1 // SPDX-License-Identifier: GPL-2.0-only
3 * AMD Secure Encrypted Virtualization (SEV) interface
5 * Copyright (C) 2016,2019 Advanced Micro Devices, Inc.
7 * Author: Brijesh Singh <brijesh.singh@amd.com>
10 #include <linux/module.h>
11 #include <linux/kernel.h>
12 #include <linux/kthread.h>
13 #include <linux/sched.h>
14 #include <linux/interrupt.h>
15 #include <linux/spinlock.h>
16 #include <linux/spinlock_types.h>
17 #include <linux/types.h>
18 #include <linux/mutex.h>
19 #include <linux/delay.h>
20 #include <linux/hw_random.h>
21 #include <linux/ccp.h>
22 #include <linux/firmware.h>
29 #define DEVICE_NAME "sev"
30 #define SEV_FW_FILE "amd/sev.fw"
31 #define SEV_FW_NAME_SIZE 64
33 static DEFINE_MUTEX(sev_cmd_mutex
);
34 static struct sev_misc_dev
*misc_dev
;
36 static int psp_cmd_timeout
= 100;
37 module_param(psp_cmd_timeout
, int, 0644);
38 MODULE_PARM_DESC(psp_cmd_timeout
, " default timeout value, in seconds, for PSP commands");
40 static int psp_probe_timeout
= 5;
41 module_param(psp_probe_timeout
, int, 0644);
42 MODULE_PARM_DESC(psp_probe_timeout
, " default timeout value, in seconds, during PSP device probe");
45 static int psp_timeout
;
47 static inline bool sev_version_greater_or_equal(u8 maj
, u8 min
)
49 struct sev_device
*sev
= psp_master
->sev_data
;
51 if (sev
->api_major
> maj
)
54 if (sev
->api_major
== maj
&& sev
->api_minor
>= min
)
60 static void sev_irq_handler(int irq
, void *data
, unsigned int status
)
62 struct sev_device
*sev
= data
;
65 /* Check if it is command completion: */
66 if (!(status
& SEV_CMD_COMPLETE
))
69 /* Check if it is SEV command completion: */
70 reg
= ioread32(sev
->io_regs
+ sev
->vdata
->cmdresp_reg
);
71 if (reg
& PSP_CMDRESP_RESP
) {
73 wake_up(&sev
->int_queue
);
77 static int sev_wait_cmd_ioc(struct sev_device
*sev
,
78 unsigned int *reg
, unsigned int timeout
)
82 ret
= wait_event_timeout(sev
->int_queue
,
83 sev
->int_rcvd
, timeout
* HZ
);
87 *reg
= ioread32(sev
->io_regs
+ sev
->vdata
->cmdresp_reg
);
92 static int sev_cmd_buffer_len(int cmd
)
95 case SEV_CMD_INIT
: return sizeof(struct sev_data_init
);
96 case SEV_CMD_PLATFORM_STATUS
: return sizeof(struct sev_user_data_status
);
97 case SEV_CMD_PEK_CSR
: return sizeof(struct sev_data_pek_csr
);
98 case SEV_CMD_PEK_CERT_IMPORT
: return sizeof(struct sev_data_pek_cert_import
);
99 case SEV_CMD_PDH_CERT_EXPORT
: return sizeof(struct sev_data_pdh_cert_export
);
100 case SEV_CMD_LAUNCH_START
: return sizeof(struct sev_data_launch_start
);
101 case SEV_CMD_LAUNCH_UPDATE_DATA
: return sizeof(struct sev_data_launch_update_data
);
102 case SEV_CMD_LAUNCH_UPDATE_VMSA
: return sizeof(struct sev_data_launch_update_vmsa
);
103 case SEV_CMD_LAUNCH_FINISH
: return sizeof(struct sev_data_launch_finish
);
104 case SEV_CMD_LAUNCH_MEASURE
