mirror of
https://github.com/portapack-mayhem/mayhem-firmware.git
synced 2026-08-16 12:53:25 +00:00
85eaa9d800
* Updated harckrf_gpio methods to more closely reflect hackrf_usb. Added some ui debug updates to RFFC5072 Status View. * Updated tuning tables for tuning.cpp. Remnoved 15MHz lower limit in max2831.cpp since lower bandwidths don't seem to be causing lower band issues. Added more opportunities for clocks to stabalize at startup in board.cpp. Added/amended UI to help with addresssing low band tuning issues. Cleaned up stale comments in radio.cpp. * Ran format-code.sh * Updated to remove commented lines as part of clean up addressing review comments.
480 lines
14 KiB
C++
480 lines
14 KiB
C++
/*
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* Copyright (C) 2025 Great Scott Gadgets
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*
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* This file is part of PortaPack.
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2, or (at your option)
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* any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; see the file COPYING. If not, write to
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* the Free Software Foundation, Inc., 51 Franklin Street,
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* Boston, MA 02110-1301, USA.
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*/
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/*
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* MAX2831 driver ported from GSG HackRF reference implementation (max2831.c).
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* Adapted to work with Mayhem's MAX283x abstraction layer.
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*/
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#ifdef PRALINE
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#include "max2831.hpp"
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#include "hackrf_hal.hpp"
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#include "hackrf_gpio.hpp"
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using namespace hackrf::one;
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#include "ch.h"
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#include "hal.h"
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#include <algorithm>
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#include <cstring>
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namespace max2831 {
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using namespace max283x;
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static MAX2831Info max2831_info = {0, 0, 0, false, false};
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MAX2831Info get_max2831_info() {
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return {
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max2831_info.requested_freq_mhz,
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max2831_info.calculated_n,
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max2831_info.calculated_frac,
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max2831_info.set_frequency_called,
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max2831_info.frequency_valid};
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}
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/*
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* MAX2831 uses 9-bit SPI transfers.
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* An 18-bit word is sent as two 9-bit transfers:
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* Word format: [VALUE:14][REG:4]
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* First transfer: bits 17:9 (high 9 bits)
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* Second transfer: bits 8:0 (low 9 bits)
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*
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* This matches the GSG reference implementation exactly.
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*/
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void MAX2831::write_reg(const uint8_t reg, const uint16_t value) {
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uint32_t word = (((uint32_t)value & 0x3fff) << 4) | (reg & 0xf);
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uint16_t values[2] = {
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static_cast<uint16_t>(word >> 9),
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static_cast<uint16_t>(word & 0x1ff)};
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_target.transfer(values, 2);
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}
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void MAX2831::set_reg_field(const uint8_t reg, const uint16_t mask, const uint16_t value) {
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_regs[reg] = (_regs[reg] & ~mask) | (value & mask);
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mark_dirty(reg);
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}
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uint16_t MAX2831::get_reg_field(const uint8_t reg, const uint16_t mask, const uint8_t shift) {
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return (_regs[reg] & mask) >> shift;
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}
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void MAX2831::mark_dirty(const uint8_t reg) {
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_regs_dirty |= (1 << reg);
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}
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void MAX2831::mark_clean(const uint8_t reg) {
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_regs_dirty &= ~(1 << reg);
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}
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void MAX2831::flush_reg(const uint8_t reg) {
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write_reg(reg, _regs[reg]);
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mark_clean(reg);
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}
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void MAX2831::flush_dirty() {
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for (size_t r = 0; r < reg_count; r++) {
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if ((_regs_dirty >> r) & 0x1) {
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flush_reg(r);
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}
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}
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}
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void MAX2831::init() {
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set_mode(Mode::Shutdown);
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/* Configure GPIO pins for MAX2831 control */
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gpio_max283x_enable.output();
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gpio_max2831_rx_enable.output();
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gpio_max2831_rxhp.output();
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gpio_max2831_rxhp.write(0); /* RXHP low = 100 Hz HPF (default) */
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/* Reset to default register values */
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std::memcpy(_regs.data(), default_regs.data(), sizeof(_regs));
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_regs_dirty = 0xFFFF;
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/* Write default register values to chip */
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flush_dirty();
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/* Use SPI control instead of B1-B7 pins for gain settings.
