#include "tusb_option.h"
#if TUSB_OPT_DEVICE_ENABLED && ( CFG_TUSB_MCU == OPT_MCU_MSP430x5xx )
#include "msp430.h"
#include "device/dcd.h"
static volatile uint16_t usbiepie_mirror = 0;
static volatile uint16_t usboepie_mirror = 0;
static volatile uint8_t usbie_mirror = 0;
static volatile uint16_t usbpwrctl_mirror = 0;
static bool in_isr = false;
uint8_t _setup_packet[8];
typedef struct
{
uint8_t * buffer;
uint16_t total_len;
uint16_t queued_len;
uint16_t max_size;
bool short_packet;
} xfer_ctl_t;
xfer_ctl_t xfer_status[8][2];
#define XFER_CTL_BASE(_ep, _dir) &xfer_status[_ep][_dir]
typedef volatile uint8_t * ep_regs_t;
typedef enum
{
CNF = 0,
BBAX = 1,
BCTX = 2,
BBAY = 5,
BCTY = 6,
SIZXY = 7
} ep_regs_index_t;
#define EP_REGS(epnum, dir) ((ep_regs_t) ((uintptr_t)&USBOEPCNF_1 + 64*dir + 8*(epnum - 1)))
static void bus_reset(void)
{
xfer_status[0][TUSB_DIR_OUT].max_size = 8;
xfer_status[0][TUSB_DIR_IN].max_size = 8;
USBKEYPID = USBKEY;
USBOEPCNF_0 |= (UBME | USBIIE);
USBIEPCNF_0 |= (UBME | USBIIE);
USBOEPIE |= BIT0;
USBIEPIE |= BIT0;
USBOEPCNT_0 &= ~NAK;
USBIEPCNT_0 &= ~NAK;
USBCTL |= FEN;
USBIE |= SETUPIE;
USBKEYPID = 0;
}
void dcd_init (uint8_t rhport)
{
(void) rhport;
USBKEYPID = USBKEY;
USBCNF |= USB_EN;
USBOEPIE = 0;
USBIEPIE = 0;
USBIE = 0;
USBOEPIFG = 0;
USBIEPIFG = 0;
USBIFG = 0;
USBPWRCTL &= ~(VUOVLIE | VBONIE | VBOFFIE | VUOVLIFG | VBONIFG | VBOFFIFG);
usboepie_mirror = 0;
usbiepie_mirror = 0;
usbie_mirror = 0;
usbpwrctl_mirror = 0;
USBVECINT = 0;
USBIE |= RSTRIE;
USBCNF |= PUR_EN;
USBKEYPID = 0;
}
void dcd_int_enable (uint8_t rhport)
{
(void) rhport;
__bic_SR_register(GIE);
if(in_isr)
{
USBOEPIE = usboepie_mirror;
USBIEPIE = usbiepie_mirror;
USBIE = usbie_mirror;
USBPWRCTL |= usbpwrctl_mirror;
}
in_isr = false;
__bis_SR_register(GIE);
}
void dcd_int_disable (uint8_t rhport)
{
(void) rhport;
__bic_SR_register(GIE);
usboepie_mirror = USBOEPIE;
usbiepie_mirror = USBIEPIE;
usbie_mirror = USBIE;
usbpwrctl_mirror = (USBPWRCTL & (VUOVLIE | VBONIE | VBOFFIE));
USBOEPIE = 0;
USBIEPIE = 0;
USBIE = 0;
USBPWRCTL &= ~(VUOVLIE | VBONIE | VBOFFIE);
in_isr = true;
__bis_SR_register(GIE);
}
void dcd_set_address (uint8_t rhport, uint8_t dev_addr)
{
(void) rhport;
USBFUNADR = dev_addr;
dcd_edpt_xfer(rhport, tu_edpt_addr(0, TUSB_DIR_IN), NULL, 0);
}
void dcd_remote_wakeup(uint8_t rhport)
{
(void) rhport;
}
void dcd_connect(uint8_t rhport)
{
dcd_int_disable(rhport);
USBKEYPID = USBKEY;
USBCNF |= PUR_EN; USBKEYPID = 0;
dcd_int_enable(rhport);
}
void dcd_disconnect(uint8_t rhport)
{
dcd_int_disable(rhport);
USBKEYPID = USBKEY;
USBCNF &= ~PUR_EN; USBKEYPID = 0;
dcd_int_enable(rhport);
}
bool dcd_edpt_open (uint8_t rhport, tusb_desc_endpoint_t const * desc_edpt)
{
(void) rhport;
uint8_t const epnum = tu_edpt_number(desc_edpt->bEndpointAddress);
uint8_t const dir = tu_edpt_dir(desc_edpt->bEndpointAddress);
if( (epnum > 7) || \
(desc_edpt->bmAttributes.xfer == 0) || \