: return sizeof(struct sev_data_launch_measure
);
105 case SEV_CMD_ACTIVATE
: return sizeof(struct sev_data_activate
);
106 case SEV_CMD_DEACTIVATE
: return sizeof(struct sev_data_deactivate
);
107 case SEV_CMD_DECOMMISSION
: return sizeof(struct sev_data_decommission
);
108 case SEV_CMD_GUEST_STATUS
: return sizeof(struct sev_data_guest_status
);
109 case SEV_CMD_DBG_DECRYPT
: return sizeof(struct sev_data_dbg
);
110 case SEV_CMD_DBG_ENCRYPT
: return sizeof(struct sev_data_dbg
);
111 case SEV_CMD_SEND_START
: return sizeof(struct sev_data_send_start
);
112 case SEV_CMD_SEND_UPDATE_DATA
: return sizeof(struct sev_data_send_update_data
);
113 case SEV_CMD_SEND_UPDATE_VMSA
: return sizeof(struct sev_data_send_update_vmsa
);
114 case SEV_CMD_SEND_FINISH
: return sizeof(struct sev_data_send_finish
);
115 case SEV_CMD_RECEIVE_START
: return sizeof(struct sev_data_receive_start
);
116 case SEV_CMD_RECEIVE_FINISH
: return sizeof(struct sev_data_receive_finish
);
117 case SEV_CMD_RECEIVE_UPDATE_DATA
: return sizeof(struct sev_data_receive_update_data
);
118 case SEV_CMD_RECEIVE_UPDATE_VMSA
: return sizeof(struct sev_data_receive_update_vmsa
);
119 case SEV_CMD_LAUNCH_UPDATE_SECRET
: return sizeof(struct sev_data_launch_secret
);
120 case SEV_CMD_DOWNLOAD_FIRMWARE
: return sizeof(struct sev_data_download_firmware
);
121 case SEV_CMD_GET_ID
: return sizeof(struct sev_data_get_id
);
128 static int __sev_do_cmd_locked(int cmd
, void *data
, int *psp_ret
)
130 struct psp_device
*psp
= psp_master
;
131 struct sev_device
*sev
;
132 unsigned int phys_lsb
, phys_msb
;
133 unsigned int reg
, ret
= 0;
135 if (!psp
|| !psp
->sev_data
)
143 /* Get the physical address of the command buffer */
144 phys_lsb
= data
? lower_32_bits(__psp_pa(data
)) : 0;
145 phys_msb
= data
? upper_32_bits(__psp_pa(data
)) : 0;
147 dev_dbg(sev
->dev
, "sev command id %#x buffer 0x%08x%08x timeout %us\n",
148 cmd
, phys_msb
, phys_lsb
, psp_timeout
);
150 print_hex_dump_debug("(in): ", DUMP_PREFIX_OFFSET
, 16, 2, data
,
151 sev_cmd_buffer_len(cmd
), false);
153 iowrite32(phys_lsb
, sev
->io_regs
+ sev
->vdata
->cmdbuff_addr_lo_reg
);
154 iowrite32(phys_msb
, sev
->io_regs
+ sev
->vdata
->cmdbuff_addr_hi_reg
);
159 reg
<<= SEV_CMDRESP_CMD_SHIFT
;
160 reg
|= SEV_CMDRESP_IOC
;
161 iowrite32(reg
, sev
->io_regs
+ sev
->vdata
->cmdresp_reg
);
163 /* wait for command completion */
164 ret
= sev_wait_cmd_ioc(sev
, ®
, psp_timeout
);
169 dev_err(sev
->dev
, "sev command %#x timed out, disabling PSP\n", cmd
);
175 psp_timeout
= psp_cmd_timeout
;
178 *psp_ret
= reg
& PSP_CMDRESP_ERR_MASK
;
180 if (reg
& PSP_CMDRESP_ERR_MASK
) {
181 dev_dbg(sev
->dev
, "sev command %#x failed (%#010x)\n",
182 cmd
, reg
& PSP_CMDRESP_ERR_MASK
);
186 print_hex_dump_debug("(out): ", DUMP_PREFIX_OFFSET
