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#include "portable_endian.h"
#include "fel_lib.h"
#include <libusb.h>
#include <assert.h>
#include <errno.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#define USB_TIMEOUT 10000
static bool fel_lib_initialized = false;
struct _felusb_handle {
libusb_device_handle *handle;
int endpoint_out, endpoint_in;
bool iface_detached;
};
void usb_error(int rc, const char *caption, int exitcode)
{
if (caption)
fprintf(stderr, "%s ", caption);
#if defined(LIBUSBX_API_VERSION) && (LIBUSBX_API_VERSION >= 0x01000102)
fprintf(stderr, "ERROR %d: %s\n", rc, libusb_strerror(rc));
#else
fprintf(stderr, "ERROR %d\n", rc);
#endif
if (exitcode != 0)
exit(exitcode);
}
static const int AW_USB_MAX_BULK_SEND = 512 * 1024;
void usb_bulk_send(libusb_device_handle *usb, int ep, const void *data,
size_t length, bool progress)
{
size_t max_chunk = progress ? 128 * 1024 : AW_USB_MAX_BULK_SEND;
size_t chunk;
int rc, sent;
while (length > 0) {
chunk = length < max_chunk ? length : max_chunk;
rc = libusb_bulk_transfer(usb, ep, (void *)data, chunk,
&sent, USB_TIMEOUT);
if (rc != 0)
usb_error(rc, "usb_bulk_send()", 2);
length -= sent;
data += sent;
if (progress)
progress_update(sent);
}
}
void usb_bulk_recv(libusb_device_handle *usb, int ep, void *data, int length)
{
int rc, recv;
while (length > 0) {
rc = libusb_bulk_transfer(usb, ep, data, length,
&recv, USB_TIMEOUT);
if (rc != 0)
usb_error(rc, "usb_bulk_recv()", 2);
length -= recv;
data += recv;
}
}
struct aw_usb_request {
char signature[8];
uint32_t length;
uint32_t unknown1;
uint16_t request;
uint32_t length2;
char pad[10];
} __attribute__((packed));
#define AW_USB_READ 0x11
#define AW_USB_WRITE 0x12
struct aw_fel_request {
uint32_t request;
uint32_t address;
uint32_t length;
uint32_t pad;
};
#define AW_FEL_VERSION 0x001
#define AW_FEL_1_WRITE 0x101
#define AW_FEL_1_EXEC 0x102
#define AW_FEL_1_READ 0x103
static void aw_send_usb_request(feldev_handle *dev, int type, int length)
{
struct aw_usb_request req = {
.signature = "AWUC",
.request = htole16(type),
.length = htole32(length),
.unknown1 = htole32(0x0c000000)
};
req.length2 = req.length;
usb_bulk_send(dev->usb->handle, dev->usb->endpoint_out,
&req, sizeof(req), false);
}
static void aw_read_usb_response(feldev_handle *dev)
{
char buf[13];
usb_bulk_recv(dev->usb->handle, dev->usb->endpoint_in,
buf, sizeof(buf));
assert(strcmp(buf, "AWUS") == 0);
}
static void aw_usb_write(feldev_handle *dev, const void *data, size_t len,
bool progress)
{
aw_send_usb_request(dev, AW_USB_WRITE, len);
usb_bulk_send(dev->usb->handle, dev->usb->endpoint_out,
data, len, progress);
aw_read_usb_response(dev);
}
static void aw_usb_read(feldev_handle *dev, const void *data, size_t len)
{
aw_send_usb_request(dev, AW_USB_READ, len);
usb_bulk_send(dev->usb->handle, dev->usb->endpoint_in,
data, len, false);
aw_read_usb_response(dev);
}
void aw_send_fel_request(feldev_handle *dev, int type,
uint32_t addr, uint32_t length)
{
struct aw_fel_request req = {
.request = htole32(type),
.address = htole32(addr),
.length = htole32(length)
};
aw_usb_write(dev, &req, sizeof(req), false);
}
