/* Used to keep track of allocated lirc devices */ static DEFINE_IDA(lirc_ida);
/* Only used for sysfs but defined to void otherwise */ staticconststructclass lirc_class = {
.name = "lirc",
};
/** * lirc_raw_event() - Send raw IR data to lirc to be relayed to userspace * * @dev: the struct rc_dev descriptor of the device * @ev: the struct ir_raw_event descriptor of the pulse/space
*/ void lirc_raw_event(struct rc_dev *dev, struct ir_raw_event ev)
{ unsignedlong flags; struct lirc_fh *fh; int sample;
/* Receiver overflow, data missing */ if (ev.overflow) { /* * Send lirc overflow message. This message is unknown to * lircd, but it will interpret this as a long space as * long as the value is set to high value. This resets its * decoder state.
*/
sample = LIRC_OVERFLOW(LIRC_VALUE_MASK);
dev_dbg(&dev->dev, "delivering overflow to lirc_dev\n");
/** * lirc_scancode_event() - Send scancode data to lirc to be relayed to * userspace. This can be called in atomic context. * @dev: the struct rc_dev descriptor of the device * @lsc: the struct lirc_scancode describing the decoded scancode
*/ void lirc_scancode_event(struct rc_dev *dev, struct lirc_scancode *lsc)
{ unsignedlong flags; struct lirc_fh *fh;
if (dev->driver_type == RC_DRIVER_IR_RAW)
kfifo_free(&fh->rawir); if (dev->driver_type != RC_DRIVER_IR_RAW_TX)
kfifo_free(&fh->scancodes);
kfree(fh);
rc_close(dev);
put_device(&dev->dev);
return 0;
}
static ssize_t lirc_transmit(struct file *file, constchar __user *buf,
size_t n, loff_t *ppos)
{ struct lirc_fh *fh = file->private_data; struct rc_dev *dev = fh->rc; unsignedint *txbuf; struct ir_raw_event *raw = NULL;
ssize_t ret;
size_t count;
ktime_t start;
s64 towait; unsignedint duration = 0; /* signal duration in us */ int i;
ret = mutex_lock_interruptible(&dev->lock); if (ret) return ret;
if (!dev->registered) {
ret = -ENODEV; goto out_unlock;
}
if (!dev->tx_ir) {
ret = -EINVAL; goto out_unlock;
}
if (fh->send_mode == LIRC_MODE_SCANCODE) { struct lirc_scancode scan;
if (n != sizeof(scan)) {
ret = -EINVAL; goto out_unlock;
}
if (copy_from_user(&scan, buf, sizeof(scan))) {
ret = -EFAULT; goto out_unlock;
}
if (scan.flags || scan.keycode || scan.timestamp ||
scan.rc_proto > RC_PROTO_MAX) {
ret = -EINVAL; goto out_unlock;
}
/* We only have encoders for 32-bit protocols. */ if (scan.scancode > U32_MAX ||
!rc_validate_scancode(scan.rc_proto, scan.scancode)) {
ret = -EINVAL; goto out_unlock;
}
raw = kmalloc_array(LIRCBUF_SIZE, sizeof(*raw), GFP_KERNEL); if (!raw) {
ret = -ENOMEM; goto out_unlock;
}
ret = ir_raw_encode_scancode(scan.rc_proto, scan.scancode,
raw, LIRCBUF_SIZE); if (ret < 0) goto out_kfree_raw;
/* drop trailing space */ if (!(ret % 2))
count = ret - 1; else
count = ret;
txbuf = kmalloc_array(count, sizeof(unsignedint), GFP_KERNEL); if (!txbuf) {
ret = -ENOMEM; goto out_kfree_raw;
}
for (i = 0; i < count; i++)
txbuf[i] = raw[i].duration;
if (dev->s_tx_carrier) { int carrier = ir_raw_encode_carrier(scan.rc_proto);
if (carrier > 0)
dev->s_tx_carrier(dev, carrier);
}
} else { if (n < sizeof(unsignedint) || n % sizeof(unsignedint)) {
ret = -EINVAL; goto out_unlock;
}
count = n / sizeof(unsignedint); if (count > LIRCBUF_SIZE || count % 2 == 0) {
ret = -EINVAL; goto out_unlock;
}
txbuf = memdup_user(buf, n); if (IS_ERR(txbuf)) {
ret = PTR_ERR(txbuf); goto out_unlock;
}
}
for (i = 0; i < count; i++) { if (txbuf[i] > IR_MAX_DURATION - duration || !txbuf[i]) {
ret = -EINVAL; goto out_kfree;
}
duration += txbuf[i];
}
start = ktime_get();
ret = dev->tx_ir(dev, txbuf, count); if (ret < 0) goto out_kfree;
/* * The lircd gap calculation expects the write function to * wait for the actual IR signal to be transmitted before * returning.
