blob: 290f9dcdb022636d008ad8b2297c35f9650902ae [file] [log] [blame]
Tom Rini83d290c2018-05-06 17:58:06 -04001// SPDX-License-Identifier: GPL-2.0+
Aneesh V2ae610f2011-07-21 09:10:09 -04002/*
3 * EMIF programming
4 *
5 * (C) Copyright 2010
6 * Texas Instruments, <www.ti.com>
7 *
8 * Aneesh V <aneesh@ti.com>
Aneesh V2ae610f2011-07-21 09:10:09 -04009 */
10
11#include <common.h>
Sricharanbb772a52011-11-15 09:50:00 -050012#include <asm/emif.h>
Lokesh Vutlaaf1d0022013-05-30 02:54:32 +000013#include <asm/arch/clock.h>
Aneesh V2ae610f2011-07-21 09:10:09 -040014#include <asm/arch/sys_proto.h>
15#include <asm/omap_common.h>
Daniel Allred501f0ef2016-09-02 00:40:22 -050016#include <asm/omap_sec_common.h>
Aneesh V2ae610f2011-07-21 09:10:09 -040017#include <asm/utils.h>
SRICHARAN R25476382012-06-04 03:40:23 +000018#include <linux/compiler.h>
Lokesh Vutla650fda92017-12-29 11:47:48 +053019#include <asm/ti-common/ti-edma3.h>
Aneesh V2ae610f2011-07-21 09:10:09 -040020
Lokesh Vutla86021142012-11-15 21:06:33 +000021static int emif1_enabled = -1, emif2_enabled = -1;
22
Lokesh Vutla38f25b12012-05-29 19:26:43 +000023void set_lpmode_selfrefresh(u32 base)
24{
25 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
26 u32 reg;
27
28 reg = readl(&emif->emif_pwr_mgmt_ctrl);
29 reg &= ~EMIF_REG_LP_MODE_MASK;
30 reg |= LP_MODE_SELF_REFRESH << EMIF_REG_LP_MODE_SHIFT;
31 reg &= ~EMIF_REG_SR_TIM_MASK;
32 writel(reg, &emif->emif_pwr_mgmt_ctrl);
33
34 /* dummy read for the new SR_TIM to be loaded */
35 readl(&emif->emif_pwr_mgmt_ctrl);
36}
37
38void force_emif_self_refresh()
39{
40 set_lpmode_selfrefresh(EMIF1_BASE);
Lokesh Vutla663f6fc2016-07-12 14:47:41 +053041 if (!is_dra72x())
42 set_lpmode_selfrefresh(EMIF2_BASE);
Lokesh Vutla38f25b12012-05-29 19:26:43 +000043}
44
Sricharanbb772a52011-11-15 09:50:00 -050045inline u32 emif_num(u32 base)
Aneesh V2ae610f2011-07-21 09:10:09 -040046{
Sricharanbb772a52011-11-15 09:50:00 -050047 if (base == EMIF1_BASE)
Aneesh V2ae610f2011-07-21 09:10:09 -040048 return 1;
Sricharanbb772a52011-11-15 09:50:00 -050049 else if (base == EMIF2_BASE)
Aneesh V2ae610f2011-07-21 09:10:09 -040050 return 2;
51 else
52 return 0;
53}
54
55static inline u32 get_mr(u32 base, u32 cs, u32 mr_addr)
56{
57 u32 mr;
58 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
59
Sricharanbb772a52011-11-15 09:50:00 -050060 mr_addr |= cs << EMIF_REG_CS_SHIFT;
Aneesh V2ae610f2011-07-21 09:10:09 -040061 writel(mr_addr, &emif->emif_lpddr2_mode_reg_cfg);
62 if (omap_revision() == OMAP4430_ES2_0)
63 mr = readl(&emif->emif_lpddr2_mode_reg_data_es2);
64 else
65 mr = readl(&emif->emif_lpddr2_mode_reg_data);
66 debug("get_mr: EMIF%d cs %d mr %08x val 0x%x\n", emif_num(base),
67 cs, mr_addr, mr);
