Прототип загрузки программы в spifi через драйвер

This commit is contained in:
Sergey Shchelkanov 2024-09-06 13:26:05 +03:00
parent 8e056e25a4
commit 5f1d57016b
12 changed files with 692 additions and 114 deletions

11
.gitignore vendored
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@ -1,8 +1,15 @@
__pycache__ __pycache__
.vscode .vscode
openocd openocd
*.hex
*.code-workspace *.code-workspace
dist dist
build
mik32_upload.spec mik32_upload.spec
/upload_drivers/jtag_spifi/.pio/build/mik32v2/hal_core
/upload_drivers/jtag_spifi/.pio/build/mik32v2/hal_peripherals
/upload_drivers/jtag_spifi/.pio/build/mik32v2/hal_utilities
*.a
*.o
*.checksum
*.dblite
*.elf
*.map

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@ -1,3 +1,4 @@
import datetime
from enum import Enum from enum import Enum
import os import os
import pathlib import pathlib
@ -209,23 +210,7 @@ def get_segments_list(pages_offsets: List[int], segment_size: int) -> List[int]:
return list(segments) return list(segments)
def check_pages(pages: Dict[int, List[int]], openocd: OpenOcdTclRpc, use_quad_spi=False, use_chip_erase=False): def dma_config(openocd: OpenOcdTclRpc) -> dma.DMA:
result = 0
openocd.halt()
init(openocd)
# Сбрасываем микросхему в режиме QPI из всех состояний в нормальный SPI режим.
generic_flash.chip_reset_qpi(openocd)
# Сбрасываем микросхему в режиме SPI из всех состояний в нормальный SPI режим.
generic_flash.chip_reset(openocd)
JEDEC_ID = send_command(openocd, generic_flash.JEDEC_ID_COMMAND,
Frameform.OPCODE_NOADDR, Fieldform.ALL_SERIAL, 3)
print(f"JEDEC ID = {JEDEC_ID[0]:02x} {JEDEC_ID[1]:02x} {JEDEC_ID[2]:02x}")
dma_instance = dma.DMA(openocd) dma_instance = dma.DMA(openocd)
dma_instance.init() dma_instance.init()
@ -267,6 +252,28 @@ def check_pages(pages: Dict[int, List[int]], openocd: OpenOcdTclRpc, use_quad_sp
dma_instance.channels[1].read_request = dma.ChannelRequest.SPIFI_REQUEST dma_instance.channels[1].read_request = dma.ChannelRequest.SPIFI_REQUEST
dma_instance.channels[1].read_ack = dma.ChannelAck.DISABLE dma_instance.channels[1].read_ack = dma.ChannelAck.DISABLE
return dma_instance
def check_pages(pages: Dict[int, List[int]], openocd: OpenOcdTclRpc, use_quad_spi=False, use_chip_erase=False):
result = 0
openocd.halt()
init(openocd)
# Сбрасываем микросхему в режиме QPI из всех состояний в нормальный SPI режим.
generic_flash.chip_reset_qpi(openocd)
# Сбрасываем микросхему в режиме SPI из всех состояний в нормальный SPI режим.
generic_flash.chip_reset(openocd)
JEDEC_ID = send_command(openocd, generic_flash.JEDEC_ID_COMMAND,
Frameform.OPCODE_NOADDR, Fieldform.ALL_SERIAL, 3)
print(f"JEDEC ID = {JEDEC_ID[0]:02x} {JEDEC_ID[1]:02x} {JEDEC_ID[2]:02x}")
dma_instance = dma_config(openocd)
if (use_quad_spi): if (use_quad_spi):
print("Using Quad SPI") print("Using Quad SPI")
generic_flash.quad_enable(openocd) generic_flash.quad_enable(openocd)
@ -321,46 +328,7 @@ def write_pages(pages: Dict[int, List[int]], openocd: OpenOcdTclRpc, use_quad_sp
print(f"JEDEC ID = {JEDEC_ID[0]:02x} {JEDEC_ID[1]:02x} {JEDEC_ID[2]:02x}") print(f"JEDEC ID = {JEDEC_ID[0]:02x} {JEDEC_ID[1]:02x} {JEDEC_ID[2]:02x}")
dma_instance = dma.DMA(openocd) dma_instance = dma_config(openocd)
dma_instance.init()
dma_instance.channels[0].write_buffer = 0
dma_instance.channels[0].channel = dma.ChannelIndex.CHANNEL_0
dma_instance.channels[0].priority = dma.ChannelPriority.VERY_HIGH
dma_instance.channels[0].read_mode = dma.ChannelMode.MEMORY
dma_instance.channels[0].read_increment = dma.ChannelIncrement.ENABLE
dma_instance.channels[0].read_size = dma.ChannelSize.WORD
dma_instance.channels[0].read_burst_size = 2
dma_instance.channels[0].read_request = dma.ChannelRequest.SPIFI_REQUEST
