xref: /openbmc/linux/drivers/clk/sunxi/clk-mod0.c (revision 9919d44ff2977d4da709282fa0ebedddaa3b8d85)
1992a56e4SMaxime Ripard /*
2992a56e4SMaxime Ripard  * Copyright 2013 Emilio López
3992a56e4SMaxime Ripard  *
4992a56e4SMaxime Ripard  * Emilio López <emilio@elopez.com.ar>
5992a56e4SMaxime Ripard  *
6992a56e4SMaxime Ripard  * This program is free software; you can redistribute it and/or modify
7992a56e4SMaxime Ripard  * it under the terms of the GNU General Public License as published by
8992a56e4SMaxime Ripard  * the Free Software Foundation; either version 2 of the License, or
9992a56e4SMaxime Ripard  * (at your option) any later version.
10992a56e4SMaxime Ripard  *
11992a56e4SMaxime Ripard  * This program is distributed in the hope that it will be useful,
12992a56e4SMaxime Ripard  * but WITHOUT ANY WARRANTY; without even the implied warranty of
13992a56e4SMaxime Ripard  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
14992a56e4SMaxime Ripard  * GNU General Public License for more details.
15992a56e4SMaxime Ripard  */
16992a56e4SMaxime Ripard 
179dfefe8cSStephen Boyd #include <linux/clk.h>
18992a56e4SMaxime Ripard #include <linux/clk-provider.h>
1937e1041fSMaxime Ripard #include <linux/of_address.h>
206ea3953dSHans de Goede #include <linux/platform_device.h>
219dfefe8cSStephen Boyd #include <linux/slab.h>
22992a56e4SMaxime Ripard 
23992a56e4SMaxime Ripard #include "clk-factors.h"
24992a56e4SMaxime Ripard 
25992a56e4SMaxime Ripard /**
2635b1fc2cSJulia Lawall  * sun4i_a10_get_mod0_factors() - calculates m, n factors for MOD0-style clocks
27992a56e4SMaxime Ripard  * MOD0 rate is calculated as follows
28992a56e4SMaxime Ripard  * rate = (parent_rate >> p) / (m + 1);
29992a56e4SMaxime Ripard  */
30992a56e4SMaxime Ripard 
31cfa63688SChen-Yu Tsai static void sun4i_a10_get_mod0_factors(struct factors_request *req)
32992a56e4SMaxime Ripard {
33992a56e4SMaxime Ripard 	u8 div, calcm, calcp;
34992a56e4SMaxime Ripard 
35992a56e4SMaxime Ripard 	/* These clocks can only divide, so we will never be able to achieve
36992a56e4SMaxime Ripard 	 * frequencies higher than the parent frequency */
37cfa63688SChen-Yu Tsai 	if (req->rate > req->parent_rate)
38cfa63688SChen-Yu Tsai 		req->rate = req->parent_rate;
39992a56e4SMaxime Ripard 
40cfa63688SChen-Yu Tsai 	div = DIV_ROUND_UP(req->parent_rate, req->rate);
41992a56e4SMaxime Ripard 
42992a56e4SMaxime Ripard 	if (div < 16)
43992a56e4SMaxime Ripard 		calcp = 0;
44992a56e4SMaxime Ripard 	else if (div / 2 < 16)
45992a56e4SMaxime Ripard 		calcp = 1;
46992a56e4SMaxime Ripard 	else if (div / 4 < 16)
47992a56e4SMaxime Ripard 		calcp = 2;
48992a56e4SMaxime Ripard 	else
49992a56e4SMaxime Ripard 		calcp = 3;
50992a56e4SMaxime Ripard 
