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/* ... */
#include "stm32f4xx_hal.h"
#include "lwip/timeouts.h"
#include "lwip/tcpip.h"
#include "netif/etharp.h"
#include "ethernetif.h"
#include <string.h>
6 includes
Includes
#define TIME_WAITING_FOR_INPUT ( osWaitForever )
#define INTERFACE_THREAD_STACK_SIZE ( 350 )
#define IFNAME0 's'
#define IFNAME1 't'
Private define
#if defined ( __ICCARM__ )
#pragma data_alignment=4
#endif
__ALIGN_BEGIN ETH_DMADescTypeDef DMARxDscrTab[ETH_RXBUFNB] __ALIGN_END;
#if defined ( __ICCARM__ )
#pragma data_alignment=4
#endif
__ALIGN_BEGIN ETH_DMADescTypeDef DMATxDscrTab[ETH_TXBUFNB] __ALIGN_END;
#if defined ( __ICCARM__ )
#pragma data_alignment=4
#endif
__ALIGN_BEGIN uint8_t Rx_Buff[ETH_RXBUFNB][ETH_RX_BUF_SIZE] __ALIGN_END;
#if defined ( __ICCARM__ )
#pragma data_alignment=4
#endif
__ALIGN_BEGIN uint8_t Tx_Buff[ETH_TXBUFNB][ETH_TX_BUF_SIZE] __ALIGN_END;
osSemaphoreId s_xSemaphore = NULL;
ETH_HandleTypeDef EthHandle;
Private variables
static void ethernetif_input( void const * argument );
Private function prototypes
/* ... */
/* ... */
void HAL_ETH_MspInit(ETH_HandleTypeDef *heth)
{
GPIO_InitTypeDef GPIO_InitStructure;
__HAL_RCC_GPIOA_CLK_ENABLE();
__HAL_RCC_GPIOB_CLK_ENABLE();
__HAL_RCC_GPIOC_CLK_ENABLE();
__HAL_RCC_GPIOE_CLK_ENABLE();
__HAL_RCC_GPIOF_CLK_ENABLE();
__HAL_RCC_GPIOG_CLK_ENABLE();
__HAL_RCC_GPIOH_CLK_ENABLE();
__HAL_RCC_GPIOI_CLK_ENABLE();
/* ... */
GPIO_InitStructure.Speed = GPIO_SPEED_HIGH;
GPIO_InitStructure.Mode = GPIO_MODE_AF_PP;
GPIO_InitStructure.Pull = GPIO_NOPULL;
GPIO_InitStructure.Alternate = GPIO_AF11_ETH;
GPIO_InitStructure.Pin = GPIO_PIN_1 | GPIO_PIN_2 | GPIO_PIN_7;
HAL_GPIO_Init(GPIOA, &GPIO_InitStructure);
GPIO_InitStructure.Pin = GPIO_PIN_5;
HAL_GPIO_Init(GPIOB, &GPIO_InitStructure);
GPIO_InitStructure.Pin = GPIO_PIN_2;
HAL_GPIO_Init(GPIOE, &GPIO_InitStructure);
GPIO_InitStructure.Pin = GPIO_PIN_1 | GPIO_PIN_2 | GPIO_PIN_3 | GPIO_PIN_4 | GPIO_PIN_5;
HAL_GPIO_Init(GPIOC, &GPIO_InitStructure);
GPIO_InitStructure.Pin = GPIO_PIN_11 | GPIO_PIN_13 | GPIO_PIN_14;
HAL_GPIO_Init(GPIOG, &GPIO_InitStructure);
GPIO_InitStructure.Pin = GPIO_PIN_6 | GPIO_PIN_7;
HAL_GPIO_Init(GPIOH, &GPIO_InitStructure);
/* ... */
/* ... */
/* ... */
HAL_NVIC_SetPriority(ETH_IRQn, 0x7, 0);
HAL_NVIC_EnableIRQ(ETH_IRQn);
__HAL_RCC_ETH_CLK_ENABLE();
}{ ... }
/* ... */
void HAL_ETH_RxCpltCallback(ETH_HandleTypeDef *heth)
{
osSemaphoreRelease(s_xSemaphore);
}{ ... }
/* ... */
/* ... */
static void low_level_init(struct netif *netif)
{
uint32_t regvalue = 0;
uint8_t macaddress[6]= { MAC_ADDR0, MAC_ADDR1, MAC_ADDR2, MAC_ADDR3, MAC_ADDR4, MAC_ADDR5 };
EthHandle.Instance = ETH;
EthHandle.Init.MACAddr = macaddress;
EthHandle.Init.AutoNegotiation = ETH_AUTONEGOTIATION_ENABLE;
EthHandle.Init.Speed = ETH_SPEED_100M;
EthHandle.Init.DuplexMode = ETH_MODE_FULLDUPLEX;
EthHandle.Init.MediaInterface = ETH_MEDIA_INTERFACE_MII;