void aw_read_fel_status(feldev_handle *dev)
{
char buf[8];
aw_usb_read(dev, buf, sizeof(buf));
}
static void aw_fel_get_version(feldev_handle *dev, struct aw_fel_version *buf)
{
aw_send_fel_request(dev, AW_FEL_VERSION, 0, 0);
aw_usb_read(dev, buf, sizeof(*buf));
aw_read_fel_status(dev);
buf->soc_id = (le32toh(buf->soc_id) >> 8) & 0xFFFF;
buf->unknown_0a = le32toh(buf->unknown_0a);
buf->protocol = le32toh(buf->protocol);
buf->scratchpad = le16toh(buf->scratchpad);
buf->pad[0] = le32toh(buf->pad[0]);
buf->pad[1] = le32toh(buf->pad[1]);
}
void aw_fel_read(feldev_handle *dev, uint32_t offset, void *buf, size_t len)
{
aw_send_fel_request(dev, AW_FEL_1_READ, offset, len);
aw_usb_read(dev, buf, len);
aw_read_fel_status(dev);
}
void aw_fel_write(feldev_handle *dev, void *buf, uint32_t offset, size_t len)
{
aw_send_fel_request(dev, AW_FEL_1_WRITE, offset, len);
aw_usb_write(dev, buf, len, false);
aw_read_fel_status(dev);
}
void aw_fel_execute(feldev_handle *dev, uint32_t offset)
{
aw_send_fel_request(dev, AW_FEL_1_EXEC, offset, 0);
aw_read_fel_status(dev);
}
void aw_fel_write_buffer(feldev_handle *dev, void *buf, uint32_t offset,
size_t len, bool progress)
{
aw_send_fel_request(dev, AW_FEL_1_WRITE, offset, len);
aw_usb_write(dev, buf, len, progress);
aw_read_fel_status(dev);
}
#define LCODE_ARM_WORDS 12
#define LCODE_ARM_SIZE (LCODE_ARM_WORDS << 2)
#define LCODE_MAX_TOTAL 0x100
#define LCODE_MAX_WORDS (LCODE_MAX_TOTAL - LCODE_ARM_WORDS)
static void aw_fel_readl_n(feldev_handle *dev, uint32_t addr,
uint32_t *dst, size_t count)
{
if (count == 0) return;
if (count > LCODE_MAX_WORDS) {
fprintf(stderr,
"ERROR: Max. word count exceeded, truncating aw_fel_readl_n() transfer\n");
count = LCODE_MAX_WORDS;
}
assert(LCODE_MAX_WORDS < 256);
uint32_t arm_code[] = {
htole32(0xe59f0020),
htole32(0xe28f1024),
htole32(0xe59f201c),
htole32(0xe3520000 + LCODE_MAX_WORDS),
htole32(0xc3a02000 + LCODE_MAX_WORDS),
htole32(0xe2522001),
htole32(0x412fff1e),
htole32(0xe4903004),
htole32(0xe4813004),
htole32(0xeafffffa),
htole32(addr),
htole32(count)
};
assert(sizeof(arm_code) == LCODE_ARM_SIZE);
aw_fel_write(dev, arm_code, dev->soc_info->scratch_addr, sizeof(arm_code));
aw_fel_execute(dev, dev->soc_info->scratch_addr);
uint32_t buffer[count];
aw_fel_read(dev, dev->soc_info->scratch_addr + LCODE_ARM_SIZE,
buffer, sizeof(buffer));
uint32_t *val = buffer;
while (count-- > 0)
*dst++ = le32toh(*val++);
}
void fel_readl_n(feldev_handle *dev, uint32_t addr, uint32_t *dst, size_t count)
{
while (count > 0) {
size_t n = count > LCODE_MAX_WORDS ? LCODE_MAX_WORDS : count;
aw_fel_readl_n(dev, addr, dst, n);
addr += n * sizeof(uint32_t);
dst += n;
count -= n;
}
}
static void aw_fel_writel_n(feldev_handle *dev, uint32_t addr,
uint32_t *src, size_t count)
{
if (count == 0) return;
if (count > LCODE_MAX_WORDS) {
fprintf(stderr,
"ERROR: Max. word count exceeded, truncating aw_fel_writel_n() transfer\n");
count = LCODE_MAX_WORDS;
}
assert(LCODE_MAX_WORDS < 256);
uint32_t arm_code[LCODE_MAX_TOTAL] = {
htole32(0xe59f0020),
htole32(0xe28f1024),
htole32(0xe59f201c),
htole32(0xe3520000 + LCODE_MAX_WORDS),
htole32(0xc3a02000 + LCODE_MAX_WORDS),
