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stm32f4/examples: add config and linker script so they're runnable.
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28
embassy-stm32f4-examples/.cargo/config
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28
embassy-stm32f4-examples/.cargo/config
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[target.'cfg(all(target_arch = "arm", target_os = "none"))']
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runner = "probe-run --chip STM32F411CEUx --defmt"
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rustflags = [
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# LLD (shipped with the Rust toolchain) is used as the default linker
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"-C", "link-arg=--nmagic",
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"-C", "link-arg=-Tlink.x",
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"-C", "link-arg=-Tdefmt.x",
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# if you run into problems with LLD switch to the GNU linker by commenting out
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# this line
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# "-C", "linker=arm-none-eabi-ld",
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# if you need to link to pre-compiled C libraries provided by a C toolchain
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# use GCC as the linker by commenting out both lines above and then
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# uncommenting the three lines below
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# "-C", "linker=arm-none-eabi-gcc",
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# "-C", "link-arg=-Wl,-Tlink.x",
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# "-C", "link-arg=-nostartfiles",
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# Code-size optimizations.
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"-Z", "trap-unreachable=no",
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"-C", "inline-threshold=5",
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"-C", "no-vectorize-loops",
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]
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[build]
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target = "thumbv7em-none-eabi"
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31
embassy-stm32f4-examples/build.rs
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embassy-stm32f4-examples/build.rs
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//! This build script copies the `memory.x` file from the crate root into
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//! a directory where the linker can always find it at build time.
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//! For many projects this is optional, as the linker always searches the
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//! project root directory -- wherever `Cargo.toml` is. However, if you
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//! are using a workspace or have a more complicated build setup, this
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//! build script becomes required. Additionally, by requesting that
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//! Cargo re-run the build script whenever `memory.x` is changed,
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//! updating `memory.x` ensures a rebuild of the application with the
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//! new memory settings.
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use std::env;
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use std::fs::File;
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use std::io::Write;
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use std::path::PathBuf;
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fn main() {
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// Put `memory.x` in our output directory and ensure it's
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// on the linker search path.
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let out = &PathBuf::from(env::var_os("OUT_DIR").unwrap());
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File::create(out.join("memory.x"))
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.unwrap()
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.write_all(include_bytes!("memory.x"))
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.unwrap();
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println!("cargo:rustc-link-search={}", out.display());
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// By default, Cargo will re-run a build script whenever
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// any file in the project changes. By specifying `memory.x`
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// here, we ensure the build script is only re-run when
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// `memory.x` is changed.
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println!("cargo:rerun-if-changed=memory.x");
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}
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5
embassy-stm32f4-examples/memory.x
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5
embassy-stm32f4-examples/memory.x
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MEMORY
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{
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FLASH : ORIGIN = 0x08000000, LENGTH = 64K
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RAM : ORIGIN = 0x20000000, LENGTH = 32K
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}
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59
embassy-stm32f4-examples/src/bin/exti.rs
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embassy-stm32f4-examples/src/bin/exti.rs
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#![no_std]
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#![no_main]
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#![feature(trait_alias)]
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#![feature(type_alias_impl_trait)]
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#[path = "../example_common.rs"]
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mod example_common;
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use example_common::{panic, *};
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use cortex_m::singleton;
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use cortex_m_rt::entry;
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use embassy::executor::{task, Executor};
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use embassy::gpio::*;
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use embassy::util::Forever;
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use embassy_stm32f4::exti;
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use embassy_stm32f4::exti::*;
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use embassy_stm32f4::interrupt;
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use embassy_stm32f4::serial;
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use futures::pin_mut;
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use stm32f4xx_hal::serial::config::Config;
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use stm32f4xx_hal::stm32;
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use stm32f4xx_hal::syscfg;
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use stm32f4xx_hal::{prelude::*, serial::config};
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static EXTI: Forever<exti::ExtiManager> = Forever::new();
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#[task]
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async fn run(dp: stm32::Peripherals, cp: cortex_m::Peripherals) {
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let gpioa = dp.GPIOA.split();
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let button = gpioa.pa0.into_pull_up_input();
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let exti = EXTI.put(exti::ExtiManager::new(dp.EXTI, dp.SYSCFG.constrain()));
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let pin = exti.new_pin(button, interrupt::take!(EXTI0));
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pin_mut!(pin);
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info!("Starting loop");
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loop {
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pin.as_mut().wait_for_rising_edge().await;
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info!("edge detected!");
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}
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}
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static EXECUTOR: Forever<Executor> = Forever::new();
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#[entry]
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fn main() -> ! {
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let dp = stm32::Peripherals::take().unwrap();
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let cp = cortex_m::peripheral::Peripherals::take().unwrap();
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let executor = EXECUTOR.put(Executor::new(cortex_m::asm::sev));
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executor.spawn(run(dp, cp)).unwrap();
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loop {
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executor.run();
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//cortex_m::asm::wfe(); // wfe causes RTT to stop working on stm32
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}
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}
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40
embassy-stm32f4-examples/src/bin/hello.rs
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40
embassy-stm32f4-examples/src/bin/hello.rs
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#![no_std]
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#![no_main]
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#![feature(trait_alias)]
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#![feature(type_alias_impl_trait)]
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#[path = "../example_common.rs"]
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mod example_common;
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use example_common::{panic, *};
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use cortex_m::singleton;
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use cortex_m_rt::entry;
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use embassy::executor::{task, Executor};
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use embassy::uart::Uart;
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use embassy::util::Forever;
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use embassy_stm32f4::interrupt;
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use embassy_stm32f4::serial;
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use stm32f4xx_hal::serial::config::Config;
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use stm32f4xx_hal::stm32;
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use stm32f4xx_hal::{prelude::*, serial::config};
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#[entry]
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fn main() -> ! {
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info!("Hello World!");
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let p = stm32f4xx_hal::stm32::Peripherals::take().unwrap();
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let gpioa = p.GPIOA.split();
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let gpioc = p.GPIOC.split();
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let mut led = gpioc.pc13.into_push_pull_output();
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let button = gpioa.pa0.into_pull_up_input();
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led.set_low().unwrap();
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loop {
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if button.is_high().unwrap() {
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led.set_low().unwrap();
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} else {
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led.set_high().unwrap();
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}
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}
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}
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@ -64,6 +64,6 @@ fn main() -> ! {
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loop {
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executor.run();
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cortex_m::asm::wfe();
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//cortex_m::asm::wfe(); // wfe causes RTT to stop working on stm32
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}
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}
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