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rtc: stm32: add STM32H7 RTC support
This patch adds support for STM32H7 RTC. On STM32H7, the RTC bus interface clock (APB clock) needs to be enabled. Signed-off-by: Amelie Delaunay <amelie.delaunay@st.com> Signed-off-by: Alexandre Belloni <alexandre.belloni@free-electrons.com>
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d2be279bcd
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@ -94,11 +94,17 @@
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/* STM32_PWR_CR bit field */
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#define PWR_CR_DBP BIT(8)
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struct stm32_rtc_data {
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bool has_pclk;
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};
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struct stm32_rtc {
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struct rtc_device *rtc_dev;
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void __iomem *base;
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struct regmap *dbp;
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struct clk *ck_rtc;
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struct stm32_rtc_data *data;
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struct clk *pclk;
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struct clk *rtc_ck;
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int irq_alarm;
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};
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@ -122,9 +128,9 @@ static int stm32_rtc_enter_init_mode(struct stm32_rtc *rtc)
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writel_relaxed(isr, rtc->base + STM32_RTC_ISR);
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/*
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* It takes around 2 ck_rtc clock cycles to enter in
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* It takes around 2 rtc_ck clock cycles to enter in
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* initialization phase mode (and have INITF flag set). As
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* slowest ck_rtc frequency may be 32kHz and highest should be
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* slowest rtc_ck frequency may be 32kHz and highest should be
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* 1MHz, we poll every 10 us with a timeout of 100ms.
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*/
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return readl_relaxed_poll_timeout_atomic(
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@ -153,7 +159,7 @@ static int stm32_rtc_wait_sync(struct stm32_rtc *rtc)
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/*
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* Wait for RSF to be set to ensure the calendar registers are
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* synchronised, it takes around 2 ck_rtc clock cycles
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* synchronised, it takes around 2 rtc_ck clock cycles
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*/
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return readl_relaxed_poll_timeout_atomic(rtc->base + STM32_RTC_ISR,
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isr,
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@ -456,7 +462,7 @@ static int stm32_rtc_set_alarm(struct device *dev, struct rtc_wkalrm *alrm)
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/*
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* Poll Alarm write flag to be sure that Alarm update is allowed: it
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* takes around 2 ck_rtc clock cycles
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* takes around 2 rtc_ck clock cycles
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*/
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ret = readl_relaxed_poll_timeout_atomic(rtc->base + STM32_RTC_ISR,
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isr,
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@ -490,8 +496,17 @@ static const struct rtc_class_ops stm32_rtc_ops = {
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.alarm_irq_enable = stm32_rtc_alarm_irq_enable,
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};
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static const struct stm32_rtc_data stm32_rtc_data = {
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.has_pclk = false,
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};
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static const struct stm32_rtc_data stm32h7_rtc_data = {
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.has_pclk = true,
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};
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static const struct of_device_id stm32_rtc_of_match[] = {
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{ .compatible = "st,stm32-rtc" },
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{ .compatible = "st,stm32-rtc", .data = &stm32_rtc_data },
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{ .compatible = "st,stm32h7-rtc", .data = &stm32h7_rtc_data },
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{}
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};
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MODULE_DEVICE_TABLE(of, stm32_rtc_of_match);
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@ -503,7 +518,7 @@ static int stm32_rtc_init(struct platform_device *pdev,
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unsigned int rate;
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int ret = 0;
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rate = clk_get_rate(rtc->ck_rtc);
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rate = clk_get_rate(rtc->rtc_ck);
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/* Find prediv_a and prediv_s to obtain the 1Hz calendar clock */
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pred_a_max = STM32_RTC_PRER_PRED_A >> STM32_RTC_PRER_PRED_A_SHIFT;
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@ -524,7 +539,7 @@ static int stm32_rtc_init(struct platform_device *pdev,
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pred_a = pred_a_max;
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pred_s = (rate / (pred_a + 1)) - 1;
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dev_warn(&pdev->dev, "ck_rtc is %s\n",
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dev_warn(&pdev->dev, "rtc_ck is %s\n",
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(rate < ((pred_a + 1) * (pred_s + 1))) ?