(desc_edpt->bmAttributes.xfer == 1)) {
return false;
}
xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
xfer->max_size = tu_edpt_packet_size(desc_edpt);
uint8_t buf_base = (128 * (epnum - 1) + 64 * dir) >> 3;
ep_regs_t ep_regs = EP_REGS(epnum, dir);
ep_regs[SIZXY] = tu_edpt_packet_size(desc_edpt);
ep_regs[BCTX] |= NAK;
ep_regs[BBAX] = buf_base;
ep_regs[CNF] &= ~(TOGGLE | STALL | DBUF); ep_regs[CNF] |= (UBME | USBIIE);
USBKEYPID = USBKEY;
if(dir == TUSB_DIR_OUT)
{
USBOEPIE |= (1 << epnum);
}
else
{
USBIEPIE |= (1 << epnum);
}
USBKEYPID = 0;
return true;
}
void dcd_edpt_close_all (uint8_t rhport)
{
(void) rhport;
}
bool dcd_edpt_xfer (uint8_t rhport, uint8_t ep_addr, uint8_t * buffer, uint16_t total_bytes)
{
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
uint8_t const dir = tu_edpt_dir(ep_addr);
xfer_ctl_t * xfer = XFER_CTL_BASE(epnum, dir);
xfer->buffer = buffer;
xfer->total_len = total_bytes;
xfer->queued_len = 0;
xfer->short_packet = false;
if(epnum == 0)
{
if(dir == TUSB_DIR_OUT)
{
USBCTL &= ~DIR;
USBOEPCNT_0 &= ~NAK;
}
else
{
USBCTL |= DIR;
USBIEPIFG |= BIT0;
}
}
else
{
ep_regs_t ep_regs = EP_REGS(epnum, dir);
if(dir == TUSB_DIR_OUT)
{
ep_regs[BCTX] &= ~NAK;
}
else
{
USBIEPIFG |= (1 << epnum);
}
}
return true;
}
#if 0#endif
void dcd_edpt_stall (uint8_t rhport, uint8_t ep_addr)
{
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
uint8_t const dir = tu_edpt_dir(ep_addr);
if(epnum == 0)
{
if(dir == TUSB_DIR_OUT)
{
USBOEPCNT_0 |= NAK;
USBOEPCNF_0 |= STALL;
}
else
{
USBIEPCNT_0 |= NAK;
USBIEPCNF_0 |= STALL;
}
}
else
{
ep_regs_t ep_regs = EP_REGS(epnum, dir);
ep_regs[CNF] |= STALL;
}
}
void dcd_edpt_clear_stall (uint8_t rhport, uint8_t ep_addr)
{
(void) rhport;
uint8_t const epnum = tu_edpt_number(ep_addr);
uint8_t const dir = tu_edpt_dir(ep_addr);
if(epnum == 0)
{
if(dir == TUSB_DIR_OUT)
{
USBOEPCNF_0 &= ~STALL;
}
else
{
USBIEPCNF_0 &= ~STALL;
}
}
else
{
ep_regs_t ep_regs = EP_REGS(epnum, dir);
ep_regs[CNF] &= ~(STALL + TOGGLE);
}
}
void dcd_edpt0_status_complete(uint8_t rhport, tusb_control_request_t const * request)
{
(void) rhport;
(void) request;
}
static void receive_packet(uint8_t ep_num)
{
xfer_ctl_t * xfer = XFER_CTL_BASE(ep_num, TUSB_DIR_OUT);
ep_regs_t ep_regs = EP_REGS(ep_num, TUSB_DIR_OUT);
uint8_t xfer_size;
if(ep_num == 0)
{
xfer_size = USBOEPCNT_0 & 0x0F;
}
else
{
xfer_size = ep_regs[BCTX] & 0x7F;
}
uint16_t remaining = xfer->total_len - xfer->queued_len;
uint16_t to_recv_size;
if(remaining <= xfer->max_size) {
to_recv_size = (xfer_size > remaining) ? remaining : xfer_size;
} else {
to_recv_size = (xfer_size > xfer->max_size) ? xfer->max_size : xfer_size;
}
#if 0#endif
{
uint8_t * base = (xfer->buffer + xfer->queued_len);
if(ep_num == 0)
{
volatile uint8_t * ep0out_buf = &USBOEP0BUF;
for(uint16_t i = 0; i < to_recv_size; i++)
{
base[i] = ep0out_buf[i];
}
}
else
{
volatile uint8_t * ep_buf = &USBSTABUFF + (ep_regs[BBAX] << 3);
