add hardware reference notes and INA219 bit-banged I2C implementation
This commit is contained in:
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# Hardware implementor's notes
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Reference for anyone touching `firmware/src/*.rs`: what's wired to what, which
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peripherals/pins are used and why, and the non-obvious dependency-version
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constraints this firmware relies on. Written against the real, currently
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maintained schematic at `/home/empire/workspace/PlantCtrl/Hardware/open-bms/bms/bms.kicad_sch`.
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**The KiCad project checked into *this* repo (`board/bms/`) is a stale, older
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board revision.** Its component references and pin assignments do not match
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the hardware this firmware actually targets — do not use it as a source of
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truth. Re-derive facts from the real schematic (e.g. via
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`kicad-cli sch export netlist`) if anything below is in doubt.
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Target chip: **CH32V203C8T6** (RISC-V, `riscv32imc-unknown-none-elf`), no
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external crystal populated — clocked from HSI only (see RCC note below).
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## Pin map
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| Pin | Function | Notes |
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|---|---|---|
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| PA8 | D7 LED | Active-high, 2.2kΩ (R13) to GND on the cathode side |
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| PB12 | D3 LED | Active-high, 2.2kΩ (R14) to GND |
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| PB13 | D4 LED | Active-high, 2.2kΩ (R15) to GND |
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| PB14 | D5 LED | Active-high, 2.2kΩ (R16) to GND |
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| PB15 | D6 LED | Active-high, 2.2kΩ (R17) to GND |
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| PA11 | USB D− | Fixed-function USB pin on this chip, not remappable |
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| PA12 | USB D+ | Fixed-function USB pin on this chip, not remappable |
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| PA4 | SPI1 NSS (flash CS) | Driven manually as a GPIO `Output` — `ch32-hal`'s `Spi` has no CS management. Idle-high, matches the board's 10kΩ pull-up (R7) |
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| PA5 | SPI1 SCK | Default/non-remapped SPI1 pin |
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| PA6 | SPI1 MISO | Default/non-remapped SPI1 pin |
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| PA7 | SPI1 MOSI | Default/non-remapped SPI1 pin |
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| PB9 | INA219 SDA | **Bit-banged**, not hardware I2C — see gotcha below |
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| PB10 | INA219 SCL | **Bit-banged**, not hardware I2C — see gotcha below |
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| PB2 | Spare GPIO input | Pulled low via 10kΩ (R8), nothing else attached. Only real "input" available on this board |
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| PB6 | I2C1 SDA (`S_SDA`) | Battery-pack-facing bus (XT30 connector pins 3/4, BAV99 protection diodes). Currently unused — see I2C1 note below |
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| PB7 | I2C1 SCL (`S_SCL`) | Battery-pack-facing bus. Currently unused — see I2C1 note below |
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Not wired to anything: PA0-3, PA9-10, PA15, PB0-1, PB3-5, PB8, PB11, PC13-15.
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`Boot1`/`Reset1` are the BOOT0 strap and NRST reset buttons respectively —
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not runtime-readable GPIOs, don't try to poll them as inputs.
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## Peripherals in use
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- **USBD** — USB CDC-ACM virtual serial console. `hal::usbd::Driver::new(p.USBD, Irqs, p.PA12 /*dp*/, p.PA11 /*dm*/)`. Interrupt vector is shared with CAN1: `bind_interrupts!` needs `USB_LP_CAN1_RX0 => hal::usbd::InterruptHandler<hal::peripherals::USBD>`. Max packet size is 64 bytes — `write_packet()` on a single call **fails** (`EndpointError::BufferOverflow`, does not panic) for anything longer; chunk before sending (see `usb_writer` in `main.rs`).
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- **SPI1** — blocking, talks to the W25Q128JVE NOR flash (U5). `hal::spi::Spi::new_blocking::<0>(p.SPI1, sck, mosi, miso, config)` — note the argument order is `(sck, mosi, miso)`, not alphabetical. No hardware CS support in this driver; drive it yourself.