, 16, 2, data
,
187 sev_cmd_buffer_len(cmd
), false);
192 static int sev_do_cmd(int cmd
, void *data
, int *psp_ret
)
196 mutex_lock(&sev_cmd_mutex
);
197 rc
= __sev_do_cmd_locked(cmd
, data
, psp_ret
);
198 mutex_unlock(&sev_cmd_mutex
);
203 static int __sev_platform_init_locked(int *error
)
205 struct psp_device
*psp
= psp_master
;
206 struct sev_device
*sev
;
209 if (!psp
|| !psp
->sev_data
)
214 if (sev
->state
== SEV_STATE_INIT
)
217 rc
= __sev_do_cmd_locked(SEV_CMD_INIT
, &sev
->init_cmd_buf
, error
);
221 sev
->state
= SEV_STATE_INIT
;
223 /* Prepare for first SEV guest launch after INIT */
224 wbinvd_on_all_cpus();
225 rc
= __sev_do_cmd_locked(SEV_CMD_DF_FLUSH
, NULL
, error
);
229 dev_dbg(sev
->dev
, "SEV firmware initialized\n");
234 int sev_platform_init(int *error
)
238 mutex_lock(&sev_cmd_mutex
);
239 rc
= __sev_platform_init_locked(error
);
240 mutex_unlock(&sev_cmd_mutex
);
244 EXPORT_SYMBOL_GPL(sev_platform_init
);
246 static int __sev_platform_shutdown_locked(int *error
)
248 struct sev_device
*sev
= psp_master
->sev_data
;
251 ret
= __sev_do_cmd_locked(SEV_CMD_SHUTDOWN
, NULL
, error
);
255 sev
->state
= SEV_STATE_UNINIT
;
256 dev_dbg(sev
->dev
, "SEV firmware shutdown\n");
261 static int sev_platform_shutdown(int *error
)
265 mutex_lock(&sev_cmd_mutex
);
266 rc
= __sev_platform_shutdown_locked(NULL
);
267 mutex_unlock(&sev_cmd_mutex
);
272 static int sev_get_platform_state(int *state
, int *error
)
274 struct sev_device
*sev
= psp_master
->sev_data
;
277 rc
= __sev_do_cmd_locked(SEV_CMD_PLATFORM_STATUS
,
278 &sev
->status_cmd_buf
, error
);
282 *state
= sev
->status_cmd_buf
.state
;
286 static int sev_ioctl_do_reset(struct sev_issue_cmd
*argp
)
290 if (!capable(CAP_SYS_ADMIN
))
294 * The SEV spec requires that FACTORY_RESET must be issued in
295 * UNINIT state. Before we go further lets check if any guest is
298 * If FW is in WORKING state then deny the request otherwise issue
299 * SHUTDOWN command do INIT -> UNINIT before issuing the FACTORY_RESET.
302 rc
= sev_get_platform_state(&state
, &argp
->error
);
306 if (state
== SEV_STATE_WORKING
)
309 if (state
== SEV_STATE_INIT
) {
310 rc
= __sev_platform_shutdown_locked(&argp
->error
);
315 return __sev_do_cmd_locked(SEV_CMD_FACTORY_RESET
, NULL
, &argp
->error
);
318 static int sev_ioctl_do_platform_status(struct sev_issue_cmd
*argp
)
320 struct sev_device
*sev
= psp_master
->sev_data
;
321 struct sev_user_data_status
*data
= &sev
->status_cmd_buf
;
324 ret
= __sev_do_cmd_locked(SEV_CMD_PLATFORM_STATUS
, data
, &argp
->error
);
328 if (copy_to_user((void __user
*)argp
->data
, data
, sizeof(*data
)))
334 static int sev_ioctl_do_pek_pdh_gen(int cmd
, struct sev_issue_cmd
*argp
)
336 struct sev_device
*sev
= psp_master
->sev_data
;
