xref: /openbmc/u-boot/drivers/spi/exynos_spi.c (revision 9d86f0c3)
1 /*
2  * (C) Copyright 2012 SAMSUNG Electronics
3  * Padmavathi Venna <padma.v@samsung.com>
4  *
5  * This program is free software; you can redistribute it and/or modify
6  * it under the terms of the GNU General Public License as published by
7  * the Free Software Foundation; either version 2 of the License, or
8  * (at your option) any later version.
9  *
10  * This program is distributed in the hope that it will be useful,
11  * but WITHOUT ANY WARRANTY; without even the implied warranty of
12  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13  * GNU General Public License for more details.
14  *
15  * You should have received a copy of the GNU General Public License
16  * along with this program; if not, write to the Free Software
17  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
18  */
19 
20 #include <common.h>
21 #include <malloc.h>
22 #include <spi.h>
23 #include <asm/arch/clk.h>
24 #include <asm/arch/clock.h>
25 #include <asm/arch/cpu.h>
26 #include <asm/arch/gpio.h>
27 #include <asm/arch/pinmux.h>
28 #include <asm/arch-exynos/spi.h>
29 #include <asm/io.h>
30 
31 /* Information about each SPI controller */
32 struct spi_bus {
33 	enum periph_id periph_id;
34 	s32 frequency;		/* Default clock frequency, -1 for none */
35 	struct exynos_spi *regs;
36 	int inited;		/* 1 if this bus is ready for use */
37 };
38 
39 /* A list of spi buses that we know about */
40 static struct spi_bus spi_bus[EXYNOS5_SPI_NUM_CONTROLLERS];
41 
42 struct exynos_spi_slave {
43 	struct spi_slave slave;
44 	struct exynos_spi *regs;
45 	unsigned int freq;		/* Default frequency */
46 	unsigned int mode;
47 	enum periph_id periph_id;	/* Peripheral ID for this device */
48 	unsigned int fifo_size;
49 };
50 
51 static struct spi_bus *spi_get_bus(unsigned dev_index)
52 {
53 	if (dev_index < EXYNOS5_SPI_NUM_CONTROLLERS)
54 		return &spi_bus[dev_index];
55 	debug("%s: invalid bus %d", __func__, dev_index);
56 
57 	return NULL;
58 }
59 
60 static inline struct exynos_spi_slave *to_exynos_spi(struct spi_slave *slave)
61 {
62 	return container_of(slave, struct exynos_spi_slave, slave);
63 }
64 
65 /**
66  * Setup the driver private data
67  *
68  * @param bus		ID of the bus that the slave is attached to
69  * @param cs		ID of the chip select connected to the slave
70  * @param max_hz	Required spi frequency
71  * @param mode		Required spi mode (clk polarity, clk phase and
72  *			master or slave)
73  * @return new device or NULL
74  */
75 struct spi_slave *spi_setup_slave(unsigned int busnum, unsigned int cs,
76 			unsigned int max_hz, unsigned int mode)
77 {
78 	struct exynos_spi_slave *spi_slave;
79 	struct spi_bus *bus;
80 
81 	if (!spi_cs_is_valid(busnum, cs)) {
82 		debug("%s: Invalid bus/chip select %d, %d\n", __func__,
83 		      busnum, cs);
84 		return NULL;
85 	}
86 
87 	spi_slave = malloc(sizeof(*spi_slave));
88 	if (!spi_slave) {
89 		debug("%s: Could not allocate spi_slave\n", __func__);
90 		return NULL;
91 	}
92 
93 	bus = &spi_bus[busnum];
94 	spi_slave->slave.bus = busnum;
95 	spi_slave->slave.cs = cs;
96 	spi_slave->regs = bus->regs;
97 	spi_slave->mode = mode;
98 	spi_slave->periph_id = bus->periph_id;
99 	if (bus->periph_id == PERIPH_ID_SPI1 ||
100 	    bus->periph_id == PERIPH_ID_SPI2)
101 		spi_slave->fifo_size = 64;
102 	else
103 		spi_slave->fifo_size = 256;
104 
105 	spi_slave->freq = bus->frequency;
106 	if (max_hz)
107 		spi_slave->freq = min(max_hz, spi_slave->freq);
108 
109 	return &spi_slave->slave;
110 }
111 
112 /**
