3 * @author Lunaixsky (zelong56@gmail.com)
4 * @brief A software implementation of Serial ATA AHCI 1.3.1 Specification
8 * @copyright Copyright (c) 2022
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/ahci/utils.h>
18 #include <klibc/string.h>
19 #include <lunaix/mm/mmio.h>
20 #include <lunaix/mm/pmm.h>
21 #include <lunaix/mm/valloc.h>
22 #include <lunaix/mm/vmm.h>
23 #include <lunaix/spike.h>
24 #include <lunaix/syslog.h>
26 #define HBA_FIS_SIZE 256
27 #define HBA_CLB_SIZE 1024
31 static struct ahci_hba hba;
34 __ahci_hba_isr(isr_param param);
37 ahci_init_device(struct hba_port* port);
40 achi_register_ops(struct hba_port* port);
49 ahci_get_port(unsigned int index)
54 return hba.ports[index];
60 struct pci_device* ahci_dev = pci_get_device_by_class(AHCI_HBA_CLASS);
61 assert_msg(ahci_dev, "AHCI: Not found.");
64 size = pci_bar_sizing(ahci_dev, &bar6, 6);
65 assert_msg(bar6 && PCI_BAR_MMIO(bar6), "AHCI: BAR#6 is not MMIO.");
67 pci_reg_t cmd = pci_read_cspace(ahci_dev->cspace_base, PCI_REG_STATUS_CMD);
69 // 禁用传统中断(因为我们使用MSI),启用MMIO访问,允许PCI设备间访问
70 cmd |= (PCI_RCMD_MM_ACCESS | PCI_RCMD_DISABLE_INTR | PCI_RCMD_BUS_MASTER);
72 pci_write_cspace(ahci_dev->cspace_base, PCI_REG_STATUS_CMD, cmd);
74 pci_setup_msi(ahci_dev, AHCI_HBA_IV);
75 intr_subscribe(AHCI_HBA_IV, __ahci_hba_isr);
77 memset(&hba, 0, sizeof(hba));
79 hba.base = (hba_reg_t*)ioremap(PCI_BAR_ADDR_MM(bar6), size);
82 hba.base[HBA_RGHC] |= HBA_RGHC_RESET;
83 wait_until(!(hba.base[HBA_RGHC] & HBA_RGHC_RESET));
86 hba.base[HBA_RGHC] |= HBA_RGHC_ACHI_ENABLE;
87 hba.base[HBA_RGHC] |= HBA_RGHC_INTR_ENABLE;
89 // As per section 3.1.1, this is 0 based value.
90 hba_reg_t cap = hba.base[HBA_RCAP];
91 hba_reg_t pmap = hba.base[HBA_RPI];
93 hba.ports_num = (cap & 0x1f) + 1; // CAP.PI
94 hba.cmd_slots = (cap >> 8) & 0x1f; // CAP.NCS
95 hba.version = hba.base[HBA_RVER];
98 /* ------ HBA端口配置 ------ */
99 uintptr_t clb_pg_addr, fis_pg_addr, clb_pa, fis_pa;
100 for (size_t i = 0, fisp = 0, clbp = 0; i < 32;
101 i++, pmap >>= 1, fisp = (fisp + 1) % 16, clbp = (clbp + 1) % 4) {
106 struct hba_port* port =
107 (struct hba_port*)valloc(sizeof(struct hba_port));
108 hba_reg_t* port_regs =
109 (hba_reg_t*)(&hba.base[HBA_RPBASE + i * HBA_RPSIZE]);
113 clb_pa = pmm_alloc_page(KERNEL_PID, PP_FGLOCKED);
114 clb_pg_addr = ioremap(clb_pa, 0x1000);
115 memset(clb_pg_addr, 0, 0x1000);
119 fis_pa = pmm_alloc_page(KERNEL_PID, PP_FGLOCKED);
120 fis_pg_addr = ioremap(fis_pa, 0x1000);
121 memset(fis_pg_addr, 0, 0x1000);
125 port_regs[HBA_RPxCLB] = clb_pa + clbp * HBA_CLB_SIZE;
126 port_regs[HBA_RPxFB] = fis_pa + fisp * HBA_FIS_SIZE;
128 *port = (struct hba_port){ .regs = port_regs,
129 .ssts = port_regs[HBA_RPxSSTS],
130 .cmdlst = clb_pg_addr + clbp * HBA_CLB_SIZE,
131 .fis = fis_pg_addr + fisp * HBA_FIS_SIZE };
134 port_regs[HBA_RPxCI] = 0;
136 // 需要通过全部置位去清空这些寄存器(相当的奇怪……)
137 port_regs[HBA_RPxSERR] = -1;
139 port_regs[HBA_RPxIE] |= (HBA_PxINTR_DMA);
