425 lines
		
	
	
		
			14 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			425 lines
		
	
	
		
			14 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /*
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|  * The MIT License (MIT)
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|  *
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|  * Copyright (c) 2019 Ha Thach (tinyusb.org)
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|  *
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|  * Permission is hereby granted, free of charge, to any person obtaining a copy
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|  * of this software and associated documentation files (the "Software"), to deal
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|  * in the Software without restriction, including without limitation the rights
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|  * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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|  * copies of the Software, and to permit persons to whom the Software is
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|  * furnished to do so, subject to the following conditions:
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|  *
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|  * The above copyright notice and this permission notice shall be included in
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|  * all copies or substantial portions of the Software.
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|  *
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|  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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|  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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|  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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|  * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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|  * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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|  * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
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|  * THE SOFTWARE.
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|  *
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|  */
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| 
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| /* This example current worked and tested with following controller
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|  * - Sony DualShock 4 [CUH-ZCT2x] VID = 0x054c, PID = 0x09cc
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|  */
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| 
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| 
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| #include <stdlib.h>
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| #include <stdio.h>
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| #include <string.h>
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| 
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| #include "bsp/board_api.h"
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| #include "tusb.h"
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| 
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| // English
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| #define LANGUAGE_ID 0x0409
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| #define BUF_COUNT   4
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| 
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| 
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| tusb_desc_device_t desc_device;
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| 
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| uint8_t buf_pool[BUF_COUNT][64];
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| uint8_t buf_owner[BUF_COUNT] = { 0 }; // device address that owns buffer
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| 
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| //--------------------------------------------------------------------+
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| // MACRO CONSTANT TYPEDEF PROTYPES
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| //--------------------------------------------------------------------+
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| void led_blinking_task(void);
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| 
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| static void print_utf16(uint16_t *temp_buf, size_t buf_len);
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| void print_device_descriptor(tuh_xfer_t* xfer);
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| void parse_config_descriptor(uint8_t dev_addr, tusb_desc_configuration_t const* desc_cfg);
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| 
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| uint8_t* get_hid_buf(uint8_t daddr);
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| void free_hid_buf(uint8_t daddr);
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| 
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| /*------------- MAIN -------------*/
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| int main(void)
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| {
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|   board_init();
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| 
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|   printf("TinyUSB Bare API Example\r\n");
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| 
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|   // init host stack on configured roothub port
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|   tuh_init(BOARD_TUH_RHPORT);
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| 
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|   if (board_init_after_tusb) {
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|     board_init_after_tusb();
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|   }
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| 
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|   while (1)
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|   {
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|     // tinyusb host task
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|     tuh_task();
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|     led_blinking_task();
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|   }
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| 
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|   return 0;
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| }
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| 
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| /*------------- TinyUSB Callbacks -------------*/
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| 
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| // Invoked when device is mounted (configured)
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| void tuh_mount_cb (uint8_t daddr)
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| {
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|   printf("Device attached, address = %d\r\n", daddr);
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| 
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|   // Get Device Descriptor
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|   // TODO: invoking control transfer now has issue with mounting hub with multiple devices attached, fix later
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|   tuh_descriptor_get_device(daddr, &desc_device, 18, print_device_descriptor, 0);
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| }
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| 
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| /// Invoked when device is unmounted (bus reset/unplugged)
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| void tuh_umount_cb(uint8_t daddr)
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| {
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|   printf("Device removed, address = %d\r\n", daddr);
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|   free_hid_buf(daddr);
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| }
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| 
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| //--------------------------------------------------------------------+
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| // Device Descriptor
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| //--------------------------------------------------------------------+
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| 
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| void print_device_descriptor(tuh_xfer_t* xfer)
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| {
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|   if ( XFER_RESULT_SUCCESS != xfer->result )
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|   {
