renamed and cleaned up export header files to match linux convention
[lunaix-os.git] / lunaix-os / hal / ahci / ahci.c
1 /**
2  * @file ahci.c
3  * @author Lunaixsky (zelong56@gmail.com)
4  * @brief A software implementation of Serial ATA AHCI 1.3.1 Specification
5  * @version 0.1
6  * @date 2022-06-28
7  *
8  * @copyright Copyright (c) 2022
9  *
10  */
11 #include <hal/ahci/ahci.h>
12 #include <hal/ahci/hba.h>
13 #include <hal/ahci/sata.h>
14 #include <hal/ahci/scsi.h>
15 #include <hal/pci.h>
16
17 #include <asm/x86_pmio.h>
18
19 #include <klibc/string.h>
20 #include <lunaix/block.h>
21 #include <lunaix/mm/mmio.h>
22 #include <lunaix/mm/valloc.h>
23 #include <lunaix/mm/page.h>
24 #include <lunaix/spike.h>
25 #include <lunaix/syslog.h>
26
27 #define HBA_FIS_SIZE 256
28 #define HBA_CLB_SIZE 1024
29
30 #define HBA_MY_IE (HBA_PxINTR_DHR | HBA_PxINTR_TFE | HBA_PxINTR_OF)
31 #define AHCI_DEVCLASS DEVCLASS(LUNAIX, STORAGE, SATA)
32
33 // #define DO_HBA_FULL_RESET
34
35 LOG_MODULE("AHCI")
36
37 static DEFINE_LLIST(ahcis);
38
39 static char sata_ifs[][20] = { "Not detected",
40                                "SATA I (1.5Gbps)",
41                                "SATA II (3.0Gbps)",
42                                "SATA III (6.0Gbps)" };
43
44 static struct devclass ahci_class = AHCI_DEVCLASS;
45
46 extern void
47 ahci_fsexport(struct block_dev* bdev, void* fs_node);
48
49 extern void
50 __ahci_blkio_handler(struct blkio_req* req);
51
52 int
53 ahci_init_device(struct hba_port* port);
54
55 void
56 achi_register_ops(struct hba_port* port);
57
58 void
59 ahci_register_device(struct hba_device* hbadev);
60
61 void
62 __hba_reset_port(hba_reg_t* port_reg)
63 {
64     // 根据:SATA-AHCI spec section 10.4.2 描述的端口重置流程
65     port_reg[HBA_RPxCMD] &= ~HBA_PxCMD_ST;
66     port_reg[HBA_RPxCMD] &= ~HBA_PxCMD_FRE;
67     int cnt = wait_until_expire(!(port_reg[HBA_RPxCMD] & HBA_PxCMD_CR), 500000);
68     if (cnt) {
69         return;
70     }
71     // 如果port未响应,则继续执行重置
72     port_reg[HBA_RPxSCTL] = (port_reg[HBA_RPxSCTL] & ~0xf) | 1;
73     port_delay(100000); // 等待至少一毫秒,差不多就行了
74     port_reg[HBA_RPxSCTL] &= ~0xf;
75 }
76
77 struct ahci_driver*
78 ahci_driver_init(struct ahci_driver_param* param)
79 {
80     struct ahci_driver* ahci_drv = vzalloc(sizeof(*ahci_drv));
81     struct ahci_hba* hba = &ahci_drv->hba;
82     ahci_drv->id = param->irq->vector;
83
84     irq_set_payload(param->irq, &ahcis);
85     llist_append(&ahcis, &ahci_drv->ahci_drvs);
86
87     hba->base = (hba_reg_t*)ioremap(param->mmio_base, param->mmio_size);
88
89 #ifdef DO_HBA_FULL_RESET
90     // 重置HBA
91     hba->base[HBA_RGHC] |= HBA_RGHC_RESET;
92     wait_until(!(hba->base[HBA_RGHC] & HBA_RGHC_RESET));
93 #endif
94
95     // 启用AHCI工作模式,启用中断
96     hba->base[HBA_RGHC] |= HBA_RGHC_ACHI_ENABLE;
97     hba->base[HBA_RGHC] |= HBA_RGHC_INTR_ENABLE;
98
99     // As per section 3.1.1, this is 0 based value.
