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392 lines
12 KiB
392 lines
12 KiB
/* |
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* Copyright 2022-2024 NXP |
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* |
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* SPDX-License-Identifier: Apache-2.0 |
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*/ |
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#define DT_DRV_COMPAT nxp_gau_adc |
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#include <zephyr/drivers/adc.h> |
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#include <zephyr/irq.h> |
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#include <errno.h> |
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#include <zephyr/logging/log.h> |
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LOG_MODULE_REGISTER(adc_mcux_gau_adc, CONFIG_ADC_LOG_LEVEL); |
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#define ADC_CONTEXT_USES_KERNEL_TIMER |
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#include "adc_context.h" |
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#include <fsl_adc.h> |
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#define NUM_ADC_CHANNELS 16 |
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struct mcux_gau_adc_config { |
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ADC_Type *base; |
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void (*irq_config_func)(const struct device *dev); |
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adc_clock_divider_t clock_div; |
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adc_analog_portion_power_mode_t power_mode; |
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bool input_gain_buffer; |
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adc_calibration_ref_t cal_volt; |
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}; |
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struct mcux_gau_adc_data { |
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const struct device *dev; |
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struct adc_context ctx; |
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adc_channel_source_t channel_sources[NUM_ADC_CHANNELS]; |
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uint8_t scan_length; |
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uint16_t *results; |
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size_t results_length; |
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uint16_t *repeat; |
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struct k_work read_samples_work; |
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}; |
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static int mcux_gau_adc_channel_setup(const struct device *dev, |
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const struct adc_channel_cfg *channel_cfg) |
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{ |
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const struct mcux_gau_adc_config *config = dev->config; |
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struct mcux_gau_adc_data *data = dev->data; |
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ADC_Type *base = config->base; |
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uint8_t channel_id = channel_cfg->channel_id; |
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uint8_t source_channel = channel_cfg->input_positive; |
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uint32_t tmp_reg; |
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if (channel_cfg->differential) { |
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LOG_ERR("Differential channels not yet supported"); |
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return -ENOTSUP; |
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} |
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if (channel_id >= NUM_ADC_CHANNELS) { |
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LOG_ERR("ADC does not support more than %d channels", NUM_ADC_CHANNELS); |
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return -ENOTSUP; |
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} |
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if (source_channel > 12 && source_channel != 15) { |
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LOG_ERR("Invalid source channel"); |
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return -EINVAL; |
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} |
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/* Set Acquisition/Warmup time */ |
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tmp_reg = base->ADC_REG_INTERVAL; |
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base->ADC_REG_INTERVAL &= ~ADC_ADC_REG_INTERVAL_WARMUP_TIME_MASK; |
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base->ADC_REG_INTERVAL &= ~ADC_ADC_REG_INTERVAL_BYPASS_WARMUP_MASK; |
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if (channel_cfg->acquisition_time == 0) { |
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base->ADC_REG_INTERVAL |= ADC_ADC_REG_INTERVAL_BYPASS_WARMUP_MASK; |
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} else if (channel_cfg->acquisition_time <= 32) { |
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base->ADC_REG_INTERVAL |= |
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ADC_ADC_REG_INTERVAL_WARMUP_TIME(channel_cfg->acquisition_time - 1); |
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} else { |
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LOG_ERR("Invalid acquisition time requested of ADC"); |
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return -EINVAL; |
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} |
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/* If user changed the warmup time, warn */ |
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if (base->ADC_REG_INTERVAL != tmp_reg) { |
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LOG_WRN("Acquisition/Warmup time is global to entire ADC peripheral, " |
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"i.e. channel_setup will override this property for all previous channels."); |
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} |
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/* Set Input Gain */ |
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tmp_reg = base->ADC_REG_ANA; |
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base->ADC_REG_ANA &= ~ADC_ADC_REG_ANA_INBUF_GAIN_MASK; |
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if (channel_cfg->gain == ADC_GAIN_1) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_INBUF_GAIN(kADC_InputGain1); |
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} else if (channel_cfg->gain == ADC_GAIN_1_2) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_INBUF_GAIN(kADC_InputGain0P5); |
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} else if (channel_cfg->gain == ADC_GAIN_2) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_INBUF_GAIN(kADC_InputGain2); |
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} else { |
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LOG_ERR("Invalid gain"); |
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return -EINVAL; |
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} |