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* This matches the GSG reference: max2831_setup() */
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set_reg_field(8, REG8_RXVGA_GAIN_SPI_EN, REG8_RXVGA_GAIN_SPI_EN);
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set_reg_field(9, REG9_TXVGA_GAIN_SPI_EN, REG9_TXVGA_GAIN_SPI_EN);
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/* Set initial gains - matches GSG reference */
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set_reg_field(12, REG12_TXVGA_GAIN_MASK, 0x00); /* Minimum TX gain */
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set_reg_field(7, REG7_RX_HPF_SEL_MASK, REG7_RX_HPF_30KHZ);
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set_reg_field(11, REG11_LNA_GAIN_MASK, REG11_LNA_GAIN_MAX);
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set_reg_field(11, REG11_RXVGA_GAIN_MASK, 0x18); // Moderate RX VGA gain
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/* FORCE MAXIMUM GAIN FOR TESTING */
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// set_reg_field(11, REG11_RXVGA_GAIN_MASK, 0x1F); // 62 dB VGA = MAX
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/* Configure baseband filter for 8 MHz TX - matches GSG reference */
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// set_reg_field(8, REG8_LPF_COARSE_MASK, REG8_RX_LPF_7_5M);
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set_reg_field(8, REG8_LPF_COARSE_MASK, REG8_RX_LPF_15M);
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set_reg_field(7, REG7_RX_LPF_FINE_MASK, REG7_RX_LPF_FINE_100);
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set_reg_field(7, REG7_TX_LPF_FINE_MASK, REG7_TX_LPF_FINE_100);
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/* Disable clock output */
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set_reg_field(14, REG14_CLKOUT_PIN_EN, 0);
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/* Write all modified registers */
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flush_dirty();
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set_mode(Mode::Standby);
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}
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void MAX2831::set_mode(const Mode mode) {
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_mode = mode;
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/*
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* MAX2831 mode control via ENABLE and RXTX pins.
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* From GSG hackrf max2831_target.c:
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*
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* Shutdown: ENABLE=0, RXTX=0
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* Standby: ENABLE=0, RXTX=1 (PLL/VCO/LO on, ready for quick TX/RX)
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* RX: ENABLE=1, RXTX=0
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* TX: ENABLE=1, RXTX=1
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*
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* Note: gpio_max2831_rx_enable is the RXTX mode select pin.
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* RXTX=0 selects RX, RXTX=1 selects TX.
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*/
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/* Handle calibration mode bits if needed */
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bool tx_cal = (mode == Mode::Tx_Calibration);
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bool rx_cal = (mode == Mode::Rx_Calibration);
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uint16_t current_tx_cal = get_reg_field(6, REG6_TX_CAL_MODE_EN, REG6_TX_CAL_MODE_EN_SHIFT);
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uint16_t current_rx_cal = get_reg_field(6, REG6_RX_CAL_MODE_EN, REG6_RX_CAL_MODE_EN_SHIFT);
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if (current_tx_cal != (tx_cal ? 1 : 0)) {
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set_reg_field(6, REG6_TX_CAL_MODE_EN, tx_cal ? REG6_TX_CAL_MODE_EN : 0);
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flush_dirty();
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}
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if (current_rx_cal != (rx_cal ? 1 : 0)) {
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set_reg_field(6, REG6_RX_CAL_MODE_EN, rx_cal ? REG6_RX_CAL_MODE_EN : 0);
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flush_dirty();
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}
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switch (mode) {
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default:
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case Mode::Shutdown:
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gpio_max2831_rx_enable.write(0); /* RXTX=0 */
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gpio_max283x_enable.write(0); /* ENABLE=0 */
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break;
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case Mode::Standby:
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gpio_max2831_rx_enable.write(1); /* RXTX=1 */
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gpio_max283x_enable.write(0); /* ENABLE=0 */
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break;
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case Mode::Transmit:
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case Mode::Tx_Calibration:
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gpio_max2831_rx_enable.write(1); /* RXTX=1 for TX */
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gpio_max283x_enable.write(1); /* ENABLE=1 */
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break;
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case Mode::Receive:
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case Mode::Rx_Calibration:
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gpio_max2831_rx_enable.write(0); /* RXTX=0 for RX */
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gpio_max283x_enable.write(1); /* ENABLE=1 */
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break;
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}
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/* Update LPF bandwidth for current mode */
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if (_desired_lpf_bw > 0) {
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set_lpf_bandwidth_internal(_desired_lpf_bw);
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}
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}
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void MAX2831::set_tx_vga_gain(const int_fast8_t db) {
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/* TX VGA gain: 0-31 dB in ~1 dB steps
