AC695N-SoundBox-SDK/apps/soundbox/board/br23/board_ac6951g/board_ac6951g.c

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2026-08-09 00:00:00 +00:00
#include "app_config.h"
#ifdef CONFIG_BOARD_AC6951G
#include "system/includes.h"
#include "media/includes.h"
#include "asm/sdmmc.h"
#include "asm/chargestore.h"
#include "asm/charge.h"
#include "asm/pwm_led.h"
#include "asm/rtc.h"
#include "tone_player.h"
#include "audio_config.h"
#include "asm/iic_hw.h"
#include "asm/iic_soft.h"
#include "gSensor/gSensor_manage.h"
#include "key_event_deal.h"
#include "user_cfg.h"
#include "linein/linein_dev.h"
#include "usb/otg.h"
#include "ui/ui_api.h"
#include "dev_manager.h"
#include "fm/fm_manage.h"
#include "asm/power/p33.h"
#include "norflash.h"
#include "asm/spi.h"
#include "ui_manage.h"
#include "spi/nor_fs.h"
#include "app_power_manage.h"
#define LOG_TAG_CONST BOARD
#define LOG_TAG "[BOARD]"
#define LOG_ERROR_ENABLE
#define LOG_DEBUG_ENABLE
#define LOG_INFO_ENABLE
/* #define LOG_DUMP_ENABLE */
#define LOG_CLI_ENABLE
#include "debug.h"
void board_power_init(void);
/*各个状态下默认的闪灯方式和提示音设置如果USER_CFG中设置了USE_CONFIG_STATUS_SETTING为1则会从配置文件读取对应的配置来填充改结构体*/
STATUS_CONFIG status_config = {
//提示音设置
.tone = {
.charge_start = IDEX_TONE_NONE,
.charge_full = IDEX_TONE_NONE,
.power_on = IDEX_TONE_POWER_ON,
.power_off = IDEX_TONE_POWER_OFF,
.lowpower = IDEX_TONE_LOW_POWER,
.max_vol = IDEX_TONE_MAX_VOL,
.phone_in = IDEX_TONE_NONE,
.phone_out = IDEX_TONE_NONE,
.phone_activ = IDEX_TONE_NONE,
.bt_init_ok = IDEX_TONE_BT_MODE,
.bt_connect_ok = IDEX_TONE_BT_CONN,
.bt_disconnect = IDEX_TONE_BT_DISCONN,
.tws_connect_ok = IDEX_TONE_TWS_CONN,
.tws_disconnect = IDEX_TONE_TWS_DISCONN,
}
};
#define __this (&status_config)
// *INDENT-OFF*
/************************** UART config****************************/
#if TCFG_UART0_ENABLE
UART0_PLATFORM_DATA_BEGIN(uart0_data)
.tx_pin = TCFG_UART0_TX_PORT,
.rx_pin = TCFG_UART0_RX_PORT,
.baudrate = TCFG_UART0_BAUDRATE,
.flags = UART_DEBUG,
UART0_PLATFORM_DATA_END()
#endif //TCFG_UART0_ENABLE
/************************** SD config ****************************/
#if TCFG_SD0_ENABLE
/* int sdmmc_0_io_detect(const struct sdmmc_platform_data *data) */
/* { */
/* return 1; */
/* } */
/* void sd_set_power(u8 enable) */
/* { */
/* static u8 old_enable = 0xff; */
/* */
/* if(old_enable == enable){ */
/* return; */
/* } */
/* if(enable){ */
/* sdpg_config(1); */
/* }else{ */
/* sdpg_config(0); */
/* } */
/* old_enable = enable; */
/* } */
SD0_PLATFORM_DATA_BEGIN(sd0_data)
// .port = 'B', //sd0 support port 'A' and port 'B'
// .data_width = 1,
// .speed = 3000000,
// .detect_mode = SD_CMD_DECT,
.port = TCFG_SD0_PORTS, //sd0 support port 'A' and port 'B'
.data_width = TCFG_SD0_DAT_MODE,
.speed = TCFG_SD0_CLK,
.detect_mode = TCFG_SD0_DET_MODE,
.priority = 3,
#if (TCFG_SD0_DET_MODE == SD_IO_DECT)
.detect_io = TCFG_SD0_DET_IO,//当检测模式为io口检测是有效
.detect_io_level = TCFG_SD0_DET_IO_LEVEL,//0低电平检测到卡。 1高电平检测到卡
.detect_func = sdmmc_0_io_detect,//库函数需要detect_io和detect_io_level两个元素作为参数。可以自行重写一个检测函数在线返回1不在线返回0即可。
.power = sd_set_power,//库函数使用SDPG引脚。可以自行重写其他的SD卡电源控制函数传入0关电源。传入1开电源。如果电源硬件已固定不可控则该函数无效可以填NULL
/* .power = NULL, */
#elif (TCFG_SD0_DET_MODE == SD_CLK_DECT)
.detect_io_level = TCFG_SD0_DET_IO_LEVEL,//0低电平检测到卡。 1高电平检测到卡