339 if (!capable(CAP_SYS_ADMIN
))
342 if (sev
->state
== SEV_STATE_UNINIT
) {
343 rc
= __sev_platform_init_locked(&argp
->error
);
348 return __sev_do_cmd_locked(cmd
, NULL
, &argp
->error
);
351 static int sev_ioctl_do_pek_csr(struct sev_issue_cmd
*argp
)
353 struct sev_device
*sev
= psp_master
->sev_data
;
354 struct sev_user_data_pek_csr input
;
355 struct sev_data_pek_csr
*data
;
359 if (!capable(CAP_SYS_ADMIN
))
362 if (copy_from_user(&input
, (void __user
*)argp
->data
, sizeof(input
)))
365 data
= kzalloc(sizeof(*data
), GFP_KERNEL
);
369 /* userspace wants to query CSR length */
370 if (!input
.address
|| !input
.length
)
373 /* allocate a physically contiguous buffer to store the CSR blob */
374 if (!access_ok(input
.address
, input
.length
) ||
375 input
.length
> SEV_FW_BLOB_MAX_SIZE
) {
380 blob
= kmalloc(input
.length
, GFP_KERNEL
);
386 data
->address
= __psp_pa(blob
);
387 data
->len
= input
.length
;
390 if (sev
->state
== SEV_STATE_UNINIT
) {
391 ret
= __sev_platform_init_locked(&argp
->error
);
396 ret
= __sev_do_cmd_locked(SEV_CMD_PEK_CSR
, data
, &argp
->error
);
398 /* If we query the CSR length, FW responded with expected data. */
399 input
.length
= data
->len
;
401 if (copy_to_user((void __user
*)argp
->data
, &input
, sizeof(input
))) {
407 if (copy_to_user((void __user
*)input
.address
, blob
, input
.length
))
418 void *psp_copy_user_blob(u64 __user uaddr
, u32 len
)
421 return ERR_PTR(-EINVAL
);
423 /* verify that blob length does not exceed our limit */
424 if (len
> SEV_FW_BLOB_MAX_SIZE
)
425 return ERR_PTR(-EINVAL
);
427 return memdup_user((void __user
*)(uintptr_t)uaddr
, len
);
429 EXPORT_SYMBOL_GPL(psp_copy_user_blob
);
431 static int sev_get_api_version(void)
433 struct sev_device
*sev
= psp_master
->sev_data
;
434 struct sev_user_data_status
*status
;
437 status
= &sev
->status_cmd_buf
;
438 ret
= sev_platform_status(status
, &error
);
441 "SEV: failed to get status. Error: %#x\n", error
);
445 sev
->api_major
= status
->api_major
;
446 sev
->api_minor
= status
->api_minor
;
447 sev
->build
= status
->build
;
448 sev
->state
= status
->state
;
453 static int sev_get_firmware(struct device
*dev
,
454 const struct firmware
**firmware
)
456 char fw_name_specific
[SEV_FW_NAME_SIZE
];
457 char fw_name_subset
[SEV_FW_NAME_SIZE
];
459 snprintf(fw_name_specific
, sizeof(fw_name_specific
),
460 "amd/amd_sev_fam%.2xh_model%.2xh.sbin",
461 boot_cpu_data
.x86
, boot_cpu_data
.x86_model
);
463 snprintf(fw_name_subset
, sizeof(fw_name_subset
),
464 "amd/amd_sev_fam%.2xh_model%.1xxh.sbin",
465 boot_cpu_data
.x86
, (boot_cpu_data
.x86_model
& 0xf0) >> 4);
467 /* Check for SEV FW for a particular model.
468 * Ex. amd_sev_fam17h_model00h.sbin for Family 17h Model 00h
472 * Check for SEV FW common to a subset of models.
