18c2ecf20Sopenharmony_ci// SPDX-License-Identifier: GPL-2.0+ 28c2ecf20Sopenharmony_ci/* 38c2ecf20Sopenharmony_ci * Mellanox boot control driver 48c2ecf20Sopenharmony_ci * 58c2ecf20Sopenharmony_ci * This driver provides a sysfs interface for systems management 68c2ecf20Sopenharmony_ci * software to manage reset-time actions. 78c2ecf20Sopenharmony_ci * 88c2ecf20Sopenharmony_ci * Copyright (C) 2019 Mellanox Technologies 98c2ecf20Sopenharmony_ci */ 108c2ecf20Sopenharmony_ci 118c2ecf20Sopenharmony_ci#include <linux/acpi.h> 128c2ecf20Sopenharmony_ci#include <linux/arm-smccc.h> 138c2ecf20Sopenharmony_ci#include <linux/module.h> 148c2ecf20Sopenharmony_ci#include <linux/platform_device.h> 158c2ecf20Sopenharmony_ci 168c2ecf20Sopenharmony_ci#include "mlxbf-bootctl.h" 178c2ecf20Sopenharmony_ci 188c2ecf20Sopenharmony_ci#define MLXBF_BOOTCTL_SB_SECURE_MASK 0x03 198c2ecf20Sopenharmony_ci#define MLXBF_BOOTCTL_SB_TEST_MASK 0x0c 208c2ecf20Sopenharmony_ci#define MLXBF_BOOTCTL_SB_DEV_MASK BIT(4) 218c2ecf20Sopenharmony_ci 228c2ecf20Sopenharmony_ci#define MLXBF_SB_KEY_NUM 4 238c2ecf20Sopenharmony_ci 248c2ecf20Sopenharmony_ci/* UUID used to probe ATF service. */ 258c2ecf20Sopenharmony_cistatic const char *mlxbf_bootctl_svc_uuid_str = 268c2ecf20Sopenharmony_ci "89c036b4-e7d7-11e6-8797-001aca00bfc4"; 278c2ecf20Sopenharmony_ci 288c2ecf20Sopenharmony_cistruct mlxbf_bootctl_name { 298c2ecf20Sopenharmony_ci u32 value; 308c2ecf20Sopenharmony_ci const char *name; 318c2ecf20Sopenharmony_ci}; 328c2ecf20Sopenharmony_ci 338c2ecf20Sopenharmony_cistatic struct mlxbf_bootctl_name boot_names[] = { 348c2ecf20Sopenharmony_ci { MLXBF_BOOTCTL_EXTERNAL, "external" }, 358c2ecf20Sopenharmony_ci { MLXBF_BOOTCTL_EMMC, "emmc" }, 368c2ecf20Sopenharmony_ci { MLNX_BOOTCTL_SWAP_EMMC, "swap_emmc" }, 378c2ecf20Sopenharmony_ci { MLXBF_BOOTCTL_EMMC_LEGACY, "emmc_legacy" }, 388c2ecf20Sopenharmony_ci { MLXBF_BOOTCTL_NONE, "none" }, 398c2ecf20Sopenharmony_ci}; 408c2ecf20Sopenharmony_ci 418c2ecf20Sopenharmony_cienum { 428c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_SB_LIFECYCLE_PRODUCTION = 0, 438c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_SB_LIFECYCLE_GA_SECURE = 1, 448c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_SB_LIFECYCLE_GA_NON_SECURE = 2, 458c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_SB_LIFECYCLE_RMA = 3 468c2ecf20Sopenharmony_ci}; 478c2ecf20Sopenharmony_ci 488c2ecf20Sopenharmony_cistatic const char * const mlxbf_bootctl_lifecycle_states[] = { 498c2ecf20Sopenharmony_ci [MLXBF_BOOTCTL_SB_LIFECYCLE_PRODUCTION] = "Production", 508c2ecf20Sopenharmony_ci [MLXBF_BOOTCTL_SB_LIFECYCLE_GA_SECURE] = "GA Secured", 518c2ecf20Sopenharmony_ci [MLXBF_BOOTCTL_SB_LIFECYCLE_GA_NON_SECURE] = "GA Non-Secured", 528c2ecf20Sopenharmony_ci [MLXBF_BOOTCTL_SB_LIFECYCLE_RMA] = "RMA", 538c2ecf20Sopenharmony_ci}; 548c2ecf20Sopenharmony_ci 558c2ecf20Sopenharmony_ci/* ARM SMC call which is atomic and no need for