Files
ai-girlfriend/main/main.c

599 lines
18 KiB
C

#include <string.h>
#include <stdlib.h>
#include <stdio.h>
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include "freertos/semphr.h"
#include "esp_log.h"
#include "esp_err.h"
#include "esp_timer.h"
#include "nvs_flash.h"
#include "esp_event.h"
#include "esp_netif.h"
#include "esp_netif_ip_addr.h"
#include "esp_wifi.h"
#include "esp_http_client.h"
// TLS bundle not required as a build dependency; keep header optional
#ifdef __has_include
# if __has_include("esp_crt_bundle.h")
# include "esp_crt_bundle.h"
# define HAS_CRT_BUNDLE 1
# endif
#endif
#include "driver/gpio.h"
#include "driver/ledc.h"
#include "driver/spi_master.h"
#include "esp_lcd_panel_io.h"
#include "esp_lcd_panel_vendor.h"
#include "esp_lcd_panel_ops.h"
#include "esp_lcd_types.h"
#include "esp_heap_caps.h"
#include <stdarg.h>
#include "cJSON.h"
// Kconfig symbols
#include "sdkconfig.h"
// Pins from Kconfig (with sensible fallbacks)
#ifndef CONFIG_LCD_PIN_MOSI
#define CONFIG_LCD_PIN_MOSI 7
#endif
#ifndef CONFIG_LCD_PIN_SCLK
#define CONFIG_LCD_PIN_SCLK 6
#endif
#ifndef CONFIG_LCD_PIN_CS
#define CONFIG_LCD_PIN_CS 5
#endif
#ifndef CONFIG_LCD_PIN_DC
#define CONFIG_LCD_PIN_DC 2
#endif
#ifndef CONFIG_LCD_PIN_RST
#define CONFIG_LCD_PIN_RST 4
#endif
#ifndef CONFIG_LCD_PIN_BL
#define CONFIG_LCD_PIN_BL 15
#endif
#ifndef CONFIG_LCD_PIN_BUTTON
#define CONFIG_LCD_PIN_BUTTON 0
#endif
#ifndef CONFIG_LCD_PIN_LED
#define CONFIG_LCD_PIN_LED 8
#endif
#ifndef CONFIG_LCD_PIN_SPEAKER
#define CONFIG_LCD_PIN_SPEAKER 25
#endif
#ifndef CONFIG_LCD_PIN_BAT_EN
#define CONFIG_LCD_PIN_BAT_EN 15
#endif
// Display constants
#define LCD_H_RES 240
#define LCD_V_RES 280
static const char *TAG = "GEMINI_GADGET";
typedef enum {
UI_BOOT,
UI_CONNECTING,
UI_READY,
UI_LISTENING,
UI_THINKING,
UI_SPEAKING,
UI_ERROR
} ui_state_t;
// LCD handles
static esp_lcd_panel_handle_t s_panel = NULL;
static int s_rotation = 0;
static int s_offset_y = 0;
static int s_spi_clk_hz = 0;
// Button semaphore to trigger a chat cycle
static SemaphoreHandle_t s_btn_sem = NULL;
// Tone control
static void tone_init(void);
static void tone_start(uint32_t freq_hz);
static void tone_stop(void);
static void tone_beep(uint32_t freq_hz, uint32_t duration_ms);
// Wi-Fi
static esp_err_t wifi_init_and_connect(const char *ssid, const char *pass, int timeout_ms);
// HTTP / Gemini
static char *gemini_generate_text(const char *api_key, const char *prompt, int *http_status_out);
// UI helpers
static void ui_set_state(ui_state_t state);
static bool lcd_autoprobe(void);
// Simple color helper (RGB565)
static inline uint16_t rgb565(uint8_t r, uint8_t g, uint8_t b) {
return ((r & 0xF8) << 8) | ((g & 0xFC) << 3) | (b >> 3);
}
static void draw_solid_color(uint16_t color) {
if (!s_panel) return;
static uint16_t *line = NULL;
const int width = LCD_H_RES;
const int height = LCD_V_RES;
if (!line) {
line = (uint16_t *)heap_caps_malloc(width * sizeof(uint16_t), MALLOC_CAP_DMA);
}
if (!line) {
ESP_LOGE(TAG, "Failed to alloc line buffer");
return;
}
