#define pr_fmt(fmt) "%s: " fmt, __func__
#include <linux/delay.h>
#include <linux/kernel.h>
#include <linux/module.h>
#include <linux/device.h>
#include <linux/panic_notifier.h>
#include <linux/slab.h>
#include <linux/mutex.h>
#include <linux/dma-mapping.h>
#include <linux/firmware.h>
#include <linux/string.h>
#include <linux/debugfs.h>
#include <linux/rculist.h>
#include <linux/remoteproc.h>
#include <linux/iommu.h>
#include <linux/idr.h>
#include <linux/elf.h>
#include <linux/crc32.h>
#include <linux/of_reserved_mem.h>
#include <linux/virtio_ids.h>
#include <linux/virtio_ring.h>
#include <asm/byteorder.h>
#include <linux/platform_device.h>
#include "remoteproc_internal.h"
#define HIGH_BITS_MASK 0xFFFFFFFF00000000ULL
static DEFINE_MUTEX(rproc_list_mutex);
static LIST_HEAD(rproc_list);
static struct notifier_block rproc_panic_nb;
typedef int (*rproc_handle_resource_t)(struct rproc *rproc,
void *, int offset, int avail);
static int rproc_alloc_carveout(struct rproc *rproc,
struct rproc_mem_entry *mem);
static int rproc_release_carveout(struct rproc *rproc,
struct rproc_mem_entry *mem);
static DEFINE_IDA(rproc_dev_index);
static struct workqueue_struct *rproc_recovery_wq;
static const char * const rproc_crash_names[] = {
[RPROC_MMUFAULT] = "mmufault",
[RPROC_WATCHDOG] = "watchdog",
[RPROC_FATAL_ERROR] = "fatal error",
};
static const char *rproc_crash_to_string(enum rproc_crash_type type)
{
if (type < ARRAY_SIZE(rproc_crash_names))
return rproc_crash_names[type];
return "unknown";
}
static int rproc_iommu_fault(struct iommu_domain *domain, struct device *dev,
unsigned long iova, int flags, void *token)
{
struct rproc *rproc = token;
dev_err(dev, "iommu fault: da 0x%lx flags 0x%x\n", iova, flags);
rproc_report_crash(rproc, RPROC_MMUFAULT);
return -ENOSYS;
}
static int rproc_enable_iommu(struct rproc *rproc)
{
struct iommu_domain *domain;
struct device *dev = rproc->dev.parent;
int ret;
if (!rproc->has_iommu) {
dev_dbg(dev, "iommu not present\n");
return 0;
}
domain = iommu_domain_alloc(dev->bus);
if (!domain) {
dev_err(dev, "can't alloc iommu domain\n");
return -ENOMEM;
}
iommu_set_fault_handler(domain, rproc_iommu_fault, rproc);
ret = iommu_attach_device(domain, dev);
if (ret) {
dev_err(dev, "can't attach iommu device: %d\n", ret);
goto free_domain;
}
rproc->domain = domain;
return 0;
free_domain:
iommu_domain_free(domain);
return ret;
}
static void rproc_disable_iommu(struct rproc *rproc)
{
struct iommu_domain *domain = rproc->domain;
struct device *dev = rproc->dev.parent;
if (!domain)
return;
iommu_detach_device(domain, dev);
iommu_domain_free(domain);
}
phys_addr_t rproc_va_to_pa(void *cpu_addr)
{
if (is_vmalloc_addr(cpu_addr)) {
return page_to_phys(vmalloc_to_page(cpu_addr)) +
offset_in_page(cpu_addr);
}
WARN_ON(!virt_addr_valid(cpu_addr));
return virt_to_phys(cpu_addr);
}
EXPORT_SYMBOL(rproc_va_to_pa);
void *rproc_da_to_va(struct rproc *rproc, u64 da, size_t len, bool *is_iomem)
{
struct rproc_mem_entry *carveout;
void *ptr = NULL;
if (rproc->ops->da_to_va) {
ptr = rproc->ops->da_to_va(rproc, da, len, is_iomem);
if (ptr)
goto out;
}
list_for_each_entry(carveout, &rproc->carveouts, node) {
int offset = da - carveout->da;
if (!carveout->va)
continue;
if (offset < 0)
continue;
if (offset + len > carveout->len)
continue;
ptr = carveout->va + offset;
if (is_iomem)
*is_iomem = carveout->is_iomem;
break;
}
out:
return ptr;
}
EXPORT_SYMBOL(rproc_da_to_va);
__printf(2, 3)
struct rproc_mem_entry *
rproc_find_carveout_by_name(struct rproc *rproc, const char *name, ...)