.detect_func = sdmmc_0_clk_detect,//库函数需要detect_io_level元素作为参数。可以自行重写一个检测函数在线返回1不在线返回0即可。
.power = sd_set_power,//库函数使用SDPG引脚。可以自行重写其他的SD卡电源控制函数传入0关电源。传入1开电源。如果电源硬件已固定不可控则该函数无效可以填NULL
/* .power = NULL, */
#else
.detect_func = sdmmc_cmd_detect,
.power = NULL,//cmd检测需要全程供电建议用硬件固定电源。当然可以自行写其他的SD卡电源控制函数传入0关电源。传入1开电源。
/* .power = sd_set_power, */
#endif
SD0_PLATFORM_DATA_END()
#endif
#if TCFG_SD1_ENABLE
SD1_PLATFORM_DATA_BEGIN(sd1_data)
// .port = 'A', //sd1 only support port 'A'
// .data_width = 1,
// .speed = 3000000,
// .detect_mode = SD_CMD_DECT,
.port = TCFG_SD1_PORTS, //sd1 only support port 'A'
.data_width = TCFG_SD1_DAT_MODE,
.speed = TCFG_SD1_CLK,
.detect_mode = TCFG_SD1_DET_MODE,
.priority = 3,
#if (TCFG_SD1_DET_MODE == SD_IO_DECT)
.detect_io = TCFG_SD1_DET_IO,//当检测模式为io口检测是有效
.detect_io_level = TCFG_SD1_DET_IO_LEVEL,//0低电平检测到卡。 1高电平检测到卡
.detect_func = sdmmc_1_io_detect,//库函数需要detect_io和detect_io_level两个元素作为参数。可以自行重写一个检测函数在线返回1不在线返回0即可。
.power = sd_set_power,//库函数使用SDPG引脚。可以自行重写其他的SD卡电源控制函数传入0关电源。传入1开电源。如果电源硬件已固定不可控则该函数无效可以填NULL
/* .power = NULL, */
#elif (TCFG_SD1_DET_MODE == SD_CLK_DECT)
.detect_io_level = TCFG_SD1_DET_IO_LEVEL,//0低电平检测到卡。 1高电平检测到卡
.detect_func = sdmmc_1_clk_detect,//库函数需要detect_io_level元素作为参数。可以自行重写一个检测函数在线返回1不在线返回0即可。
.power = sd_set_power,//库函数使用SDPG引脚。可以自行重写其他的SD卡电源控制函数传入0关电源。传入1开电源。如果电源硬件已固定不可控则该函数无效可以填NULL
/* .power = NULL, */
#else
.detect_func = sdmmc_cmd_detect,
.power = NULL,//cmd检测需要全程供电建议用硬件固定电源。当然可以自行写其他的SD卡电源控制函数传入0关电源。传入1开电源。
/* .power = sd_set_power, */
#endif
SD1_PLATFORM_DATA_END()
#endif
/************************** CHARGE config****************************/
#if TCFG_CHARGE_ENABLE
CHARGE_PLATFORM_DATA_BEGIN(charge_data)
.charge_en = TCFG_CHARGE_ENABLE, //内置充电使能
.charge_poweron_en = TCFG_CHARGE_POWERON_ENABLE, //是否支持充电开机
.charge_full_V = TCFG_CHARGE_FULL_V, //充电截止电压
.charge_full_mA = TCFG_CHARGE_FULL_MA, //充电截止电流
.charge_mA = TCFG_CHARGE_MA, //充电电流
/*ldo5v拔出过滤值过滤时间 = (filter*2 + 20)ms,ldoin<0.6V且时间大于过滤时间才认为拔出
5V掉到0V的充电仓05V先掉到0V之后再升压到xV的
*/
.ldo5v_off_filter = 100,
/*ldo5v的10k下拉电阻使能,若充电舱需要更大的负载才能检测到插入时请将该变量置1,默认值设置为1
,0*/
.ldo5v_pulldown_en = 1,
CHARGE_PLATFORM_DATA_END()
#endif//TCFG_CHARGE_ENABLE
/************************** DAC ****************************/
#if TCFG_AUDIO_DAC_ENABLE
struct dac_platform_data dac_data = {
.ldo_volt = TCFG_AUDIO_DAC_LDO_VOLT, //DACVDD等级.需要根据具体硬件来设置(高低压)可选:1.2V/1.3V/2.35V/2.5V/2.65V/2.8V/2.95V/3.1V
#if ((TCFG_AUDIO_DAC_CONNECT_MODE == DAC_OUTPUT_FRONT_LR_REAR_LR) || (TCFG_AUDIO_DAC_CONNECT_MODE == DAC_OUTPUT_DUAL_LR_DIFF))
.vcmo_en = 0, //四声道与双声道差分关闭VCOMO
#else
.vcmo_en = 1, //是否打开VCOMO
#endif
.output = TCFG_AUDIO_DAC_CONNECT_MODE, //DAC输出配置和具体硬件连接有关需根据硬件来设置
.ldo_isel = 3,
.ldo_fb_isel = 2,
.lpf_isel = 0x8,
};
#endif
/************************** ADC ****************************/
#if TCFG_AUDIO_ADC_ENABLE
struct adc_platform_data adc_data = {
/*MIC LDO电流档位设置
0:0.625ua 1:1.25ua 2:1.875ua 3:2.5ua*/
.mic_ldo_isel = TCFG_AUDIO_ADC_LDO_SEL,
/*MIC 是否省隔直电容:
0: 1: */
#if ((TCFG_AUDIO_DAC_CONNECT_MODE == DAC_OUTPUT_FRONT_LR_REAR_LR) || (TCFG_AUDIO_DAC_CONNECT_MODE == DAC_OUTPUT_DUAL_LR_DIFF))
.mic_capless = 0,//四声道与双声道差分使用,不省电容接法
#else
.mic_capless = TCFG_MIC_CAPLESS_ENABLE,
#endif
/*MIC内部上拉电阻挡位配置影响MIC的偏置电压
21:1.18K 20:1.42K 19:1.55K 18:1.99K 17:2.2K 16:2.4K 15:2.6K 14:2.91K 13:3.05K 12:3.5K 11:3.73K