lock. */ 568c2ecf20Sopenharmony_cistatic int mlxbf_bootctl_smc(unsigned int smc_op, int smc_arg) 578c2ecf20Sopenharmony_ci{ 588c2ecf20Sopenharmony_ci struct arm_smccc_res res; 598c2ecf20Sopenharmony_ci 608c2ecf20Sopenharmony_ci arm_smccc_smc(smc_op, smc_arg, 0, 0, 0, 0, 0, 0, &res); 618c2ecf20Sopenharmony_ci 628c2ecf20Sopenharmony_ci return res.a0; 638c2ecf20Sopenharmony_ci} 648c2ecf20Sopenharmony_ci 658c2ecf20Sopenharmony_ci/* Return the action in integer or an error code. */ 668c2ecf20Sopenharmony_cistatic int mlxbf_bootctl_reset_action_to_val(const char *action) 678c2ecf20Sopenharmony_ci{ 688c2ecf20Sopenharmony_ci int i; 698c2ecf20Sopenharmony_ci 708c2ecf20Sopenharmony_ci for (i = 0; i < ARRAY_SIZE(boot_names); i++) 718c2ecf20Sopenharmony_ci if (sysfs_streq(boot_names[i].name, action)) 728c2ecf20Sopenharmony_ci return boot_names[i].value; 738c2ecf20Sopenharmony_ci 748c2ecf20Sopenharmony_ci return -EINVAL; 758c2ecf20Sopenharmony_ci} 768c2ecf20Sopenharmony_ci 778c2ecf20Sopenharmony_ci/* Return the action in string. */ 788c2ecf20Sopenharmony_cistatic const char *mlxbf_bootctl_action_to_string(int action) 798c2ecf20Sopenharmony_ci{ 808c2ecf20Sopenharmony_ci int i; 818c2ecf20Sopenharmony_ci 828c2ecf20Sopenharmony_ci for (i = 0; i < ARRAY_SIZE(boot_names); i++) 838c2ecf20Sopenharmony_ci if (boot_names[i].value == action) 848c2ecf20Sopenharmony_ci return boot_names[i].name; 858c2ecf20Sopenharmony_ci 868c2ecf20Sopenharmony_ci return "invalid action"; 878c2ecf20Sopenharmony_ci} 888c2ecf20Sopenharmony_ci 898c2ecf20Sopenharmony_cistatic ssize_t post_reset_wdog_show(struct device *dev, 908c2ecf20Sopenharmony_ci struct device_attribute *attr, char *buf) 918c2ecf20Sopenharmony_ci{ 928c2ecf20Sopenharmony_ci int ret; 938c2ecf20Sopenharmony_ci 948c2ecf20Sopenharmony_ci ret = mlxbf_bootctl_smc(MLXBF_BOOTCTL_GET_POST_RESET_WDOG, 0); 958c2ecf20Sopenharmony_ci if (ret < 0) 968c2ecf20Sopenharmony_ci return ret; 978c2ecf20Sopenharmony_ci 988c2ecf20Sopenharmony_ci return sprintf(buf, "%d\n", ret); 998c2ecf20Sopenharmony_ci} 1008c2ecf20Sopenharmony_ci 1018c2ecf20Sopenharmony_cistatic ssize_t post_reset_wdog_store(struct device *dev, 1028c2ecf20Sopenharmony_ci struct device_attribute *attr, 1038c2ecf20Sopenharmony_ci const char *buf, size_t count) 1048c2ecf20Sopenharmony_ci{ 1058c2ecf20Sopenharmony_ci unsigned long value; 1068c2ecf20Sopenharmony_ci int ret; 1078c2ecf20Sopenharmony_ci 1088c2ecf20Sopenharmony_ci ret = kstrtoul(buf, 10, &value); 1098c2ecf20Sopenharmony_ci if (ret) 1108c2ecf20Sopenharmony_ci return ret; 1118c2ecf20Sopenharmony_ci 1128c2ecf20Sopenharmony_ci ret = mlxbf_bootctl_smc(MLXBF_BOOTCTL_SET_POST_RESET_WDOG, value); 1138c2ecf20Sopenharmony_ci if (ret < 0) 1148c2ecf20Sopenharmony_ci return ret; 1158c2ecf20Sopenharmony_ci 1168c2ecf20Sopenharmony_ci return count; 1178c2ecf20Sopenharmony_ci} 1188c2ecf20Sopenharmony_ci 1198c2ecf20Sopenharmony_cistatic ssize_t mlxbf_bootctl_show(int