dma_instance.channels[0].read_ack = dma.ChannelAck.DISABLE
dma_instance.channels[0].write_mode = dma.ChannelMode.PERIPHERY
dma_instance.channels[0].write_increment = dma.ChannelIncrement.DISABLE
dma_instance.channels[0].write_size = dma.ChannelSize.WORD
dma_instance.channels[0].write_burst_size = 2
dma_instance.channels[0].write_request = dma.ChannelRequest.SPIFI_REQUEST
dma_instance.channels[0].write_ack = dma.ChannelAck.DISABLE
dma_instance.channels[1].write_buffer = 0
dma_instance.channels[1].channel = dma.ChannelIndex.CHANNEL_1
dma_instance.channels[1].priority = dma.ChannelPriority.VERY_HIGH
dma_instance.channels[1].write_mode = dma.ChannelMode.MEMORY
dma_instance.channels[1].write_increment = dma.ChannelIncrement.ENABLE
dma_instance.channels[1].write_size = dma.ChannelSize.WORD
dma_instance.channels[1].write_burst_size = 2
dma_instance.channels[1].write_request = dma.ChannelRequest.SPIFI_REQUEST
dma_instance.channels[1].write_ack = dma.ChannelAck.DISABLE
dma_instance.channels[1].read_mode = dma.ChannelMode.PERIPHERY
dma_instance.channels[1].read_increment = dma.ChannelIncrement.DISABLE
dma_instance.channels[1].read_size = dma.ChannelSize.WORD
dma_instance.channels[1].read_burst_size = 2
dma_instance.channels[1].read_request = dma.ChannelRequest.SPIFI_REQUEST
dma_instance.channels[1].read_ack = dma.ChannelAck.DISABLE
if use_chip_erase: if use_chip_erase:
generic_flash.erase(openocd, generic_flash.EraseType.CHIP_ERASE) generic_flash.erase(openocd, generic_flash.EraseType.CHIP_ERASE)
@ -440,99 +408,115 @@ def write_pages_by_sectors(pages: Dict[int, List[int]], openocd: OpenOcdTclRpc,
openocd.halt() openocd.halt()
init(openocd) init(openocd)
# openocd.run("rwp")
JEDEC_ID = send_command( JEDEC_ID = send_command(
openocd, 0x9F, Frameform.OPCODE_NOADDR, Fieldform.ALL_SERIAL, 3) openocd, 0x9F, Frameform.OPCODE_NOADDR, Fieldform.ALL_SERIAL, 3)
print(f"JEDEC_ID {JEDEC_ID[0]:02x} {JEDEC_ID[1]:02x} {JEDEC_ID[2]:02x}") print(f"JEDEC_ID {JEDEC_ID[0]:02x} {JEDEC_ID[1]:02x} {JEDEC_ID[2]:02x}")
dma_instance = dma_config(openocd)
sectors_list = get_segments_list(list(pages), 4*1024) sectors_list = get_segments_list(list(pages), 4*1024)
openocd.halt() openocd.halt()
pathname = os.path.dirname(sys.argv[0]) pathname = os.path.dirname(sys.argv[0])
# openocd.run("load_image {%s}" % pathlib.Path(os.path.join(pathname, "firmware.hex"))) # openocd.run("load_image {%s}" % pathlib.Path(os.path.join(pathname, "firmware.hex")))
openocd.run("rbp all")
openocd.run("load_image {%s}" % pathlib.Path( openocd.run("load_image {%s}" % pathlib.Path(
"C:\\Users\\user\\Documents\\PlatformIO\\Projects\\SPIFI_JTAG_driver\\.pio\\build\\mik32v2\\firmware.hex")) "C:\\Users\\user\\.platformio\\packages\\tool-mik32-uploader\\upload_drivers\\jtag_spifi\\.pio\\build\\mik32v2\\firmware.hex"
openocd.run("bp 0x02002010 1 hw") ))
openocd.resume(0x02000000)
if wait_halted(openocd) != 0: openocd.run("wp 0x2003000 4 w")
return 1 openocd.resume(0x2000000)
wait_halted(openocd)
openocd.halt()
# spifi erase # spifi erase
for sector in sectors_list: #
print(f"Erase sector {sector}", flush=True) # for sector in sectors_list:
openocd.write_word(0x02002000, 0b0010 | (sector << 8)) # print(f"Erase sector {sector}", flush=True)
openocd.resume() # openocd.write_word(0x02002000, 0b0010 | (sector << 8))
if wait_halted(openocd) != 0: # openocd.resume()
return 1 # if wait_halted(openocd) != 0:
print( # return 1
f"Erase sector {sector} result {openocd.read_word(0x02002008)}", flush=True) # print(
# f"Erase sector {sector} result {openocd.read_word(0x02002008)}", flush=True)
return 1
# spifi erase check # spifi erase check
for sector in sectors_list: #