140 port_regs[HBA_RPxIE] |= (HBA_PxINTR_D2HR);
144 if (HBA_RPxSSTS_IF(port->ssts)) {
145 wait_until(!(port_regs[HBA_RPxCMD] & HBA_PxCMD_CR));
146 port_regs[HBA_RPxCMD] |= HBA_PxCMD_FRE;
147 port_regs[HBA_RPxCMD] |= HBA_PxCMD_ST;
149 if (!ahci_init_device(port)) {
150 kprintf(KERROR "fail to init device");
156 char sata_ifs[][20] = { "Not detected",
159 "SATA III (6.0Gbps)" };
162 __ahci_hba_isr(isr_param param)
164 // TODO: hba interrupt
165 kprintf(KDEBUG "HBA INTR\n");
171 kprintf(KINFO "Version: %x; Ports: %d; Slot: %d\n",
175 struct hba_port* port;
176 for (size_t i = 0; i < 32; i++) {
179 // 愚蠢的gcc似乎认为 struct hba_port* 不可能为空
180 // 所以将这个非常关键的if给优化掉了。
181 // 这里将指针强制转换为整数,欺骗gcc :)
182 if ((uintptr_t)port == 0) {
186 int device_state = HBA_RPxSSTS_IF(port->ssts);
188 kprintf("\t Port %d: %s (%x)\n",
190 &sata_ifs[device_state],
191 port->device->flags);
193 struct hba_device* dev_info = port->device;
194 if (!device_state || !dev_info) {
197 kprintf("\t\t capacity: %d KiB\n",
198 (dev_info->max_lba * dev_info->block_size) >> 10);
199 kprintf("\t\t block size: %dB\n", dev_info->block_size);
200 kprintf("\t\t model: %s\n", &dev_info->model);
201 kprintf("\t\t serial: %s\n", &dev_info->serial_num);
206 __get_free_slot(struct hba_port* port)
208 hba_reg_t pxsact = port->regs[HBA_RPxSACT];
209 hba_reg_t pxci = port->regs[HBA_RPxCI];
210 hba_reg_t free_bmp = pxsact | pxci;
212 for (; i <= hba.cmd_slots && (free_bmp & 0x1); i++, free_bmp >>= 1)
214 return i | -(i > hba.cmd_slots);
218 sata_create_fis(struct sata_reg_fis* cmd_fis,
221 uint16_t sector_count)
223 cmd_fis->head.type = SATA_REG_FIS_H2D;
224 cmd_fis->head.options = SATA_REG_FIS_COMMAND;
225 cmd_fis->head.status_cmd = command;
228 cmd_fis->lba0 = SATA_LBA_COMPONENT(lba, 0);
229 cmd_fis->lba8 = SATA_LBA_COMPONENT(lba, 8);
230 cmd_fis->lba16 = SATA_LBA_COMPONENT(lba, 16);
231 cmd_fis->lba24 = SATA_LBA_COMPONENT(lba, 24);
233 cmd_fis->lba32 = SATA_LBA_COMPONENT(lba, 32);
234 cmd_fis->lba40 = SATA_LBA_COMPONENT(lba, 40);
236 cmd_fis->count = sector_count;
240 hba_alloc_slot(struct hba_port* port,
241 struct hba_cmdt** cmdt,
242 struct hba_cmdh** cmdh,
243 uint16_t header_options)
245 int slot = __get_free_slot(port);
246 assert_msg(slot >= 0, "HBA: No free slot");
248 // 构建命令头(Command Header)和命令表(Command Table)
249 struct hba_cmdh* cmd_header = &port->cmdlst[slot];
250 struct hba_cmdt* cmd_table = vcalloc_dma(sizeof(struct hba_cmdt));
252 memset(cmd_header, 0, sizeof(*cmd_header));
255 cmd_header->cmd_table_base = vmm_v2p(cmd_table);
256 cmd_header->options = HBA_CMDH_FIS_LEN(sizeof(struct sata_reg_fis)) |
257 HBA_CMDH_CLR_BUSY | (header_options & ~0x1f);
266 ahci_init_device(struct hba_port* port)
268 /* 发送ATA命令,参考:SATA AHCI Spec Rev.1.3.1, section 5.5 */
269 struct hba_cmdt* cmd_table;
270 struct hba_cmdh* cmd_header;
273 wait_until(!(port->regs[HBA_RPxTFD] & (HBA_PxTFD_BSY)));