51992a56e4SMaxime Ripard 	calcm = DIV_ROUND_UP(div, 1 << calcp);
52992a56e4SMaxime Ripard 
53cfa63688SChen-Yu Tsai 	req->rate = (req->parent_rate >> calcp) / calcm;
54cfa63688SChen-Yu Tsai 	req->m = calcm - 1;
55cfa63688SChen-Yu Tsai 	req->p = calcp;
56992a56e4SMaxime Ripard }
57992a56e4SMaxime Ripard 
58992a56e4SMaxime Ripard /* user manual says "n" but it's really "p" */
59b3e919e0SChen-Yu Tsai static const struct clk_factors_config sun4i_a10_mod0_config = {
60992a56e4SMaxime Ripard 	.mshift = 0,
61992a56e4SMaxime Ripard 	.mwidth = 4,
62992a56e4SMaxime Ripard 	.pshift = 16,
63992a56e4SMaxime Ripard 	.pwidth = 2,
64992a56e4SMaxime Ripard };
65992a56e4SMaxime Ripard 
666ea3953dSHans de Goede static const struct factors_data sun4i_a10_mod0_data = {
67992a56e4SMaxime Ripard 	.enable = 31,
68992a56e4SMaxime Ripard 	.mux = 24,
69e94f8cb3SChen-Yu Tsai 	.muxmask = BIT(1) | BIT(0),
70992a56e4SMaxime Ripard 	.table = &sun4i_a10_mod0_config,
71992a56e4SMaxime Ripard 	.getter = sun4i_a10_get_mod0_factors,
72992a56e4SMaxime Ripard };
73992a56e4SMaxime Ripard 
74992a56e4SMaxime Ripard static DEFINE_SPINLOCK(sun4i_a10_mod0_lock);
75992a56e4SMaxime Ripard 
76992a56e4SMaxime Ripard static void __init sun4i_a10_mod0_setup(struct device_node *node)
77992a56e4SMaxime Ripard {
787c74c220SHans de Goede 	void __iomem *reg;
797c74c220SHans de Goede 
807c74c220SHans de Goede 	reg = of_iomap(node, 0);
817c74c220SHans de Goede 	if (!reg) {
826ea3953dSHans de Goede 		/*
836ea3953dSHans de Goede 		 * This happens with mod0 clk nodes instantiated through
846ea3953dSHans de Goede 		 * mfd, as those do not have their resources assigned at
856ea3953dSHans de Goede 		 * CLK_OF_DECLARE time yet, so do not print an error.
866ea3953dSHans de Goede 		 */
877c74c220SHans de Goede 		return;
887c74c220SHans de Goede 	}
897c74c220SHans de Goede 
907c74c220SHans de Goede 	sunxi_factors_register(node, &sun4i_a10_mod0_data,
917c74c220SHans de Goede 			       &sun4i_a10_mod0_lock, reg);
92992a56e4SMaxime Ripard }
93cb1291c3SRicardo Ribalda Delgado CLK_OF_DECLARE_DRIVER(sun4i_a10_mod0, "allwinner,sun4i-a10-mod0-clk",
94cb1291c3SRicardo Ribalda Delgado 		      sun4i_a10_mod0_setup);
95eaa18f5dSMaxime Ripard 
966ea3953dSHans de Goede static int sun4i_a10_mod0_clk_probe(struct platform_device *pdev)
976ea3953dSHans de Goede {
986ea3953dSHans de Goede 	struct device_node *np = pdev->dev.of_node;
996ea3953dSHans de Goede 	struct resource *r;
1006ea3953dSHans de Goede 	void __iomem *reg;
1016ea3953dSHans de Goede 
1026ea3953dSHans de Goede 	if (!np)
1036ea3953dSHans de Goede 		return -ENODEV;
1046ea3953dSHans de Goede 
1056ea3953dSHans de Goede 	r = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1066ea3953dSHans de Goede 	reg = devm_ioremap_resource(&pdev->dev, r);