# print(f"Erase sector {sector}", flush=True) # for sector in sectors_list:
# openocd.write_word(0x02002000, 0b0010 | sector) # # print(f"Erase sector {sector}", flush=True)
# openocd.resume() # # openocd.write_word(0x02002000, 0b0010 | sector)
# if wait_halted(openocd) != 0: # # openocd.resume()
# return 1 # # if wait_halted(openocd) != 0:
# print(f"Erase sector {sector} result {openocd.read_word(0x02002008)}", flush=True) # # return 1
# # print(f"Erase sector {sector} result {openocd.read_word(0x02002008)}", flush=True)
page_bytes = [0xff] * 256 # page_bytes = [0xff] * 256
result = spifi_read_data(openocd, sector, 256, page_bytes) # result = spifi_read_data(openocd, sector, 256, page_bytes)
if result == 1: # if result == 1:
print("Data error") # print("Data error")
return result # return result
for sector in sectors_list: for sector in sectors_list:
print(f"Program sector {sector}", flush=True) print(f"Program sector {sector}", flush=True)
bytes_list: List[int] = [] bytes_list: List[int] = []
for page in range(16): for page in range(16):
page = pages.get(page * 256 + sector * 4096) page = pages.get(page * 256 + sector)
if page is not None: if page is not None:
bytes_list.extend(page) bytes_list.extend(page)
else: else:
bytes_list.extend([0]*256) bytes_list.extend([0]*256)
extend_value = 1 + sector # extend_value = 1 + sector
bytes_list.extend([(extend_value >> 0) & 0xFF, (extend_value >> 8) # bytes_list.extend([(extend_value >> 0) & 0xFF, (extend_value >> 8)
& 0xFF, (extend_value >> 16) & 0xFF, (extend_value >> 24) & 0xFF]) # & 0xFF, (extend_value >> 16) & 0xFF, (extend_value >> 24) & 0xFF])
# print(bytes_list) # print(bytes_list)
while (openocd.read_word(0x0200200c) != 1): openocd.write_memory(0x02002000, 8, bytes_list)
openocd.resume() openocd.run(f"set_reg {{t6 {sector}}}")
openocd.halt()
openocd.resume()
wait_halted(openocd)
# openocd.halt()
print(f"Check page result {openocd.read_memory(0x2003000, 32, 1)}")
print(f"{datetime.datetime.now().time()} Program sector {sector} complete", flush=True)
# result = generic_flash.read_data(openocd, sector, 4096, bytes_list)
# for page in range(16):
# page_bytes = pages.get(page * 256 + sector)
# if page_bytes is not None:
# result = generic_flash.read_data(
# openocd, page * 256 + sector, 256, page_bytes, dma=dma_instance)
# if result == 1:
# print("Data error")
# return result
openocd.write_memory(0x02001000, 8, bytes_list)
while (openocd.read_word(0x0200200c) != 1):
openocd.resume()
openocd.halt()
time.sleep(0.5)
openocd.halt()
print(
f"Program sector {sector} result {openocd.read_word(0x02002008)}", flush=True)
init_memory(openocd) init_memory(openocd)
# check write # check write
pages_offsets = list(pages) #
for index, page_offset in enumerate(pages_offsets): # pages_offsets = list(pages)
page_bytes = pages[page_offset] # for index, page_offset in enumerate(pages_offsets):
# page_bytes = pages[page_offset]
memory_bytes = openocd.read_memory(page_offset + 0x80000000, 8, 256) # memory_bytes = openocd.read_memory(page_offset + 0x80000000, 8, 256)
print(page_offset, memory_bytes) # print(page_offset, memory_bytes)
for i, byte in enumerate(memory_bytes): # for i, byte in enumerate(memory_bytes):
if byte != page_bytes[i]: # if byte != page_bytes[i]:
print("Data error!") # print("Data error!")
openocd.run("rbp 0x02002010") # openocd.run("rbp 0x02002010")
return result # return result
openocd.run("rbp 0x02002010")
if result == 0: if result == 0:
# Прошивка страниц флеш памяти по SPIFI была завершена # Прошивка страниц флеш памяти по SPIFI была завершена
print("Flashing of flash memory pages via SPIFI has been completed", flush=True) print("Flashing of flash memory pages via SPIFI has been completed", flush=True)