htole32(0xe2522001),
htole32(0x412fff1e),
htole32(0xe4913004),
htole32(0xe4803004),
htole32(0xeafffffa),
htole32(addr),
htole32(count)
};
size_t i;
for (i = 0; i < count; i++)
arm_code[LCODE_ARM_WORDS + i] = htole32(*src++);
aw_fel_write(dev, arm_code, dev->soc_info->scratch_addr,
(LCODE_ARM_WORDS + count) * sizeof(uint32_t));
aw_fel_execute(dev, dev->soc_info->scratch_addr);
}
void fel_writel_n(feldev_handle *dev, uint32_t addr, uint32_t *src, size_t count)
{
while (count > 0) {
size_t n = count > LCODE_MAX_WORDS ? LCODE_MAX_WORDS : count;
aw_fel_writel_n(dev, addr, src, n);
addr += n * sizeof(uint32_t);
src += n;
count -= n;
}
}
static void fel_memcpy_up(feldev_handle *dev,
uint32_t dst_addr, uint32_t src_addr, size_t size)
{
if (size == 0) return;
uint32_t arm_code[] = {
htole32(0xe59f0054),
htole32(0xe59f1054),
htole32(0xe59f2054),
htole32(0xe0413000),
htole32(0xe3130003),
htole32(0x1a00000b),
htole32(0xe3110003),
htole32(0x0a000004),
htole32(0xe4d13001),
htole32(0xe4c03001),
htole32(0xe2522001),
htole32(0x5afffff9),
htole32(0xe12fff1e),
htole32(0xe2522004),
htole32(0x54913004),
htole32(0x54803004),
htole32(0x5afffffb),
htole32(0xe2822004),
htole32(0xe2522001),
htole32(0x412fff1e),
htole32(0xe4d13001),
htole32(0xe4c03001),
htole32(0xeafffffa),
htole32(dst_addr),
htole32(src_addr),
htole32(size),
};
aw_fel_write(dev, arm_code, dev->soc_info->scratch_addr, sizeof(arm_code));
aw_fel_execute(dev, dev->soc_info->scratch_addr);
}
static void fel_memcpy_down(feldev_handle *dev,
uint32_t dst_addr, uint32_t src_addr, size_t size)
{
if (size == 0) return;
uint32_t arm_code[] = {
htole32(0xe59f0058),
htole32(0xe59f1058),
htole32(0xe59f2058),
htole32(0xe0403001),
htole32(0xe3130003),
htole32(0x1a00000c),
htole32(0xe0813002),
htole32(0xe3130003),
htole32(0x0a000004),
htole32(0xe2522001),
htole32(0x412fff1e),
htole32(0xe7d13002),
htole32(0xe7c03002),
htole32(0xeafffff7),
htole32(0xe2522004),
htole32(0x57913002),
htole32(0x57803002),
htole32(0x5afffffb),
htole32(0xe2822004),
htole32(0xe2522001),
htole32(0x412fff1e),
htole32(0xe7d13002),
htole32(0xe7c03002),
htole32(0xeafffffa),
htole32(dst_addr),
htole32(src_addr),
htole32(size),
};
aw_fel_write(dev, arm_code, dev->soc_info->scratch_addr, sizeof(arm_code));
aw_fel_execute(dev, dev->soc_info->scratch_addr);
}
void fel_memmove(feldev_handle *dev,
uint32_t dst_addr, uint32_t src_addr, size_t size)
{
if (dst_addr >= src_addr && dst_addr < (src_addr + size))
fel_memcpy_down(dev, dst_addr, src_addr, size);
else
fel_memcpy_up(dev, dst_addr, src_addr, size);
}
void fel_clrsetbits_le32(feldev_handle *dev,
uint32_t addr, uint32_t clrbits, uint32_t setbits)
{
uint32_t arm_code[] = {
htole32(0xe59f0018),
htole32(0xe5901000),
htole32(0xe59f2014),
htole32(0xe1c11002),
htole32(0xe59f2010),
htole32(0xe1811002),
htole32(0xe5801000),
htole32(0xe12fff1e),
htole32(addr),
htole32(clrbits),
htole32(setbits),
};
aw_fel_write(dev, arm_code, dev->soc_info->scratch_addr, sizeof(arm_code));
aw_fel_execute(dev, dev->soc_info->scratch_addr);
}
static void fel_get_sid_registers(feldev_handle *dev, uint32_t *result)
{
uint32_t arm_code[] = {
htole32(0xe59f0040),
htole32(0xe3a01000),
