Files
TAIXIN/sdk/lib/bus/rttusb/usbdevice/class/cdc_vcom.c

1145 lines
31 KiB
C

/*
* Copyright (c) 2006-2023, RT-Thread Development Team
*
* SPDX-License-Identifier: Apache-2.0
*
* Change Logs:
* Date Author Notes
* 2012-10-02 Yi Qiu first version
* 2012-12-12 heyuanjie87 change endpoints and function handler
* 2013-06-25 heyuanjie87 remove SOF mechinism
* 2013-07-20 Yi Qiu do more test
* 2016-02-01 Urey Fix some error
* 2021-10-14 mazhiyuan Fix some error
*/
//#include <rthw.h>
#include <rtthread.h>
#include "include/rttusb_device.h"
#include "hal/isp_tunning.h"
#include "cdc_vcom.h"
#include "osal/mutex.h"
#include "hal/isp.h"
#ifdef RT_USB_DEVICE_CDC
#include "bsp/drv_usbd_cdc.h"
//#define DBG_TAG "usbdevice_cdc"
//#define DBG_LVL DBG_INFO
//#include <rtdbg.h>
#if ISP_TUNNING_EN
extern struct isp_tunnning_dev *isp_tunning;
#endif
#define VCOM_INTF_STR_INDEX 5
#ifdef RT_VCOM_TX_TIMEOUT
#define VCOM_TX_TIMEOUT RT_VCOM_TX_TIMEOUT
#else /*!RT_VCOM_TX_TIMEOUT*/
#define VCOM_TX_TIMEOUT 1000
#endif /*RT_VCOM_TX_TIMEOUT*/
#ifdef RT_CDC_RX_BUFSIZE
#define CDC_RX_BUFSIZE RT_CDC_RX_BUFSIZE
#else
#define CDC_RX_BUFSIZE 3*1024
#endif
#define CDC_MAX_PACKET_SIZE 64
#define VCOM_DEVICE "vcom"
#ifdef RT_VCOM_TASK_STK_SIZE
#define VCOM_TASK_STK_SIZE RT_VCOM_TASK_STK_SIZE
#else /*!RT_VCOM_TASK_STK_SIZE*/
#define VCOM_TASK_STK_SIZE 1024
#endif /*RT_VCOM_TASK_STK_SIZE*/
#ifdef RT_VCOM_TX_USE_DMA
#define VCOM_TX_USE_DMA
#endif /*RT_VCOM_TX_USE_DMA*/
#ifdef RT_VCOM_SERNO
#define _SER_NO RT_VCOM_SERNO
#else /*!RT_VCOM_SERNO*/
#define _SER_NO "32021919830108"
#endif /*RT_VCOM_SERNO*/
#ifdef RT_VCOM_SER_LEN
#define _SER_NO_LEN RT_VCOM_SER_LEN
#else /*!RT_VCOM_SER_LEN*/
#define _SER_NO_LEN 14 /*rt_strlen("32021919830108")*/
#endif /*RT_VCOM_SER_LEN*/
// rt_align(RT_ALIGN_SIZE)
// static rt_uint8_t vcom_thread_stack[VCOM_TASK_STK_SIZE];
static rt_thread_t vcom_thread = RT_NULL;
static struct ucdc_line_coding line_coding;
static ufunction_t vcom_func = RT_NULL;
static rt_sem_t cdc_sem = RT_NULL;
#define CDC_TX_BUFSIZE 2048
#define CDC_BULKIN_MAXSIZE 512
#define CDC_TX_HAS_DATE (1 << 0)
#define CDC_TX_HAS_SPACE (1 << 1)
#define CDC_TX_THREAD_DELETE (1 << 2)
struct vcom
{
struct rt_serial_device serial;
uep_t ep_out;
uep_t ep_in;
uep_t ep_cmd;
rt_bool_t connected;
rt_bool_t in_sending;
rt_uint8_t rx_rbp[CDC_RX_BUFSIZE];
struct rt_ringbuffer rx_ringbuffer;
rt_uint8_t tx_rbp[CDC_TX_BUFSIZE];
struct rt_ringbuffer tx_ringbuffer;
struct rt_event tx_event;
};
struct vcom_tx_msg
{
struct rt_serial_device * serial;
const char *buf;
rt_size_t size;
};
rt_align(4)
static struct udevice_descriptor dev_desc =
{
USB_DESC_LENGTH_DEVICE, //bLength;
USB_DESC_TYPE_DEVICE, //type;
USB_BCD_VERSION, //bcdUSB;
USB_CLASS_COMM, //bDeviceClass;
0x02, //bDeviceSubClass;
0x00, //bDeviceProtocol;
CDC_MAX_PACKET_SIZE, //bMaxPacketSize0;
_VENDOR_ID, //idVendor;
_PRODUCT_ID, //idProduct;
USB_BCD_DEVICE, //bcdDevice;
USB_STRING_MANU_INDEX, //iManufacturer;