473 * Ex. amd_sev_fam17h_model0xh.sbin for
474 * Family 17h Model 00h -- Family 17h Model 0Fh
478 * Fall-back to using generic name: sev.fw
480 if ((firmware_request_nowarn(firmware
, fw_name_specific
, dev
) >= 0) ||
481 (firmware_request_nowarn(firmware
, fw_name_subset
, dev
) >= 0) ||
482 (firmware_request_nowarn(firmware
, SEV_FW_FILE
, dev
) >= 0))
488 /* Don't fail if SEV FW couldn't be updated. Continue with existing SEV FW */
489 static int sev_update_firmware(struct device
*dev
)
491 struct sev_data_download_firmware
*data
;
492 const struct firmware
*firmware
;
493 int ret
, error
, order
;
497 if (sev_get_firmware(dev
, &firmware
) == -ENOENT
) {
498 dev_dbg(dev
, "No SEV firmware file present\n");
503 * SEV FW expects the physical address given to it to be 32
504 * byte aligned. Memory allocated has structure placed at the
505 * beginning followed by the firmware being passed to the SEV
506 * FW. Allocate enough memory for data structure + alignment
509 data_size
= ALIGN(sizeof(struct sev_data_download_firmware
), 32);
511 order
= get_order(firmware
->size
+ data_size
);
512 p
= alloc_pages(GFP_KERNEL
, order
);
519 * Copy firmware data to a kernel allocated contiguous
522 data
= page_address(p
);
523 memcpy(page_address(p
) + data_size
, firmware
->data
, firmware
->size
);
525 data
->address
= __psp_pa(page_address(p
) + data_size
);
526 data
->len
= firmware
->size
;
528 ret
= sev_do_cmd(SEV_CMD_DOWNLOAD_FIRMWARE
, data
, &error
);
530 dev_dbg(dev
, "Failed to update SEV firmware: %#x\n", error
);
532 dev_info(dev
, "SEV firmware update successful\n");
534 __free_pages(p
, order
);
537 release_firmware(firmware
);
542 static int sev_ioctl_do_pek_import(struct sev_issue_cmd
*argp
)
544 struct sev_device
*sev
= psp_master
->sev_data
;
545 struct sev_user_data_pek_cert_import input
;
546 struct sev_data_pek_cert_import
*data
;
547 void *pek_blob
, *oca_blob
;
550 if (!capable(CAP_SYS_ADMIN
))
553 if (copy_from_user(&input
, (void __user
*)argp
->data
, sizeof(input
)))
556 data
= kzalloc(sizeof(*data
), GFP_KERNEL
);
560 /* copy PEK certificate blobs from userspace */
561 pek_blob
= psp_copy_user_blob(input
.pek_cert_address
, input
.pek_cert_len
);
562 if (IS_ERR(pek_blob
)) {
563 ret
= PTR_ERR(pek_blob
);
567 data
->pek_cert_address
= __psp_pa(pek_blob
);
568 data
->pek_cert_len
= input
.pek_cert_len
;
570 /* copy PEK certificate blobs from userspace */
571 oca_blob
= psp_copy_user_blob(input
.oca_cert_address
, input
.oca_cert_len
);
572 if (IS_ERR(oca_blob
)) {
573 ret
= PTR_ERR(oca_blob
);
577 data
->oca_cert_address
= __psp_pa(oca_blob
);
578 data
->oca_cert_len
= input
.oca_cert_len
;
580 /* If platform is not in INIT state then transition it to INIT */
581 if (sev
->state
!= SEV_STATE_INIT
) {
582 ret
= __sev_platform_init_locked(&argp
->error
);
587 ret
= __sev_do_cmd_locked(SEV_CMD_PEK_CERT_IMPORT
, data
, &argp
->error
);
598 static int sev_ioctl_do_get_id2(struct sev_issue_cmd
*argp
)
600 struct sev_user_data_get_id2 input
;
601 struct sev_data_get_id
*data
;
602 void *id_blob
= NULL
;
605 /* SEV GET_ID is available from SEV API v0.16 and up */
606 if (!sev_version_greater_or_equal(0, 16))
609 if (copy_from_user(&input
, (void __user
*)argp
->data
, sizeof(input
)))
612 /* Check if we have write access to the userspace buffer */
615 !access_ok(input
.address
, input
.length
))
618 data
= kzalloc(sizeof(*data
), GFP_KERNEL
);
622 if (input
.address
&& input
.length
) {
623 id_blob
= kmalloc(input
.length
, GFP_KERNEL
);
629 data
->address
= __psp_pa(id_blob
);
630 data
->len
= input
.length
;
633 ret
= __sev_do_cmd_locked(SEV_CMD_GET_ID
, data
, &argp
->error
);
636 * Firmware will return the length of the ID value (either the minimum
637 * required length or the actual length written), return it to the user.