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|     printf("Failed to get device descriptor\r\n");
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|     return;
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|   }
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| 
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|   uint8_t const daddr = xfer->daddr;
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| 
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|   printf("Device %u: ID %04x:%04x\r\n", daddr, desc_device.idVendor, desc_device.idProduct);
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|   printf("Device Descriptor:\r\n");
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|   printf("  bLength             %u\r\n"     , desc_device.bLength);
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|   printf("  bDescriptorType     %u\r\n"     , desc_device.bDescriptorType);
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|   printf("  bcdUSB              %04x\r\n"   , desc_device.bcdUSB);
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|   printf("  bDeviceClass        %u\r\n"     , desc_device.bDeviceClass);
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|   printf("  bDeviceSubClass     %u\r\n"     , desc_device.bDeviceSubClass);
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|   printf("  bDeviceProtocol     %u\r\n"     , desc_device.bDeviceProtocol);
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|   printf("  bMaxPacketSize0     %u\r\n"     , desc_device.bMaxPacketSize0);
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|   printf("  idVendor            0x%04x\r\n" , desc_device.idVendor);
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|   printf("  idProduct           0x%04x\r\n" , desc_device.idProduct);
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|   printf("  bcdDevice           %04x\r\n"   , desc_device.bcdDevice);
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| 
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|   // Get String descriptor using Sync API
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|   uint16_t temp_buf[128];
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| 
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|   printf("  iManufacturer       %u     "     , desc_device.iManufacturer);
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|   if (XFER_RESULT_SUCCESS == tuh_descriptor_get_manufacturer_string_sync(daddr, LANGUAGE_ID, temp_buf, sizeof(temp_buf)) )
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|   {
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|     print_utf16(temp_buf, TU_ARRAY_SIZE(temp_buf));
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|   }
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|   printf("\r\n");
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| 
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|   printf("  iProduct            %u     "     , desc_device.iProduct);
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|   if (XFER_RESULT_SUCCESS == tuh_descriptor_get_product_string_sync(daddr, LANGUAGE_ID, temp_buf, sizeof(temp_buf)))
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|   {
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|     print_utf16(temp_buf, TU_ARRAY_SIZE(temp_buf));
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|   }
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|   printf("\r\n");
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| 
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|   printf("  iSerialNumber       %u     "     , desc_device.iSerialNumber);
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|   if (XFER_RESULT_SUCCESS == tuh_descriptor_get_serial_string_sync(daddr, LANGUAGE_ID, temp_buf, sizeof(temp_buf)))
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|   {
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|     print_utf16(temp_buf, TU_ARRAY_SIZE(temp_buf));
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|   }
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|   printf("\r\n");
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| 
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|   printf("  bNumConfigurations  %u\r\n"     , desc_device.bNumConfigurations);
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| 
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|   // Get configuration descriptor with sync API
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|   if (XFER_RESULT_SUCCESS == tuh_descriptor_get_configuration_sync(daddr, 0, temp_buf, sizeof(temp_buf)))
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|   {
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|     parse_config_descriptor(daddr, (tusb_desc_configuration_t*) temp_buf);
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|   }
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| }
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| 
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| //--------------------------------------------------------------------+
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| // Configuration Descriptor
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| //--------------------------------------------------------------------+
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| 
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| // count total length of an interface
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| uint16_t count_interface_total_len(tusb_desc_interface_t const* desc_itf, uint8_t itf_count, uint16_t max_len);
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| 
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| void open_hid_interface(uint8_t daddr, tusb_desc_interface_t const *desc_itf, uint16_t max_len);
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| 
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| // simple configuration parser to open and listen to HID Endpoint IN
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| void parse_config_descriptor(uint8_t dev_addr, tusb_desc_configuration_t const* desc_cfg)
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| {
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|   uint8_t const* desc_end = ((uint8_t const*) desc_cfg) + tu_le16toh(desc_cfg->wTotalLength);
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|   uint8_t const* p_desc   = tu_desc_next(desc_cfg);
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| 
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|   // parse each interfaces
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|   while( p_desc < desc_end )
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|   {
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|     uint8_t assoc_itf_count = 1;
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| 
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|     // Class will always starts with Interface Association (if any) and then Interface descriptor
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|     if ( TUSB_DESC_INTERFACE_ASSOCIATION == tu_desc_type(p_desc) )
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|     {
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|       tusb_desc_interface_assoc_t const * desc_iad = (tusb_desc_interface_assoc_t const *) p_desc;
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|       assoc_itf_count = desc_iad->bInterfaceCount;
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| 
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|       p_desc = tu_desc_next(p_desc); // next to Interface
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|     }
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| 
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|     // must be interface from now
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|     if( TUSB_DESC_INTERFACE != tu_desc_type(p_desc) ) return;
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|     tusb_desc_interface_t const* desc_itf = (tusb_desc_interface_t const*) p_desc;
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| 
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|     uint16_t const drv_len = count_interface_total_len(desc_itf, assoc_itf_count, (uint16_t) (desc_end-p_desc));
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| 
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|     // probably corrupted descriptor
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|     if(drv_len < sizeof(tusb_desc_interface_t)) return;
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| 
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|     // only open and listen to HID endpoint IN
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|     if (desc_itf->bInterfaceClass == TUSB_CLASS_HID)
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|     {
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|       open_hid_interface(dev_addr, desc_itf, drv_len);
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|     }
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| 
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|     // next Interface or IAD descriptor