10:3.91K 9:4.41K 8:5.0K 7:5.6K 6:6K 5:6.5K 4:7K 3:7.6K 2:8.0K 1:8.5K */
.mic_bias_res = 16,
/*MIC LDO电压档位设置,也会影响MIC的偏置电压
0:2.3v 1:2.5v 2:2.7v 3:3.0v */
.mic_ldo_vsel = 2,
/*MIC电容隔直模式使用内部mic偏置(PC7)*/
.mic_bias_inside = 1,
/*保持内部mic偏置输出*/
.mic_bias_keep = 0,
};
#endif/*TCFG_AUDIO_ADC_ENABLE*/
/************************** IO KEY ****************************/
#if TCFG_IOKEY_ENABLE
const struct iokey_port iokey_list[] = {
{
.connect_way = TCFG_IOKEY_POWER_CONNECT_WAY, //IO按键的连接方式
.key_type.one_io.port = TCFG_IOKEY_POWER_ONE_PORT, //IO按键对应的引脚
.key_value = 0, //按键值
},
{
.connect_way = TCFG_IOKEY_PREV_CONNECT_WAY,
.key_type.one_io.port = TCFG_IOKEY_PREV_ONE_PORT,
.key_value = 1,
},
{
.connect_way = TCFG_IOKEY_NEXT_CONNECT_WAY,
.key_type.one_io.port = TCFG_IOKEY_NEXT_ONE_PORT,
.key_value = 2,
},
};
const struct iokey_platform_data iokey_data = {
.enable = TCFG_IOKEY_ENABLE, //是否使能IO按键
.num = ARRAY_SIZE(iokey_list), //IO按键的个数
.port = iokey_list, //IO按键参数表
};
#if MULT_KEY_ENABLE
//组合按键消息映射表
//配置注意事项:单个按键按键值需要按照顺序编号,如power:0, prev:1, next:2
//bit_value = BIT(0) | BIT(1) 指按键值为0和按键值为1的两个按键被同时按下,
//remap_value = 3指当这两个按键被同时按下后重新映射的按键值;
const struct key_remap iokey_remap_table[] = {
{.bit_value = BIT(0) | BIT(1), .remap_value = 3},
{.bit_value = BIT(0) | BIT(2), .remap_value = 4},
{.bit_value = BIT(1) | BIT(2), .remap_value = 5},
};
const struct key_remap_data iokey_remap_data = {
.remap_num = ARRAY_SIZE(iokey_remap_table),
.table = iokey_remap_table,
};
#endif
#endif
/************************** AD KEY ****************************/
#if TCFG_ADKEY_ENABLE
const struct adkey_platform_data adkey_data = {
.enable = TCFG_ADKEY_ENABLE, //AD按键使能
.adkey_pin = TCFG_ADKEY_PORT, //AD按键对应引脚
.ad_channel = TCFG_ADKEY_AD_CHANNEL, //AD通道值
.extern_up_en = TCFG_ADKEY_EXTERN_UP_ENABLE, //是否使用外接上拉电阻
.ad_value = { //根据电阻算出来的电压值
TCFG_ADKEY_VOLTAGE0,
TCFG_ADKEY_VOLTAGE1,
TCFG_ADKEY_VOLTAGE2,
TCFG_ADKEY_VOLTAGE3,
TCFG_ADKEY_VOLTAGE4,
TCFG_ADKEY_VOLTAGE5,
TCFG_ADKEY_VOLTAGE6,
TCFG_ADKEY_VOLTAGE7,
TCFG_ADKEY_VOLTAGE8,
TCFG_ADKEY_VOLTAGE9,
},
.key_value = { //AD按键各个按键的键值
TCFG_ADKEY_VALUE0,
TCFG_ADKEY_VALUE1,
TCFG_ADKEY_VALUE2,
TCFG_ADKEY_VALUE3,
TCFG_ADKEY_VALUE4,
TCFG_ADKEY_VALUE5,
TCFG_ADKEY_VALUE6,
TCFG_ADKEY_VALUE7,
TCFG_ADKEY_VALUE8,
TCFG_ADKEY_VALUE9,
},
};
#endif
/************************** IR KEY ****************************/
#if TCFG_IRKEY_ENABLE
const struct irkey_platform_data irkey_data = {
.enable = TCFG_IRKEY_ENABLE, //IR按键使能
.port = TCFG_IRKEY_PORT, //IR按键口
};
#endif
/************************** TOUCH_KEY ****************************/
#if TCFG_TOUCH_KEY_ENABLE
const struct touch_key_port touch_key_list[] = {
{
.port = TCFG_TOUCH_KEY0_PORT,
.key_value = TCFG_TOUCH_KEY0_VALUE, //该值由时钟配置和硬件结构决定, 需要调试
},
{
.port = TCFG_TOUCH_KEY1_PORT,
.key_value = TCFG_TOUCH_KEY1_VALUE, //该值由时钟配置和硬件结构决定, 需要调试
},
};
const struct touch_key_platform_data touch_key_data = {
.num = ARRAY_SIZE(touch_key_list),
.clock = TCFG_TOUCH_KEY_CLK,
.change_gain = TCFG_TOUCH_KEY_CHANGE_GAIN,
.press_cfg = TCFG_TOUCH_KEY_PRESS_CFG,
.release_cfg0 = TCFG_TOUCH_KEY_RELEASE_CFG0,
.release_cfg1 = TCFG_TOUCH_KEY_RELEASE_CFG1,
.port_list = touch_key_list,
};
#endif /* #if TCFG_TOUCH_KEY_ENABLE */
/**************************CTMU_TOUCH_KEY ****************************/
#if TCFG_CTMU_TOUCH_KEY_ENABLE