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* Register value: gain * 2 | 1, max 0x3F
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* This matches GSG reference: max2831_set_txvga_gain() */
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int_fast8_t db_clipped = std::max(0, std::min(31, (int)db));
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uint16_t value = std::min((db_clipped << 1) | 1, 0x3f);
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set_reg_field(12, REG12_TXVGA_GAIN_MASK, value);
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flush_reg(12);
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}
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void MAX2831::set_lna_gain(const int_fast8_t db) {
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/*
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* LNA gain has 3 settings (from GSG reference):
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* MAX (33 dB), -16 dB from max (17 dB), -33 dB from max (0 dB)
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* Map from MAX2837 8 dB steps for compatibility
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*/
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uint16_t gain_val;
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if (db >= 32) {
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gain_val = REG11_LNA_GAIN_MAX;
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} else if (db >= 16) {
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gain_val = REG11_LNA_GAIN_M16;
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} else {
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gain_val = REG11_LNA_GAIN_M33;
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}
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set_reg_field(11, REG11_LNA_GAIN_MASK, gain_val);
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flush_reg(11);
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}
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void MAX2831::set_vga_gain(const int_fast8_t db) {
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/* VGA gain: 0-62 dB in 2 dB steps
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* This matches GSG reference: max2831_set_vga_gain() */
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if ((db & 0x1) || db > 62) {
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return; /* Invalid: must be even and <= 62 */
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}
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int_fast8_t db_clipped = std::max(0, std::min(62, (int)db));
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uint16_t value = (db_clipped >> 1) & 0x1f;
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set_reg_field(11, REG11_RXVGA_GAIN_MASK, value);
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flush_reg(11);
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}
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/*
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* LPF bandwidth tables from GSG reference max2831.c
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*/
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struct lpf_ft_t {
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uint32_t bandwidth_hz;
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uint8_t ft;
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};
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struct lpf_ft_fine_t {
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uint8_t percent;
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uint8_t ft_fine;
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};
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/* Measured -0.5 dB complex baseband bandwidth for each register setting */
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static constexpr lpf_ft_t rx_lpf_ft[] = {
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{11600000, REG8_RX_LPF_7_5M},
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{15100000, REG8_RX_LPF_8_5M},
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{22600000, REG8_RX_LPF_15M},
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{28300000, REG8_RX_LPF_18M},
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{0, 0},
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};
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static constexpr lpf_ft_fine_t rx_lpf_ft_fine[] = {
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{90, REG7_RX_LPF_FINE_90},
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{95, REG7_RX_LPF_FINE_95},
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{100, REG7_RX_LPF_FINE_100},
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{105, REG7_RX_LPF_FINE_105},
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{110, REG7_RX_LPF_FINE_110},
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{0, 0},
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};
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static constexpr lpf_ft_t tx_lpf_ft[] = {
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{11900000, REG8_TX_LPF_8M},
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{15800000, REG8_TX_LPF_11M},
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{23600000, REG8_TX_LPF_16_5M},
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{31300000, REG8_TX_LPF_22_5M},
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{0, 0},
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};
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static constexpr lpf_ft_fine_t tx_lpf_ft_fine[] = {
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{90, REG7_TX_LPF_FINE_90},
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{95, REG7_TX_LPF_FINE_95},
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{100, REG7_TX_LPF_FINE_100},
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{105, REG7_TX_LPF_FINE_105},
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{110, REG7_TX_LPF_FINE_110},
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{115, REG7_TX_LPF_FINE_115},
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{0, 0},
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};
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uint32_t MAX2831::set_lpf_bandwidth_internal(const uint32_t bandwidth_hz) {
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const lpf_ft_t* coarse;
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const lpf_ft_fine_t* fine;
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if (_mode == Mode::Receive || _mode == Mode::Rx_Calibration) {
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coarse = rx_lpf_ft;
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fine = rx_lpf_ft_fine;
