return tin_parent_rate / 16;
}
-#define NS_IN_HZ (1000000000UL)
+#define NS_IN_SEC 1000000000UL
int pwm_config(int pwm_id, int duty_ns, int period_ns)
{
unsigned int offset;
unsigned long tin_rate;
unsigned long tin_ns;
- unsigned long period;
+ unsigned long frequency;
unsigned long tcon;
unsigned long tcnt;
unsigned long tcmp;
* fact that anything faster than 1GHz is easily representable
* by 32bits.
*/
- if (period_ns > NS_IN_HZ || duty_ns > NS_IN_HZ)
+ if (period_ns > NS_IN_SEC || duty_ns > NS_IN_SEC || period_ns == 0)
return -ERANGE;
if (duty_ns > period_ns)
return -EINVAL;
- period = NS_IN_HZ / period_ns;
+ frequency = NS_IN_SEC / period_ns;
/* Check to see if we are changing the clock rate of the PWM */
- tin_rate = pwm_calc_tin(pwm_id, period);
+ tin_rate = pwm_calc_tin(pwm_id, frequency);
- tin_ns = NS_IN_HZ / tin_rate;
+ tin_ns = NS_IN_SEC / tin_rate;
tcnt = period_ns / tin_ns;
/* Note, counters count down */
tcmp = duty_ns / tin_ns;
tcmp = tcnt - tcmp;
- /*
- * the pwm hw only checks the compare register after a decrement,
- * so the pin never toggles if tcmp = tcnt
- */
- if (tcmp == tcnt)
- tcmp--;
-
- if (tcmp < 0)
- tcmp = 0;
-
/* Update the PWM register block. */
offset = pwm_id * 3;
if (pwm_id < 4) {