SPI demo w/W25Q32 chip
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gpio/spi_demo/Hello-World.sal
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gpio/spi_demo/Hello-World.sal
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gpio/spi_demo/README.md
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gpio/spi_demo/README.md
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# SPI_DEMO
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This is Not intended to be a full demo, but a simple example of how to use the SPI interface on the Flipper Zero.
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Please see [https://youtu.be/W6bGYZ5PgIc](https://youtu.be/W6bGYZ5PgIc) for a video demo.
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My video this Saturday, Nov 18th 2023, will cover how to wire the device between the Flipper Zero and the chip that supports SPI, such as the W25Q32.
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The connections are:
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- Flipper Pin 2 - MOSI (D0 on the W25Q32)
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- Flipper Pin 3 - MISO (D1 on the W25Q32)
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- Flipper Pin 4 - CS (CS on the W25Q32)
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- Flipper Pin 5 - SCK (SLK on the W25Q32)
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- Flipper Pin 8 - GND (GND on the W25Q32)
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- Flipper Pin 9 - 3V3 (VCC on the W25Q32)
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The `Hellow-World.sal` file can be viewed using [https://www.saleae.com/downloads/](https://www.saleae.com/downloads/) software. This is a capture of my W25Q32 chip being read by the Flipper Zero. The commands were sent using the `SPI Mem Manager` application.
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You can find the `SPI Mem Manager` application at [https://github.com/flipperdevices/flipperzero-good-faps/tree/dev/spi_mem_manager](https://github.com/flipperdevices/flipperzero-good-faps)
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gpio/spi_demo/app.c
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gpio/spi_demo/app.c
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#include <furi.h>
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#include <furi_hal.h>
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void spi_demo();
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void spi_demo_v2();
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int32_t main_learn_spi(void* _p) {
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UNUSED(_p);
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spi_demo();
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spi_demo_v2();
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return 0;
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}
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gpio/spi_demo/app.png
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gpio/spi_demo/app.png
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gpio/spi_demo/application.fam
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gpio/spi_demo/application.fam
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App(
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appid="learn_spi_app",
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name="[WIP] Learn SPI",
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apptype=FlipperAppType.EXTERNAL,
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entry_point="main_learn_spi",
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stack_size=4 * 1024,
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requires=[
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"gui",
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],
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order=10,
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fap_icon="app.png",
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fap_category="GPIO",
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fap_description="Demo of communicating with W25Q32 IC.",
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)
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gpio/spi_demo/spi.c
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gpio/spi_demo/spi.c
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/*
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Demo reading from a w25q32 chip using SPI.
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*/
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#include <furi.h>
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#include <furi_hal.h>
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#define TAG "LearnSPI-SPI"
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static uint32_t timeout = 1000;
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static FuriHalSpiBusHandle* spi = &furi_hal_spi_bus_handle_external;
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void read_w25q32_spi() {
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uint8_t command_read_memory[10] = {0x03, 0x0, 0x01, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0, 0x0};
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uint8_t data_response[10] = {0, 0, 0, 0, 0, 0, 0, 0, 0, 0}; // Extra space for NULL termination
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furi_hal_spi_acquire(spi);
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if(furi_hal_spi_bus_trx(spi, command_read_memory, data_response, 9, timeout)) {
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char* data_response_str = (char*)data_response + 4;
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FURI_LOG_E(
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TAG,
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"MESSAGE STORED IN CHIP AT ADDRESS 0x%02X%02X%02X IS: %s",
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command_read_memory[1],
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command_read_memory[2],
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command_read_memory[3],
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data_response_str);
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} else {
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FURI_LOG_E(TAG, "FAILED - read_id_spi failed.");
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}
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furi_hal_spi_release(spi);
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}
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void spi_demo() {
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furi_hal_spi_bus_handle_init(spi);
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read_w25q32_spi();
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furi_hal_spi_bus_handle_deinit(spi);
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}
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gpio/spi_demo/spi_v2.c
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gpio/spi_demo/spi_v2.c
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/*
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Improved demo reading from a w25q32 chip using SPI.
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*/
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#include <furi.h>
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#include <furi_hal.h>
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#define TAG "LearnSPI-SPI-V2"
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static uint32_t timeout = 1000;
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static FuriHalSpiBusHandle* spi = &furi_hal_spi_bus_handle_external;
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void read_w25q32_spi_v2() {
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uint8_t command_read_memory[1] = {0x03}; // Read command
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uint8_t read_memory_address[3] = {0x00, 0x01, 0x00}; // Memory address is 0x000100
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uint8_t data_response[6] = {0, 0, 0, 0, 0, 0}; // Read 5 bytes + NULL terminator.
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furi_hal_spi_acquire(spi);
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if(furi_hal_spi_bus_tx(spi, command_read_memory, 1, timeout) &&
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furi_hal_spi_bus_tx(spi, read_memory_address, 3, timeout) &&
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(furi_hal_spi_bus_rx(spi, data_response, 5, timeout))) {
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char* data_response_str = (char*)data_response;
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FURI_LOG_E(
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TAG,
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"MESSAGE STORED IN CHIP AT ADDRESS 0x%02X%02X%02X IS: %s",
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read_memory_address[0],
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read_memory_address[1],
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read_memory_address[2],
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data_response_str);
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} else {
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FURI_LOG_E(TAG, "FAILED - read_id_spi failed.");
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}
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furi_hal_spi_release(spi);
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}
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void spi_demo_v2() {
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furi_hal_spi_bus_handle_init(spi);
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read_w25q32_spi_v2();
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furi_hal_spi_bus_handle_deinit(spi);
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}
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