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"fast" : "slow");
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}
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@ -561,6 +576,7 @@ static int stm32_rtc_probe(struct platform_device *pdev)
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{
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struct stm32_rtc *rtc;
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struct resource *res;
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const struct of_device_id *match;
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int ret;
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rtc = devm_kzalloc(&pdev->dev, sizeof(*rtc), GFP_KERNEL);
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@ -579,15 +595,34 @@ static int stm32_rtc_probe(struct platform_device *pdev)
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return PTR_ERR(rtc->dbp);
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}
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rtc->ck_rtc = devm_clk_get(&pdev->dev, NULL);
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if (IS_ERR(rtc->ck_rtc)) {
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dev_err(&pdev->dev, "no ck_rtc clock");
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return PTR_ERR(rtc->ck_rtc);
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match = of_match_device(stm32_rtc_of_match, &pdev->dev);
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rtc->data = (struct stm32_rtc_data *)match->data;
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if (!rtc->data->has_pclk) {
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rtc->pclk = NULL;
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rtc->rtc_ck = devm_clk_get(&pdev->dev, NULL);
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} else {
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rtc->pclk = devm_clk_get(&pdev->dev, "pclk");
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if (IS_ERR(rtc->pclk)) {
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dev_err(&pdev->dev, "no pclk clock");
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return PTR_ERR(rtc->pclk);
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}
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rtc->rtc_ck = devm_clk_get(&pdev->dev, "rtc_ck");
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}
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if (IS_ERR(rtc->rtc_ck)) {
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dev_err(&pdev->dev, "no rtc_ck clock");
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return PTR_ERR(rtc->rtc_ck);
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}
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ret = clk_prepare_enable(rtc->ck_rtc);
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if (rtc->data->has_pclk) {
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ret = clk_prepare_enable(rtc->pclk);
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if (ret)
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return ret;
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}
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ret = clk_prepare_enable(rtc->rtc_ck);
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if (ret)
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return ret;
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goto err;
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regmap_update_bits(rtc->dbp, PWR_CR, PWR_CR_DBP, PWR_CR_DBP);
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@ -595,7 +630,7 @@ static int stm32_rtc_probe(struct platform_device *pdev)
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* After a system reset, RTC_ISR.INITS flag can be read to check if
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* the calendar has been initalized or not. INITS flag is reset by a
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* power-on reset (no vbat, no power-supply). It is not reset if
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* ck_rtc parent clock has changed (so RTC prescalers need to be
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* rtc_ck parent clock has changed (so RTC prescalers need to be
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* changed). That's why we cannot rely on this flag to know if RTC
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* init has to be done.
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*/
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@ -646,7 +681,9 @@ static int stm32_rtc_probe(struct platform_device *pdev)
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return 0;
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err:
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clk_disable_unprepare(rtc->ck_rtc);
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if (rtc->data->has_pclk)
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clk_disable_unprepare(rtc->pclk);
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clk_disable_unprepare(rtc->rtc_ck);
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regmap_update_bits(rtc->dbp, PWR_CR, PWR_CR_DBP, 0);
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@ -667,7 +704,9 @@ static int stm32_rtc_remove(struct platform_device *pdev)
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writel_relaxed(cr, rtc->base + STM32_RTC_CR);
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stm32_rtc_wpr_lock(rtc);
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clk_disable_unprepare(rtc->ck_rtc);
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clk_disable_unprepare(rtc->rtc_ck);
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if (rtc->data->has_pclk)
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clk_disable_unprepare(rtc->pclk);
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/* Enable backup domain write protection */
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regmap_update_bits(rtc->dbp, PWR_CR, PWR_CR_DBP, 0);
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@ -682,6 +721,9 @@ static int stm32_rtc_suspend(struct device *dev)
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{
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struct stm32_rtc *rtc = dev_get_drvdata(dev);
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if (rtc->data->has_pclk)
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clk_disable_unprepare(rtc->pclk);
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if (device_may_wakeup(dev))
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return enable_irq_wake(rtc->irq_alarm);
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@ -693,6 +735,12 @@ static int stm32_rtc_resume(struct device *dev)
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struct stm32_rtc *rtc = dev_get_drvdata(dev);
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int ret = 0;
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if (rtc->data->has_pclk) {
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ret = clk_prepare_enable(rtc->pclk);
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if (ret)
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return ret;
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}
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ret = stm32_rtc_wait_sync(rtc);
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if (ret < 0)
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return ret;
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