint32_t migration_target_ip;
  270. uint16_t migration_target_port;
  271. uint8_t migration_state;
  272. uint8_t bmSlotICCState;
  273. uint8_t powered;
  274. uint8_t notify_slot_change;
  275. uint8_t debug;
  276. } USBCCIDState;
  277. /*
  278. * CCID Spec chapter 4: CCID uses a standard device descriptor per Chapter 9,
  279. * "USB Device Framework", section 9.6.1, in the Universal Serial Bus
  280. * Specification.
  281. *
  282. * This device implemented based on the spec and with an Athena Smart Card
  283. * Reader as reference:
  284. * 0dc3:1004 Athena Smartcard Solutions, Inc.
  285. */
  286. static const uint8_t qemu_ccid_descriptor[] = {
  287. /* Smart Card Device Class Descriptor */
  288. 0x36, /* u8 bLength; */
  289. 0x21, /* u8 bDescriptorType; Functional */
  290. 0x10, 0x01, /* u16 bcdCCID; CCID Specification Release Number. */
  291. 0x00, /*
  292. * u8 bMaxSlotIndex; The index of the highest available
  293. * slot on this device. All slots are consecutive starting
  294. * at 00h.
  295. */
  296. 0x07, /* u8 bVoltageSupport; 01h - 5.0v, 02h - 3.0, 03 - 1.8 */
  297. 0x00, 0x00, /* u32 dwProtocols; RRRR PPPP. RRRR = 0000h.*/
  298. 0x01, 0x00, /* PPPP: 0001h = Protocol T=0, 0002h = Protocol T=1 */
  299. /* u32 dwDefaultClock; in kHZ (0x0fa0 is 4 MHz) */
  300. 0xa0, 0x0f, 0x00, 0x00,
  301. /* u32 dwMaximumClock; */
  302. 0x00, 0x00, 0x01, 0x00,
  303. 0x00, /* u8 bNumClockSupported; *
  304. * 0 means just the default and max. */
  305. /* u32 dwDataRate ;bps. 9600 == 00002580h */
  306. 0x80, 0x25, 0x00, 0x00,
  307. /* u32 dwMaxDataRate ; 11520 bps == 0001C200h */
  308. 0x00, 0xC2, 0x01, 0x00,
  309. 0x00, /* u8 bNumDataRatesSupported; 00 means all rates between
  310. * default and max */
  311. /* u32 dwMaxIFSD; *
  312. * maximum IFSD supported by CCID for protocol *
  313. * T=1 (Maximum seen from various cards) */
  314. 0xfe, 0x00, 0x00, 0x00,
  315. /* u32 dwSyncProtocols; 1 - 2-wire, 2 - 3-wire, 4 - I2C */
  316. 0x00, 0x00, 0x00, 0x00,
  317. /* u32 dwMechanical; 0 - no special characteristics. */
  318. 0x00, 0x00, 0x00, 0x00,
  319. /*
  320. * u32 dwFeatures;
  321. * 0 - No special characteristics
  322. * + 2 Automatic parameter configuration based on ATR data
  323. * + 4 Automatic activation of ICC on inserting
  324. * + 8 Automatic ICC voltage selection
  325. * + 10 Automatic ICC clock frequency change
  326. * + 20 Automatic baud rate change
  327. * + 40 Automatic parameters negotiation made by the CCID
  328. * + 80 automatic PPS made by the CCID
  329. * 100 CCID can set ICC in clock stop mode
  330. * 200 NAD value other then 00 accepted (T=1 protocol)
  331. * + 400 Automatic IFSD exchange as first exchange (T=1)
  332. * One of the following only:
  333. * + 10000 TPDU level exchanges with CCID
  334. * 20000 Short APDU level exchange with CCID
  335. * 40000 Short and Extended APDU level exchange with CCID
  336. *
  337. * 100000 USB Wake up signaling supported on card
  338. * insertion and removal. Must set bit 5 in bmAttributes
  339. * in Configuration descriptor if 100000 is set.
  340. */
  341. 0xfe, 0x04, 0x01, 0x00,
  342. /*
  343. * u32 dwMaxCCIDMessageLength; For extended APDU in
  344. * [261 + 10 , 65544 + 10]. Otherwise the minimum is
  345. * wMaxPacketSize of the Bulk-OUT endpoint
  346. */
  347. 0x12, 0x00, 0x01, 0x00,
  348. 0xFF, /*
  349. * u8 bClassGetResponse; Significant only for CCID that
  350. * offers an APDU level for exchanges. Indicates the
  351. * default class value used by the CCID when it sends a
  352. * Get Response command to perform the transportation of
  353. * an APDU by T=0 protocol
  354. * FFh indicates that the CCID echos the class of the APDU.