USB_STRING_PRODUCT_INDEX, //iProduct;
USB_STRING_SERIAL_INDEX, //iSerialNumber;
USB_DYNAMIC, //bNumConfigurations;
};
//FS and HS needed
rt_align(4)
static struct usb_qualifier_descriptor dev_qualifier =
{
sizeof(dev_qualifier), //bLength
USB_DESC_TYPE_DEVICEQUALIFIER, //bDescriptorType
0x0200, //bcdUSB
USB_CLASS_COMM, //bDeviceClass
0x02, //bDeviceSubClass
0x00, //bDeviceProtocol
64, //bMaxPacketSize0
0x01, //bNumConfigurations
0,
};
/* communcation interface descriptor */
rt_align(4)
const static struct ucdc_comm_descriptor _comm_desc =
{
#ifdef RT_USB_DEVICE_COMPOSITE
/* Interface Association Descriptor */
{
USB_DESC_LENGTH_IAD,
USB_DESC_TYPE_IAD,
USB_DYNAMIC,
0x02,
USB_CDC_CLASS_COMM,
USB_CDC_SUBCLASS_ACM,
USB_CDC_PROTOCOL_V25TER,
0x00,
},
#endif
/* Interface Descriptor */
{
USB_DESC_LENGTH_INTERFACE,
USB_DESC_TYPE_INTERFACE,
USB_DYNAMIC,
0x00,
0x01,
USB_CDC_CLASS_COMM,
USB_CDC_SUBCLASS_ACM,
USB_CDC_PROTOCOL_V25TER,
#ifdef RT_USB_DEVICE_COMPOSITE
VCOM_INTF_STR_INDEX,
#else
0,
#endif
},
/* Header Functional Descriptor */
{
0x05,
USB_CDC_CS_INTERFACE,
USB_CDC_SCS_HEADER,
0x0110,
},
/* Call Management Functional Descriptor */
{
0x05,
USB_CDC_CS_INTERFACE,
USB_CDC_SCS_CALL_MGMT,
0x00,
USB_DYNAMIC,
},
/* Abstract Control Management Functional Descriptor */
{
0x04,
USB_CDC_CS_INTERFACE,
USB_CDC_SCS_ACM,
0x02,
},
/* Union Functional Descriptor */
{
0x05,
USB_CDC_CS_INTERFACE,
USB_CDC_SCS_UNION,
USB_DYNAMIC,
USB_DYNAMIC,
},
/* Endpoint Descriptor */
{
USB_DESC_LENGTH_ENDPOINT,
USB_DESC_TYPE_ENDPOINT,
USB_DYNAMIC | USB_DIR_IN,
USB_EP_ATTR_INT,
0x08,
0xFF,
},
};
/* data interface descriptor */
rt_align(4)
const static struct ucdc_data_descriptor _data_desc =
{
/* interface descriptor */
{
USB_DESC_LENGTH_INTERFACE,
USB_DESC_TYPE_INTERFACE,
USB_DYNAMIC,
0x00,
0x02,
USB_CDC_CLASS_DATA,
0x00,
0x00,
0x00,
},
/* endpoint, bulk out */
{
USB_DESC_LENGTH_ENDPOINT,
USB_DESC_TYPE_ENDPOINT,
USB_DYNAMIC | USB_DIR_OUT,
USB_EP_ATTR_BULK,
USB_DYNAMIC,
0x00,
},
/* endpoint, bulk in */
{
USB_DESC_LENGTH_ENDPOINT,
USB_DESC_TYPE_ENDPOINT,
USB_DYNAMIC | USB_DIR_IN,
USB_EP_ATTR_BULK,
USB_DYNAMIC,
0x00,
},
};
rt_align(4)
static char serno[_SER_NO_LEN + 1] = {'\0'};
rt_weak rt_err_t vcom_get_stored_serno(char *serno, int size);
rt_err_t vcom_get_stored_serno(char *serno, int size)
{
return -RT_ERROR;
}
rt_align(4)
const static char* _ustring[] =
{
"Language",
"RT-Thread Team.",
"RTT Virtual Serial",
serno,
"Configuration",
"Interface",
};
static void rt_usb_vcom_init(struct ufunction *func);
static void rt_usbd_vcom_deinit(struct ufunction *func);
static void _vcom_reset_state(ufunction_t func)
{
struct vcom* data;
rt_base_t level;
RT_ASSERT(func != RT_NULL);
data = (struct vcom*)func->user_data;
level = rt_hw_interrupt_disable();
data->connected = RT_FALSE;
data->in_sending = RT_FALSE;
/*rt_kprintf("reset USB serial\n", cnt);*/
rt_hw_interrupt_enable(level);
}
/**
* This function will handle cdc bulk in endpoint request.