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@ -263,7 +263,7 @@ def upload_file(
gpio_init(openocd, mik_version) gpio_init(openocd, mik_version)
start_time = time.perf_counter() start_time = time.perf_counter()
result |= spifi.write_pages( result |= spifi.write_pages_by_sectors(
pages.pages_spifi, openocd, use_quad_spi=use_quad_spi) pages.pages_spifi, openocd, use_quad_spi=use_quad_spi)
write_time = time.perf_counter() - start_time write_time = time.perf_counter() - start_time

1
upload_drivers/jtag_spifi/.gitignore vendored Normal file
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.vscode

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This directory is intended for project header files.
A header file is a file containing C declarations and macro definitions
to be shared between several project source files. You request the use of a
header file in your project source file (C, C++, etc) located in `src` folder
by including it, with the C preprocessing directive `#include'.
```src/main.c
#include "header.h"
int main (void)
{
...
}
```
Including a header file produces the same results as copying the header file
into each source file that needs it. Such copying would be time-consuming
and error-prone. With a header file, the related declarations appear
in only one place. If they need to be changed, they can be changed in one
place, and programs that include the header file will automatically use the
new version when next recompiled. The header file eliminates the labor of
finding and changing all the copies as well as the risk that a failure to
find one copy will result in inconsistencies within a program.
In C, the usual convention is to give header files names that end with `.h'.
It is most portable to use only letters, digits, dashes, and underscores in
header file names, and at most one dot.
Read more about using header files in official GCC documentation:
* Include Syntax
* Include Operation
* Once-Only Headers
* Computed Includes
https://gcc.gnu.org/onlinedocs/cpp/Header-Files.html

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This directory is intended for project specific (private) libraries.
PlatformIO will compile them to static libraries and link into executable file.
The source code of each library should be placed in a an own separate directory
("lib/your_library_name/[here are source files]").
For example, see a structure of the following two libraries `Foo` and `Bar`:
|--lib
| |
| |--Bar
| | |--docs
| | |--examples
| | |--src
| | |- Bar.c
| | |- Bar.h
| | |- library.json (optional, custom build options, etc) https://docs.platformio.org/page/librarymanager/config.html
| |
| |--Foo
| | |- Foo.c
| | |- Foo.h
| |
| |- README --> THIS FILE
|
|- platformio.ini
|--src
|- main.c
and a contents of `src/main.c`:
```
#include <Foo.h>
#include <Bar.h>
int main (void)
{
...
}
```
PlatformIO Library Dependency Finder will find automatically dependent
libraries scanning project source files.
More information about PlatformIO Library Dependency Finder
- https://docs.platformio.org/page/librarymanager/ldf.html

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; PlatformIO Project Configuration File
;
; Build options: build flags, source filter
; Upload options: custom upload port, speed and extra flags
; Library options: dependencies, extra library storages
; Advanced options: extra scripting
;
; Please visit documentation for the other options and examples
; https://docs.platformio.org/page/projectconf.html
[env:mik32v2]
platform = MIK32
board = mik32v2
framework = framework-mik32v2-sdk
board_debug.ldscript = ram
build_flags = -ffixed-x31 -D MIK32V2

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OUTPUT_FORMAT("elf32-littleriscv", "elf32-littleriscv", "elf32-littleriscv")
OUTPUT_ARCH(riscv)
ENTRY(_start)
MEMORY {
ram (RWX): ORIGIN = 0x02000000, LENGTH = 16K
}
STACK_SIZE = 1024;
CL_SIZE = 16;
REGION_ALIAS("REGION_TEXT", ram);
REGION_ALIAS("REGION_RAM", ram);
INCLUDE sections.lds