for(uint16_t i = 0; i < to_recv_size ; i++)
{
base[i] = ep_buf[i];
}
}
}
xfer->queued_len += xfer_size;
xfer->short_packet = (xfer_size < xfer->max_size);
if((xfer->total_len == xfer->queued_len) || xfer->short_packet)
{
dcd_event_xfer_complete(0, ep_num, xfer->queued_len, XFER_RESULT_SUCCESS, true);
}
else
{
if(ep_num == 0)
{
USBOEPCNT_0 &= ~NAK;
}
else
{
ep_regs[BCTX] &= ~NAK;
}
}
}
static void transmit_packet(uint8_t ep_num)
{
xfer_ctl_t * xfer = XFER_CTL_BASE(ep_num, TUSB_DIR_IN);
bool zlp = (xfer->total_len == 0); if((!zlp && (xfer->total_len == xfer->queued_len)) || xfer->short_packet)
{
dcd_event_xfer_complete(0, ep_num | TUSB_DIR_IN_MASK, xfer->queued_len, XFER_RESULT_SUCCESS, true);
return;
}
uint8_t * base = (xfer->buffer + xfer->queued_len);
uint16_t remaining = xfer->total_len - xfer->queued_len;
uint8_t xfer_size = (xfer->max_size < xfer->total_len) ? xfer->max_size : remaining;
xfer->queued_len += xfer_size;
if(xfer_size < xfer->max_size)
{
xfer->short_packet = true;
}
if(ep_num == 0)
{
volatile uint8_t * ep0in_buf = &USBIEP0BUF;
for(uint16_t i = 0; i < xfer_size; i++)
{
ep0in_buf[i] = base[i];
}
USBIEPCNT_0 = (USBIEPCNT_0 & 0xF0) + xfer_size;
USBIEPCNT_0 &= ~NAK;
}
else
{
ep_regs_t ep_regs = EP_REGS(ep_num, TUSB_DIR_IN);
volatile uint8_t * ep_buf = &USBSTABUFF + (ep_regs[BBAX] << 3);
#if 0#endif
{
for(int i = 0; i < xfer_size; i++)
{
ep_buf[i] = base[i];
}
}
ep_regs[BCTX] = (ep_regs[BCTX] & 0x80) + (xfer_size & 0x7F);
ep_regs[BCTX] &= ~NAK;
}
}
static void handle_setup_packet(void)
{
volatile uint8_t * setup_buf = &USBSUBLK;
for(int i = 0; i < 8; i++)
{
_setup_packet[i] = setup_buf[i];
}
USBIEPCNT_0 |= NAK;
USBOEPCNT_0 |= NAK;
dcd_event_setup_received(0, (uint8_t*) &_setup_packet[0], true);
}
void dcd_int_handler(uint8_t rhport)
{
(void) rhport;
uint8_t setup_status = USBIFG & SETUPIFG;
if(setup_status)
{
handle_setup_packet();
}
uint16_t curr_vector = USBVECINT;
switch(curr_vector)
{
case USBVECINT_RSTR:
bus_reset();
dcd_event_bus_reset(0, TUSB_SPEED_FULL, true);
break;
case USBVECINT_SETUP_PACKET_RECEIVED:
break;
case USBVECINT_INPUT_ENDPOINT0:
transmit_packet(0);
break;
case USBVECINT_OUTPUT_ENDPOINT0:
receive_packet(0);
break;
case USBVECINT_INPUT_ENDPOINT1:
case USBVECINT_INPUT_ENDPOINT2:
case USBVECINT_INPUT_ENDPOINT3:
case USBVECINT_INPUT_ENDPOINT4:
case USBVECINT_INPUT_ENDPOINT5:
case USBVECINT_INPUT_ENDPOINT6:
case USBVECINT_INPUT_ENDPOINT7:
{
uint8_t ep = ((curr_vector - USBVECINT_INPUT_ENDPOINT1) >> 1) + 1;
transmit_packet(ep);
}
break;
case USBVECINT_OUTPUT_ENDPOINT1:
case USBVECINT_OUTPUT_ENDPOINT2:
case USBVECINT_OUTPUT_ENDPOINT3:
case USBVECINT_OUTPUT_ENDPOINT4:
case USBVECINT_OUTPUT_ENDPOINT5:
case USBVECINT_OUTPUT_ENDPOINT6:
case USBVECINT_OUTPUT_ENDPOINT7:
{
uint8_t ep = ((curr_vector - USBVECINT_OUTPUT_ENDPOINT1) >> 1) + 1;
receive_packet(ep);
}
break;
default:
while(true);
break;
}
}
#endif