rtl8139: simplify timer logic
[qemu.git] / hw / net / rtl8139.c
blobb7b87a60cf7b49426b65577034665dcc5385a70c
1 /**
2 * QEMU RTL8139 emulation
4 * Copyright (c) 2006 Igor Kovalenko
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
22 * THE SOFTWARE.
24 * Modifications:
25 * 2006-Jan-28 Mark Malakanov : TSAD and CSCR implementation (for Windows driver)
27 * 2006-Apr-28 Juergen Lock : EEPROM emulation changes for FreeBSD driver
28 * HW revision ID changes for FreeBSD driver
30 * 2006-Jul-01 Igor Kovalenko : Implemented loopback mode for FreeBSD driver
31 * Corrected packet transfer reassembly routine for 8139C+ mode
32 * Rearranged debugging print statements
33 * Implemented PCI timer interrupt (disabled by default)
34 * Implemented Tally Counters, increased VM load/save version
35 * Implemented IP/TCP/UDP checksum task offloading
37 * 2006-Jul-04 Igor Kovalenko : Implemented TCP segmentation offloading
38 * Fixed MTU=1500 for produced ethernet frames
40 * 2006-Jul-09 Igor Kovalenko : Fixed TCP header length calculation while processing
41 * segmentation offloading
42 * Removed slirp.h dependency
43 * Added rx/tx buffer reset when enabling rx/tx operation
45 * 2010-Feb-04 Frediano Ziglio: Rewrote timer support using QEMU timer only
46 * when strictly needed (required for for
47 * Darwin)
48 * 2011-Mar-22 Benjamin Poirier: Implemented VLAN offloading
51 /* For crc32 */
52 #include <zlib.h>
54 #include "hw/hw.h"
55 #include "hw/pci/pci.h"
56 #include "sysemu/dma.h"
57 #include "qemu/timer.h"
58 #include "net/net.h"
59 #include "hw/loader.h"
60 #include "sysemu/sysemu.h"
61 #include "qemu/iov.h"
63 /* debug RTL8139 card */
64 //#define DEBUG_RTL8139 1
66 #define PCI_FREQUENCY 33000000L
68 #define SET_MASKED(input, mask, curr) \
69 ( ( (input) & ~(mask) ) | ( (curr) & (mask) ) )
71 /* arg % size for size which is a power of 2 */
72 #define MOD2(input, size) \
73 ( ( input ) & ( size - 1 ) )
75 #define ETHER_ADDR_LEN 6
76 #define ETHER_TYPE_LEN 2
77 #define ETH_HLEN (ETHER_ADDR_LEN * 2 + ETHER_TYPE_LEN)
78 #define ETH_P_IP 0x0800 /* Internet Protocol packet */
79 #define ETH_P_8021Q 0x8100 /* 802.1Q VLAN Extended Header */
80 #define ETH_MTU 1500
82 #define VLAN_TCI_LEN 2
83 #define VLAN_HLEN (ETHER_TYPE_LEN + VLAN_TCI_LEN)
85 #if defined (DEBUG_RTL8139)
86 # define DPRINTF(fmt, ...) \
87 do { fprintf(stderr, "RTL8139: " fmt, ## __VA_ARGS__); } while (0)
88 #else
89 static inline GCC_FMT_ATTR(1, 2) int DPRINTF(const char *fmt, ...)
91 return 0;
93 #endif
95 #define TYPE_RTL8139 "rtl8139"
97 #define RTL8139(obj) \
98 OBJECT_CHECK(RTL8139State, (obj), TYPE_RTL8139)
100 /* Symbolic offsets to registers. */
101 enum RTL8139_registers {
102 MAC0 = 0, /* Ethernet hardware address. */
103 MAR0 = 8, /* Multicast filter. */
104 TxStatus0 = 0x10,/* Transmit status (Four 32bit registers). C mode only */
105 /* Dump Tally Conter control register(64bit). C+ mode only */
106 TxAddr0 = 0x20, /* Tx descriptors (also four 32bit). */
107 RxBuf = 0x30,
108 ChipCmd = 0x37,
109 RxBufPtr = 0x38,
110 RxBufAddr = 0x3A,
111 IntrMask = 0x3C,
112 IntrStatus = 0x3E,
113 TxConfig = 0x40,
114 RxConfig = 0x44,
115 Timer = 0x48, /* A general-purpose counter. */
116 RxMissed = 0x4C, /* 24 bits valid, write clears. */
117 Cfg9346 = 0x50,
118 Config0 = 0x51,
119 Config1 = 0x52,
120 FlashReg = 0x54,
121 MediaStatus = 0x58,
122 Config3 = 0x59,
123 Config4 = 0x5A, /* absent on RTL-8139A */
124 HltClk = 0x5B,
125 MultiIntr = 0x5C,
126 PCIRevisionID = 0x5E,
127 TxSummary = 0x60, /* TSAD register. Transmit Status of All Descriptors*/
128 BasicModeCtrl = 0x62,
129 BasicModeStatus = 0x64,
130 NWayAdvert = 0x66,
131 NWayLPAR = 0x68,
132 NWayExpansion = 0x6A,
133 /* Undocumented registers, but required for proper operation. */
134 FIFOTMS = 0x70, /* FIFO Control and test. */
135 CSCR = 0x74, /* Chip Status and Configuration Register. */
136 PARA78 = 0x78,
137 PARA7c = 0x7c, /* Magic transceiver parameter register. */
138 Config5 = 0xD8, /* absent on RTL-8139A */
139 /* C+ mode */
140 TxPoll = 0xD9, /* Tell chip to check Tx descriptors for work */
141 RxMaxSize = 0xDA, /* Max size of an Rx packet (8169 only) */
142 CpCmd = 0xE0, /* C+ Command register (C+ mode only) */
143 IntrMitigate = 0xE2, /* rx/tx interrupt mitigation control */
144 RxRingAddrLO = 0xE4, /* 64-bit start addr of Rx ring */
145 RxRingAddrHI = 0xE8, /* 64-bit start addr of Rx ring */
146 TxThresh = 0xEC, /* Early Tx threshold */
149 enum ClearBitMasks {
150 MultiIntrClear = 0xF000,
151 ChipCmdClear = 0xE2,
152 Config1Clear = (1<<7)|(1<<6)|(1<<3)|(1<<2)|(1<<1),
155 enum ChipCmdBits {
156 CmdReset = 0x10,
157 CmdRxEnb = 0x08,
158 CmdTxEnb = 0x04,
159 RxBufEmpty = 0x01,
162 /* C+ mode */
163 enum CplusCmdBits {
164 CPlusRxVLAN = 0x0040, /* enable receive VLAN detagging */
165 CPlusRxChkSum = 0x0020, /* enable receive checksum offloading */
166 CPlusRxEnb = 0x0002,
167 CPlusTxEnb = 0x0001,
170 /* Interrupt register bits, using my own meaningful names. */
171 enum IntrStatusBits {
172 PCIErr = 0x8000,
173 PCSTimeout = 0x4000,
174 RxFIFOOver = 0x40,
175 RxUnderrun = 0x20, /* Packet Underrun / Link Change */
176 RxOverflow = 0x10,
177 TxErr = 0x08,
178 TxOK = 0x04,
179 RxErr = 0x02,
180 RxOK = 0x01,
182 RxAckBits = RxFIFOOver | RxOverflow | RxOK,
185 enum TxStatusBits {
186 TxHostOwns = 0x2000,
187 TxUnderrun = 0x4000,
188 TxStatOK = 0x8000,
189 TxOutOfWindow = 0x20000000,
190 TxAborted = 0x40000000,
191 TxCarrierLost = 0x80000000,
193 enum RxStatusBits {
194 RxMulticast = 0x8000,
195 RxPhysical = 0x4000,
196 RxBroadcast = 0x2000,
197 RxBadSymbol = 0x0020,
198 RxRunt = 0x0010,
199 RxTooLong = 0x0008,
200 RxCRCErr = 0x0004,
201 RxBadAlign = 0x0002,
202 RxStatusOK = 0x0001,
205 /* Bits in RxConfig. */
206 enum rx_mode_bits {
207 AcceptErr = 0x20,
208 AcceptRunt = 0x10,
209 AcceptBroadcast = 0x08,
210 AcceptMulticast = 0x04,
211 AcceptMyPhys = 0x02,
212 AcceptAllPhys = 0x01,
215 /* Bits in TxConfig. */
216 enum tx_config_bits {
218 /* Interframe Gap Time. Only TxIFG96 doesn't violate IEEE 802.3 */
219 TxIFGShift = 24,
220 TxIFG84 = (0 << TxIFGShift), /* 8.4us / 840ns (10 / 100Mbps) */
221 TxIFG88 = (1 << TxIFGShift), /* 8.8us / 880ns (10 / 100Mbps) */
222 TxIFG92 = (2 << TxIFGShift), /* 9.2us / 920ns (10 / 100Mbps) */
223 TxIFG96 = (3 << TxIFGShift), /* 9.6us / 960ns (10 / 100Mbps) */
225 TxLoopBack = (1 << 18) | (1 << 17), /* enable loopback test mode */
226 TxCRC = (1 << 16), /* DISABLE appending CRC to end of Tx packets */
227 TxClearAbt = (1 << 0), /* Clear abort (WO) */
228 TxDMAShift = 8, /* DMA burst value (0-7) is shifted this many bits */
229 TxRetryShift = 4, /* TXRR value (0-15) is shifted this many bits */
231 TxVersionMask = 0x7C800000, /* mask out version bits 30-26, 23 */
235 /* Transmit Status of All Descriptors (TSAD) Register */
236 enum TSAD_bits {
237 TSAD_TOK3 = 1<<15, // TOK bit of Descriptor 3
238 TSAD_TOK2 = 1<<14, // TOK bit of Descriptor 2
239 TSAD_TOK1 = 1<<13, // TOK bit of Descriptor 1
240 TSAD_TOK0 = 1<<12, // TOK bit of Descriptor 0
241 TSAD_TUN3 = 1<<11, // TUN bit of Descriptor 3
242 TSAD_TUN2 = 1<<10, // TUN bit of Descriptor 2
243 TSAD_TUN1 = 1<<9, // TUN bit of Descriptor 1
244 TSAD_TUN0 = 1<<8, // TUN bit of Descriptor 0
245 TSAD_TABT3 = 1<<07, // TABT bit of Descriptor 3
246 TSAD_TABT2 = 1<<06, // TABT bit of Descriptor 2
247 TSAD_TABT1 = 1<<05, // TABT bit of Descriptor 1
248 TSAD_TABT0 = 1<<04, // TABT bit of Descriptor 0
249 TSAD_OWN3 = 1<<03, // OWN bit of Descriptor 3
250 TSAD_OWN2 = 1<<02, // OWN bit of Descriptor 2
251 TSAD_OWN1 = 1<<01, // OWN bit of Descriptor 1
252 TSAD_OWN0 = 1<<00, // OWN bit of Descriptor 0
256 /* Bits in Config1 */
257 enum Config1Bits {
258 Cfg1_PM_Enable = 0x01,
259 Cfg1_VPD_Enable = 0x02,
260 Cfg1_PIO = 0x04,
261 Cfg1_MMIO = 0x08,
262 LWAKE = 0x10, /* not on 8139, 8139A */
263 Cfg1_Driver_Load = 0x20,
264 Cfg1_LED0 = 0x40,
265 Cfg1_LED1 = 0x80,
266 SLEEP = (1 << 1), /* only on 8139, 8139A */
267 PWRDN = (1 << 0), /* only on 8139, 8139A */
270 /* Bits in Config3 */
271 enum Config3Bits {
272 Cfg3_FBtBEn = (1 << 0), /* 1 = Fast Back to Back */
273 Cfg3_FuncRegEn = (1 << 1), /* 1 = enable CardBus Function registers */
274 Cfg3_CLKRUN_En = (1 << 2), /* 1 = enable CLKRUN */
275 Cfg3_CardB_En = (1 << 3), /* 1 = enable CardBus registers */
276 Cfg3_LinkUp = (1 << 4), /* 1 = wake up on link up */
277 Cfg3_Magic = (1 << 5), /* 1 = wake up on Magic Packet (tm) */
278 Cfg3_PARM_En = (1 << 6), /* 0 = software can set twister parameters */
279 Cfg3_GNTSel = (1 << 7), /* 1 = delay 1 clock from PCI GNT signal */
282 /* Bits in Config4 */
283 enum Config4Bits {
284 LWPTN = (1 << 2), /* not on 8139, 8139A */
287 /* Bits in Config5 */
288 enum Config5Bits {
289 Cfg5_PME_STS = (1 << 0), /* 1 = PCI reset resets PME_Status */
290 Cfg5_LANWake = (1 << 1), /* 1 = enable LANWake signal */
291 Cfg5_LDPS = (1 << 2), /* 0 = save power when link is down */
292 Cfg5_FIFOAddrPtr = (1 << 3), /* Realtek internal SRAM testing */
293 Cfg5_UWF = (1 << 4), /* 1 = accept unicast wakeup frame */
294 Cfg5_MWF = (1 << 5), /* 1 = accept multicast wakeup frame */
295 Cfg5_BWF = (1 << 6), /* 1 = accept broadcast wakeup frame */
298 enum RxConfigBits {
299 /* rx fifo threshold */
300 RxCfgFIFOShift = 13,
301 RxCfgFIFONone = (7 << RxCfgFIFOShift),
303 /* Max DMA burst */
304 RxCfgDMAShift = 8,
305 RxCfgDMAUnlimited = (7 << RxCfgDMAShift),
307 /* rx ring buffer length */
308 RxCfgRcv8K = 0,
309 RxCfgRcv16K = (1 << 11),
310 RxCfgRcv32K = (1 << 12),
311 RxCfgRcv64K = (1 << 11) | (1 << 12),
313 /* Disable packet wrap at end of Rx buffer. (not possible with 64k) */
314 RxNoWrap = (1 << 7),
317 /* Twister tuning parameters from RealTek.