113  * Free spi controller
114  *
115  * @param slave	Pointer to spi_slave to which controller has to
116  *		communicate with
117  */
118 void spi_free_slave(struct spi_slave *slave)
119 {
120 	struct exynos_spi_slave *spi_slave = to_exynos_spi(slave);
121 
122 	free(spi_slave);
123 }
124 
125 /**
126  * Flush spi tx, rx fifos and reset the SPI controller
127  *
128  * @param slave	Pointer to spi_slave to which controller has to
129  *		communicate with
130  */
131 static void spi_flush_fifo(struct spi_slave *slave)
132 {
133 	struct exynos_spi_slave *spi_slave = to_exynos_spi(slave);
134 	struct exynos_spi *regs = spi_slave->regs;
135 
136 	clrsetbits_le32(&regs->ch_cfg, SPI_CH_HS_EN, SPI_CH_RST);
137 	clrbits_le32(&regs->ch_cfg, SPI_CH_RST);
138 	setbits_le32(&regs->ch_cfg, SPI_TX_CH_ON | SPI_RX_CH_ON);
139 }
140 
141 /**
142  * Initialize the spi base registers, set the required clock frequency and
143  * initialize the gpios
144  *
145  * @param slave	Pointer to spi_slave to which controller has to
146  *		communicate with
147  * @return zero on success else a negative value
148  */
149 int spi_claim_bus(struct spi_slave *slave)
150 {
151 	struct exynos_spi_slave *spi_slave = to_exynos_spi(slave);
152 	struct exynos_spi *regs = spi_slave->regs;
153 	u32 reg = 0;
154 	int ret;
155 
156 	ret = set_spi_clk(spi_slave->periph_id,
157 					spi_slave->freq);
158 	if (ret < 0) {
159 		debug("%s: Failed to setup spi clock\n", __func__);
160 		return ret;
161 	}
162 
163 	exynos_pinmux_config(spi_slave->periph_id, PINMUX_FLAG_NONE);
164 
165 	spi_flush_fifo(slave);
166 
167 	reg = readl(&regs->ch_cfg);
168 	reg &= ~(SPI_CH_CPHA_B | SPI_CH_CPOL_L);
169 
170 	if (spi_slave->mode & SPI_CPHA)
171 		reg |= SPI_CH_CPHA_B;
172 
173 	if (spi_slave->mode & SPI_CPOL)
174 		reg |= SPI_CH_CPOL_L;
175 
176 	writel(reg, &regs->ch_cfg);
177 	writel(SPI_FB_DELAY_180, &regs->fb_clk);
178 
179 	return 0;
180 }
181 
182 /**
183  * Reset the spi H/W and flush the tx and rx fifos
184  *
185  * @param slave	Pointer to spi_slave to which controller has to
186  *		communicate with
187  */
188 void spi_release_bus(struct spi_slave *slave)
189 {
190 	spi_flush_fifo(slave);
191 }
192 
193 static void spi_get_fifo_levels(struct exynos_spi *regs,
194 	int *rx_lvl, int *tx_lvl)
195 {
196 	uint32_t spi_sts = readl(&regs->spi_sts);
197 
198 	*rx_lvl = (spi_sts >> SPI_RX_LVL_OFFSET) & SPI_FIFO_LVL_MASK;
199 	*tx_lvl = (spi_sts >> SPI_TX_LVL_OFFSET) & SPI_FIFO_LVL_MASK;
200 }
201 
202 /**
203  * If there's something to transfer, do a software reset and set a
204  * transaction size.
205  *
206  * @param regs	SPI peripheral registers
207  * @param count	Number of bytes to transfer
208  */
209 static void spi_request_bytes(struct exynos_spi *regs, int count)
210 {
211 	assert(count && count < (1 << 16));
212 	setbits_le32(&regs->ch_cfg, SPI_CH_RST);
213 	clrbits_le32(&regs->ch_cfg, SPI_CH_RST);
214 	writel(count | SPI_PACKET_CNT_EN, &regs->pkt_cnt);
215 }
216 
217 static void spi_rx_tx(struct exynos_spi_slave *spi_slave, int todo,
218 			void **dinp, void const **doutp)
219 {
220 	struct exynos_spi *regs = spi_slave->regs;
221 	uchar *rxp = *dinp;
222 	const uchar *txp = *doutp;
223 	int rx_lvl, tx_lvl;
224 	uint out_bytes, in_bytes;
225 
226 	out_bytes = in_bytes = todo;
227 
228 	/*
229 	 * If there's something to send, do a software reset and set a
230 	 * transaction size.
231 	 */
232 	spi_request_bytes(regs, todo);
233 
234 	/*
235 	 * Bytes are transmitted/received in pairs. Wait to receive all the
236 	 * data because then transmission will be done as well.
