328 lines
7.8 KiB
C
328 lines
7.8 KiB
C
/*
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* (C) Copyright 2018-2020
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* Allwinner Technology Co., Ltd. <www.allwinnertech.com>
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* wangwei <wangwei@allwinnertech.com>
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*
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*/
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#include <common.h>
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#include <arch/pmic_bus.h>
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#include <arch/axp81x_reg.h>
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static int pmu_set_vol(char *name, int set_vol, int onoff);
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static axp_contrl_info axp_ctrl_tbl[] = {
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{ "dcdc2", 500, 1300, BOOT_POWER81X_DC2OUT_VOL, 0x7f, BOOT_POWER81X_OUTPUT_CTL1, 1, 0,
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{ {500, 1200, 10}, {1220, 1300, 20},} },
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{ "dcdc4", 500, 1300, BOOT_POWER81X_DC4OUT_VOL, 0x7f, BOOT_POWER81X_OUTPUT_CTL1, 3, 0,
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{ {500, 1200, 10}, {1220, 1300, 20},} },
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{ "dcdc5", 800, 1840, BOOT_POWER81X_DC5OUT_VOL, 0x7f, BOOT_POWER81X_OUTPUT_CTL1, 4, 0,
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{ {800, 1110, 10}, {1120, 1840, 20},} },
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};
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int axp81X_set_power_reset(void)
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{
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u8 reg_value;
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_VOFF_SET, ®_value)) {
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return -1;
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}
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reg_value |= (1 << 6);
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if (pmic_bus_write(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_VOFF_SET, reg_value)) {
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return -1;
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}
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return 0;
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}
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int axp81X_probe_power_key(void)
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{
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u8 reg_value;
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_POWER_KEY_STATUS,
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®_value)) {
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return -1;
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}
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/* POKLIRQ,POKSIRQ */
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reg_value &= (0x03 << BOOT_POWER81X_POWER_KEY_OFFSET);
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if (reg_value) {
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if (pmic_bus_write(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_POWER_KEY_STATUS,
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reg_value)) {
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return -1;
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}
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}
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return (reg_value >> BOOT_POWER81X_POWER_KEY_OFFSET) & 3;
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}
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int axp81X_get_power_source(void)
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{
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u8 reg_value;
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_OTG_STATUS, ®_value)) {
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return -1;
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}
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if (reg_value & (1 << 0)) {
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return AXP_BOOT_SOURCE_BUTTON;
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} else if (reg_value & (1 << 1)) {
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return AXP_BOOT_SOURCE_CHARGER;
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} else if (reg_value & (1 << 2)) {
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return AXP_BOOT_SOURCE_BATTERY;
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}
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return -1;
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}
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static axp_contrl_info *get_ctrl_info_from_tbl(char *name)
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{
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int i = 0;
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int size = ARRAY_SIZE(axp_ctrl_tbl);
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for (i = 0; i < size; i++) {
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if (!strncmp(name, axp_ctrl_tbl[i].name,
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strlen(axp_ctrl_tbl[i].name))) {
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break;
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}
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}
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if (i >= size) {
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return NULL;
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}
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return (axp_ctrl_tbl + i);
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}
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static int pmu_axp81X_set_vol(char *name, int set_vol, int onoff)
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{
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u8 reg_value, i;
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axp_contrl_info *p_item = NULL;
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u8 base_step = 0;
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p_item = get_ctrl_info_from_tbl(name);
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if (!p_item) {
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return -1;
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}
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if ((set_vol > 0) && (p_item->min_vol)) {
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if (set_vol < p_item->min_vol) {
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set_vol = p_item->min_vol;
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} else if (set_vol > p_item->max_vol) {
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set_vol = p_item->max_vol;
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}
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, p_item->cfg_reg_addr,
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®_value)) {
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return -1;
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}
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reg_value &= ~p_item->cfg_reg_mask;
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for (i = 0; p_item->axp_step_tbl[i].step_max_vol != 0; i++) {
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if ((set_vol > p_item->axp_step_tbl[i].step_max_vol) &&
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(set_vol < p_item->axp_step_tbl[i+1].step_min_vol)) {
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set_vol = p_item->axp_step_tbl[i].step_max_vol;
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}
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if (p_item->axp_step_tbl[i].step_max_vol >= set_vol) {
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reg_value |= ((base_step + ((set_vol - p_item->axp_step_tbl[i].step_min_vol)/
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p_item->axp_step_tbl[i].step_val)) << p_item->reg_addr_offest);
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if (p_item->axp_step_tbl[i].regation) {
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u8 reg_value_temp = (~reg_value & p_item->cfg_reg_mask);
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reg_value &= ~p_item->cfg_reg_mask;
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reg_value |= reg_value_temp;
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}
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break;
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} else {
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base_step += ((p_item->axp_step_tbl[i].step_max_vol -
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p_item->axp_step_tbl[i].step_min_vol + p_item->axp_step_tbl[i].step_val) /
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p_item->axp_step_tbl[i].step_val);
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}
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}
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if (pmic_bus_write(AXP81X_RUNTIME_ADDR, p_item->cfg_reg_addr,
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reg_value)) {
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return -1;
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}
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}
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if (onoff < 0) {
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return 0;
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}
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, p_item->ctrl_reg_addr,
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®_value)) {
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return -1;
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}
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if (onoff == 0) {
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reg_value &= ~(1 << p_item->ctrl_bit_ofs);
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} else {
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reg_value |= (1 << p_item->ctrl_bit_ofs);
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}
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if (pmic_bus_write(AXP81X_RUNTIME_ADDR, p_item->ctrl_reg_addr,
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reg_value)) {
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return -1;
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}
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return 0;
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}
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static int pmu_get_vol(char *name)