318 Completely undocumented, but required to tune bad links on some boards. */
320 enum CSCRBits {
321 CSCR_LinkOKBit = 0x0400,
322 CSCR_LinkChangeBit = 0x0800,
323 CSCR_LinkStatusBits = 0x0f000,
324 CSCR_LinkDownOffCmd = 0x003c0,
325 CSCR_LinkDownCmd = 0x0f3c0,
327 enum CSCRBits {
328 CSCR_Testfun = 1<<15, /* 1 = Auto-neg speeds up internal timer, WO, def 0 */
329 CSCR_LD = 1<<9, /* Active low TPI link disable signal. When low, TPI still transmits link pulses and TPI stays in good link state. def 1*/
330 CSCR_HEART_BIT = 1<<8, /* 1 = HEART BEAT enable, 0 = HEART BEAT disable. HEART BEAT function is only valid in 10Mbps mode. def 1*/
331 CSCR_JBEN = 1<<7, /* 1 = enable jabber function. 0 = disable jabber function, def 1*/
332 CSCR_F_LINK_100 = 1<<6, /* Used to login force good link in 100Mbps for diagnostic purposes. 1 = DISABLE, 0 = ENABLE. def 1*/
333 CSCR_F_Connect = 1<<5, /* Assertion of this bit forces the disconnect function to be bypassed. def 0*/
334 CSCR_Con_status = 1<<3, /* This bit indicates the status of the connection. 1 = valid connected link detected; 0 = disconnected link detected. RO def 0*/
335 CSCR_Con_status_En = 1<<2, /* Assertion of this bit configures LED1 pin to indicate connection status. def 0*/
336 CSCR_PASS_SCR = 1<<0, /* Bypass Scramble, def 0*/
339 enum Cfg9346Bits {
340 Cfg9346_Normal = 0x00,
341 Cfg9346_Autoload = 0x40,
342 Cfg9346_Programming = 0x80,
343 Cfg9346_ConfigWrite = 0xC0,
346 typedef enum {
347 CH_8139 = 0,
348 CH_8139_K,
349 CH_8139A,
350 CH_8139A_G,
351 CH_8139B,
352 CH_8130,
353 CH_8139C,
354 CH_8100,
355 CH_8100B_8139D,
356 CH_8101,
357 } chip_t;
359 enum chip_flags {
360 HasHltClk = (1 << 0),
361 HasLWake = (1 << 1),
364 #define HW_REVID(b30, b29, b28, b27, b26, b23, b22) \
365 (b30<<30 | b29<<29 | b28<<28 | b27<<27 | b26<<26 | b23<<23 | b22<<22)
366 #define HW_REVID_MASK HW_REVID(1, 1, 1, 1, 1, 1, 1)
368 #define RTL8139_PCI_REVID_8139 0x10
369 #define RTL8139_PCI_REVID_8139CPLUS 0x20
371 #define RTL8139_PCI_REVID RTL8139_PCI_REVID_8139CPLUS
373 /* Size is 64 * 16bit words */
374 #define EEPROM_9346_ADDR_BITS 6
375 #define EEPROM_9346_SIZE (1 << EEPROM_9346_ADDR_BITS)
376 #define EEPROM_9346_ADDR_MASK (EEPROM_9346_SIZE - 1)
378 enum Chip9346Operation
380 Chip9346_op_mask = 0xc0, /* 10 zzzzzz */
381 Chip9346_op_read = 0x80, /* 10 AAAAAA */
382 Chip9346_op_write = 0x40, /* 01 AAAAAA D(15)..D(0) */
383 Chip9346_op_ext_mask = 0xf0, /* 11 zzzzzz */
384 Chip9346_op_write_enable = 0x30, /* 00 11zzzz */
385 Chip9346_op_write_all = 0x10, /* 00 01zzzz */
386 Chip9346_op_write_disable = 0x00, /* 00 00zzzz */
389 enum Chip9346Mode
391 Chip9346_none = 0,
392 Chip9346_enter_command_mode,
393 Chip9346_read_command,
394 Chip9346_data_read, /* from output register */
395 Chip9346_data_write, /* to input register, then to contents at specified address */
396 Chip9346_data_write_all, /* to input register, then filling contents */
399 typedef struct EEprom9346
401 uint16_t contents[EEPROM_9346_SIZE];
402 int mode;
403 uint32_t tick;
404 uint8_t address;
405 uint16_t input;
406 uint16_t output;
408 uint8_t eecs;
409 uint8_t eesk;
410 uint8_t eedi;
411 uint8_t eedo;
412 } EEprom9346;
414 typedef struct RTL8139TallyCounters
416 /* Tally counters */
417 uint64_t TxOk;
418 uint64_t RxOk;
419 uint64_t TxERR;
420 uint32_t RxERR;
421 uint16_t MissPkt;
422 uint16_t FAE;
423 uint32_t Tx1Col;
424 uint32_t TxMCol;
425 uint64_t RxOkPhy;
426 uint64_t RxOkBrd;
427 uint32_t RxOkMul;
428 uint16_t TxAbt;
429 uint16_t TxUndrn;
430 } RTL8139TallyCounters;
432 /* Clears all tally counters */
433 static void RTL8139TallyCounters_clear(RTL8139TallyCounters* counters);
435 typedef struct RTL8139State {
436 /*< private >*/
437 PCIDevice parent_obj;
438 /*< public >*/
440 uint8_t phys[8]; /* mac address */
441 uint8_t mult[8]; /* multicast mask array */
443 uint32_t TxStatus[4]; /* TxStatus0 in C mode*/ /* also DTCCR[0] and DTCCR[1] in C+ mode */
444 uint32_t TxAddr[4]; /* TxAddr0 */
445 uint32_t RxBuf; /* Receive buffer */
446 uint32_t RxBufferSize;/* internal variable, receive ring buffer size in C mode */
447 uint32_t RxBufPtr;
448 uint32_t RxBufAddr;
450 uint16_t IntrStatus;
451 uint16_t IntrMask;
453 uint32_t TxConfig;
454 uint32_t RxConfig;
455 uint32_t RxMissed;
457 uint16_t CSCR;
459 uint8_t Cfg9346;
460 uint8_t Config0;
461 uint8_t Config1;
462 uint8_t Config3;
463 uint8_t Config4;
464 uint8_t Config5;
466 uint8_t clock_enabled;
467 uint8_t bChipCmdState;
469 uint16_t MultiIntr;
471 uint16_t BasicModeCtrl;
472 uint16_t BasicModeStatus;
473 uint16_t NWayAdvert;
474 uint16_t NWayLPAR;
475 uint16_t NWayExpansion;
477 uint16_t CpCmd;
478 uint8_t TxThresh;
480 NICState *nic;
481 NICConf conf;
483 /* C ring mode */
484 uint32_t currTxDesc;
486 /* C+ mode */
487 uint32_t cplus_enabled;
489 uint32_t currCPlusRxDesc;
490 uint32_t currCPlusTxDesc;
492 uint32_t RxRingAddrLO;
493 uint32_t RxRingAddrHI;
495 EEprom9346 eeprom;
497 uint32_t TCTR;
498 uint32_t TimerInt;
499 int64_t TCTR_base;
501 /* Tally counters */
502 RTL8139TallyCounters tally_counters;
504 /* Non-persistent data */
505 uint8_t *cplus_txbuffer;
506 int cplus_txbuffer_len;
507 int cplus_txbuffer_offset;
509 /* PCI interrupt timer */
510 QEMUTimer *timer;
512 MemoryRegion bar_io;
513 MemoryRegion bar_mem;
515 /* Support migration to/from old versions */
516 int rtl8139_mmio_io_addr_dummy;
517 } RTL8139State;
519 /* Writes tally counters to memory via DMA */
520 static void RTL8139TallyCounters_dma_write(RTL8139State *s, dma_addr_t tc_addr);
522 static void rtl8139_set_next_tctr_time(RTL8139State *s);
524 static void prom9346_decode_command(EEprom9346 *eeprom, uint8_t command)
526 DPRINTF("eeprom command 0x%02x\n", command);
528 switch (command & Chip9346_op_mask)
530 case Chip9346_op_read:
532 eeprom->address = command & EEPROM_9346_ADDR_MASK;
533 eeprom->output = eeprom->contents[eeprom->address];
534 eeprom->eedo = 0;
535 eeprom->tick = 0;
536 eeprom->mode = Chip9346_data_read;
537 DPRINTF("eeprom read from address 0x%02x data=0x%04x\n",
538 eeprom->address, eeprom->output);
540 break;
542 case Chip9346_op_write:
544 eeprom->address = command & EEPROM_9346_ADDR_MASK;
545 eeprom->input = 0;
546 eeprom->tick = 0;
547 eeprom->mode = Chip9346_none; /* Chip9346_data_write */
548 DPRINTF("eeprom begin write to address 0x%02x\n",
549 eeprom->address);
551 break;
552 default:
553 eeprom->mode = Chip9346_none;
554 switch (command & Chip9346_op_ext_mask)
556 case Chip9346_op_write_enable:
557 DPRINTF("eeprom write enabled\n");
558 break;
559 case Chip9346_op_write_all:
560 DPRINTF("eeprom begin write all\n");
561 break;
562 case Chip9346_op_write_disable:
563 DPRINTF("eeprom write disabled\n");
564 break;
566 break;
570 static void prom9346_shift_clock(EEprom9346 *eeprom)
572 int bit = eeprom->eedi?1:0;
574 ++ eeprom->tick;
576 DPRINTF("eeprom: tick %d eedi=%d eedo=%d\n", eeprom->tick, eeprom->eedi,
577 eeprom->eedo);
579 switch (eeprom->mode)
581 case Chip9346_enter_command_mode:
582 if (bit)
584 eeprom->mode = Chip9346_read_command;
585 eeprom->tick = 0;
586 eeprom->input = 0;
587 DPRINTF("eeprom: +++ synchronized, begin command read\n");
589 break;
591 case Chip9346_read_command:
592 eeprom->input = (eeprom->input << 1) | (bit & 1);
593 if (eeprom->tick == 8)
595 prom9346_decode_command(eeprom, eeprom->input & 0xff);
597 break;
599 case Chip9346_data_read:
600 eeprom->eedo = (eeprom->output & 0x8000)?1:0;
601 eeprom->output <<= 1;
602 if (eeprom->tick == 16)
604 #if 1
605 // the FreeBSD drivers (rl and re) don't explicitly toggle
606 // CS between reads (or does setting Cfg9346 to 0 count too?),
607 // so we need to enter wait-for-command state here
608 eeprom->mode = Chip9346_enter_command_mode;
609 eeprom->input = 0;
610 eeprom->tick = 0;
612 DPRINTF("eeprom: +++ end of read, awaiting next command\n");
613 #else
614 // original behaviour
615 ++eeprom->address;
616 eeprom->address &= EEPROM_9346_ADDR_MASK;
617 eeprom->output = eeprom->contents[eeprom->address];
618 eeprom->tick = 0;
620 DPRINTF("eeprom: +++ read next address 0x%02x data=0x%04x\n",
621 eeprom->address, eeprom->output);
622 #endif
624 break;
626 case Chip9346_data_write:
627 eeprom->input = (eeprom->input << 1) | (bit & 1);
628 if (eeprom->tick == 16)
630 DPRINTF("eeprom write to address 0x%02x data=0x%04x\n",
631 eeprom->address, eeprom->input);
633 eeprom->contents[eeprom->address] = eeprom->input;
634 eeprom->mode = Chip9346_none; /* waiting for next command after CS cycle */
635 eeprom->tick = 0;
636 eeprom->input = 0;
638 break;
640 case Chip9346_data_write_all:
641 eeprom->input = (eeprom->input << 1) | (bit & 1);
642 if (eeprom->tick == 16)
644 int i;
645 for (i = 0; i < EEPROM_9346_SIZE; i++)
647 eeprom->contents[i] = eeprom->input;
649 DPRINTF("eeprom filled with data=0x%04x\n", eeprom->input);
651 eeprom->mode = Chip9346_enter_command_mode;
652 eeprom->tick = 0;
653 eeprom->input = 0;
655 break;
657 default:
658 break;
662 static int prom9346_get_wire(RTL8139State *s)
664 EEprom9346 *eeprom = &s->eeprom;
665 if (!eeprom->eecs)
666 return 0;
668 return eeprom->eedo;
671 /* FIXME: This should be merged into/replaced by eeprom93xx.c. */
672 static void prom9346_set_wire(RTL8139State *s, int eecs, int eesk, int eedi)
674 EEprom9346 *eeprom = &s->eeprom;
675 uint8_t old_eecs = eeprom->eecs;
676 uint8_t old_eesk = eeprom->eesk;
678 eeprom->eecs = eecs;
679 eeprom->eesk = eesk;
680 eeprom->eedi = eedi;
682 DPRINTF("eeprom: +++ wires CS=%d SK=%d DI=%d DO=%d\n", eeprom->eecs,
683 eeprom->eesk, eeprom->eedi, eeprom->eedo);
685 if (!old_eecs && eecs)
687 /* Synchronize start */
688 eeprom->tick = 0;
689 eeprom->input = 0;
690 eeprom->output = 0;
691 eeprom->mode = Chip9346_enter_command_mode;
693 DPRINTF("=== eeprom: begin access, enter command mode\n");
696 if (!eecs)
698 DPRINTF("=== eeprom: end access\n");
699 return;
702 if (!old_eesk && eesk)
704 /* SK front rules */
705 prom9346_shift_clock(eeprom);
709 static void rtl8139_update_irq(RTL8139State *s)
711 PCIDevice *d = PCI_DEVICE(s);
712 int isr;
713 isr = (s->IntrStatus & s->IntrMask) & 0xffff;
715 DPRINTF("Set IRQ to %d (%04x %04x)\n", isr ? 1 : 0, s->IntrStatus,
716 s->IntrMask);
718 pci_set_irq(d, (isr != 0));
721 static int rtl8139_RxWrap(RTL8139State *s)
723 /* wrapping enabled; assume 1.5k more buffer space if size < 65536 */
724 return (s->RxConfig & (1 << 7));
727 static int rtl8139_receiver_enabled(RTL8139State *s)
729 return s->bChipCmdState & CmdRxEnb;
732 static int rtl8139_transmitter_enabled(RTL8139State *s)
734 return s->bChipCmdState & CmdTxEnb;
737 static int rtl8139_cp_receiver_enabled(RTL8139State *s)
739 return s->CpCmd & CPlusRxEnb;
742 static int rtl8139_cp_transmitter_enabled(RTL8139State *s)
744 return s->CpCmd & CPlusTxEnb;
747 static void rtl8139_write_buffer(RTL8139State *s, const void *buf, int size)
749 PCIDevice *d = PCI_DEVICE(s);
751 if (s->RxBufAddr + size > s->RxBufferSize)
753 int wrapped = MOD2(s->RxBufAddr + size, s->RxBufferSize);
755 /* write packet data */
756 if (wrapped && !(s->RxBufferSize < 65536 && rtl8139_RxWrap(s)))
758 DPRINTF(">>> rx packet wrapped in buffer at %d\n", size - wrapped);
760 if (size > wrapped)
762 pci_dma_write(d, s->RxBuf + s->RxBufAddr,
763 buf, size-wrapped);
766 /* reset buffer pointer */
767 s->RxBufAddr = 0;
769 pci_dma_write(d, s->RxBuf + s->RxBufAddr,
770 buf + (size-wrapped), wrapped);
772 s->RxBufAddr = wrapped;
774 return;
778 /* non-wrapping path or overwrapping enabled */
779 pci_dma_write(d, s->RxBuf + s->RxBufAddr, buf, size);
781 s->RxBufAddr += size;
784 #define MIN_BUF_SIZE 60
785 static inline dma_addr_t rtl8139_addr64(uint32_t low, uint32_t high)
787 return low | ((uint64_t)high << 32);
790 /* Workaround for buggy guest driver such as linux who allocates rx
791 * rings after the receiver were enabled. */
792 static bool rtl8139_cp_rx_valid(RTL8139State *s)
794 return !(s->RxRingAddrLO == 0 && s->RxRingAddrHI == 0);
797 static int rtl8139_can_receive(NetClientState *nc)
799 RTL8139State *s = qemu_get_nic_opaque(nc);
800 int avail;
802 /* Receive (drop) packets if card is disabled. */
803 if (!s->clock_enabled)
804 return 1;
805 if (!rtl8139_receiver_enabled(s))
806 return 1;
808 if (rtl8139_cp_receiver_enabled(s) && rtl8139_cp_rx_valid(s)) {
809 /* ??? Flow control not implemented in c+ mode.