  355. */
  356. 0xFF, /*
  357. * u8 bClassEnvelope; EAPDU only. Envelope command for
  358. * T=0
  359. */
  360. 0x00, 0x00, /*
  361. * u16 wLcdLayout; XXYY Number of lines (XX) and chars per
  362. * line for LCD display used for PIN entry. 0000 - no LCD
  363. */
  364. 0x01, /*
  365. * u8 bPINSupport; 01h PIN Verification,
  366. * 02h PIN Modification
  367. */
  368. 0x01, /* u8 bMaxCCIDBusySlots; */
  369. };
  370. enum {
  371. STR_MANUFACTURER = 1,
  372. STR_PRODUCT,
  373. STR_SERIALNUMBER,
  374. STR_INTERFACE,
  375. };
  376. static const USBDescStrings desc_strings = {
  377. [STR_MANUFACTURER] = "QEMU",
  378. [STR_PRODUCT] = "QEMU USB CCID",
  379. [STR_SERIALNUMBER] = "1",
  380. [STR_INTERFACE] = "CCID Interface",
  381. };
  382. static const USBDescIface desc_iface0 = {
  383. .bInterfaceNumber = 0,
  384. .bNumEndpoints = 3,
  385. .bInterfaceClass = USB_CLASS_CSCID,
  386. .bInterfaceSubClass = USB_SUBCLASS_UNDEFINED,
  387. .bInterfaceProtocol = 0x00,
  388. .iInterface = STR_INTERFACE,
  389. .ndesc = 1,
  390. .descs = (USBDescOther[]) {
  391. {
  392. /* smartcard descriptor */
  393. .data = qemu_ccid_descriptor,
  394. },
  395. },
  396. .eps = (USBDescEndpoint[]) {
  397. {
  398. .bEndpointAddress = USB_DIR_IN | CCID_INT_IN_EP,
  399. .bmAttributes = USB_ENDPOINT_XFER_INT,
  400. .bInterval = 255,
  401. .wMaxPacketSize = 64,
  402. },{
  403. .bEndpointAddress = USB_DIR_IN | CCID_BULK_IN_EP,
  404. .bmAttributes = USB_ENDPOINT_XFER_BULK,
  405. .wMaxPacketSize = 64,
  406. },{
  407. .bEndpointAddress = USB_DIR_OUT | CCID_BULK_OUT_EP,
  408. .bmAttributes = USB_ENDPOINT_XFER_BULK,
  409. .wMaxPacketSize = 64,
  410. },
  411. }
  412. };
  413. static const USBDescDevice desc_device = {
  414. .bcdUSB = 0x0110,
  415. .bMaxPacketSize0 = 64,
  416. .bNumConfigurations = 1,
  417. .confs = (USBDescConfig[]) {
  418. {
  419. .bNumInterfaces = 1,
  420. .bConfigurationValue = 1,
  421. .bmAttributes = USB_CFG_ATT_ONE | USB_CFG_ATT_SELFPOWER |
  422. USB_CFG_ATT_WAKEUP,
  423. .bMaxPower = 50,
  424. .nif = 1,
  425. .ifs = &desc_iface0,
  426. },
  427. },
  428. };
  429. static const USBDesc desc_ccid = {
  430. .id = {
  431. .idVendor = CCID_VENDOR_ID,
  432. .idProduct = CCID_PRODUCT_ID,
  433. .bcdDevice = CCID_DEVICE_VERSION,
  434. .iManufacturer = STR_MANUFACTURER,
  435. .iProduct = STR_PRODUCT,
  436. .iSerialNumber = STR_SERIALNUMBER,
  437. },
  438. .full = &desc_device,
  439. .str = desc_strings,
  440. };
  441. static const uint8_t *ccid_card_get_atr(CCIDCardState *card, uint32_t *len)
  442. {
  443. CCIDCardClass *cc = CCID_CARD_GET_CLASS(card);
  444. if (cc->get_atr) {
  445. return cc->get_atr(card, len);
  446. }
  447. return NULL;
  448. }
  449. static void ccid_card_apdu_from_guest(CCIDCardState *card,
  450. const uint8_t *apdu,
  451. uint32_t len)
  452. {
  453. CCIDCardClass *cc = CCID_CARD_GET_CLASS(card);
  454. if (cc->apdu_from_guest) {
  455. cc->apdu_from_guest(card, apdu, len);
  456. }
  457. }
  458. static int ccid_card_exitfn(CCIDCardState *card)
  459. {
  460. CCIDCardClass *cc = CCID_CARD_GET_CLASS(card);
  461. if (cc->exitfn) {
  462. return cc->exitfn(card);
  463. }
  464. return 0;
  465. }
  466. static int ccid_card_initfn(CCIDCardState *card)
  467. {
  468. CCIDCardClass *cc = CCID_CARD_GET_CLASS(card);
  469. if (cc->initfn) {
  470. return cc->initfn(card);
  471. }
  472. return 0;
  473. }
  474. static bool ccid_has_pending_answers(USBCCIDState *s)
  475. {
  476. return s->pending_answers_num > 0;
  477. }
  478. static void ccid_clear_pending_answers(USBCCIDState *s)
  479. {
  480. s->pending_answers_num = 0;
  481. s->pending_answers_start = 0;
  482. s->pending_answers_end = 0;
  483. }
  484. static void ccid_print_pending_answers(USBCCIDState *s)
  485. {
  486. Answer *answer;
  487. int i, count;
  488. DPRINTF(s, D_VERBOSE, "usb-ccid: pending answers:");
  489. if (!ccid_has_pending_answers(s)) {
  490. DPRINTF(s, D_VERBOSE, " empty\n");
  491. return;
  492. }
  493. for (i = s->pending_answers_start, count = s->pending_answers_num ;
  494. count > 0; count--, i++) {
  495. answer = &s->pending_answers[i % PENDING_ANSWERS_NUM];
  496. if (count == 1) {
  497. DPRINTF(s, D_VERBOSE, "%d:%d\n", answer->slot, answer->seq);
  498. } else {
  499. DPRINTF(s, D_VERBOSE, "%d:%d,", answer->slot, answer->seq);
  500. }
  501. }
  502. }
  503. static void ccid_add_pending_answer(USBCCIDState *s, CCID_Header *hdr)
  504. {
  505. Answer *answer;
  506. assert(s->pending_answers_num < PENDING_ANSWERS_NUM);
  507. s->pending_answers_num++;
  508. answer =
  509. &s->pending_answers[(s->pending_answers_end++) % PENDING_ANSWERS_NUM];
  510. answer->slot = hdr->bSlot;
  511. answer->seq = hdr->bSeq;
  512. ccid_print_pending_answers(s);
  513. }
  514. static void ccid_remove_pending_answer(USBCCIDState *s,
  515. uint8_t *slot, uint8_t *seq)
  516. {
  517. Answer *answer;
  518. assert(s->pending_answers_num > 0);
  519. s->pending_answers_num--;
  520. answer =