#include "asm/ctmu.h"
static const struct ctmu_key_port touch_ctmu_port[] = {
{
.port = TCFG_CTMU_TOUCH_KEY0_PORT,
.key_value = TCFG_CTMU_TOUCH_KEY0_VALUE,
},
{
.port = TCFG_CTMU_TOUCH_KEY1_PORT,
.key_value = TCFG_CTMU_TOUCH_KEY1_VALUE,
},
};
const struct ctmu_touch_key_platform_data ctmu_touch_key_data = {
.num = ARRAY_SIZE(touch_ctmu_port),
.port_list = touch_ctmu_port,
};
#endif /* #if TCFG_CTMU_TOUCH_KEY_ENABLE */
/************************** linein KEY ****************************/
#if TCFG_LINEIN_ENABLE
struct linein_dev_data linein_data = {
.enable = TCFG_LINEIN_ENABLE,
.port = TCFG_LINEIN_CHECK_PORT,
.up = TCFG_LINEIN_PORT_UP_ENABLE,
.down = TCFG_LINEIN_PORT_DOWN_ENABLE,
.ad_channel = TCFG_LINEIN_AD_CHANNEL,
.ad_vol = TCFG_LINEIN_VOLTAGE,
};
#endif
/************************** RDEC_KEY ****************************/
#if TCFG_RDEC_KEY_ENABLE
const struct rdec_device rdeckey_list[] = {
{
.index = RDEC0 ,
.sin_port0 = TCFG_RDEC0_ECODE1_PORT,
.sin_port1 = TCFG_RDEC0_ECODE2_PORT,
.key_value0 = TCFG_RDEC0_KEY0_VALUE | BIT(7),
.key_value1 = TCFG_RDEC0_KEY1_VALUE | BIT(7),
},
{
.index = RDEC1 ,
.sin_port0 = TCFG_RDEC1_ECODE1_PORT,
.sin_port1 = TCFG_RDEC1_ECODE2_PORT,
.key_value0 = TCFG_RDEC1_KEY0_VALUE | BIT(7),
.key_value1 = TCFG_RDEC1_KEY1_VALUE | BIT(7),
},
{
.index = RDEC2 ,
.sin_port0 = TCFG_RDEC2_ECODE1_PORT,
.sin_port1 = TCFG_RDEC2_ECODE2_PORT,
.key_value0 = TCFG_RDEC2_KEY0_VALUE | BIT(7),
.key_value1 = TCFG_RDEC2_KEY1_VALUE | BIT(7),
},
};
const struct rdec_platform_data rdec_key_data = {
.enable = TCFG_RDEC_KEY_ENABLE, //是否使能RDEC按键
.num = ARRAY_SIZE(rdeckey_list), //RDEC按键的个数
.rdec = rdeckey_list, //RDEC按键参数表
};
#endif
/************************** otg data****************************/
#if TCFG_OTG_MODE
struct otg_dev_data otg_data = {
.usb_dev_en = TCFG_OTG_USB_DEV_EN,
.slave_online_cnt = TCFG_OTG_SLAVE_ONLINE_CNT,
.slave_offline_cnt = TCFG_OTG_SLAVE_OFFLINE_CNT,
.host_online_cnt = TCFG_OTG_HOST_ONLINE_CNT,
.host_offline_cnt = TCFG_OTG_HOST_OFFLINE_CNT,
.detect_mode = TCFG_OTG_MODE,
.detect_time_interval = TCFG_OTG_DET_INTERVAL,
};
#endif
/************************** rtc ****************************/
#if TCFG_RTC_ENABLE
const struct rtc_dev_data rtc_data = {
.port = (u8)-1,
.edge = 0, //0 leading edge, 1 falling edge
.port_en = false,
.rtc_ldo = false,//使用内部ldo 供电
.clk_res = RTC_CLK_RES_SEL,
};
#endif
/************************** PWM_LED ****************************/
#if TCFG_PWMLED_ENABLE
LED_PLATFORM_DATA_BEGIN(pwm_led_data)
.io_mode = TCFG_PWMLED_IOMODE, //推灯模式设置:支持单个IO推两个灯和两个IO推两个灯
.io_cfg.one_io.pin = TCFG_PWMLED_PIN, //单个IO推两个灯的IO口配置
LED_PLATFORM_DATA_END()
#endif
#if TCFG_UI_LED7_ENABLE
LED7_PLATFORM_DATA_BEGIN(led7_data)
.pin_type = LED7_PIN7,
#if TCFG_SD1_ENABLE
.pin_cfg.pin7.pin[0] = IO_PORTA_02,
.pin_cfg.pin7.pin[1] = IO_PORTA_03,
.pin_cfg.pin7.pin[2] = IO_PORTA_04,
.pin_cfg.pin7.pin[3] = IO_PORTA_06,
.pin_cfg.pin7.pin[4] = IO_PORTA_07,
.pin_cfg.pin7.pin[5] = IO_PORTA_08,
.pin_cfg.pin7.pin[6] = IO_PORTA_09,
#else
.pin_cfg.pin7.pin[0] = IO_PORTC_00,
.pin_cfg.pin7.pin[1] = IO_PORTC_01,
.pin_cfg.pin7.pin[2] = IO_PORTC_02,
.pin_cfg.pin7.pin[3] = IO_PORTC_03,
.pin_cfg.pin7.pin[4] = IO_PORTC_04,
.pin_cfg.pin7.pin[5] = IO_PORTC_05,
.pin_cfg.pin7.pin[6] = IO_PORTB_02,
#endif
LED7_PLATFORM_DATA_END()