htole32(0xe28f303c),
htole32(0xe1a02801),
htole32(0xe3822b2b),
htole32(0xe3822002),
htole32(0xe5802040),
htole32(0xe5902040),
htole32(0xe3120002),
htole32(0x1afffffc),
htole32(0xe5902060),
htole32(0xe7832001),
htole32(0xe2811004),
htole32(0xe3510010),
htole32(0x3afffff3),
htole32(0xe3a02000),
htole32(0xe5802040),
htole32(0xe12fff1e),
htole32(dev->soc_info->sid_base),
};
aw_fel_write(dev, arm_code, dev->soc_info->scratch_addr, sizeof(arm_code));
aw_fel_execute(dev, dev->soc_info->scratch_addr);
aw_fel_read(dev, dev->soc_info->scratch_addr + sizeof(arm_code),
result, 4 * sizeof(uint32_t));
for (unsigned i = 0; i < 4; i++)
result[i] = le32toh(result[i]);
}
bool fel_get_sid_root_key(feldev_handle *dev, uint32_t *result,
bool force_workaround)
{
if (!dev->soc_info->sid_base) {
for (unsigned i = 0; i < 4; i++) result[i] = 0;
return false;
}
if (dev->soc_info->sid_fix || force_workaround)
fel_get_sid_registers(dev, result);
else
fel_readl_n(dev, dev->soc_info->sid_base
+ dev->soc_info->sid_offset, result, 4);
return true;
}
static int feldev_get_endpoint(feldev_handle *dev)
{
struct libusb_device *usb = libusb_get_device(dev->usb->handle);
struct libusb_config_descriptor *config;
int if_idx, set_idx, ep_idx, ret;
const struct libusb_interface *iface;
const struct libusb_interface_descriptor *setting;
const struct libusb_endpoint_descriptor *ep;
ret = libusb_get_active_config_descriptor(usb, &config);
if (ret)
return ret;
for (if_idx = 0; if_idx < config->bNumInterfaces; if_idx++) {
iface = config->interface + if_idx;
for (set_idx = 0; set_idx < iface->num_altsetting; set_idx++) {
setting = iface->altsetting + set_idx;
for (ep_idx = 0; ep_idx < setting->bNumEndpoints; ep_idx++) {
ep = setting->endpoint + ep_idx;
if ((ep->bmAttributes & LIBUSB_TRANSFER_TYPE_MASK)
!= LIBUSB_TRANSFER_TYPE_BULK)
continue;
if ((ep->bEndpointAddress & LIBUSB_ENDPOINT_DIR_MASK)
== LIBUSB_ENDPOINT_IN)
dev->usb->endpoint_in = ep->bEndpointAddress;
else
dev->usb->endpoint_out = ep->bEndpointAddress;
}
}
}
libusb_free_config_descriptor(config);
return LIBUSB_SUCCESS;
}
void feldev_claim(feldev_handle *dev)
{
int rc = libusb_claim_interface(dev->usb->handle, 0);
#if defined(__linux__)
if (rc != LIBUSB_SUCCESS) {
libusb_detach_kernel_driver(dev->usb->handle, 0);
dev->usb->iface_detached = true;
rc = libusb_claim_interface(dev->usb->handle, 0);
}
#endif
if (rc)
usb_error(rc, "libusb_claim_interface()", 1);
rc = feldev_get_endpoint(dev);
if (rc)
usb_error(rc, "FAILED to get FEL mode endpoint addresses!", 1);
}
void feldev_release(feldev_handle *dev)
{
libusb_release_interface(dev->usb->handle, 0);
#if defined(__linux__)
if (dev->usb->iface_detached)
libusb_attach_kernel_driver(dev->usb->handle, 0);
#endif
}
feldev_handle *feldev_open(int busnum, int devnum,
uint16_t vendor_id, uint16_t product_id)
{
if (!fel_lib_initialized)
feldev_init();
feldev_handle *result = calloc(1, sizeof(feldev_handle));
if (!result) {
fprintf(stderr, "FAILED to allocate feldev_handle memory.\n");
exit(1);
}
result->usb = calloc(1, sizeof(felusb_handle));
if (!result->usb) {
fprintf(stderr, "FAILED to allocate felusb_handle memory.\n");
free(result);