smc_op, char *buf) 1208c2ecf20Sopenharmony_ci{ 1218c2ecf20Sopenharmony_ci int action; 1228c2ecf20Sopenharmony_ci 1238c2ecf20Sopenharmony_ci action = mlxbf_bootctl_smc(smc_op, 0); 1248c2ecf20Sopenharmony_ci if (action < 0) 1258c2ecf20Sopenharmony_ci return action; 1268c2ecf20Sopenharmony_ci 1278c2ecf20Sopenharmony_ci return sprintf(buf, "%s\n", mlxbf_bootctl_action_to_string(action)); 1288c2ecf20Sopenharmony_ci} 1298c2ecf20Sopenharmony_ci 1308c2ecf20Sopenharmony_cistatic int mlxbf_bootctl_store(int smc_op, const char *buf, size_t count) 1318c2ecf20Sopenharmony_ci{ 1328c2ecf20Sopenharmony_ci int ret, action; 1338c2ecf20Sopenharmony_ci 1348c2ecf20Sopenharmony_ci action = mlxbf_bootctl_reset_action_to_val(buf); 1358c2ecf20Sopenharmony_ci if (action < 0) 1368c2ecf20Sopenharmony_ci return action; 1378c2ecf20Sopenharmony_ci 1388c2ecf20Sopenharmony_ci ret = mlxbf_bootctl_smc(smc_op, action); 1398c2ecf20Sopenharmony_ci if (ret < 0) 1408c2ecf20Sopenharmony_ci return ret; 1418c2ecf20Sopenharmony_ci 1428c2ecf20Sopenharmony_ci return count; 1438c2ecf20Sopenharmony_ci} 1448c2ecf20Sopenharmony_ci 1458c2ecf20Sopenharmony_cistatic ssize_t reset_action_show(struct device *dev, 1468c2ecf20Sopenharmony_ci struct device_attribute *attr, char *buf) 1478c2ecf20Sopenharmony_ci{ 1488c2ecf20Sopenharmony_ci return mlxbf_bootctl_show(MLXBF_BOOTCTL_GET_RESET_ACTION, buf); 1498c2ecf20Sopenharmony_ci} 1508c2ecf20Sopenharmony_ci 1518c2ecf20Sopenharmony_cistatic ssize_t reset_action_store(struct device *dev, 1528c2ecf20Sopenharmony_ci struct device_attribute *attr, 1538c2ecf20Sopenharmony_ci const char *buf, size_t count) 1548c2ecf20Sopenharmony_ci{ 1558c2ecf20Sopenharmony_ci return mlxbf_bootctl_store(MLXBF_BOOTCTL_SET_RESET_ACTION, buf, count); 1568c2ecf20Sopenharmony_ci} 1578c2ecf20Sopenharmony_ci 1588c2ecf20Sopenharmony_cistatic ssize_t second_reset_action_show(struct device *dev, 1598c2ecf20Sopenharmony_ci struct device_attribute *attr, 1608c2ecf20Sopenharmony_ci char *buf) 1618c2ecf20Sopenharmony_ci{ 1628c2ecf20Sopenharmony_ci return mlxbf_bootctl_show(MLXBF_BOOTCTL_GET_SECOND_RESET_ACTION, buf); 1638c2ecf20Sopenharmony_ci} 1648c2ecf20Sopenharmony_ci 1658c2ecf20Sopenharmony_cistatic ssize_t second_reset_action_store(struct device *dev, 1668c2ecf20Sopenharmony_ci struct device_attribute *attr, 1678c2ecf20Sopenharmony_ci const char *buf, size_t count) 1688c2ecf20Sopenharmony_ci{ 1698c2ecf20Sopenharmony_ci return mlxbf_bootctl_store(MLXBF_BOOTCTL_SET_SECOND_RESET_ACTION, buf, 1708c2ecf20Sopenharmony_ci count); 1718c2ecf20Sopenharmony_ci} 1728c2ecf20Sopenharmony_ci 1738c2ecf20Sopenharmony_cistatic ssize_t lifecycle_state_show(struct device *dev, 1748c2ecf20Sopenharmony_ci struct device_attribute *attr, char *buf) 1758c2ecf20Sopenharmony_ci{ 1768c2ecf20Sopenharmony_ci int status_bits; 1778c2ecf20Sopenharmony_ci int use_dev_key; 1788c2ecf20Sopenharmony_ci int test_state; 1798c2ecf20Sopenharmony_ci int