*
* @param func the usb function object.
* @param size request size.
*
* @return RT_EOK.
*/
static rt_err_t _ep_in_handler(ufunction_t func, rt_size_t size)
{
struct vcom *data;
rt_size_t request_size;
RT_ASSERT(func != RT_NULL);
data = (struct vcom*)func->user_data;
request_size = data->ep_in->request.size;
//os_printf("cdc _ep_in_handler %d\n", request_size);
rt_sem_release(cdc_sem);
#if ISP_TUNNING_EN
os_sleep_ms(1);
os_sema_up(&isp_tunning->usb_write_sema);
#else
if ((request_size != 0) && ((request_size % EP_MAXPACKET(data->ep_in)) == 0))
{
/* don't have data right now. Send a zero-length-packet to
* terminate the transaction.
*
* FIXME: actually, this might not be the right place to send zlp.
* Only the rt_device_write could know how much data is sending. */
data->in_sending = RT_TRUE;
data->ep_in->request.buffer = RT_NULL;
data->ep_in->request.size = 0;
data->ep_in->request.req_type = UIO_REQUEST_WRITE;
//rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
return RT_EOK;
}
#endif
return RT_EOK;
}
rt_ssize_t cdc_usb_write(rt_device_t dev, rt_off_t pos, const void *buffer, rt_size_t size)
{
struct vcom *data = (struct vcom*)vcom_func->user_data;
if (vcom_func->device->state != USB_STATE_CONFIGURED)
{
return 0;
}
data->in_sending = RT_TRUE;
data->ep_in->request.buffer = (void *)buffer;
data->ep_in->request.size = size;
data->ep_in->request.req_type = UIO_REQUEST_WRITE;
rt_usbd_io_request(vcom_func->device, data->ep_in, &data->ep_in->request);
#if ISP_TUNNING_EN
os_sema_down(&isp_tunning->usb_write_sema, -1);
#endif
return size;
}
/**
* This function will handle cdc bulk out endpoint request.
*
* @param func the usb function object.
* @param size request size.
*
* @return RT_EOK.
*/
static rt_err_t _ep_out_handler(ufunction_t func, rt_size_t size)
{
struct vcom *data;
RT_ASSERT(func != RT_NULL);
//os_printf("cdc _ep_out_handler %d\n", size);
data = (struct vcom*)func->user_data;
#if ISP_TUNNING_EN
uint16 head = *((uint16 *)&data->ep_out->buffer[0]);
uint16 cmd_data = *((uint16 *)&data->ep_out->buffer[6]);
uint16 crc_cal = hw_crc(CRC_TYPE_CRC16_MODBUS, data->ep_out->buffer, (8 + (cmd_data<<2)));
if ((head == isp_tunning->tunning_head) && (crc_cal == *((uint16 *)&data->ep_out->buffer[8 + (cmd_data<<2)])))
{
isp_tunning->cmd_head = head;
isp_tunning->cmd_num = *(uint16 *)&data->ep_out->buffer[2];
isp_tunning->cmd_channel = *(uint16 *)&data->ep_out->buffer[4];
isp_tunning->cmd_size = cmd_data << 2;
isp_tunning->p_data = (uint32 *)os_zalloc(isp_tunning->cmd_size);
if (isp_tunning->p_data)
{
os_memcpy((void *)isp_tunning->p_data , (void *)&data->ep_out->buffer[8], isp_tunning->cmd_size);
os_sema_up(&isp_tunning->usb_cmd_sema);
} else {
LOG_D(KERN_ERR"isp_tunning malloc size : %d err", isp_tunning->cmd_size);
}
} else {
os_printf("isp_tunning head : %04x rece_head : %4x cmd_dat : %04x crc : %4x rece_crc : %04x\r\n", isp_tunning->tunning_head, head, cmd_data, crc_cal, *((uint16 *)&data->ep_out->buffer[8 + (cmd_data<<2)]));
}
data->ep_out->request.buffer = data->ep_out->buffer;
data->ep_out->request.size = CDC_RX_BUFSIZE;
data->ep_out->request.req_type = UIO_REQUEST_READ_BEST;
rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
#else
rt_base_t level = rt_hw_interrupt_disable();
rt_ringbuffer_put(&data->rx_ringbuffer, data->ep_out->buffer, size);
rt_hw_interrupt_enable(level);
//收发回环测试
struct rt_serial_device *serial = (struct rt_serial_device*)dev_get(HG_USB_DEV_CDC_DEVID);
usbd_cdc_transmit(serial, data->ep_out->buffer, size, 0);
#if 1
int i = 0;
for(i = 0; i < size; i++)
{
printf("%x ",data->ep_out->buffer[i]);
}
#endif
data->ep_out->request.buffer = data->ep_out->buffer;
data->ep_out->request.size = EP_MAXPACKET(data->ep_out);
data->ep_out->request.req_type = UIO_REQUEST_READ_BEST;
rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
#endif
return RT_EOK;
}
/**
* This function will handle cdc interrupt in endpoint request.