100     hba_reg_t cap = hba->base[HBA_RCAP];
101     hba_reg_t pmap = hba->base[HBA_RPI];
102
103     hba->ports_num = (cap & 0x1f) + 1;  // CAP.PI
104     hba->cmd_slots = (cap >> 8) & 0x1f; // CAP.NCS
105     hba->version = hba->base[HBA_RVER];
106     hba->ports_bmp = pmap;
107
108     /* ------ HBA端口配置 ------ */
109     ptr_t clb_pg_addr = 0, fis_pg_addr = 0;
110     ptr_t clb_pa = 0, fis_pa = 0;
111
112     for (size_t i = 0, fisp = 0, clbp = 0; i < 32;
113          i++, pmap >>= 1, fisp = (fisp + 1) % 16, clbp = (clbp + 1) % 4) {
114         if (!(pmap & 0x1)) {
115             continue;
116         }
117
118         struct hba_port* port =
119           (struct hba_port*)valloc(sizeof(struct hba_port));
120         hba_reg_t* port_regs =
121           (hba_reg_t*)(&hba->base[HBA_RPBASE + i * HBA_RPSIZE]);
122
123 #ifndef DO_HBA_FULL_RESET
124         __hba_reset_port(port_regs);
125 #endif
126
127         struct leaflet* leaflet;
128         if (!clbp) {
129             // 每页最多4个命令队列
130             leaflet = alloc_leaflet(0);
131             clb_pa = leaflet_addr(leaflet);
132             clb_pg_addr = vmap(leaflet, KERNEL_DATA);
133             memset((void*)clb_pg_addr, 0, 0x1000);
134         }
135         if (!fisp) {
136             // 每页最多16个FIS
137             leaflet = alloc_leaflet(0);
138             fis_pa = leaflet_addr(leaflet);
139             fis_pg_addr = vmap(leaflet, KERNEL_DATA);
140             memset((void*)fis_pg_addr, 0, 0x1000);
141         }
142
143         /* 重定向CLB与FIS */
144         port_regs[HBA_RPxCLB] = clb_pa + clbp * HBA_CLB_SIZE;
145         port_regs[HBA_RPxFB] = fis_pa + fisp * HBA_FIS_SIZE;
146
147         *port = (struct hba_port){
148             .regs = port_regs,
149             .ssts = port_regs[HBA_RPxSSTS],
150             .cmdlst = (struct hba_cmdh*)(clb_pg_addr + clbp * HBA_CLB_SIZE),
151             .fis = (void*)(fis_pg_addr + fisp * HBA_FIS_SIZE),
152             .hba = hba
153         };
154
155         /* 初始化端口,并置于就绪状态 */
156         port_regs[HBA_RPxCI] = 0;
157
158         hba_clear_reg(port_regs[HBA_RPxSERR]);
159
160         hba->ports[i] = port;
161
162         if (!HBA_RPxSSTS_IF(port->ssts)) {
163             continue;
164         }
165
166         wait_until(!(port_regs[HBA_RPxCMD] & HBA_PxCMD_CR));
167         port_regs[HBA_RPxCMD] |= HBA_PxCMD_FRE;
168         port_regs[HBA_RPxCMD] |= HBA_PxCMD_ST;
169
170         if (!ahci_init_device(port)) {
171             ERROR("init fail: 0x%x@p%d", port->regs[HBA_RPxSIG], i);
172             continue;
173         }
174
175         struct hba_device* hbadev = port->device;
176         kprintf(KINFO "sata%d: %s, blk_size=%d, blk=0..%d",
177                 i,
178                 hbadev->model,
179                 hbadev->block_size,
180                 (u32_t)hbadev->max_lba);
181
182         ahci_register_device(hbadev);
183     }
184
185     return ahci_drv;
186 }
187
188 void
189 ahci_register_device(struct hba_device* hbadev)
190 {
191     struct block_dev* bdev =
192       block_alloc_dev(hbadev->model, hbadev, __ahci_blkio_handler);
193
194     bdev->end_lba = hbadev->max_lba;
195     bdev->blk_size = hbadev->block_size;
196     bdev->class = &ahci_class;
197
198     block_mount(bdev, ahci_fsexport);
199 }
200
201 int
202 __get_free_slot(struct hba_port* port)
203 {
204     hba_reg_t pxsact = port->regs[HBA_RPxSACT];
205     hba_reg_t pxci = port->regs[HBA_RPxCI];
206     hba_reg_t free_bmp = pxsact | pxci;
207     u32_t i = 0;
208     for (; i <= port->hba->cmd_slots && (free_bmp & 0x1); i++, free_bmp >>= 1)