810 This is a hack to work around slirp deficiencies anyway. */
811 return 1;
812 } else {
813 avail = MOD2(s->RxBufferSize + s->RxBufPtr - s->RxBufAddr,
814 s->RxBufferSize);
815 return (avail == 0 || avail >= 1514 || (s->IntrMask & RxOverflow));
819 static ssize_t rtl8139_do_receive(NetClientState *nc, const uint8_t *buf, size_t size_, int do_interrupt)
821 RTL8139State *s = qemu_get_nic_opaque(nc);
822 PCIDevice *d = PCI_DEVICE(s);
823 /* size is the length of the buffer passed to the driver */
824 int size = size_;
825 const uint8_t *dot1q_buf = NULL;
827 uint32_t packet_header = 0;
829 uint8_t buf1[MIN_BUF_SIZE + VLAN_HLEN];
830 static const uint8_t broadcast_macaddr[6] =
831 { 0xff, 0xff, 0xff, 0xff, 0xff, 0xff };
833 DPRINTF(">>> received len=%d\n", size);
835 /* test if board clock is stopped */
836 if (!s->clock_enabled)
838 DPRINTF("stopped ==========================\n");
839 return -1;
842 /* first check if receiver is enabled */
844 if (!rtl8139_receiver_enabled(s))
846 DPRINTF("receiver disabled ================\n");
847 return -1;
850 /* XXX: check this */
851 if (s->RxConfig & AcceptAllPhys) {
852 /* promiscuous: receive all */
853 DPRINTF(">>> packet received in promiscuous mode\n");
855 } else {
856 if (!memcmp(buf, broadcast_macaddr, 6)) {
857 /* broadcast address */
858 if (!(s->RxConfig & AcceptBroadcast))
860 DPRINTF(">>> broadcast packet rejected\n");
862 /* update tally counter */
863 ++s->tally_counters.RxERR;
865 return size;
868 packet_header |= RxBroadcast;
870 DPRINTF(">>> broadcast packet received\n");
872 /* update tally counter */
873 ++s->tally_counters.RxOkBrd;
875 } else if (buf[0] & 0x01) {
876 /* multicast */
877 if (!(s->RxConfig & AcceptMulticast))
879 DPRINTF(">>> multicast packet rejected\n");
881 /* update tally counter */
882 ++s->tally_counters.RxERR;
884 return size;
887 int mcast_idx = compute_mcast_idx(buf);
889 if (!(s->mult[mcast_idx >> 3] & (1 << (mcast_idx & 7))))
891 DPRINTF(">>> multicast address mismatch\n");
893 /* update tally counter */
894 ++s->tally_counters.RxERR;
896 return size;
899 packet_header |= RxMulticast;
901 DPRINTF(">>> multicast packet received\n");
903 /* update tally counter */
904 ++s->tally_counters.RxOkMul;
906 } else if (s->phys[0] == buf[0] &&
907 s->phys[1] == buf[1] &&
908 s->phys[2] == buf[2] &&
909 s->phys[3] == buf[3] &&
910 s->phys[4] == buf[4] &&
911 s->phys[5] == buf[5]) {
912 /* match */
913 if (!(s->RxConfig & AcceptMyPhys))
915 DPRINTF(">>> rejecting physical address matching packet\n");
917 /* update tally counter */
918 ++s->tally_counters.RxERR;
920 return size;
923 packet_header |= RxPhysical;
925 DPRINTF(">>> physical address matching packet received\n");
927 /* update tally counter */
928 ++s->tally_counters.RxOkPhy;
930 } else {
932 DPRINTF(">>> unknown packet\n");
934 /* update tally counter */
935 ++s->tally_counters.RxERR;
937 return size;
941 /* if too small buffer, then expand it
942 * Include some tailroom in case a vlan tag is later removed. */
943 if (size < MIN_BUF_SIZE + VLAN_HLEN) {
944 memcpy(buf1, buf, size);
945 memset(buf1 + size, 0, MIN_BUF_SIZE + VLAN_HLEN - size);
946 buf = buf1;
947 if (size < MIN_BUF_SIZE) {
948 size = MIN_BUF_SIZE;
952 if (rtl8139_cp_receiver_enabled(s))
954 if (!rtl8139_cp_rx_valid(s)) {
955 return size;
958 DPRINTF("in C+ Rx mode ================\n");
960 /* begin C+ receiver mode */
962 /* w0 ownership flag */
963 #define CP_RX_OWN (1<<31)
964 /* w0 end of ring flag */
965 #define CP_RX_EOR (1<<30)
966 /* w0 bits 0...12 : buffer size */
967 #define CP_RX_BUFFER_SIZE_MASK ((1<<13) - 1)
968 /* w1 tag available flag */
969 #define CP_RX_TAVA (1<<16)
970 /* w1 bits 0...15 : VLAN tag */
971 #define CP_RX_VLAN_TAG_MASK ((1<<16) - 1)
972 /* w2 low 32bit of Rx buffer ptr */
973 /* w3 high 32bit of Rx buffer ptr */
975 int descriptor = s->currCPlusRxDesc;
976 dma_addr_t cplus_rx_ring_desc;
978 cplus_rx_ring_desc = rtl8139_addr64(s->RxRingAddrLO, s->RxRingAddrHI);
979 cplus_rx_ring_desc += 16 * descriptor;
981 DPRINTF("+++ C+ mode reading RX descriptor %d from host memory at "
982 "%08x %08x = "DMA_ADDR_FMT"\n", descriptor, s->RxRingAddrHI,
983 s->RxRingAddrLO, cplus_rx_ring_desc);
985 uint32_t val, rxdw0,rxdw1,rxbufLO,rxbufHI;
987 pci_dma_read(d, cplus_rx_ring_desc, &val, 4);
988 rxdw0 = le32_to_cpu(val);
989 pci_dma_read(d, cplus_rx_ring_desc+4, &val, 4);
990 rxdw1 = le32_to_cpu(val);
991 pci_dma_read(d, cplus_rx_ring_desc+8, &val, 4);
992 rxbufLO = le32_to_cpu(val);
993 pci_dma_read(d, cplus_rx_ring_desc+12, &val, 4);
994 rxbufHI = le32_to_cpu(val);
996 DPRINTF("+++ C+ mode RX descriptor %d %08x %08x %08x %08x\n",
997 descriptor, rxdw0, rxdw1, rxbufLO, rxbufHI);
999 if (!(rxdw0 & CP_RX_OWN))
1001 DPRINTF("C+ Rx mode : descriptor %d is owned by host\n",
1002 descriptor);
1004 s->IntrStatus |= RxOverflow;
1005 ++s->RxMissed;
1007 /* update tally counter */
1008 ++s->tally_counters.RxERR;
1009 ++s->tally_counters.MissPkt;
1011 rtl8139_update_irq(s);
1012 return size_;
1015 uint32_t rx_space = rxdw0 & CP_RX_BUFFER_SIZE_MASK;
1017 /* write VLAN info to descriptor variables. */
1018 if (s->CpCmd & CPlusRxVLAN && be16_to_cpup((uint16_t *)
1019 &buf[ETHER_ADDR_LEN * 2]) == ETH_P_8021Q) {
1020 dot1q_buf = &buf[ETHER_ADDR_LEN * 2];
1021 size -= VLAN_HLEN;
1022 /* if too small buffer, use the tailroom added duing expansion */
1023 if (size < MIN_BUF_SIZE) {
1024 size = MIN_BUF_SIZE;
1027 rxdw1 &= ~CP_RX_VLAN_TAG_MASK;
1028 /* BE + ~le_to_cpu()~ + cpu_to_le() = BE */
1029 rxdw1 |= CP_RX_TAVA | le16_to_cpup((uint16_t *)
1030 &dot1q_buf[ETHER_TYPE_LEN]);
1032 DPRINTF("C+ Rx mode : extracted vlan tag with tci: ""%u\n",
1033 be16_to_cpup((uint16_t *)&dot1q_buf[ETHER_TYPE_LEN]));
1034 } else {
1035 /* reset VLAN tag flag */
1036 rxdw1 &= ~CP_RX_TAVA;
1039 /* TODO: scatter the packet over available receive ring descriptors space */
1041 if (size+4 > rx_space)
1043 DPRINTF("C+ Rx mode : descriptor %d size %d received %d + 4\n",
1044 descriptor, rx_space, size);
1046 s->IntrStatus |= RxOverflow;
1047 ++s->RxMissed;
1049 /* update tally counter */
1050 ++s->tally_counters.RxERR;
1051 ++s->tally_counters.MissPkt;
1053 rtl8139_update_irq(s);
1054 return size_;
1057 dma_addr_t rx_addr = rtl8139_addr64(rxbufLO, rxbufHI);
1059 /* receive/copy to target memory */
1060 if (dot1q_buf) {
1061 pci_dma_write(d, rx_addr, buf, 2 * ETHER_ADDR_LEN);
1062 pci_dma_write(d, rx_addr + 2 * ETHER_ADDR_LEN,
1063 buf + 2 * ETHER_ADDR_LEN + VLAN_HLEN,
1064 size - 2 * ETHER_ADDR_LEN);
1065 } else {
1066 pci_dma_write(d, rx_addr, buf, size);
1069 if (s->CpCmd & CPlusRxChkSum)
1071 /* do some packet checksumming */
1074 /* write checksum */
1075 val = cpu_to_le32(crc32(0, buf, size_));
1076 pci_dma_write(d, rx_addr+size, (uint8_t *)&val, 4);
1078 /* first segment of received packet flag */
1079 #define CP_RX_STATUS_FS (1<<29)
1080 /* last segment of received packet flag */
1081 #define CP_RX_STATUS_LS (1<<28)
1082 /* multicast packet flag */
1083 #define CP_RX_STATUS_MAR (1<<26)
1084 /* physical-matching packet flag */
1085 #define CP_RX_STATUS_PAM (1<<25)
1086 /* broadcast packet flag */
1087 #define CP_RX_STATUS_BAR (1<<24)
1088 /* runt packet flag */
1089 #define CP_RX_STATUS_RUNT (1<<19)
1090 /* crc error flag */
1091 #define CP_RX_STATUS_CRC (1<<18)
1092 /* IP checksum error flag */
1093 #define CP_RX_STATUS_IPF (1<<15)
1094 /* UDP checksum error flag */
1095 #define CP_RX_STATUS_UDPF (1<<14)
1096 /* TCP checksum error flag */
1097 #define CP_RX_STATUS_TCPF (1<<13)
1099 /* transfer ownership to target */
1100 rxdw0 &= ~CP_RX_OWN;
1102 /* set first segment bit */
1103 rxdw0 |= CP_RX_STATUS_FS;
1105 /* set last segment bit */
1106 rxdw0 |= CP_RX_STATUS_LS;
1108 /* set received packet type flags */
1109 if (packet_header & RxBroadcast)
1110 rxdw0 |= CP_RX_STATUS_BAR;
1111 if (packet_header & RxMulticast)
1112 rxdw0 |= CP_RX_STATUS_MAR;
1113 if (packet_header & RxPhysical)
1114 rxdw0 |= CP_RX_STATUS_PAM;
1116 /* set received size */
1117 rxdw0 &= ~CP_RX_BUFFER_SIZE_MASK;
1118 rxdw0 |= (size+4);
1120 /* update ring data */
1121 val = cpu_to_le32(rxdw0);
1122 pci_dma_write(d, cplus_rx_ring_desc, (uint8_t *)&val, 4);
1123 val = cpu_to_le32(rxdw1);
1124 pci_dma_write(d, cplus_rx_ring_desc+4, (uint8_t *)&val, 4);
1126 /* update tally counter */
1127 ++s->tally_counters.RxOk;
1129 /* seek to next Rx descriptor */
1130 if (rxdw0 & CP_RX_EOR)
1132 s->currCPlusRxDesc = 0;
1134 else
1136 ++s->currCPlusRxDesc;
1139 DPRINTF("done C+ Rx mode ----------------\n");
1142 else
1144 DPRINTF("in ring Rx mode ================\n");
1146 /* begin ring receiver mode */
1147 int avail = MOD2(s->RxBufferSize + s->RxBufPtr - s->RxBufAddr, s->RxBufferSize);
1149 /* if receiver buffer is empty then avail == 0 */
1151 if (avail != 0 && size + 8 >= avail)
1153 DPRINTF("rx overflow: rx buffer length %d head 0x%04x "
1154 "read 0x%04x === available 0x%04x need 0x%04x\n",
1155 s->RxBufferSize, s->RxBufAddr, s->RxBufPtr, avail, size + 8);
1157 s->IntrStatus |= RxOverflow;
1158 ++s->RxMissed;
1159 rtl8139_update_irq(s);
1160 return size_;
1163 packet_header |= RxStatusOK;
1165 packet_header |= (((size+4) << 16) & 0xffff0000);
1167 /* write header */
1168 uint32_t val = cpu_to_le32(packet_header);
1170 rtl8139_write_buffer(s, (uint8_t *)&val, 4);
1172 rtl8139_write_buffer(s, buf, size);
1174 /* write checksum */
1175 val = cpu_to_le32(crc32(0, buf, size));
1176 rtl8139_write_buffer(s, (uint8_t *)&val, 4);
1178 /* correct buffer write pointer */
1179 s->RxBufAddr = MOD2((s->RxBufAddr + 3) & ~0x3, s->RxBufferSize);
1181 /* now we can signal we have received something */
1183 DPRINTF("received: rx buffer length %d head 0x%04x read 0x%04x\n",
1184 s->RxBufferSize, s->RxBufAddr, s->RxBufPtr);
1187 s->IntrStatus |= RxOK;
1189 if (do_interrupt)
1191 rtl8139_update_irq(s);
1194 return size_;
1197 static ssize_t rtl8139_receive(NetClientState *nc, const uint8_t *buf, size_t size)
1199 return rtl8139_do_receive(nc, buf, size, 1);
1202 static void rtl8139_reset_rxring(RTL8139State *s, uint32_t bufferSize)
1204 s->RxBufferSize = bufferSize;
1205 s->RxBufPtr = 0;
1206 s->RxBufAddr = 0;
1209 static void rtl8139_reset(DeviceState *d)
1211 RTL8139State *s = RTL8139(d);
1212 int i;
1214 /* restore MAC address */
1215 memcpy(s->phys, s->conf.macaddr.a, 6);
1216 qemu_format_nic_info_str(qemu_get_queue(s->nic), s->phys);
1218 /* reset interrupt mask */
1219 s->IntrStatus = 0;
1220 s->IntrMask = 0;
1222 rtl8139_update_irq(s);
1224 /* mark all status registers as owned by host */
1225 for (i = 0; i < 4; ++i)
1227 s->TxStatus[i] = TxHostOwns;
1230 s->currTxDesc = 0;
1231 s->currCPlusRxDesc = 0;
1232 s->currCPlusTxDesc = 0;
1234 s->RxRingAddrLO = 0;
1235 s->RxRingAddrHI = 0;
1237 s->RxBuf = 0;
1239 rtl8139_reset_rxring(s, 8192);
1241 /* ACK the reset */
1242 s->TxConfig = 0;
1244 #if 0
1245 // s->TxConfig |= HW_REVID(1, 0, 0, 0, 0, 0, 0); // RTL-8139 HasHltClk
1246 s->clock_enabled = 0;
1247 #else
1248 s->TxConfig |= HW_REVID(1, 1, 1, 0, 1, 1, 0); // RTL-8139C+ HasLWake
1249 s->clock_enabled = 1;
1250 #endif
1252 s->bChipCmdState = CmdReset; /* RxBufEmpty bit is calculated on read from ChipCmd */;
1254 /* set initial state data */
1255 s->Config0 = 0x0; /* No boot ROM */
1256 s->Config1 = 0xC; /* IO mapped and MEM mapped registers available */
1257 s->Config3 = 0x1; /* fast back-to-back compatible */
1258 s->Config5 = 0x0;
1260 s->CSCR = CSCR_F_LINK_100 | CSCR_HEART_BIT | CSCR_LD;
1262 s->CpCmd = 0x0; /* reset C+ mode */
1263 s->cplus_enabled = 0;
1266 // s->BasicModeCtrl = 0x3100; // 100Mbps, full duplex, autonegotiation
1267 // s->BasicModeCtrl = 0x2100; // 100Mbps, full duplex