for (int x = 0; x < width; ++x) line[x] = color;
for (int y = 0; y < height; ++y) {
esp_lcd_panel_draw_bitmap(s_panel, 0, y, width, y + 1, line);
}
}
static void color_sweep(void) {
if (!s_panel) return;
const uint16_t colors[] = {
rgb565(255, 0, 0),
rgb565(0, 255, 0),
rgb565(0, 0, 255),
rgb565(255, 255, 255),
rgb565(0, 0, 0)
};
for (size_t i = 0; i < sizeof(colors)/sizeof(colors[0]); ++i) {
draw_solid_color(colors[i]);
vTaskDelay(pdMS_TO_TICKS(200));
}
}
static void ui_set_state(ui_state_t state) {
switch (state) {
case UI_BOOT:
ESP_LOGI(TAG, "STATE: BOOT");
draw_solid_color(rgb565(32, 32, 64));
break;
case UI_CONNECTING:
ESP_LOGI(TAG, "STATE: CONNECTING");
draw_solid_color(rgb565(64, 64, 0));
break;
case UI_READY:
ESP_LOGI(TAG, "STATE: READY");
draw_solid_color(rgb565(0, 64, 0));
break;
case UI_LISTENING:
ESP_LOGI(TAG, "STATE: LISTENING");
draw_solid_color(rgb565(0, 0, 128));
break;
case UI_THINKING:
ESP_LOGI(TAG, "STATE: THINKING");
draw_solid_color(rgb565(128, 0, 128));
break;
case UI_SPEAKING:
ESP_LOGI(TAG, "STATE: SPEAKING");
draw_solid_color(rgb565(0, 128, 128));
break;
case UI_ERROR:
default:
ESP_LOGE(TAG, "STATE: ERROR");
draw_solid_color(rgb565(128, 0, 0));
break;
}
}
// Button ISR
static volatile uint64_t s_last_btn_us = 0;
static void IRAM_ATTR button_isr(void *arg) {
uint64_t now = esp_timer_get_time();
if ((now - s_last_btn_us) > 200000) { // 200ms debounce
BaseType_t hpw = pdFALSE;
xSemaphoreGiveFromISR(s_btn_sem, &hpw);
if (hpw) portYIELD_FROM_ISR();
s_last_btn_us = now;
}
}
static void gpio_init_all(void) {
// Battery enable
gpio_config_t io = {
.pin_bit_mask = 1ULL << CONFIG_LCD_PIN_BAT_EN,
.mode = GPIO_MODE_OUTPUT,
.pull_up_en = GPIO_PULLUP_DISABLE,
.pull_down_en = GPIO_PULLDOWN_DISABLE,
.intr_type = GPIO_INTR_DISABLE
};
gpio_config(&io);
gpio_set_level(CONFIG_LCD_PIN_BAT_EN, 1);
// Backlight
io.pin_bit_mask = 1ULL << CONFIG_LCD_PIN_BL;
gpio_config(&io);
gpio_set_level(CONFIG_LCD_PIN_BL, 1);
// Status LED (optional)
io.pin_bit_mask = 1ULL << CONFIG_LCD_PIN_LED;
gpio_config(&io);
gpio_set_level(CONFIG_LCD_PIN_LED, 0);
// Button
gpio_config_t bi = {
.pin_bit_mask = 1ULL << CONFIG_LCD_PIN_BUTTON,
.mode = GPIO_MODE_INPUT,
.pull_up_en = GPIO_PULLUP_ENABLE,
.pull_down_en = GPIO_PULLDOWN_DISABLE,
.intr_type = GPIO_INTR_NEGEDGE
};
gpio_config(&bi);
gpio_install_isr_service(0);
gpio_isr_handler_add(CONFIG_LCD_PIN_BUTTON, button_isr, NULL);
}
static void tone_init(void) {
ledc_timer_config_t tcfg = {
.speed_mode = LEDC_LOW_SPEED_MODE,
.duty_resolution = LEDC_TIMER_10_BIT,
.timer_num = LEDC_TIMER_0,
.freq_hz = 2000,
.clk_cfg = LEDC_AUTO_CLK,
};
ledc_timer_config(&tcfg);
ledc_channel_config_t ccfg = {
.gpio_num = CONFIG_LCD_PIN_SPEAKER,
.speed_mode = LEDC_LOW_SPEED_MODE,
.channel = LEDC_CHANNEL_0,
.intr_type = LEDC_INTR_DISABLE,
.timer_sel = LEDC_TIMER_0,
.duty = 0,
.hpoint = 0,
.flags = {0},
};
ledc_channel_config(&ccfg);
}
static void tone_start(uint32_t freq_hz) {
ledc_set_freq(LEDC_LOW_SPEED_MODE, LEDC_TIMER_0, freq_hz);
ledc_set_duty(LEDC_LOW_SPEED_MODE, LEDC_CHANNEL_0, (1 << 9)); // ~50% of 10-bit