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- **I2C1** — hardware peripheral, PB6/PB7 (remap 0). Intended for the battery-pack-facing slave bus (device acts as an I2C *slave*, address `0x55` in the existing but currently-commented-out code). **Not currently enabled** — `I2c::listen_blocking()` is a genuine busy-spin with no `.await`, which starves every other embassy task (USB included) on this single-threaded executor the instant it's called. Don't re-enable it without either moving it off the main task's critical path or replacing it with a non-blocking variant.
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- **I2C2** — hardware peripheral, fixed to PB10 (SCL) / PB11 (SDA), no remap. **Do not use for the INA219.** PB11 is completely unconnected on this board. See the bit-bang gotcha below.
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- **TIM2** — claimed by `ch32-hal`'s `time-driver-tim2` feature as the embassy time driver's tick source. Don't reuse TIM2 directly for anything else.
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## Hardware gotcha: the INA219 bus needs software (bit-banged) I2C
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The schematic labels a bus "SCL"/"SDA" going to the INA219 (U3), wired to
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PB10 and PB9. This looks like it should be a normal hardware I2C bus, but
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**it isn't reachable by any single hardware I2C peripheral on this chip**:
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- I2C2 is fixed to PB10=SCL, **PB11**=SDA (no remap available). PB11 is
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unconnected on this board.
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- I2C1 remap 1 is **PB8**=SCL, PB9=SDA. PB8 is unconnected on this board.
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PB10 only pairs (in hardware) with PB11; PB9 only pairs with PB8. Neither
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partner pin is wired to the sensor. This is a board wiring quirk, not
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something fixable via `ch32-hal` configuration. `firmware/src/selfcheck.rs`
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therefore implements a minimal bit-banged I2C driver (`BitbangI2c`) over
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plain open-drain GPIOs (`hal::gpio::Flex`) on PB9/PB10, implementing
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`embedded_hal::i2c::I2c` via its single required `transaction()` method (the
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`read`/`write`/`write_read` provided methods come for free from that). It
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does **not** support clock stretching — fine for the INA219, which doesn't
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stretch, but keep that in mind if another device ever goes on this bus.
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INA219 address: **0x48** — `A0`→GND, `A1`→SDA on this board, i.e.
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`ina219::address::Address::from_pins(Pin::Gnd, Pin::Sda)`. Not the more
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common default addresses seen in INA219 examples/datasheet defaults.
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Current-sense shunt: R4 ‖ R5, 100mΩ each → **50mΩ** combined. Current is
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derived in software from `shunt_voltage_uv() / 50`, not from the INA219's
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own calibration registers (`IntCalibration`) — this board's real max current
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draw isn't documented anywhere, so guessing a `current_lsb` for hardware
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calibration seemed worse than a simple, honest Ohm's-law calculation using
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the known shunt value.
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## RCC / clock configuration
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`hal::init` is called with `rcc: hal::rcc::Config::SYSCLK_FREQ_144MHZ_HSI`,
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**not** the HAL's default config. This is required for USB to get a valid
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48MHz derived clock, and it's HSI-based because there's no external crystal
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on this board (`OSC_IN`/`OSC_OUT` are unconnected). If you ever add code
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that assumes a different clock tree, check this first.
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## Dependency versions that matter (not arbitrary pins in `Cargo.toml`)
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These aren't just "whatever version worked" — each one fixes a real,
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previously-hit build or runtime failure. Don't casually bump/change them
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without re-verifying:
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- **`embassy-executor` features = `["arch-spin", "executor-thread"]`** — NOT
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`arch-riscv32`. `arch-riscv32`'s WFI-based sleep races with the USB
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interrupt's wake signal: if the interrupt fires right as the core is about
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to sleep, the wake can be missed and anything `.await`ing on it (e.g.