const struct ui_devices_cfg ui_cfg_data = {
.type = LED_7,
.private_data = (void *)&led7_data,
};
#endif /* #if TCFG_UI_LED7_ENABLE */
#if TCFG_UI_LED1888_ENABLE
LED7_PLATFORM_DATA_BEGIN(led7_data)
.pin_type = LED7_PIN7,
.pin_cfg.pin7.pin[0] = IO_PORTB_00,
.pin_cfg.pin7.pin[1] = IO_PORTB_01,
.pin_cfg.pin7.pin[2] = IO_PORTB_02,
.pin_cfg.pin7.pin[3] = IO_PORTB_03,
.pin_cfg.pin7.pin[4] = IO_PORTB_04,
.pin_cfg.pin7.pin[5] = IO_PORTB_05,
.pin_cfg.pin7.pin[6] = (u8)-1,//IO_PORTB_06,
LED7_PLATFORM_DATA_END()
const struct ui_devices_cfg ui_cfg_data = {
.type = LED_7,
.private_data = (void *)&led7_data,
};
#endif /* #if TCFG_UI_LED7_ENABLE */
#if TCFG_UI_LCD_SEG3X9_ENABLE
LCD_SEG3X9_PLATFORM_DATA_BEGIN(lcd_seg3x9_data)
.vlcd = LCD_SEG3X9_VOLTAGE_3_3V,
.bias = LCD_SEG3X9_BIAS_1_3,
.pin_cfg.pin_com[0] = IO_PORTC_05,
.pin_cfg.pin_com[1] = IO_PORTC_04,
.pin_cfg.pin_com[2] = IO_PORTC_03,
.pin_cfg.pin_seg[0] = IO_PORTA_00,
.pin_cfg.pin_seg[1] = IO_PORTA_01,
.pin_cfg.pin_seg[2] = IO_PORTA_02,
.pin_cfg.pin_seg[3] = IO_PORTA_03,
.pin_cfg.pin_seg[4] = IO_PORTA_04,
.pin_cfg.pin_seg[5] = IO_PORTA_07,
.pin_cfg.pin_seg[6] = IO_PORTA_12,
.pin_cfg.pin_seg[7] = IO_PORTA_10,
.pin_cfg.pin_seg[8] = IO_PORTA_09,
LCD_SEG3X9_PLATFORM_DATA_END()
const struct ui_devices_cfg ui_cfg_data = {
.type = LCD_SEG3X9,
.private_data = (void *)&lcd_seg3x9_data,
};
#endif /* #if TCFG_UI_LCD_SEG3X9_ENABLE */
#if 0
const struct soft_iic_config soft_iic_cfg[] = {
//iic0 data
{
.scl = TCFG_SW_I2C0_CLK_PORT, //IIC CLK脚
.sda = TCFG_SW_I2C0_DAT_PORT, //IIC DAT脚
.delay = TCFG_SW_I2C0_DELAY_CNT, //软件IIC延时参数影响通讯时钟频率
.io_pu = 1, //是否打开上拉电阻如果外部电路没有焊接上拉电阻需要置1
},
#if 0
//iic1 data
{
.scl = IO_PORTA_05,
.sda = IO_PORTA_06,
.delay = 50,
.io_pu = 1,
},
#endif
};
const struct hw_iic_config hw_iic_cfg[] = {
//iic0 data
{
/*硬件IIC端口下选择
SCL SDA
'A': IO_PORT_DP IO_PORT_DM
'B': IO_PORTA_09 IO_PORTA_10
'C': IO_PORTA_07 IO_PORTA_08
'D': IO_PORTA_05 IO_PORTA_06
*/
.port = TCFG_HW_I2C0_PORTS,
.baudrate = TCFG_HW_I2C0_CLK, //IIC通讯波特率
.hdrive = 0, //是否打开IO口强驱
.io_filter = 1, //是否打开滤波器(去纹波)
.io_pu = 1, //是否打开上拉电阻如果外部电路没有焊接上拉电阻需要置1
},
};
#endif
#if TCFG_HW_SPI1_ENABLE
const struct spi_platform_data spi1_p_data = {
.port = TCFG_HW_SPI1_PORT,
.mode = TCFG_HW_SPI1_MODE,
.clk = TCFG_HW_SPI1_BAUD,
.role = TCFG_HW_SPI1_ROLE,
};
#endif
#if TCFG_HW_SPI2_ENABLE
const struct spi_platform_data spi2_p_data = {
.port = TCFG_HW_SPI2_PORT,
.mode = TCFG_HW_SPI2_MODE,
.clk = TCFG_HW_SPI2_BAUD,
.role = TCFG_HW_SPI2_ROLE,
};
#endif
#if TCFG_NOR_FAT
NORFLASH_DEV_PLATFORM_DATA_BEGIN(norflash_fat_dev_data)
.spi_hw_num = TCFG_FLASH_DEV_SPI_HW_NUM,
.spi_cs_port = TCFG_FLASH_DEV_SPI_CS_PORT,
#if (TCFG_FLASH_DEV_SPI_HW_NUM == 1)
.spi_pdata = &spi1_p_data,
#elif (TCFG_FLASH_DEV_SPI_HW_NUM == 2)
.spi_pdata = &spi2_p_data,
#endif
.start_addr = 0,
.size = 1*1024*1024,
NORFLASH_DEV_PLATFORM_DATA_END()
#endif
#if TCFG_NOR_FS
NORFLASH_DEV_PLATFORM_DATA_BEGIN(norflash_norfs_dev_data)
.spi_hw_num = TCFG_FLASH_DEV_SPI_HW_NUM,
.spi_cs_port = TCFG_FLASH_DEV_SPI_CS_PORT,
#if (TCFG_FLASH_DEV_SPI_HW_NUM == 1)
.spi_pdata = &spi1_p_data,
#elif (TCFG_FLASH_DEV_SPI_HW_NUM == 2)
.spi_pdata = &spi2_p_data,
#endif
.start_addr = 1*1024*1024,
.size = 1*1024*1024,
NORFLASH_DEV_PLATFORM_DATA_END()
#endif
#if TCFG_NOR_REC
NORFLASH_DEV_PLATFORM_DATA_BEGIN(norflash_norfs_rec_dev_data)