237 	 */
238 	while (in_bytes) {
239 		int temp;
240 
241 		/* Keep the fifos full/empty. */
242 		spi_get_fifo_levels(regs, &rx_lvl, &tx_lvl);
243 		if (tx_lvl < spi_slave->fifo_size && out_bytes) {
244 			temp = txp ? *txp++ : 0xff;
245 			writel(temp, &regs->tx_data);
246 			out_bytes--;
247 		}
248 		if (rx_lvl > 0 && in_bytes) {
249 			temp = readl(&regs->rx_data);
250 			if (rxp)
251 				*rxp++ = temp;
252 			in_bytes--;
253 		}
254 	}
255 	*dinp = rxp;
256 	*doutp = txp;
257 }
258 
259 /**
260  * Transfer and receive data
261  *
262  * @param slave		Pointer to spi_slave to which controller has to
263  *			communicate with
264  * @param bitlen	No of bits to tranfer or receive
265  * @param dout		Pointer to transfer buffer
266  * @param din		Pointer to receive buffer
267  * @param flags		Flags for transfer begin and end
268  * @return zero on success else a negative value
269  */
270 int spi_xfer(struct spi_slave *slave, unsigned int bitlen, const void *dout,
271 	     void *din, unsigned long flags)
272 {
273 	struct exynos_spi_slave *spi_slave = to_exynos_spi(slave);
274 	int upto, todo;
275 	int bytelen;
276 
277 	/* spi core configured to do 8 bit transfers */
278 	if (bitlen % 8) {
279 		debug("Non byte aligned SPI transfer.\n");
280 		return -1;
281 	}
282 
283 	/* Start the transaction, if necessary. */
284 	if ((flags & SPI_XFER_BEGIN))
285 		spi_cs_activate(slave);
286 
287 	/* Exynos SPI limits each transfer to 65535 bytes */
288 	bytelen =  bitlen / 8;
289 	for (upto = 0; upto < bytelen; upto += todo) {
290 		todo = min(bytelen - upto, (1 << 16) - 1);
291 		spi_rx_tx(spi_slave, todo, &din, &dout);
292 	}
293 
294 	/* Stop the transaction, if necessary. */
295 	if ((flags & SPI_XFER_END))
296 		spi_cs_deactivate(slave);
297 
298 	return 0;
299 }
300 
301 /**
302  * Validates the bus and chip select numbers
303  *
304  * @param bus	ID of the bus that the slave is attached to
305  * @param cs	ID of the chip select connected to the slave
306  * @return one on success else zero
307  */
308 int spi_cs_is_valid(unsigned int bus, unsigned int cs)
309 {
310 	return spi_get_bus(bus) && cs == 0;
311 }
312 
313 /**
314  * Activate the CS by driving it LOW
315  *
316  * @param slave	Pointer to spi_slave to which controller has to
317  *		communicate with
318  */
319 void spi_cs_activate(struct spi_slave *slave)
320 {
321 	struct exynos_spi_slave *spi_slave = to_exynos_spi(slave);
322 
323 	clrbits_le32(&spi_slave->regs->cs_reg, SPI_SLAVE_SIG_INACT);
324 	debug("Activate CS, bus %d\n", spi_slave->slave.bus);
325 }
326 
327 /**
328  * Deactivate the CS by driving it HIGH
329  *
330  * @param slave	Pointer to spi_slave to which controller has to
331  *		communicate with
332  */
333 void spi_cs_deactivate(struct spi_slave *slave)
334 {
335 	struct exynos_spi_slave *spi_slave = to_exynos_spi(slave);
336 
337 	setbits_le32(&spi_slave->regs->cs_reg, SPI_SLAVE_SIG_INACT);
338 	debug("Deactivate CS, bus %d\n", spi_slave->slave.bus);
339 }
340 
341 static inline struct exynos_spi *get_spi_base(int dev_index)
342 {
343 	if (dev_index < 3)
344 		return (struct exynos_spi *)samsung_get_base_spi() + dev_index;
345 	else
346 		return (struct exynos_spi *)samsung_get_base_spi_isp() +
347 					(dev_index - 3);
348 }
349 
350 /* Sadly there is no error return from this function */
351 void spi_init(void)
352 {
353 	int i;
354 	struct spi_bus *bus;
355 
356 	for (i = 0; i < EXYNOS5_SPI_NUM_CONTROLLERS; i++) {
357 		bus = &spi_bus[i];
358 		bus->regs = get_spi_base(i);
359 		bus->periph_id = PERIPH_ID_SPI0 + i;
360 
361 		/* Although Exynos5 supports upto 50Mhz speed,
362 		 * we are setting it to 10Mhz for safe side
363 		 */
364 		bus->frequency = 10000000;
365 		bus->inited = 1;
366 	}
367 }
368