1076ea3953dSHans de Goede 	if (IS_ERR(reg))
1086ea3953dSHans de Goede 		return PTR_ERR(reg);
1096ea3953dSHans de Goede 
1106ea3953dSHans de Goede 	sunxi_factors_register(np, &sun4i_a10_mod0_data,
1116ea3953dSHans de Goede 			       &sun4i_a10_mod0_lock, reg);
1126ea3953dSHans de Goede 	return 0;
1136ea3953dSHans de Goede }
1146ea3953dSHans de Goede 
1156ea3953dSHans de Goede static const struct of_device_id sun4i_a10_mod0_clk_dt_ids[] = {
1166ea3953dSHans de Goede 	{ .compatible = "allwinner,sun4i-a10-mod0-clk" },
1176ea3953dSHans de Goede 	{ /* sentinel */ }
1186ea3953dSHans de Goede };
1196ea3953dSHans de Goede 
1206ea3953dSHans de Goede static struct platform_driver sun4i_a10_mod0_clk_driver = {
1216ea3953dSHans de Goede 	.driver = {
1226ea3953dSHans de Goede 		.name = "sun4i-a10-mod0-clk",
1236ea3953dSHans de Goede 		.of_match_table = sun4i_a10_mod0_clk_dt_ids,
1246ea3953dSHans de Goede 	},
1256ea3953dSHans de Goede 	.probe = sun4i_a10_mod0_clk_probe,
1266ea3953dSHans de Goede };
12777459a0fSPaul Gortmaker builtin_platform_driver(sun4i_a10_mod0_clk_driver);
1286ea3953dSHans de Goede 
12961af4d8dSChen-Yu Tsai static const struct factors_data sun9i_a80_mod0_data __initconst = {
13061af4d8dSChen-Yu Tsai 	.enable = 31,
13161af4d8dSChen-Yu Tsai 	.mux = 24,
13261af4d8dSChen-Yu Tsai 	.muxmask = BIT(3) | BIT(2) | BIT(1) | BIT(0),
13361af4d8dSChen-Yu Tsai 	.table = &sun4i_a10_mod0_config,
13461af4d8dSChen-Yu Tsai 	.getter = sun4i_a10_get_mod0_factors,
13561af4d8dSChen-Yu Tsai };
13661af4d8dSChen-Yu Tsai 
13761af4d8dSChen-Yu Tsai static void __init sun9i_a80_mod0_setup(struct device_node *node)
13861af4d8dSChen-Yu Tsai {
13961af4d8dSChen-Yu Tsai 	void __iomem *reg;
14061af4d8dSChen-Yu Tsai 
14161af4d8dSChen-Yu Tsai 	reg = of_io_request_and_map(node, 0, of_node_full_name(node));
14261af4d8dSChen-Yu Tsai 	if (IS_ERR(reg)) {
14361af4d8dSChen-Yu Tsai 		pr_err("Could not get registers for mod0-clk: %s\n",
14461af4d8dSChen-Yu Tsai 		       node->name);
14561af4d8dSChen-Yu Tsai 		return;
14661af4d8dSChen-Yu Tsai 	}
14761af4d8dSChen-Yu Tsai 
14861af4d8dSChen-Yu Tsai 	sunxi_factors_register(node, &sun9i_a80_mod0_data,
14961af4d8dSChen-Yu Tsai 			       &sun4i_a10_mod0_lock, reg);
15061af4d8dSChen-Yu Tsai }
15161af4d8dSChen-Yu Tsai CLK_OF_DECLARE(sun9i_a80_mod0, "allwinner,sun9i-a80-mod0-clk", sun9i_a80_mod0_setup);
15261af4d8dSChen-Yu Tsai 
153eaa18f5dSMaxime Ripard static DEFINE_SPINLOCK(sun5i_a13_mbus_lock);
154eaa18f5dSMaxime Ripard 
155eaa18f5dSMaxime Ripard static void __init sun5i_a13_mbus_setup(struct device_node *node)
156eaa18f5dSMaxime Ripard {
1577c74c220SHans de Goede 	void __iomem *reg;
1587c74c220SHans de Goede 