639 input
.length
= data
->len
;
641 if (copy_to_user((void __user
*)argp
->data
, &input
, sizeof(input
))) {
647 if (copy_to_user((void __user
*)input
.address
,
648 id_blob
, data
->len
)) {
661 static int sev_ioctl_do_get_id(struct sev_issue_cmd
*argp
)
663 struct sev_data_get_id
*data
;
664 u64 data_size
, user_size
;
668 /* SEV GET_ID available from SEV API v0.16 and up */
669 if (!sev_version_greater_or_equal(0, 16))
672 /* SEV FW expects the buffer it fills with the ID to be
673 * 8-byte aligned. Memory allocated should be enough to
674 * hold data structure + alignment padding + memory
675 * where SEV FW writes the ID.
677 data_size
= ALIGN(sizeof(struct sev_data_get_id
), 8);
678 user_size
= sizeof(struct sev_user_data_get_id
);
680 mem
= kzalloc(data_size
+ user_size
, GFP_KERNEL
);
685 id_blob
= mem
+ data_size
;
687 data
->address
= __psp_pa(id_blob
);
688 data
->len
= user_size
;
690 ret
= __sev_do_cmd_locked(SEV_CMD_GET_ID
, data
, &argp
->error
);
692 if (copy_to_user((void __user
*)argp
->data
, id_blob
, data
->len
))
701 static int sev_ioctl_do_pdh_export(struct sev_issue_cmd
*argp
)
703 struct sev_device
*sev
= psp_master
->sev_data
;
704 struct sev_user_data_pdh_cert_export input
;
705 void *pdh_blob
= NULL
, *cert_blob
= NULL
;
706 struct sev_data_pdh_cert_export
*data
;
709 /* If platform is not in INIT state then transition it to INIT. */
710 if (sev
->state
!= SEV_STATE_INIT
) {
711 if (!capable(CAP_SYS_ADMIN
))
714 ret
= __sev_platform_init_locked(&argp
->error
);
719 if (copy_from_user(&input
, (void __user
*)argp
->data
, sizeof(input
)))
722 data
= kzalloc(sizeof(*data
), GFP_KERNEL
);
726 /* Userspace wants to query the certificate length. */
727 if (!input
.pdh_cert_address
||
728 !input
.pdh_cert_len
||
729 !input
.cert_chain_address
)
732 /* Allocate a physically contiguous buffer to store the PDH blob. */
733 if ((input
.pdh_cert_len
> SEV_FW_BLOB_MAX_SIZE
) ||
734 !access_ok(input
.pdh_cert_address
, input
.pdh_cert_len
)) {
739 /* Allocate a physically contiguous buffer to store the cert chain blob. */
740 if ((input
.cert_chain_len
> SEV_FW_BLOB_MAX_SIZE
) ||
741 !access_ok(input
.cert_chain_address
, input
.cert_chain_len
)) {
746 pdh_blob
= kmalloc(input
.pdh_cert_len
, GFP_KERNEL
);
752 data
->pdh_cert_address
= __psp_pa(pdh_blob
);
753 data
->pdh_cert_len
= input
.pdh_cert_len
;
755 cert_blob
= kmalloc(input
.cert_chain_len
, GFP_KERNEL
);
761 data
->cert_chain_address
= __psp_pa(cert_blob
);
762 data
->cert_chain_len
= input
.cert_chain_len
;
765 ret
= __sev_do_cmd_locked(SEV_CMD_PDH_CERT_EXPORT
, data
, &argp
->error
);
767 /* If we query the length, FW responded with expected data. */
768 input
.cert_chain_len
= data
->cert_chain_len
;
769 input
.pdh_cert_len
= data
->pdh_cert_len
;
771 if (copy_to_user((void __user
*)argp
->data
, &input
, sizeof(input
))) {