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SECTIONS {
.text ORIGIN(REGION_TEXT) : {
PROVIDE(__TEXT_START__ = .);
*crt0.o(.text .text.*)
*(.text.smallsysteminit)
*(.text.SmallSystemInit)
. = ORIGIN(REGION_TEXT) + 0xC0;
KEEP(*crt0.o(.trap_text))
*(.text)
*(.text.*)
*(.rodata)
*(.rodata.*)
. = ALIGN(CL_SIZE);
PROVIDE(__TEXT_END__ = .);
} >REGION_TEXT
.data :
AT( __TEXT_END__ ) {
PROVIDE(__DATA_START__ = .);
_gp = .;
*(.srodata.cst16) *(.srodata.cst8) *(.srodata.cst4) *(.srodata.cst2) *(.srodata*)
*(.sdata .sdata.* .gnu.linkonce.s.*)
*(.data .data.*)
. = ALIGN(CL_SIZE);
PROVIDE(__DATA_END__ = .);
} >REGION_RAM
__DATA_IMAGE_START__ = LOADADDR(.data);
__DATA_IMAGE_END__ = LOADADDR(.data) + SIZEOF(.data);
/* thread-local data segment */
.tdata : {
PROVIDE(_tls_data = .);
PROVIDE(_tdata_begin = .);
*(.tdata .tdata.*)
PROVIDE(_tdata_end = .);
. = ALIGN(CL_SIZE);
} >REGION_RAM
.tbss : {
PROVIDE(__BSS_START__ = .);
*(.tbss .tbss.*)
. = ALIGN(CL_SIZE);
PROVIDE(_tbss_end = .);
} >REGION_RAM
/* bss segment */
.sbss : {
*(.sbss .sbss.* .gnu.linkonce.sb.*)
*(.scommon)
} >REGION_RAM
.bss : {
*(.bss .bss.*)
*(COMMON)
. = ALIGN(CL_SIZE);
PROVIDE(__BSS_END__ = .);
} >REGION_RAM
/* Code intended to be copied to REGION_RAM before execution */
.ram_text :
AT( ALIGN(__DATA_IMAGE_END__, CL_SIZE) ) {
PROVIDE(__RAM_TEXT_START__ = .);
*(.ram_text)
. = ALIGN(CL_SIZE);
PROVIDE(__RAM_TEXT_END__ = .);
} > REGION_RAM
__RAM_TEXT_IMAGE_START__ = LOADADDR(.ram_text);
__RAM_TEXT_IMAGE_END__ = LOADADDR(.ram_text) + SIZEOF(.ram_text);
ASSERT(__RAM_TEXT_IMAGE_END__ < ORIGIN(REGION_TEXT) + LENGTH(REGION_TEXT), "REGION_TEXT segment overflows")
ASSERT(__RAM_TEXT_END__ < ORIGIN(REGION_RAM) + LENGTH(REGION_RAM) - STACK_SIZE, "REGION_RAM section overflows")
_end = .;
PROVIDE(__end = .);
BUFFER4K_SIZE = 4K;
.buffer4k ORIGIN(REGION_RAM) + 8K : {
FILL(0);
PROVIDE(__BUFFER4K__END__ = .);
PROVIDE(BUFFER4K = .);
. += BUFFER4K_SIZE;
PROVIDE(BUFFER_STATUS = .);
. += 4;
PROVIDE(__BUFFER4K__END__ = .);
} >REGION_RAM
/* End of uninitalized data segement */
.stack ORIGIN(REGION_RAM) + LENGTH(REGION_RAM) - STACK_SIZE : {
FILL(0);
PROVIDE(__STACK_START__ = .);
. += STACK_SIZE;
PROVIDE(__C_STACK_TOP__ = .);
PROVIDE(__STACK_END__ = .);
} >REGION_RAM
/DISCARD/ : {
*(.eh_frame .eh_frame.*)
}
}

