Ultraworked with [Sisyphus](https://github.com/code-yeongyu/oh-my-openagent) Co-authored-by: Sisyphus <clio-agent@sisyphuslabs.ai>
261 lines
10 KiB
C++
261 lines
10 KiB
C++
#include "test_support.h"
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#include <array>
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#include <cstddef>
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#include <cstdint>
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#include <vector>
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#include "../../switch_input.h"
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#include "../../switch_uart_protocol.h"
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namespace {
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using ImuSamples = std::vector<SwitchImuSample>;
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void append_int16(std::vector<uint8_t>& bytes, int16_t value) {
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const uint16_t encoded = static_cast<uint16_t>(value);
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bytes.push_back(static_cast<uint8_t>(encoded & 0xFF));
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bytes.push_back(static_cast<uint8_t>(encoded >> 8));
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}
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std::vector<uint8_t> make_frame(
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uint16_t buttons = 0,
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uint8_t hat = SWITCH_PRO_HAT_NOTHING,
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uint8_t imu_count = 0,
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const ImuSamples& samples = {}) {
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std::vector<uint8_t> frame = {
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0xAA, 0x02, 0x00,
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static_cast<uint8_t>(buttons & 0xFF),
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static_cast<uint8_t>(buttons >> 8),
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hat, 0x80, 0x80, 0x80, 0x80, imu_count,
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};
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for (const SwitchImuSample& sample : samples) {
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append_int16(frame, sample.accel_x);
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append_int16(frame, sample.accel_y);
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append_int16(frame, sample.accel_z);
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append_int16(frame, sample.gyro_x);
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append_int16(frame, sample.gyro_y);
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append_int16(frame, sample.gyro_z);
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}
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frame[2] = static_cast<uint8_t>(frame.size() - 3);
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uint8_t checksum = 0;
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for (uint8_t byte : frame) {
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checksum = static_cast<uint8_t>(checksum + byte);
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}
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frame.push_back(checksum);
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return frame;
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}
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bool decode(const std::vector<uint8_t>& frame, SwitchInputState& state) {
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return switch_uart_decode_input_frame(
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frame.data(), static_cast<uint8_t>(frame.size()), &state);
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}
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bool uart_decoder_rejects_short_frame() {
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// Given: a frame shorter than the legacy 12-byte minimum.
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const std::array<uint8_t, 11> frame{};
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SwitchInputState state{};
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// When: the frame is decoded. Then: it is rejected.
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CHECK(!switch_uart_decode_input_frame(frame.data(), frame.size(), &state));
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return true;
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}
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bool uart_decoder_rejects_wrong_header_and_version() {
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// Given: otherwise-valid frames with invalid framing bytes.
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std::vector<uint8_t> wrong_header = make_frame();
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std::vector<uint8_t> wrong_version = make_frame();
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wrong_header[0] = 0xAB;
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wrong_version[1] = 0x01;
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SwitchInputState state{};
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// When: either frame is decoded. Then: both are rejected before payload use.
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CHECK(!decode(wrong_header, state));
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CHECK(!decode(wrong_version, state));
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return true;
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}
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bool uart_decoder_rejects_declared_length_and_checksum_mismatch() {
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// Given: valid frames corrupted independently at length and checksum.
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std::vector<uint8_t> wrong_length = make_frame();
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std::vector<uint8_t> wrong_checksum = make_frame();
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++wrong_length[2];
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++wrong_checksum.back();
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SwitchInputState state{};
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state.lx = 0x1234;
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// When: either frame is decoded. Then: both validation failures are rejected.
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CHECK(!decode(wrong_length, state));
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CHECK(!decode(wrong_checksum, state));
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CHECK(state.lx == 0x1234);
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return true;
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}
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bool uart_decoder_decodes_neutral_frame() {
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// Given: the canonical 12-byte neutral frame.
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const std::vector<uint8_t> frame = make_frame();
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SwitchInputState state{};
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// When: the frame is decoded. Then: buttons/hat/IMU are clear and sticks expand exactly.