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{
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u8 reg_value, i;
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axp_contrl_info *p_item = NULL;
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u8 base_step1 = 0;
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u8 base_step2 = 0;
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int vol;
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p_item = get_ctrl_info_from_tbl(name);
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if (!p_item) {
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return -1;
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}
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, p_item->ctrl_reg_addr,
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®_value)) {
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return -1;
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}
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if (!(reg_value & (0x01 << p_item->ctrl_bit_ofs))) {
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return 0;
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}
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, p_item->cfg_reg_addr,
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®_value)) {
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return -1;
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}
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reg_value &= p_item->cfg_reg_mask;
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reg_value >>= p_item->reg_addr_offest;
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for (i = 0; p_item->axp_step_tbl[i].step_max_vol != 0; i++) {
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base_step1 += ((p_item->axp_step_tbl[i].step_max_vol -
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p_item->axp_step_tbl[i].step_min_vol + p_item->axp_step_tbl[i].step_val) /
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p_item->axp_step_tbl[i].step_val);
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if (p_item->axp_step_tbl[i].regation)
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reg_value = (~reg_value & (p_item->cfg_reg_mask >> p_item->reg_addr_offest));
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if (reg_value < base_step1) {
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vol = (reg_value - base_step2) * p_item->axp_step_tbl[i].step_val +
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p_item->axp_step_tbl[i].step_min_vol;
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return vol;
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}
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if (p_item->axp_step_tbl[i].regation)
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reg_value = (~reg_value & (p_item->cfg_reg_mask >> p_item->reg_addr_offest));
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base_step2 += ((p_item->axp_step_tbl[i].step_max_vol -
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p_item->axp_step_tbl[i].step_min_vol + p_item->axp_step_tbl[i].step_val) /
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p_item->axp_step_tbl[i].step_val);
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}
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return -1;
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}
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static int pmu_set_vol(char *name, int set_vol, int onoff)
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{
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int i, temp_vol, src_vol = pmu_get_vol(name);
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u32 step_voltage = 0xffff;
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axp_contrl_info *p_item = NULL;
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p_item = get_ctrl_info_from_tbl(name);
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if (!p_item) {
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return -1;
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}
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for (i = 0; p_item->axp_step_tbl[i].step_val != 0; i++) {
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step_voltage = min(step_voltage, p_item->axp_step_tbl[i].step_val);
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}
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if (step_voltage == 0xffff)
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return -1;
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if (src_vol > set_vol) {
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for (temp_vol = src_vol; temp_vol >= set_vol; temp_vol -= step_voltage) {
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if (pmu_axp81X_set_vol(name, temp_vol, onoff))
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return -1;
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}
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udelay(step_voltage*10/25);
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} else if (src_vol < set_vol) {
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for (temp_vol = src_vol; temp_vol <= set_vol; temp_vol += step_voltage) {
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if (pmu_axp81X_set_vol(name, temp_vol, onoff))
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return -1;
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}
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udelay(step_voltage*10/25);
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}
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return 0;
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}
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int axp81X_set_ddr_voltage(int set_vol)
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{
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return pmu_set_vol(AXP81X_SUNXI_DRAM_VOL, set_vol, 1);
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}
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int axp81X_set_pll_voltage(int set_vol)
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{
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return pmu_set_vol(AXP81X_SUNXI_CPU_VOL, set_vol, 1);
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}
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int axp81X_set_sys_voltage(int set_vol, int onoff)
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{
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return pmu_set_vol(AXP81X_SUNXI_SYS_VOL, set_vol, onoff);
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}
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int axp81X_set_sys_voltage_ext(char *name, int set_vol, int onoff)
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{
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return pmu_set_vol(name, set_vol, onoff);
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}
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static int axp81X_necessary_reg_enable(void)
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{
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__attribute__((unused)) u8 reg_value;
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#ifdef CONFIG_ARCH_SUN50IW10
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/*set dcdc dvm mode*/
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_DC23_DVM_CTL, ®_value))
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return -1;
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reg_value |= (0x3f << 2);
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if (pmic_bus_write(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_DC23_DVM_CTL, reg_value))
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return -1;
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_HOTOVER_CTL, ®_value))
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return -1;
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reg_value |= (1<<0);
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if (pmic_bus_write(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_HOTOVER_CTL, reg_value))
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return -1;
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#endif
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return 0;
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}
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int axp81X_reg_read(u8 addr, u8 *val)
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{
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return pmic_bus_read(AXP81X_RUNTIME_ADDR, addr, val);
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}
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int axp81X_reg_write(u8 addr, u8 val)
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{
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return pmic_bus_write(AXP81X_RUNTIME_ADDR, addr, val);
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}
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int axp81X_axp_init(u8 power_mode)
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{
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u8 pmu_type;
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if (pmic_bus_init(AXP81X_DEVICE_ADDR, AXP81X_RUNTIME_ADDR)) {
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pmu_err("bus init error\n");
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return -1;
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}
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if (pmic_bus_read(AXP81X_RUNTIME_ADDR, BOOT_POWER81X_VERSION,
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&pmu_type)) {
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pmu_err("bus read error\n");
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return -1;
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}
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pmu_type &= 0xCF;
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if (pmu_type == 0x41) {
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/* pmu type AXP803 */
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axp81X_necessary_reg_enable();
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printf("PMU: AXP803\n");
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#if 0
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pwrok_restart_enable();
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disable_dcdc_pfm_mode();
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#endif
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return AXP81X_CHIP_ID;
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}
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printf("unknow PMU\n");
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return -1;
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}
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