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`wait_connection()`/`write_packet()`) hangs forever, even though the
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device still enumerates fine. `arch-spin` busy-polls instead of sleeping,
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sidestepping the race. (Symptom if this regresses: USB enumerates, but no
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console output ever appears.) Confirmed the same fix is needed in the
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sibling `PlantCtrl/Software/CAN_Sensor` project on the same HAL fork.
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- **`embassy-time` features = `["generic-queue-8"]`, version `"0.5.0"`** —
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needs to match the `embassy-time` version `ch32-hal` itself pulls in
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transitively (currently 0.5.x); a direct-dependency version mismatch
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causes a Cargo `links` conflict (`embassy-time-queue-utils` can't resolve
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two different versions simultaneously). The `generic-queue-8` feature
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makes `embassy-time` use its own self-contained timer queue instead of
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requiring `embassy-executor` to implement an "integrated timer queue"
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symbol that our pinned `embassy-executor 0.7.0` doesn't provide (that
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support landed in later `embassy-executor` versions).
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- **`embassy-usb = "0.5.1"`** — NOT 0.3.0/0.4.0. Those depend on
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`embassy-usb-driver ^0.1.0`; `ch32-hal`'s `hal::usbd::Driver` implements
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the `embassy-usb-driver 0.2.0` traits. `embassy-usb` versions ≥0.5.0 are
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the first to depend on `embassy-usb-driver ^0.2.0`. Using an older
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`embassy-usb` here is a hard type-check failure, not a subtle bug.
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- **`heapless` feature = `"portable-atomic-critical-section"`** — needed for
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`static_cell` (used for the `'static` USB buffers/class/device via the
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`mk_static!` macro in `main.rs`) to build at all. `riscv32imc` has no
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native atomic compare-and-swap instruction; without this feature,
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`static_cell`'s internal `AtomicBool::compare_exchange` fails to compile
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for this target. This feature makes `portable-atomic` (a shared transitive
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dependency) emulate CAS via critical sections instead.
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- **`ch32-hal`** — git dependency on `ju6ge/ch32-hal`, branch
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`feature/i2c-slave-api` (upstream `ch32-rs/ch32-hal` does **not** have the
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I2C slave-mode API this firmware's (currently disabled) I2C1 code depends
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on — checked directly, no `SlaveConfig`/`listen_blocking` there). This
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branch has been force-pushed/rebased before (the previously-locked commit
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disappeared from GitHub entirely) — if `cargo build` ever fails to fetch
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the pinned commit in `Cargo.lock`, that's almost certainly why; re-run
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`cargo update -p ch32-hal` to pick up the branch's current tip.
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- Entry point is `qingke_rt::entry` (via
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`#[embassy_executor::main(entry = "qingke_rt::entry")]`), matching
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`ch32-hal`'s own examples for this chip family.
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## Logging
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`println!` in `main.rs` is a **local macro**, not `ch32_hal::println!` — the
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latter writes over WCH's SDI single-wire debug protocol (needs a WCH-Link
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probe attached, see `hal`'s `debug.rs`). The local one formats into a
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`heapless::String<128>` and pushes it onto a channel (`LOG_CH`) that a
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spawned `usb_writer` task drains and writes out over the USB CDC-ACM
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console. It's `#[macro_export]`ed with `$crate::LOG_CH` internally so other
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modules (e.g. `selfcheck.rs`) can call `crate::println!(...)` and have it
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land in the same place. Sends are non-blocking (`try_send`) and silently
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drop the line if the channel (capacity 8) is full — there's no backpressure,
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so a burst of many `println!` calls in a tight loop with no `.await` in
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between can lose messages if nothing's draining the channel yet (e.g. no
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terminal connected). USB CDC devices also re-enumerate on every reflash;
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most terminal programs need to be manually reconnected afterward.
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@@ -0,0 +1,219 @@
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//! Power-on self-check: exercises every external component on the board and
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//! reports pass/fail plus readings over the USB console.