{
va_list args;
char _name[32];
struct rproc_mem_entry *carveout, *mem = NULL;
if (!name)
return NULL;
va_start(args, name);
vsnprintf(_name, sizeof(_name), name, args);
va_end(args);
list_for_each_entry(carveout, &rproc->carveouts, node) {
if (!strcmp(carveout->name, _name)) {
mem = carveout;
break;
}
}
return mem;
}
static int rproc_check_carveout_da(struct rproc *rproc,
struct rproc_mem_entry *mem, u32 da, u32 len)
{
struct device *dev = &rproc->dev;
int delta;
if (len > mem->len) {
dev_err(dev, "Registered carveout doesn't fit len request\n");
return -EINVAL;
}
if (da != FW_RSC_ADDR_ANY && mem->da == FW_RSC_ADDR_ANY) {
return -EINVAL;
} else if (da != FW_RSC_ADDR_ANY && mem->da != FW_RSC_ADDR_ANY) {
delta = da - mem->da;
if (delta < 0) {
dev_err(dev,
"Registered carveout doesn't fit da request\n");
return -EINVAL;
}
if (delta + len > mem->len) {
dev_err(dev,
"Registered carveout doesn't fit len request\n");
return -EINVAL;
}
}
return 0;
}
int rproc_alloc_vring(struct rproc_vdev *rvdev, int i)
{
struct rproc *rproc = rvdev->rproc;
struct device *dev = &rproc->dev;
struct rproc_vring *rvring = &rvdev->vring[i];
struct fw_rsc_vdev *rsc;
int ret, notifyid;
struct rproc_mem_entry *mem;
size_t size;
size = PAGE_ALIGN(vring_size(rvring->num, rvring->align));
rsc = (void *)rproc->table_ptr + rvdev->rsc_offset;
mem = rproc_find_carveout_by_name(rproc, "vdev%dvring%d", rvdev->index,
i);
if (mem) {
if (rproc_check_carveout_da(rproc, mem, rsc->vring[i].da, size))
return -ENOMEM;
} else {
mem = rproc_mem_entry_init(dev, NULL, 0,
size, rsc->vring[i].da,
rproc_alloc_carveout,
rproc_release_carveout,
"vdev%dvring%d",
rvdev->index, i);
if (!mem) {
dev_err(dev, "Can't allocate memory entry structure\n");
return -ENOMEM;
}
rproc_add_carveout(rproc, mem);
}
ret = idr_alloc(&rproc->notifyids, rvring, 0, 0, GFP_KERNEL);
if (ret < 0) {
dev_err(dev, "idr_alloc failed: %d\n", ret);
return ret;
}
notifyid = ret;
if (notifyid > rproc->max_notifyid)
rproc->max_notifyid = notifyid;
rvring->notifyid = notifyid;
rsc->vring[i].notifyid = notifyid;
return 0;
}
int
rproc_parse_vring(struct rproc_vdev *rvdev, struct fw_rsc_vdev *rsc, int i)
{
struct rproc *rproc = rvdev->rproc;
struct device *dev = &rproc->dev;
struct fw_rsc_vdev_vring *vring = &rsc->vring[i];
struct rproc_vring *rvring = &rvdev->vring[i];
dev_dbg(dev, "vdev rsc: vring%d: da 0x%x, qsz %d, align %d\n",
i, vring->da, vring->num, vring->align);
if (!vring->num || !vring->align) {
dev_err(dev, "invalid qsz (%d) or alignment (%d)\n",
vring->num, vring->align);
return -EINVAL;
}
rvring->num = vring->num;
rvring->align = vring->align;
rvring->rvdev = rvdev;
return 0;
}
void rproc_free_vring(struct rproc_vring *rvring)
{
struct rproc *rproc = rvring->rvdev->rproc;
int idx = rvring - rvring->rvdev->vring;
struct fw_rsc_vdev *rsc;
idr_remove(&rproc->notifyids, rvring->notifyid);
if (rproc->table_ptr) {
rsc = (void *)rproc->table_ptr + rvring->rvdev->rsc_offset;
rsc->vring[idx].da = 0;
rsc->vring[idx].notifyid = -1;
}
}
void rproc_add_rvdev(struct rproc *rproc, struct rproc_vdev *rvdev)
{
if (rvdev && rproc)
list_add_tail(&rvdev->node, &rproc->rvdevs);
}
void rproc_remove_rvdev(struct rproc_vdev *rvdev)
{
if (rvdev)
list_del(&rvdev->node);
}
static int rproc_handle_vdev(struct rproc *rproc, void *ptr,
int offset, int avail)
{
struct fw_rsc_vdev *rsc = ptr;
struct device *dev = &rproc->dev;
struct rproc_vdev *rvdev;
size_t rsc_size;
struct rproc_vdev_data rvdev_data;
struct platform_device *pdev;
rsc_size = struct_size(rsc, vring, rsc->num_of_vrings);
if (size_add(rsc_size, rsc->config_len) > avail) {
dev_err(dev, "vdev rsc is truncated\n");
return -EINVAL;
}
if (rsc->reserved[0] || rsc->reserved[1]) {
dev_err(dev, "vdev rsc has non zero reserved bytes\n");
return -EINVAL;
}
dev_dbg(dev, "vdev rsc: id %d, dfeatures 0x%x, cfg len %d, %d vrings\n",
rsc->id, rsc->dfeatures, rsc->config_len, rsc->num_of_vrings);
if (rsc->num_of_vrings > ARRAY_SIZE(rvdev->vring)) {
dev_err(dev, "too many vrings: %d\n", rsc->num_of_vrings);
return -EINVAL;
}
rvdev_data.id = rsc->id;
rvdev_data.index = rproc->nb_vdev++;
rvdev_data.rsc_offset = offset;
rvdev_data.rsc = rsc;
pdev = platform_device_register_data(dev, "rproc-virtio", PLATFORM_DEVID_AUTO, &rvdev_data,
sizeof(rvdev_data));
if (IS_ERR(pdev)) {
dev_err(dev, "failed to create rproc-virtio device\n");
return PTR_ERR(pdev);
}
return 0;
}
static int rproc_handle_trace(struct rproc *rproc, void *ptr,
int offset, int avail)
{
struct fw_rsc_trace *rsc = ptr;
struct rproc_debug_trace *trace;
struct device *dev = &rproc->dev;
char name[15];
if (sizeof(*rsc) > avail) {
dev_err(dev, "trace rsc is truncated\n");
return -EINVAL;
}
if (rsc->reserved) {
dev_err(dev, "trace rsc has non zero reserved bytes\n");
return -EINVAL;
}
trace = kzalloc(sizeof(*trace), GFP_KERNEL);
if (!trace)
return -ENOMEM;
trace->trace_mem.len = rsc->len;
trace->trace_mem.da = rsc->da;
trace->rproc = rproc;