EthHandle.Init.RxMode = ETH_RXINTERRUPT_MODE;
EthHandle.Init.ChecksumMode = ETH_CHECKSUM_BY_HARDWARE;
EthHandle.Init.PhyAddress = DP83848_PHY_ADDRESS;
if (HAL_ETH_Init(&EthHandle) == HAL_OK)
{
netif->flags |= NETIF_FLAG_LINK_UP;
}if (HAL_ETH_Init(&EthHandle) == HAL_OK) { ... }
HAL_ETH_DMATxDescListInit(&EthHandle, DMATxDscrTab, &Tx_Buff[0][0], ETH_TXBUFNB);
HAL_ETH_DMARxDescListInit(&EthHandle, DMARxDscrTab, &Rx_Buff[0][0], ETH_RXBUFNB);
netif->hwaddr_len = ETH_HWADDR_LEN;
netif->hwaddr[0] = MAC_ADDR0;
netif->hwaddr[1] = MAC_ADDR1;
netif->hwaddr[2] = MAC_ADDR2;
netif->hwaddr[3] = MAC_ADDR3;
netif->hwaddr[4] = MAC_ADDR4;
netif->hwaddr[5] = MAC_ADDR5;
netif->mtu = 1500;
netif->flags |= NETIF_FLAG_BROADCAST | NETIF_FLAG_ETHARP;
osSemaphoreDef(SEM);
s_xSemaphore = osSemaphoreCreate(osSemaphore(SEM) , 1 );
osThreadDef(EthIf, ethernetif_input, osPriorityRealtime, 0, INTERFACE_THREAD_STACK_SIZE);
osThreadCreate (osThread(EthIf), netif);
HAL_ETH_Start(&EthHandle);
HAL_ETH_ReadPHYRegister(&EthHandle, PHY_MICR, ®value);
regvalue |= (PHY_MICR_INT_EN | PHY_MICR_INT_OE);
HAL_ETH_WritePHYRegister(&EthHandle, PHY_MICR, regvalue );
HAL_ETH_ReadPHYRegister(&EthHandle, PHY_MISR, ®value);
regvalue |= PHY_MISR_LINK_INT_EN;
HAL_ETH_WritePHYRegister(&EthHandle, PHY_MISR, regvalue);
}{ ... }
/* ... */
static err_t low_level_output(struct netif *netif, struct pbuf *p)
{
err_t errval;
struct pbuf *q;
uint8_t *buffer = (uint8_t *)(EthHandle.TxDesc->Buffer1Addr);
__IO ETH_DMADescTypeDef *DmaTxDesc;
uint32_t framelength = 0;
uint32_t bufferoffset = 0;
uint32_t byteslefttocopy = 0;
uint32_t payloadoffset = 0;
DmaTxDesc = EthHandle.TxDesc;
bufferoffset = 0;
for(q = p; q != NULL; q = q->next)
{
if((DmaTxDesc->Status & ETH_DMATXDESC_OWN) != (uint32_t)RESET)
{
errval = ERR_USE;
goto error;
}if ((DmaTxDesc->Status & ETH_DMATXDESC_OWN) != (uint32_t)RESET) { ... }
byteslefttocopy = q->len;
payloadoffset = 0;
while( (byteslefttocopy + bufferoffset) > ETH_TX_BUF_SIZE )
{
memcpy( (uint8_t*)((uint8_t*)buffer + bufferoffset), (uint8_t*)((uint8_t*)q->payload + payloadoffset), (ETH_TX_BUF_SIZE - bufferoffset) );
DmaTxDesc = (ETH_DMADescTypeDef *)(DmaTxDesc->Buffer2NextDescAddr);
if((DmaTxDesc->Status & ETH_DMATXDESC_OWN) != (uint32_t)RESET)
{
errval = ERR_USE;
goto error;
}if ((DmaTxDesc->Status & ETH_DMATXDESC_OWN) != (uint32_t)RESET) { ... }
buffer = (uint8_t *)(DmaTxDesc->Buffer1Addr);
byteslefttocopy = byteslefttocopy - (ETH_TX_BUF_SIZE - bufferoffset);
payloadoffset = payloadoffset + (ETH_TX_BUF_SIZE - bufferoffset);
framelength = framelength + (ETH_TX_BUF_SIZE - bufferoffset);
bufferoffset = 0;
}while ((byteslefttocopy + bufferoffset) > ETH_TX_BUF_SIZE) { ... }
memcpy( (uint8_t*)((uint8_t*)buffer + bufferoffset), (uint8_t*)((uint8_t*)q->payload + payloadoffset), byteslefttocopy );
bufferoffset = bufferoffset + byteslefttocopy;