1268 s->BasicModeCtrl = 0x1000; // autonegotiation
1270 s->BasicModeStatus = 0x7809;
1271 //s->BasicModeStatus |= 0x0040; /* UTP medium */
1272 s->BasicModeStatus |= 0x0020; /* autonegotiation completed */
1273 /* preserve link state */
1274 s->BasicModeStatus |= qemu_get_queue(s->nic)->link_down ? 0 : 0x04;
1276 s->NWayAdvert = 0x05e1; /* all modes, full duplex */
1277 s->NWayLPAR = 0x05e1; /* all modes, full duplex */
1278 s->NWayExpansion = 0x0001; /* autonegotiation supported */
1280 /* also reset timer and disable timer interrupt */
1281 s->TCTR = 0;
1282 s->TimerInt = 0;
1283 s->TCTR_base = 0;
1284 rtl8139_set_next_tctr_time(s);
1286 /* reset tally counters */
1287 RTL8139TallyCounters_clear(&s->tally_counters);
1290 static void RTL8139TallyCounters_clear(RTL8139TallyCounters* counters)
1292 counters->TxOk = 0;
1293 counters->RxOk = 0;
1294 counters->TxERR = 0;
1295 counters->RxERR = 0;
1296 counters->MissPkt = 0;
1297 counters->FAE = 0;
1298 counters->Tx1Col = 0;
1299 counters->TxMCol = 0;
1300 counters->RxOkPhy = 0;
1301 counters->RxOkBrd = 0;
1302 counters->RxOkMul = 0;
1303 counters->TxAbt = 0;
1304 counters->TxUndrn = 0;
1307 static void RTL8139TallyCounters_dma_write(RTL8139State *s, dma_addr_t tc_addr)
1309 PCIDevice *d = PCI_DEVICE(s);
1310 RTL8139TallyCounters *tally_counters = &s->tally_counters;
1311 uint16_t val16;
1312 uint32_t val32;
1313 uint64_t val64;
1315 val64 = cpu_to_le64(tally_counters->TxOk);
1316 pci_dma_write(d, tc_addr + 0, (uint8_t *)&val64, 8);
1318 val64 = cpu_to_le64(tally_counters->RxOk);
1319 pci_dma_write(d, tc_addr + 8, (uint8_t *)&val64, 8);
1321 val64 = cpu_to_le64(tally_counters->TxERR);
1322 pci_dma_write(d, tc_addr + 16, (uint8_t *)&val64, 8);
1324 val32 = cpu_to_le32(tally_counters->RxERR);
1325 pci_dma_write(d, tc_addr + 24, (uint8_t *)&val32, 4);
1327 val16 = cpu_to_le16(tally_counters->MissPkt);
1328 pci_dma_write(d, tc_addr + 28, (uint8_t *)&val16, 2);
1330 val16 = cpu_to_le16(tally_counters->FAE);
1331 pci_dma_write(d, tc_addr + 30, (uint8_t *)&val16, 2);
1333 val32 = cpu_to_le32(tally_counters->Tx1Col);
1334 pci_dma_write(d, tc_addr + 32, (uint8_t *)&val32, 4);
1336 val32 = cpu_to_le32(tally_counters->TxMCol);
1337 pci_dma_write(d, tc_addr + 36, (uint8_t *)&val32, 4);
1339 val64 = cpu_to_le64(tally_counters->RxOkPhy);
1340 pci_dma_write(d, tc_addr + 40, (uint8_t *)&val64, 8);
1342 val64 = cpu_to_le64(tally_counters->RxOkBrd);
1343 pci_dma_write(d, tc_addr + 48, (uint8_t *)&val64, 8);
1345 val32 = cpu_to_le32(tally_counters->RxOkMul);
1346 pci_dma_write(d, tc_addr + 56, (uint8_t *)&val32, 4);
1348 val16 = cpu_to_le16(tally_counters->TxAbt);
1349 pci_dma_write(d, tc_addr + 60, (uint8_t *)&val16, 2);
1351 val16 = cpu_to_le16(tally_counters->TxUndrn);
1352 pci_dma_write(d, tc_addr + 62, (uint8_t *)&val16, 2);
1355 /* Loads values of tally counters from VM state file */
1357 static const VMStateDescription vmstate_tally_counters = {
1358 .name = "tally_counters",
1359 .version_id = 1,
1360 .minimum_version_id = 1,
1361 .fields = (VMStateField[]) {
1362 VMSTATE_UINT64(TxOk, RTL8139TallyCounters),
1363 VMSTATE_UINT64(RxOk, RTL8139TallyCounters),
1364 VMSTATE_UINT64(TxERR, RTL8139TallyCounters),
1365 VMSTATE_UINT32(RxERR, RTL8139TallyCounters),
1366 VMSTATE_UINT16(MissPkt, RTL8139TallyCounters),
1367 VMSTATE_UINT16(FAE, RTL8139TallyCounters),
1368 VMSTATE_UINT32(Tx1Col, RTL8139TallyCounters),
1369 VMSTATE_UINT32(TxMCol, RTL8139TallyCounters),
1370 VMSTATE_UINT64(RxOkPhy, RTL8139TallyCounters),
1371 VMSTATE_UINT64(RxOkBrd, RTL8139TallyCounters),
1372 VMSTATE_UINT16(TxAbt, RTL8139TallyCounters),
1373 VMSTATE_UINT16(TxUndrn, RTL8139TallyCounters),
1374 VMSTATE_END_OF_LIST()
1378 static void rtl8139_ChipCmd_write(RTL8139State *s, uint32_t val)
1380 DeviceState *d = DEVICE(s);
1382 val &= 0xff;
1384 DPRINTF("ChipCmd write val=0x%08x\n", val);
1386 if (val & CmdReset)
1388 DPRINTF("ChipCmd reset\n");
1389 rtl8139_reset(d);
1391 if (val & CmdRxEnb)
1393 DPRINTF("ChipCmd enable receiver\n");
1395 s->currCPlusRxDesc = 0;
1397 if (val & CmdTxEnb)
1399 DPRINTF("ChipCmd enable transmitter\n");
1401 s->currCPlusTxDesc = 0;
1404 /* mask unwritable bits */
1405 val = SET_MASKED(val, 0xe3, s->bChipCmdState);
1407 /* Deassert reset pin before next read */
1408 val &= ~CmdReset;
1410 s->bChipCmdState = val;
1413 static int rtl8139_RxBufferEmpty(RTL8139State *s)
1415 int unread = MOD2(s->RxBufferSize + s->RxBufAddr - s->RxBufPtr, s->RxBufferSize);
1417 if (unread != 0)
1419 DPRINTF("receiver buffer data available 0x%04x\n", unread);
1420 return 0;
1423 DPRINTF("receiver buffer is empty\n");
1425 return 1;
1428 static uint32_t rtl8139_ChipCmd_read(RTL8139State *s)
1430 uint32_t ret = s->bChipCmdState;
1432 if (rtl8139_RxBufferEmpty(s))
1433 ret |= RxBufEmpty;
1435 DPRINTF("ChipCmd read val=0x%04x\n", ret);
1437 return ret;
1440 static void rtl8139_CpCmd_write(RTL8139State *s, uint32_t val)
1442 val &= 0xffff;
1444 DPRINTF("C+ command register write(w) val=0x%04x\n", val);
1446 s->cplus_enabled = 1;
1448 /* mask unwritable bits */
1449 val = SET_MASKED(val, 0xff84, s->CpCmd);
1451 s->CpCmd = val;
1454 static uint32_t rtl8139_CpCmd_read(RTL8139State *s)
1456 uint32_t ret = s->CpCmd;
1458 DPRINTF("C+ command register read(w) val=0x%04x\n", ret);
1460 return ret;
1463 static void rtl8139_IntrMitigate_write(RTL8139State *s, uint32_t val)
1465 DPRINTF("C+ IntrMitigate register write(w) val=0x%04x\n", val);
1468 static uint32_t rtl8139_IntrMitigate_read(RTL8139State *s)
1470 uint32_t ret = 0;
1472 DPRINTF("C+ IntrMitigate register read(w) val=0x%04x\n", ret);
1474 return ret;
1477 static int rtl8139_config_writable(RTL8139State *s)
1479 if ((s->Cfg9346 & Chip9346_op_mask) == Cfg9346_ConfigWrite)
1481 return 1;
1484 DPRINTF("Configuration registers are write-protected\n");
1486 return 0;
1489 static void rtl8139_BasicModeCtrl_write(RTL8139State *s, uint32_t val)
1491 val &= 0xffff;
1493 DPRINTF("BasicModeCtrl register write(w) val=0x%04x\n", val);
1495 /* mask unwritable bits */
1496 uint32_t mask = 0x4cff;
1498 if (1 || !rtl8139_config_writable(s))
1500 /* Speed setting and autonegotiation enable bits are read-only */
1501 mask |= 0x3000;
1502 /* Duplex mode setting is read-only */
1503 mask |= 0x0100;
1506 val = SET_MASKED(val, mask, s->BasicModeCtrl);
1508 s->BasicModeCtrl = val;
1511 static uint32_t rtl8139_BasicModeCtrl_read(RTL8139State *s)
1513 uint32_t ret = s->BasicModeCtrl;
1515 DPRINTF("BasicModeCtrl register read(w) val=0x%04x\n", ret);
1517 return ret;
1520 static void rtl8139_BasicModeStatus_write(RTL8139State *s, uint32_t val)
1522 val &= 0xffff;
1524 DPRINTF("BasicModeStatus register write(w) val=0x%04x\n", val);
1526 /* mask unwritable bits */
1527 val = SET_MASKED(val, 0xff3f, s->BasicModeStatus);
1529 s->BasicModeStatus = val;
1532 static uint32_t rtl8139_BasicModeStatus_read(RTL8139State *s)
1534 uint32_t ret = s->BasicModeStatus;
1536 DPRINTF("BasicModeStatus register read(w) val=0x%04x\n", ret);
1538 return ret;
1541 static void rtl8139_Cfg9346_write(RTL8139State *s, uint32_t val)
1543 DeviceState *d = DEVICE(s);
1545 val &= 0xff;
1547 DPRINTF("Cfg9346 write val=0x%02x\n", val);
1549 /* mask unwritable bits */
1550 val = SET_MASKED(val, 0x31, s->Cfg9346);
1552 uint32_t opmode = val & 0xc0;
1553 uint32_t eeprom_val = val & 0xf;
1555 if (opmode == 0x80) {
1556 /* eeprom access */
1557 int eecs = (eeprom_val & 0x08)?1:0;
1558 int eesk = (eeprom_val & 0x04)?1:0;
1559 int eedi = (eeprom_val & 0x02)?1:0;
1560 prom9346_set_wire(s, eecs, eesk, eedi);
1561 } else if (opmode == 0x40) {
1562 /* Reset. */
1563 val = 0;
1564 rtl8139_reset(d);
1567 s->Cfg9346 = val;
1570 static uint32_t rtl8139_Cfg9346_read(RTL8139State *s)
1572 uint32_t ret = s->Cfg9346;
1574 uint32_t opmode = ret & 0xc0;
1576 if (opmode == 0x80)
1578 /* eeprom access */
1579 int eedo = prom9346_get_wire(s);
1580 if (eedo)
1582 ret |= 0x01;
1584 else
1586 ret &= ~0x01;
1590 DPRINTF("Cfg9346 read val=0x%02x\n", ret);
1592 return ret;
1595 static void rtl8139_Config0_write(RTL8139State *s, uint32_t val)
1597 val &= 0xff;
1599 DPRINTF("Config0 write val=0x%02x\n", val);
1601 if (!rtl8139_config_writable(s)) {
1602 return;
1605 /* mask unwritable bits */
1606 val = SET_MASKED(val, 0xf8, s->Config0);
1608 s->Config0 = val;
1611 static uint32_t rtl8139_Config0_read(RTL8139State *s)
1613 uint32_t ret = s->Config0;
1615 DPRINTF("Config0 read val=0x%02x\n", ret);
1617 return ret;
1620 static void rtl8139_Config1_write(RTL8139State *s, uint32_t val)
1622 val &= 0xff;
1624 DPRINTF("Config1 write val=0x%02x\n", val);
1626 if (!rtl8139_config_writable(s)) {
1627 return;
1630 /* mask unwritable bits */
1631 val = SET_MASKED(val, 0xC, s->Config1);
1633 s->Config1 = val;
1636 static uint32_t rtl8139_Config1_read(RTL8139State *s)
1638 uint32_t ret = s->Config1;
1640 DPRINTF("Config1 read val=0x%02x\n", ret);
1642 return ret;
1645 static void rtl8139_Config3_write(RTL8139State *s, uint32_t val)
1647 val &= 0xff;
1649 DPRINTF("Config3 write val=0x%02x\n", val);
1651 if (!rtl8139_config_writable(s)) {
1652 return;
1655 /* mask unwritable bits */
1656 val = SET_MASKED(val, 0x8F, s->Config3);
1658 s->Config3 = val;
1661 static uint32_t rtl8139_Config3_read(RTL8139State *s)
1663 uint32_t ret = s->Config3;
1665 DPRINTF("Config3 read val=0x%02x\n", ret);
1667 return ret;
1670 static void rtl8139_Config4_write(RTL8139State *s, uint32_t val)
1672 val &= 0xff;
1674 DPRINTF("Config4 write val=0x%02x\n", val);
1676 if (!rtl8139_config_writable(s)) {
1677 return;
1680 /* mask unwritable bits */
1681 val = SET_MASKED(val, 0x0a, s->Config4);
1683 s->Config4 = val;
1686 static uint32_t rtl8139_Config4_read(RTL8139State *s)
1688 uint32_t ret = s->Config4;
1690 DPRINTF("Config4 read val=0x%02x\n", ret);
1692 return ret;
1695 static void rtl8139_Config5_write(RTL8139State *s, uint32_t val)
1697 val &= 0xff;
1699 DPRINTF("Config5 write val=0x%02x\n", val);
1701 /* mask unwritable bits */
1702 val = SET_MASKED(val, 0x80, s->Config5);
1704 s->Config5 = val;
1707 static uint32_t rtl8139_Config5_read(RTL8139State *s)
1709 uint32_t ret = s->Config5;
1711 DPRINTF("Config5 read val=0x%02x\n", ret);
1713 return ret;
1716 static void rtl8139_TxConfig_write(RTL8139State *s, uint32_t val)
1718 if (!rtl8139_transmitter_enabled(s))
1720 DPRINTF("transmitter disabled; no TxConfig write val=0x%08x\n", val);
1721 return;
1724 DPRINTF("TxConfig write val=0x%08x\n", val);
1726 val = SET_MASKED(val, TxVersionMask | 0x8070f80f, s->TxConfig);
1728 s->TxConfig = val;
1731 static void rtl8139_TxConfig_writeb(RTL8139State *s, uint32_t val)
1733 DPRINTF("RTL8139C TxConfig via write(b) val=0x%02x\n", val);
1735 uint32_t tc = s->TxConfig;
1736 tc &= 0xFFFFFF00;
1737 tc |= (val & 0x000000FF);
1738 rtl8139_TxConfig_write(s, tc);
1741 static uint32_t rtl8139_TxConfig_read(RTL8139State *s)
1743 uint32_t ret = s->TxConfig;
1745 DPRINTF("TxConfig read val=0x%04x\n", ret);
1747 return ret;
1750 static void rtl8139_RxConfig_write(RTL8139State *s, uint32_t val)
1752 DPRINTF("RxConfig write val=0x%08x\n", val);
1754 /* mask unwritable bits */
1755 val = SET_MASKED(val, 0xf0fc0040, s->RxConfig);
1757 s->RxConfig = val;
1759 /* reset buffer size and read/write pointers */
1760 rtl8139_reset_rxring(s, 8192 << ((s->RxConfig >> 11) & 0x3));
1762 DPRINTF("RxConfig write reset buffer size to %d\n", s->RxBufferSize);
1765 static uint32_t rtl8139_RxConfig_read(RTL8139State *s)
1767 uint32_t ret = s->RxConfig;
1769 DPRINTF("RxConfig read val=0x%08x\n", ret);
1771 return ret;
1774 static void rtl8139_transfer_frame(RTL8139State *s, uint8_t *buf, int size,
1775 int do_interrupt, const uint8_t *dot1q_buf)