snprintf(name, sizeof(name), "trace%d", rproc->num_traces);
trace->tfile = rproc_create_trace_file(name, rproc, trace);
list_add_tail(&trace->node, &rproc->traces);
rproc->num_traces++;
dev_dbg(dev, "%s added: da 0x%x, len 0x%x\n",
name, rsc->da, rsc->len);
return 0;
}
static int rproc_handle_devmem(struct rproc *rproc, void *ptr,
int offset, int avail)
{
struct fw_rsc_devmem *rsc = ptr;
struct rproc_mem_entry *mapping;
struct device *dev = &rproc->dev;
int ret;
if (!rproc->domain)
return -EINVAL;
if (sizeof(*rsc) > avail) {
dev_err(dev, "devmem rsc is truncated\n");
return -EINVAL;
}
if (rsc->reserved) {
dev_err(dev, "devmem rsc has non zero reserved bytes\n");
return -EINVAL;
}
mapping = kzalloc(sizeof(*mapping), GFP_KERNEL);
if (!mapping)
return -ENOMEM;
ret = iommu_map(rproc->domain, rsc->da, rsc->pa, rsc->len, rsc->flags,
GFP_KERNEL);
if (ret) {
dev_err(dev, "failed to map devmem: %d\n", ret);
goto out;
}
mapping->da = rsc->da;
mapping->len = rsc->len;
list_add_tail(&mapping->node, &rproc->mappings);
dev_dbg(dev, "mapped devmem pa 0x%x, da 0x%x, len 0x%x\n",
rsc->pa, rsc->da, rsc->len);
return 0;
out:
kfree(mapping);
return ret;
}
static int rproc_alloc_carveout(struct rproc *rproc,
struct rproc_mem_entry *mem)
{
struct rproc_mem_entry *mapping = NULL;
struct device *dev = &rproc->dev;
dma_addr_t dma;
void *va;
int ret;
va = dma_alloc_coherent(dev->parent, mem->len, &dma, GFP_KERNEL);
if (!va) {
dev_err(dev->parent,
"failed to allocate dma memory: len 0x%zx\n",
mem->len);
return -ENOMEM;
}
dev_dbg(dev, "carveout va %pK, dma %pad, len 0x%zx\n",
va, &dma, mem->len);
if (mem->da != FW_RSC_ADDR_ANY && !rproc->domain) {
if (mem->da != (u32)dma)
dev_warn(dev->parent,
"Allocated carveout doesn't fit device address request\n");
}
if (mem->da != FW_RSC_ADDR_ANY && rproc->domain) {
mapping = kzalloc(sizeof(*mapping), GFP_KERNEL);
if (!mapping) {
ret = -ENOMEM;
goto dma_free;
}
ret = iommu_map(rproc->domain, mem->da, dma, mem->len,
mem->flags, GFP_KERNEL);
if (ret) {
dev_err(dev, "iommu_map failed: %d\n", ret);
goto free_mapping;
}
mapping->da = mem->da;
mapping->len = mem->len;
list_add_tail(&mapping->node, &rproc->mappings);
dev_dbg(dev, "carveout mapped 0x%x to %pad\n",
mem->da, &dma);
}
if (mem->da == FW_RSC_ADDR_ANY) {
if ((u64)dma & HIGH_BITS_MASK)
dev_warn(dev, "DMA address cast in 32bit to fit resource table format\n");
mem->da = (u32)dma;
}
mem->dma = dma;
mem->va = va;
return 0;
free_mapping:
kfree(mapping);
dma_free:
dma_free_coherent(dev->parent, mem->len, va, dma);
return ret;
}
static int rproc_release_carveout(struct rproc *rproc,
struct rproc_mem_entry *mem)
{
struct device *dev = &rproc->dev;
dma_free_coherent(dev->parent, mem->len, mem->va, mem->dma);
return 0;
}
static int rproc_handle_carveout(struct rproc *rproc,
void *ptr, int offset, int avail)
{
struct fw_rsc_carveout *rsc = ptr;
struct rproc_mem_entry *carveout;
struct device *dev = &rproc->dev;
if (sizeof(*rsc) > avail) {
dev_err(dev, "carveout rsc is truncated\n");
return -EINVAL;
}
if (rsc->reserved) {
dev_err(dev, "carveout rsc has non zero reserved bytes\n");
return -EINVAL;
}
dev_dbg(dev, "carveout rsc: name: %s, da 0x%x, pa 0x%x, len 0x%x, flags 0x%x\n",
rsc->name, rsc->da, rsc->pa, rsc->len, rsc->flags);
carveout = rproc_find_carveout_by_name(rproc, rsc->name);
if (carveout) {
if (carveout->rsc_offset != FW_RSC_ADDR_ANY) {
dev_err(dev,
"Carveout already associated to resource table\n");
return -ENOMEM;
}
if (rproc_check_carveout_da(rproc, carveout, rsc->da, rsc->len))
return -ENOMEM;
carveout->rsc_offset = offset;
carveout->flags = rsc->flags;
return 0;
}
carveout = rproc_mem_entry_init(dev, NULL, 0, rsc->len, rsc->da,
rproc_alloc_carveout,
rproc_release_carveout, rsc->name);
if (!carveout) {
dev_err(dev, "Can't allocate memory entry structure\n");
return -ENOMEM;
}
carveout->flags = rsc->flags;
carveout->rsc_offset = offset;
rproc_add_carveout(rproc, carveout);
return 0;
}
void rproc_add_carveout(struct rproc *rproc, struct rproc_mem_entry *mem)
{
list_add_tail(&mem->node, &rproc->carveouts);
}
EXPORT_SYMBOL(rproc_add_carveout);
__printf(8, 9)
struct rproc_mem_entry *
rproc_mem_entry_init(struct device *dev,
void *va, dma_addr_t dma, size_t len, u32 da,
int (*alloc)(struct rproc *, struct rproc_mem_entry *),
int (*release)(struct rproc *, struct rproc_mem_entry *),
const char *name, ...)
{
struct rproc_mem_entry *mem;
va_list args;
mem = kzalloc(sizeof(*mem), GFP_KERNEL);
if (!mem)
return mem;
mem->va = va;
mem->dma = dma;
mem->da = da;
mem->len = len;
mem->alloc = alloc;
mem->release = release;
mem->rsc_offset = FW_RSC_ADDR_ANY;
mem->of_resm_idx = -1;
va_start(args, name);
vsnprintf(mem->name, sizeof(mem->name), name, args);
va_end(args);
return mem;
}
EXPORT_SYMBOL(rproc_mem_entry_init);
__printf(5, 6)
struct rproc_mem_entry *
rproc_of_resm_mem_entry_init(struct device *dev, u32 of_resm_idx, size_t len,
u32 da, const char *name, ...)