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use core::fmt::Write as _;
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use embassy_time::Timer;
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use embedded_hal::i2c::{ErrorKind, ErrorType, I2c, NoAcknowledgeSource, Operation};
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use hal::gpio::{Flex, Input, Output, Speed};
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use hal::mode::Blocking;
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use hal::spi::Spi;
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use ina219::address::{Address, Pin as Ina219Pin};
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use ina219::SyncIna219;
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use {ch32_hal as hal, ch32_hal::peripherals::SPI1};
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/// Bit-banged I2C on two plain GPIOs.
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///
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/// The INA219's I2C bus is wired to PB9 (SDA) and PB10 (SCL) on this board,
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/// but those two pins belong to *different* hardware I2C peripherals (PB10 is
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/// I2C2's SCL, whose SDA partner PB11 is unconnected here; PB9 is only valid
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/// as I2C1's SDA under pin-remap, whose SCL partner PB8 is also unconnected).
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/// No single hardware I2C instance can reach both pins as wired, so this bus
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/// has to be driven as plain open-drain GPIOs instead. No clock stretching
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/// support, same as most minimal bit-bang I2C implementations.
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pub struct BitbangI2c<'a, 'd> {
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scl: &'a mut Flex<'d>,
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sda: &'a mut Flex<'d>,
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}
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#[derive(Debug)]
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pub struct BitbangI2cError;
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impl embedded_hal::i2c::Error for BitbangI2cError {
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fn kind(&self) -> ErrorKind {
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ErrorKind::NoAcknowledge(NoAcknowledgeSource::Unknown)
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}
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}
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impl<'a, 'd> BitbangI2c<'a, 'd> {
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pub fn new(scl: &'a mut Flex<'d>, sda: &'a mut Flex<'d>) -> Self {
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scl.set_as_output_open_drain(Speed::Low);
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sda.set_as_output_open_drain(Speed::Low);
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scl.set_high();
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sda.set_high();
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let this = Self { scl, sda };
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Self::half_delay();
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this
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}
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fn half_delay() {
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// ~10us at 144MHz -> ~50kHz bit-bang clock, well within I2C standard mode.
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qingke::riscv::asm::delay(1500);
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}
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fn start(&mut self) {
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self.sda.set_high();
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self.scl.set_high();
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Self::half_delay();
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self.sda.set_low();
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Self::half_delay();
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self.scl.set_low();
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Self::half_delay();
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}
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fn stop(&mut self) {
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self.sda.set_low();
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Self::half_delay();
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self.scl.set_high();
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Self::half_delay();
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self.sda.set_high();
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Self::half_delay();
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}
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fn write_bit(&mut self, bit: bool) {
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if bit {
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self.sda.set_high();
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} else {
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self.sda.set_low();
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}
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Self::half_delay();
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self.scl.set_high();
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Self::half_delay();
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self.scl.set_low();
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Self::half_delay();
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}
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fn read_bit(&mut self) -> bool {
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self.sda.set_high(); // release so the slave can drive it
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Self::half_delay();
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self.scl.set_high();
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Self::half_delay();
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let bit = self.sda.is_high();
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self.scl.set_low();
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Self::half_delay();
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bit
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}
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fn write_byte(&mut self, byte: u8) -> Result<(), BitbangI2cError> {
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for i in (0..8).rev() {
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self.write_bit((byte >> i) & 1 != 0);
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}
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if self.read_bit() {
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// NACK
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Err(BitbangI2cError)
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} else {
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Ok(())
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}
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}
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fn read_byte(&mut self, ack: bool) -> u8 {
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let mut byte = 0u8;
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for _ in 0..8 {
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byte = (byte << 1) | u8::from(self.read_bit());
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}
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self.write_bit(!ack);
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byte
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}
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}
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impl<'a, 'd> ErrorType for BitbangI2c<'a, 'd> {
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type Error = BitbangI2cError;
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}
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impl<'a, 'd> I2c for BitbangI2c<'a, 'd> {
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fn transaction(&mut self, address: u8, operations: &mut [Operation<'_>]) -> Result<(), Self::Error> {
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self.start();
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let mut last_read: Option<bool> = None;
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for op in operations.iter_mut() {
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let is_read = matches!(op, Operation::Read(_));
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if last_read != Some(is_read) {
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if last_read.is_some() {
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self.start(); // repeated start
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}
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self.write_byte((address << 1) | u8::from(is_read))?;
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}
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match op {
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Operation::Write(data) => {
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for &b in data.iter() {
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self.write_byte(b)?;
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}
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}
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Operation::Read(buf) => {
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let len = buf.len();
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for (i, b) in buf.iter_mut().enumerate() {
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*b = self.read_byte(i + 1 != len);
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}
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}
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}
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last_read = Some(is_read);
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}
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self.stop();
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Ok(())
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}
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}
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/// Current-sense shunt on this board: R4 (100mOhm) parallel with R5 (100mOhm).