1777 struct iovec *iov = NULL;
1778 struct iovec vlan_iov[3];
1780 if (!size)
1782 DPRINTF("+++ empty ethernet frame\n");
1783 return;
1786 if (dot1q_buf && size >= ETHER_ADDR_LEN * 2) {
1787 iov = (struct iovec[3]) {
1788 { .iov_base = buf, .iov_len = ETHER_ADDR_LEN * 2 },
1789 { .iov_base = (void *) dot1q_buf, .iov_len = VLAN_HLEN },
1790 { .iov_base = buf + ETHER_ADDR_LEN * 2,
1791 .iov_len = size - ETHER_ADDR_LEN * 2 },
1794 memcpy(vlan_iov, iov, sizeof(vlan_iov));
1795 iov = vlan_iov;
1798 if (TxLoopBack == (s->TxConfig & TxLoopBack))
1800 size_t buf2_size;
1801 uint8_t *buf2;
1803 if (iov) {
1804 buf2_size = iov_size(iov, 3);
1805 buf2 = g_malloc(buf2_size);
1806 iov_to_buf(iov, 3, 0, buf2, buf2_size);
1807 buf = buf2;
1810 DPRINTF("+++ transmit loopback mode\n");
1811 rtl8139_do_receive(qemu_get_queue(s->nic), buf, size, do_interrupt);
1813 if (iov) {
1814 g_free(buf2);
1817 else
1819 if (iov) {
1820 qemu_sendv_packet(qemu_get_queue(s->nic), iov, 3);
1821 } else {
1822 qemu_send_packet(qemu_get_queue(s->nic), buf, size);
1827 static int rtl8139_transmit_one(RTL8139State *s, int descriptor)
1829 if (!rtl8139_transmitter_enabled(s))
1831 DPRINTF("+++ cannot transmit from descriptor %d: transmitter "
1832 "disabled\n", descriptor);
1833 return 0;
1836 if (s->TxStatus[descriptor] & TxHostOwns)
1838 DPRINTF("+++ cannot transmit from descriptor %d: owned by host "
1839 "(%08x)\n", descriptor, s->TxStatus[descriptor]);
1840 return 0;
1843 DPRINTF("+++ transmitting from descriptor %d\n", descriptor);
1845 PCIDevice *d = PCI_DEVICE(s);
1846 int txsize = s->TxStatus[descriptor] & 0x1fff;
1847 uint8_t txbuffer[0x2000];
1849 DPRINTF("+++ transmit reading %d bytes from host memory at 0x%08x\n",
1850 txsize, s->TxAddr[descriptor]);
1852 pci_dma_read(d, s->TxAddr[descriptor], txbuffer, txsize);
1854 /* Mark descriptor as transferred */
1855 s->TxStatus[descriptor] |= TxHostOwns;
1856 s->TxStatus[descriptor] |= TxStatOK;
1858 rtl8139_transfer_frame(s, txbuffer, txsize, 0, NULL);
1860 DPRINTF("+++ transmitted %d bytes from descriptor %d\n", txsize,
1861 descriptor);
1863 /* update interrupt */
1864 s->IntrStatus |= TxOK;
1865 rtl8139_update_irq(s);
1867 return 1;
1870 /* structures and macros for task offloading */
1871 typedef struct ip_header
1873 uint8_t ip_ver_len; /* version and header length */
1874 uint8_t ip_tos; /* type of service */
1875 uint16_t ip_len; /* total length */
1876 uint16_t ip_id; /* identification */
1877 uint16_t ip_off; /* fragment offset field */
1878 uint8_t ip_ttl; /* time to live */
1879 uint8_t ip_p; /* protocol */
1880 uint16_t ip_sum; /* checksum */
1881 uint32_t ip_src,ip_dst; /* source and dest address */
1882 } ip_header;
1884 #define IP_HEADER_VERSION_4 4
1885 #define IP_HEADER_VERSION(ip) ((ip->ip_ver_len >> 4)&0xf)
1886 #define IP_HEADER_LENGTH(ip) (((ip->ip_ver_len)&0xf) << 2)
1888 typedef struct tcp_header
1890 uint16_t th_sport; /* source port */
1891 uint16_t th_dport; /* destination port */
1892 uint32_t th_seq; /* sequence number */
1893 uint32_t th_ack; /* acknowledgement number */
1894 uint16_t th_offset_flags; /* data offset, reserved 6 bits, TCP protocol flags */
1895 uint16_t th_win; /* window */
1896 uint16_t th_sum; /* checksum */
1897 uint16_t th_urp; /* urgent pointer */
1898 } tcp_header;
1900 typedef struct udp_header
1902 uint16_t uh_sport; /* source port */
1903 uint16_t uh_dport; /* destination port */
1904 uint16_t uh_ulen; /* udp length */
1905 uint16_t uh_sum; /* udp checksum */
1906 } udp_header;
1908 typedef struct ip_pseudo_header
1910 uint32_t ip_src;
1911 uint32_t ip_dst;
1912 uint8_t zeros;
1913 uint8_t ip_proto;
1914 uint16_t ip_payload;
1915 } ip_pseudo_header;
1917 #define IP_PROTO_TCP 6
1918 #define IP_PROTO_UDP 17
1920 #define TCP_HEADER_DATA_OFFSET(tcp) (((be16_to_cpu(tcp->th_offset_flags) >> 12)&0xf) << 2)
1921 #define TCP_FLAGS_ONLY(flags) ((flags)&0x3f)
1922 #define TCP_HEADER_FLAGS(tcp) TCP_FLAGS_ONLY(be16_to_cpu(tcp->th_offset_flags))
1924 #define TCP_HEADER_CLEAR_FLAGS(tcp, off) ((tcp)->th_offset_flags &= cpu_to_be16(~TCP_FLAGS_ONLY(off)))
1926 #define TCP_FLAG_FIN 0x01
1927 #define TCP_FLAG_PUSH 0x08
1929 /* produces ones' complement sum of data */
1930 static uint16_t ones_complement_sum(uint8_t *data, size_t len)
1932 uint32_t result = 0;
1934 for (; len > 1; data+=2, len-=2)
1936 result += *(uint16_t*)data;
1939 /* add the remainder byte */
1940 if (len)
1942 uint8_t odd[2] = {*data, 0};
1943 result += *(uint16_t*)odd;
1946 while (result>>16)
1947 result = (result & 0xffff) + (result >> 16);
1949 return result;
1952 static uint16_t ip_checksum(void *data, size_t len)
1954 return ~ones_complement_sum((uint8_t*)data, len);
1957 static int rtl8139_cplus_transmit_one(RTL8139State *s)
1959 if (!rtl8139_transmitter_enabled(s))
1961 DPRINTF("+++ C+ mode: transmitter disabled\n");
1962 return 0;
1965 if (!rtl8139_cp_transmitter_enabled(s))
1967 DPRINTF("+++ C+ mode: C+ transmitter disabled\n");
1968 return 0 ;
1971 PCIDevice *d = PCI_DEVICE(s);
1972 int descriptor = s->currCPlusTxDesc;
1974 dma_addr_t cplus_tx_ring_desc = rtl8139_addr64(s->TxAddr[0], s->TxAddr[1]);
1976 /* Normal priority ring */
1977 cplus_tx_ring_desc += 16 * descriptor;
1979 DPRINTF("+++ C+ mode reading TX descriptor %d from host memory at "
1980 "%08x %08x = 0x"DMA_ADDR_FMT"\n", descriptor, s->TxAddr[1],
1981 s->TxAddr[0], cplus_tx_ring_desc);
1983 uint32_t val, txdw0,txdw1,txbufLO,txbufHI;
1985 pci_dma_read(d, cplus_tx_ring_desc, (uint8_t *)&val, 4);
1986 txdw0 = le32_to_cpu(val);
1987 pci_dma_read(d, cplus_tx_ring_desc+4, (uint8_t *)&val, 4);
1988 txdw1 = le32_to_cpu(val);
1989 pci_dma_read(d, cplus_tx_ring_desc+8, (uint8_t *)&val, 4);
1990 txbufLO = le32_to_cpu(val);
1991 pci_dma_read(d, cplus_tx_ring_desc+12, (uint8_t *)&val, 4);
1992 txbufHI = le32_to_cpu(val);
1994 DPRINTF("+++ C+ mode TX descriptor %d %08x %08x %08x %08x\n", descriptor,
1995 txdw0, txdw1, txbufLO, txbufHI);
1997 /* w0 ownership flag */
1998 #define CP_TX_OWN (1<<31)
1999 /* w0 end of ring flag */
2000 #define CP_TX_EOR (1<<30)
2001 /* first segment of received packet flag */
2002 #define CP_TX_FS (1<<29)
2003 /* last segment of received packet flag */
2004 #define CP_TX_LS (1<<28)
2005 /* large send packet flag */
2006 #define CP_TX_LGSEN (1<<27)
2007 /* large send MSS mask, bits 16...25 */
2008 #define CP_TC_LGSEN_MSS_MASK ((1 << 12) - 1)
2010 /* IP checksum offload flag */
2011 #define CP_TX_IPCS (1<<18)
2012 /* UDP checksum offload flag */
2013 #define CP_TX_UDPCS (1<<17)
2014 /* TCP checksum offload flag */
2015 #define CP_TX_TCPCS (1<<16)
2017 /* w0 bits 0...15 : buffer size */
2018 #define CP_TX_BUFFER_SIZE (1<<16)
2019 #define CP_TX_BUFFER_SIZE_MASK (CP_TX_BUFFER_SIZE - 1)
2020 /* w1 add tag flag */
2021 #define CP_TX_TAGC (1<<17)
2022 /* w1 bits 0...15 : VLAN tag (big endian) */
2023 #define CP_TX_VLAN_TAG_MASK ((1<<16) - 1)
2024 /* w2 low 32bit of Rx buffer ptr */
2025 /* w3 high 32bit of Rx buffer ptr */
2027 /* set after transmission */
2028 /* FIFO underrun flag */
2029 #define CP_TX_STATUS_UNF (1<<25)
2030 /* transmit error summary flag, valid if set any of three below */
2031 #define CP_TX_STATUS_TES (1<<23)
2032 /* out-of-window collision flag */
2033 #define CP_TX_STATUS_OWC (1<<22)
2034 /* link failure flag */
2035 #define CP_TX_STATUS_LNKF (1<<21)
2036 /* excessive collisions flag */
2037 #define CP_TX_STATUS_EXC (1<<20)
2039 if (!(txdw0 & CP_TX_OWN))
2041 DPRINTF("C+ Tx mode : descriptor %d is owned by host\n", descriptor);
2042 return 0 ;
2045 DPRINTF("+++ C+ Tx mode : transmitting from descriptor %d\n", descriptor);
2047 if (txdw0 & CP_TX_FS)
2049 DPRINTF("+++ C+ Tx mode : descriptor %d is first segment "
2050 "descriptor\n", descriptor);
2052 /* reset internal buffer offset */
2053 s->cplus_txbuffer_offset = 0;
2056 int txsize = txdw0 & CP_TX_BUFFER_SIZE_MASK;
2057 dma_addr_t tx_addr = rtl8139_addr64(txbufLO, txbufHI);
2059 /* make sure we have enough space to assemble the packet */
2060 if (!s->cplus_txbuffer)
2062 s->cplus_txbuffer_len = CP_TX_BUFFER_SIZE;
2063 s->cplus_txbuffer = g_malloc(s->cplus_txbuffer_len);
2064 s->cplus_txbuffer_offset = 0;
2066 DPRINTF("+++ C+ mode transmission buffer allocated space %d\n",
2067 s->cplus_txbuffer_len);
2070 if (s->cplus_txbuffer_offset + txsize >= s->cplus_txbuffer_len)
2072 /* The spec didn't tell the maximum size, stick to CP_TX_BUFFER_SIZE */
2073 txsize = s->cplus_txbuffer_len - s->cplus_txbuffer_offset;
2074 DPRINTF("+++ C+ mode transmission buffer overrun, truncated descriptor"
2075 "length to %d\n", txsize);
2078 if (!s->cplus_txbuffer)
2080 /* out of memory */
2082 DPRINTF("+++ C+ mode transmiter failed to reallocate %d bytes\n",
2083 s->cplus_txbuffer_len);
2085 /* update tally counter */
2086 ++s->tally_counters.TxERR;
2087 ++s->tally_counters.TxAbt;
2089 return 0;
2092 /* append more data to the packet */
2094 DPRINTF("+++ C+ mode transmit reading %d bytes from host memory at "
2095 DMA_ADDR_FMT" to offset %d\n", txsize, tx_addr,
2096 s->cplus_txbuffer_offset);
2098 pci_dma_read(d, tx_addr,
2099 s->cplus_txbuffer + s->cplus_txbuffer_offset, txsize);
2100 s->cplus_txbuffer_offset += txsize;
2102 /* seek to next Rx descriptor */
2103 if (txdw0 & CP_TX_EOR)
2105 s->currCPlusTxDesc = 0;
2107 else
2109 ++s->currCPlusTxDesc;
2110 if (s->currCPlusTxDesc >= 64)
2111 s->currCPlusTxDesc = 0;
2114 /* transfer ownership to target */
2115 txdw0 &= ~CP_RX_OWN;
2117 /* reset error indicator bits */
2118 txdw0 &= ~CP_TX_STATUS_UNF;
2119 txdw0 &= ~CP_TX_STATUS_TES;
2120 txdw0 &= ~CP_TX_STATUS_OWC;
2121 txdw0 &= ~CP_TX_STATUS_LNKF;
2122 txdw0 &= ~CP_TX_STATUS_EXC;
2124 /* update ring data */
2125 val = cpu_to_le32(txdw0);
2126 pci_dma_write(d, cplus_tx_ring_desc, (uint8_t *)&val, 4);
2128 /* Now decide if descriptor being processed is holding the last segment of packet */
2129 if (txdw0 & CP_TX_LS)
2131 uint8_t dot1q_buffer_space[VLAN_HLEN];
2132 uint16_t *dot1q_buffer;
2134 DPRINTF("+++ C+ Tx mode : descriptor %d is last segment descriptor\n",
2135 descriptor);
2137 /* can transfer fully assembled packet */
2139 uint8_t *saved_buffer = s->cplus_txbuffer;
2140 int saved_size = s->cplus_txbuffer_offset;
2141 int saved_buffer_len = s->cplus_txbuffer_len;
2143 /* create vlan tag */
2144 if (txdw1 & CP_TX_TAGC) {
2145 /* the vlan tag is in BE byte order in the descriptor
2146 * BE + le_to_cpu() + ~swap()~ = cpu */
2147 DPRINTF("+++ C+ Tx mode : inserting vlan tag with ""tci: %u\n",
2148 bswap16(txdw1 & CP_TX_VLAN_TAG_MASK));
2150 dot1q_buffer = (uint16_t *) dot1q_buffer_space;
2151 dot1q_buffer[0] = cpu_to_be16(ETH_P_8021Q);
2152 /* BE + le_to_cpu() + ~cpu_to_le()~ = BE */
2153 dot1q_buffer[1] = cpu_to_le16(txdw1 & CP_TX_VLAN_TAG_MASK);
2154 } else {
2155 dot1q_buffer = NULL;
2158 /* reset the card space to protect from recursive call */
2159 s->cplus_txbuffer = NULL;
2160 s->cplus_txbuffer_offset = 0;
2161 s->cplus_txbuffer_len = 0;
2163 if (txdw0 & (CP_TX_IPCS | CP_TX_UDPCS | CP_TX_TCPCS | CP_TX_LGSEN))
2165 DPRINTF("+++ C+ mode offloaded task checksum\n");
2167 /* ip packet header */
2168 ip_header *ip = NULL;
2169 int hlen = 0;
2170 uint8_t ip_protocol = 0;
2171 uint16_t ip_data_len = 0;
2173 uint8_t *eth_payload_data = NULL;
2174 size_t eth_payload_len = 0;
2176 int proto = be16_to_cpu(*(uint16_t *)(saved_buffer + 12));
2177 if (proto == ETH_P_IP)
2179 DPRINTF("+++ C+ mode has IP packet\n");
2181 /* not aligned */
2182 eth_payload_data = saved_buffer + ETH_HLEN;
2183 eth_payload_len = saved_size - ETH_HLEN;
2185 ip = (ip_header*)eth_payload_data;
2187 if (IP_HEADER_VERSION(ip) != IP_HEADER_VERSION_4) {
2188 DPRINTF("+++ C+ mode packet has bad IP version %d "
