569 lines
17 KiB
C
569 lines
17 KiB
C
/*
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* Copyright (c) 2023 Google LLC.
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*
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* SPDX-License-Identifier: Apache-2.0
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*/
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#include <errno.h>
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#include <zephyr/drivers/sensor.h>
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#include <zephyr/dsp/types.h>
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#include <zephyr/logging/log.h>
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LOG_MODULE_REGISTER(sensor_compat, CONFIG_SENSOR_LOG_LEVEL);
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/*
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* Ensure that the size of the generic header aligns with the sensor channel enum. If it doesn't,
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* then cores that require aligned memory access will fail to read channel[0].
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*/
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BUILD_ASSERT((sizeof(struct sensor_data_generic_header) % sizeof(enum sensor_channel)) == 0);
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static void sensor_submit_fallback(const struct device *dev, struct rtio_iodev_sqe *iodev_sqe);
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static void sensor_iodev_submit(struct rtio_iodev_sqe *iodev_sqe)
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{
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const struct sensor_read_config *cfg = iodev_sqe->sqe.iodev->data;
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const struct device *dev = cfg->sensor;
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const struct sensor_driver_api *api = dev->api;
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if (api->submit != NULL) {
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api->submit(dev, iodev_sqe);
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} else {
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sensor_submit_fallback(dev, iodev_sqe);
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}
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}
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const struct rtio_iodev_api __sensor_iodev_api = {
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.submit = sensor_iodev_submit,
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};
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/**
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* @brief Compute the number of samples needed for the given channels
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*
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* @param[in] channels Array of channels requested
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* @param[in] num_channels Number of channels on the @p channels array
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* @return The number of samples required to read the given channels
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*/
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static inline int compute_num_samples(const enum sensor_channel *channels, size_t num_channels)
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{
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int num_samples = 0;
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for (size_t i = 0; i < num_channels; ++i) {
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num_samples += SENSOR_CHANNEL_3_AXIS(channels[i]) ? 3 : 1;
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}
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return num_samples;
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}
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/**
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* @brief Compute the required header size
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*
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* This function takes into account alignment of the q31 values that will follow the header.
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*
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* @param[in] num_output_samples The number of samples to represent
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* @return The number of bytes needed for this sample frame's header
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*/
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static inline uint32_t compute_header_size(int num_output_samples)
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{
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uint32_t size = sizeof(struct sensor_data_generic_header) +
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(num_output_samples * sizeof(enum sensor_channel));
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return (size + 3) & ~0x3;
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}
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/**
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* @brief Compute the minimum number of bytes needed
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*
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* @param[in] num_output_samples The number of samples to represent
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* @return The number of bytes needed for this sample frame
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*/
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static inline uint32_t compute_min_buf_len(int num_output_samples)
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{
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return compute_header_size(num_output_samples) + (num_output_samples * sizeof(q31_t));
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}
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/**
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* @brief Checks if the header already contains a given channel
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*
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* @param[in] header The header to scan
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* @param[in] channel The channel to search for
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* @param[in] num_channels The number of valid channels in the header so far
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* @return Index of the @p channel if found or negative if not found
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*/
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static inline int check_header_contains_channel(const struct sensor_data_generic_header *header,
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enum sensor_channel channel, int num_channels)
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{
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__ASSERT_NO_MSG(!SENSOR_CHANNEL_3_AXIS(channel));
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for (int i = 0; i < num_channels; ++i) {
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if (header->channels[i] == channel) {
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return i;
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}
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}
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return -1;
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}
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/**
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* @brief Fallback function for retrofiting old drivers to rtio
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*
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* @param[in] dev The sensor device to read