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/* If user changed the gain, warn */ |
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if (base->ADC_REG_ANA != tmp_reg) { |
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LOG_WRN("Input gain is global to entire ADC peripheral, " |
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"i.e. channel_setup will override this property for all previous channels."); |
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} |
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/* Set Reference voltage of ADC */ |
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tmp_reg = base->ADC_REG_ANA; |
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base->ADC_REG_ANA &= ~ADC_ADC_REG_ANA_VREF_SEL_MASK; |
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if (channel_cfg->reference == ADC_REF_INTERNAL) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_VREF_SEL(kADC_Vref1P2V); |
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} else if (channel_cfg->reference == ADC_REF_EXTERNAL0) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_VREF_SEL(kADC_VrefExternal); |
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} else if (channel_cfg->reference == ADC_REF_VDD_1) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_VREF_SEL(kADC_Vref1P8V); |
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} else { |
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LOG_ERR("Vref not supported"); |
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return -ENOTSUP; |
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} |
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/* if user changed the reference voltage, warn */ |
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if (base->ADC_REG_ANA != tmp_reg) { |
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LOG_WRN("Reference voltage is global to entire ADC peripheral, " |
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"i.e. channel_setup will override this property for all previous channels."); |
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} |
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data->channel_sources[channel_id] = source_channel; |
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return 0; |
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} |
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static void mcux_gau_adc_read_samples(struct k_work *work) |
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{ |
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struct mcux_gau_adc_data *data = |
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CONTAINER_OF(work, struct mcux_gau_adc_data, |
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read_samples_work); |
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const struct device *dev = data->dev; |
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const struct mcux_gau_adc_config *config = dev->config; |
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ADC_Type *base = config->base; |
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/* using this variable to prevent buffer overflow */ |
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size_t length = data->results_length; |
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while ((ADC_GetFifoDataCount(base) > 0) && (--length > 0)) { |
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*(data->results++) = (uint16_t)ADC_GetConversionResult(base); |
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} |
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adc_context_on_sampling_done(&data->ctx, dev); |
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} |
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static void mcux_gau_adc_isr(const struct device *dev) |
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{ |
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const struct mcux_gau_adc_config *config = dev->config; |
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struct mcux_gau_adc_data *data = dev->data; |
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ADC_Type *base = config->base; |
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if (ADC_GetStatusFlags(base) & kADC_DataReadyInterruptFlag) { |
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/* Clear flag to avoid infinite interrupt */ |
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ADC_ClearStatusFlags(base, kADC_DataReadyInterruptFlag); |
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/* offload and do not block during irq */ |
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k_work_submit(&data->read_samples_work); |
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} else { |
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LOG_ERR("ADC received unimplemented interrupt"); |
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} |
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} |
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static void adc_context_start_sampling(struct adc_context *ctx) |
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{ |
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struct mcux_gau_adc_data *data = |
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CONTAINER_OF(ctx, struct mcux_gau_adc_data, ctx); |
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const struct mcux_gau_adc_config *config = data->dev->config; |
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ADC_Type *base = config->base; |
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ADC_StopConversion(base); |
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ADC_DoSoftwareTrigger(base); |
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} |
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static void adc_context_update_buffer_pointer(struct adc_context *ctx, |
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bool repeat_sampling) |
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{ |
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struct mcux_gau_adc_data *data = |
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CONTAINER_OF(ctx, struct mcux_gau_adc_data, ctx); |
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if (repeat_sampling) { |
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data->results = data->repeat; |
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} |
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} |
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static int mcux_gau_adc_do_read(const struct device *dev, |
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const struct adc_sequence *sequence) |
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{ |
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const struct mcux_gau_adc_config *config = dev->config; |
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ADC_Type *base = config->base; |
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struct mcux_gau_adc_data *data = dev->data; |
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uint8_t num_channels = 0; |
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/* if user selected channel >= NUM_ADC_CHANNELS that is invalid */ |
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if (sequence->channels & (0xFFFF << NUM_ADC_CHANNELS)) { |
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LOG_ERR("Invalid channels selected for sequence"); |