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#include "mik32_hal_pcc.h"
#include "mik32_hal_spifi.h"
#include "mik32_hal_spifi_w25.h"
#include "uart_lib.h"
#include "xprintf.h"
/**
* @file main.c
*
* @brief Пример демонстрирует чтение и запись значений во внешнюю флеш память Winbond W25 по Standard (Single) SPI
*/
// extern char __HEAP_START[];
const int BUFFER4K_SIZE = 4 * 1024;
extern uint8_t *BUFFER4K[];
extern uint32_t *BUFFER_STATUS[];
register uint32_t address asm ("x31");
void SystemClock_Config(void);
void read_flash(SPIFI_HandleTypeDef *spifi, uint32_t address, uint8_t dataLength, uint8_t *dataBytes);
int main()
{
// *BUFFER_STATUS = 1;
SystemClock_Config();
UART_Init(UART_0, 3333, UART_CONTROL1_TE_M | UART_CONTROL1_M_8BIT_M, 0, 0);
xprintf("START DRIVER\n");
SPIFI_HandleTypeDef spifi = {
.Instance = SPIFI_CONFIG,
};
HAL_SPIFI_MspInit(&spifi);
xprintf("msp init complete\n");
HAL_SPIFI_Reset(&spifi);
xprintf("spifi reset complete\n");
xprintf("BUFFER4K = 0x%08x\n", BUFFER4K);
*BUFFER_STATUS = 0;
while (1) {
// asm ("wfi");
// *BUFFER_STATUS = 1;
HAL_SPIFI_Reset(&spifi);
HAL_SPIFI_WaitResetClear(&spifi, HAL_SPIFI_TIMEOUT);
// xprintf("ERASE SECTOR 0x%08x\n", address);
HAL_SPIFI_W25_SectorErase4K(&spifi, address);
for (uint32_t ad = 0; ad < BUFFER4K_SIZE; ad += 256)
{
// xprintf("Write Page 0x%08x from 0x%08x\n", ad + address, (uint8_t *)((uint32_t)BUFFER4K + ad));
HAL_SPIFI_W25_PageProgram(&spifi, ad + address, 256, (uint8_t *)((uint32_t)BUFFER4K + ad));
}
SPIFI_MemoryCommandTypeDef cmd_mem = {
.OpCode = 0x03,
.FieldForm = SPIFI_CONFIG_CMD_FIELDFORM_ALL_SERIAL,
.FrameForm = SPIFI_CONFIG_CMD_FRAMEFORM_OPCODE_3ADDR,
.InterimData = 0,
.InterimLength = 0,
};
SPIFI_MemoryModeConfig_HandleTypeDef spifi_mem = {
.Instance = spifi.Instance,
.Command = cmd_mem,
};
HAL_SPIFI_MemoryMode_Init(&spifi_mem);
int result = 0;
for (uint32_t ad = 0; ad < BUFFER4K_SIZE; ad += 4)
{
if (*(uint32_t*)(BUFFER4K + ad) != *(uint32_t*)(0x80000000 + address))
{
result = 3;
}
}
*BUFFER_STATUS = result;
// asm ("wfi");
}
while (1)
;
}
void SystemClock_Config(void)
{
PCC_InitTypeDef PCC_OscInit = {0};
PCC_OscInit.OscillatorEnable = PCC_OSCILLATORTYPE_ALL;
PCC_OscInit.FreqMon.OscillatorSystem = PCC_OSCILLATORTYPE_OSC32M;
PCC_OscInit.FreqMon.ForceOscSys = PCC_FORCE_OSC_SYS_UNFIXED;
PCC_OscInit.FreqMon.Force32KClk = PCC_FREQ_MONITOR_SOURCE_OSC32K;
PCC_OscInit.AHBDivider = 0;
PCC_OscInit.APBMDivider = 0;
PCC_OscInit.APBPDivider = 0;
PCC_OscInit.HSI32MCalibrationValue = 128;
PCC_OscInit.LSI32KCalibrationValue = 128;
PCC_OscInit.RTCClockSelection = PCC_RTC_CLOCK_SOURCE_AUTO;
PCC_OscInit.RTCClockCPUSelection = PCC_CPU_RTC_CLOCK_SOURCE_OSC32K;
HAL_PCC_Config(&PCC_OscInit);
}

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This directory is intended for PlatformIO Test Runner and project tests.
Unit Testing is a software testing method by which individual units of
source code, sets of one or more MCU program modules together with associated
control data, usage procedures, and operating procedures, are tested to
determine whether they are fit for use. Unit testing finds problems early
in the development cycle.
More information about PlatformIO Unit Testing:
- https://docs.platformio.org/en/latest/advanced/unit-testing/index.html