exit(1);
}
if (busnum < 0 || devnum < 0) {
result->usb->handle = libusb_open_device_with_vid_pid(NULL, vendor_id, product_id);
if (!result->usb->handle) {
switch (errno) {
case EACCES:
fprintf(stderr, "ERROR: You don't have permission to access Allwinner USB FEL device\n");
break;
default:
fprintf(stderr, "ERROR: Allwinner USB FEL device not found!\n");
break;
}
exit(1);
}
} else {
bool found = false;
ssize_t rc, i;
libusb_device **list;
rc = libusb_get_device_list(NULL, &list);
if (rc < 0)
usb_error(rc, "libusb_get_device_list()", 1);
for (i = 0; i < rc; i++) {
if (libusb_get_bus_number(list[i]) == busnum
&& libusb_get_device_address(list[i]) == devnum) {
found = true;
struct libusb_device_descriptor desc;
libusb_get_device_descriptor(list[i], &desc);
if (desc.idVendor != vendor_id
|| desc.idProduct != product_id) {
fprintf(stderr, "ERROR: Bus %03d Device %03d not a FEL device "
"(expected %04x:%04x, got %04x:%04x)\n", busnum, devnum,
vendor_id, product_id, desc.idVendor, desc.idProduct);
exit(1);
}
rc = libusb_open(list[i], &result->usb->handle);
if (rc != 0)
usb_error(rc, "libusb_open()", 1);
break;
}
}
libusb_free_device_list(list, true);
if (!found) {
fprintf(stderr, "ERROR: Bus %03d Device %03d not found in libusb device list\n",
busnum, devnum);
exit(1);
}
}
feldev_claim(result);
aw_fel_get_version(result, &result->soc_version);
get_soc_name_from_id(result->soc_name, result->soc_version.soc_id);
result->soc_info = get_soc_info_from_version(&result->soc_version);
return result;
}
void feldev_close(feldev_handle *dev)
{
if (dev) {
if (dev->usb->handle) {
feldev_release(dev);
libusb_close(dev->usb->handle);
}
free(dev->usb);
}
}
void feldev_init(void)
{
int rc = libusb_init(NULL);
if (rc != 0)
usb_error(rc, "libusb_init()", 1);
fel_lib_initialized = true;
}
void feldev_done(feldev_handle *dev)
{
feldev_close(dev);
free(dev);
if (fel_lib_initialized) libusb_exit(NULL);
}
feldev_list_entry *list_fel_devices(size_t *count)
{
feldev_list_entry *list, *entry;
ssize_t rc, i;
libusb_context *ctx;
libusb_device **usb;
struct libusb_device_descriptor desc;
feldev_handle *dev;
size_t devices = 0;
libusb_init(&ctx);
rc = libusb_get_device_list(ctx, &usb);
if (rc < 0)
usb_error(rc, "libusb_get_device_list()", 1);
list = calloc(rc + 1, sizeof(feldev_list_entry));
if (!list) {
fprintf(stderr, "list_fel_devices() FAILED to allocate list memory.\n");
exit(1);
}
for (i = 0; i < rc; i++) {
libusb_get_device_descriptor(usb[i], &desc);
if (desc.idVendor != AW_USB_VENDOR_ID
|| desc.idProduct != AW_USB_PRODUCT_ID)
continue;
entry = list + devices;
devices += 1;
entry->busnum = libusb_get_bus_number(usb[i]);
entry->devnum = libusb_get_device_address(usb[i]);
dev = feldev_open(entry->busnum, entry->devnum,
AW_USB_VENDOR_ID, AW_USB_PRODUCT_ID);
entry->soc_version = dev->soc_version;
entry->soc_info = dev->soc_info;
strncpy(entry->soc_name, dev->soc_name, sizeof(soc_name_t));
fel_get_sid_root_key(dev, entry->SID, false);
feldev_close(dev);
free(dev);
}
libusb_free_device_list(usb, true);
libusb_exit(ctx);
if (count) *count = devices;
return list;
}
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