1597c74c220SHans de Goede 	reg = of_iomap(node, 0);
1607c74c220SHans de Goede 	if (!reg) {
1617c74c220SHans de Goede 		pr_err("Could not get registers for a13-mbus-clk\n");
1627c74c220SHans de Goede 		return;
1637c74c220SHans de Goede 	}
1647c74c220SHans de Goede 
165eaa18f5dSMaxime Ripard 	/* The MBUS clocks needs to be always enabled */
166*9919d44fSStephen Boyd 	sunxi_factors_register_critical(node, &sun4i_a10_mod0_data,
167*9919d44fSStephen Boyd 					&sun5i_a13_mbus_lock, reg);
168eaa18f5dSMaxime Ripard }
169eaa18f5dSMaxime Ripard CLK_OF_DECLARE(sun5i_a13_mbus, "allwinner,sun5i-a13-mbus-clk", sun5i_a13_mbus_setup);
17037e1041fSMaxime Ripard 
17137e1041fSMaxime Ripard struct mmc_phase {
17237e1041fSMaxime Ripard 	struct clk_hw		hw;
1736b0b8ccfSMaxime Ripard 	u8			offset;
17437e1041fSMaxime Ripard 	void __iomem		*reg;
17537e1041fSMaxime Ripard 	spinlock_t		*lock;
17637e1041fSMaxime Ripard };
17737e1041fSMaxime Ripard 
17837e1041fSMaxime Ripard #define to_mmc_phase(_hw) container_of(_hw, struct mmc_phase, hw)
17937e1041fSMaxime Ripard 
18037e1041fSMaxime Ripard static int mmc_get_phase(struct clk_hw *hw)
18137e1041fSMaxime Ripard {
18237e1041fSMaxime Ripard 	struct clk *mmc, *mmc_parent, *clk = hw->clk;
18337e1041fSMaxime Ripard 	struct mmc_phase *phase = to_mmc_phase(hw);
18437e1041fSMaxime Ripard 	unsigned int mmc_rate, mmc_parent_rate;
18537e1041fSMaxime Ripard 	u16 step, mmc_div;
18637e1041fSMaxime Ripard 	u32 value;
18737e1041fSMaxime Ripard 	u8 delay;
18837e1041fSMaxime Ripard 
18937e1041fSMaxime Ripard 	value = readl(phase->reg);
1906b0b8ccfSMaxime Ripard 	delay = (value >> phase->offset) & 0x3;
19137e1041fSMaxime Ripard 
19237e1041fSMaxime Ripard 	if (!delay)
19337e1041fSMaxime Ripard 		return 180;
19437e1041fSMaxime Ripard 
19537e1041fSMaxime Ripard 	/* Get the main MMC clock */
19637e1041fSMaxime Ripard 	mmc = clk_get_parent(clk);
19737e1041fSMaxime Ripard 	if (!mmc)
19837e1041fSMaxime Ripard 		return -EINVAL;
19937e1041fSMaxime Ripard 
20037e1041fSMaxime Ripard 	/* And its rate */
20137e1041fSMaxime Ripard 	mmc_rate = clk_get_rate(mmc);
20237e1041fSMaxime Ripard 	if (!mmc_rate)
20337e1041fSMaxime Ripard 		return -EINVAL;
20437e1041fSMaxime Ripard 
20537e1041fSMaxime Ripard 	/* Now, get the MMC parent (most likely some PLL) */
20637e1041fSMaxime Ripard 	mmc_parent = clk_get_parent(mmc);
20737e1041fSMaxime Ripard 	if (!mmc_parent)
20837e1041fSMaxime Ripard 		return -EINVAL;
20937e1041fSMaxime Ripard 
21037e1041fSMaxime Ripard 	/* And its rate */
21137e1041fSMaxime Ripard 	mmc_parent_rate = clk_get_rate(mmc_parent);
21237e1041fSMaxime Ripard 	if (!mmc_parent_rate)
21337e1041fSMaxime Ripard 		return -EINVAL;
21437e1041fSMaxime Ripard 
