clockevents/drivers/efm32: Migrate to new 'set-state' interface
Migrate efm32 driver to the new 'set-state' interface provided by clockevents core, the earlier 'set-mode' interface is marked obsolete now. This also enables us to implement callbacks for new states of clockevent devices, for example: ONESHOT_STOPPED. There is nothing to be done for resume state and so isn't implemented. Cc: Uwe Kleine-König <kernel@pengutronix.de> Signed-off-by: Viresh Kumar <viresh.kumar@linaro.org> Signed-off-by: Daniel Lezcano <daniel.lezcano@linaro.org>
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1 changed files with 32 additions and 28 deletions
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@ -48,40 +48,42 @@ struct efm32_clock_event_ddata {
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unsigned periodic_top;
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};
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static void efm32_clock_event_set_mode(enum clock_event_mode mode,
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struct clock_event_device *evtdev)
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static int efm32_clock_event_shutdown(struct clock_event_device *evtdev)
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{
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struct efm32_clock_event_ddata *ddata =
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container_of(evtdev, struct efm32_clock_event_ddata, evtdev);
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switch (mode) {
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case CLOCK_EVT_MODE_PERIODIC:
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writel_relaxed(TIMERn_CMD_STOP, ddata->base + TIMERn_CMD);
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writel_relaxed(ddata->periodic_top, ddata->base + TIMERn_TOP);
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writel_relaxed(TIMERn_CTRL_PRESC_1024 |
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TIMERn_CTRL_CLKSEL_PRESCHFPERCLK |
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TIMERn_CTRL_MODE_DOWN,
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ddata->base + TIMERn_CTRL);
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writel_relaxed(TIMERn_CMD_START, ddata->base + TIMERn_CMD);
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break;
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writel_relaxed(TIMERn_CMD_STOP, ddata->base + TIMERn_CMD);
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return 0;
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}
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case CLOCK_EVT_MODE_ONESHOT:
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writel_relaxed(TIMERn_CMD_STOP, ddata->base + TIMERn_CMD);
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writel_relaxed(TIMERn_CTRL_PRESC_1024 |
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TIMERn_CTRL_CLKSEL_PRESCHFPERCLK |
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TIMERn_CTRL_OSMEN |
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TIMERn_CTRL_MODE_DOWN,
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ddata->base + TIMERn_CTRL);
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break;
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static int efm32_clock_event_set_oneshot(struct clock_event_device *evtdev)
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{
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struct efm32_clock_event_ddata *ddata =
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container_of(evtdev, struct efm32_clock_event_ddata, evtdev);
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case CLOCK_EVT_MODE_UNUSED:
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case CLOCK_EVT_MODE_SHUTDOWN:
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writel_relaxed(TIMERn_CMD_STOP, ddata->base + TIMERn_CMD);
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break;
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writel_relaxed(TIMERn_CMD_STOP, ddata->base + TIMERn_CMD);
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writel_relaxed(TIMERn_CTRL_PRESC_1024 |
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TIMERn_CTRL_CLKSEL_PRESCHFPERCLK |
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TIMERn_CTRL_OSMEN |
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TIMERn_CTRL_MODE_DOWN,
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ddata->base + TIMERn_CTRL);
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return 0;
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}
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case CLOCK_EVT_MODE_RESUME:
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break;
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}
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static int efm32_clock_event_set_periodic(struct clock_event_device *evtdev)
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{
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struct efm32_clock_event_ddata *ddata =
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container_of(evtdev, struct efm32_clock_event_ddata, evtdev);
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writel_relaxed(TIMERn_CMD_STOP, ddata->base + TIMERn_CMD);
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writel_relaxed(ddata->periodic_top, ddata->base + TIMERn_TOP);
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writel_relaxed(TIMERn_CTRL_PRESC_1024 |
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TIMERn_CTRL_CLKSEL_PRESCHFPERCLK |
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TIMERn_CTRL_MODE_DOWN,
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ddata->base + TIMERn_CTRL);
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writel_relaxed(TIMERn_CMD_START, ddata->base + TIMERn_CMD);
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return 0;
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}
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static int efm32_clock_event_set_next_event(unsigned long evt,
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@ -112,7 +114,9 @@ static struct efm32_clock_event_ddata clock_event_ddata = {
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.evtdev = {
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.name = "efm32 clockevent",
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.features = CLOCK_EVT_FEAT_ONESHOT | CLOCK_EVT_FEAT_PERIODIC,
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.set_mode = efm32_clock_event_set_mode,
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.set_state_shutdown = efm32_clock_event_shutdown,
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.set_state_periodic = efm32_clock_event_set_periodic,
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.set_state_oneshot = efm32_clock_event_set_oneshot,
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.set_next_event = efm32_clock_event_set_next_event,
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.rating = 200,
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},
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