2189 "expected %d\n", IP_HEADER_VERSION(ip),
2190 IP_HEADER_VERSION_4);
2191 ip = NULL;
2192 } else {
2193 hlen = IP_HEADER_LENGTH(ip);
2194 ip_protocol = ip->ip_p;
2195 ip_data_len = be16_to_cpu(ip->ip_len) - hlen;
2199 if (ip)
2201 if (txdw0 & CP_TX_IPCS)
2203 DPRINTF("+++ C+ mode need IP checksum\n");
2205 if (hlen<sizeof(ip_header) || hlen>eth_payload_len) {/* min header length */
2206 /* bad packet header len */
2207 /* or packet too short */
2209 else
2211 ip->ip_sum = 0;
2212 ip->ip_sum = ip_checksum(ip, hlen);
2213 DPRINTF("+++ C+ mode IP header len=%d checksum=%04x\n",
2214 hlen, ip->ip_sum);
2218 if ((txdw0 & CP_TX_LGSEN) && ip_protocol == IP_PROTO_TCP)
2220 int large_send_mss = (txdw0 >> 16) & CP_TC_LGSEN_MSS_MASK;
2222 DPRINTF("+++ C+ mode offloaded task TSO MTU=%d IP data %d "
2223 "frame data %d specified MSS=%d\n", ETH_MTU,
2224 ip_data_len, saved_size - ETH_HLEN, large_send_mss);
2226 int tcp_send_offset = 0;
2227 int send_count = 0;
2229 /* maximum IP header length is 60 bytes */
2230 uint8_t saved_ip_header[60];
2232 /* save IP header template; data area is used in tcp checksum calculation */
2233 memcpy(saved_ip_header, eth_payload_data, hlen);
2235 /* a placeholder for checksum calculation routine in tcp case */
2236 uint8_t *data_to_checksum = eth_payload_data + hlen - 12;
2237 // size_t data_to_checksum_len = eth_payload_len - hlen + 12;
2239 /* pointer to TCP header */
2240 tcp_header *p_tcp_hdr = (tcp_header*)(eth_payload_data + hlen);
2242 int tcp_hlen = TCP_HEADER_DATA_OFFSET(p_tcp_hdr);
2244 /* ETH_MTU = ip header len + tcp header len + payload */
2245 int tcp_data_len = ip_data_len - tcp_hlen;
2246 int tcp_chunk_size = ETH_MTU - hlen - tcp_hlen;
2248 DPRINTF("+++ C+ mode TSO IP data len %d TCP hlen %d TCP "
2249 "data len %d TCP chunk size %d\n", ip_data_len,
2250 tcp_hlen, tcp_data_len, tcp_chunk_size);
2252 /* note the cycle below overwrites IP header data,
2253 but restores it from saved_ip_header before sending packet */
2255 int is_last_frame = 0;
2257 for (tcp_send_offset = 0; tcp_send_offset < tcp_data_len; tcp_send_offset += tcp_chunk_size)
2259 uint16_t chunk_size = tcp_chunk_size;
2261 /* check if this is the last frame */
2262 if (tcp_send_offset + tcp_chunk_size >= tcp_data_len)
2264 is_last_frame = 1;
2265 chunk_size = tcp_data_len - tcp_send_offset;
2268 DPRINTF("+++ C+ mode TSO TCP seqno %08x\n",
2269 be32_to_cpu(p_tcp_hdr->th_seq));
2271 /* add 4 TCP pseudoheader fields */
2272 /* copy IP source and destination fields */
2273 memcpy(data_to_checksum, saved_ip_header + 12, 8);
2275 DPRINTF("+++ C+ mode TSO calculating TCP checksum for "
2276 "packet with %d bytes data\n", tcp_hlen +
2277 chunk_size);
2279 if (tcp_send_offset)
2281 memcpy((uint8_t*)p_tcp_hdr + tcp_hlen, (uint8_t*)p_tcp_hdr + tcp_hlen + tcp_send_offset, chunk_size);
2284 /* keep PUSH and FIN flags only for the last frame */
2285 if (!is_last_frame)
2287 TCP_HEADER_CLEAR_FLAGS(p_tcp_hdr, TCP_FLAG_PUSH|TCP_FLAG_FIN);
2290 /* recalculate TCP checksum */
2291 ip_pseudo_header *p_tcpip_hdr = (ip_pseudo_header *)data_to_checksum;
2292 p_tcpip_hdr->zeros = 0;
2293 p_tcpip_hdr->ip_proto = IP_PROTO_TCP;
2294 p_tcpip_hdr->ip_payload = cpu_to_be16(tcp_hlen + chunk_size);
2296 p_tcp_hdr->th_sum = 0;
2298 int tcp_checksum = ip_checksum(data_to_checksum, tcp_hlen + chunk_size + 12);
2299 DPRINTF("+++ C+ mode TSO TCP checksum %04x\n",
2300 tcp_checksum);
2302 p_tcp_hdr->th_sum = tcp_checksum;
2304 /* restore IP header */
2305 memcpy(eth_payload_data, saved_ip_header, hlen);
2307 /* set IP data length and recalculate IP checksum */
2308 ip->ip_len = cpu_to_be16(hlen + tcp_hlen + chunk_size);
2310 /* increment IP id for subsequent frames */
2311 ip->ip_id = cpu_to_be16(tcp_send_offset/tcp_chunk_size + be16_to_cpu(ip->ip_id));
2313 ip->ip_sum = 0;
2314 ip->ip_sum = ip_checksum(eth_payload_data, hlen);
2315 DPRINTF("+++ C+ mode TSO IP header len=%d "
2316 "checksum=%04x\n", hlen, ip->ip_sum);
2318 int tso_send_size = ETH_HLEN + hlen + tcp_hlen + chunk_size;
2319 DPRINTF("+++ C+ mode TSO transferring packet size "
2320 "%d\n", tso_send_size);
2321 rtl8139_transfer_frame(s, saved_buffer, tso_send_size,
2322 0, (uint8_t *) dot1q_buffer);
2324 /* add transferred count to TCP sequence number */
2325 p_tcp_hdr->th_seq = cpu_to_be32(chunk_size + be32_to_cpu(p_tcp_hdr->th_seq));
2326 ++send_count;
2329 /* Stop sending this frame */
2330 saved_size = 0;
2332 else if (txdw0 & (CP_TX_TCPCS|CP_TX_UDPCS))
2334 DPRINTF("+++ C+ mode need TCP or UDP checksum\n");
2336 /* maximum IP header length is 60 bytes */
2337 uint8_t saved_ip_header[60];
2338 memcpy(saved_ip_header, eth_payload_data, hlen);
2340 uint8_t *data_to_checksum = eth_payload_data + hlen - 12;
2341 // size_t data_to_checksum_len = eth_payload_len - hlen + 12;
2343 /* add 4 TCP pseudoheader fields */
2344 /* copy IP source and destination fields */
2345 memcpy(data_to_checksum, saved_ip_header + 12, 8);
2347 if ((txdw0 & CP_TX_TCPCS) && ip_protocol == IP_PROTO_TCP)
2349 DPRINTF("+++ C+ mode calculating TCP checksum for "
2350 "packet with %d bytes data\n", ip_data_len);
2352 ip_pseudo_header *p_tcpip_hdr = (ip_pseudo_header *)data_to_checksum;
2353 p_tcpip_hdr->zeros = 0;
2354 p_tcpip_hdr->ip_proto = IP_PROTO_TCP;
2355 p_tcpip_hdr->ip_payload = cpu_to_be16(ip_data_len);
2357 tcp_header* p_tcp_hdr = (tcp_header *) (data_to_checksum+12);
2359 p_tcp_hdr->th_sum = 0;
2361 int tcp_checksum = ip_checksum(data_to_checksum, ip_data_len + 12);
2362 DPRINTF("+++ C+ mode TCP checksum %04x\n",
2363 tcp_checksum);
2365 p_tcp_hdr->th_sum = tcp_checksum;
2367 else if ((txdw0 & CP_TX_UDPCS) && ip_protocol == IP_PROTO_UDP)
2369 DPRINTF("+++ C+ mode calculating UDP checksum for "
2370 "packet with %d bytes data\n", ip_data_len);
2372 ip_pseudo_header *p_udpip_hdr = (ip_pseudo_header *)data_to_checksum;
2373 p_udpip_hdr->zeros = 0;
2374 p_udpip_hdr->ip_proto = IP_PROTO_UDP;
2375 p_udpip_hdr->ip_payload = cpu_to_be16(ip_data_len);
2377 udp_header *p_udp_hdr = (udp_header *) (data_to_checksum+12);
2379 p_udp_hdr->uh_sum = 0;
2381 int udp_checksum = ip_checksum(data_to_checksum, ip_data_len + 12);
2382 DPRINTF("+++ C+ mode UDP checksum %04x\n",
2383 udp_checksum);
2385 p_udp_hdr->uh_sum = udp_checksum;
2388 /* restore IP header */
2389 memcpy(eth_payload_data, saved_ip_header, hlen);
2394 /* update tally counter */
2395 ++s->tally_counters.TxOk;
2397 DPRINTF("+++ C+ mode transmitting %d bytes packet\n", saved_size);
2399 rtl8139_transfer_frame(s, saved_buffer, saved_size, 1,
2400 (uint8_t *) dot1q_buffer);
2402 /* restore card space if there was no recursion and reset offset */
2403 if (!s->cplus_txbuffer)
2405 s->cplus_txbuffer = saved_buffer;
2406 s->cplus_txbuffer_len = saved_buffer_len;
2407 s->cplus_txbuffer_offset = 0;
2409 else
2411 g_free(saved_buffer);
2414 else
2416 DPRINTF("+++ C+ mode transmission continue to next descriptor\n");
2419 return 1;
2422 static void rtl8139_cplus_transmit(RTL8139State *s)
2424 int txcount = 0;
2426 while (rtl8139_cplus_transmit_one(s))
2428 ++txcount;
2431 /* Mark transfer completed */
2432 if (!txcount)
2434 DPRINTF("C+ mode : transmitter queue stalled, current TxDesc = %d\n",
2435 s->currCPlusTxDesc);
2437 else
2439 /* update interrupt status */
2440 s->IntrStatus |= TxOK;
2441 rtl8139_update_irq(s);
2445 static void rtl8139_transmit(RTL8139State *s)
2447 int descriptor = s->currTxDesc, txcount = 0;
2449 /*while*/
2450 if (rtl8139_transmit_one(s, descriptor))
2452 ++s->currTxDesc;
2453 s->currTxDesc %= 4;
2454 ++txcount;
2457 /* Mark transfer completed */
2458 if (!txcount)
2460 DPRINTF("transmitter queue stalled, current TxDesc = %d\n",
2461 s->currTxDesc);
2465 static void rtl8139_TxStatus_write(RTL8139State *s, uint32_t txRegOffset, uint32_t val)
2468 int descriptor = txRegOffset/4;
2470 /* handle C+ transmit mode register configuration */
2472 if (s->cplus_enabled)
2474 DPRINTF("RTL8139C+ DTCCR write offset=0x%x val=0x%08x "
2475 "descriptor=%d\n", txRegOffset, val, descriptor);
2477 /* handle Dump Tally Counters command */
2478 s->TxStatus[descriptor] = val;
2480 if (descriptor == 0 && (val & 0x8))
2482 hwaddr tc_addr = rtl8139_addr64(s->TxStatus[0] & ~0x3f, s->TxStatus[1]);
2484 /* dump tally counters to specified memory location */
2485 RTL8139TallyCounters_dma_write(s, tc_addr);
2487 /* mark dump completed */
2488 s->TxStatus[0] &= ~0x8;
2491 return;
2494 DPRINTF("TxStatus write offset=0x%x val=0x%08x descriptor=%d\n",
2495 txRegOffset, val, descriptor);
2497 /* mask only reserved bits */
2498 val &= ~0xff00c000; /* these bits are reset on write */
2499 val = SET_MASKED(val, 0x00c00000, s->TxStatus[descriptor]);
2501 s->TxStatus[descriptor] = val;
2503 /* attempt to start transmission */
2504 rtl8139_transmit(s);
2507 static uint32_t rtl8139_TxStatus_TxAddr_read(RTL8139State *s, uint32_t regs[],
2508 uint32_t base, uint8_t addr,
2509 int size)
2511 uint32_t reg = (addr - base) / 4;
2512 uint32_t offset = addr & 0x3;
2513 uint32_t ret = 0;
2515 if (addr & (size - 1)) {
2516 DPRINTF("not implemented read for TxStatus/TxAddr "
2517 "addr=0x%x size=0x%x\n", addr, size);
2518 return ret;
2521 switch (size) {
2522 case 1: /* fall through */
2523 case 2: /* fall through */
2524 case 4:
2525 ret = (regs[reg] >> offset * 8) & (((uint64_t)1 << (size * 8)) - 1);
2526 DPRINTF("TxStatus/TxAddr[%d] read addr=0x%x size=0x%x val=0x%08x\n",
2527 reg, addr, size, ret);
2528 break;
2529 default:
2530 DPRINTF("unsupported size 0x%x of TxStatus/TxAddr reading\n", size);
2531 break;
2534 return ret;
2537 static uint16_t rtl8139_TSAD_read(RTL8139State *s)
2539 uint16_t ret = 0;
2541 /* Simulate TSAD, it is read only anyway */
2543 ret = ((s->TxStatus[3] & TxStatOK )?TSAD_TOK3:0)
2544 |((s->TxStatus[2] & TxStatOK )?TSAD_TOK2:0)
2545 |((s->TxStatus[1] & TxStatOK )?TSAD_TOK1:0)
2546 |((s->TxStatus[0] & TxStatOK )?TSAD_TOK0:0)
2548 |((s->TxStatus[3] & TxUnderrun)?TSAD_TUN3:0)
2549 |((s->TxStatus[2] & TxUnderrun)?TSAD_TUN2:0)
2550 |((s->TxStatus[1] & TxUnderrun)?TSAD_TUN1:0)
2551 |((s->TxStatus[0] & TxUnderrun)?TSAD_TUN0:0)
2553 |((s->TxStatus[3] & TxAborted )?TSAD_TABT3:0)
2554 |((s->TxStatus[2] & TxAborted )?TSAD_TABT2:0)
2555 |((s->TxStatus[1] & TxAborted )?TSAD_TABT1:0)
2556 |((s->TxStatus[0] & TxAborted )?TSAD_TABT0:0)
2558 |((s->TxStatus[3] & TxHostOwns )?TSAD_OWN3:0)
2559 |((s->TxStatus[2] & TxHostOwns )?TSAD_OWN2:0)
2560 |((s->TxStatus[1] & TxHostOwns )?TSAD_OWN1:0)
2561 |((s->TxStatus[0] & TxHostOwns )?TSAD_OWN0:0) ;
2564 DPRINTF("TSAD read val=0x%04x\n", ret);
2566 return ret;
2569 static uint16_t rtl8139_CSCR_read(RTL8139State *s)
2571 uint16_t ret = s->CSCR;
2573 DPRINTF("CSCR read val=0x%04x\n", ret);
2575 return ret;
2578 static void rtl8139_TxAddr_write(RTL8139State *s, uint32_t txAddrOffset, uint32_t val)
2580 DPRINTF("TxAddr write offset=0x%x val=0x%08x\n", txAddrOffset, val);
2582 s->TxAddr[txAddrOffset/4] = val;
2585 static uint32_t rtl8139_TxAddr_read(RTL8139State *s, uint32_t txAddrOffset)
2587 uint32_t ret = s->TxAddr[txAddrOffset/4];
2589 DPRINTF("TxAddr read offset=0x%x val=0x%08x\n", txAddrOffset, ret);
2591 return ret;
2594 static void rtl8139_RxBufPtr_write(RTL8139State *s, uint32_t val)
2596 DPRINTF("RxBufPtr write val=0x%04x\n", val);
2598 /* this value is off by 16 */
2599 s->RxBufPtr = MOD2(val + 0x10, s->RxBufferSize);
2601 /* more buffer space may be available so try to receive */
2602 qemu_flush_queued_packets(qemu_get_queue(s->nic));
2604 DPRINTF(" CAPR write: rx buffer length %d head 0x%04x read 0x%04x\n",
2605 s->RxBufferSize, s->RxBufAddr, s->RxBufPtr);
2608 static uint32_t rtl8139_RxBufPtr_read(RTL8139State *s)
2610 /* this value is off by 16 */