209         ;
210     return i | -(i > port->hba->cmd_slots);
211 }
212
213 void
214 sata_create_fis(struct sata_reg_fis* cmd_fis,
215                 u8_t command,
216                 lba_t lba,
217                 u16_t sector_count)
218 {
219     cmd_fis->head.type = SATA_REG_FIS_H2D;
220     cmd_fis->head.options = SATA_REG_FIS_COMMAND;
221     cmd_fis->head.status_cmd = command;
222     cmd_fis->dev = 0;
223
224     cmd_fis->lba0 = SATA_LBA_COMPONENT(lba, 0);
225     cmd_fis->lba8 = SATA_LBA_COMPONENT(lba, 8);
226     cmd_fis->lba16 = SATA_LBA_COMPONENT(lba, 16);
227     cmd_fis->lba24 = SATA_LBA_COMPONENT(lba, 24);
228
229     cmd_fis->lba32 = SATA_LBA_COMPONENT(lba, 32);
230     cmd_fis->lba40 = SATA_LBA_COMPONENT(lba, 40);
231
232     cmd_fis->count = sector_count;
233 }
234
235 int
236 hba_bind_sbuf(struct hba_cmdh* cmdh, struct hba_cmdt* cmdt, struct membuf mbuf)
237 {
238     assert_msg(mbuf.size <= 0x400000U, "HBA: Buffer too big");
239     cmdh->prdt_len = 1;
240     cmdt->entries[0] =
241       (struct hba_prdte){ .data_base = vmm_v2p((ptr_t)mbuf.buffer),
242                           .byte_count = mbuf.size - 1 };
243
244     return 0;
245 }
246
247 int
248 hba_bind_vbuf(struct hba_cmdh* cmdh, struct hba_cmdt* cmdt, struct vecbuf* vbuf)
249 {
250     size_t i = 0;
251     struct vecbuf* pos = vbuf;
252
253     do {
254         assert_msg(i < HBA_MAX_PRDTE, "HBA: Too many PRDTEs");
255         assert_msg(pos->buf.size <= 0x400000U, "HBA: Buffer too big");
256         assert_msg(pos->buf.size, "HBA: expect a non-zero buffer size");
257
258         cmdt->entries[i++] =
259           (struct hba_prdte){ .data_base = vmm_v2p((ptr_t)pos->buf.buffer),
260                               .byte_count = pos->buf.size - 1 };
261         pos = list_entry(pos->components.next, struct vecbuf, components);
262     } while (pos != vbuf);
263
264     cmdh->prdt_len = i + 1;
265
266     return 0;
267 }
268
269 int
270 hba_prepare_cmd(struct hba_port* port,
271                 struct hba_cmdt** cmdt,
272                 struct hba_cmdh** cmdh)
273 {
274     int slot = __get_free_slot(port);
275     assert_msg(slot >= 0, "HBA: No free slot");
276
277     // 构建命令头(Command Header)和命令表(Command Table)
278     struct hba_cmdh* cmd_header = &port->cmdlst[slot];
279     struct hba_cmdt* cmd_table = vzalloc_dma(sizeof(struct hba_cmdt));
280
281     memset(cmd_header, 0, sizeof(*cmd_header));
282
283     // 将命令表挂到命令头上
284     cmd_header->cmd_table_base = vmm_v2p((ptr_t)cmd_table);
285     cmd_header->options =
286       HBA_CMDH_FIS_LEN(sizeof(struct sata_reg_fis)) | HBA_CMDH_CLR_BUSY;
287
288     *cmdh = cmd_header;
289     *cmdt = cmd_table;
290
291     return slot;
292 }
293
294 int
295 ahci_init_device(struct hba_port* port)
296 {
297     /* 发送ATA命令,参考:SATA AHCI Spec Rev.1.3.1, section 5.5 */
298     struct hba_cmdt* cmd_table;
299     struct hba_cmdh* cmd_header;
300
301     // mask DHR interrupt
302     port->regs[HBA_RPxIE] &= ~HBA_MY_IE;
303
304     // 预备DMA接收缓存,用于存放HBA传回的数据
305     u16_t* data_in = (u16_t*)valloc_dma(512);
306
307     int slot = hba_prepare_cmd(port, &cmd_table, &cmd_header);
308     hba_bind_sbuf(
309       cmd_header, cmd_table, (struct membuf){ .buffer = data_in, .size = 512 });
310
311     port->device = vzalloc(sizeof(struct hba_device));
312     port->device->port = port;
313     port->device->hba = port->hba;
314
315     // 在命令表中构建命令FIS
316     struct sata_reg_fis* cmd_fis = (struct sata_reg_fis*)cmd_table->command_fis;
317
318     // 根据设备类型使用合适的命令
319     if (port->regs[HBA_RPxSIG] == HBA_DEV_SIG_ATA) {