.spi_hw_num = TCFG_FLASH_DEV_SPI_HW_NUM,
.spi_cs_port = TCFG_FLASH_DEV_SPI_CS_PORT,
#if (TCFG_FLASH_DEV_SPI_HW_NUM == 1)
.spi_pdata = &spi1_p_data,
#elif (TCFG_FLASH_DEV_SPI_HW_NUM == 2)
.spi_pdata = &spi2_p_data,
#endif
.start_addr = 2*1024*1024,
.size = 2*1024*1024,
NORFLASH_DEV_PLATFORM_DATA_END()
#endif
#if TCFG_SPI_LCD_ENABLE
LCD_SPI_PLATFORM_DATA_BEGIN(lcd_spi_data)
.pin_reset = -1,
.pin_cs = IO_PORTA_00,
.pin_rs = IO_PORTA_01,
.pin_bl = IO_PORTA_03,
#if (TCFG_TFT_LCD_DEV_SPI_HW_NUM == 1)
.spi_cfg = SPI1,
.spi_pdata = &spi1_p_data,
#elif (TCFG_TFT_LCD_DEV_SPI_HW_NUM == 2)
.spi_cfg = SPI2,
.spi_pdata = &spi2_p_data,
#endif
LED7_PLATFORM_DATA_END()
const struct ui_devices_cfg ui_cfg_data = {
.type = TFT_LCD,
.private_data = (void *)&lcd_spi_data,
};
#endif
#if TCFG_GSENSOR_ENABLE
#if TCFG_DA230_EN
GSENSOR_PLATFORM_DATA_BEGIN(gSensor_data)
.iic = 0,
.gSensor_name = "da230",
.gSensor_int_io = IO_PORTB_08,
GSENSOR_PLATFORM_DATA_END();
#endif //end if DA230_EN
#endif //end if CONFIG_GSENSOR_ENABLE
#if TCFG_FM_ENABLE
FM_DEV_PLATFORM_DATA_BEGIN(fm_dev_data)
.iic_hdl = 0,
.iic_delay = 50,
FM_DEV_PLATFORM_DATA_END();
#endif
extern const struct device_operations mass_storage_ops;
REGISTER_DEVICES(device_table) = {
/* { "audio", &audio_dev_ops, (void *) &audio_data }, */
/* #if TCFG_CHARGE_ENABLE */
/* { "charge", &charge_dev_ops, (void *)&charge_data }, */
/* #endif */
#if TCFG_SD0_ENABLE
{ "sd0", &sd_dev_ops, (void *) &sd0_data},
#endif
#if TCFG_SD1_ENABLE
{ "sd1", &sd_dev_ops, (void *) &sd1_data},
#endif
#if TCFG_LINEIN_ENABLE
{ "linein", &linein_dev_ops, (void *)&linein_data},
#endif
#if TCFG_OTG_MODE
{ "otg", &usb_dev_ops, (void *) &otg_data},
#endif
#if TCFG_UDISK_ENABLE
{ "udisk0", &mass_storage_ops , NULL},
#endif
#if TCFG_RTC_ENABLE
#if TCFG_USE_VIRTUAL_RTC
{ "rtc", &rtc_simulate_ops , (void *)&rtc_data},
#else
{ "rtc", &rtc_dev_ops , (void *)&rtc_data},
#endif
#endif
#if TCFG_NORFLASH_DEV_ENABLE
#if TCFG_NOR_FAT
{ "fat_nor", &norflash_dev_ops , (void *)&norflash_fat_dev_data},
#endif
#if TCFG_NOR_FS
{ "res_nor", &norfs_dev_ops , (void *)&norflash_norfs_dev_data},
#endif
#if TCFG_NOR_REC
{"rec_nor", &norfs_dev_ops , (void *)&norflash_norfs_rec_dev_data},
#endif
#endif
};
/************************** LOW POWER config ****************************/
const struct low_power_param power_param = {
.config = TCFG_LOWPOWER_LOWPOWER_SEL, //0sniff时芯片不进入低功耗 1sniff时芯片进入powerdown
.btosc_hz = TCFG_CLOCK_OSC_HZ, //外接晶振频率
.delay_us = TCFG_CLOCK_SYS_HZ / 1000000L, //提供给低功耗模块的延时(不需要需修改)
.btosc_disable = TCFG_LOWPOWER_BTOSC_DISABLE, //进入低功耗时BTOSC是否保持
.vddiom_lev = TCFG_LOWPOWER_VDDIOM_LEVEL, //强VDDIO等级,可选2.0V 2.2V 2.4V 2.6V 2.8V 3.0V 3.2V 3.6V
.vddiow_lev = TCFG_LOWPOWER_VDDIOW_LEVEL, //弱VDDIO等级,可选2.1V 2.4V 2.8V 3.2V
.osc_type = OSC_TYPE_BT_OSC ,
#if TCFG_USE_VIRTUAL_RTC
.virtual_rtc = 1,
#endif
};
/************************** PWR config ****************************/
struct port_wakeup port0 = {
.pullup_down_enable = ENABLE, //配置I/O 内部上下拉是否使能
.edge = FALLING_EDGE, //唤醒方式选择,可选:上升沿\下降沿
.attribute = BLUETOOTH_RESUME, //保留参数
.iomap = IO_PORTA_10, //唤醒口选择
};
const struct sub_wakeup sub_wkup = {
.attribute = BLUETOOTH_RESUME,
};
const struct charge_wakeup charge_wkup = {
.attribute = BLUETOOTH_RESUME,
};
const struct wakeup_param wk_param = {