  521. &s->pending_answers[(s->pending_answers_start++) % PENDING_ANSWERS_NUM];
  522. *slot = answer->slot;
  523. *seq = answer->seq;
  524. ccid_print_pending_answers(s);
  525. }
  526. static void ccid_bulk_in_clear(USBCCIDState *s)
  527. {
  528. s->bulk_in_pending_start = 0;
  529. s->bulk_in_pending_end = 0;
  530. s->bulk_in_pending_num = 0;
  531. }
  532. static void ccid_bulk_in_release(USBCCIDState *s)
  533. {
  534. assert(s->current_bulk_in != NULL);
  535. s->current_bulk_in->pos = 0;
  536. s->current_bulk_in = NULL;
  537. }
  538. static void ccid_bulk_in_get(USBCCIDState *s)
  539. {
  540. if (s->current_bulk_in != NULL || s->bulk_in_pending_num == 0) {
  541. return;
  542. }
  543. assert(s->bulk_in_pending_num > 0);
  544. s->bulk_in_pending_num--;
  545. s->current_bulk_in =
  546. &s->bulk_in_pending[(s->bulk_in_pending_start++) % BULK_IN_PENDING_NUM];
  547. }
  548. static void *ccid_reserve_recv_buf(USBCCIDState *s, uint16_t len)
  549. {
  550. BulkIn *bulk_in;
  551. DPRINTF(s, D_VERBOSE, "%s: QUEUE: reserve %d bytes\n", __func__, len);
  552. /* look for an existing element */
  553. if (len > BULK_IN_BUF_SIZE) {
  554. DPRINTF(s, D_WARN, "usb-ccid.c: %s: len larger then max (%d>%d). "
  555. "discarding message.\n",
  556. __func__, len, BULK_IN_BUF_SIZE);
  557. return NULL;
  558. }
  559. if (s->bulk_in_pending_num >= BULK_IN_PENDING_NUM) {
  560. DPRINTF(s, D_WARN, "usb-ccid.c: %s: No free bulk_in buffers. "
  561. "discarding message.\n", __func__);
  562. return NULL;
  563. }
  564. bulk_in =
  565. &s->bulk_in_pending[(s->bulk_in_pending_end++) % BULK_IN_PENDING_NUM];
  566. s->bulk_in_pending_num++;
  567. bulk_in->len = len;
  568. return bulk_in->data;
  569. }
  570. static void ccid_reset(USBCCIDState *s)
  571. {
  572. ccid_bulk_in_clear(s);
  573. ccid_clear_pending_answers(s);
  574. }
  575. static void ccid_detach(USBCCIDState *s)
  576. {
  577. ccid_reset(s);
  578. }
  579. static void ccid_handle_reset(USBDevice *dev)
  580. {
  581. USBCCIDState *s = DO_UPCAST(USBCCIDState, dev, dev);
  582. DPRINTF(s, 1, "Reset\n");
  583. ccid_reset(s);
  584. }
  585. static const char *ccid_control_to_str(USBCCIDState *s, int request)
  586. {
  587. switch (request) {
  588. /* generic - should be factored out if there are other debugees */
  589. case DeviceOutRequest | USB_REQ_SET_ADDRESS:
  590. return "(generic) set address";
  591. case DeviceRequest | USB_REQ_GET_DESCRIPTOR:
  592. return "(generic) get descriptor";
  593. case DeviceRequest | USB_REQ_GET_CONFIGURATION:
  594. return "(generic) get configuration";
  595. case DeviceOutRequest | USB_REQ_SET_CONFIGURATION:
  596. return "(generic) set configuration";
  597. case DeviceRequest | USB_REQ_GET_STATUS:
  598. return "(generic) get status";
  599. case DeviceOutRequest | USB_REQ_CLEAR_FEATURE:
  600. return "(generic) clear feature";
  601. case DeviceOutRequest | USB_REQ_SET_FEATURE:
  602. return "(generic) set_feature";
  603. case InterfaceRequest | USB_REQ_GET_INTERFACE:
  604. return "(generic) get interface";
  605. case InterfaceOutRequest | USB_REQ_SET_INTERFACE:
  606. return "(generic) set interface";
  607. /* class requests */
  608. case ClassInterfaceOutRequest | CCID_CONTROL_ABORT:
  609. return "ABORT";
  610. case ClassInterfaceRequest | CCID_CONTROL_GET_CLOCK_FREQUENCIES:
  611. return "GET_CLOCK_FREQUENCIES";
  612. case ClassInterfaceRequest | CCID_CONTROL_GET_DATA_RATES:
  613. return "GET_DATA_RATES";
  614. }
  615. return "unknown";
  616. }
  617. static void ccid_handle_control(USBDevice *dev, USBPacket *p, int request,
  618. int value, int index, int length, uint8_t *data)
  619. {
  620. USBCCIDState *s = DO_UPCAST(USBCCIDState, dev, dev);
  621. int ret;
  622. DPRINTF(s, 1, "%s: got control %s (%x), value %x\n", __func__,
  623. ccid_control_to_str(s, request), request, value);
  624. ret = usb_desc_handle_control(dev, p, request, value, index, length, data);
  625. if (ret >= 0) {
  626. return;
  627. }
  628. switch (request) {
  629. /* Class specific requests. */
  630. case ClassInterfaceOutRequest | CCID_CONTROL_ABORT:
  631. DPRINTF(s, 1, "ccid_control abort UNIMPLEMENTED\n");
  632. p->status = USB_RET_STALL;
  633. break;
  634. case ClassInterfaceRequest | CCID_CONTROL_GET_CLOCK_FREQUENCIES:
  635. DPRINTF(s, 1, "ccid_control get clock frequencies UNIMPLEMENTED\n");
  636. p->status = USB_RET_STALL;
  637. break;
  638. case ClassInterfaceRequest | CCID_CONTROL_GET_DATA_RATES:
  639. DPRINTF(s, 1, "ccid_control get data rates UNIMPLEMENTED\n");
  640. p->status = USB_RET_STALL;
  641. break;
  642. default:
  643. DPRINTF(s, 1, "got unsupported/bogus control %x, value %x\n",
  644. request, value);
  645. p->status = USB_RET_STALL;
  646. break;
  647. }
  648. }
  649. static bool ccid_card_inserted(USBCCIDState *s)
  650. {
  651. return s->bmSlotICCState & SLOT_0_STATE_MASK;
  652. }
  653. static uint8_t ccid_card_status(USBCCIDState *s)
  654. {
  655. return ccid_card_inserted(s)
  656. ? (s->powered ?