777 if (copy_to_user((void __user
*)input
.pdh_cert_address
,
778 pdh_blob
, input
.pdh_cert_len
)) {
785 if (copy_to_user((void __user
*)input
.cert_chain_address
,
786 cert_blob
, input
.cert_chain_len
))
799 static long sev_ioctl(struct file
*file
, unsigned int ioctl
, unsigned long arg
)
801 void __user
*argp
= (void __user
*)arg
;
802 struct sev_issue_cmd input
;
805 if (!psp_master
|| !psp_master
->sev_data
)
808 if (ioctl
!= SEV_ISSUE_CMD
)
811 if (copy_from_user(&input
, argp
, sizeof(struct sev_issue_cmd
)))
814 if (input
.cmd
> SEV_MAX
)
817 mutex_lock(&sev_cmd_mutex
);
821 case SEV_FACTORY_RESET
:
822 ret
= sev_ioctl_do_reset(&input
);
824 case SEV_PLATFORM_STATUS
:
825 ret
= sev_ioctl_do_platform_status(&input
);
828 ret
= sev_ioctl_do_pek_pdh_gen(SEV_CMD_PEK_GEN
, &input
);
831 ret
= sev_ioctl_do_pek_pdh_gen(SEV_CMD_PDH_GEN
, &input
);
834 ret
= sev_ioctl_do_pek_csr(&input
);
836 case SEV_PEK_CERT_IMPORT
:
837 ret
= sev_ioctl_do_pek_import(&input
);
839 case SEV_PDH_CERT_EXPORT
:
840 ret
= sev_ioctl_do_pdh_export(&input
);
843 pr_warn_once("SEV_GET_ID command is deprecated, use SEV_GET_ID2\n");
844 ret
= sev_ioctl_do_get_id(&input
);
847 ret
= sev_ioctl_do_get_id2(&input
);
854 if (copy_to_user(argp
, &input
, sizeof(struct sev_issue_cmd
)))
857 mutex_unlock(&sev_cmd_mutex
);
862 static const struct file_operations sev_fops
= {
863 .owner
= THIS_MODULE
,
864 .unlocked_ioctl
= sev_ioctl
,
867 int sev_platform_status(struct sev_user_data_status
*data
, int *error
)
869 return sev_do_cmd(SEV_CMD_PLATFORM_STATUS
, data
, error
);
871 EXPORT_SYMBOL_GPL(sev_platform_status
);
873 int sev_guest_deactivate(struct sev_data_deactivate
*data
, int *error
)
875 return sev_do_cmd(SEV_CMD_DEACTIVATE
, data
, error
);
877 EXPORT_SYMBOL_GPL(sev_guest_deactivate
);
879 int sev_guest_activate(struct sev_data_activate
*data
, int *error
)
881 return sev_do_cmd(SEV_CMD_ACTIVATE
, data
, error
);
883 EXPORT_SYMBOL_GPL(sev_guest_activate
);
885 int sev_guest_decommission(struct sev_data_decommission
*data
, int *error
)
887 return sev_do_cmd(SEV_CMD_DECOMMISSION
, data
, error
);
889 EXPORT_SYMBOL_GPL(sev_guest_decommission
);
891 int sev_guest_df_flush(int *error
)
893 return sev_do_cmd(SEV_CMD_DF_FLUSH
, NULL
, error
);
895 EXPORT_SYMBOL_GPL(sev_guest_df_flush
);
897 static void sev_exit(struct kref
*ref
)
899 struct sev_misc_dev
*misc_dev
= container_of(ref
, struct sev_misc_dev
, refcount
);
901 misc_deregister(&misc_dev
->misc
);
904 static int sev_misc_init(struct sev_device
*sev
)
906 struct device
*dev
= sev
->dev
;
910 * SEV feature support can be detected on multiple devices but the SEV
911 * FW commands must be issued on the master. During probe, we do not
912 * know the master hence we create /dev/sev on the first device probe.
913 * sev_do_cmd() finds the right master device to which to issue the
914 * command to the firmware.