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const SHUNT_MILLIOHM: i32 = 50;
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#[allow(clippy::too_many_arguments)]
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pub async fn run<'d>(
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d7: &mut Output<'d>,
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d3: &mut Output<'d>,
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d4: &mut Output<'d>,
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d5: &mut Output<'d>,
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d6: &mut Output<'d>,
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input_pb2: &Input<'d>,
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spi: &mut Spi<'d, SPI1, Blocking>,
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flash_cs: &mut Output<'d>,
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i2c_scl: &mut Flex<'d>,
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i2c_sda: &mut Flex<'d>,
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) {
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crate::println!("=== self-check start ===");
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crate::println!("-- LED outputs --");
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let leds: [(&str, &mut Output<'d>); 5] = [("D3", d3), ("D4", d4), ("D5", d5), ("D6", d6), ("D7", d7)];
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for (name, led) in leds {
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crate::println!(" {name}: on");
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led.set_high();
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Timer::after_millis(150).await;
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led.set_low();
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}
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crate::println!("-- input --");
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crate::println!(" PB2: {}", if input_pb2.is_high() { "high" } else { "low" });
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crate::println!("-- current sensor (INA219 via bit-banged I2C on PB9/PB10) --");
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let i2c = BitbangI2c::new(i2c_scl, i2c_sda);
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match SyncIna219::new(i2c, Address::from_pins(Ina219Pin::Gnd, Ina219Pin::Sda)) {
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Ok(mut dev) => match (dev.bus_voltage(), dev.shunt_voltage()) {
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(Ok(bus), Ok(shunt)) => {
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let bus_mv = bus.voltage_mv();
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let shunt_uv = shunt.shunt_voltage_uv();
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let current_ma = shunt_uv / SHUNT_MILLIOHM;
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crate::println!(
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" PASS: bus={bus_mv}mV shunt={shunt_uv}uV current={current_ma}mA (shunt={SHUNT_MILLIOHM}mOhm)"
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);
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}
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_ => crate::println!(" FAIL: INA219 responded but a measurement read failed"),
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},
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Err(_) => crate::println!(" FAIL: INA219 not responding (addr 0x48)"),
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}
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crate::println!("-- SPI flash (W25Q128, JEDEC ID) --");
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flash_cs.set_low();
|
||||
let mut buf: [u8; 4] = [0x9F, 0, 0, 0];
|
||||
let result = spi.blocking_transfer_in_place(&mut buf);
|
||||
flash_cs.set_high();
|
||||
match result {
|
||||
Ok(()) => {
|
||||
let [_, mfg, mem_type, capacity] = buf;
|
||||
if mfg == 0xEF {
|
||||
crate::println!(" PASS: JEDEC ID {mfg:02x} {mem_type:02x} {capacity:02x}");
|
||||
} else {
|
||||
crate::println!(" FAIL: unexpected JEDEC ID {mfg:02x} {mem_type:02x} {capacity:02x}");
|
||||
}
|
||||
}
|
||||
Err(_) => crate::println!(" FAIL: SPI transfer error"),
|
||||
}
|
||||
|
||||
crate::println!("=== self-check done ===");
|
||||
}
|
||||
Reference in New Issue
Block a user