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* @param[in] iodev_sqe The read submission queue event
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*/
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static void sensor_submit_fallback(const struct device *dev, struct rtio_iodev_sqe *iodev_sqe)
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{
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const struct sensor_read_config *cfg = iodev_sqe->sqe.iodev->data;
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const enum sensor_channel *const channels = cfg->channels;
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const int num_output_samples = compute_num_samples(channels, cfg->count);
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uint32_t min_buf_len = compute_min_buf_len(num_output_samples);
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uint64_t timestamp_ns = k_ticks_to_ns_floor64(k_uptime_ticks());
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int rc = sensor_sample_fetch(dev);
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uint8_t *buf;
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uint32_t buf_len;
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/* Check that the fetch succeeded */
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if (rc != 0) {
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LOG_WRN("Failed to fetch samples");
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rtio_iodev_sqe_err(iodev_sqe, rc);
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return;
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}
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/* Get the buffer for the frame, it may be allocated dynamically by the rtio context */
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rc = rtio_sqe_rx_buf(iodev_sqe, min_buf_len, min_buf_len, &buf, &buf_len);
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if (rc != 0) {
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LOG_WRN("Failed to get a read buffer of size %u bytes", min_buf_len);
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rtio_iodev_sqe_err(iodev_sqe, rc);
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return;
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}
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/* Set the timestamp and num_channels */
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struct sensor_data_generic_header *header = (struct sensor_data_generic_header *)buf;
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header->timestamp_ns = timestamp_ns;
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header->num_channels = num_output_samples;
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header->shift = 0;
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q31_t *q = (q31_t *)(buf + compute_header_size(num_output_samples));
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/* Populate values, update shift, and set channels */
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for (size_t i = 0, sample_idx = 0; i < cfg->count; ++i) {
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struct sensor_value value[3];
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const int num_samples = SENSOR_CHANNEL_3_AXIS(channels[i]) ? 3 : 1;
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/* Get the current channel requested by the user */
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rc = sensor_channel_get(dev, channels[i], value);
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if (num_samples == 3) {
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header->channels[sample_idx++] =
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rc == 0 ? channels[i] - 3 : SENSOR_CHAN_MAX;
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header->channels[sample_idx++] =
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rc == 0 ? channels[i] - 2 : SENSOR_CHAN_MAX;
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header->channels[sample_idx++] =
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rc == 0 ? channels[i] - 1 : SENSOR_CHAN_MAX;
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} else {
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header->channels[sample_idx++] = rc == 0 ? channels[i] : SENSOR_CHAN_MAX;
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}
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if (rc != 0) {
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LOG_DBG("Failed to get channel %d, skipping", channels[i]);
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continue;
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}
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/* Get the largest absolute value reading to set the scale for the channel */
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uint32_t header_scale = 0;
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for (int sample = 0; sample < num_samples; ++sample) {
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/*
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* The scale is the ceil(abs(sample)).
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* Since we are using fractional values, it's easier to assume that .val2
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* is non 0 and convert this to abs(sample.val1) + 1 (removing a branch).
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* Since it's possible that val1 (int32_t) is saturated (INT32_MAX) we need
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* to upcast it to 64 bit int first, then take the abs() of that 64 bit
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* int before we '+ 1'. Once that's done, we can safely cast back down
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* to uint32_t because the min value is 0 and max is INT32_MAX + 1 which
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* is less than UINT32_MAX.
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*/
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uint32_t scale = (uint32_t)llabs((int64_t)value[sample].val1) + 1;
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header_scale = MAX(header_scale, scale);
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}
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int8_t new_shift = ilog2(header_scale - 1) + 1;
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/* Reset sample_idx */
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sample_idx -= num_samples;
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if (header->shift < new_shift) {
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/*
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* Shift was updated, need to convert all the existing q values. This could
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* be optimized by calling zdsp_scale_q31() but that would force a
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* dependency between sensors and the zDSP subsystem.
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*/
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for (int q_idx = 0; q_idx < sample_idx; ++q_idx) {
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q[q_idx] = q[q_idx] >> (new_shift - header->shift);
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}
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header->shift = new_shift;
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}
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/*
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* Spread the q31 values. This is needed because some channels are 3D. If
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* the user specified one of those then num_samples will be 3; and we need to
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* produce 3 separate readings.