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return -EINVAL; |
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} |
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/* Count channels */ |
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for (int i = 0; i < NUM_ADC_CHANNELS; i++) { |
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num_channels += ((sequence->channels & (0x1 << i)) ? 1 : 0); |
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} |
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/* Buffer must hold (number of samples per channel) * (number of channels) samples */ |
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if ((sequence->options != NULL && sequence->buffer_size < |
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((1 + sequence->options->extra_samplings) * num_channels)) || |
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(sequence->options == NULL && sequence->buffer_size < num_channels)) { |
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LOG_ERR("Buffer size too small"); |
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return -ENOMEM; |
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} |
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/* Set scan length in data struct for isr to understand & set scan length register */ |
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base->ADC_REG_CONFIG &= ~ADC_ADC_REG_CONFIG_SCAN_LENGTH_MASK; |
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data->scan_length = num_channels; |
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/* Register Value is 1 less than what it represents */ |
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base->ADC_REG_CONFIG |= ADC_ADC_REG_CONFIG_SCAN_LENGTH(data->scan_length - 1); |
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/* Set up scan channels */ |
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for (int channel = 0; channel < NUM_ADC_CHANNELS; channel++) { |
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if (sequence->channels & (0x1 << channel)) { |
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ADC_SetScanChannel(base, |
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data->scan_length - num_channels--, |
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data->channel_sources[channel]); |
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} |
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} |
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/* Set resolution of ADC */ |
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base->ADC_REG_ANA &= ~ADC_ADC_REG_ANA_RES_SEL_MASK; |
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/* odd numbers are for differential channels */ |
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if (sequence->resolution == 12 || sequence->resolution == 11) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_RES_SEL(kADC_Resolution12Bit); |
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} else if (sequence->resolution == 14 || sequence->resolution == 13) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_RES_SEL(kADC_Resolution14Bit); |
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} else if (sequence->resolution == 16 || sequence->resolution == 15) { |
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base->ADC_REG_ANA |= ADC_ADC_REG_ANA_RES_SEL(kADC_Resolution16Bit); |
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} else { |
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LOG_ERR("Invalid resolution"); |
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return -EINVAL; |
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} |
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/* Set oversampling */ |
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base->ADC_REG_CONFIG &= ~ADC_ADC_REG_CONFIG_AVG_SEL_MASK; |
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if (sequence->oversampling == 0) { |
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base->ADC_REG_CONFIG |= ADC_ADC_REG_CONFIG_AVG_SEL(kADC_AverageNone); |
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} else if (sequence->oversampling == 1) { |
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base->ADC_REG_CONFIG |= ADC_ADC_REG_CONFIG_AVG_SEL(kADC_Average2); |
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} else if (sequence->oversampling == 2) { |
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base->ADC_REG_CONFIG |= ADC_ADC_REG_CONFIG_AVG_SEL(kADC_Average4); |
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} else if (sequence->oversampling == 3) { |
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base->ADC_REG_CONFIG |= ADC_ADC_REG_CONFIG_AVG_SEL(kADC_Average8); |
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} else if (sequence->oversampling == 4) { |
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base->ADC_REG_CONFIG |= ADC_ADC_REG_CONFIG_AVG_SEL(kADC_Average16); |
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} else { |
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LOG_ERR("Invalid oversampling setting"); |
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return -EINVAL; |
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} |
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/* Calibrate if requested */ |
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if (sequence->calibrate) { |
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if (ADC_DoAutoCalibration(base, config->cal_volt)) { |
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LOG_WRN("Calibration of ADC failed!"); |
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} |
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} |
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data->results = sequence->buffer; |
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data->results_length = sequence->buffer_size; |
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data->repeat = sequence->buffer; |
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adc_context_start_read(&data->ctx, sequence); |
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return adc_context_wait_for_completion(&data->ctx); |
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} |
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static int mcux_gau_adc_read(const struct device *dev, |
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const struct adc_sequence *sequence) |
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{ |
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struct mcux_gau_adc_data *data = dev->data; |
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int error; |
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adc_context_lock(&data->ctx, false, NULL); |
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error = mcux_gau_adc_do_read(dev, sequence); |
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adc_context_release(&data->ctx, error); |
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return error; |
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} |
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#ifdef CONFIG_ADC_ASYNC |
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static int mcux_gau_adc_read_async(const struct device *dev, |
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const struct adc_sequence *sequence, |