  657. ICC_STATUS_PRESENT_ACTIVE
  658. : ICC_STATUS_PRESENT_INACTIVE
  659. )
  660. : ICC_STATUS_NOT_PRESENT;
  661. }
  662. static uint8_t ccid_calc_status(USBCCIDState *s)
  663. {
  664. /*
  665. * page 55, 6.2.6, calculation of bStatus from bmICCStatus and
  666. * bmCommandStatus
  667. */
  668. uint8_t ret = ccid_card_status(s) | (s->bmCommandStatus << 6);
  669. DPRINTF(s, D_VERBOSE, "%s: status = %d\n", __func__, ret);
  670. return ret;
  671. }
  672. static void ccid_reset_error_status(USBCCIDState *s)
  673. {
  674. s->bError = ERROR_CMD_NOT_SUPPORTED;
  675. s->bmCommandStatus = COMMAND_STATUS_NO_ERROR;
  676. }
  677. static void ccid_write_slot_status(USBCCIDState *s, CCID_Header *recv)
  678. {
  679. CCID_SlotStatus *h = ccid_reserve_recv_buf(s, sizeof(CCID_SlotStatus));
  680. if (h == NULL) {
  681. return;
  682. }
  683. h->b.hdr.bMessageType = CCID_MESSAGE_TYPE_RDR_to_PC_SlotStatus;
  684. h->b.hdr.dwLength = 0;
  685. h->b.hdr.bSlot = recv->bSlot;
  686. h->b.hdr.bSeq = recv->bSeq;
  687. h->b.bStatus = ccid_calc_status(s);
  688. h->b.bError = s->bError;
  689. h->bClockStatus = CLOCK_STATUS_RUNNING;
  690. ccid_reset_error_status(s);
  691. }
  692. static void ccid_write_parameters(USBCCIDState *s, CCID_Header *recv)
  693. {
  694. CCID_Parameter *h;
  695. uint32_t len = s->ulProtocolDataStructureSize;
  696. h = ccid_reserve_recv_buf(s, sizeof(CCID_Parameter) + len);
  697. if (h == NULL) {
  698. return;
  699. }
  700. h->b.hdr.bMessageType = CCID_MESSAGE_TYPE_RDR_to_PC_Parameters;
  701. h->b.hdr.dwLength = 0;
  702. h->b.hdr.bSlot = recv->bSlot;
  703. h->b.hdr.bSeq = recv->bSeq;
  704. h->b.bStatus = ccid_calc_status(s);
  705. h->b.bError = s->bError;
  706. h->bProtocolNum = s->bProtocolNum;
  707. h->abProtocolDataStructure = s->abProtocolDataStructure;
  708. ccid_reset_error_status(s);
  709. }
  710. static void ccid_write_data_block(USBCCIDState *s, uint8_t slot, uint8_t seq,
  711. const uint8_t *data, uint32_t len)
  712. {
  713. CCID_DataBlock *p = ccid_reserve_recv_buf(s, sizeof(*p) + len);
  714. if (p == NULL) {
  715. return;
  716. }
  717. p->b.hdr.bMessageType = CCID_MESSAGE_TYPE_RDR_to_PC_DataBlock;
  718. p->b.hdr.dwLength = cpu_to_le32(len);
  719. p->b.hdr.bSlot = slot;
  720. p->b.hdr.bSeq = seq;
  721. p->b.bStatus = ccid_calc_status(s);
  722. p->b.bError = s->bError;
  723. if (p->b.bError) {
  724. DPRINTF(s, D_VERBOSE, "error %d\n", p->b.bError);
  725. }
  726. memcpy(p->abData, data, len);
  727. ccid_reset_error_status(s);
  728. }
  729. static void ccid_report_error_failed(USBCCIDState *s, uint8_t error)
  730. {
  731. s->bmCommandStatus = COMMAND_STATUS_FAILED;
  732. s->bError = error;
  733. }
  734. static void ccid_write_data_block_answer(USBCCIDState *s,
  735. const uint8_t *data, uint32_t len)
  736. {
  737. uint8_t seq;
  738. uint8_t slot;
  739. if (!ccid_has_pending_answers(s)) {
  740. DPRINTF(s, D_WARN, "error: no pending answer to return to guest\n");
  741. ccid_report_error_failed(s, ERROR_ICC_MUTE);
  742. return;
  743. }
  744. ccid_remove_pending_answer(s, &slot, &seq);
  745. ccid_write_data_block(s, slot, seq, data, len);
  746. }
  747. static uint8_t atr_get_protocol_num(const uint8_t *atr, uint32_t len)
  748. {
  749. int i;
  750. if (len < 2 || !(atr[1] & 0x80)) {
  751. /* too short or TD1 not included */
  752. return 0; /* T=0, default */
  753. }
  754. i = 1 + !!(atr[1] & 0x10) + !!(atr[1] & 0x20) + !!(atr[1] & 0x40);
  755. i += !!(atr[1] & 0x80);
  756. return atr[i] & 0x0f;
  757. }
  758. static void ccid_write_data_block_atr(USBCCIDState *s, CCID_Header *recv)
  759. {
  760. const uint8_t *atr = NULL;
  761. uint32_t len = 0;
  762. uint8_t atr_protocol_num;
  763. CCID_T0ProtocolDataStructure *t0 = &s->abProtocolDataStructure.t0;
  764. CCID_T1ProtocolDataStructure *t1 = &s->abProtocolDataStructure.t1;
  765. if (s->card) {
  766. atr = ccid_card_get_atr(s->card, &len);
  767. }
  768. atr_protocol_num = atr_get_protocol_num(atr, len);
  769. DPRINTF(s, D_VERBOSE, "%s: atr contains protocol=%d\n", __func__,
  770. atr_protocol_num);
  771. /* set parameters from ATR - see spec page 109 */
  772. s->bProtocolNum = (atr_protocol_num <= 1 ? atr_protocol_num
  773. : s->bProtocolNum);
  774. switch (atr_protocol_num) {
  775. case 0:
  776. /* TODO: unimplemented ATR T0 parameters */
  777. t0->bmFindexDindex = 0;
  778. t0->bmTCCKST0 = 0;
  779. t0->bGuardTimeT0 = 0;
  780. t0->bWaitingIntegerT0 = 0;
  781. t0->bClockStop = 0;
  782. break;
  783. case 1:
  784. /* TODO: unimplemented ATR T1 parameters */
  785. t1->bmFindexDindex = 0;
  786. t1->bmTCCKST1 = 0;
  787. t1->bGuardTimeT1 = 0;
  788. t1->bWaitingIntegerT1 = 0;
  789. t1->bClockStop = 0;
  790. t1->bIFSC = 0;
  791. t1->bNadValue = 0;
  792. break;
  793. default:
  794. DPRINTF(s, D_WARN, "%s: error: unsupported ATR protocol %d\n",
  795. __func__, atr_protocol_num);
  796. }
  797. ccid_write_data_block(s, recv->bSlot, recv->bSeq, atr, len);
  798. }
  799. static void ccid_set_parameters(USBCCIDState *s, CCID_Header *recv)
  800. {
  801. CCID_SetParameters *ph = (CCID_SetParameters *) recv;
  802. uint32_t protocol_num = ph->bProtocolNum & 3;
  803. if (protocol_num != 0 && protocol_num != 1) {
  804. ccid_report_error_failed(s, ERROR_CMD_NOT_SUPPORTED);
  805. return;
  806. }
  807. s->bProtocolNum = protocol_num;
  808. s->abProtocolDataStructure = ph->abProtocolDataStructure;
  809. }
  810. /*
  811. * must be 5 bytes for T=0, 7 bytes for T=1
  812. * See page 52
  813. */
  814. static const CCID_ProtocolDataStructure defaultProtocolDataStructure = {
  815. .t1 = {
  816. .bmFindexDindex = 0x77,
  817. .bmTCCKST1 = 0x00,