framelength = framelength + byteslefttocopy;
}for (q = p; q != NULL; q = q->next) { ... }
HAL_ETH_TransmitFrame(&EthHandle, framelength);
errval = ERR_OK;
error:
if ((EthHandle.Instance->DMASR & ETH_DMASR_TUS) != (uint32_t)RESET)
{
EthHandle.Instance->DMASR = ETH_DMASR_TUS;
EthHandle.Instance->DMATPDR = 0;
}if ((EthHandle.Instance->DMASR & ETH_DMASR_TUS) != (uint32_t)RESET) { ... }
return errval;
}{ ... }
/* ... */
static struct pbuf * low_level_input(struct netif *netif)
{
struct pbuf *p = NULL, *q = NULL;
uint16_t len = 0;
uint8_t *buffer;
__IO ETH_DMADescTypeDef *dmarxdesc;
uint32_t bufferoffset = 0;
uint32_t payloadoffset = 0;
uint32_t byteslefttocopy = 0;
uint32_t i=0;
if(HAL_ETH_GetReceivedFrame_IT(&EthHandle) != HAL_OK)
return NULL;
len = EthHandle.RxFrameInfos.length;
buffer = (uint8_t *)EthHandle.RxFrameInfos.buffer;
if (len > 0)
{
p = pbuf_alloc(PBUF_RAW, len, PBUF_POOL);
}if (len > 0) { ... }
if (p != NULL)
{
dmarxdesc = EthHandle.RxFrameInfos.FSRxDesc;
bufferoffset = 0;
for(q = p; q != NULL; q = q->next)
{
byteslefttocopy = q->len;
payloadoffset = 0;
while( (byteslefttocopy + bufferoffset) > ETH_RX_BUF_SIZE )
{
memcpy( (uint8_t*)((uint8_t*)q->payload + payloadoffset), (uint8_t*)((uint8_t*)buffer + bufferoffset), (ETH_RX_BUF_SIZE - bufferoffset));
dmarxdesc = (ETH_DMADescTypeDef *)(dmarxdesc->Buffer2NextDescAddr);
buffer = (uint8_t *)(dmarxdesc->Buffer1Addr);
byteslefttocopy = byteslefttocopy - (ETH_RX_BUF_SIZE - bufferoffset);
payloadoffset = payloadoffset + (ETH_RX_BUF_SIZE - bufferoffset);
bufferoffset = 0;
}while ((byteslefttocopy + bufferoffset) > ETH_RX_BUF_SIZE) { ... }
memcpy( (uint8_t*)((uint8_t*)q->payload + payloadoffset), (uint8_t*)((uint8_t*)buffer + bufferoffset), byteslefttocopy);
bufferoffset = bufferoffset + byteslefttocopy;
}for (q = p; q != NULL; q = q->next) { ... }
}if (p != NULL) { ... }
dmarxdesc = EthHandle.RxFrameInfos.FSRxDesc;
for (i=0; i< EthHandle.RxFrameInfos.SegCount; i++)
{
dmarxdesc->Status |= ETH_DMARXDESC_OWN;
dmarxdesc = (ETH_DMADescTypeDef *)(dmarxdesc->Buffer2NextDescAddr);
}for (i=0; i< EthHandle.RxFrameInfos.SegCount; i++) { ... }
EthHandle.RxFrameInfos.SegCount =0;
if ((EthHandle.Instance->DMASR & ETH_DMASR_RBUS) != (uint32_t)RESET)
{
EthHandle.Instance->DMASR = ETH_DMASR_RBUS;
EthHandle.Instance->DMARPDR = 0;
}if ((EthHandle.Instance->DMASR & ETH_DMASR_RBUS) != (uint32_t)RESET) { ... }
return p;
}{ ... }
/* ... */
void ethernetif_input( void const * argument )
{
struct pbuf *p;
struct netif *netif = (struct netif *) argument;
for( ;; )
{
if (osSemaphoreWait( s_xSemaphore, TIME_WAITING_FOR_INPUT)==osOK)
{
do
{
LOCK_TCPIP_CORE();
p = low_level_input( netif );
if (p != NULL)
{
if (netif->input( p, netif) != ERR_OK )
{
pbuf_free(p);
}if (netif->input( p, netif) != ERR_OK) { ... }
}if (p != NULL) { ... }
UNLOCK_TCPIP_CORE();
...}while(p!=NULL);