{
struct rproc_mem_entry *mem;
va_list args;
mem = kzalloc(sizeof(*mem), GFP_KERNEL);
if (!mem)
return mem;
mem->da = da;
mem->len = len;
mem->rsc_offset = FW_RSC_ADDR_ANY;
mem->of_resm_idx = of_resm_idx;
va_start(args, name);
vsnprintf(mem->name, sizeof(mem->name), name, args);
va_end(args);
return mem;
}
EXPORT_SYMBOL(rproc_of_resm_mem_entry_init);
int rproc_of_parse_firmware(struct device *dev, int index, const char **fw_name)
{
int ret;
ret = of_property_read_string_index(dev->of_node, "firmware-name",
index, fw_name);
return ret ? ret : 0;
}
EXPORT_SYMBOL(rproc_of_parse_firmware);
static rproc_handle_resource_t rproc_loading_handlers[RSC_LAST] = {
[RSC_CARVEOUT] = rproc_handle_carveout,
[RSC_DEVMEM] = rproc_handle_devmem,
[RSC_TRACE] = rproc_handle_trace,
[RSC_VDEV] = rproc_handle_vdev,
};
static int rproc_handle_resources(struct rproc *rproc,
rproc_handle_resource_t handlers[RSC_LAST])
{
struct device *dev = &rproc->dev;
rproc_handle_resource_t handler;
int ret = 0, i;
if (!rproc->table_ptr)
return 0;
for (i = 0; i < rproc->table_ptr->num; i++) {
int offset = rproc->table_ptr->offset[i];
struct fw_rsc_hdr *hdr = (void *)rproc->table_ptr + offset;
int avail = rproc->table_sz - offset - sizeof(*hdr);
void *rsc = (void *)hdr + sizeof(*hdr);
if (avail < 0) {
dev_err(dev, "rsc table is truncated\n");
return -EINVAL;
}
dev_dbg(dev, "rsc: type %d\n", hdr->type);
if (hdr->type >= RSC_VENDOR_START &&
hdr->type <= RSC_VENDOR_END) {
ret = rproc_handle_rsc(rproc, hdr->type, rsc,
offset + sizeof(*hdr), avail);
if (ret == RSC_HANDLED)
continue;
else if (ret < 0)
break;
dev_warn(dev, "unsupported vendor resource %d\n",
hdr->type);
continue;
}
if (hdr->type >= RSC_LAST) {
dev_warn(dev, "unsupported resource %d\n", hdr->type);
continue;
}
handler = handlers[hdr->type];
if (!handler)
continue;
ret = handler(rproc, rsc, offset + sizeof(*hdr), avail);
if (ret)
break;
}
return ret;
}
static int rproc_prepare_subdevices(struct rproc *rproc)
{
struct rproc_subdev *subdev;
int ret;
list_for_each_entry(subdev, &rproc->subdevs, node) {
if (subdev->prepare) {
ret = subdev->prepare(subdev);
if (ret)
goto unroll_preparation;
}
}
return 0;
unroll_preparation:
list_for_each_entry_continue_reverse(subdev, &rproc->subdevs, node) {
if (subdev->unprepare)
subdev->unprepare(subdev);
}
return ret;
}
static int rproc_start_subdevices(struct rproc *rproc)
{
struct rproc_subdev *subdev;
int ret;
list_for_each_entry(subdev, &rproc->subdevs, node) {
if (subdev->start) {
ret = subdev->start(subdev);
if (ret)
goto unroll_registration;
}
}
return 0;
unroll_registration:
list_for_each_entry_continue_reverse(subdev, &rproc->subdevs, node) {
if (subdev->stop)
subdev->stop(subdev, true);
}
return ret;
}
static void rproc_stop_subdevices(struct rproc *rproc, bool crashed)
{
struct rproc_subdev *subdev;
list_for_each_entry_reverse(subdev, &rproc->subdevs, node) {
if (subdev->stop)
subdev->stop(subdev, crashed);
}
}
static void rproc_unprepare_subdevices(struct rproc *rproc)
{
struct rproc_subdev *subdev;
list_for_each_entry_reverse(subdev, &rproc->subdevs, node) {
if (subdev->unprepare)
subdev->unprepare(subdev);
}
}
static int rproc_alloc_registered_carveouts(struct rproc *rproc)
{
struct rproc_mem_entry *entry, *tmp;
struct fw_rsc_carveout *rsc;
struct device *dev = &rproc->dev;
u64 pa;
int ret;
list_for_each_entry_safe(entry, tmp, &rproc->carveouts, node) {
if (entry->alloc) {
ret = entry->alloc(rproc, entry);
if (ret) {
dev_err(dev, "Unable to allocate carveout %s: %d\n",
entry->name, ret);
return -ENOMEM;
}
}
if (entry->rsc_offset != FW_RSC_ADDR_ANY) {
rsc = (void *)rproc->table_ptr + entry->rsc_offset;
if (entry->va)
pa = (u64)rproc_va_to_pa(entry->va);
else
pa = (u64)entry->dma;
if (((u64)pa) & HIGH_BITS_MASK)
dev_warn(dev,
"Physical address cast in 32bit to fit resource table format\n");
rsc->pa = (u32)pa;
rsc->da = entry->da;
rsc->len = entry->len;
}
}
return 0;
}
void rproc_resource_cleanup(struct rproc *rproc)
{
struct rproc_mem_entry *entry, *tmp;
struct rproc_debug_trace *trace, *ttmp;
struct rproc_vdev *rvdev, *rvtmp;
struct device *dev = &rproc->dev;
list_for_each_entry_safe(trace, ttmp, &rproc->traces, node) {
rproc_remove_trace_file(trace->tfile);
rproc->num_traces--;
list_del(&trace->node);
kfree(trace);
}
list_for_each_entry_safe(entry, tmp, &rproc->mappings, node) {
size_t unmapped;
unmapped = iommu_unmap(rproc->domain, entry->da, entry->len);
if (unmapped != entry->len) {
dev_err(dev, "failed to unmap %zx/%zu\n", entry->len,
unmapped);
}
list_del(&entry->node);
kfree(entry);
}
list_for_each_entry_safe(entry, tmp, &rproc->carveouts, node) {
if (entry->release)
entry->release(rproc, entry);
list_del(&entry->node);
kfree(entry);
}
list_for_each_entry_safe(rvdev, rvtmp, &rproc->rvdevs, node)
platform_device_unregister(rvdev->pdev);
rproc_coredump_cleanup(rproc);
}
EXPORT_SYMBOL(rproc_resource_cleanup);
static int rproc_start(struct rproc *rproc, const struct firmware *fw)
{
struct resource_table *loaded_table;