ledc_update_duty(LEDC_LOW_SPEED_MODE, LEDC_CHANNEL_0);
}
static void tone_stop(void) {
ledc_set_duty(LEDC_LOW_SPEED_MODE, LEDC_CHANNEL_0, 0);
ledc_update_duty(LEDC_LOW_SPEED_MODE, LEDC_CHANNEL_0);
}
static void tone_beep(uint32_t freq_hz, uint32_t duration_ms) {
tone_start(freq_hz);
vTaskDelay(pdMS_TO_TICKS(duration_ms));
tone_stop();
}
// LCD setup using esp_lcd
static bool lcd_autoprobe(void) {
ESP_LOGI(TAG, "LCD autoprobe start");
// Prepare SPI bus using SPI master driver (compatible across IDF versions)
spi_bus_config_t buscfg = {
.sclk_io_num = CONFIG_LCD_PIN_SCLK,
.mosi_io_num = CONFIG_LCD_PIN_MOSI,
.miso_io_num = -1,
.quadwp_io_num = -1,
.quadhd_io_num = -1,
.max_transfer_sz = LCD_H_RES * 40 * sizeof(uint16_t),
.flags = 0,
};
ESP_ERROR_CHECK(spi_bus_initialize(SPI2_HOST, &buscfg, SPI_DMA_CH_AUTO));
const int clk_candidates[] = { 40000000, 32000000, 24000000 };
const int offsets_y[] = { 0, 20 };
for (size_t ck = 0; ck < sizeof(clk_candidates)/sizeof(clk_candidates[0]); ++ck) {
for (int rot = 0; rot < 4; ++rot) {
for (size_t oy = 0; oy < sizeof(offsets_y)/sizeof(offsets_y[0]); ++oy) {
int offy = offsets_y[oy];
ESP_LOGI(TAG, "Probe try: clk=%d rot=%d offY=%d", clk_candidates[ck], rot, offy);
esp_lcd_panel_io_spi_config_t io_cfg = {
.dc_gpio_num = CONFIG_LCD_PIN_DC,
.cs_gpio_num = CONFIG_LCD_PIN_CS,
.pclk_hz = clk_candidates[ck],
.lcd_cmd_bits = 8,
.lcd_param_bits = 8,
.spi_mode = 0,
.trans_queue_depth = 10,
};
esp_lcd_panel_io_handle_t io_handle = NULL;
if (esp_lcd_new_panel_io_spi(SPI2_HOST, &io_cfg, &io_handle) != ESP_OK) {
ESP_LOGW(TAG, "io new failed");
continue;
}
esp_lcd_panel_dev_config_t panel_cfg = {
.reset_gpio_num = CONFIG_LCD_PIN_RST,
.color_space = ESP_LCD_COLOR_SPACE_RGB,
.bits_per_pixel = 16,
.vendor_config = NULL,
};
esp_lcd_panel_handle_t panel = NULL;
if (esp_lcd_new_panel_st7789(io_handle, &panel_cfg, &panel) != ESP_OK) {
ESP_LOGW(TAG, "panel new failed");
esp_lcd_panel_io_del(io_handle);
continue;
}
if (esp_lcd_panel_reset(panel) != ESP_OK || esp_lcd_panel_init(panel) != ESP_OK) {
ESP_LOGW(TAG, "panel init failed");
esp_lcd_panel_del(panel);
esp_lcd_panel_io_del(io_handle);
continue;
}
esp_lcd_panel_swap_xy(panel, rot & 1);
esp_lcd_panel_mirror(panel, (rot & 2) != 0, (rot & 2) != 0);
esp_lcd_panel_set_gap(panel, 0, offy);
s_panel = panel;
s_rotation = rot;
s_offset_y = offy;
s_spi_clk_hz = clk_candidates[ck];
color_sweep();
ESP_LOGI(TAG, "LCD autoprobe success: clk=%d rot=%d offY=%d", s_spi_clk_hz, s_rotation, s_offset_y);
return true;
}
}
}
ESP_LOGE(TAG, "LCD autoprobe failed");
return false;
}
// Wi-Fi event group substitute via callbacks
static bool s_got_ip = false;
static void on_got_ip(void* arg, esp_event_base_t base, int32_t id, void* data) {
ip_event_got_ip_t *e = (ip_event_got_ip_t *)data;
ESP_LOGI(TAG, "Got IP: " IPSTR, IP2STR(&e->ip_info.ip));
s_got_ip = true;
}
static esp_err_t wifi_init_and_connect(const char *ssid, const char *pass, int timeout_ms) {
ESP_ERROR_CHECK(nvs_flash_init());
ESP_ERROR_CHECK(esp_netif_init());
ESP_ERROR_CHECK(esp_event_loop_create_default());