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*/
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for (int sample = 0; sample < num_samples; ++sample) {
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/* Check if the channel is already in the buffer */
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int prev_computed_value_idx = check_header_contains_channel(
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header, header->channels[sample_idx + sample], sample_idx + sample);
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if (prev_computed_value_idx >= 0 &&
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prev_computed_value_idx != sample_idx + sample) {
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LOG_DBG("value[%d] previously computed at q[%d]@%p", sample,
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prev_computed_value_idx,
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(void *)&q[prev_computed_value_idx]);
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q[sample_idx + sample] = q[prev_computed_value_idx];
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continue;
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}
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/* Convert the value to micro-units */
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int64_t value_u = sensor_value_to_micro(&value[sample]);
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/* Convert to q31 using the shift */
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q[sample_idx + sample] =
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((value_u * ((INT64_C(1) << 31) - 1)) / 1000000) >> header->shift;
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LOG_DBG("value[%d]=%s%d.%06d, q[%d]@%p=%d", sample, value_u < 0 ? "-" : "",
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abs((int)value[sample].val1), abs((int)value[sample].val2),
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(int)(sample_idx + sample), (void *)&q[sample_idx + sample],
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q[sample_idx + sample]);
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}
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sample_idx += num_samples;
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}
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LOG_DBG("Total channels in header: %u", header->num_channels);
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rtio_iodev_sqe_ok(iodev_sqe, 0);
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}
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void sensor_processing_with_callback(struct rtio *ctx, sensor_processing_callback_t cb)
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{
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void *userdata = NULL;
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uint8_t *buf = NULL;
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uint32_t buf_len = 0;
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int rc;
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/* Wait for a CQE */
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struct rtio_cqe *cqe = rtio_cqe_consume_block(ctx);
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/* Cache the data from the CQE */
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rc = cqe->result;
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userdata = cqe->userdata;
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rtio_cqe_get_mempool_buffer(ctx, cqe, &buf, &buf_len);
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/* Release the CQE */
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rtio_cqe_release(ctx, cqe);
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/* Call the callback */
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cb(rc, buf, buf_len, userdata);
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/* Release the memory */
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rtio_release_buffer(ctx, buf, buf_len);
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}
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/**
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* @brief Default decoder get frame count
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*
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* Default reader can only ever service a single frame at a time.
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*
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* @param[in] buffer The data buffer to parse
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* @param[in] channel The channel to get the count for
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* @param[in] channel_idx The index of the channel
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* @param[out] frame_count The number of frames in the buffer (always 1)
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* @return 0 in all cases
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*/
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static int get_frame_count(const uint8_t *buffer, enum sensor_channel channel, size_t channel_idx,
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uint16_t *frame_count)
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{
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struct sensor_data_generic_header *header = (struct sensor_data_generic_header *)buffer;
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size_t count = 0;
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switch (channel) {
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case SENSOR_CHAN_ACCEL_XYZ:
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channel = SENSOR_CHAN_ACCEL_X;
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break;
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case SENSOR_CHAN_GYRO_XYZ:
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channel = SENSOR_CHAN_GYRO_X;
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break;
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case SENSOR_CHAN_MAGN_XYZ:
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channel = SENSOR_CHAN_MAGN_X;
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break;
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default:
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break;
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}
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for (size_t i = 0; i < header->num_channels; ++i) {
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if (header->channels[i] == channel) {
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if (channel_idx == count) {
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*frame_count = 1;
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return 0;
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}
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++count;
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}
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}
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return -ENOTSUP;
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}
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int sensor_natively_supported_channel_size_info(enum sensor_channel channel, size_t *base_size,
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size_t *frame_size)
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{
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__ASSERT_NO_MSG(base_size != NULL);
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__ASSERT_NO_MSG(frame_size != NULL);
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switch (channel) {
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case SENSOR_CHAN_ACCEL_X:
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case SENSOR_CHAN_ACCEL_Y:
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case SENSOR_CHAN_ACCEL_Z:
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case SENSOR_CHAN_ACCEL_XYZ:
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case SENSOR_CHAN_GYRO_X:
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case SENSOR_CHAN_GYRO_Y:
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case SENSOR_CHAN_GYRO_Z:
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case SENSOR_CHAN_GYRO_XYZ:
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case SENSOR_CHAN_MAGN_X:
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case SENSOR_CHAN_MAGN_Y:
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case SENSOR_CHAN_MAGN_Z:
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case SENSOR_CHAN_MAGN_XYZ:
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case SENSOR_CHAN_POS_DX:
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case SENSOR_CHAN_POS_DY:
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case SENSOR_CHAN_POS_DZ:
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*base_size = sizeof(struct sensor_three_axis_data);
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*frame_size = sizeof(struct sensor_three_axis_sample_data);
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return 0;
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case SENSOR_CHAN_DIE_TEMP:
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case SENSOR_CHAN_AMBIENT_TEMP:
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case SENSOR_CHAN_PRESS:
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case SENSOR_CHAN_HUMIDITY:
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case SENSOR_CHAN_LIGHT:
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case SENSOR_CHAN_IR:
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case SENSOR_CHAN_RED:
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case SENSOR_CHAN_GREEN:
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case SENSOR_CHAN_BLUE:
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case SENSOR_CHAN_ALTITUDE:
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case SENSOR_CHAN_PM_1_0:
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case SENSOR_CHAN_PM_2_5:
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case SENSOR_CHAN_PM_10:
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case SENSOR_CHAN_DISTANCE:
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case SENSOR_CHAN_CO2:
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case SENSOR_CHAN_VOC:
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case SENSOR_CHAN_GAS_RES:
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case SENSOR_CHAN_VOLTAGE:
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case SENSOR_CHAN_CURRENT:
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case SENSOR_CHAN_POWER:
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case SENSOR_CHAN_RESISTANCE:
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case SENSOR_CHAN_ROTATION:
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case SENSOR_CHAN_RPM:
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case SENSOR_CHAN_GAUGE_VOLTAGE:
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case SENSOR_CHAN_GAUGE_AVG_CURRENT:
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case SENSOR_CHAN_GAUGE_STDBY_CURRENT:
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case SENSOR_CHAN_GAUGE_MAX_LOAD_CURRENT:
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case SENSOR_CHAN_GAUGE_TEMP:
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case SENSOR_CHAN_GAUGE_STATE_OF_CHARGE:
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case SENSOR_CHAN_GAUGE_FULL_CHARGE_CAPACITY:
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case SENSOR_CHAN_GAUGE_REMAINING_CHARGE_CAPACITY:
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case SENSOR_CHAN_GAUGE_NOM_AVAIL_CAPACITY:
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case SENSOR_CHAN_GAUGE_FULL_AVAIL_CAPACITY:
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case SENSOR_CHAN_GAUGE_AVG_POWER:
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case SENSOR_CHAN_GAUGE_STATE_OF_HEALTH:
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case SENSOR_CHAN_GAUGE_TIME_TO_EMPTY:
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case SENSOR_CHAN_GAUGE_TIME_TO_FULL:
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case SENSOR_CHAN_GAUGE_DESIGN_VOLTAGE:
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case SENSOR_CHAN_GAUGE_DESIRED_VOLTAGE:
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case SENSOR_CHAN_GAUGE_DESIRED_CHARGING_CURRENT:
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*base_size = sizeof(struct sensor_q31_data);
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*frame_size = sizeof(struct sensor_q31_sample_data);
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return 0;
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case SENSOR_CHAN_PROX:
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*base_size = sizeof(struct sensor_byte_data);
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*frame_size = sizeof(struct sensor_byte_sample_data);
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return 0;
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case SENSOR_CHAN_GAUGE_CYCLE_COUNT:
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*base_size = sizeof(struct sensor_uint64_data);
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*frame_size = sizeof(struct sensor_uint64_sample_data);
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return 0;
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default:
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return -ENOTSUP;
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}
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}
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static int get_q31_value(const struct sensor_data_generic_header *header, const q31_t *values,
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enum sensor_channel channel, size_t channel_idx, q31_t *out)
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{
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size_t count = 0;
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for (size_t i = 0; i < header->num_channels; ++i) {
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if (channel != header->channels[i]) {
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continue;
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}
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if (count == channel_idx) {
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*out = values[i];
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return 0;
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}
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++count;
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}
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return -EINVAL;
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}
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static int decode_three_axis(const struct sensor_data_generic_header *header, const q31_t *values,
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struct sensor_three_axis_data *data_out, enum sensor_channel x,
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enum sensor_channel y, enum sensor_channel z, size_t channel_idx)
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{
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int rc;
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data_out->header.base_timestamp_ns = header->timestamp_ns;
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data_out->header.reading_count = 1;
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data_out->shift = header->shift;
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data_out->readings[0].timestamp_delta = 0;
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rc = get_q31_value(header, values, x, channel_idx, &data_out->readings[0].values[0]);
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if (rc < 0) {
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return rc;
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}
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rc = get_q31_value(header, values, y, channel_idx, &data_out->readings[0].values[1]);
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if (rc < 0) {
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return rc;
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}
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rc = get_q31_value(header, values, z, channel_idx, &data_out->readings[0].values[2]);
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if (rc < 0) {
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return rc;
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}
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return 1;
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}
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static int decode_q31(const struct sensor_data_generic_header *header, const q31_t *values,
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struct sensor_q31_data *data_out, enum sensor_channel channel,
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size_t channel_idx)
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{
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int rc;
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data_out->header.base_timestamp_ns = header->timestamp_ns;
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data_out->header.reading_count = 1;
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data_out->shift = header->shift;
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data_out->readings[0].timestamp_delta = 0;
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rc = get_q31_value(header, values, channel, channel_idx, &data_out->readings[0].value);
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if (rc < 0) {
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return rc;
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}
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return 1;
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}
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/**
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* @brief Decode up to N samples from the buffer
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*