2611 uint32_t ret = s->RxBufPtr - 0x10;
2613 DPRINTF("RxBufPtr read val=0x%04x\n", ret);
2615 return ret;
2618 static uint32_t rtl8139_RxBufAddr_read(RTL8139State *s)
2620 /* this value is NOT off by 16 */
2621 uint32_t ret = s->RxBufAddr;
2623 DPRINTF("RxBufAddr read val=0x%04x\n", ret);
2625 return ret;
2628 static void rtl8139_RxBuf_write(RTL8139State *s, uint32_t val)
2630 DPRINTF("RxBuf write val=0x%08x\n", val);
2632 s->RxBuf = val;
2634 /* may need to reset rxring here */
2637 static uint32_t rtl8139_RxBuf_read(RTL8139State *s)
2639 uint32_t ret = s->RxBuf;
2641 DPRINTF("RxBuf read val=0x%08x\n", ret);
2643 return ret;
2646 static void rtl8139_IntrMask_write(RTL8139State *s, uint32_t val)
2648 DPRINTF("IntrMask write(w) val=0x%04x\n", val);
2650 /* mask unwritable bits */
2651 val = SET_MASKED(val, 0x1e00, s->IntrMask);
2653 s->IntrMask = val;
2655 rtl8139_update_irq(s);
2659 static uint32_t rtl8139_IntrMask_read(RTL8139State *s)
2661 uint32_t ret = s->IntrMask;
2663 DPRINTF("IntrMask read(w) val=0x%04x\n", ret);
2665 return ret;
2668 static void rtl8139_IntrStatus_write(RTL8139State *s, uint32_t val)
2670 DPRINTF("IntrStatus write(w) val=0x%04x\n", val);
2672 #if 0
2674 /* writing to ISR has no effect */
2676 return;
2678 #else
2679 uint16_t newStatus = s->IntrStatus & ~val;
2681 /* mask unwritable bits */
2682 newStatus = SET_MASKED(newStatus, 0x1e00, s->IntrStatus);
2684 /* writing 1 to interrupt status register bit clears it */
2685 s->IntrStatus = 0;
2686 rtl8139_update_irq(s);
2688 s->IntrStatus = newStatus;
2689 rtl8139_set_next_tctr_time(s);
2690 rtl8139_update_irq(s);
2692 #endif
2695 static uint32_t rtl8139_IntrStatus_read(RTL8139State *s)
2697 uint32_t ret = s->IntrStatus;
2699 DPRINTF("IntrStatus read(w) val=0x%04x\n", ret);
2701 #if 0
2703 /* reading ISR clears all interrupts */
2704 s->IntrStatus = 0;
2706 rtl8139_update_irq(s);
2708 #endif
2710 return ret;
2713 static void rtl8139_MultiIntr_write(RTL8139State *s, uint32_t val)
2715 DPRINTF("MultiIntr write(w) val=0x%04x\n", val);
2717 /* mask unwritable bits */
2718 val = SET_MASKED(val, 0xf000, s->MultiIntr);
2720 s->MultiIntr = val;
2723 static uint32_t rtl8139_MultiIntr_read(RTL8139State *s)
2725 uint32_t ret = s->MultiIntr;
2727 DPRINTF("MultiIntr read(w) val=0x%04x\n", ret);
2729 return ret;
2732 static void rtl8139_io_writeb(void *opaque, uint8_t addr, uint32_t val)
2734 RTL8139State *s = opaque;
2736 switch (addr)
2738 case MAC0 ... MAC0+4:
2739 s->phys[addr - MAC0] = val;
2740 break;
2741 case MAC0+5:
2742 s->phys[addr - MAC0] = val;
2743 qemu_format_nic_info_str(qemu_get_queue(s->nic), s->phys);
2744 break;
2745 case MAC0+6 ... MAC0+7:
2746 /* reserved */
2747 break;
2748 case MAR0 ... MAR0+7:
2749 s->mult[addr - MAR0] = val;
2750 break;
2751 case ChipCmd:
2752 rtl8139_ChipCmd_write(s, val);
2753 break;
2754 case Cfg9346:
2755 rtl8139_Cfg9346_write(s, val);
2756 break;
2757 case TxConfig: /* windows driver sometimes writes using byte-lenth call */
2758 rtl8139_TxConfig_writeb(s, val);
2759 break;
2760 case Config0:
2761 rtl8139_Config0_write(s, val);
2762 break;
2763 case Config1:
2764 rtl8139_Config1_write(s, val);
2765 break;
2766 case Config3:
2767 rtl8139_Config3_write(s, val);
2768 break;
2769 case Config4:
2770 rtl8139_Config4_write(s, val);
2771 break;
2772 case Config5:
2773 rtl8139_Config5_write(s, val);
2774 break;
2775 case MediaStatus:
2776 /* ignore */
2777 DPRINTF("not implemented write(b) to MediaStatus val=0x%02x\n",
2778 val);
2779 break;
2781 case HltClk:
2782 DPRINTF("HltClk write val=0x%08x\n", val);
2783 if (val == 'R')
2785 s->clock_enabled = 1;
2787 else if (val == 'H')
2789 s->clock_enabled = 0;
2791 break;
2793 case TxThresh:
2794 DPRINTF("C+ TxThresh write(b) val=0x%02x\n", val);
2795 s->TxThresh = val;
2796 break;
2798 case TxPoll:
2799 DPRINTF("C+ TxPoll write(b) val=0x%02x\n", val);
2800 if (val & (1 << 7))
2802 DPRINTF("C+ TxPoll high priority transmission (not "
2803 "implemented)\n");
2804 //rtl8139_cplus_transmit(s);
2806 if (val & (1 << 6))
2808 DPRINTF("C+ TxPoll normal priority transmission\n");
2809 rtl8139_cplus_transmit(s);
2812 break;
2814 default:
2815 DPRINTF("not implemented write(b) addr=0x%x val=0x%02x\n", addr,
2816 val);
2817 break;
2821 static void rtl8139_io_writew(void *opaque, uint8_t addr, uint32_t val)
2823 RTL8139State *s = opaque;
2825 switch (addr)
2827 case IntrMask:
2828 rtl8139_IntrMask_write(s, val);
2829 break;
2831 case IntrStatus:
2832 rtl8139_IntrStatus_write(s, val);
2833 break;
2835 case MultiIntr:
2836 rtl8139_MultiIntr_write(s, val);
2837 break;
2839 case RxBufPtr:
2840 rtl8139_RxBufPtr_write(s, val);
2841 break;
2843 case BasicModeCtrl:
2844 rtl8139_BasicModeCtrl_write(s, val);
2845 break;
2846 case BasicModeStatus:
2847 rtl8139_BasicModeStatus_write(s, val);
2848 break;
2849 case NWayAdvert:
2850 DPRINTF("NWayAdvert write(w) val=0x%04x\n", val);
2851 s->NWayAdvert = val;
2852 break;
2853 case NWayLPAR:
2854 DPRINTF("forbidden NWayLPAR write(w) val=0x%04x\n", val);
2855 break;
2856 case NWayExpansion:
2857 DPRINTF("NWayExpansion write(w) val=0x%04x\n", val);
2858 s->NWayExpansion = val;
2859 break;
2861 case CpCmd:
2862 rtl8139_CpCmd_write(s, val);
2863 break;
2865 case IntrMitigate:
2866 rtl8139_IntrMitigate_write(s, val);
2867 break;
2869 default:
2870 DPRINTF("ioport write(w) addr=0x%x val=0x%04x via write(b)\n",
2871 addr, val);
2873 rtl8139_io_writeb(opaque, addr, val & 0xff);
2874 rtl8139_io_writeb(opaque, addr + 1, (val >> 8) & 0xff);
2875 break;
2879 static void rtl8139_set_next_tctr_time(RTL8139State *s)
2881 const uint64_t ns_per_period =
2882 muldiv64(0x100000000LL, get_ticks_per_sec(), PCI_FREQUENCY);
2884 DPRINTF("entered rtl8139_set_next_tctr_time\n");
2886 /* This function is called at least once per period, so it is a good
2887 * place to update the timer base.
2889 * After one iteration of this loop the value in the Timer register does
2890 * not change, but the device model is counting up by 2^32 ticks (approx.
2891 * 130 seconds).
2893 while (s->TCTR_base + ns_per_period <= qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL)) {
2894 s->TCTR_base += ns_per_period;
2897 if (!s->TimerInt) {
2898 timer_del(s->timer);
2899 } else {
2900 uint64_t delta = muldiv64(s->TimerInt, get_ticks_per_sec(), PCI_FREQUENCY);
2901 if (s->TCTR_base + delta <= qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL)) {
2902 delta += ns_per_period;
2904 timer_mod(s->timer, s->TCTR_base + delta);
2908 static void rtl8139_io_writel(void *opaque, uint8_t addr, uint32_t val)
2910 RTL8139State *s = opaque;
2912 switch (addr)
2914 case RxMissed:
2915 DPRINTF("RxMissed clearing on write\n");
2916 s->RxMissed = 0;
2917 break;
2919 case TxConfig:
2920 rtl8139_TxConfig_write(s, val);
2921 break;
2923 case RxConfig:
2924 rtl8139_RxConfig_write(s, val);
2925 break;
2927 case TxStatus0 ... TxStatus0+4*4-1:
2928 rtl8139_TxStatus_write(s, addr-TxStatus0, val);
2929 break;
2931 case TxAddr0 ... TxAddr0+4*4-1:
2932 rtl8139_TxAddr_write(s, addr-TxAddr0, val);
2933 break;
2935 case RxBuf:
2936 rtl8139_RxBuf_write(s, val);
2937 break;
2939 case RxRingAddrLO:
2940 DPRINTF("C+ RxRing low bits write val=0x%08x\n", val);
2941 s->RxRingAddrLO = val;
2942 break;
2944 case RxRingAddrHI:
2945 DPRINTF("C+ RxRing high bits write val=0x%08x\n", val);
2946 s->RxRingAddrHI = val;
2947 break;
2949 case Timer:
2950 DPRINTF("TCTR Timer reset on write\n");
2951 s->TCTR_base = qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL);
2952 rtl8139_set_next_tctr_time(s);
2953 break;
2955 case FlashReg:
2956 DPRINTF("FlashReg TimerInt write val=0x%08x\n", val);
2957 if (s->TimerInt != val) {
2958 s->TimerInt = val;
2959 rtl8139_set_next_tctr_time(s);
2961 break;
2963 default:
2964 DPRINTF("ioport write(l) addr=0x%x val=0x%08x via write(b)\n",
2965 addr, val);
2966 rtl8139_io_writeb(opaque, addr, val & 0xff);
2967 rtl8139_io_writeb(opaque, addr + 1, (val >> 8) & 0xff);
2968 rtl8139_io_writeb(opaque, addr + 2, (val >> 16) & 0xff);
2969 rtl8139_io_writeb(opaque, addr + 3, (val >> 24) & 0xff);
2970 break;
2974 static uint32_t rtl8139_io_readb(void *opaque, uint8_t addr)
2976 RTL8139State *s = opaque;
2977 int ret;
2979 switch (addr)
2981 case MAC0 ... MAC0+5:
2982 ret = s->phys[addr - MAC0];
2983 break;
2984 case MAC0+6 ... MAC0+7:
2985 ret = 0;
2986 break;
2987 case MAR0 ... MAR0+7:
2988 ret = s->mult[addr - MAR0];
2989 break;
2990 case TxStatus0 ... TxStatus0+4*4-1:
2991 ret = rtl8139_TxStatus_TxAddr_read(s, s->TxStatus, TxStatus0,
2992 addr, 1);
2993 break;
2994 case ChipCmd:
2995 ret = rtl8139_ChipCmd_read(s);
2996 break;
2997 case Cfg9346:
2998 ret = rtl8139_Cfg9346_read(s);
2999 break;
3000 case Config0:
3001 ret = rtl8139_Config0_read(s);
3002 break;
3003 case Config1:
3004 ret = rtl8139_Config1_read(s);
3005 break;
3006 case Config3:
3007 ret = rtl8139_Config3_read(s);
3008 break;
3009 case Config4:
3010 ret = rtl8139_Config4_read(s);
3011 break;
3012 case Config5:
3013 ret = rtl8139_Config5_read(s);
3014 break;
3016 case MediaStatus:
3017 /* The LinkDown bit of MediaStatus is inverse with link status */
3018 ret = 0xd0 | (~s->BasicModeStatus & 0x04);
3019 DPRINTF("MediaStatus read 0x%x\n", ret);
3020 break;
3022 case HltClk:
3023 ret = s->clock_enabled;
3024 DPRINTF("HltClk read 0x%x\n", ret);
3025 break;
3027 case PCIRevisionID:
3028 ret = RTL8139_PCI_REVID;
3029 DPRINTF("PCI Revision ID read 0x%x\n", ret);
3030 break;
3032 case TxThresh:
3033 ret = s->TxThresh;
3034 DPRINTF("C+ TxThresh read(b) val=0x%02x\n", ret);
3035 break;
3037 case 0x43: /* Part of TxConfig register. Windows driver tries to read it */
3038 ret = s->TxConfig >> 24;
3039 DPRINTF("RTL8139C TxConfig at 0x43 read(b) val=0x%02x\n", ret);
3040 break;
3042 default:
3043 DPRINTF("not implemented read(b) addr=0x%x\n", addr);
3044 ret = 0;
3045 break;
3048 return ret;
3051 static uint32_t rtl8139_io_readw(void *opaque, uint8_t addr)
3053 RTL8139State *s = opaque;
3054 uint32_t ret;
3056 switch (addr)
3058 case TxAddr0 ... TxAddr0+4*4-1:
3059 ret = rtl8139_TxStatus_TxAddr_read(s, s->TxAddr, TxAddr0, addr, 2);
3060 break;
3061 case IntrMask:
3062 ret = rtl8139_IntrMask_read(s);
3063 break;
3065 case IntrStatus:
3066 ret = rtl8139_IntrStatus_read(s);
3067 break;
3069 case MultiIntr:
3070 ret = rtl8139_MultiIntr_read(s);
3071 break;
3073 case RxBufPtr:
3074 ret = rtl8139_RxBufPtr_read(s);
3075 break;
3077 case RxBufAddr:
3078 ret = rtl8139_RxBufAddr_read(s);
3079 break;
3081 case BasicModeCtrl:
3082 ret = rtl8139_BasicModeCtrl_read(s);
3083 break;
3084 case BasicModeStatus:
3085 ret = rtl8139_BasicModeStatus_read(s);
3086 break;
3087 case NWayAdvert:
3088 ret = s->NWayAdvert;
3089 DPRINTF("NWayAdvert read(w) val=0x%04x\n", ret);
3090 break;
3091 case NWayLPAR:
3092 ret = s->NWayLPAR;
3093 DPRINTF("NWayLPAR read(w) val=0x%04x\n", ret);
3094 break;
3095 case NWayExpansion:
3096 ret = s->NWayExpansion;
3097 DPRINTF("NWayExpansion read(w) val=0x%04x\n", ret);
3098 break;
3100 case CpCmd:
3101 ret = rtl8139_CpCmd_read(s);
3102 break;
3104 case IntrMitigate:
3105 ret = rtl8139_IntrMitigate_read(s);
3106 break;
3108 case TxSummary:
3109 ret = rtl8139_TSAD_read(s);
3110 break;
3112 case CSCR:
3113 ret = rtl8139_CSCR_read(s);
3114 break;
3116 default:
3117 DPRINTF("ioport read(w) addr=0x%x via read(b)\n", addr);
3119 ret = rtl8139_io_readb(opaque, addr);
3120 ret |= rtl8139_io_readb(opaque, addr + 1) << 8;
3122 DPRINTF("ioport read(w) addr=0x%x val=0x%04x\n", addr, ret);
3123 break;
3126 return ret;
3129 static uint32_t rtl8139_io_readl(void *opaque, uint8_t addr)
3131 RTL8139State *s = opaque;
3132 uint32_t ret;
3134 switch (addr)