lc_state; 1808c2ecf20Sopenharmony_ci 1818c2ecf20Sopenharmony_ci status_bits = mlxbf_bootctl_smc(MLXBF_BOOTCTL_GET_TBB_FUSE_STATUS, 1828c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_FUSE_STATUS_LIFECYCLE); 1838c2ecf20Sopenharmony_ci if (status_bits < 0) 1848c2ecf20Sopenharmony_ci return status_bits; 1858c2ecf20Sopenharmony_ci 1868c2ecf20Sopenharmony_ci use_dev_key = status_bits & MLXBF_BOOTCTL_SB_DEV_MASK; 1878c2ecf20Sopenharmony_ci test_state = status_bits & MLXBF_BOOTCTL_SB_TEST_MASK; 1888c2ecf20Sopenharmony_ci lc_state = status_bits & MLXBF_BOOTCTL_SB_SECURE_MASK; 1898c2ecf20Sopenharmony_ci 1908c2ecf20Sopenharmony_ci /* 1918c2ecf20Sopenharmony_ci * If the test bits are set, we specify that the current state may be 1928c2ecf20Sopenharmony_ci * due to using the test bits. 1938c2ecf20Sopenharmony_ci */ 1948c2ecf20Sopenharmony_ci if (test_state) { 1958c2ecf20Sopenharmony_ci return sprintf(buf, "%s(test)\n", 1968c2ecf20Sopenharmony_ci mlxbf_bootctl_lifecycle_states[lc_state]); 1978c2ecf20Sopenharmony_ci } else if (use_dev_key && 1988c2ecf20Sopenharmony_ci (lc_state == MLXBF_BOOTCTL_SB_LIFECYCLE_GA_SECURE)) { 1998c2ecf20Sopenharmony_ci return sprintf(buf, "Secured (development)\n"); 2008c2ecf20Sopenharmony_ci } 2018c2ecf20Sopenharmony_ci 2028c2ecf20Sopenharmony_ci return sprintf(buf, "%s\n", mlxbf_bootctl_lifecycle_states[lc_state]); 2038c2ecf20Sopenharmony_ci} 2048c2ecf20Sopenharmony_ci 2058c2ecf20Sopenharmony_cistatic ssize_t secure_boot_fuse_state_show(struct device *dev, 2068c2ecf20Sopenharmony_ci struct device_attribute *attr, 2078c2ecf20Sopenharmony_ci char *buf) 2088c2ecf20Sopenharmony_ci{ 2098c2ecf20Sopenharmony_ci int burnt, valid, key, key_state, buf_len = 0, upper_key_used = 0; 2108c2ecf20Sopenharmony_ci const char *status; 2118c2ecf20Sopenharmony_ci 2128c2ecf20Sopenharmony_ci key_state = mlxbf_bootctl_smc(MLXBF_BOOTCTL_GET_TBB_FUSE_STATUS, 2138c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_FUSE_STATUS_KEYS); 2148c2ecf20Sopenharmony_ci if (key_state < 0) 2158c2ecf20Sopenharmony_ci return key_state; 2168c2ecf20Sopenharmony_ci 2178c2ecf20Sopenharmony_ci /* 2188c2ecf20Sopenharmony_ci * key_state contains the bits for 4 Key versions, loaded from eFuses 2198c2ecf20Sopenharmony_ci * after a hard reset. Lower 4 bits are a thermometer code indicating 2208c2ecf20Sopenharmony_ci * key programming has started for key n (0000 = none, 0001 = version 0, 2218c2ecf20Sopenharmony_ci * 0011 = version 1, 0111 = version 2, 1111 = version 3). Upper 4 bits 2228c2ecf20Sopenharmony_ci * are a thermometer code indicating key programming has completed for 2238c2ecf20Sopenharmony_ci * key n (same encodings as the start bits). This allows for detection 2248c2ecf20Sopenharmony_ci * of an interruption in the progamming process which has left the key 2258c2ecf20Sopenharmony_ci * partially programmed (and thus invalid). The process is to burn the 2268c2ecf20Sopenharmony_ci * eFuse