  818. .bGuardTimeT1 = 0x00,
  819. .bWaitingIntegerT1 = 0x00,
  820. .bClockStop = 0x00,
  821. .bIFSC = 0xfe,
  822. .bNadValue = 0x00,
  823. }
  824. };
  825. static void ccid_reset_parameters(USBCCIDState *s)
  826. {
  827. s->bProtocolNum = 0; /* T=0 */
  828. s->abProtocolDataStructure = defaultProtocolDataStructure;
  829. }
  830. /* NOTE: only a single slot is supported (SLOT_0) */
  831. static void ccid_on_slot_change(USBCCIDState *s, bool full)
  832. {
  833. /* RDR_to_PC_NotifySlotChange, 6.3.1 page 56 */
  834. uint8_t current = s->bmSlotICCState;
  835. if (full) {
  836. s->bmSlotICCState |= SLOT_0_STATE_MASK;
  837. } else {
  838. s->bmSlotICCState &= ~SLOT_0_STATE_MASK;
  839. }
  840. if (current != s->bmSlotICCState) {
  841. s->bmSlotICCState |= SLOT_0_CHANGED_MASK;
  842. }
  843. s->notify_slot_change = true;
  844. usb_wakeup(s->intr, 0);
  845. }
  846. static void ccid_write_data_block_error(
  847. USBCCIDState *s, uint8_t slot, uint8_t seq)
  848. {
  849. ccid_write_data_block(s, slot, seq, NULL, 0);
  850. }
  851. static void ccid_on_apdu_from_guest(USBCCIDState *s, CCID_XferBlock *recv)
  852. {
  853. uint32_t len;
  854. if (ccid_card_status(s) != ICC_STATUS_PRESENT_ACTIVE) {
  855. DPRINTF(s, 1,
  856. "usb-ccid: not sending apdu to client, no card connected\n");
  857. ccid_write_data_block_error(s, recv->hdr.bSlot, recv->hdr.bSeq);
  858. return;
  859. }
  860. len = le32_to_cpu(recv->hdr.dwLength);
  861. DPRINTF(s, 1, "%s: seq %d, len %d\n", __func__,
  862. recv->hdr.bSeq, len);
  863. ccid_add_pending_answer(s, (CCID_Header *)recv);
  864. if (s->card) {
  865. ccid_card_apdu_from_guest(s->card, recv->abData, len);
  866. } else {
  867. DPRINTF(s, D_WARN, "warning: discarded apdu\n");
  868. }
  869. }
  870. static const char *ccid_message_type_to_str(uint8_t type)
  871. {
  872. switch (type) {
  873. case CCID_MESSAGE_TYPE_PC_to_RDR_IccPowerOn: return "IccPowerOn";
  874. case CCID_MESSAGE_TYPE_PC_to_RDR_IccPowerOff: return "IccPowerOff";
  875. case CCID_MESSAGE_TYPE_PC_to_RDR_GetSlotStatus: return "GetSlotStatus";
  876. case CCID_MESSAGE_TYPE_PC_to_RDR_XfrBlock: return "XfrBlock";
  877. case CCID_MESSAGE_TYPE_PC_to_RDR_GetParameters: return "GetParameters";
  878. case CCID_MESSAGE_TYPE_PC_to_RDR_ResetParameters: return "ResetParameters";
  879. case CCID_MESSAGE_TYPE_PC_to_RDR_SetParameters: return "SetParameters";
  880. case CCID_MESSAGE_TYPE_PC_to_RDR_Escape: return "Escape";
  881. case CCID_MESSAGE_TYPE_PC_to_RDR_IccClock: return "IccClock";
  882. case CCID_MESSAGE_TYPE_PC_to_RDR_T0APDU: return "T0APDU";
  883. case CCID_MESSAGE_TYPE_PC_to_RDR_Secure: return "Secure";
  884. case CCID_MESSAGE_TYPE_PC_to_RDR_Mechanical: return "Mechanical";
  885. case CCID_MESSAGE_TYPE_PC_to_RDR_Abort: return "Abort";
  886. case CCID_MESSAGE_TYPE_PC_to_RDR_SetDataRateAndClockFrequency:
  887. return "SetDataRateAndClockFrequency";
  888. }
  889. return "unknown";
  890. }
  891. static void ccid_handle_bulk_out(USBCCIDState *s, USBPacket *p)
  892. {
  893. CCID_Header *ccid_header;
  894. if (p->iov.size + s->bulk_out_pos > BULK_OUT_DATA_SIZE) {
  895. p->status = USB_RET_STALL;
  896. return;
  897. }
  898. ccid_header = (CCID_Header *)s->bulk_out_data;
  899. usb_packet_copy(p, s->bulk_out_data + s->bulk_out_pos, p->iov.size);
  900. s->bulk_out_pos += p->iov.size;
  901. if (p->iov.size == CCID_MAX_PACKET_SIZE) {
  902. DPRINTF(s, D_VERBOSE,
  903. "usb-ccid: bulk_in: expecting more packets (%zd/%d)\n",
  904. p->iov.size, ccid_header->dwLength);
  905. return;
  906. }
  907. if (s->bulk_out_pos < 10) {
  908. DPRINTF(s, 1,
  909. "%s: bad USB_TOKEN_OUT length, should be at least 10 bytes\n",
  910. __func__);
  911. } else {
  912. DPRINTF(s, D_MORE_INFO, "%s %x %s\n", __func__,
  913. ccid_header->bMessageType,
  914. ccid_message_type_to_str(ccid_header->bMessageType));
  915. switch (ccid_header->bMessageType) {
  916. case CCID_MESSAGE_TYPE_PC_to_RDR_GetSlotStatus:
  917. ccid_write_slot_status(s, ccid_header);
  918. break;
  919. case CCID_MESSAGE_TYPE_PC_to_RDR_IccPowerOn:
  920. DPRINTF(s, 1, "%s: PowerOn: %d\n", __func__,
  921. ((CCID_IccPowerOn *)(ccid_header))->bPowerSelect);
  922. s->powered = true;
  923. if (!ccid_card_inserted(s)) {
  924. ccid_report_error_failed(s, ERROR_ICC_MUTE);
  925. }
  926. /* atr is written regardless of error. */
  927. ccid_write_data_block_atr(s, ccid_header);
  928. break;
  929. case CCID_MESSAGE_TYPE_PC_to_RDR_IccPowerOff:
  930. ccid_reset_error_status(s);
  931. s->powered = false;
  932. ccid_write_slot_status(s, ccid_header);
  933. break;
  934. case CCID_MESSAGE_TYPE_PC_to_RDR_XfrBlock:
  935. ccid_on_apdu_from_guest(s, (CCID_XferBlock *)s->bulk_out_data);
  936. break;
  937. case CCID_MESSAGE_TYPE_PC_to_RDR_SetParameters:
  938. ccid_reset_error_status(s);
  939. ccid_set_parameters(s, ccid_header);
  940. ccid_write_parameters(s, ccid_header);
  941. break;
  942. case CCID_MESSAGE_TYPE_PC_to_RDR_ResetParameters:
  943. ccid_reset_error_status(s);
  944. ccid_reset_parameters(s);
  945. ccid_write_parameters(s, ccid_header);
  946. break;
  947. case CCID_MESSAGE_TYPE_PC_to_RDR_GetParameters:
  948. ccid_reset_error_status(s);
  949. ccid_write_parameters(s, ccid_header);
  950. break;
  951. case CCID_MESSAGE_TYPE_PC_to_RDR_Mechanical:
  952. ccid_report_error_failed(s, 0);
  953. ccid_write_slot_status(s, ccid_header);
  954. break;
  955. default:
  956. DPRINTF(s, 1,
  957. "handle_data: ERROR: unhandled message type %Xh\n",
  958. ccid_header->bMessageType);
  959. /*
  960. * The caller is expecting the device to respond, tell it we
  961. * don't support the operation.
