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@@ -524,9 +524,18 @@ gigaset_tty_open(struct tty_struct *tty)
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cs->hw.ser->tty = tty;
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atomic_set(&cs->hw.ser->refcnt, 1);
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init_completion(&cs->hw.ser->dead_cmp);
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-
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tty->disc_data = cs;
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+ /* Set the amount of data we're willing to receive per call
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+ * from the hardware driver to half of the input buffer size
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+ * to leave some reserve.
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+ * Note: We don't do flow control towards the hardware driver.
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+ * If more data is received than will fit into the input buffer,
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+ * it will be dropped and an error will be logged. This should
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+ * never happen as the device is slow and the buffer size ample.
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+ */
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+ tty->receive_room = RBUFSIZE/2;
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+
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/* OK.. Initialization of the datastructures and the HW is done.. Now
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* startup system and notify the LL that we are ready to run
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*/
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@@ -597,28 +606,6 @@ static int gigaset_tty_hangup(struct tty_struct *tty)
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return 0;
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}
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-/*
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- * Read on the tty.
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- * Unused, received data goes only to the Gigaset driver.
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- */
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-static ssize_t
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-gigaset_tty_read(struct tty_struct *tty, struct file *file,
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- unsigned char __user *buf, size_t count)
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-{
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- return -EAGAIN;
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-}
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-
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-/*
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- * Write on the tty.
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- * Unused, transmit data comes only from the Gigaset driver.
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- */
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-static ssize_t
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-gigaset_tty_write(struct tty_struct *tty, struct file *file,
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- const unsigned char *buf, size_t count)
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-{
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- return -EAGAIN;
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-}
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-
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/*
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* Ioctl on the tty.
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* Called in process context only.
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@@ -752,8 +739,6 @@ static struct tty_ldisc_ops gigaset_ldisc = {
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.open = gigaset_tty_open,
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.close = gigaset_tty_close,
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.hangup = gigaset_tty_hangup,
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- .read = gigaset_tty_read,
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- .write = gigaset_tty_write,
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.ioctl = gigaset_tty_ioctl,
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.receive_buf = gigaset_tty_receive,
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.write_wakeup = gigaset_tty_wakeup,
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