917 struct miscdevice
*misc
;
919 misc_dev
= devm_kzalloc(dev
, sizeof(*misc_dev
), GFP_KERNEL
);
923 misc
= &misc_dev
->misc
;
924 misc
->minor
= MISC_DYNAMIC_MINOR
;
925 misc
->name
= DEVICE_NAME
;
926 misc
->fops
= &sev_fops
;
928 ret
= misc_register(misc
);
932 kref_init(&misc_dev
->refcount
);
934 kref_get(&misc_dev
->refcount
);
937 init_waitqueue_head(&sev
->int_queue
);
938 sev
->misc
= misc_dev
;
939 dev_dbg(dev
, "registered SEV device\n");
944 int sev_dev_init(struct psp_device
*psp
)
946 struct device
*dev
= psp
->dev
;
947 struct sev_device
*sev
;
950 sev
= devm_kzalloc(dev
, sizeof(*sev
), GFP_KERNEL
);
959 sev
->io_regs
= psp
->io_regs
;
961 sev
->vdata
= (struct sev_vdata
*)psp
->vdata
->sev
;
964 dev_err(dev
, "sev: missing driver data\n");
968 psp_set_sev_irq_handler(psp
, sev_irq_handler
, sev
);
970 ret
= sev_misc_init(sev
);
974 dev_notice(dev
, "sev enabled\n");
979 psp_clear_sev_irq_handler(psp
);
981 psp
->sev_data
= NULL
;
983 dev_notice(dev
, "sev initialization failed\n");
988 void sev_dev_destroy(struct psp_device
*psp
)
990 struct sev_device
*sev
= psp
->sev_data
;
996 kref_put(&misc_dev
->refcount
, sev_exit
);
998 psp_clear_sev_irq_handler(psp
);
1001 int sev_issue_cmd_external_user(struct file
*filep
, unsigned int cmd
,
1002 void *data
, int *error
)
1004 if (!filep
|| filep
->f_op
!= &sev_fops
)
1007 return sev_do_cmd(cmd
, data
, error
);
1009 EXPORT_SYMBOL_GPL(sev_issue_cmd_external_user
);
1011 void sev_pci_init(void)
1013 struct sev_device
*sev
= psp_master
->sev_data
;
1019 psp_timeout
= psp_probe_timeout
;
1021 if (sev_get_api_version())
1025 * If platform is not in UNINIT state then firmware upgrade and/or
1026 * platform INIT command will fail. These command require UNINIT state.
1028 * In a normal boot we should never run into case where the firmware
1029 * is not in UNINIT state on boot. But in case of kexec boot, a reboot
1030 * may not go through a typical shutdown sequence and may leave the
1031 * firmware in INIT or WORKING state.
1034 if (sev
->state
!= SEV_STATE_UNINIT
) {
1035 sev_platform_shutdown(NULL
);
1036 sev
->state
= SEV_STATE_UNINIT
;
1039 if (sev_version_greater_or_equal(0, 15) &&
1040 sev_update_firmware(sev
->dev
) == 0)
1041 sev_get_api_version();
1043 /* Initialize the platform */
1044 rc
= sev_platform_init(&error
);
1045 if (rc
&& (error
== SEV_RET_SECURE_DATA_INVALID
)) {
1047 * INIT command returned an integrity check failure
1048 * status code, meaning that firmware load and
1049 * validation of SEV related persistent data has
1050 * failed and persistent state has been erased.
1051 * Retrying INIT command here should succeed.
1053 dev_dbg(sev
->dev
, "SEV: retrying INIT command");
1054 rc
= sev_platform_init(&error
);
1058 dev_err(sev
->dev
, "SEV: failed to INIT error %#x\n", error
);
1062 dev_info(sev
->dev
, "SEV API:%d.%d build:%d\n", sev
->api_major
,
1063 sev
->api_minor
, sev
->build
);
1068 psp_master
->sev_data
= NULL
;
1071 void sev_pci_exit(void)
1073 if (!psp_master
->sev_data
)
1076 sev_platform_shutdown(NULL
);