*/
towait = ktime_us_delta(ktime_add_us(start, duration),
ktime_get()); if (towait > 0) {
set_current_state(TASK_INTERRUPTIBLE);
schedule_timeout(usecs_to_jiffies(towait));
}
if (_IOC_DIR(cmd) & _IOC_WRITE) {
ret = get_user(val, argp); if (ret) return ret;
}
ret = mutex_lock_interruptible(&dev->lock); if (ret) return ret;
if (!dev->registered) {
ret = -ENODEV; goto out;
}
switch (cmd) { case LIRC_GET_FEATURES: if (dev->driver_type == RC_DRIVER_SCANCODE)
val |= LIRC_CAN_REC_SCANCODE;
if (dev->driver_type == RC_DRIVER_IR_RAW) {
val |= LIRC_CAN_REC_MODE2; if (dev->rx_resolution)
val |= LIRC_CAN_GET_REC_RESOLUTION;
}
if (dev->tx_ir) {
val |= LIRC_CAN_SEND_PULSE; if (dev->s_tx_mask)
val |= LIRC_CAN_SET_TRANSMITTER_MASK; if (dev->s_tx_carrier)
val |= LIRC_CAN_SET_SEND_CARRIER; if (dev->s_tx_duty_cycle)
val |= LIRC_CAN_SET_SEND_DUTY_CYCLE;
}
if (dev->s_rx_carrier_range)
val |= LIRC_CAN_SET_REC_CARRIER |
LIRC_CAN_SET_REC_CARRIER_RANGE;
if (dev->s_wideband_receiver)
val |= LIRC_CAN_USE_WIDEBAND_RECEIVER;
if (dev->s_carrier_report)
val |= LIRC_CAN_MEASURE_CARRIER;
if (dev->max_timeout)
val |= LIRC_CAN_SET_REC_TIMEOUT;
break;
/* mode support */ case LIRC_GET_REC_MODE: if (dev->driver_type == RC_DRIVER_IR_RAW_TX)
ret = -ENOTTY; else
val = fh->rec_mode; break;
case LIRC_SET_REC_MODE: switch (dev->driver_type) { case RC_DRIVER_IR_RAW_TX:
ret = -ENOTTY; break; case RC_DRIVER_SCANCODE: if (val != LIRC_MODE_SCANCODE)
ret = -EINVAL; break; case RC_DRIVER_IR_RAW: if (!(val == LIRC_MODE_MODE2 ||
val == LIRC_MODE_SCANCODE))
ret = -EINVAL; break;
}
if (!ret)
fh->rec_mode = val; break;
case LIRC_GET_SEND_MODE: if (!dev->tx_ir)
ret = -ENOTTY; else
val = fh->send_mode; break;
case LIRC_SET_SEND_MODE: if (!dev->tx_ir)
ret = -ENOTTY; elseif (!(val == LIRC_MODE_PULSE || val == LIRC_MODE_SCANCODE))
ret = -EINVAL; else
fh->send_mode = val; break;
/* TX settings */ case LIRC_SET_TRANSMITTER_MASK: if (!dev->s_tx_mask)
ret = -ENOTTY; else
ret = dev->s_tx_mask(dev, val); break;
case LIRC_SET_SEND_CARRIER: if (!dev->s_tx_carrier)
ret = -ENOTTY; else
ret = dev->s_tx_carrier(dev, val); break;
case LIRC_SET_SEND_DUTY_CYCLE: if (!dev->s_tx_duty_cycle)
ret = -ENOTTY; elseif (val <= 0 || val >= 100)
ret = -EINVAL; else
ret = dev->s_tx_duty_cycle(dev, val); break;
/* RX settings */ case LIRC_SET_REC_CARRIER: if (!dev->s_rx_carrier_range)
ret = -ENOTTY; elseif (val <= 0)
ret = -EINVAL; else
ret = dev->s_rx_carrier_range(dev, fh->carrier_low,
val); break;
case LIRC_SET_REC_CARRIER_RANGE: if (!dev->s_rx_carrier_range)