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CHECK(decode(frame, state));
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CHECK(!state.dpad_up && !state.dpad_down && !state.dpad_left && !state.dpad_right);
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CHECK(!state.button_a && !state.button_b && !state.button_x && !state.button_y);
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CHECK(!state.button_l && !state.button_r && !state.button_zl && !state.button_zr);
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CHECK(!state.button_plus && !state.button_minus && !state.button_home && !state.button_capture);
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CHECK(!state.button_l3 && !state.button_r3);
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CHECK(state.lx == 0x8080 && state.ly == 0x8080);
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CHECK(state.rx == 0x8080 && state.ry == 0x8080);
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CHECK(state.imu_sample_count == 0);
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return true;
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}
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bool uart_decoder_maps_every_button_bit() {
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struct ButtonCase {
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uint16_t mask;
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bool SwitchInputState::*field;
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};
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static constexpr ButtonCase cases[] = {
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{SWITCH_PRO_MASK_Y, &SwitchInputState::button_y},
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{SWITCH_PRO_MASK_B, &SwitchInputState::button_b},
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{SWITCH_PRO_MASK_A, &SwitchInputState::button_a},
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{SWITCH_PRO_MASK_X, &SwitchInputState::button_x},
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{SWITCH_PRO_MASK_L, &SwitchInputState::button_l},
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{SWITCH_PRO_MASK_R, &SwitchInputState::button_r},
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{SWITCH_PRO_MASK_ZL, &SwitchInputState::button_zl},
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{SWITCH_PRO_MASK_ZR, &SwitchInputState::button_zr},
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{SWITCH_PRO_MASK_MINUS, &SwitchInputState::button_minus},
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{SWITCH_PRO_MASK_PLUS, &SwitchInputState::button_plus},
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{SWITCH_PRO_MASK_L3, &SwitchInputState::button_l3},
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{SWITCH_PRO_MASK_R3, &SwitchInputState::button_r3},
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{SWITCH_PRO_MASK_HOME, &SwitchInputState::button_home},
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{SWITCH_PRO_MASK_CAPTURE, &SwitchInputState::button_capture},
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};
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// Given/When: each legacy button bit is decoded independently.
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for (const ButtonCase& button : cases) {
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SwitchInputState state{};
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CHECK(decode(make_frame(button.mask), state));
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// Then: the corresponding shared input field is set.
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CHECK(state.*(button.field));
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const int pressed_count =
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state.button_y + state.button_b + state.button_a + state.button_x +
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state.button_l + state.button_r + state.button_zl + state.button_zr +
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state.button_minus + state.button_plus + state.button_l3 + state.button_r3 +
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state.button_home + state.button_capture;
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CHECK(pressed_count == 1);
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}
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return true;
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}
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bool uart_decoder_maps_every_hat_value() {
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struct HatCase {
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uint8_t hat;
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bool up;
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bool down;
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bool left;
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bool right;
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};
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static constexpr HatCase cases[] = {
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{SWITCH_PRO_HAT_UP, true, false, false, false},
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{SWITCH_PRO_HAT_UPRIGHT, true, false, false, true},
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{SWITCH_PRO_HAT_RIGHT, false, false, false, true},
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{SWITCH_PRO_HAT_DOWNRIGHT, false, true, false, true},
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{SWITCH_PRO_HAT_DOWN, false, true, false, false},
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{SWITCH_PRO_HAT_DOWNLEFT, false, true, true, false},
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{SWITCH_PRO_HAT_LEFT, false, false, true, false},
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{SWITCH_PRO_HAT_UPLEFT, true, false, true, false},
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{SWITCH_PRO_HAT_NOTHING, false, false, false, false},
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{0xFF, false, false, false, false},
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};
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// Given/When: every legacy hat value is decoded.
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for (const HatCase& hat : cases) {
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SwitchInputState state{};
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CHECK(decode(make_frame(0, hat.hat), state));
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// Then: its exact cardinal/diagonal field combination is produced.
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CHECK(state.dpad_up == hat.up && state.dpad_down == hat.down);
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CHECK(state.dpad_left == hat.left && state.dpad_right == hat.right);
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}
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return true;
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}
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bool uart_decoder_expands_stick_bytes() {
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// Given: a valid frame with distinct byte values on every axis.
