Commit fe1b5e87 authored by Trent Piepho's avatar Trent Piepho Committed by Jaroslav Kysela

[ALSA] ad1848: simplify MCE down code

The polling loop to check for ACI to go down was more convoluted than it
needed to be.  New loop should be more efficient and it is a lot simpler.  The
old loop checked for a timeout before checking for ACI down, which could
result in an erroneous timeout.  It's only a failure if the timeout expires
_and_ ACI is still high.  There is nothing wrong with the timeout expiring
while the task is sleeping if ACI went low.
A polling loop to check for the device to leaving INIT mode is removed.  The
device must have already left init for the previous ACI loop to have finished.
Acked-by: default avatarRene Herman <rene.herman@gmail.com>
Signed-off-by: default avatarTrent Piepho <xyzzy@speakeasy.org>
Signed-off-by: default avatarTakashi Iwai <tiwai@suse.de>
Signed-off-by: default avatarJaroslav Kysela <perex@suse.cz>
parent b438f817
......@@ -203,9 +203,8 @@ static void snd_ad1848_mce_up(struct snd_ad1848 *chip)
static void snd_ad1848_mce_down(struct snd_ad1848 *chip)
{
unsigned long flags;
int timeout;
unsigned long end_time;
unsigned long flags, timeout;
int reg;
spin_lock_irqsave(&chip->reg_lock, flags);
for (timeout = 5; timeout > 0; timeout--)
......@@ -222,50 +221,36 @@ static void snd_ad1848_mce_down(struct snd_ad1848 *chip)
#endif
chip->mce_bit &= ~AD1848_MCE;
timeout = inb(AD1848P(chip, REGSEL));
outb(chip->mce_bit | (timeout & 0x1f), AD1848P(chip, REGSEL));
if (timeout == 0x80)
reg = inb(AD1848P(chip, REGSEL));
outb(chip->mce_bit | (reg & 0x1f), AD1848P(chip, REGSEL));
if (reg == 0x80)
snd_printk(KERN_WARNING "mce_down [0x%lx]: serious init problem - codec still busy\n", chip->port);
if ((timeout & AD1848_MCE) == 0) {
if ((reg & AD1848_MCE) == 0) {
spin_unlock_irqrestore(&chip->reg_lock, flags);
return;
}
/*
* Wait for (possible -- during init auto-calibration may not be set)
* calibration process to start. Needs upto 5 sample periods on AD1848
* which at the slowest possible rate of 5.5125 kHz means 907 us.
* Wait for auto-calibration (AC) process to finish, i.e. ACI to go low.
* It may take up to 5 sample periods (at most 907 us @ 5.5125 kHz) for
* the process to _start_, so it is important to wait at least that long
* before checking. Otherwise we might think AC has finished when it
* has in fact not begun. It could take 128 (no AC) or 384 (AC) cycles
* for ACI to drop. This gives a wait of at most 70 ms with a more
* typical value of 3-9 ms.
*/
spin_unlock_irqrestore(&chip->reg_lock, flags);
msleep(1);
spin_lock_irqsave(&chip->reg_lock, flags);
snd_printdd("(2) jiffies = %lu\n", jiffies);
end_time = jiffies + msecs_to_jiffies(250);
while (snd_ad1848_in(chip, AD1848_TEST_INIT) & AD1848_CALIB_IN_PROGRESS) {
timeout = jiffies + msecs_to_jiffies(250);
do {
spin_unlock_irqrestore(&chip->reg_lock, flags);
if (time_after(jiffies, end_time)) {
snd_printk(KERN_ERR "mce_down - auto calibration time out (2)\n");
return;
}
msleep(1);
spin_lock_irqsave(&chip->reg_lock, flags);
}
snd_printdd("(3) jiffies = %lu\n", jiffies);
end_time = jiffies + msecs_to_jiffies(100);
while (inb(AD1848P(chip, REGSEL)) & AD1848_INIT) {
spin_unlock_irqrestore(&chip->reg_lock, flags);
if (time_after(jiffies, end_time)) {
snd_printk(KERN_ERR "mce_down - auto calibration time out (3)\n");
return;
}
msleep(1);
spin_lock_irqsave(&chip->reg_lock, flags);
}
reg = snd_ad1848_in(chip, AD1848_TEST_INIT) &
AD1848_CALIB_IN_PROGRESS;
} while (reg && time_before(jiffies, timeout));
spin_unlock_irqrestore(&chip->reg_lock, flags);
if (reg)
snd_printk(KERN_ERR
"mce_down - auto calibration time out (2)\n");
snd_printdd("(4) jiffies = %lu\n", jiffies);
snd_printd("mce_down - exit = 0x%x\n", inb(AD1848P(chip, REGSEL)));
......
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