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|     p_desc += drv_len;
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|   }
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| }
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| 
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| uint16_t count_interface_total_len(tusb_desc_interface_t const* desc_itf, uint8_t itf_count, uint16_t max_len)
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| {
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|   uint8_t const* p_desc = (uint8_t const*) desc_itf;
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|   uint16_t len = 0;
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| 
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|   while (itf_count--)
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|   {
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|     // Next on interface desc
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|     len += tu_desc_len(desc_itf);
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|     p_desc = tu_desc_next(p_desc);
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| 
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|     while (len < max_len)
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|     {
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|       // return on IAD regardless of itf count
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|       if ( tu_desc_type(p_desc) == TUSB_DESC_INTERFACE_ASSOCIATION ) return len;
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| 
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|       if ( (tu_desc_type(p_desc) == TUSB_DESC_INTERFACE) &&
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|            ((tusb_desc_interface_t const*) p_desc)->bAlternateSetting == 0 )
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|       {
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|         break;
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|       }
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| 
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|       len += tu_desc_len(p_desc);
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|       p_desc = tu_desc_next(p_desc);
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|     }
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|   }
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| 
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|   return len;
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| }
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| 
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| //--------------------------------------------------------------------+
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| // HID Interface
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| //--------------------------------------------------------------------+
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| 
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| void hid_report_received(tuh_xfer_t* xfer);
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| 
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| void open_hid_interface(uint8_t daddr, tusb_desc_interface_t const *desc_itf, uint16_t max_len)
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| {
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|   // len = interface + hid + n*endpoints
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|   uint16_t const drv_len = (uint16_t) (sizeof(tusb_desc_interface_t) + sizeof(tusb_hid_descriptor_hid_t) +
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|                                        desc_itf->bNumEndpoints * sizeof(tusb_desc_endpoint_t));
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| 
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|   // corrupted descriptor
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|   if (max_len < drv_len) return;
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| 
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|   uint8_t const *p_desc = (uint8_t const *) desc_itf;
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| 
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|   // HID descriptor
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|   p_desc = tu_desc_next(p_desc);
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|   tusb_hid_descriptor_hid_t const *desc_hid = (tusb_hid_descriptor_hid_t const *) p_desc;
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|   if(HID_DESC_TYPE_HID != desc_hid->bDescriptorType) return;
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| 
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|   // Endpoint descriptor
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|   p_desc = tu_desc_next(p_desc);
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|   tusb_desc_endpoint_t const * desc_ep = (tusb_desc_endpoint_t const *) p_desc;
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| 
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|   for(int i = 0; i < desc_itf->bNumEndpoints; i++)
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|   {
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|     if (TUSB_DESC_ENDPOINT != desc_ep->bDescriptorType) return;
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| 
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|     if(tu_edpt_dir(desc_ep->bEndpointAddress) == TUSB_DIR_IN)
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|     {
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|       // skip if failed to open endpoint
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|       if ( ! tuh_edpt_open(daddr, desc_ep) ) return;
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| 
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|       uint8_t* buf = get_hid_buf(daddr);
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|       if (!buf) return; // out of memory
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| 
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|       tuh_xfer_t xfer =
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|       {
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|         .daddr       = daddr,
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|         .ep_addr     = desc_ep->bEndpointAddress,
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|         .buflen      = 64,
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|         .buffer      = buf,
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|         .complete_cb = hid_report_received,
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|         .user_data   = (uintptr_t) buf, // since buffer is not available in callback, use user data to store the buffer
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|       };
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| 
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|       // submit transfer for this EP
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|       tuh_edpt_xfer(&xfer);
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| 
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|       printf("Listen to [dev %u: ep %02x]\r\n", daddr, desc_ep->bEndpointAddress);
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|     }
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| 
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|     p_desc = tu_desc_next(p_desc);
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|     desc_ep = (tusb_desc_endpoint_t const *) p_desc;
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|   }
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| }
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| 
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| void hid_report_received(tuh_xfer_t* xfer)
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| {
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|   // Note: not all field in xfer is available for use (i.e filled by tinyusb stack) in callback to save sram
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|   // For instance, xfer->buffer is NULL. We have used user_data to store buffer when submitted callback
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|   uint8_t* buf = (uint8_t*) xfer->user_data;
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| 
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|   if (xfer->result == XFER_RESULT_SUCCESS)
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|   {
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|     printf("[dev %u: ep %02x] HID Report:", xfer->daddr, xfer->ep_addr);
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|     for(uint32_t i=0; i<xfer->actual_len; i++)
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|     {
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|       if (i%16 == 0) printf("\r\n  ");
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|       printf("%02X ", buf[i]);
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|     }
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|     printf("\r\n");
