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|
// SPDX-License-Identifier: GPL-2.0-only
/*
* ADMV8818 driver
*
* Copyright 2021 Analog Devices Inc.
*/
#include <linux/bitfield.h>
#include <linux/bits.h>
#include <linux/clk.h>
#include <linux/device.h>
#include <linux/iio/iio.h>
#include <linux/module.h>
#include <linux/mod_devicetable.h>
#include <linux/mutex.h>
#include <linux/notifier.h>
#include <linux/regmap.h>
#include <linux/spi/spi.h>
#include <linux/units.h>
/* ADMV8818 Register Map */
#define ADMV8818_REG_SPI_CONFIG_A 0x0
#define ADMV8818_REG_SPI_CONFIG_B 0x1
#define ADMV8818_REG_CHIPTYPE 0x3
#define ADMV8818_REG_PRODUCT_ID_L 0x4
#define ADMV8818_REG_PRODUCT_ID_H 0x5
#define ADMV8818_REG_FAST_LATCH_POINTER 0x10
#define ADMV8818_REG_FAST_LATCH_STOP 0x11
#define ADMV8818_REG_FAST_LATCH_START 0x12
#define ADMV8818_REG_FAST_LATCH_DIRECTION 0x13
#define ADMV8818_REG_FAST_LATCH_STATE 0x14
#define ADMV8818_REG_WR0_SW 0x20
#define ADMV8818_REG_WR0_FILTER 0x21
#define ADMV8818_REG_WR1_SW 0x22
#define ADMV8818_REG_WR1_FILTER 0x23
#define ADMV8818_REG_WR2_SW 0x24
#define ADMV8818_REG_WR2_FILTER 0x25
#define ADMV8818_REG_WR3_SW 0x26
#define ADMV8818_REG_WR3_FILTER 0x27
#define ADMV8818_REG_WR4_SW 0x28
#define ADMV8818_REG_WR4_FILTER 0x29
#define ADMV8818_REG_LUT0_SW 0x100
#define ADMV8818_REG_LUT0_FILTER 0x101
#define ADMV8818_REG_LUT127_SW 0x1FE
#define ADMV8818_REG_LUT127_FILTER 0x1FF
/* ADMV8818_REG_SPI_CONFIG_A Map */
#define ADMV8818_SOFTRESET_N_MSK BIT(7)
#define ADMV8818_LSB_FIRST_N_MSK BIT(6)
#define ADMV8818_ENDIAN_N_MSK BIT(5)
#define ADMV8818_SDOACTIVE_N_MSK BIT(4)
#define ADMV8818_SDOACTIVE_MSK BIT(3)
#define ADMV8818_ENDIAN_MSK BIT(2)
#define ADMV8818_LSBFIRST_MSK BIT(1)
#define ADMV8818_SOFTRESET_MSK BIT(0)
/* ADMV8818_REG_SPI_CONFIG_B Map */
#define ADMV8818_SINGLE_INSTRUCTION_MSK BIT(7)
#define ADMV8818_CSB_STALL_MSK BIT(6)
#define ADMV8818_MASTER_SLAVE_RB_MSK BIT(5)
#define ADMV8818_MASTER_SLAVE_TRANSFER_MSK BIT(0)
/* ADMV8818_REG_WR0_SW Map */
#define ADMV8818_SW_IN_SET_WR0_MSK BIT(7)
#define ADMV8818_SW_OUT_SET_WR0_MSK BIT(6)
#define ADMV8818_SW_IN_WR0_MSK GENMASK(5, 3)
#define ADMV8818_SW_OUT_WR0_MSK GENMASK(2, 0)
/* ADMV8818_REG_WR0_FILTER Map */
#define ADMV8818_HPF_WR0_MSK GENMASK(7, 4)
#define ADMV8818_LPF_WR0_MSK GENMASK(3, 0)
enum {
ADMV8818_BW_FREQ,
ADMV8818_CENTER_FREQ
};
enum {
ADMV8818_AUTO_MODE,
ADMV8818_MANUAL_MODE,
ADMV8818_BYPASS_MODE,
};
struct admv8818_state {
struct spi_device *spi;
struct regmap *regmap;
struct clk *clkin;
struct notifier_block nb;
/* Protect against concurrent accesses to the device and data content*/
struct mutex lock;
unsigned int filter_mode;
u64 cf_hz;
};
static const unsigned long long freq_range_hpf[4][2] = {
{1750000000ULL, 3550000000ULL},
{3400000000ULL, 7250000000ULL},
{6600000000, 12000000000},
{12500000000, 19900000000}
};
static const unsigned long long freq_range_lpf[4][2] = {
{2050000000ULL, 3850000000ULL},
{3350000000ULL, 7250000000ULL},
{7000000000, 13000000000},
{12550000000, 18500000000}
};
static const struct regmap_config admv8818_regmap_config = {
.reg_bits = 16,
.val_bits = 8,
.read_flag_mask = 0x80,
.max_register = 0x1FF,
};
static const char * const admv8818_modes[] = {
[0] = "auto",
[1] = "manual",
[2] = "bypass"
};
static int __admv8818_hpf_select(struct admv8818_state *st, u64 freq)
{
unsigned int hpf_step = 0, hpf_band = 0, i, j;
u64 freq_step;
int ret;
if (freq < freq_range_hpf[0][0])