}if (osSemaphoreWait( s_xSemaphore, TIME_WAITING_FOR_INPUT)==osOK) { ... }
}for (;;) { ... }
}{ ... }
/* ... */
err_t ethernetif_init(struct netif *netif)
{
LWIP_ASSERT("netif != NULL", (netif != NULL));
#if LWIP_NETIF_HOSTNAME
netif->hostname = "lwip";/* ... */
#endif
netif->name[0] = IFNAME0;
netif->name[1] = IFNAME1;
netif->output = etharp_output;
netif->linkoutput = low_level_output;
low_level_init(netif);
return ERR_OK;
}{ ... }
/* ... */
void ethernetif_set_link(void const *argument)
{
uint32_t regvalue = 0;
struct link_str *link_arg = (struct link_str *)argument;
for(;;)
{
if (osSemaphoreWait( link_arg->semaphore, 100)== osOK)
{
HAL_ETH_ReadPHYRegister(&EthHandle, PHY_MISR, ®value);
if((regvalue & PHY_LINK_INTERRUPT) != (uint16_t)RESET)
{
HAL_ETH_ReadPHYRegister(&EthHandle, PHY_SR, ®value);
if((regvalue & PHY_LINK_STATUS)!= (uint16_t)RESET)
{
netif_set_link_up(link_arg->netif);
}if ((regvalue & PHY_LINK_STATUS)!= (uint16_t)RESET) { ... }
else
{
netif_set_link_down(link_arg->netif);
}else { ... }
}if ((regvalue & PHY_LINK_INTERRUPT) != (uint16_t)RESET) { ... }
}if (osSemaphoreWait( link_arg->semaphore, 100)== osOK) { ... }
}for (;;) { ... }
}{ ... }
/* ... */
void ethernetif_update_config(struct netif *netif)
{
__IO uint32_t tickstart = 0;
uint32_t regvalue = 0;
if(netif_is_link_up(netif))
{
if(EthHandle.Init.AutoNegotiation != ETH_AUTONEGOTIATION_DISABLE)
{
HAL_ETH_WritePHYRegister(&EthHandle, PHY_BCR, PHY_AUTONEGOTIATION);
tickstart = HAL_GetTick();
do
{
HAL_ETH_ReadPHYRegister(&EthHandle, PHY_BSR, ®value);
if((HAL_GetTick() - tickstart ) > 1000)
{
goto error;
}if ((HAL_GetTick() - tickstart ) > 1000) { ... }
...} while (((regvalue & PHY_AUTONEGO_COMPLETE) != PHY_AUTONEGO_COMPLETE));
HAL_ETH_ReadPHYRegister(&EthHandle, PHY_SR, ®value);
if((regvalue & PHY_DUPLEX_STATUS) != (uint32_t)RESET)
{
EthHandle.Init.DuplexMode = ETH_MODE_FULLDUPLEX;
}if ((regvalue & PHY_DUPLEX_STATUS) != (uint32_t)RESET) { ... }
else
{
EthHandle.Init.DuplexMode = ETH_MODE_HALFDUPLEX;
}else { ... }
if(regvalue & PHY_SPEED_STATUS)
{
EthHandle.Init.Speed = ETH_SPEED_10M;
}if (regvalue & PHY_SPEED_STATUS) { ... }
else
{
EthHandle.Init.Speed = ETH_SPEED_100M;
}else { ... }
}if (EthHandle.Init.AutoNegotiation != ETH_AUTONEGOTIATION_DISABLE) { ... }
else
{
error :
assert_param(IS_ETH_SPEED(EthHandle.Init.Speed));
assert_param(IS_ETH_DUPLEX_MODE(EthHandle.Init.DuplexMode));
HAL_ETH_WritePHYRegister(&EthHandle, PHY_BCR, ((uint16_t)(EthHandle.Init.DuplexMode >> 3) |
(uint16_t)(EthHandle.Init.Speed >> 1)));
}else { ... }
HAL_ETH_ConfigMAC(&EthHandle, (ETH_MACInitTypeDef *) NULL);
HAL_ETH_Start(&EthHandle);
}if (netif_is_link_up(netif)) { ... }
else
{
HAL_ETH_Stop(&EthHandle);
}else { ... }
ethernetif_notify_conn_changed(netif);
}{ ... }
/* ... */
__weak void ethernetif_notify_conn_changed(struct netif *netif)
{
/* ... */
}{ ... }
u32_t sys_now(void)
{
return HAL_GetTick();
}{ ... }