*
* @param device the usb device object.
* @param size request size.
*
* @return RT_EOK.
*/
static rt_err_t _ep_cmd_handler(ufunction_t func, rt_size_t size)
{
RT_ASSERT(func != RT_NULL);
LOG_D("_ep_cmd_handler");
return RT_EOK;
}
/**
* This function will handle cdc_get_line_coding request.
*
* @param device the usb device object.
* @param setup the setup request.
*
* @return RT_EOK on successful.
*/
static rt_err_t _cdc_get_line_coding(udevice_t device, ureq_t setup)
{
struct ucdc_line_coding data;
rt_uint16_t size;
RT_ASSERT(device != RT_NULL);
RT_ASSERT(setup != RT_NULL);
LOG_D("_cdc_get_line_coding");
data.dwDTERate = 115200;
data.bCharFormat = 0;
data.bDataBits = 8;
data.bParityType = 0;
size = setup->wLength > 7 ? 7 : setup->wLength;
rt_usbd_ep0_write(device, (void*)&line_coding, size);
return RT_EOK;
}
static rt_err_t _cdc_set_line_coding_callback(udevice_t device, rt_size_t size)
{
LOG_D("_cdc_set_line_coding_callback");
os_printf("baud:%d,format:%d,Parity:%d,bits:%d\n",line_coding.dwDTERate,\
(rt_uint32_t)line_coding.bCharFormat,(rt_uint32_t)line_coding.bParityType,(rt_uint32_t)line_coding.bDataBits);
dcd_ep0_send_status(device->dcd);
return RT_EOK;
}
/**
* This function will handle cdc_set_line_coding request.
*
* @param device the usb device object.
* @param setup the setup request.
*
* @return RT_EOK on successful.
*/
static rt_err_t _cdc_set_line_coding(udevice_t device, ureq_t setup)
{
RT_ASSERT(device != RT_NULL);
RT_ASSERT(setup != RT_NULL);
LOG_D("_cdc_set_line_coding");
rt_usbd_ep0_read(device, (void*)&line_coding, sizeof(struct ucdc_line_coding),
_cdc_set_line_coding_callback);
return RT_EOK;
}
/**
* This function will handle cdc interface request.
*
* @param device the usb device object.
* @param setup the setup request.
*
* @return RT_EOK on successful.
*/
static rt_err_t _interface_handler(ufunction_t func, ureq_t setup)
{
struct vcom *data;
RT_ASSERT(func != RT_NULL);
RT_ASSERT(func->device != RT_NULL);
RT_ASSERT(setup != RT_NULL);
data = (struct vcom*)func->user_data;
switch(setup->bRequest)
{
case CDC_SEND_ENCAPSULATED_COMMAND:
break;
case CDC_GET_ENCAPSULATED_RESPONSE:
break;
case CDC_SET_COMM_FEATURE:
break;
case CDC_GET_COMM_FEATURE:
break;
case CDC_CLEAR_COMM_FEATURE:
break;
case CDC_SET_LINE_CODING:
_cdc_set_line_coding(func->device, setup);
break;
case CDC_GET_LINE_CODING:
_cdc_get_line_coding(func->device, setup);
break;
case CDC_SET_CONTROL_LINE_STATE:
data->connected = (setup->wValue & 0x01) > 0?RT_TRUE:RT_FALSE; //主机端设置DTR才可接收数据
LOG_D("vcom state:%d ", data->connected);
dcd_ep0_send_status(func->device->dcd);
break;
case CDC_SEND_BREAK:
break;
default:
rt_kprintf("unknown cdc request\n",setup->request_type);
return -RT_ERROR;
}
return RT_EOK;
}
/**
* This function will run cdc function, it will be called on handle set configuration request.
*
* @param func the usb function object.
*
* @return RT_EOK on successful.