275 int slot = hba_alloc_slot(port, &cmd_table, &cmd_header, 0);
278 port->regs[HBA_RPxIS] = 0;
279 port->device = vcalloc(sizeof(struct hba_device));
281 // 预备DMA接收缓存,用于存放HBA传回的数据
282 uint16_t* data_in = (uint16_t*)valloc_dma(512);
284 cmd_table->entries[0] =
285 (struct hba_prdte){ .data_base = vmm_v2p(data_in),
286 .byte_count = 511 }; // byte_count是从0开始算的
287 cmd_header->prdt_len = 1;
290 struct sata_reg_fis* cmd_fis = (struct sata_reg_fis*)cmd_table->command_fis;
293 if (port->regs[HBA_RPxSIG] == HBA_DEV_SIG_ATA) {
295 sata_create_fis(cmd_fis, ATA_IDENTIFY_DEVICE, 0, 0);
297 // ATAPI 一般为光驱,软驱,或者磁带机
298 port->device->flags |= HBA_DEV_FATAPI;
299 sata_create_fis(cmd_fis, ATA_IDENTIFY_PAKCET_DEVICE, 0, 0);
302 // PxCI寄存器置位,告诉HBA这儿有个数据需要发送到SATA端口
303 port->regs[HBA_RPxCI] = (1 << slot);
305 wait_until(!(port->regs[HBA_RPxCI] & (1 << slot)));
307 if ((port->regs[HBA_RPxTFD] & HBA_PxTFD_ERR)) {
309 sata_read_error(port);
315 解析IDENTIFY DEVICE传回来的数据。
317 * ATA/ATAPI Command Set - 3 (ACS-3), Section 7.12.7
319 ahci_parse_dev_info(port->device, data_in);
321 if (!(port->device->flags & HBA_DEV_FATAPI)) {
326 注意:ATAPI设备是无法通过IDENTIFY PACKET DEVICE 获取容量信息的。
327 我们需要使用SCSI命令的READ_CAPACITY(16)进行获取。
329 1. 因为ATAPI走的是SCSI,而AHCI对此专门进行了SATA的封装,
330 也就是通过SATA的PACKET命令对SCSI命令进行封装。所以我们
332 2. 接着,在ACMD中构建命令READ_CAPACITY的CDB - 一种SCSI命令的封装
333 3. 然后把cmd_header->options的A位置位,表示这是一个送往ATAPI的命令。
335 1. HBA往底层SATA控制器发送PACKET FIS
336 2. SATA控制器回复PIO Setup FIS
337 3. HBA读入ACMD中的CDB,打包成Data FIS进行答复
338 4. SATA控制器解包,拿到CDB,通过SCSI协议转发往ATAPI设备。
339 5. ATAPI设备回复Return Parameter,SATA通过DMA Setup FIS
340 发起DMA请求,HBA介入,将Return Parameter写入我们在PRDT
342 4. 最后照常等待HBA把结果写入data_in,然后直接解析就好了。
344 * ATA/ATAPI Command Set - 3 (ACS-3), Section 7.18
345 * SATA AHCI HBA Spec, Section 5.3.7
346 * SCSI Command Reference Manual, Section 3.26
348 struct scsi_cdb16* cdb16 = (struct scsi_cdb16*)cmd_table->atapi_cmd;
350 sata_create_fis(cmd_fis, ATA_PACKET, 512 << 8, 0);
351 scsi_create_packet16(cdb16, SCSI_READ_CAPACITY_16, 0, 512);
353 cdb16->misc1 = 0x10; // service action
354 cmd_header->transferred_size = 0;
355 cmd_header->options |= HBA_CMDH_ATAPI;
357 port->regs[HBA_RPxCI] = (1 << slot);
358 wait_until(!(port->regs[HBA_RPxCI] & (1 << slot)));
360 if ((port->regs[HBA_RPxTFD] & HBA_PxTFD_ERR)) {
362 sata_read_error(port);
366 scsi_parse_capacity(port->device, (uint32_t*)data_in);
369 achi_register_ops(port);
372 vfree_dma(cmd_table);
378 vfree_dma(cmd_table);
384 ahci_identify_device(struct hba_port* port)
386 // 用于重新识别设备(比如在热插拔的情况下)
388 return ahci_init_device(port);
392 achi_register_ops(struct hba_port* port)
394 port->device->ops.identify = ahci_identify_device;
395 if (!(port->device->flags & HBA_DEV_FATAPI)) {
396 port->device->ops.read_buffer = sata_read_buffer;
397 port->device->ops.write_buffer = sata_write_buffer;
399 port->device->ops.read_buffer = scsi_read_buffer;
400 port->device->ops.write_buffer = scsi_write_buffer;