ret = -ENOTTY; elseif (val <= 0)
ret = -EINVAL; else
fh->carrier_low = val; break;
case LIRC_GET_REC_RESOLUTION: if (!dev->rx_resolution)
ret = -ENOTTY; else
val = dev->rx_resolution; break;
case LIRC_SET_WIDEBAND_RECEIVER: if (!dev->s_wideband_receiver)
ret = -ENOTTY; else
ret = dev->s_wideband_receiver(dev, !!val); break;
case LIRC_SET_MEASURE_CARRIER_MODE: if (!dev->s_carrier_report)
ret = -ENOTTY; else
ret = dev->s_carrier_report(dev, !!val); break;
/* Generic timeout support */ case LIRC_GET_MIN_TIMEOUT: if (!dev->max_timeout)
ret = -ENOTTY; else
val = dev->min_timeout; break;
case LIRC_GET_MAX_TIMEOUT: if (!dev->max_timeout)
ret = -ENOTTY; else
val = dev->max_timeout; break;
case LIRC_SET_REC_TIMEOUT: if (!dev->max_timeout) {
ret = -ENOTTY;
} else { if (val < dev->min_timeout || val > dev->max_timeout)
ret = -EINVAL; elseif (dev->s_timeout)
ret = dev->s_timeout(dev, val); else
dev->timeout = val;
} break;
case LIRC_GET_REC_TIMEOUT: if (!dev->timeout)
ret = -ENOTTY; else
val = dev->timeout; break;
case LIRC_SET_REC_TIMEOUT_REPORTS: if (dev->driver_type != RC_DRIVER_IR_RAW)
ret = -ENOTTY; break;
default:
ret = -ENOTTY;
}
if (!ret && _IOC_DIR(cmd) & _IOC_READ)
ret = put_user(val, argp);
if (length < sizeof(unsignedint) || length % sizeof(unsignedint)) return -EINVAL;
do { if (kfifo_is_empty(&fh->rawir)) { if (file->f_flags & O_NONBLOCK) return -EAGAIN;
ret = wait_event_interruptible(fh->wait_poll,
!kfifo_is_empty(&fh->rawir) ||
!rcdev->registered); if (ret) return ret;
}
if (!rcdev->registered) return -ENODEV;
ret = mutex_lock_interruptible(&rcdev->lock); if (ret) return ret;
ret = kfifo_to_user(&fh->rawir, buffer, length, &copied);
mutex_unlock(&rcdev->lock); if (ret) return ret;
} while (copied == 0);
do { if (kfifo_is_empty(&fh->scancodes)) { if (file->f_flags & O_NONBLOCK) return -EAGAIN;
ret = wait_event_interruptible(fh->wait_poll,
!kfifo_is_empty(&fh->scancodes) ||
!rcdev->registered); if (ret) return ret;
}
if (!rcdev->registered) return -ENODEV;
ret = mutex_lock_interruptible(&rcdev->lock); if (ret) return ret;
ret = kfifo_to_user(&fh->scancodes, buffer, length, &copied);
mutex_unlock(&rcdev->lock); if (ret) return ret;
} while (copied == 0);
Die Informationen auf dieser Webseite wurden
nach bestem Wissen sorgfältig zusammengestellt. Es wird jedoch weder Vollständigkeit, noch Richtigkeit,
noch Qualität der bereit gestellten Informationen zugesichert.
Bemerkung:
Die farbliche Syntaxdarstellung und die Messung sind noch experimentell.