.port[1] = &port0,
.sub = &sub_wkup,
.charge = &charge_wkup,
};
void gSensor_wkupup_disable(void)
{
log_info("gSensor wkup disable\n");
power_wakeup_index_disable(1);
}
void gSensor_wkupup_enable(void)
{
log_info("gSensor wkup enable\n");
power_wakeup_index_enable(1);
}
static void key_wakeup_disable()
{
power_wakeup_index_disable(1);
}
static void key_wakeup_enable()
{
power_wakeup_index_enable(1);
}
void debug_uart_init(const struct uart_platform_data *data)
{
#if TCFG_UART0_ENABLE
if (data) {
uart_init(data);
} else {
uart_init(&uart0_data);
}
#endif
}
STATUS *get_led_config(void)
{
return &(__this->led);
}
STATUS *get_tone_config(void)
{
return &(__this->tone);
}
u8 get_sys_default_vol(void)
{
return 21;
}
u8 get_power_on_status(void)
{
#if TCFG_IOKEY_ENABLE
struct iokey_port *power_io_list = NULL;
power_io_list = iokey_data.port;
if (iokey_data.enable) {
if (gpio_read(power_io_list->key_type.one_io.port) == power_io_list->connect_way){
return 1;
}
}
#endif
#if TCFG_ADKEY_ENABLE
if (adkey_data.enable) {
if (adc_get_value(adkey_data.ad_channel) < 10) {
return 1;
}
}
#endif
return 0;
}
static void board_devices_init(void)
{
#if TCFG_PWMLED_ENABLE
ui_pwm_led_init(&pwm_led_data);
#endif
#if (TCFG_IOKEY_ENABLE || TCFG_ADKEY_ENABLE || TCFG_IRKEY_ENABLE || TCFG_RDEC_KEY_ENABLE || TCFG_CTMU_TOUCH_KEY_ENABLE)
key_driver_init();
#endif
#if TCFG_GSENSOR_ENABLE
gravity_sensor_init(&gSensor_data);
#endif //end if CONFIG_GSENSOR_ENABLE
#if TCFG_UI_ENABLE
UI_INIT(&ui_cfg_data);
#endif /* #if TCFG_UI_ENABLE */
return;
}
void uartSendInit();
extern void alarm_init();
extern void cfg_file_parse(u8 idx);
void board_init()
{
board_power_init();
adc_vbg_init();
adc_init();
cfg_file_parse(0);
#if TCFG_CHARGE_ENABLE
extern int charge_init(const struct dev_node *node, void *arg);
charge_init(NULL, (void *)&charge_data);
#endif
if (!get_charge_online_flag()) {
check_power_on_voltage();
}
/* #if (TCFG_SD0_ENABLE || TCFG_SD1_ENABLE) */
/* sdpg_config(1); */
/* #endif */
#if TCFG_FM_ENABLE
fm_dev_init(&fm_dev_data);
#endif
#if TCFG_NOR_REC
nor_fs_ops_init();
#endif
#if TCFG_NOR_FS
init_norsdfile_hdl();
#endif
#if FLASH_INSIDE_REC_ENABLE
sdfile_rec_ops_init();
#endif
dev_manager_init();
board_devices_init();
if(get_charge_online_flag()){
power_set_mode(PWR_LDO15);
}else{
power_set_mode(TCFG_LOWPOWER_POWER_SEL);
}
//针对硅mic要输出1给mic供电(按实际使用情况配置)
/* if(!adc_data.mic_capless){ */
/* gpio_set_pull_up(IO_PORTA_04, 0); */
/* gpio_set_pull_down(IO_PORTA_04, 0); */
/* gpio_set_direction(IO_PORTA_04, 0); */
/* gpio_set_output_value(IO_PORTA_04,1); */
/* } */
#if TCFG_UART0_ENABLE
if (uart0_data.rx_pin < IO_MAX_NUM) {
gpio_set_die(uart0_data.rx_pin, 1);
}
#endif
#ifdef AUDIO_PCM_DEBUG
uartSendInit();
#endif
#if TCFG_RTC_ENABLE
alarm_init();
#endif
#if USER_UART_UPDATE_ENABLE
{
#include "uart_update.h"
uart_update_cfg update_cfg = {
.rx = IO_PORTA_02,
.tx = IO_PORTA_03,
.output_channel = CH1_UT1_TX,
.input_channel = INPUT_CH0
};
uart_update_init(&update_cfg);
}
#endif
}
/*进软关机之前默认将IO口都设置成高阻状态需要保留原来状态的请修改该函数*/
extern void dac_power_off(void);
extern void dac_sniff_power_off(void);
void board_set_soft_poweroff(void)
{
u8 mode = (JL_SFC->CON >> 8) & 0x0f;
u32 porta_value = 0xffff;
u32 portb_value = 0xffff;
u32 portc_value = 0xffff;
extern u32 spi_get_port(void);