for the new key start bit, burn the key eFuses, then burn the 2278c2ecf20Sopenharmony_ci * eFuse for the new key complete bit. 2288c2ecf20Sopenharmony_ci * 2298c2ecf20Sopenharmony_ci * For example 0000_0000: no key valid, 0001_0001: key version 0 valid, 2308c2ecf20Sopenharmony_ci * 0011_0011: key 1 version valid, 0011_0111: key version 2 started 2318c2ecf20Sopenharmony_ci * programming but did not complete, etc. The most recent key for which 2328c2ecf20Sopenharmony_ci * both start and complete bit is set is loaded. On soft reset, this 2338c2ecf20Sopenharmony_ci * register is not modified. 2348c2ecf20Sopenharmony_ci */ 2358c2ecf20Sopenharmony_ci for (key = MLXBF_SB_KEY_NUM - 1; key >= 0; key--) { 2368c2ecf20Sopenharmony_ci burnt = key_state & BIT(key); 2378c2ecf20Sopenharmony_ci valid = key_state & BIT(key + MLXBF_SB_KEY_NUM); 2388c2ecf20Sopenharmony_ci 2398c2ecf20Sopenharmony_ci if (burnt && valid) 2408c2ecf20Sopenharmony_ci upper_key_used = 1; 2418c2ecf20Sopenharmony_ci 2428c2ecf20Sopenharmony_ci if (upper_key_used) { 2438c2ecf20Sopenharmony_ci if (burnt) 2448c2ecf20Sopenharmony_ci status = valid ? "Used" : "Wasted"; 2458c2ecf20Sopenharmony_ci else 2468c2ecf20Sopenharmony_ci status = valid ? "Invalid" : "Skipped"; 2478c2ecf20Sopenharmony_ci } else { 2488c2ecf20Sopenharmony_ci if (burnt) 2498c2ecf20Sopenharmony_ci status = valid ? "InUse" : "Incomplete"; 2508c2ecf20Sopenharmony_ci else 2518c2ecf20Sopenharmony_ci status = valid ? "Invalid" : "Free"; 2528c2ecf20Sopenharmony_ci } 2538c2ecf20Sopenharmony_ci buf_len += sprintf(buf + buf_len, "%d:%s ", key, status); 2548c2ecf20Sopenharmony_ci } 2558c2ecf20Sopenharmony_ci buf_len += sprintf(buf + buf_len, "\n"); 2568c2ecf20Sopenharmony_ci 2578c2ecf20Sopenharmony_ci return buf_len; 2588c2ecf20Sopenharmony_ci} 2598c2ecf20Sopenharmony_ci 2608c2ecf20Sopenharmony_cistatic DEVICE_ATTR_RW(post_reset_wdog); 2618c2ecf20Sopenharmony_cistatic DEVICE_ATTR_RW(reset_action); 2628c2ecf20Sopenharmony_cistatic DEVICE_ATTR_RW(second_reset_action); 2638c2ecf20Sopenharmony_cistatic DEVICE_ATTR_RO(lifecycle_state); 2648c2ecf20Sopenharmony_cistatic DEVICE_ATTR_RO(secure_boot_fuse_state); 2658c2ecf20Sopenharmony_ci 2668c2ecf20Sopenharmony_cistatic struct attribute *mlxbf_bootctl_attrs[] = { 2678c2ecf20Sopenharmony_ci &dev_attr_post_reset_wdog.attr, 2688c2ecf20Sopenharmony_ci &dev_attr_reset_action.attr, 2698c2ecf20Sopenharmony_ci &dev_attr_second_reset_action.attr, 2708c2ecf20Sopenharmony_ci &dev_attr_lifecycle_state.attr, 2718c2ecf20Sopenharmony_ci &dev_attr_secure_boot_fuse_state.attr, 2728c2ecf20Sopenharmony_ci NULL 2738c2ecf20Sopenharmony_ci}; 2748c2ecf20Sopenharmony_ci 2758c2ecf20Sopenharmony_ciATTRIBUTE_GROUPS(mlxbf_bootctl); 2768c2ecf20Sopenharmony_ci 2778c2ecf20Sopenharmony_cistatic const struct acpi_device_id mlxbf_bootctl_acpi_ids[] = { 2788c2ecf20Sopenharmony_ci {"MLNXBF04", 0}, 2798c2ecf20Sopenharmony_ci {} 2808c2ecf20Sopenharmony_ci}; 