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} else {
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coarse = tx_lpf_ft;
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fine = tx_lpf_ft_fine;
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}
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/* Find coarse and fine settings for LPF - matches GSG reference */
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bool found = false;
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const lpf_ft_fine_t* f = fine;
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for (; coarse->bandwidth_hz != 0; coarse++) {
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uint32_t coarse_aux = coarse->bandwidth_hz / 100;
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for (f = fine; f->percent != 0; f++) {
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if ((coarse_aux * f->percent) >= bandwidth_hz) {
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found = true;
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break;
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}
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}
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if (found) break;
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}
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/* Use the widest setting if a wider bandwidth than our maximum is requested */
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if (!found) {
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coarse--;
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f--;
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}
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/* Program found settings */
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set_reg_field(8, REG8_LPF_COARSE_MASK, coarse->ft);
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if (_mode == Mode::Receive || _mode == Mode::Rx_Calibration) {
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set_reg_field(7, REG7_RX_LPF_FINE_MASK, f->ft_fine);
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} else {
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/* TX fine values are already shifted in the constants (REG7_TX_LPF_FINE_*) */
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set_reg_field(7, REG7_TX_LPF_FINE_MASK, f->ft_fine);
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}
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flush_dirty();
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return coarse->bandwidth_hz * f->percent / 100;
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}
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void MAX2831::set_lpf_rf_bandwidth_rx(const uint32_t bandwidth_minimum) {
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_desired_lpf_bw = bandwidth_minimum;
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#ifdef PRALINE
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uint32_t actual_bw = bandwidth_minimum;
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_desired_lpf_bw = actual_bw;
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if (_mode == Mode::Receive || _mode == Mode::Rx_Calibration) {
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set_lpf_bandwidth_internal(actual_bw);
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}
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#else
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if (_mode == Mode::Receive || _mode == Mode::Rx_Calibration) {
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set_lpf_bandwidth_internal(bandwidth_minimum);
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}
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#endif
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}
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void MAX2831::set_lpf_rf_bandwidth_tx(const uint32_t bandwidth_minimum) {
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_desired_lpf_bw = bandwidth_minimum;
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if (_mode == Mode::Transmit || _mode == Mode::Tx_Calibration) {
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set_lpf_bandwidth_internal(bandwidth_minimum);
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}
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}
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bool MAX2831::set_frequency(const rf::Frequency lo_frequency) {
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/*
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* MAX2831 frequency synthesis from GSG reference max2831_set_frequency():
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* F_LO = F_REF * (N + F/2^20) / R
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* Where:
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* F_REF = 40 MHz reference
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* R = reference divider (1 or 2), we use R=2
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* N = integer divider (8 bits)
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* F = fractional divider (20 bits)
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*
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* Using R=2: F_LO = 40M * (N + F/2^20) / 2 = 20M * (N + F/2^20)
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*/
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/* MAX2831 supports 2.3-2.6 GHz */
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// if (lo_frequency < MAX2831_MIN_LO_FREQUENCY_HZ || lo_frequency > MAX2831_MAX_LO_FREQUENCY_HZ) {
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// return false;
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// }
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bool valid = (lo_frequency >= MAX2831_MIN_LO_FREQUENCY_HZ && lo_frequency <= MAX2831_MAX_LO_FREQUENCY_HZ);
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// TRACK REQUEST IMMEDIATELY
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max2831_info.requested_freq_mhz = lo_frequency / 1000000;
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max2831_info.set_frequency_called = true;
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max2831_info.frequency_valid = valid;
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if (!valid) {
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max2831_info.calculated_n = 0;
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max2831_info.calculated_frac = 0;
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return false;
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}
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/* From GSG reference: ASSUME 40MHz PLL. Ratio = F*R/40,000,000.