esp_netif_create_default_wifi_sta();
wifi_init_config_t cfg = WIFI_INIT_CONFIG_DEFAULT();
ESP_ERROR_CHECK(esp_wifi_init(&cfg));
ESP_ERROR_CHECK(esp_event_handler_register(IP_EVENT, IP_EVENT_STA_GOT_IP, &on_got_ip, NULL));
wifi_config_t wcfg = {0};
strlcpy((char*)wcfg.sta.ssid, ssid ? ssid : "", sizeof(wcfg.sta.ssid));
strlcpy((char*)wcfg.sta.password, pass ? pass : "", sizeof(wcfg.sta.password));
wcfg.sta.threshold.authmode = WIFI_AUTH_WPA2_PSK;
wcfg.sta.pmf_cfg.capable = true;
wcfg.sta.pmf_cfg.required = false;
ESP_ERROR_CHECK(esp_wifi_set_mode(WIFI_MODE_STA));
ESP_ERROR_CHECK(esp_wifi_set_config(WIFI_IF_STA, &wcfg));
ESP_ERROR_CHECK(esp_wifi_start());
ESP_ERROR_CHECK(esp_wifi_connect());
const int64_t start = esp_timer_get_time();
int backoff_ms = 500;
while (!s_got_ip) {
if ((esp_timer_get_time() - start) / 1000 > timeout_ms) {
ESP_LOGE(TAG, "Wi-Fi connect timeout");
return ESP_ERR_TIMEOUT;
}
vTaskDelay(pdMS_TO_TICKS(backoff_ms));
backoff_ms = backoff_ms < 5000 ? backoff_ms * 2 : 5000;
}
return ESP_OK;
}
// HTTP client event: accumulate body
typedef struct {
char *buf;
size_t len;
} http_buf_t;
static esp_err_t http_evt_hdl(esp_http_client_event_t *evt) {
http_buf_t *hb = (http_buf_t *)evt->user_data;
switch (evt->event_id) {
case HTTP_EVENT_ON_DATA:
if (evt->data_len > 0) {
char *p = realloc(hb->buf, hb->len + evt->data_len + 1);
if (!p) return ESP_FAIL;
hb->buf = p;
memcpy(hb->buf + hb->len, evt->data, evt->data_len);
hb->len += evt->data_len;
hb->buf[hb->len] = '\0';
}
break;
default:
break;
}
return ESP_OK;
}
static char *json_escape(const char *s) {
size_t n = 0;
for (const char *p = s; *p; ++p) {
switch (*p) { case '"': case '\\': case '\n': case '\r': case '\t': n += 2; break; default: n += 1; }
}
char *out = malloc(n + 1);
char *w = out;
for (const char *p = s; *p; ++p) {
switch (*p) {
case '"': *w++ = '\\'; *w++ = '"'; break;
case '\\': *w++ = '\\'; *w++ = '\\'; break;
case '\n': *w++ = '\\'; *w++ = 'n'; break;
case '\r': *w++ = '\\'; *w++ = 'r'; break;
case '\t': *w++ = '\\'; *w++ = 't'; break;
default: *w++ = *p; break;
}
}
*w = '\0';
return out;
}
static char *build_gemini_payload(const char *prompt) {
char *e = json_escape(prompt);
const char *fmt = "{\"contents\":[{\"parts\":[{\"text\":\"%s\"}]}],\"generationConfig\":{\"maxOutputTokens\":150,\"temperature\":0.7,\"topP\":0.8,\"topK\":40}}";
size_t len = strlen(fmt) + strlen(e) + 1;
char *buf = malloc(len);
snprintf(buf, len, fmt, e);
free(e);
return buf;
}
static char *parse_gemini_reply(const char *json) {
cJSON *root = cJSON_Parse(json);
if (!root) {
ESP_LOGE(TAG, "JSON parse error: %s", cJSON_GetErrorPtr());
return NULL;
}
cJSON *candidates = cJSON_GetObjectItemCaseSensitive(root, "candidates");
if (!cJSON_IsArray(candidates) || cJSON_GetArraySize(candidates) == 0) {
ESP_LOGE(TAG, "No candidates found in JSON");
cJSON_Delete(root);
return NULL;
}
cJSON *first_candidate = cJSON_GetArrayItem(candidates, 0);
cJSON *content = cJSON_GetObjectItemCaseSensitive(first_candidate, "content");