goto hpf_write;
if (freq > freq_range_hpf[3][1]) {
hpf_step = 15;
hpf_band = 4;
goto hpf_write;
}
for (i = 0; i < 4; i++) {
freq_step = div_u64((freq_range_hpf[i][1] -
freq_range_hpf[i][0]), 15);
if (freq > freq_range_hpf[i][0] &&
(freq < freq_range_hpf[i][1] + freq_step)) {
hpf_band = i + 1;
for (j = 1; j <= 16; j++) {
if (freq < (freq_range_hpf[i][0] + (freq_step * j))) {
hpf_step = j - 1;
break;
}
}
break;
}
}
/* Close HPF frequency gap between 12 and 12.5 GHz */
if (freq >= 12000 * HZ_PER_MHZ && freq <= 12500 * HZ_PER_MHZ) {
hpf_band = 3;
hpf_step = 15;
}
hpf_write:
ret = regmap_update_bits(st->regmap, ADMV8818_REG_WR0_SW,
ADMV8818_SW_IN_SET_WR0_MSK |
ADMV8818_SW_IN_WR0_MSK,
FIELD_PREP(ADMV8818_SW_IN_SET_WR0_MSK, 1) |
FIELD_PREP(ADMV8818_SW_IN_WR0_MSK, hpf_band));
if (ret)
return ret;
return regmap_update_bits(st->regmap, ADMV8818_REG_WR0_FILTER,
ADMV8818_HPF_WR0_MSK,
FIELD_PREP(ADMV8818_HPF_WR0_MSK, hpf_step));
}
static int admv8818_hpf_select(struct admv8818_state *st, u64 freq)
{
int ret;
mutex_lock(&st->lock);
ret = __admv8818_hpf_select(st, freq);
mutex_unlock(&st->lock);
return ret;
}
static int __admv8818_lpf_select(struct admv8818_state *st, u64 freq)
{
unsigned int lpf_step = 0, lpf_band = 0, i, j;
u64 freq_step;
int ret;
if (freq > freq_range_lpf[3][1])
goto lpf_write;
if (freq < freq_range_lpf[0][0]) {
lpf_band = 1;
goto lpf_write;
}
for (i = 0; i < 4; i++) {
if (freq > freq_range_lpf[i][0] && freq < freq_range_lpf[i][1]) {
lpf_band = i + 1;
freq_step = div_u64((freq_range_lpf[i][1] - freq_range_lpf[i][0]), 15);
for (j = 0; j <= 15; j++) {
if (freq < (freq_range_lpf[i][0] + (freq_step * j))) {
lpf_step = j;
break;
}
}
break;
}
}
lpf_write:
ret = regmap_update_bits(st->regmap, ADMV8818_REG_WR0_SW,
ADMV8818_SW_OUT_SET_WR0_MSK |
ADMV8818_SW_OUT_WR0_MSK,
FIELD_PREP(ADMV8818_SW_OUT_SET_WR0_MSK, 1) |
FIELD_PREP(ADMV8818_SW_OUT_WR0_MSK, lpf_band));
if (ret)
return ret;
return regmap_update_bits(st->regmap, ADMV8818_REG_WR0_FILTER,
ADMV8818_LPF_WR0_MSK,
FIELD_PREP(ADMV8818_LPF_WR0_MSK, lpf_step));
}
static int admv8818_lpf_select(struct admv8818_state *st, u64 freq)
{
int ret;
mutex_lock(&st->lock);
ret = __admv8818_lpf_select(st, freq);
mutex_unlock(&st->lock);
return ret;
}
static int admv8818_rfin_band_select(struct admv8818_state *st)
{
int ret;
st->cf_hz = clk_get_rate(st->clkin);
mutex_lock(&st->lock);
ret = __admv8818_hpf_select(st, st->cf_hz);
if (ret)
goto exit;
ret = __admv8818_lpf_select(st, st->cf_hz);
exit:
mutex_unlock(&st->lock);
return ret;
}
static int __admv8818_read_hpf_freq(struct admv8818_state *st, u64 *hpf_freq)
{
unsigned int data, hpf_band, hpf_state;
int ret;
ret = regmap_read(st->regmap, ADMV8818_REG_WR0_SW, &data);
if (ret)
return ret;
hpf_band = FIELD_GET(ADMV8818_SW_IN_WR0_MSK, data);
if (!hpf_band || hpf_band > 4) {
*hpf_freq = 0;
return ret;
}
ret = regmap_read(st->regmap, ADMV8818_REG_WR0_FILTER, &data);
if (ret)
return ret;
hpf_state = FIELD_GET(ADMV8818_HPF_WR0_MSK, data);
*hpf_freq = div_u64(freq_range_hpf[hpf_band - 1][1] - freq_range_hpf[hpf_band - 1][0], 15);
*hpf_freq = freq_range_hpf[hpf_band - 1][0] + (*hpf_freq * hpf_state);
return ret;
}
static int admv8818_read_hpf_freq(struct admv8818_state *st, u64 *hpf_freq)
{
int ret;
mutex_lock(&st->lock);
ret = __admv8818_read_hpf_freq(st, hpf_freq);
mutex_unlock(&st->lock);
return ret;
}
static int __admv8818_read_lpf_freq(struct admv8818_state *st, u64 *lp
|