21537e1041fSMaxime Ripard 	/* Get MMC clock divider */
21637e1041fSMaxime Ripard 	mmc_div = mmc_parent_rate / mmc_rate;
21737e1041fSMaxime Ripard 
21837e1041fSMaxime Ripard 	step = DIV_ROUND_CLOSEST(360, mmc_div);
21937e1041fSMaxime Ripard 	return delay * step;
22037e1041fSMaxime Ripard }
22137e1041fSMaxime Ripard 
22237e1041fSMaxime Ripard static int mmc_set_phase(struct clk_hw *hw, int degrees)
22337e1041fSMaxime Ripard {
22437e1041fSMaxime Ripard 	struct clk *mmc, *mmc_parent, *clk = hw->clk;
22537e1041fSMaxime Ripard 	struct mmc_phase *phase = to_mmc_phase(hw);
22637e1041fSMaxime Ripard 	unsigned int mmc_rate, mmc_parent_rate;
22737e1041fSMaxime Ripard 	unsigned long flags;
22837e1041fSMaxime Ripard 	u32 value;
22937e1041fSMaxime Ripard 	u8 delay;
23037e1041fSMaxime Ripard 
23137e1041fSMaxime Ripard 	/* Get the main MMC clock */
23237e1041fSMaxime Ripard 	mmc = clk_get_parent(clk);
23337e1041fSMaxime Ripard 	if (!mmc)
23437e1041fSMaxime Ripard 		return -EINVAL;
23537e1041fSMaxime Ripard 
23637e1041fSMaxime Ripard 	/* And its rate */
23737e1041fSMaxime Ripard 	mmc_rate = clk_get_rate(mmc);
23837e1041fSMaxime Ripard 	if (!mmc_rate)
23937e1041fSMaxime Ripard 		return -EINVAL;
24037e1041fSMaxime Ripard 
24137e1041fSMaxime Ripard 	/* Now, get the MMC parent (most likely some PLL) */
24237e1041fSMaxime Ripard 	mmc_parent = clk_get_parent(mmc);
24337e1041fSMaxime Ripard 	if (!mmc_parent)
24437e1041fSMaxime Ripard 		return -EINVAL;
24537e1041fSMaxime Ripard 
24637e1041fSMaxime Ripard 	/* And its rate */
24737e1041fSMaxime Ripard 	mmc_parent_rate = clk_get_rate(mmc_parent);
24837e1041fSMaxime Ripard 	if (!mmc_parent_rate)
24937e1041fSMaxime Ripard 		return -EINVAL;
25037e1041fSMaxime Ripard 
25137e1041fSMaxime Ripard 	if (degrees != 180) {
25237e1041fSMaxime Ripard 		u16 step, mmc_div;
25337e1041fSMaxime Ripard 
25437e1041fSMaxime Ripard 		/* Get MMC clock divider */
25537e1041fSMaxime Ripard 		mmc_div = mmc_parent_rate / mmc_rate;
25637e1041fSMaxime Ripard 
25737e1041fSMaxime Ripard 		/*
25837e1041fSMaxime Ripard 		 * We can only outphase the clocks by multiple of the
25937e1041fSMaxime Ripard 		 * PLL's period.
26037e1041fSMaxime Ripard 		 *
26137e1041fSMaxime Ripard 		 * Since the MMC clock in only a divider, and the
26237e1041fSMaxime Ripard 		 * formula to get the outphasing in degrees is deg =
26337e1041fSMaxime Ripard 		 * 360 * delta / period
26437e1041fSMaxime Ripard 		 *
26537e1041fSMaxime Ripard 		 * If we simplify this formula, we can see that the
26637e1041fSMaxime Ripard 		 * only thing that we're concerned about is the number
26737e1041fSMaxime Ripard 		 * of period we want to outphase our clock from, and
26837e1041fSMaxime Ripard 		 * the divider set by the MMC clock.