  962. */
  963. ccid_report_error_failed(s, ERROR_CMD_NOT_SUPPORTED);
  964. ccid_write_slot_status(s, ccid_header);
  965. break;
  966. }
  967. }
  968. s->bulk_out_pos = 0;
  969. }
  970. static void ccid_bulk_in_copy_to_guest(USBCCIDState *s, USBPacket *p)
  971. {
  972. int len = 0;
  973. ccid_bulk_in_get(s);
  974. if (s->current_bulk_in != NULL) {
  975. len = MIN(s->current_bulk_in->len - s->current_bulk_in->pos,
  976. p->iov.size);
  977. usb_packet_copy(p, s->current_bulk_in->data +
  978. s->current_bulk_in->pos, len);
  979. s->current_bulk_in->pos += len;
  980. if (s->current_bulk_in->pos == s->current_bulk_in->len) {
  981. ccid_bulk_in_release(s);
  982. }
  983. } else {
  984. /* return when device has no data - usb 2.0 spec Table 8-4 */
  985. p->status = USB_RET_NAK;
  986. }
  987. if (len) {
  988. DPRINTF(s, D_MORE_INFO,
  989. "%s: %zd/%d req/act to guest (BULK_IN)\n",
  990. __func__, p->iov.size, len);
  991. }
  992. if (len < p->iov.size) {
  993. DPRINTF(s, 1,
  994. "%s: returning short (EREMOTEIO) %d < %zd\n",
  995. __func__, len, p->iov.size);
  996. }
  997. }
  998. static void ccid_handle_data(USBDevice *dev, USBPacket *p)
  999. {
  1000. USBCCIDState *s = DO_UPCAST(USBCCIDState, dev, dev);
  1001. uint8_t buf[2];
  1002. switch (p->pid) {
  1003. case USB_TOKEN_OUT:
  1004. ccid_handle_bulk_out(s, p);
  1005. break;
  1006. case USB_TOKEN_IN:
  1007. switch (p->ep->nr) {
  1008. case CCID_BULK_IN_EP:
  1009. ccid_bulk_in_copy_to_guest(s, p);
  1010. break;
  1011. case CCID_INT_IN_EP:
  1012. if (s->notify_slot_change) {
  1013. /* page 56, RDR_to_PC_NotifySlotChange */
  1014. buf[0] = CCID_MESSAGE_TYPE_RDR_to_PC_NotifySlotChange;
  1015. buf[1] = s->bmSlotICCState;
  1016. usb_packet_copy(p, buf, 2);
  1017. s->notify_slot_change = false;
  1018. s->bmSlotICCState &= ~SLOT_0_CHANGED_MASK;
  1019. DPRINTF(s, D_INFO,
  1020. "handle_data: int_in: notify_slot_change %X, "
  1021. "requested len %zd\n",
  1022. s->bmSlotICCState, p->iov.size);
  1023. } else {
  1024. p->status = USB_RET_NAK;
  1025. }
  1026. break;
  1027. default:
  1028. DPRINTF(s, 1, "Bad endpoint\n");
  1029. p->status = USB_RET_STALL;
  1030. break;
  1031. }
  1032. break;
  1033. default:
  1034. DPRINTF(s, 1, "Bad token\n");
  1035. p->status = USB_RET_STALL;
  1036. break;
  1037. }
  1038. }
  1039. static void ccid_handle_destroy(USBDevice *dev)
  1040. {
  1041. USBCCIDState *s = DO_UPCAST(USBCCIDState, dev, dev);
  1042. ccid_bulk_in_clear(s);
  1043. }
  1044. static void ccid_flush_pending_answers(USBCCIDState *s)
  1045. {
  1046. while (ccid_has_pending_answers(s)) {
  1047. ccid_write_data_block_answer(s, NULL, 0);
  1048. }
  1049. }
  1050. static Answer *ccid_peek_next_answer(USBCCIDState *s)
  1051. {
  1052. return s->pending_answers_num == 0
  1053. ? NULL
  1054. : &s->pending_answers[s->pending_answers_start % PENDING_ANSWERS_NUM];
  1055. }
  1056. static Property ccid_props[] = {
  1057. DEFINE_PROP_UINT32("slot", struct CCIDCardState, slot, 0),
  1058. DEFINE_PROP_END_OF_LIST(),
  1059. };
  1060. #define TYPE_CCID_BUS "ccid-bus"
  1061. #define CCID_BUS(obj) OBJECT_CHECK(CCIDBus, (obj), TYPE_CCID_BUS)
  1062. static const TypeInfo ccid_bus_info = {
  1063. .name = TYPE_CCID_BUS,
  1064. .parent = TYPE_BUS,
  1065. .instance_size = sizeof(CCIDBus),
  1066. };
  1067. void ccid_card_send_apdu_to_guest(CCIDCardState *card,
  1068. uint8_t *apdu, uint32_t len)
  1069. {
  1070. USBCCIDState *s = DO_UPCAST(USBCCIDState, dev.qdev,
  1071. card->qdev.parent_bus->parent);
  1072. Answer *answer;
  1073. if (!ccid_has_pending_answers(s)) {
  1074. DPRINTF(s, 1, "CCID ERROR: got an APDU without pending answers\n");
  1075. return;
  1076. }
  1077. s->bmCommandStatus = COMMAND_STATUS_NO_ERROR;
  1078. answer = ccid_peek_next_answer(s);
  1079. if (answer == NULL) {
  1080. DPRINTF(s, D_WARN, "%s: error: unexpected lack of answer\n", __func__);
  1081. ccid_report_error_failed(s, ERROR_HW_ERROR);
  1082. return;
  1083. }
  1084. DPRINTF(s, 1, "APDU returned to guest %d (answer seq %d, slot %d)\n",
  1085. len, answer->seq, answer->slot);
  1086. ccid_write_data_block_answer(s, apdu, len);
  1087. }
  1088. void ccid_card_card_removed(CCIDCardState *card)
  1089. {
  1090. USBCCIDState *s =
  1091. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1092. ccid_on_slot_change(s, false);
  1093. ccid_flush_pending_answers(s);
  1094. ccid_reset(s);
  1095. }
  1096. int ccid_card_ccid_attach(CCIDCardState *card)
