Initial Commit
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14
.cargo/config.toml
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14
.cargo/config.toml
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#
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# Cargo Configuration for the https://github.com/rp-rs/rp-hal.git repository.
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#
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# You might want to make a similar file in your own repository if you are
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# writing programs for Raspberry Silicon microcontrollers.
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#
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[build]
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# Set the default target to match the Cortex-M33 in the RP2350
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target = "thumbv8m.main-none-eabihf"
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[target.'cfg(all(target_arch = "arm", target_os = "none"))']
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# runner = "elf2uf2-rs --deploy --serial --verbose"
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runner = "picotool load -u -v -x -t elf"
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1
.gitignore
vendored
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1
.gitignore
vendored
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/target
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1391
Cargo.lock
generated
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1391
Cargo.lock
generated
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15
Cargo.toml
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15
Cargo.toml
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[package]
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name = "poketch_2350"
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version = "0.1.0"
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edition = "2024"
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[dependencies]
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cortex-m = "0.7.7"
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cortex-m-rt = "0.7.5"
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defmt = "1.0.1"
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defmt-rtt = "1.0.0"
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embassy-executor = {version = "0.7.0", features = ["arch-cortex-m", "executor-thread", "defmt", ]}
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embassy-rp = { version = "0.4.0", features = ["rp235xa", "defmt", "time-driver", "critical-section-impl", "binary-info"] }
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embassy-time = "0.4.0"
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panic-probe = "1.0.0"
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rand = {version = "0.8.5", default-features = false }
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35
build.rs
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35
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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println!("cargo:rustc-link-arg-bins=--nmagic");
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println!("cargo:rustc-link-arg-bins=-Tlink.x");
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println!("cargo:rustc-link-arg-bins=-Tdefmt.x");
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}
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75
memory.x
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memory.x
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MEMORY {
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/*
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* The RP2350 has either external or internal flash.
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*
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* 2 MiB is a safe default here, although a Pico 2 has 4 MiB.
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*/
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FLASH : ORIGIN = 0x10000000, LENGTH = 2048K
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/*
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* RAM consists of 8 banks, SRAM0-SRAM7, with a striped mapping.
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* This is usually good for performance, as it distributes load on
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* those banks evenly.
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*/
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RAM : ORIGIN = 0x20000000, LENGTH = 512K
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/*
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* RAM banks 8 and 9 use a direct mapping. They can be used to have
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* memory areas dedicated for some specific job, improving predictability
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* of access times.
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* Example: Separate stacks for core0 and core1.
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*/
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SRAM4 : ORIGIN = 0x20080000, LENGTH = 4K
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SRAM5 : ORIGIN = 0x20081000, LENGTH = 4K
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}
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SECTIONS {
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/* ### Boot ROM info
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*
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* Goes after .vector_table, to keep it in the first 4K of flash
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* where the Boot ROM (and picotool) can find it
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*/
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.start_block : ALIGN(4)
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{
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__start_block_addr = .;
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KEEP(*(.start_block));
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KEEP(*(.boot_info));
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} > FLASH
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} INSERT AFTER .vector_table;
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/* move .text to start /after/ the boot info */
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_stext = ADDR(.start_block) + SIZEOF(.start_block);
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SECTIONS {
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/* ### Picotool 'Binary Info' Entries
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*
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* Picotool looks through this block (as we have pointers to it in our
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* header) to find interesting information.
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*/
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.bi_entries : ALIGN(4)
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{
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/* We put this in the header */
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__bi_entries_start = .;
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/* Here are the entries */
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KEEP(*(.bi_entries));
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/* Keep this block a nice round size */
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. = ALIGN(4);
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/* We put this in the header */
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__bi_entries_end = .;
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} > FLASH
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} INSERT AFTER .text;
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SECTIONS {
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/* ### Boot ROM extra info
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*
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* Goes after everything in our program, so it can contain a signature.
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*/
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.end_block : ALIGN(4)
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{
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__end_block_addr = .;
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KEEP(*(.end_block));
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} > FLASH
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} INSERT AFTER .uninit;
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PROVIDE(start_to_end = __end_block_addr - __start_block_addr);
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PROVIDE(end_to_start = __start_block_addr - __end_block_addr);
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31
src/main.rs
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src/main.rs
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//! This example shows TRNG usage
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#![no_std]
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#![no_main]
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use defmt::*;
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use embassy_executor::Spawner;
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use embassy_rp::bind_interrupts;
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use embassy_rp::peripherals::TRNG;
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use embassy_rp::trng::Trng;
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use rand::RngCore;
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use {defmt_rtt as _, panic_probe as _};
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bind_interrupts!(struct Irqs {
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TRNG_IRQ => embassy_rp::trng::InterruptHandler<TRNG>;
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});
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#[embassy_executor::main]
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async fn main(_spawner: Spawner) {
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let peripherals = embassy_rp::init(Default::default());
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// Initialize the TRNG with default configuration
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let mut trng = Trng::new(peripherals.TRNG, Irqs, embassy_rp::trng::Config::default());
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// A buffer to collect random bytes in.
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let mut randomness = [0u8; 58];
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loop {
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println!("Hello, world!");
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}
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}
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