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* TODO: fixed to R=2. Check if it's worth exploring R=1. */
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uint32_t freq = lo_frequency;
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freq += (20000000 >> 21); /* Round to nearest frequency */
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uint32_t div_int = freq / 20000000;
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uint32_t div_rem = freq % 20000000;
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uint32_t div_frac = 0;
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uint32_t div_cmp = 20000000;
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for (int i = 0; i < 20; i++) {
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div_frac <<= 1;
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div_rem <<= 1;
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if (div_rem >= div_cmp) {
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div_frac |= 0x1;
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div_rem -= div_cmp;
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}
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}
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// TRACK CALCULATED VALUES
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max2831_info.calculated_n = div_int;
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max2831_info.calculated_frac = div_frac;
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/* Write order matters - matches GSG reference */
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/* REG 3: SYN_INT (bits 7:0) and SYN_FRAC_LO (bits 13:8) */
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uint16_t reg3_val = (div_int & 0xFF) | ((div_frac & 0x3F) << 8);
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_regs[3] = reg3_val;
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mark_dirty(3);
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/* REG 4: SYN_FRAC_HI (bits 13:0) - upper 14 bits of 20-bit fractional */
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uint16_t reg4_val = (div_frac >> 6) & 0x3FFF;
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_regs[4] = reg4_val;
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mark_dirty(4);
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flush_dirty();
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return true;
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}
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void MAX2831::set_rx_LO_iq_phase_calibration(const size_t v) {
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/* MAX2831 doesn't have the same IQ calibration as MAX2837 */
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(void)v;
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}
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void MAX2831::set_tx_LO_iq_phase_calibration(const size_t v) {
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/* MAX2831 doesn't have the same IQ calibration as MAX2837 */
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(void)v;
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}
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void MAX2831::set_rx_buff_vcm(const size_t v) {
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/* MAX2831 RX IQ common mode voltage is in register 15
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* Values: 0=1.1V, 1=1.2V, 2=1.3V, 3=1.45V */
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uint16_t vcm = std::min(v, (size_t)3) << REG15_RXIQ_VCM_SHIFT;
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set_reg_field(15, REG15_RXIQ_VCM_MASK, vcm);
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flush_reg(15);
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}
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int8_t MAX2831::temp_sense() {
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/* MAX2831 temperature sensor can be read via RSSI MUX.
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* This would require:
|
|
* 1. Switch RSSI_MUX to temperature mode
|
|
* 2. Read the ADC
|
|
* 3. Switch back to RSSI mode
|
|
* For now, return a placeholder value. */
|
|
return 25; /* Room temperature placeholder */
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|
}
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|
|
|
reg_t MAX2831::read(const address_t reg_num) {
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|
/* MAX2831 doesn't support SPI read, return cached value */
|
|
if (reg_num < reg_count) {
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|
return _regs[reg_num];
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|
}
|
|
return 0;
|
|
}
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|
|
|
void MAX2831::write(const address_t reg_num, const reg_t value) {
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|
if (reg_num < reg_count) {
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|
_regs[reg_num] = value & 0x3FFF; /* 14-bit registers */
|
|
write_reg(reg_num, _regs[reg_num]);
|
|
mark_clean(reg_num);
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|
}
|
|
}
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|
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} // namespace max2831
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#endif
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