struct device *dev = &rproc->dev;
int ret;
ret = rproc_load_segments(rproc, fw);
if (ret) {
dev_err(dev, "Failed to load program segments: %d\n", ret);
return ret;
}
loaded_table = rproc_find_loaded_rsc_table(rproc, fw);
if (loaded_table) {
memcpy(loaded_table, rproc->cached_table, rproc->table_sz);
rproc->table_ptr = loaded_table;
}
ret = rproc_prepare_subdevices(rproc);
if (ret) {
dev_err(dev, "failed to prepare subdevices for %s: %d\n",
rproc->name, ret);
goto reset_table_ptr;
}
ret = rproc->ops->start(rproc);
if (ret) {
dev_err(dev, "can't start rproc %s: %d\n", rproc->name, ret);
goto unprepare_subdevices;
}
ret = rproc_start_subdevices(rproc);
if (ret) {
dev_err(dev, "failed to probe subdevices for %s: %d\n",
rproc->name, ret);
goto stop_rproc;
}
rproc->state = RPROC_RUNNING;
dev_info(dev, "remote processor %s is now up\n", rproc->name);
return 0;
stop_rproc:
rproc->ops->stop(rproc);
unprepare_subdevices:
rproc_unprepare_subdevices(rproc);
reset_table_ptr:
rproc->table_ptr = rproc->cached_table;
return ret;
}
static int __rproc_attach(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret;
ret = rproc_prepare_subdevices(rproc);
if (ret) {
dev_err(dev, "failed to prepare subdevices for %s: %d\n",
rproc->name, ret);
goto out;
}
ret = rproc_attach_device(rproc);
if (ret) {
dev_err(dev, "can't attach to rproc %s: %d\n",
rproc->name, ret);
goto unprepare_subdevices;
}
ret = rproc_start_subdevices(rproc);
if (ret) {
dev_err(dev, "failed to probe subdevices for %s: %d\n",
rproc->name, ret);
goto stop_rproc;
}
rproc->state = RPROC_ATTACHED;
dev_info(dev, "remote processor %s is now attached\n", rproc->name);
return 0;
stop_rproc:
rproc->ops->stop(rproc);
unprepare_subdevices:
rproc_unprepare_subdevices(rproc);
out:
return ret;
}
static int rproc_fw_boot(struct rproc *rproc, const struct firmware *fw)
{
struct device *dev = &rproc->dev;
const char *name = rproc->firmware;
int ret;
ret = rproc_fw_sanity_check(rproc, fw);
if (ret)
return ret;
dev_info(dev, "Booting fw image %s, size %zd\n", name, fw->size);
ret = rproc_enable_iommu(rproc);
if (ret) {
dev_err(dev, "can't enable iommu: %d\n", ret);
return ret;
}
ret = rproc_prepare_device(rproc);
if (ret) {
dev_err(dev, "can't prepare rproc %s: %d\n", rproc->name, ret);
goto disable_iommu;
}
rproc->bootaddr = rproc_get_boot_addr(rproc, fw);
ret = rproc_parse_fw(rproc, fw);
if (ret)
goto unprepare_rproc;
rproc->max_notifyid = -1;
rproc->nb_vdev = 0;
ret = rproc_handle_resources(rproc, rproc_loading_handlers);
if (ret) {
dev_err(dev, "Failed to process resources: %d\n", ret);
goto clean_up_resources;
}
ret = rproc_alloc_registered_carveouts(rproc);
if (ret) {
dev_err(dev, "Failed to allocate associated carveouts: %d\n",
ret);
goto clean_up_resources;
}
ret = rproc_start(rproc, fw);
if (ret)
goto clean_up_resources;
return 0;
clean_up_resources:
rproc_resource_cleanup(rproc);
kfree(rproc->cached_table);
rproc->cached_table = NULL;
rproc->table_ptr = NULL;
unprepare_rproc:
rproc_unprepare_device(rproc);
disable_iommu:
rproc_disable_iommu(rproc);
return ret;
}
static int rproc_set_rsc_table(struct rproc *rproc)
{
struct resource_table *table_ptr;
struct device *dev = &rproc->dev;
size_t table_sz;
int ret;
table_ptr = rproc_get_loaded_rsc_table(rproc, &table_sz);
if (!table_ptr) {
return 0;
}
if (IS_ERR(table_ptr)) {
ret = PTR_ERR(table_ptr);
dev_err(dev, "can't load resource table: %d\n", ret);
return ret;
}
if (rproc->ops->detach) {
rproc->clean_table = kmemdup(table_ptr, table_sz, GFP_KERNEL);
if (!rproc->clean_table)
return -ENOMEM;
} else {
rproc->clean_table = NULL;
}
rproc->cached_table = NULL;
rproc->table_ptr = table_ptr;
rproc->table_sz = table_sz;
return 0;
}
static int rproc_reset_rsc_table_on_detach(struct rproc *rproc)
{
struct resource_table *table_ptr;
if (!rproc->table_ptr)
return 0;
if (WARN_ON(!rproc->clean_table))
return -EINVAL;
table_ptr = rproc->table_ptr;
rproc->cached_table = kmemdup(rproc->table_ptr,
rproc->table_sz, GFP_KERNEL);
if (!rproc->cached_table)
return -ENOMEM;
rproc->table_ptr = rproc->cached_table;
memcpy(table_ptr, rproc->clean_table, rproc->table_sz);
kfree(rproc->clean_table);
return 0;
}
static int rproc_reset_rsc_table_on_stop(struct rproc *rproc)
{
if (!rproc->table_ptr)
return 0;
if (rproc->cached_table)
goto out;
rproc->cached_table = kmemdup(rproc->table_ptr,
rproc->table_sz, GFP_KERNEL);
if (!rproc->cached_table)
return -ENOMEM;
kfree(rproc->clean_table);
out:
rproc->table_ptr = rproc->cached_table;
return 0;
}
static int rproc_attach(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret;
ret = rproc_enable_iommu(rproc);
if (ret) {
dev_err(dev, "can't enable iommu: %d\n", ret);
return ret;
}
ret = rproc_prepare_device(rproc);
if (ret) {
dev_err(dev, "can't prepare rproc %s: %d\n", rproc->name, ret);
goto disable_iommu;
}
ret = rproc_set_rsc_table(rproc);
if (ret) {
dev_err(dev, "can't load resource table: %d\n", ret);
goto unprepare_device;
}
rproc->max_notifyid = -1;
rproc->nb_vdev = 0;
ret = rproc_handle_resources(rproc, rproc_loading_handlers);