  1097. {
  1098. USBCCIDState *s =
  1099. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1100. DPRINTF(s, 1, "CCID Attach\n");
  1101. if (s->migration_state == MIGRATION_MIGRATED) {
  1102. s->migration_state = MIGRATION_NONE;
  1103. }
  1104. return 0;
  1105. }
  1106. void ccid_card_ccid_detach(CCIDCardState *card)
  1107. {
  1108. USBCCIDState *s =
  1109. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1110. DPRINTF(s, 1, "CCID Detach\n");
  1111. if (ccid_card_inserted(s)) {
  1112. ccid_on_slot_change(s, false);
  1113. }
  1114. ccid_detach(s);
  1115. }
  1116. void ccid_card_card_error(CCIDCardState *card, uint64_t error)
  1117. {
  1118. USBCCIDState *s =
  1119. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1120. s->bmCommandStatus = COMMAND_STATUS_FAILED;
  1121. s->last_answer_error = error;
  1122. DPRINTF(s, 1, "VSC_Error: %" PRIX64 "\n", s->last_answer_error);
  1123. /* TODO: these errors should be more verbose and propagated to the guest.*/
  1124. /*
  1125. * We flush all pending answers on CardRemove message in ccid-card-passthru,
  1126. * so check that first to not trigger abort
  1127. */
  1128. if (ccid_has_pending_answers(s)) {
  1129. ccid_write_data_block_answer(s, NULL, 0);
  1130. }
  1131. }
  1132. void ccid_card_card_inserted(CCIDCardState *card)
  1133. {
  1134. USBCCIDState *s =
  1135. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1136. s->bmCommandStatus = COMMAND_STATUS_NO_ERROR;
  1137. ccid_flush_pending_answers(s);
  1138. ccid_on_slot_change(s, true);
  1139. }
  1140. static int ccid_card_exit(DeviceState *qdev)
  1141. {
  1142. int ret = 0;
  1143. CCIDCardState *card = CCID_CARD(qdev);
  1144. USBCCIDState *s =
  1145. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1146. if (ccid_card_inserted(s)) {
  1147. ccid_card_card_removed(card);
  1148. }
  1149. ret = ccid_card_exitfn(card);
  1150. s->card = NULL;
  1151. return ret;
  1152. }
  1153. static int ccid_card_init(DeviceState *qdev)
  1154. {
  1155. CCIDCardState *card = CCID_CARD(qdev);
  1156. USBCCIDState *s =
  1157. DO_UPCAST(USBCCIDState, dev.qdev, card->qdev.parent_bus->parent);
  1158. int ret = 0;
  1159. if (card->slot != 0) {
  1160. error_report("Warning: usb-ccid supports one slot, can't add %d",
  1161. card->slot);
  1162. return -1;
  1163. }
  1164. if (s->card != NULL) {
  1165. error_report("Warning: usb-ccid card already full, not adding");
  1166. return -1;
  1167. }
  1168. ret = ccid_card_initfn(card);
  1169. if (ret == 0) {
  1170. s->card = card;
  1171. }
  1172. return ret;
  1173. }
  1174. static int ccid_initfn(USBDevice *dev)
  1175. {
  1176. USBCCIDState *s = DO_UPCAST(USBCCIDState, dev, dev);
  1177. usb_desc_create_serial(dev);
  1178. usb_desc_init(dev);
  1179. qbus_create_inplace(&s->bus, sizeof(s->bus), TYPE_CCID_BUS, DEVICE(dev),
  1180. NULL);
  1181. s->intr = usb_ep_get(dev, USB_TOKEN_IN, CCID_INT_IN_EP);
  1182. s->bus.qbus.allow_hotplug = 1;
  1183. s->card = NULL;
  1184. s->migration_state = MIGRATION_NONE;
  1185. s->migration_target_ip = 0;
  1186. s->migration_target_port = 0;
  1187. s->dev.speed = USB_SPEED_FULL;
  1188. s->dev.speedmask = USB_SPEED_MASK_FULL;
  1189. s->notify_slot_change = false;
  1190. s->powered = true;
  1191. s->pending_answers_num = 0;
  1192. s->last_answer_error = 0;
  1193. s->bulk_in_pending_start = 0;
  1194. s->bulk_in_pending_end = 0;
  1195. s->current_bulk_in = NULL;
  1196. ccid_reset_error_status(s);
  1197. s->bulk_out_pos = 0;
  1198. ccid_reset_parameters(s);
  1199. ccid_reset(s);
  1200. s->debug = parse_debug_env("QEMU_CCID_DEBUG", D_VERBOSE, s->debug);
  1201. return 0;
  1202. }
  1203. static int ccid_post_load(void *opaque, int version_id)
  1204. {
  1205. USBCCIDState *s = opaque;
  1206. /*
  1207. * This must be done after usb_device_attach, which sets state to ATTACHED,
  1208. * while it must be DEFAULT in order to accept packets (like it is after
  1209. * reset, but reset will reset our addr and call our reset handler which
  1210. * may change state, and we don't want to do that when migrating).
  1211. */
  1212. s->dev.state = s->state_vmstate;
  1213. return 0;
  1214. }
  1215. static void ccid_pre_save(void *opaque)
  1216. {
  1217. USBCCIDState *s = opaque;
  1218. s->state_vmstate = s->dev.state;
  1219. if (s->dev.attached) {
  1220. /*
  1221. * Migrating an open device, ignore reconnection CHR_EVENT to avoid an
  1222. * erroneous detach.