320         // ATA 一般为硬盘
321         sata_create_fis(cmd_fis, ATA_IDENTIFY_DEVICE, 0, 0);
322     } else {
323         // ATAPI 一般为光驱,软驱,或者磁带机
324         port->device->flags |= HBA_DEV_FATAPI;
325         sata_create_fis(cmd_fis, ATA_IDENTIFY_PAKCET_DEVICE, 0, 0);
326     }
327
328     if (!ahci_try_send(port, slot)) {
329         goto fail;
330     }
331
332     /*
333         等待数据到达内存
334         解析IDENTIFY DEVICE传回来的数据。
335           参考:
336             * ATA/ATAPI Command Set - 3 (ACS-3), Section 7.12.7
337     */
338     ahci_parse_dev_info(port->device, data_in);
339
340     if (!(port->device->flags & HBA_DEV_FATAPI)) {
341         goto done;
342     }
343
344     /*
345         注意:ATAPI设备是无法通过IDENTIFY PACKET DEVICE 获取容量信息的。
346         我们需要使用SCSI命令的READ_CAPACITY(16)进行获取。
347         步骤如下:
348             1. 因为ATAPI走的是SCSI,而AHCI对此专门进行了SATA的封装,
349                也就是通过SATA的PACKET命令对SCSI命令进行封装。所以我们
350                首先需要构建一个PACKET命令的FIS
351             2. 接着,在ACMD中构建命令READ_CAPACITY的CDB - 一种SCSI命令的封装
352             3. 然后把cmd_header->options的A位置位,表示这是一个送往ATAPI的命令。
353                 一点细节:
354                     1. HBA往底层SATA控制器发送PACKET FIS
355                     2. SATA控制器回复PIO Setup FIS
356                     3. HBA读入ACMD中的CDB,打包成Data FIS进行答复
357                     4. SATA控制器解包,拿到CDB,通过SCSI协议转发往ATAPI设备。
358                     5. ATAPI设备回复Return Parameter,SATA通过DMA Setup FIS
359                        发起DMA请求,HBA介入,将Return Parameter写入我们在PRDT
360                        里设置的data_in位置。
361             4. 最后照常等待HBA把结果写入data_in,然后直接解析就好了。
362           参考:
363             * ATA/ATAPI Command Set - 3 (ACS-3), Section 7.18
364             * SATA AHCI HBA Spec, Section 5.3.7
365             * SCSI Command Reference Manual, Section 3.26
366     */
367
368     sata_create_fis(cmd_fis, ATA_PACKET, 512 << 8, 0);
369
370     // for dev use 12 bytes cdb, READ_CAPACITY must use the 10 bytes variation.
371     if (port->device->cbd_size == SCSI_CDB12) {
372         struct scsi_cdb12* cdb12 = (struct scsi_cdb12*)cmd_table->atapi_cmd;
373         // ugly tricks to construct 10 byte cdb from 12 byte cdb
374         scsi_create_packet12(cdb12, SCSI_READ_CAPACITY_10, 0, 512 << 8);
375     } else {
376         struct scsi_cdb16* cdb16 = (struct scsi_cdb16*)cmd_table->atapi_cmd;
377         scsi_create_packet16(cdb16, SCSI_READ_CAPACITY_16, 0, 512);
378         cdb16->misc1 = 0x10; // service action
379     }
380
381     cmd_header->transferred_size = 0;
382     cmd_header->options |= HBA_CMDH_ATAPI;
383
384     if (!ahci_try_send(port, slot)) {
385         goto fail;
386     }
387
388     scsi_parse_capacity(port->device, (u32_t*)data_in);
389
390 done:
391     // reset interrupt status and unmask D2HR interrupt
392     port->regs[HBA_RPxIE] |= HBA_MY_IE;
393     achi_register_ops(port);
394
395     vfree_dma(data_in);
396     vfree_dma(cmd_table);
397
398     return 1;
399
400 fail:
401     port->regs[HBA_RPxIE] |= HBA_MY_IE;
402     vfree_dma(data_in);
403     vfree_dma(cmd_table);
404
405     return 0;
406 }
407
408 int
409 ahci_identify_device(struct hba_device* device)
410 {
411     // 用于重新识别设备(比如在热插拔的情况下)
412     // FIXME this is not right...
413     vfree(device);
414     return ahci_init_device(device->port);
415 }
416
417 void
418 achi_register_ops(struct hba_port* port)
419 {
420     port->device->ops.identify = ahci_identify_device;
421     if (!(port->device->flags & HBA_DEV_FATAPI)) {
422         port->device->ops.submit = sata_submit;
423     } else {
424         port->device->ops.submit = scsi_submit;
425     }
426 }