if (spi_get_port() != 0) {
if ((mode == 0b0101) || (mode == 0b0111)) {
porta_value = 0x1fff;
} else {
porta_value = 0x9fff;
}
}
gpio_write(MIC_HW_IO, 0);
key_wakeup_enable();
gpio_dir(GPIOA, 0, 16, porta_value, GPIO_OR);
gpio_set_pu(GPIOA, 0, 16, ~porta_value, GPIO_AND);
gpio_set_pd(GPIOA, 0, 16, ~porta_value, GPIO_AND);
gpio_die(GPIOA, 0, 16, ~porta_value, GPIO_AND);
gpio_dieh(GPIOA, 0, 16, ~porta_value, GPIO_AND);
//保留长按Reset Pin - PB1
portb_value &= ~BIT(1);
gpio_dir(GPIOB, 0, 16, portb_value, GPIO_OR);
gpio_set_pu(GPIOB, 0, 16, ~portb_value, GPIO_AND);
gpio_set_pd(GPIOB, 0, 16, ~portb_value, GPIO_AND);
gpio_die(GPIOB, 0, 16, ~portb_value, GPIO_AND);
gpio_dieh(GPIOB, 0, 16, ~portb_value, GPIO_AND);
gpio_dir(GPIOC, 0, 16, portc_value, GPIO_OR);
gpio_set_pu(GPIOC, 0, 16, ~portc_value, GPIO_AND);
gpio_set_pd(GPIOC, 0, 16, ~portc_value, GPIO_AND);
gpio_die(GPIOC, 0, 16, ~portc_value, GPIO_AND);
gpio_dieh(GPIOC, 0, 16, ~portc_value, GPIO_AND);
gpio_set_pull_up(IO_PORT_DP, 0);
gpio_set_pull_down(IO_PORT_DP, 0);
gpio_set_direction(IO_PORT_DP, 1);
gpio_set_die(IO_PORT_DP, 0);
gpio_set_dieh(IO_PORT_DP, 0);
gpio_set_pull_up(IO_PORT_DM, 0);
gpio_set_pull_down(IO_PORT_DM, 0);
gpio_set_direction(IO_PORT_DM, 1);
gpio_set_die(IO_PORT_DM, 0);
gpio_set_dieh(IO_PORT_DM, 0);
VDDIOW_VOL_SEL(power_param.vddiow_lev);
#if (TCFG_SD0_ENABLE || TCFG_SD1_ENABLE)
sdpg_config(0);
#endif
//dac_power_off();
}
#define APP_IO_DEBUG_0(i,x) //{JL_PORT##i->DIR &= ~BIT(x), JL_PORT##i->OUT &= ~BIT(x);}
#define APP_IO_DEBUG_1(i,x) //{JL_PORT##i->DIR &= ~BIT(x), JL_PORT##i->OUT |= BIT(x);}
void sleep_exit_callback(u32 usec)
{
/* putchar('>'); */
APP_IO_DEBUG_1(A, 6);
key_wakeup_disable();
}
void sleep_enter_callback(u8 step)
{
/* 此函数禁止添加打印 */
if (step == 1) {
/* putchar('<'); */
APP_IO_DEBUG_0(A, 6);
dac_sniff_power_off();
/* dac_power_off(); */
} else {
key_wakeup_enable();
gpio_set_pull_up(IO_PORTA_03, 0);
gpio_set_pull_down(IO_PORTA_03, 0);
gpio_set_direction(IO_PORTA_03, 1);
usb_iomode(1);
gpio_set_pull_up(IO_PORT_DP, 0);
gpio_set_pull_down(IO_PORT_DP, 0);
gpio_set_direction(IO_PORT_DP, 1);
gpio_set_die(IO_PORT_DP, 0);
gpio_set_pull_up(IO_PORT_DM, 0);
gpio_set_pull_down(IO_PORT_DM, 0);
gpio_set_direction(IO_PORT_DM, 1);
gpio_set_die(IO_PORT_DM, 0);
}
}
void board_power_init(void)
{
log_info("Power init : %s", __FILE__);
power_init(&power_param);
power_set_callback(TCFG_LOWPOWER_LOWPOWER_SEL, sleep_enter_callback, sleep_exit_callback, board_set_soft_poweroff);
power_keep_dacvdd_en(0);
/* power_wakeup_init(&wk_param); */
#if (!TCFG_IOKEY_ENABLE && !TCFG_ADKEY_ENABLE)
charge_check_and_set_pinr(0);
#endif
}
static void board_power_wakeup_init(void)
{
power_wakeup_init(&wk_param);
key_wakeup_disable();
#if TCFG_POWER_ON_NEED_KEY
extern u8 power_reset_src;
if ((power_reset_src & BIT(0)) || (power_reset_src & BIT(1))) {
#if TCFG_CHARGE_ENABLE
log_info("is ldo5v wakeup:%d\n",is_ldo5v_wakeup());
if (is_ldo5v_wakeup()) {
return;
}
if (get_ldo5v_online_hw()) {
return;
}
/*LDO5V,检测上升沿用于检测ldoin插入*/
LDO5V_EN(1);
LDO5V_EDGE_SEL(0);
LDO5V_PND_CLR();
LDO5V_EDGE_WKUP_EN(1);
#endif
power_set_callback(TCFG_LOWPOWER_LOWPOWER_SEL, sleep_enter_callback, sleep_exit_callback, board_set_soft_poweroff);
power_set_soft_poweroff();
}
#endif
}
early_initcall(board_power_wakeup_init);
#endif