  1223. */
  1224. s->migration_state = MIGRATION_MIGRATED;
  1225. }
  1226. }
  1227. static VMStateDescription bulk_in_vmstate = {
  1228. .name = "CCID BulkIn state",
  1229. .version_id = 1,
  1230. .minimum_version_id = 1,
  1231. .fields = (VMStateField[]) {
  1232. VMSTATE_BUFFER(data, BulkIn),
  1233. VMSTATE_UINT32(len, BulkIn),
  1234. VMSTATE_UINT32(pos, BulkIn),
  1235. VMSTATE_END_OF_LIST()
  1236. }
  1237. };
  1238. static VMStateDescription answer_vmstate = {
  1239. .name = "CCID Answer state",
  1240. .version_id = 1,
  1241. .minimum_version_id = 1,
  1242. .fields = (VMStateField[]) {
  1243. VMSTATE_UINT8(slot, Answer),
  1244. VMSTATE_UINT8(seq, Answer),
  1245. VMSTATE_END_OF_LIST()
  1246. }
  1247. };
  1248. static VMStateDescription usb_device_vmstate = {
  1249. .name = "usb_device",
  1250. .version_id = 1,
  1251. .minimum_version_id = 1,
  1252. .fields = (VMStateField[]) {
  1253. VMSTATE_UINT8(addr, USBDevice),
  1254. VMSTATE_BUFFER(setup_buf, USBDevice),
  1255. VMSTATE_BUFFER(data_buf, USBDevice),
  1256. VMSTATE_END_OF_LIST()
  1257. }
  1258. };
  1259. static VMStateDescription ccid_vmstate = {
  1260. .name = "usb-ccid",
  1261. .version_id = 1,
  1262. .minimum_version_id = 1,
  1263. .post_load = ccid_post_load,
  1264. .pre_save = ccid_pre_save,
  1265. .fields = (VMStateField[]) {
  1266. VMSTATE_STRUCT(dev, USBCCIDState, 1, usb_device_vmstate, USBDevice),
  1267. VMSTATE_UINT8(debug, USBCCIDState),
  1268. VMSTATE_BUFFER(bulk_out_data, USBCCIDState),
  1269. VMSTATE_UINT32(bulk_out_pos, USBCCIDState),
  1270. VMSTATE_UINT8(bmSlotICCState, USBCCIDState),
  1271. VMSTATE_UINT8(powered, USBCCIDState),
  1272. VMSTATE_UINT8(notify_slot_change, USBCCIDState),
  1273. VMSTATE_UINT64(last_answer_error, USBCCIDState),
  1274. VMSTATE_UINT8(bError, USBCCIDState),
  1275. VMSTATE_UINT8(bmCommandStatus, USBCCIDState),
  1276. VMSTATE_UINT8(bProtocolNum, USBCCIDState),
  1277. VMSTATE_BUFFER(abProtocolDataStructure.data, USBCCIDState),
  1278. VMSTATE_UINT32(ulProtocolDataStructureSize, USBCCIDState),
  1279. VMSTATE_STRUCT_ARRAY(bulk_in_pending, USBCCIDState,
  1280. BULK_IN_PENDING_NUM, 1, bulk_in_vmstate, BulkIn),
  1281. VMSTATE_UINT32(bulk_in_pending_start, USBCCIDState),
  1282. VMSTATE_UINT32(bulk_in_pending_end, USBCCIDState),
  1283. VMSTATE_STRUCT_ARRAY(pending_answers, USBCCIDState,
  1284. PENDING_ANSWERS_NUM, 1, answer_vmstate, Answer),
  1285. VMSTATE_UINT32(pending_answers_num, USBCCIDState),
  1286. VMSTATE_UINT8(migration_state, USBCCIDState),
  1287. VMSTATE_UINT32(state_vmstate, USBCCIDState),
  1288. VMSTATE_END_OF_LIST()
  1289. }
  1290. };
  1291. static Property ccid_properties[] = {
  1292. DEFINE_PROP_UINT8("debug", USBCCIDState, debug, 0),
  1293. DEFINE_PROP_END_OF_LIST(),
  1294. };
  1295. static void ccid_class_initfn(ObjectClass *klass, void *data)
  1296. {
  1297. DeviceClass *dc = DEVICE_CLASS(klass);
  1298. USBDeviceClass *uc = USB_DEVICE_CLASS(klass);
  1299. uc->init = ccid_initfn;
  1300. uc->product_desc = "QEMU USB CCID";
  1301. uc->usb_desc = &desc_ccid;
  1302. uc->handle_reset = ccid_handle_reset;
  1303. uc->handle_control = ccid_handle_control;
  1304. uc->handle_data = ccid_handle_data;
  1305. uc->handle_destroy = ccid_handle_destroy;
  1306. dc->desc = "CCID Rev 1.1 smartcard reader";
  1307. dc->vmsd = &ccid_vmstate;
  1308. dc->props = ccid_properties;
  1309. set_bit(DEVICE_CATEGORY_INPUT, dc->categories);
  1310. }
  1311. static const TypeInfo ccid_info = {
  1312. .name = CCID_DEV_NAME,
  1313. .parent = TYPE_USB_DEVICE,
  1314. .instance_size = sizeof(USBCCIDState),
  1315. .class_init = ccid_class_initfn,
  1316. };
  1317. static void ccid_card_class_init(ObjectClass *klass, void *data)
  1318. {
  1319. DeviceClass *k = DEVICE_CLASS(klass);
  1320. k->bus_type = TYPE_CCID_BUS;
  1321. k->init = ccid_card_init;
  1322. k->exit = ccid_card_exit;
  1323. k->props = ccid_props;
  1324. }
  1325. static const TypeInfo ccid_card_type_info = {
  1326. .name = TYPE_CCID_CARD,
  1327. .parent = TYPE_DEVICE,
  1328. .instance_size = sizeof(CCIDCardState),
  1329. .abstract = true,
  1330. .class_size = sizeof(CCIDCardClass),
  1331. .class_init = ccid_card_class_init,
  1332. };
  1333. static void ccid_register_types(void)
  1334. {
  1335. type_register_static(&ccid_bus_info);
  1336. type_register_static(&ccid_card_type_info);
  1337. type_register_static(&ccid_info);
  1338. usb_legacy_register(CCID_DEV_NAME, "ccid", NULL);
  1339. }
  1340. type_init(ccid_register_types)