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std::vector<uint8_t> frame = make_frame();
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frame[6] = 0x00;
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frame[7] = 0x7F;
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frame[8] = 0x80;
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frame[9] = 0xFF;
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frame.back() = 0;
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for (std::size_t index = 0; index + 1 < frame.size(); ++index) {
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frame.back() = static_cast<uint8_t>(frame.back() + frame[index]);
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}
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SwitchInputState state{};
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// When: the frame is decoded. Then: each byte is duplicated into 16 bits.
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CHECK(decode(frame, state));
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CHECK(state.lx == 0x0000 && state.ly == 0x7F7F);
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CHECK(state.rx == 0x8080 && state.ry == 0xFFFF);
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return true;
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}
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bool uart_decoder_decodes_one_and_three_imu_samples() {
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// Given: one-sample and three-sample frames with signed extrema and distinct values.
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const SwitchImuSample first{-32768, -2, -1, 0, 1, 32767};
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const SwitchImuSample second{10, 20, 30, 40, 50, 60};
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const SwitchImuSample third{-10, -20, -30, -40, -50, -60};
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SwitchInputState one{};
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SwitchInputState three{};
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// When: both frames are decoded.
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CHECK(decode(make_frame(0, SWITCH_PRO_HAT_NOTHING, 1, {first}), one));
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CHECK(decode(make_frame(0, SWITCH_PRO_HAT_NOTHING, 3, {first, second, third}), three));
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// Then: counts and little-endian signed sample fields remain exact.
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CHECK(one.imu_sample_count == 1 && one.imu_samples[0].accel_x == -32768);
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CHECK(one.imu_samples[0].gyro_z == 32767);
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CHECK(three.imu_sample_count == 3);
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CHECK(three.imu_samples[1].accel_z == 30 && three.imu_samples[1].gyro_y == 50);
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CHECK(three.imu_samples[2].accel_y == -20 && three.imu_samples[2].gyro_z == -60);
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return true;
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}
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bool uart_decoder_caps_imu_count_and_rejects_truncation() {
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// Given: a count of four backed by three samples, and a count of one with none.
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const SwitchImuSample sample{1, 2, 3, 4, 5, 6};
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const std::vector<uint8_t> capped = make_frame(0, SWITCH_PRO_HAT_NOTHING, 4, {sample, sample, sample});
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const std::vector<uint8_t> truncated = make_frame(0, SWITCH_PRO_HAT_NOTHING, 1);
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SwitchInputState state{};
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// When: both frames are decoded. Then: three samples are accepted and truncation is rejected.
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CHECK(decode(capped, state));
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CHECK(state.imu_sample_count == 3);
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CHECK(!decode(truncated, state));
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return true;
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}
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bool uart_decoder_rejects_null_output() {
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// Given: an otherwise-valid frame. When: no output state is supplied.
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const std::vector<uint8_t> frame = make_frame();
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// Then: the legacy parser returns false rather than mutating driver state.
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CHECK(!switch_uart_decode_input_frame(frame.data(), frame.size(), nullptr));
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return true;
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}
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} // namespace
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void run_switch_uart_protocol_tests(TestRunner& runner) {
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runner.run("UART rejects short frame", uart_decoder_rejects_short_frame);
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runner.run("UART rejects header and version", uart_decoder_rejects_wrong_header_and_version);
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runner.run("UART rejects length and checksum", uart_decoder_rejects_declared_length_and_checksum_mismatch);
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runner.run("UART decodes neutral frame", uart_decoder_decodes_neutral_frame);
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runner.run("UART maps every button", uart_decoder_maps_every_button_bit);
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runner.run("UART maps every hat", uart_decoder_maps_every_hat_value);
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runner.run("UART expands stick bytes", uart_decoder_expands_stick_bytes);
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runner.run("UART decodes IMU samples", uart_decoder_decodes_one_and_three_imu_samples);
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runner.run("UART caps and validates IMU count", uart_decoder_caps_imu_count_and_rejects_truncation);
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runner.run("UART rejects null output", uart_decoder_rejects_null_output);
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}
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