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|   }
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| 
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|   // continue to submit transfer, with updated buffer
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|   // other field remain the same
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|   xfer->buflen = 64;
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|   xfer->buffer = buf;
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| 
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|   tuh_edpt_xfer(xfer);
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| }
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| 
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| //--------------------------------------------------------------------+
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| // Buffer helper
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| //--------------------------------------------------------------------+
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| 
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| // get an buffer from pool
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| uint8_t* get_hid_buf(uint8_t daddr)
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| {
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|   for(size_t i=0; i<BUF_COUNT; i++)
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|   {
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|     if (buf_owner[i] == 0)
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|     {
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|       buf_owner[i] = daddr;
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|       return buf_pool[i];
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|     }
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|   }
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| 
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|   // out of memory, increase BUF_COUNT
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|   return NULL;
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| }
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| 
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| // free all buffer owned by device
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| void free_hid_buf(uint8_t daddr)
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| {
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|   for(size_t i=0; i<BUF_COUNT; i++)
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|   {
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|     if (buf_owner[i] == daddr) buf_owner[i] = 0;
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|   }
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| }
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| 
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| //--------------------------------------------------------------------+
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| // Blinking Task
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| //--------------------------------------------------------------------+
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| void led_blinking_task(void)
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| {
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|   const uint32_t interval_ms = 1000;
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|   static uint32_t start_ms = 0;
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| 
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|   static bool led_state = false;
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| 
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|   // Blink every interval ms
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|   if ( board_millis() - start_ms < interval_ms) return; // not enough time
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|   start_ms += interval_ms;
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| 
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|   board_led_write(led_state);
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|   led_state = 1 - led_state; // toggle
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| }
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| 
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| //--------------------------------------------------------------------+
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| // String Descriptor Helper
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| //--------------------------------------------------------------------+
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| 
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| static void _convert_utf16le_to_utf8(const uint16_t *utf16, size_t utf16_len, uint8_t *utf8, size_t utf8_len) {
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|     // TODO: Check for runover.
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|     (void)utf8_len;
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|     // Get the UTF-16 length out of the data itself.
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| 
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|     for (size_t i = 0; i < utf16_len; i++) {
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|         uint16_t chr = utf16[i];
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|         if (chr < 0x80) {
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|             *utf8++ = chr & 0xffu;
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|         } else if (chr < 0x800) {
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|             *utf8++ = (uint8_t)(0xC0 | (chr >> 6 & 0x1F));
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|             *utf8++ = (uint8_t)(0x80 | (chr >> 0 & 0x3F));
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|         } else {
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|             // TODO: Verify surrogate.
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|             *utf8++ = (uint8_t)(0xE0 | (chr >> 12 & 0x0F));
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|             *utf8++ = (uint8_t)(0x80 | (chr >> 6 & 0x3F));
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|             *utf8++ = (uint8_t)(0x80 | (chr >> 0 & 0x3F));
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|         }
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|         // TODO: Handle UTF-16 code points that take two entries.
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|     }
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| }
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| 
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| // Count how many bytes a utf-16-le encoded string will take in utf-8.
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| static int _count_utf8_bytes(const uint16_t *buf, size_t len) {
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|     size_t total_bytes = 0;
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|     for (size_t i = 0; i < len; i++) {
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|         uint16_t chr = buf[i];
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|         if (chr < 0x80) {
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|             total_bytes += 1;
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|         } else if (chr < 0x800) {
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|             total_bytes += 2;
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|         } else {
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|             total_bytes += 3;
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|         }
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|         // TODO: Handle UTF-16 code points that take two entries.
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|     }
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|     return (int) total_bytes;
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| }
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| 
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| static void print_utf16(uint16_t *temp_buf, size_t buf_len) {
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|     if ((temp_buf[0] & 0xff) == 0) return;  // empty
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|     size_t utf16_len = ((temp_buf[0] & 0xff) - 2) / sizeof(uint16_t);
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|     size_t utf8_len = (size_t) _count_utf8_bytes(temp_buf + 1, utf16_len);
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|     _convert_utf16le_to_utf8(temp_buf + 1, utf16_len, (uint8_t *) temp_buf, sizeof(uint16_t) * buf_len);
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|     ((uint8_t*) temp_buf)[utf8_len] = '\0';
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| 
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|     printf((char*)temp_buf);
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| }
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