if (ret) {
dev_err(dev, "Failed to process resources: %d\n", ret);
goto unprepare_device;
}
ret = rproc_alloc_registered_carveouts(rproc);
if (ret) {
dev_err(dev, "Failed to allocate associated carveouts: %d\n",
ret);
goto clean_up_resources;
}
ret = __rproc_attach(rproc);
if (ret)
goto clean_up_resources;
return 0;
clean_up_resources:
rproc_resource_cleanup(rproc);
unprepare_device:
rproc_unprepare_device(rproc);
disable_iommu:
rproc_disable_iommu(rproc);
return ret;
}
static void rproc_auto_boot_callback(const struct firmware *fw, void *context)
{
struct rproc *rproc = context;
rproc_boot(rproc);
release_firmware(fw);
}
static int rproc_trigger_auto_boot(struct rproc *rproc)
{
int ret;
if (rproc->state == RPROC_DETACHED)
return rproc_boot(rproc);
ret = request_firmware_nowait(THIS_MODULE, FW_ACTION_UEVENT,
rproc->firmware, &rproc->dev, GFP_KERNEL,
rproc, rproc_auto_boot_callback);
if (ret < 0)
dev_err(&rproc->dev, "request_firmware_nowait err: %d\n", ret);
return ret;
}
static int rproc_stop(struct rproc *rproc, bool crashed)
{
struct device *dev = &rproc->dev;
int ret;
if (!rproc->ops->stop)
return -EINVAL;
rproc_stop_subdevices(rproc, crashed);
ret = rproc_reset_rsc_table_on_stop(rproc);
if (ret) {
dev_err(dev, "can't reset resource table: %d\n", ret);
return ret;
}
ret = rproc->ops->stop(rproc);
if (ret) {
dev_err(dev, "can't stop rproc: %d\n", ret);
return ret;
}
rproc_unprepare_subdevices(rproc);
rproc->state = RPROC_OFFLINE;
dev_info(dev, "stopped remote processor %s\n", rproc->name);
return 0;
}
static int __rproc_detach(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret;
if (!rproc->ops->detach)
return -EINVAL;
rproc_stop_subdevices(rproc, false);
ret = rproc_reset_rsc_table_on_detach(rproc);
if (ret) {
dev_err(dev, "can't reset resource table: %d\n", ret);
return ret;
}
ret = rproc->ops->detach(rproc);
if (ret) {
dev_err(dev, "can't detach from rproc: %d\n", ret);
return ret;
}
rproc_unprepare_subdevices(rproc);
rproc->state = RPROC_DETACHED;
dev_info(dev, "detached remote processor %s\n", rproc->name);
return 0;
}
static int rproc_attach_recovery(struct rproc *rproc)
{
int ret;
ret = __rproc_detach(rproc);
if (ret)
return ret;
return __rproc_attach(rproc);
}
static int rproc_boot_recovery(struct rproc *rproc)
{
const struct firmware *firmware_p;
struct device *dev = &rproc->dev;
int ret;
ret = rproc_stop(rproc, true);
if (ret)
return ret;
rproc->ops->coredump(rproc);
ret = request_firmware(&firmware_p, rproc->firmware, dev);
if (ret < 0) {
dev_err(dev, "request_firmware failed: %d\n", ret);
return ret;
}
ret = rproc_start(rproc, firmware_p);
release_firmware(firmware_p);
return ret;
}
int rproc_trigger_recovery(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret;
ret = mutex_lock_interruptible(&rproc->lock);
if (ret)
return ret;
if (rproc->state != RPROC_CRASHED)
goto unlock_mutex;
dev_err(dev, "recovering %s\n", rproc->name);
if (rproc_has_feature(rproc, RPROC_FEAT_ATTACH_ON_RECOVERY))
ret = rproc_attach_recovery(rproc);
else
ret = rproc_boot_recovery(rproc);
unlock_mutex:
mutex_unlock(&rproc->lock);
return ret;
}
static void rproc_crash_handler_work(struct work_struct *work)
{
struct rproc *rproc = container_of(work, struct rproc, crash_handler);
struct device *dev = &rproc->dev;
dev_dbg(dev, "enter %s\n", __func__);
mutex_lock(&rproc->lock);
if (rproc->state == RPROC_CRASHED) {
mutex_unlock(&rproc->lock);
return;
}
if (rproc->state == RPROC_OFFLINE) {
mutex_unlock(&rproc->lock);
goto out;
}
rproc->state = RPROC_CRASHED;
dev_err(dev, "handling crash #%u in %s\n", ++rproc->crash_cnt,
rproc->name);
mutex_unlock(&rproc->lock);
if (!rproc->recovery_disabled)
rproc_trigger_recovery(rproc);
out:
pm_relax(rproc->dev.parent);
}
int rproc_boot(struct rproc *rproc)
{
const struct firmware *firmware_p;
struct device *dev;
int ret;
if (!rproc) {
pr_err("invalid rproc handle\n");
return -EINVAL;
}
dev = &rproc->dev;
ret = mutex_lock_interruptible(&rproc->lock);
if (ret) {
dev_err(dev, "can't lock rproc %s: %d\n", rproc->name, ret);
return ret;
}
if (rproc->state == RPROC_DELETED) {
ret = -ENODEV;
dev_err(dev, "can't boot deleted rproc %s\n", rproc->name);
goto unlock_mutex;
}
if (atomic_inc_return(&rproc->power) > 1) {
ret = 0;
goto unlock_mutex;
}
if (rproc->state == RPROC_DETACHED) {
dev_info(dev, "attaching to %s\n", rproc->name);
ret = rproc_attach(rproc);
} else {
dev_info(dev, "powering up %s\n", rproc->name);
ret = request_firmware(&firmware_p, rproc->firmware, dev);
if (ret < 0) {
dev_err(dev, "request_firmware failed: %d\n", ret);
goto downref_rproc;
}
ret = rproc_fw_boot(rproc, firmware_p);
release_firmware(firmware_p);
}
downref_rproc:
if (ret)
atomic_dec(&rproc->power);
unlock_mutex:
mutex_unlock(&rproc->lock);
return ret;
}
EXPORT_SYMBOL(rproc_boot);
int rproc_shutdown(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret = 0;
ret = mutex_lock_interruptible(&rproc->lock);
if (ret) {
dev_err(dev, "can't lock rproc %s: %d\n", rproc->name, ret);