2818c2ecf20Sopenharmony_ci 2828c2ecf20Sopenharmony_ciMODULE_DEVICE_TABLE(acpi, mlxbf_bootctl_acpi_ids); 2838c2ecf20Sopenharmony_ci 2848c2ecf20Sopenharmony_cistatic bool mlxbf_bootctl_guid_match(const guid_t *guid, 2858c2ecf20Sopenharmony_ci const struct arm_smccc_res *res) 2868c2ecf20Sopenharmony_ci{ 2878c2ecf20Sopenharmony_ci guid_t id = GUID_INIT(res->a0, res->a1, res->a1 >> 16, 2888c2ecf20Sopenharmony_ci res->a2, res->a2 >> 8, res->a2 >> 16, 2898c2ecf20Sopenharmony_ci res->a2 >> 24, res->a3, res->a3 >> 8, 2908c2ecf20Sopenharmony_ci res->a3 >> 16, res->a3 >> 24); 2918c2ecf20Sopenharmony_ci 2928c2ecf20Sopenharmony_ci return guid_equal(guid, &id); 2938c2ecf20Sopenharmony_ci} 2948c2ecf20Sopenharmony_ci 2958c2ecf20Sopenharmony_cistatic int mlxbf_bootctl_probe(struct platform_device *pdev) 2968c2ecf20Sopenharmony_ci{ 2978c2ecf20Sopenharmony_ci struct arm_smccc_res res = { 0 }; 2988c2ecf20Sopenharmony_ci guid_t guid; 2998c2ecf20Sopenharmony_ci int ret; 3008c2ecf20Sopenharmony_ci 3018c2ecf20Sopenharmony_ci /* Ensure we have the UUID we expect for this service. */ 3028c2ecf20Sopenharmony_ci arm_smccc_smc(MLXBF_BOOTCTL_SIP_SVC_UID, 0, 0, 0, 0, 0, 0, 0, &res); 3038c2ecf20Sopenharmony_ci guid_parse(mlxbf_bootctl_svc_uuid_str, &guid); 3048c2ecf20Sopenharmony_ci if (!mlxbf_bootctl_guid_match(&guid, &res)) 3058c2ecf20Sopenharmony_ci return -ENODEV; 3068c2ecf20Sopenharmony_ci 3078c2ecf20Sopenharmony_ci /* 3088c2ecf20Sopenharmony_ci * When watchdog is used, it sets boot mode to MLXBF_BOOTCTL_SWAP_EMMC 3098c2ecf20Sopenharmony_ci * in case of boot failures. However it doesn't clear the state if there 3108c2ecf20Sopenharmony_ci * is no failure. Restore the default boot mode here to avoid any 3118c2ecf20Sopenharmony_ci * unnecessary boot partition swapping. 3128c2ecf20Sopenharmony_ci */ 3138c2ecf20Sopenharmony_ci ret = mlxbf_bootctl_smc(MLXBF_BOOTCTL_SET_RESET_ACTION, 3148c2ecf20Sopenharmony_ci MLXBF_BOOTCTL_EMMC); 3158c2ecf20Sopenharmony_ci if (ret < 0) 3168c2ecf20Sopenharmony_ci dev_warn(&pdev->dev, "Unable to reset the EMMC boot mode\n"); 3178c2ecf20Sopenharmony_ci 3188c2ecf20Sopenharmony_ci return 0; 3198c2ecf20Sopenharmony_ci} 3208c2ecf20Sopenharmony_ci 3218c2ecf20Sopenharmony_cistatic struct platform_driver mlxbf_bootctl_driver = { 3228c2ecf20Sopenharmony_ci .probe = mlxbf_bootctl_probe, 3238c2ecf20Sopenharmony_ci .driver = { 3248c2ecf20Sopenharmony_ci .name = "mlxbf-bootctl", 3258c2ecf20Sopenharmony_ci .dev_groups = mlxbf_bootctl_groups, 3268c2ecf20Sopenharmony_ci .acpi_match_table = mlxbf_bootctl_acpi_ids, 3278c2ecf20Sopenharmony_ci } 3288c2ecf20Sopenharmony_ci}; 3298c2ecf20Sopenharmony_ci 3308c2ecf20Sopenharmony_cimodule_platform_driver(mlxbf_bootctl_driver); 3318c2ecf20Sopenharmony_ci 3328c2ecf20Sopenharmony_ciMODULE_DESCRIPTION("Mellanox boot control driver"); 3338c2ecf20Sopenharmony_ciMODULE_LICENSE("GPL v2"); 3348c2ecf20Sopenharmony_ciMODULE_AUTHOR("Mellanox Technologies"); 335