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* This function will never wrap frames. If 1 channel is available in the current frame and
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* @p max_count is 2, only 1 channel will be decoded and the frame iterator will be modified
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* so that the next call to decode will begin at the next frame.
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*
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* @param[in] buffer The buffer provided on the :c:struct:`rtio` context
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* @param[in] channel The channel to decode
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* @param[in] channel_idx The index of the channel
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* @param[in,out] fit The current frame iterator
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* @param[in] max_count The maximum number of channels to decode.
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* @param[out] data_out The decoded data
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* @return 0 no more samples to decode
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* @return >0 the number of decoded frames
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* @return <0 on error
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*/
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static int decode(const uint8_t *buffer, enum sensor_channel channel, size_t channel_idx,
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uint32_t *fit, uint16_t max_count, void *data_out)
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{
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const struct sensor_data_generic_header *header =
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(const struct sensor_data_generic_header *)buffer;
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const q31_t *q =
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(const q31_t *)(buffer + sizeof(struct sensor_data_generic_header) +
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header->num_channels * sizeof(enum sensor_channel));
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int count = 0;
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|
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if (*fit != 0 || max_count < 1) {
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return -EINVAL;
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}
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|
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/* Check for 3d channel mappings */
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switch (channel) {
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case SENSOR_CHAN_ACCEL_X:
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case SENSOR_CHAN_ACCEL_Y:
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case SENSOR_CHAN_ACCEL_Z:
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case SENSOR_CHAN_ACCEL_XYZ:
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count = decode_three_axis(header, q, data_out, SENSOR_CHAN_ACCEL_X,
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SENSOR_CHAN_ACCEL_Y, SENSOR_CHAN_ACCEL_Z, channel_idx);
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break;
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case SENSOR_CHAN_GYRO_X:
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case SENSOR_CHAN_GYRO_Y:
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case SENSOR_CHAN_GYRO_Z:
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case SENSOR_CHAN_GYRO_XYZ:
|
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count = decode_three_axis(header, q, data_out, SENSOR_CHAN_GYRO_X,
|
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SENSOR_CHAN_GYRO_Y, SENSOR_CHAN_GYRO_Z, channel_idx);
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break;
|
|
case SENSOR_CHAN_MAGN_X:
|
|
case SENSOR_CHAN_MAGN_Y:
|
|
case SENSOR_CHAN_MAGN_Z:
|
|
case SENSOR_CHAN_MAGN_XYZ:
|
|
count = decode_three_axis(header, q, data_out, SENSOR_CHAN_MAGN_X,
|
|
SENSOR_CHAN_MAGN_Y, SENSOR_CHAN_MAGN_Z, channel_idx);
|
|
break;
|
|
case SENSOR_CHAN_POS_DX:
|
|
case SENSOR_CHAN_POS_DY:
|
|
case SENSOR_CHAN_POS_DZ:
|
|
count = decode_three_axis(header, q, data_out, SENSOR_CHAN_POS_DX,
|
|
SENSOR_CHAN_POS_DY, SENSOR_CHAN_POS_DZ, channel_idx);
|
|
break;
|
|
case SENSOR_CHAN_DIE_TEMP:
|
|
case SENSOR_CHAN_AMBIENT_TEMP:
|
|
case SENSOR_CHAN_PRESS:
|
|
case SENSOR_CHAN_HUMIDITY:
|
|
case SENSOR_CHAN_LIGHT:
|
|
case SENSOR_CHAN_IR:
|
|
case SENSOR_CHAN_RED:
|
|
case SENSOR_CHAN_GREEN:
|
|
case SENSOR_CHAN_BLUE:
|
|
case SENSOR_CHAN_ALTITUDE:
|
|
case SENSOR_CHAN_PM_1_0:
|
|
case SENSOR_CHAN_PM_2_5:
|
|
case SENSOR_CHAN_PM_10:
|
|
case SENSOR_CHAN_DISTANCE:
|
|
case SENSOR_CHAN_CO2:
|
|
case SENSOR_CHAN_VOC:
|
|
case SENSOR_CHAN_GAS_RES:
|
|
case SENSOR_CHAN_VOLTAGE:
|
|
case SENSOR_CHAN_CURRENT:
|
|
case SENSOR_CHAN_POWER:
|
|
case SENSOR_CHAN_RESISTANCE:
|
|
case SENSOR_CHAN_ROTATION:
|
|
case SENSOR_CHAN_RPM:
|
|
case SENSOR_CHAN_GAUGE_VOLTAGE:
|
|
case SENSOR_CHAN_GAUGE_AVG_CURRENT:
|
|
case SENSOR_CHAN_GAUGE_STDBY_CURRENT:
|
|
case SENSOR_CHAN_GAUGE_MAX_LOAD_CURRENT:
|
|
case SENSOR_CHAN_GAUGE_TEMP:
|
|
case SENSOR_CHAN_GAUGE_STATE_OF_CHARGE:
|
|
case SENSOR_CHAN_GAUGE_FULL_CHARGE_CAPACITY:
|
|
case SENSOR_CHAN_GAUGE_REMAINING_CHARGE_CAPACITY:
|
|
case SENSOR_CHAN_GAUGE_NOM_AVAIL_CAPACITY:
|
|
case SENSOR_CHAN_GAUGE_FULL_AVAIL_CAPACITY:
|
|
case SENSOR_CHAN_GAUGE_AVG_POWER:
|
|
case SENSOR_CHAN_GAUGE_STATE_OF_HEALTH:
|
|
case SENSOR_CHAN_GAUGE_TIME_TO_EMPTY:
|
|
case SENSOR_CHAN_GAUGE_TIME_TO_FULL:
|
|
case SENSOR_CHAN_GAUGE_DESIGN_VOLTAGE:
|
|
case SENSOR_CHAN_GAUGE_DESIRED_VOLTAGE:
|
|
case SENSOR_CHAN_GAUGE_DESIRED_CHARGING_CURRENT:
|
|
count = decode_q31(header, q, data_out, channel, channel_idx);
|
|
break;
|
|
default:
|
|
break;
|
|
}
|
|
if (count > 0) {
|
|
*fit = 1;
|
|
}
|
|
return count;
|
|
}
|
|
|
|
const struct sensor_decoder_api __sensor_default_decoder = {
|
|
.get_frame_count = get_frame_count,
|
|
.get_size_info = sensor_natively_supported_channel_size_info,
|
|
.decode = decode,
|
|
};
|