*/
static rt_err_t _function_enable(ufunction_t func)
{
struct vcom *data;
RT_ASSERT(func != RT_NULL);
os_printf("cdc function enable");
rt_usb_vcom_init(func);
_vcom_reset_state(func);
data = (struct vcom*)func->user_data;
data->ep_out->buffer = rt_malloc(CDC_RX_BUFSIZE);
RT_ASSERT(data->ep_out->buffer != RT_NULL);
data->ep_out->request.buffer = data->ep_out->buffer;
data->ep_out->request.size = CDC_RX_BUFSIZE;//EP_MAXPACKET(data->ep_out);
data->ep_out->request.req_type = UIO_REQUEST_READ_BEST;
rt_usbd_io_request(func->device, data->ep_out, &data->ep_out->request);
rt_event_send(&data->tx_event, CDC_TX_HAS_SPACE);
return RT_EOK;
}
/**
* This function will stop cdc function, it will be called on handle set configuration request.
*
* @param func the usb function object.
*
* @return RT_EOK on successful.
*/
static rt_err_t _function_disable(ufunction_t func)
{
struct vcom *data;
RT_ASSERT(func != RT_NULL);
os_printf("cdc function disable");
rt_usbd_vcom_deinit(func);
_vcom_reset_state(func);
data = (struct vcom*)func->user_data;
if(data->ep_out->buffer != RT_NULL)
{
rt_free(data->ep_out->buffer);
data->ep_out->buffer = RT_NULL;
}
return RT_EOK;
}
static struct ufunction_ops ops =
{
_function_enable,
_function_disable,
RT_NULL,
};
/**
* This function will configure cdc descriptor.
*
* @param comm the communication interface number.
* @param data the data interface number.
*
* @return RT_EOK on successful.
*/
static rt_err_t _cdc_descriptor_config(ucdc_comm_desc_t comm,
rt_uint8_t cintf_nr, ucdc_data_desc_t data, rt_uint8_t dintf_nr, rt_uint8_t device_is_hs)
{
comm->call_mgmt_desc.data_interface = dintf_nr;
comm->union_desc.master_interface = cintf_nr;
comm->union_desc.slave_interface0 = dintf_nr;
#ifdef RT_USB_DEVICE_COMPOSITE
comm->iad_desc.bFirstInterface = cintf_nr;
#endif
data->ep_in_desc.wMaxPacketSize = device_is_hs ? 512 : 64;
data->ep_out_desc.wMaxPacketSize = device_is_hs ? 512 : 64;
return RT_EOK;
}
/**
* This function will create a cdc function instance.
*
* @param device the usb device object.
*
* @return RT_EOK on successful.
*/
ufunction_t rt_usbd_function_cdc_create(udevice_t device)
{
ufunction_t func;
struct vcom* data;
uintf_t intf_comm, intf_data;
ualtsetting_t comm_setting, data_setting;
ucdc_data_desc_t data_desc;
ucdc_comm_desc_t comm_desc;
/* parameter check */
RT_ASSERT(device != RT_NULL);
rt_memset(serno, 0, _SER_NO_LEN + 1);
if(vcom_get_stored_serno(serno, _SER_NO_LEN) != RT_EOK)
{
rt_memset(serno, 0, _SER_NO_LEN + 1);
rt_memcpy(serno, _SER_NO, rt_strlen(_SER_NO));
}
#ifdef RT_USB_DEVICE_COMPOSITE
rt_usbd_device_set_interface_string(device, VCOM_INTF_STR_INDEX, _ustring[2]);
#else
/* set usb device string description */
rt_usbd_device_set_string(device, _ustring);
#endif
/* create a cdc function */
func = rt_usbd_function_new(device, &dev_desc, &ops);
vcom_func = func;
/* support HS */
rt_usbd_device_set_qualifier(device, &dev_qualifier);
/* allocate memory for cdc vcom data */
data = (struct vcom*)rt_malloc(sizeof(struct vcom));
RT_ASSERT(data != RT_NULL);
rt_memset(data, 0, sizeof(struct vcom));
func->user_data = (void*)data;
/* create a cdc communication interface and a cdc data interface */
intf_comm = rt_usbd_interface_new(device, _interface_handler);
intf_data = rt_usbd_interface_new(device, _interface_handler);
func->intf[0] = intf_comm;
func->intf[1] = intf_data;
/* create a communication alternate setting and a data alternate setting */
