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https://github.com/MCKero6423/uv-k5-v3-emulator.git
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Adds a QEMU machine for the Puya PY32F071 (Cortex-M0+) so Quansheng UV-K5 V3 firmware can run on a PC. The firmware boots to its main loop in about five seconds and the LCD contents are readable. Register layouts come from the vendor CMSIS header shipped with the firmware rather than guesswork. Modelled: RCC, GPIO, ADC, both SPI controllers, DMA1 and the PY25Q16 flash; everything else answers through a logging catch-all, which is how the next thing worth modelling gets identified. Seven things had to be right before it would boot, each found by watching where the firmware stopped: flash aliased at the application offset, clock ready bits, self-clearing ADC calibration, SPI transfer flags, DMA-driven flash reads, SysTick poll acceleration, and the bit-banged transceiver bus idling low. SysTick needs explanation. SYSTICK_DelayUs polls the counter and accumulates differences; under emulation a register read costs far more relative to guest time, so a measured 120 ms delay would have taken about 7.7 hours. Lowering the clock does not help because the bottleneck is loop iterations, not counter speed. Reporting a value that runs ahead of the real counter does, via a new poll-boost property on SysTick. Guest time therefore runs fast during delays: fine for exercising menus and control flow, wrong for judging signal timing. Also includes the host build of the CW timing chain (harness, stubs, shim, tests), which compiles app/cwkeyer.c and app/cwmacro.c unmodified against stub drivers with a virtual clock and scripted paddle input. Known gap: keypad rows reach the firmware's scan and KEYBOARD_Poll returns the right key code, but the UI does not react yet. Not modelled, and not intended to be: radio behaviour. The transceiver chip has no public datasheet, so keying envelopes and emissions need real hardware.
30 lines
973 B
C
30 lines
973 B
C
/* Virtual millisecond clock.
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*
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* The keyer is a timing machine polled once per millisecond by the real main
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* loop. Tests drive that loop explicitly instead of sleeping, so a 30-second
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* exchange completes in microseconds and behaves identically every run.
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*/
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#ifndef SIM_CLOCK_H
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#define SIM_CLOCK_H
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#include <stdint.h>
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void SIM_ClockReset(void);
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uint32_t SIM_ClockNow(void);
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// Advances the clock without running anything. Used by SYSTEM_DelayMs, where
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// the firmware blocks and the keyer is not polled.
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void SIM_ClockAdvanceRaw(uint32_t ms);
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// Advances one millisecond at a time, invoking the registered tick callback
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// after each step. This is the simulator's stand-in for the main loop.
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void SIM_ClockRun(uint32_t ms);
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// Called once per virtual millisecond by SIM_ClockRun. Set this to the function
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// under test (CW_AppUpdate on hardware, or CW_HandleState directly).
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typedef void (*SIM_TickFn)(void);
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void SIM_ClockSetTick(SIM_TickFn fn);
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#endif
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