cJSON *parts = cJSON_GetObjectItemCaseSensitive(content, "parts");
if (!cJSON_IsArray(parts) || cJSON_GetArraySize(parts) == 0) {
ESP_LOGE(TAG, "No parts found in content");
cJSON_Delete(root);
return NULL;
}
cJSON *first_part = cJSON_GetArrayItem(parts, 0);
cJSON *text = cJSON_GetObjectItemCaseSensitive(first_part, "text");
char *reply_text = NULL;
if (cJSON_IsString(text) && (text->valuestring != NULL)) {
reply_text = strdup(text->valuestring);
} else {
ESP_LOGE(TAG, "Text field not found or not a string");
}
cJSON_Delete(root);
return reply_text;
}
static char *gemini_generate_text(const char *api_key, const char *prompt, int *http_status_out) {
if (!api_key || strlen(api_key) == 0) {
ESP_LOGE(TAG, "API key not set");
return NULL;
}
char url[256];
snprintf(url, sizeof(url),
"https://generativelanguage.googleapis.com/v1beta/models/gemini-1.5-flash:generateContent?key=%s",
api_key);
http_buf_t hb = {0};
esp_http_client_config_t cfg = {
.url = url,
.event_handler = http_evt_hdl,
.user_data = &hb,
.method = HTTP_METHOD_POST,
#ifdef HAS_CRT_BUNDLE
.crt_bundle_attach = esp_crt_bundle_attach,
#endif
.timeout_ms = 15000,
};
esp_http_client_handle_t cli = esp_http_client_init(&cfg);
if (!cli) return NULL;
char *payload = build_gemini_payload(prompt);
esp_http_client_set_header(cli, "Content-Type", "application/json");
esp_http_client_set_post_field(cli, payload, strlen(payload));
esp_err_t err = esp_http_client_perform(cli);
int status = -1;
if (err == ESP_OK) {
status = esp_http_client_get_status_code(cli);
ESP_LOGI(TAG, "HTTP status: %d, len=%d", status, (int)hb.len);
} else {
ESP_LOGE(TAG, "HTTP perform failed: %s", esp_err_to_name(err));
}
if (http_status_out) *http_status_out = status;
char *reply_text = NULL;
if (status == 200 && hb.buf) {
reply_text = parse_gemini_reply(hb.buf);
}
free(payload);
if (hb.buf) free(hb.buf);
esp_http_client_cleanup(cli);
return reply_text;
}
static void chat_cycle_task(void *arg) {
while (1) {
if (xSemaphoreTake(s_btn_sem, portMAX_DELAY) == pdTRUE) {
ui_set_state(UI_LISTENING);
tone_start(880);
vTaskDelay(pdMS_TO_TICKS(5000)); // simulate listening
tone_stop();
ui_set_state(UI_THINKING);
tone_beep(1400, 150);
int http_status = -1;
char *reply = gemini_generate_text(CONFIG_APP_GEMINI_API_KEY, "Say a friendly hello from ESP32-C6.", &http_status);
if (!reply) {
ESP_LOGE(TAG, "Gemini request failed (status=%d)", http_status);
ui_set_state(UI_ERROR);
vTaskDelay(pdMS_TO_TICKS(1000));
ui_set_state(UI_READY);
continue;
}
ui_set_state(UI_SPEAKING);
ESP_LOGI(TAG, "Gemini reply: %s", reply);
tone_start(660);
vTaskDelay(pdMS_TO_TICKS(1500));
tone_stop();
free(reply);
ui_set_state(UI_READY);
}
}
}
void app_main(void) {
s_btn_sem = xSemaphoreCreateBinary();
gpio_init_all();
tone_init();
ui_set_state(UI_BOOT);
if (!lcd_autoprobe()) {
ui_set_state(UI_ERROR);
return;
}
ui_set_state(UI_CONNECTING);
if (wifi_init_and_connect(CONFIG_APP_WIFI_SSID, CONFIG_APP_WIFI_PASSWORD, 30000) != ESP_OK) {
ui_set_state(UI_ERROR);
return;
}
ui_set_state(UI_READY);
xTaskCreate(chat_cycle_task, "chat", 8192, NULL, 5, NULL);
}