comm_setting = rt_usbd_altsetting_new(sizeof(struct ucdc_comm_descriptor));
data_setting = rt_usbd_altsetting_new(sizeof(struct ucdc_data_descriptor));
func->setting[0] = comm_setting;
func->setting[1] = data_setting;
/* config desc in alternate setting */
rt_usbd_altsetting_config_descriptor(comm_setting, &_comm_desc,
(rt_off_t)&((ucdc_comm_desc_t)0)->intf_desc);
rt_usbd_altsetting_config_descriptor(data_setting, &_data_desc, 0);
/* configure the cdc interface descriptor */
_cdc_descriptor_config(comm_setting->desc, intf_comm->intf_num, data_setting->desc, intf_data->intf_num, device->dcd->device_is_hs);
/* create a command endpoint */
comm_desc = (ucdc_comm_desc_t)comm_setting->desc;
data->ep_cmd = rt_usbd_endpoint_new(&comm_desc->ep_desc, _ep_cmd_handler);
func->ep[0] = data->ep_cmd;
/* add the command endpoint to the cdc communication interface */
rt_usbd_altsetting_add_endpoint(comm_setting, data->ep_cmd);
/* add the communication alternate setting to the communication interface,
then set default setting of the interface */
rt_usbd_interface_add_altsetting(intf_comm, comm_setting);
rt_usbd_set_altsetting(intf_comm, 0);
/* add the communication interface to the cdc function */
rt_usbd_function_add_interface(func, intf_comm);
/* create a bulk in and a bulk endpoint */
data_desc = (ucdc_data_desc_t)data_setting->desc;
data->ep_out = rt_usbd_endpoint_new(&data_desc->ep_out_desc, _ep_out_handler);
data->ep_in = rt_usbd_endpoint_new(&data_desc->ep_in_desc, _ep_in_handler);
func->ep[1] = data->ep_out;
func->ep[2] = data->ep_in;
/* add the bulk out and bulk in endpoints to the data alternate setting */
rt_usbd_altsetting_add_endpoint(data_setting, data->ep_in);
rt_usbd_altsetting_add_endpoint(data_setting, data->ep_out);
/* add the data alternate setting to the data interface
then set default setting of the interface */
rt_usbd_interface_add_altsetting(intf_data, data_setting);
rt_usbd_set_altsetting(intf_data, 0);
/* add the cdc data interface to cdc function */
rt_usbd_function_add_interface(func, intf_data);
return func;
}
void rt_usbd_function_cdc_delete()
{
struct vcom* data;
os_printf("%s %d\n",__FUNCTION__,__LINE__);
if(vcom_func == RT_NULL)
{
LOG_D("vcom_func is NULL\n");
return;
}
data = (struct vcom*)vcom_func->user_data;
if(data->ep_out->buffer != RT_NULL)
{
rt_free(data->ep_out->buffer);
data->ep_out->buffer = RT_NULL;
}
if(data != RT_NULL)
{
rt_free(data);
data = RT_NULL;
}
if(vcom_func != RT_NULL)
{
rt_usbd_function_release(vcom_func);
vcom_func = RT_NULL;
}
}
/**
* HG_USB_DEV_CDC_DEVID device
*/
#if 1
static rt_err_t _vcom_configure(struct rt_serial_device *serial,
struct serial_configure *cfg)
{
os_printf("%s %d\n",__FUNCTION__,__LINE__);
return RT_EOK;
}
static rt_err_t _vcom_control(struct rt_serial_device *serial,
int cmd, void *arg)
{
struct ufunction *func;
struct vcom *data;
func = (struct ufunction*)serial->func;
data = (struct vcom*)func->user_data;
os_printf("%s %d\n",__FUNCTION__,__LINE__);
switch (cmd)
{
case USBD_VCOM_CTRL_GET:
break;
case USBD_VCOM_CTRL_SET:
break;
case USBD_VCOM_CTRL_CONNECTED:
(*(rt_bool_t*)arg) = data->connected;
break;
default:
break;
}
return RT_EOK;
}
static int _vcom_getc(struct rt_serial_device *serial)
{
int result;
rt_uint8_t ch;
rt_base_t level;
struct ufunction *func;
struct vcom *data;
os_printf("%s %d\n",__FUNCTION__,__LINE__);
func = (struct ufunction*)serial->func;