3136 case RxMissed:
3137 ret = s->RxMissed;
3139 DPRINTF("RxMissed read val=0x%08x\n", ret);
3140 break;
3142 case TxConfig:
3143 ret = rtl8139_TxConfig_read(s);
3144 break;
3146 case RxConfig:
3147 ret = rtl8139_RxConfig_read(s);
3148 break;
3150 case TxStatus0 ... TxStatus0+4*4-1:
3151 ret = rtl8139_TxStatus_TxAddr_read(s, s->TxStatus, TxStatus0,
3152 addr, 4);
3153 break;
3155 case TxAddr0 ... TxAddr0+4*4-1:
3156 ret = rtl8139_TxAddr_read(s, addr-TxAddr0);
3157 break;
3159 case RxBuf:
3160 ret = rtl8139_RxBuf_read(s);
3161 break;
3163 case RxRingAddrLO:
3164 ret = s->RxRingAddrLO;
3165 DPRINTF("C+ RxRing low bits read val=0x%08x\n", ret);
3166 break;
3168 case RxRingAddrHI:
3169 ret = s->RxRingAddrHI;
3170 DPRINTF("C+ RxRing high bits read val=0x%08x\n", ret);
3171 break;
3173 case Timer:
3174 ret = muldiv64(qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL) - s->TCTR_base,
3175 PCI_FREQUENCY, get_ticks_per_sec());
3176 DPRINTF("TCTR Timer read val=0x%08x\n", ret);
3177 break;
3179 case FlashReg:
3180 ret = s->TimerInt;
3181 DPRINTF("FlashReg TimerInt read val=0x%08x\n", ret);
3182 break;
3184 default:
3185 DPRINTF("ioport read(l) addr=0x%x via read(b)\n", addr);
3187 ret = rtl8139_io_readb(opaque, addr);
3188 ret |= rtl8139_io_readb(opaque, addr + 1) << 8;
3189 ret |= rtl8139_io_readb(opaque, addr + 2) << 16;
3190 ret |= rtl8139_io_readb(opaque, addr + 3) << 24;
3192 DPRINTF("read(l) addr=0x%x val=%08x\n", addr, ret);
3193 break;
3196 return ret;
3199 /* */
3201 static void rtl8139_mmio_writeb(void *opaque, hwaddr addr, uint32_t val)
3203 rtl8139_io_writeb(opaque, addr & 0xFF, val);
3206 static void rtl8139_mmio_writew(void *opaque, hwaddr addr, uint32_t val)
3208 rtl8139_io_writew(opaque, addr & 0xFF, val);
3211 static void rtl8139_mmio_writel(void *opaque, hwaddr addr, uint32_t val)
3213 rtl8139_io_writel(opaque, addr & 0xFF, val);
3216 static uint32_t rtl8139_mmio_readb(void *opaque, hwaddr addr)
3218 return rtl8139_io_readb(opaque, addr & 0xFF);
3221 static uint32_t rtl8139_mmio_readw(void *opaque, hwaddr addr)
3223 uint32_t val = rtl8139_io_readw(opaque, addr & 0xFF);
3224 return val;
3227 static uint32_t rtl8139_mmio_readl(void *opaque, hwaddr addr)
3229 uint32_t val = rtl8139_io_readl(opaque, addr & 0xFF);
3230 return val;
3233 static int rtl8139_post_load(void *opaque, int version_id)
3235 RTL8139State* s = opaque;
3236 rtl8139_set_next_tctr_time(s);
3237 if (version_id < 4) {
3238 s->cplus_enabled = s->CpCmd != 0;
3241 /* nc.link_down can't be migrated, so infer link_down according
3242 * to link status bit in BasicModeStatus */
3243 qemu_get_queue(s->nic)->link_down = (s->BasicModeStatus & 0x04) == 0;
3245 return 0;
3248 static bool rtl8139_hotplug_ready_needed(void *opaque)
3250 return qdev_machine_modified();
3253 static const VMStateDescription vmstate_rtl8139_hotplug_ready ={
3254 .name = "rtl8139/hotplug_ready",
3255 .version_id = 1,
3256 .minimum_version_id = 1,
3257 .fields = (VMStateField[]) {
3258 VMSTATE_END_OF_LIST()
3262 static void rtl8139_pre_save(void *opaque)
3264 RTL8139State* s = opaque;
3265 int64_t current_time = qemu_clock_get_ns(QEMU_CLOCK_VIRTUAL);
3267 /* for migration to older versions */
3268 s->TCTR = muldiv64(current_time - s->TCTR_base, PCI_FREQUENCY,
3269 get_ticks_per_sec());
3270 s->rtl8139_mmio_io_addr_dummy = 0;
3273 static const VMStateDescription vmstate_rtl8139 = {
3274 .name = "rtl8139",
3275 .version_id = 4,
3276 .minimum_version_id = 3,
3277 .post_load = rtl8139_post_load,
3278 .pre_save = rtl8139_pre_save,
3279 .fields = (VMStateField[]) {
3280 VMSTATE_PCI_DEVICE(parent_obj, RTL8139State),
3281 VMSTATE_PARTIAL_BUFFER(phys, RTL8139State, 6),
3282 VMSTATE_BUFFER(mult, RTL8139State),
3283 VMSTATE_UINT32_ARRAY(TxStatus, RTL8139State, 4),
3284 VMSTATE_UINT32_ARRAY(TxAddr, RTL8139State, 4),
3286 VMSTATE_UINT32(RxBuf, RTL8139State),
3287 VMSTATE_UINT32(RxBufferSize, RTL8139State),
3288 VMSTATE_UINT32(RxBufPtr, RTL8139State),
3289 VMSTATE_UINT32(RxBufAddr, RTL8139State),
3291 VMSTATE_UINT16(IntrStatus, RTL8139State),
3292 VMSTATE_UINT16(IntrMask, RTL8139State),
3294 VMSTATE_UINT32(TxConfig, RTL8139State),
3295 VMSTATE_UINT32(RxConfig, RTL8139State),
3296 VMSTATE_UINT32(RxMissed, RTL8139State),
3297 VMSTATE_UINT16(CSCR, RTL8139State),
3299 VMSTATE_UINT8(Cfg9346, RTL8139State),
3300 VMSTATE_UINT8(Config0, RTL8139State),
3301 VMSTATE_UINT8(Config1, RTL8139State),
3302 VMSTATE_UINT8(Config3, RTL8139State),
3303 VMSTATE_UINT8(Config4, RTL8139State),
3304 VMSTATE_UINT8(Config5, RTL8139State),
3306 VMSTATE_UINT8(clock_enabled, RTL8139State),
3307 VMSTATE_UINT8(bChipCmdState, RTL8139State),
3309 VMSTATE_UINT16(MultiIntr, RTL8139State),
3311 VMSTATE_UINT16(BasicModeCtrl, RTL8139State),
3312 VMSTATE_UINT16(BasicModeStatus, RTL8139State),
3313 VMSTATE_UINT16(NWayAdvert, RTL8139State),
3314 VMSTATE_UINT16(NWayLPAR, RTL8139State),
3315 VMSTATE_UINT16(NWayExpansion, RTL8139State),
3317 VMSTATE_UINT16(CpCmd, RTL8139State),
3318 VMSTATE_UINT8(TxThresh, RTL8139State),
3320 VMSTATE_UNUSED(4),
3321 VMSTATE_MACADDR(conf.macaddr, RTL8139State),
3322 VMSTATE_INT32(rtl8139_mmio_io_addr_dummy, RTL8139State),
3324 VMSTATE_UINT32(currTxDesc, RTL8139State),
3325 VMSTATE_UINT32(currCPlusRxDesc, RTL8139State),
3326 VMSTATE_UINT32(currCPlusTxDesc, RTL8139State),
3327 VMSTATE_UINT32(RxRingAddrLO, RTL8139State),
3328 VMSTATE_UINT32(RxRingAddrHI, RTL8139State),
3330 VMSTATE_UINT16_ARRAY(eeprom.contents, RTL8139State, EEPROM_9346_SIZE),
3331 VMSTATE_INT32(eeprom.mode, RTL8139State),
3332 VMSTATE_UINT32(eeprom.tick, RTL8139State),
3333 VMSTATE_UINT8(eeprom.address, RTL8139State),
3334 VMSTATE_UINT16(eeprom.input, RTL8139State),
3335 VMSTATE_UINT16(eeprom.output, RTL8139State),
3337 VMSTATE_UINT8(eeprom.eecs, RTL8139State),
3338 VMSTATE_UINT8(eeprom.eesk, RTL8139State),
3339 VMSTATE_UINT8(eeprom.eedi, RTL8139State),
3340 VMSTATE_UINT8(eeprom.eedo, RTL8139State),
3342 VMSTATE_UINT32(TCTR, RTL8139State),
3343 VMSTATE_UINT32(TimerInt, RTL8139State),
3344 VMSTATE_INT64(TCTR_base, RTL8139State),
3346 VMSTATE_STRUCT(tally_counters, RTL8139State, 0,
3347 vmstate_tally_counters, RTL8139TallyCounters),
3349 VMSTATE_UINT32_V(cplus_enabled, RTL8139State, 4),
3350 VMSTATE_END_OF_LIST()
3352 .subsections = (VMStateSubsection []) {
3354 .vmsd = &vmstate_rtl8139_hotplug_ready,
3355 .needed = rtl8139_hotplug_ready_needed,
3356 }, {
3357 /* empty */
3362 /***********************************************************/
3363 /* PCI RTL8139 definitions */
3365 static void rtl8139_ioport_write(void *opaque, hwaddr addr,
3366 uint64_t val, unsigned size)
3368 switch (size) {
3369 case 1:
3370 rtl8139_io_writeb(opaque, addr, val);
3371 break;
3372 case 2:
3373 rtl8139_io_writew(opaque, addr, val);
3374 break;
3375 case 4:
3376 rtl8139_io_writel(opaque, addr, val);
3377 break;
3381 static uint64_t rtl8139_ioport_read(void *opaque, hwaddr addr,
3382 unsigned size)
3384 switch (size) {
3385 case 1:
3386 return rtl8139_io_readb(opaque, addr);
3387 case 2:
3388 return rtl8139_io_readw(opaque, addr);
3389 case 4:
3390 return rtl8139_io_readl(opaque, addr);
3393 return -1;
3396 static const MemoryRegionOps rtl8139_io_ops = {
3397 .read = rtl8139_ioport_read,
3398 .write = rtl8139_ioport_write,
3399 .impl = {
3400 .min_access_size = 1,
3401 .max_access_size = 4,
3403 .endianness = DEVICE_LITTLE_ENDIAN,
3406 static const MemoryRegionOps rtl8139_mmio_ops = {
3407 .old_mmio = {
3408 .read = {
3409 rtl8139_mmio_readb,
3410 rtl8139_mmio_readw,
3411 rtl8139_mmio_readl,
3413 .write = {
3414 rtl8139_mmio_writeb,
3415 rtl8139_mmio_writew,
3416 rtl8139_mmio_writel,
3419 .endianness = DEVICE_LITTLE_ENDIAN,
3422 static void rtl8139_timer(void *opaque)
3424 RTL8139State *s = opaque;
3426 if (!s->clock_enabled)
3428 DPRINTF(">>> timer: clock is not running\n");
3429 return;
3432 s->IntrStatus |= PCSTimeout;
3433 rtl8139_update_irq(s);
3434 rtl8139_set_next_tctr_time(s);
3437 static void pci_rtl8139_uninit(PCIDevice *dev)
3439 RTL8139State *s = RTL8139(dev);
3441 if (s->cplus_txbuffer) {
3442 g_free(s->cplus_txbuffer);
3443 s->cplus_txbuffer = NULL;
3445 timer_del(s->timer);
3446 timer_free(s->timer);
3447 qemu_del_nic(s->nic);
3450 static void rtl8139_set_link_status(NetClientState *nc)
3452 RTL8139State *s = qemu_get_nic_opaque(nc);
3454 if (nc->link_down) {
3455 s->BasicModeStatus &= ~0x04;
3456 } else {
3457 s->BasicModeStatus |= 0x04;
3460 s->IntrStatus |= RxUnderrun;
3461 rtl8139_update_irq(s);
3464 static NetClientInfo net_rtl8139_info = {
3465 .type = NET_CLIENT_OPTIONS_KIND_NIC,
3466 .size = sizeof(NICState),
3467 .can_receive = rtl8139_can_receive,
3468 .receive = rtl8139_receive,
3469 .link_status_changed = rtl8139_set_link_status,
3472 static int pci_rtl8139_init(PCIDevice *dev)
3474 RTL8139State *s = RTL8139(dev);
3475 DeviceState *d = DEVICE(dev);
3476 uint8_t *pci_conf;
3478 pci_conf = dev->config;
3479 pci_conf[PCI_INTERRUPT_PIN] = 1; /* interrupt pin A */
3480 /* TODO: start of capability list, but no capability
3481 * list bit in status register, and offset 0xdc seems unused. */
3482 pci_conf[PCI_CAPABILITY_LIST] = 0xdc;
3484 memory_region_init_io(&s->bar_io, OBJECT(s), &rtl8139_io_ops, s,
3485 "rtl8139", 0x100);
3486 memory_region_init_io(&s->bar_mem, OBJECT(s), &rtl8139_mmio_ops, s,
3487 "rtl8139", 0x100);
3488 pci_register_bar(dev, 0, PCI_BASE_ADDRESS_SPACE_IO, &s->bar_io);
3489 pci_register_bar(dev, 1, PCI_BASE_ADDRESS_SPACE_MEMORY, &s->bar_mem);
3491 qemu_macaddr_default_if_unset(&s->conf.macaddr);
3493 /* prepare eeprom */
3494 s->eeprom.contents[0] = 0x8129;
3495 #if 1
3496 /* PCI vendor and device ID should be mirrored here */
3497 s->eeprom.contents[1] = PCI_VENDOR_ID_REALTEK;
3498 s->eeprom.contents[2] = PCI_DEVICE_ID_REALTEK_8139;
3499 #endif
3500 s->eeprom.contents[7] = s->conf.macaddr.a[0] | s->conf.macaddr.a[1] << 8;
3501 s->eeprom.contents[8] = s->conf.macaddr.a[2] | s->conf.macaddr.a[3] << 8;
3502 s->eeprom.contents[9] = s->conf.macaddr.a[4] | s->conf.macaddr.a[5] << 8;
3504 s->nic = qemu_new_nic(&net_rtl8139_info, &s->conf,
3505 object_get_typename(OBJECT(dev)), d->id, s);
3506 qemu_format_nic_info_str(qemu_get_queue(s->nic), s->conf.macaddr.a);
3508 s->cplus_txbuffer = NULL;
3509 s->cplus_txbuffer_len = 0;
3510 s->cplus_txbuffer_offset = 0;
3512 s->timer = timer_new_ns(QEMU_CLOCK_VIRTUAL, rtl8139_timer, s);
3514 return 0;
3517 static void rtl8139_instance_init(Object *obj)
3519 RTL8139State *s = RTL8139(obj);
3521 device_add_bootindex_property(obj, &s->conf.bootindex,
3522 "bootindex", "/ethernet-phy@0",
3523 DEVICE(obj), NULL);
3526 static Property rtl8139_properties[] = {
3527 DEFINE_NIC_PROPERTIES(RTL8139State, conf),
3528 DEFINE_PROP_END_OF_LIST(),
3531 static void rtl8139_class_init(ObjectClass *klass, void *data)
3533 DeviceClass *dc = DEVICE_CLASS(klass);
3534 PCIDeviceClass *k = PCI_DEVICE_CLASS(klass);
3536 k->init = pci_rtl8139_init;
3537 k->exit = pci_rtl8139_uninit;
3538 k->romfile = "efi-rtl8139.rom";
3539 k->vendor_id = PCI_VENDOR_ID_REALTEK;
3540 k->device_id = PCI_DEVICE_ID_REALTEK_8139;
3541 k->revision = RTL8139_PCI_REVID; /* >=0x20 is for 8139C+ */
3542 k->class_id = PCI_CLASS_NETWORK_ETHERNET;
3543 dc->reset = rtl8139_reset;
3544 dc->vmsd = &vmstate_rtl8139;
3545 dc->props = rtl8139_properties;
3546 set_bit(DEVICE_CATEGORY_NETWORK, dc->categories);
3549 static const TypeInfo rtl8139_info = {
3550 .name = TYPE_RTL8139,
3551 .parent = TYPE_PCI_DEVICE,
3552 .instance_size = sizeof(RTL8139State),
3553 .class_init = rtl8139_class_init,
3554 .instance_init = rtl8139_instance_init,
3557 static void rtl8139_register_types(void)
3559 type_register_static(&rtl8139_info);
3562 type_init(rtl8139_register_types)