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struct k_poll_signal *async) |
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{ |
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struct mcux_gau_adc_data *data = dev->data; |
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int error; |
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adc_context_lock(&data->ctx, true, async); |
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error = mcux_gau_adc_do_read(dev, sequence); |
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adc_context_release(&data->ctx, error); |
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return error; |
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} |
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#endif |
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static int mcux_gau_adc_init(const struct device *dev) |
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{ |
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const struct mcux_gau_adc_config *config = dev->config; |
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struct mcux_gau_adc_data *data = dev->data; |
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ADC_Type *base = config->base; |
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adc_config_t adc_config; |
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data->dev = dev; |
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LOG_DBG("Initializing ADC"); |
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ADC_GetDefaultConfig(&adc_config); |
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/* DT configs */ |
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adc_config.clockDivider = config->clock_div; |
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adc_config.powerMode = config->power_mode; |
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adc_config.enableInputGainBuffer = config->input_gain_buffer; |
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adc_config.triggerSource = kADC_TriggerSourceSoftware; |
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adc_config.inputMode = kADC_InputSingleEnded; |
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/* One shot meets the needs of the current zephyr adc context/api */ |
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adc_config.conversionMode = kADC_ConversionOneShot; |
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/* since using one shot mode, just interrupt on one sample (agnostic to # channels) */ |
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adc_config.fifoThreshold = kADC_FifoThresholdData1; |
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/* 32 bit width not supported in this driver; zephyr seems to use 16 bit */ |
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adc_config.resultWidth = kADC_ResultWidth16; |
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adc_config.enableDMA = false; |
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adc_config.enableADC = true; |
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ADC_Init(base, &adc_config); |
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if (ADC_DoAutoCalibration(base, config->cal_volt)) { |
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LOG_WRN("Calibration of ADC failed!"); |
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} |
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ADC_ClearStatusFlags(base, kADC_DataReadyInterruptFlag); |
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config->irq_config_func(dev); |
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ADC_EnableInterrupts(base, kADC_DataReadyInterruptEnable); |
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k_work_init(&data->read_samples_work, &mcux_gau_adc_read_samples); |
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adc_context_init(&data->ctx); |
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adc_context_unlock_unconditionally(&data->ctx); |
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return 0; |
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} |
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static DEVICE_API(adc, mcux_gau_adc_driver_api) = { |
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.channel_setup = mcux_gau_adc_channel_setup, |
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.read = mcux_gau_adc_read, |
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#ifdef CONFIG_ADC_ASYNC |
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.read_async = mcux_gau_adc_read_async, |
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#endif |
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.ref_internal = 1200, |
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}; |
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#define GAU_ADC_MCUX_INIT(n) \ |
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\ |
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static void mcux_gau_adc_config_func_##n(const struct device *dev); \ |
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\ |
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static const struct mcux_gau_adc_config mcux_gau_adc_config_##n = { \ |
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.base = (ADC_Type *)DT_INST_REG_ADDR(n), \ |
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.irq_config_func = mcux_gau_adc_config_func_##n, \ |
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/* Minus one because DT starts at 1, HAL enum starts at 0 */ \ |
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.clock_div = DT_INST_PROP(n, nxp_clock_divider) - 1, \ |
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.power_mode = DT_INST_ENUM_IDX(n, nxp_power_mode), \ |
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.input_gain_buffer = DT_INST_PROP(n, nxp_input_buffer), \ |
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.cal_volt = DT_INST_ENUM_IDX(n, nxp_calibration_voltage), \ |
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}; \ |
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\ |
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static struct mcux_gau_adc_data mcux_gau_adc_data_##n = {0}; \ |
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\ |
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DEVICE_DT_INST_DEFINE(n, &mcux_gau_adc_init, NULL, \ |
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&mcux_gau_adc_data_##n, &mcux_gau_adc_config_##n, \ |
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POST_KERNEL, CONFIG_ADC_INIT_PRIORITY, \ |
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&mcux_gau_adc_driver_api); \ |
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\ |
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static void mcux_gau_adc_config_func_##n(const struct device *dev) \ |
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{ \ |
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IRQ_CONNECT(DT_INST_IRQN(n), DT_INST_IRQ(n, priority), \ |
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mcux_gau_adc_isr, DEVICE_DT_INST_GET(n), 0); \ |
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irq_enable(DT_INST_IRQN(n)); \ |
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} |
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DT_INST_FOREACH_STATUS_OKAY(GAU_ADC_MCUX_INIT)
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