return ret;
}
if (rproc->state != RPROC_RUNNING &&
rproc->state != RPROC_ATTACHED) {
ret = -EINVAL;
goto out;
}
if (!atomic_dec_and_test(&rproc->power))
goto out;
ret = rproc_stop(rproc, false);
if (ret) {
atomic_inc(&rproc->power);
goto out;
}
rproc_resource_cleanup(rproc);
rproc_unprepare_device(rproc);
rproc_disable_iommu(rproc);
kfree(rproc->cached_table);
rproc->cached_table = NULL;
rproc->table_ptr = NULL;
out:
mutex_unlock(&rproc->lock);
return ret;
}
EXPORT_SYMBOL(rproc_shutdown);
int rproc_detach(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret;
ret = mutex_lock_interruptible(&rproc->lock);
if (ret) {
dev_err(dev, "can't lock rproc %s: %d\n", rproc->name, ret);
return ret;
}
if (rproc->state != RPROC_ATTACHED) {
ret = -EINVAL;
goto out;
}
if (!atomic_dec_and_test(&rproc->power)) {
ret = 0;
goto out;
}
ret = __rproc_detach(rproc);
if (ret) {
atomic_inc(&rproc->power);
goto out;
}
rproc_resource_cleanup(rproc);
rproc_unprepare_device(rproc);
rproc_disable_iommu(rproc);
kfree(rproc->cached_table);
rproc->cached_table = NULL;
rproc->table_ptr = NULL;
out:
mutex_unlock(&rproc->lock);
return ret;
}
EXPORT_SYMBOL(rproc_detach);
#ifdef CONFIG_OF
struct rproc *rproc_get_by_phandle(phandle phandle)
{
struct rproc *rproc = NULL, *r;
struct device_node *np;
np = of_find_node_by_phandle(phandle);
if (!np)
return NULL;
rcu_read_lock();
list_for_each_entry_rcu(r, &rproc_list, node) {
if (r->dev.parent && device_match_of_node(r->dev.parent, np)) {
if (!try_module_get(r->dev.parent->driver->owner)) {
dev_err(&r->dev, "can't get owner\n");
break;
}
rproc = r;
get_device(&rproc->dev);
break;
}
}
rcu_read_unlock();
of_node_put(np);
return rproc;
}
#else
struct rproc *rproc_get_by_phandle(phandle phandle)
{
return NULL;
}
#endif
EXPORT_SYMBOL(rproc_get_by_phandle);
int rproc_set_firmware(struct rproc *rproc, const char *fw_name)
{
struct device *dev;
int ret, len;
char *p;
if (!rproc || !fw_name)
return -EINVAL;
dev = rproc->dev.parent;
ret = mutex_lock_interruptible(&rproc->lock);
if (ret) {
dev_err(dev, "can't lock rproc %s: %d\n", rproc->name, ret);
return -EINVAL;
}
if (rproc->state != RPROC_OFFLINE) {
dev_err(dev, "can't change firmware while running\n");
ret = -EBUSY;
goto out;
}
len = strcspn(fw_name, "\n");
if (!len) {
dev_err(dev, "can't provide empty string for firmware name\n");
ret = -EINVAL;
goto out;
}
p = kstrndup(fw_name, len, GFP_KERNEL);
if (!p) {
ret = -ENOMEM;
goto out;
}
kfree_const(rproc->firmware);
rproc->firmware = p;
out:
mutex_unlock(&rproc->lock);
return ret;
}
EXPORT_SYMBOL(rproc_set_firmware);
static int rproc_validate(struct rproc *rproc)
{
switch (rproc->state) {
case RPROC_OFFLINE:
if (!rproc->ops->start)
return -EINVAL;
break;
case RPROC_DETACHED:
if (!rproc->ops->attach)
return -EINVAL;
if (rproc->cached_table)
return -EINVAL;
break;
default:
return -EINVAL;
}
return 0;
}
int rproc_add(struct rproc *rproc)
{
struct device *dev = &rproc->dev;
int ret;
ret = rproc_validate(rproc);
if (ret < 0)
return ret;
ret = rproc_char_device_add(rproc);
if (ret < 0)
return ret;
ret = device_add(dev);
if (ret < 0) {
put_device(dev);
goto rproc_remove_cdev;
}
dev_info(dev, "%s is available\n", rproc->name);
rproc_create_debug_dir(rproc);
if (rproc->auto_boot) {
ret = rproc_trigger_auto_boot(rproc);
if (ret < 0)
goto rproc_remove_dev;
}
mutex_lock(&rproc_list_mutex);
list_add_rcu(&rproc->node, &rproc_list);
mutex_unlock(&rproc_list_mutex);
return 0;
rproc_remove_dev:
rproc_delete_debug_dir(rproc);
device_del(dev);
rproc_remove_cdev:
rproc_char_device_remove(rproc);
return ret;
}
EXPORT_SYMBOL(rproc_add);
static void devm_rproc_remove(void *rproc)
{
rproc_del(rproc);
}
int devm_rproc_add(struct device *dev, struct rproc *rproc)
{
int err;
err = rproc_add(rproc);
if (err)
return err;
return devm_add_action_or_reset(dev, devm_rproc_remove, rproc);
}
EXPORT_SYMBOL(devm_rproc_add);
static void rproc_type_release(struct device *dev)
{
struct rproc *rproc = container_of(dev, struct rproc, dev);
dev_info(&rproc->dev, "releasing %s\n", rproc->name);
idr_destroy(&rproc->notifyids);
if (rproc->index >= 0)
ida_free(&rproc_dev_index, rproc->index);
kfree_const(rproc->firmware);
kfree_const(rproc->name);
kfree(rproc->ops);
kfree(rproc);
}
static const struct device_type rproc_type = {
.name = "remoteproc",
.release = rproc_type_release,
};
static int rproc_alloc_firmware(struct rproc *rproc,
const char *name, const char *firmware)
{
const char *p;
if (firmware)
p = kstrdup_const(firmware, GFP_KERNEL);
else
p = kasprintf(GFP_KERNEL, "rproc-%s-fw", name);
if (!p)
return -ENOMEM;
rproc->firmware = p;
return 0;
}
static int rproc_alloc_ops(struct rproc *rproc, const struct rproc_ops *ops)
{
rproc->ops = kmemdup(ops, sizeof(*ops), GFP_KERNEL);
if (!rproc->ops)
return -ENOMEM;
if (!rproc->ops->coredump)
rproc->ops->coredump = rproc_coredump;
if (rproc->ops->load)
return 0;
rproc->ops->load = rproc_elf_load_segments;
rproc->ops->parse_fw = rproc_elf_load_rsc_table;
rproc->ops->find_loaded_rsc_table = rproc_elf_find_loaded_rsc_table;