data = (struct vcom*)func->user_data;
result = -1;
level = rt_hw_interrupt_disable();
if(rt_ringbuffer_getchar(&data->rx_ringbuffer, &ch) != 0)
{
result = ch;
}
rt_hw_interrupt_enable(level);
return result;
}
static rt_ssize_t _vcom_rb_block_put(struct vcom *data, const rt_uint8_t *buf, rt_size_t size)
{
rt_base_t level;
rt_size_t put_len = 0;
rt_size_t w_ptr = 0;
rt_uint32_t res;
rt_size_t remain_size = size;
LOG_D("%s %d buf:%x\n",__FUNCTION__,__LINE__,buf);
while (remain_size)
{
LOG_D("rb->rops:%d rb->wops:%d rb->qsize:%d\n",*(&data->tx_ringbuffer.rpos),*(&data->tx_ringbuffer.wpos),*(&data->tx_ringbuffer.qsize));
level = rt_hw_interrupt_disable();
put_len = rt_ringbuffer_put(&data->tx_ringbuffer, (const rt_uint8_t *)&buf[w_ptr], remain_size);
rt_hw_interrupt_enable(level);
LOG_D("rb->rops:%d rb->wops:%d rb->qsize:%d\n",*(&data->tx_ringbuffer.rpos),*(&data->tx_ringbuffer.wpos),*(&data->tx_ringbuffer.qsize));
w_ptr += put_len;
remain_size -= put_len;
if (put_len == 0)
{
os_printf("put_len:%d tx_ringbuffer put failed\n",put_len);
}
else
{
printf("_vcom rb block\n");
rt_event_recv(&data->tx_event, CDC_TX_HAS_SPACE,
RT_EVENT_FLAG_OR | RT_EVENT_FLAG_CLEAR,
VCOM_TX_TIMEOUT, &res);
if((res & CDC_TX_HAS_SPACE)){
rt_event_send(&data->tx_event, CDC_TX_HAS_DATE);
os_printf("vcom rb %d\n", size);
}
}
}
return size;
}
static rt_ssize_t _vcom_tx(struct rt_serial_device *serial, rt_uint8_t *buf, rt_size_t size, rt_uint32_t direction)
{
struct ufunction *func;
struct vcom *data;
rt_uint32_t send_size = 0;
rt_size_t ptr = 0;
//rt_uint8_t crlf[2] = {'\r', '\n',};
func = (struct ufunction*)serial->func;
data = (struct vcom*)func->user_data;
RT_ASSERT(serial != RT_NULL);
RT_ASSERT(buf != RT_NULL);
os_printf("%s %d buf:%x\n",__FUNCTION__,__LINE__,buf);
if (data->connected)
{
while(send_size < size)
{
while(ptr < size && buf[ptr] != '\n') //换行符分包
{
ptr++;
}
if(ptr < size)
{
send_size += _vcom_rb_block_put(data, (const rt_uint8_t *)&buf[send_size], ptr - send_size);
//_vcom_rb_block_put(data, crlf, 2);
//send_size++;
ptr++;
os_sleep_ms(10);
}
else if (ptr == size)
{
send_size += _vcom_rb_block_put(data, (const rt_uint8_t *)&buf[send_size], ptr - send_size);
os_sleep_ms(10);
}
else
{
break;
}
}
}
else
{
/* recover dataqueue resources */
os_printf("%s %d data disconnect\n",__FUNCTION__,__LINE__);
}
return size;
}
static int _vcom_putc(struct rt_serial_device *serial, char c)
{
rt_base_t level;
struct ufunction *func;
struct vcom *data;
func = (struct ufunction*)serial->func;
data = (struct vcom*)func->user_data;
os_printf("%s %d\n",__FUNCTION__,__LINE__);
RT_ASSERT(serial != RT_NULL);
if (data->connected)
{
if(c == '\n')
{
level = rt_hw_interrupt_disable();
rt_ringbuffer_putchar_force(&data->tx_ringbuffer, '\r');
rt_hw_interrupt_enable(level);
rt_event_send(&data->tx_event, CDC_TX_HAS_DATE);
}
level = rt_hw_interrupt_disable();
rt_ringbuffer_putchar_force(&data->tx_ringbuffer, c);
rt_hw_interrupt_enable(level);
rt_event_send(&data->tx_event, CDC_TX_HAS_DATE);
}
return 1;
}
static const struct rt_uart_ops usb_vcom_ops =
{
_vcom_configure,
_vcom_control,
_vcom_putc,
_vcom_getc,
_vcom_tx,
};
#endif
/* Vcom Tx Thread */
static void vcom_tx_thread_entry(void* parameter)
{
rt_base_t level;
rt_uint32_t res;
rt_uint32_t ret = 0;
struct ufunction *func = (struct ufunction *)parameter;
struct vcom *data = (struct vcom*)func->user_data;