26937e1041fSMaxime Ripard 		 */
27037e1041fSMaxime Ripard 		step = DIV_ROUND_CLOSEST(360, mmc_div);
27137e1041fSMaxime Ripard 		delay = DIV_ROUND_CLOSEST(degrees, step);
27237e1041fSMaxime Ripard 	} else {
27337e1041fSMaxime Ripard 		delay = 0;
27437e1041fSMaxime Ripard 	}
27537e1041fSMaxime Ripard 
27637e1041fSMaxime Ripard 	spin_lock_irqsave(phase->lock, flags);
27737e1041fSMaxime Ripard 	value = readl(phase->reg);
2786b0b8ccfSMaxime Ripard 	value &= ~GENMASK(phase->offset + 3, phase->offset);
2796b0b8ccfSMaxime Ripard 	value |= delay << phase->offset;
28037e1041fSMaxime Ripard 	writel(value, phase->reg);
28137e1041fSMaxime Ripard 	spin_unlock_irqrestore(phase->lock, flags);
28237e1041fSMaxime Ripard 
28337e1041fSMaxime Ripard 	return 0;
28437e1041fSMaxime Ripard }
28537e1041fSMaxime Ripard 
28637e1041fSMaxime Ripard static const struct clk_ops mmc_clk_ops = {
28737e1041fSMaxime Ripard 	.get_phase	= mmc_get_phase,
28837e1041fSMaxime Ripard 	.set_phase	= mmc_set_phase,
28937e1041fSMaxime Ripard };
29037e1041fSMaxime Ripard 
291eb378df7SChen-Yu Tsai /*
292eb378df7SChen-Yu Tsai  * sunxi_mmc_setup - Common setup function for mmc module clocks
293eb378df7SChen-Yu Tsai  *
294eb378df7SChen-Yu Tsai  * The only difference between module clocks on different platforms is the
295eb378df7SChen-Yu Tsai  * width of the mux register bits and the valid values, which are passed in
296eb378df7SChen-Yu Tsai  * through struct factors_data. The phase clocks parts are identical.
297eb378df7SChen-Yu Tsai  */
298eb378df7SChen-Yu Tsai static void __init sunxi_mmc_setup(struct device_node *node,
299eb378df7SChen-Yu Tsai 				   const struct factors_data *data,
300eb378df7SChen-Yu Tsai 				   spinlock_t *lock)
30137e1041fSMaxime Ripard {
3026b0b8ccfSMaxime Ripard 	struct clk_onecell_data *clk_data;
3036b0b8ccfSMaxime Ripard 	const char *parent;
3046b0b8ccfSMaxime Ripard 	void __iomem *reg;
3056b0b8ccfSMaxime Ripard 	int i;
3066b0b8ccfSMaxime Ripard 
3076b0b8ccfSMaxime Ripard 	reg = of_io_request_and_map(node, 0, of_node_full_name(node));
3086b0b8ccfSMaxime Ripard 	if (IS_ERR(reg)) {
3096b0b8ccfSMaxime Ripard 		pr_err("Couldn't map the %s clock registers\n", node->name);
3106b0b8ccfSMaxime Ripard 		return;
3116b0b8ccfSMaxime Ripard 	}
3126b0b8ccfSMaxime Ripard 
3136b0b8ccfSMaxime Ripard 	clk_data = kmalloc(sizeof(*clk_data), GFP_KERNEL);
3146b0b8ccfSMaxime Ripard 	if (!clk_data)
3156b0b8ccfSMaxime Ripard 		return;
3166b0b8ccfSMaxime Ripard 
3176b0b8ccfSMaxime Ripard 	clk_data->clks = kcalloc(3, sizeof(*clk_data->clks), GFP_KERNEL);
3186b0b8ccfSMaxime Ripard 	if (!clk_data->clks)
3196b0b8ccfSMaxime Ripard 		goto err_free_data;
3206b0b8ccfSMaxime Ripard 
3216b0b8ccfSMaxime Ripard 	clk_data->clk_num = 3;
322eb378df7SChen-Yu Tsai 	clk_data->clks[0] = sunxi_factors_register(node, data, lock, reg);
3236b0b8ccfSMaxime Ripard 	if (!clk_data->clks[0])
3246b0b8ccfSMaxime Ripard 		goto err_free_clks;