rproc->ops->sanity_check = rproc_elf_sanity_check;
rproc->ops->get_boot_addr = rproc_elf_get_boot_addr;
return 0;
}
struct rproc *rproc_alloc(struct device *dev, const char *name,
const struct rproc_ops *ops,
const char *firmware, int len)
{
struct rproc *rproc;
if (!dev || !name || !ops)
return NULL;
rproc = kzalloc(sizeof(struct rproc) + len, GFP_KERNEL);
if (!rproc)
return NULL;
rproc->priv = &rproc[1];
rproc->auto_boot = true;
rproc->elf_class = ELFCLASSNONE;
rproc->elf_machine = EM_NONE;
device_initialize(&rproc->dev);
rproc->dev.parent = dev;
rproc->dev.type = &rproc_type;
rproc->dev.class = &rproc_class;
rproc->dev.driver_data = rproc;
idr_init(&rproc->notifyids);
rproc->name = kstrdup_const(name, GFP_KERNEL);
if (!rproc->name)
goto put_device;
if (rproc_alloc_firmware(rproc, name, firmware))
goto put_device;
if (rproc_alloc_ops(rproc, ops))
goto put_device;
rproc->index = ida_alloc(&rproc_dev_index, GFP_KERNEL);
if (rproc->index < 0) {
dev_err(dev, "ida_alloc failed: %d\n", rproc->index);
goto put_device;
}
dev_set_name(&rproc->dev, "remoteproc%d", rproc->index);
atomic_set(&rproc->power, 0);
mutex_init(&rproc->lock);
INIT_LIST_HEAD(&rproc->carveouts);
INIT_LIST_HEAD(&rproc->mappings);
INIT_LIST_HEAD(&rproc->traces);
INIT_LIST_HEAD(&rproc->rvdevs);
INIT_LIST_HEAD(&rproc->subdevs);
INIT_LIST_HEAD(&rproc->dump_segments);
INIT_WORK(&rproc->crash_handler, rproc_crash_handler_work);
rproc->state = RPROC_OFFLINE;
return rproc;
put_device:
put_device(&rproc->dev);
return NULL;
}
EXPORT_SYMBOL(rproc_alloc);
void rproc_free(struct rproc *rproc)
{
put_device(&rproc->dev);
}
EXPORT_SYMBOL(rproc_free);
void rproc_put(struct rproc *rproc)
{
module_put(rproc->dev.parent->driver->owner);
put_device(&rproc->dev);
}
EXPORT_SYMBOL(rproc_put);
int rproc_del(struct rproc *rproc)
{
if (!rproc)
return -EINVAL;
rproc_shutdown(rproc);
mutex_lock(&rproc->lock);
rproc->state = RPROC_DELETED;
mutex_unlock(&rproc->lock);
rproc_delete_debug_dir(rproc);
mutex_lock(&rproc_list_mutex);
list_del_rcu(&rproc->node);
mutex_unlock(&rproc_list_mutex);
synchronize_rcu();
device_del(&rproc->dev);
rproc_char_device_remove(rproc);
return 0;
}
EXPORT_SYMBOL(rproc_del);
static void devm_rproc_free(struct device *dev, void *res)
{
rproc_free(*(struct rproc **)res);
}
struct rproc *devm_rproc_alloc(struct device *dev, const char *name,
const struct rproc_ops *ops,
const char *firmware, int len)
{
struct rproc **ptr, *rproc;
ptr = devres_alloc(devm_rproc_free, sizeof(*ptr), GFP_KERNEL);
if (!ptr)
return NULL;
rproc = rproc_alloc(dev, name, ops, firmware, len);
if (rproc) {
*ptr = rproc;
devres_add(dev, ptr);
} else {
devres_free(ptr);
}
return rproc;
}
EXPORT_SYMBOL(devm_rproc_alloc);
void rproc_add_subdev(struct rproc *rproc, struct rproc_subdev *subdev)
{
list_add_tail(&subdev->node, &rproc->subdevs);
}
EXPORT_SYMBOL(rproc_add_subdev);
void rproc_remove_subdev(struct rproc *rproc, struct rproc_subdev *subdev)
{
list_del(&subdev->node);
}
EXPORT_SYMBOL(rproc_remove_subdev);
struct rproc *rproc_get_by_child(struct device *dev)
{
for (dev = dev->parent; dev; dev = dev->parent) {
if (dev->type == &rproc_type)
return dev->driver_data;
}
return NULL;
}
EXPORT_SYMBOL(rproc_get_by_child);
void rproc_report_crash(struct rproc *rproc, enum rproc_crash_type type)
{
if (!rproc) {
pr_err("NULL rproc pointer\n");
return;
}
pm_stay_awake(rproc->dev.parent);
dev_err(&rproc->dev, "crash detected in %s: type %s\n",
rproc->name, rproc_crash_to_string(type));
queue_work(rproc_recovery_wq, &rproc->crash_handler);
}
EXPORT_SYMBOL(rproc_report_crash);
static int rproc_panic_handler(struct notifier_block *nb, unsigned long event,
void *ptr)
{
unsigned int longest = 0;
struct rproc *rproc;
unsigned int d;
rcu_read_lock();
list_for_each_entry_rcu(rproc, &rproc_list, node) {
if (!rproc->ops->panic)
continue;
if (rproc->state != RPROC_RUNNING &&
rproc->state != RPROC_ATTACHED)
continue;
d = rproc->ops->panic(rproc);
longest = max(longest, d);
}
rcu_read_unlock();
mdelay(longest);
return NOTIFY_DONE;
}
static void __init rproc_init_panic(void)
{
rproc_panic_nb.notifier_call = rproc_panic_handler;
atomic_notifier_chain_register(&panic_notifier_list, &rproc_panic_nb);
}
static void __exit rproc_exit_panic(void)
{
atomic_notifier_chain_unregister(&panic_notifier_list, &rproc_panic_nb);
}
static int __init remoteproc_init(void)
{
rproc_recovery_wq = alloc_workqueue("rproc_recovery_wq",
WQ_UNBOUND | WQ_FREEZABLE, 0);
if (!rproc_recovery_wq) {
pr_err("remoteproc: creation of rproc_recovery_wq failed\n");
return -ENOMEM;
}
rproc_init_sysfs();
rproc_init_debugfs();
rproc_init_cdev();
rproc_init_panic();
return 0;
}
subsys_initcall(remoteproc_init);
static void __exit remoteproc_exit(void)
{
ida_destroy(&rproc_dev_index);
if (!rproc_recovery_wq)
return;
rproc_exit_panic();
rproc_exit_debugfs();
rproc_exit_sysfs();
destroy_workqueue(rproc_recovery_wq);
}
module_exit(remoteproc_exit);
MODULE_DESCRIPTION("Generic Remote Processor Framework"