rt_uint8_t ch[CDC_BULKIN_MAXSIZE];
cdc_sem = rt_sem_create("cdc_sem", 1, 0);
while (1)
{
if
(
(rt_event_recv(&data->tx_event, CDC_TX_HAS_DATE | CDC_TX_THREAD_DELETE,
RT_EVENT_FLAG_OR | RT_EVENT_FLAG_CLEAR,
RT_WAITING_FOREVER, &res) != RT_EOK)
)
{
continue;
}
if(res & CDC_TX_THREAD_DELETE)
{
os_printf("vcom tx thread delete\n");
break;
}
if(!(res & CDC_TX_HAS_DATE))
{
continue;
}
while((rt_uint32_t)rt_ringbuffer_data_len(&data->tx_ringbuffer))
{
LOG_D("ringbuffer:%x len:%d rb->rops:%d rb->wops:%d rb->qsize:%d\n",&data->tx_ringbuffer,(rt_uint32_t)rt_ringbuffer_data_len(&data->tx_ringbuffer),*(&data->tx_ringbuffer.rpos),*(&data->tx_ringbuffer.wpos),*(&data->tx_ringbuffer.qsize));
level = rt_hw_interrupt_disable();
res = rt_ringbuffer_get(&data->tx_ringbuffer, ch, CDC_BULKIN_MAXSIZE);
rt_hw_interrupt_enable(level);
LOG_D("rb->rops:%d rb->wops:%d rb->qsize:%d\n",*(&data->tx_ringbuffer.rpos),*(&data->tx_ringbuffer.wpos),*(&data->tx_ringbuffer.qsize));
if(!res)
{
continue;
}
if (!data->connected)
{
continue;
}
ret = 0;
ret = rt_sem_take(cdc_sem, -1); //等待串口发送完成
printf("ret:%d\n",ret);
data->ep_in->request.buffer = ch;
data->ep_in->request.size = res;
data->ep_in->request.req_type = UIO_REQUEST_WRITE;
rt_usbd_io_request(func->device, data->ep_in, &data->ep_in->request);
rt_event_send(&data->tx_event, CDC_TX_HAS_SPACE);
}
}
if(cdc_sem != RT_NULL)
{
rt_sem_delete(cdc_sem);
cdc_sem = RT_NULL;
}
}
static void rt_usb_vcom_init(struct ufunction *func)
{
rt_err_t result = RT_EOK;
struct serial_configure config;
struct vcom *data = (struct vcom*)func->user_data;
/* initialize ring buffer */
rt_ringbuffer_init(&data->rx_ringbuffer, data->rx_rbp, CDC_RX_BUFSIZE);
rt_ringbuffer_init(&data->tx_ringbuffer, data->tx_rbp, CDC_TX_BUFSIZE);
rt_event_init(&data->tx_event, "vcom", RT_IPC_FLAG_FIFO);
config.baud_rate = BAUD_RATE_115200;
config.data_bits = DATA_BITS_8;
config.stop_bits = STOP_BITS_1;
config.parity = PARITY_NONE;
config.bit_order = BIT_ORDER_LSB;
config.invert = NRZ_NORMAL;
data->serial.ops = &usb_vcom_ops;
data->serial.serial_rx = RT_NULL;
data->serial.config = config;
data->serial.func = func;
dev_register(HG_USB_DEV_CDC_DEVID, (struct dev_obj *)&data->serial);
#if 1
/* init usb device thread */
if(vcom_thread == RT_NULL)
{
vcom_thread = rt_thread_create("vcom",
vcom_tx_thread_entry, func,
VCOM_TASK_STK_SIZE,
OS_TASK_PRIORITY_NORMAL, 20);
}
if(vcom_thread != RT_NULL)
{
result = rt_thread_startup(vcom_thread);
}
RT_ASSERT(result == RT_EOK);
#endif
}
static void rt_usbd_vcom_deinit(struct ufunction *func)
{
struct vcom *data = (struct vcom*)func->user_data;
rt_event_send(&data->tx_event, CDC_TX_THREAD_DELETE);
dev_unregister((struct dev_obj *)&data->serial);
rt_event_detach(&data->tx_event);
rt_ringbuffer_destroy(&data->rx_ringbuffer);
rt_ringbuffer_destroy(&data->tx_ringbuffer);
if(vcom_thread != RT_NULL)
{
rt_thread_delete(vcom_thread);
vcom_thread = RT_NULL;
}
if(cdc_sem != RT_NULL)
{
rt_sem_delete(cdc_sem);
cdc_sem = RT_NULL;
}
}
struct udclass vcom_class =
{
.rt_usbd_function_create = rt_usbd_function_cdc_create,
.rt_usbd_function_delete = rt_usbd_function_cdc_delete,
};
//注册接口
int rt_usbd_vcom_class_register(rt_uint32_t dev_id)
{
rt_usbd_class_register(&vcom_class, dev_id);
return 0;
}
int rt_usbd_vcom_class_unregister(rt_uint32_t dev_id)
{
rt_usbd_class_driver_unregister(&vcom_class, dev_id);
return 0;
}
INIT_PREV_EXPORT(rt_usbd_vcom_class_register);
#endif