3256b0b8ccfSMaxime Ripard 
3266b0b8ccfSMaxime Ripard 	parent = __clk_get_name(clk_data->clks[0]);
3276b0b8ccfSMaxime Ripard 
3286b0b8ccfSMaxime Ripard 	for (i = 1; i < 3; i++) {
32937e1041fSMaxime Ripard 		struct clk_init_data init = {
33037e1041fSMaxime Ripard 			.num_parents	= 1,
3316b0b8ccfSMaxime Ripard 			.parent_names	= &parent,
33237e1041fSMaxime Ripard 			.ops		= &mmc_clk_ops,
33337e1041fSMaxime Ripard 		};
33437e1041fSMaxime Ripard 		struct mmc_phase *phase;
33537e1041fSMaxime Ripard 
33637e1041fSMaxime Ripard 		phase = kmalloc(sizeof(*phase), GFP_KERNEL);
33737e1041fSMaxime Ripard 		if (!phase)
3386b0b8ccfSMaxime Ripard 			continue;
33937e1041fSMaxime Ripard 
34037e1041fSMaxime Ripard 		phase->hw.init = &init;
3416b0b8ccfSMaxime Ripard 		phase->reg = reg;
342eb378df7SChen-Yu Tsai 		phase->lock = lock;
34337e1041fSMaxime Ripard 
3446b0b8ccfSMaxime Ripard 		if (i == 1)
3456b0b8ccfSMaxime Ripard 			phase->offset = 8;
3466b0b8ccfSMaxime Ripard 		else
3476b0b8ccfSMaxime Ripard 			phase->offset = 20;
34837e1041fSMaxime Ripard 
3496b0b8ccfSMaxime Ripard 		if (of_property_read_string_index(node, "clock-output-names",
3506b0b8ccfSMaxime Ripard 						  i, &init.name))
35137e1041fSMaxime Ripard 			init.name = node->name;
35237e1041fSMaxime Ripard 
3536b0b8ccfSMaxime Ripard 		clk_data->clks[i] = clk_register(NULL, &phase->hw);
3546b0b8ccfSMaxime Ripard 		if (IS_ERR(clk_data->clks[i])) {
3556b0b8ccfSMaxime Ripard 			kfree(phase);
3566b0b8ccfSMaxime Ripard 			continue;
3576b0b8ccfSMaxime Ripard 		}
3586b0b8ccfSMaxime Ripard 	}
35937e1041fSMaxime Ripard 
3606b0b8ccfSMaxime Ripard 	of_clk_add_provider(node, of_clk_src_onecell_get, clk_data);
36137e1041fSMaxime Ripard 
36237e1041fSMaxime Ripard 	return;
36337e1041fSMaxime Ripard 
3646b0b8ccfSMaxime Ripard err_free_clks:
3656b0b8ccfSMaxime Ripard 	kfree(clk_data->clks);
3666b0b8ccfSMaxime Ripard err_free_data:
3676b0b8ccfSMaxime Ripard 	kfree(clk_data);
36837e1041fSMaxime Ripard }
369eb378df7SChen-Yu Tsai 
370eb378df7SChen-Yu Tsai static DEFINE_SPINLOCK(sun4i_a10_mmc_lock);
371eb378df7SChen-Yu Tsai 
372eb378df7SChen-Yu Tsai static void __init sun4i_a10_mmc_setup(struct device_node *node)
373eb378df7SChen-Yu Tsai {
374eb378df7SChen-Yu Tsai 	sunxi_mmc_setup(node, &sun4i_a10_mod0_data, &sun4i_a10_mmc_lock);
375eb378df7SChen-Yu Tsai }
3766b0b8ccfSMaxime Ripard CLK_OF_DECLARE(sun4i_a10_mmc, "allwinner,sun4i-a10-mmc-clk", sun4i_a10_mmc_setup);
37761af4d8dSChen-Yu Tsai 
37861af4d8dSChen-Yu Tsai static DEFINE_SPINLOCK(sun9i_a80_mmc_lock);
37961af4d8dSChen-Yu Tsai 
38061af4d8dSChen-Yu Tsai static void __init sun9i_a80_mmc_setup(struct device_node *node)
38161af4d8dSChen-Yu Tsai {
38261af4d8dSChen-Yu Tsai 	sunxi_mmc_setup(node, &sun9i_a80_mod0_data, &sun9i_a80_mmc_lock);
38361af4d8dSChen-Yu Tsai }
38461af4d8dSChen-Yu Tsai CLK_OF_DECLARE(sun9i_a80_mmc, "allwinner,sun9i-a80-mmc-clk", sun9i_a80_mmc_setup);
385