Steve Sakoman55c12842012-05-30 07:38:07 +000068 if (((mr & 0x0000ff00) >> 8) == (mr & 0xff) &&
69 ((mr & 0x00ff0000) >> 16) == (mr & 0xff) &&
70 ((mr & 0xff000000) >> 24) == (mr & 0xff))
71 return mr & 0xff;
72 else
73 return mr;
Aneesh V2ae610f2011-07-21 09:10:09 -040074}
75
76static inline void set_mr(u32 base, u32 cs, u32 mr_addr, u32 mr_val)
77{
78 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
79
Sricharanbb772a52011-11-15 09:50:00 -050080 mr_addr |= cs << EMIF_REG_CS_SHIFT;
Aneesh V2ae610f2011-07-21 09:10:09 -040081 writel(mr_addr, &emif->emif_lpddr2_mode_reg_cfg);
82 writel(mr_val, &emif->emif_lpddr2_mode_reg_data);
83}
84
85void emif_reset_phy(u32 base)
86{
87 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
88 u32 iodft;
89
90 iodft = readl(&emif->emif_iodft_tlgc);
Sricharanbb772a52011-11-15 09:50:00 -050091 iodft |= EMIF_REG_RESET_PHY_MASK;
Aneesh V2ae610f2011-07-21 09:10:09 -040092 writel(iodft, &emif->emif_iodft_tlgc);
93}
94
95static void do_lpddr2_init(u32 base, u32 cs)
96{
97 u32 mr_addr;
Lokesh Vutlae05a4f12013-02-04 04:22:03 +000098 const struct lpddr2_mr_regs *mr_regs;
Aneesh V2ae610f2011-07-21 09:10:09 -040099
Lokesh Vutlae05a4f12013-02-04 04:22:03 +0000100 get_lpddr2_mr_regs(&mr_regs);
Aneesh V2ae610f2011-07-21 09:10:09 -0400101 /* Wait till device auto initialization is complete */
102 while (get_mr(base, cs, LPDDR2_MR0) & LPDDR2_MR0_DAI_MASK)
103 ;
Lokesh Vutlae05a4f12013-02-04 04:22:03 +0000104 set_mr(base, cs, LPDDR2_MR10, mr_regs->mr10);
Aneesh V2ae610f2011-07-21 09:10:09 -0400105 /*
106 * tZQINIT = 1 us
107 * Enough loops assuming a maximum of 2GHz
108 */
SRICHARAN Rf4010732012-03-12 02:25:37 +0000109
Aneesh V2ae610f2011-07-21 09:10:09 -0400110 sdelay(2000);
SRICHARAN Rf4010732012-03-12 02:25:37 +0000111
Lokesh Vutlae05a4f12013-02-04 04:22:03 +0000112 set_mr(base, cs, LPDDR2_MR1, mr_regs->mr1);
113 set_mr(base, cs, LPDDR2_MR16, mr_regs->mr16);
SRICHARAN Rf4010732012-03-12 02:25:37 +0000114
Aneesh V2ae610f2011-07-21 09:10:09 -0400115 /*
116 * Enable refresh along with writing MR2
117 * Encoding of RL in MR2 is (RL - 2)
118 */
Sricharanbb772a52011-11-15 09:50:00 -0500119 mr_addr = LPDDR2_MR2 | EMIF_REG_REFRESH_EN_MASK;
Lokesh Vutlae05a4f12013-02-04 04:22:03 +0000120 set_mr(base, cs, mr_addr, mr_regs->mr2);
SRICHARAN Rf4010732012-03-12 02:25:37 +0000121
Lokesh Vutlae05a4f12013-02-04 04:22:03 +0000122 if (mr_regs->mr3 > 0)
123 set_mr(base, cs, LPDDR2_MR3, mr_regs->mr3);
Aneesh V2ae610f2011-07-21 09:10:09 -0400124}
125
126static void lpddr2_init(u32 base, const struct emif_regs *regs)
127{
128 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
129
130 /* Not NVM */
Sricharanbb772a52011-11-15 09:50:00 -0500131 clrbits_le32(&emif->emif_lpddr2_nvm_config, EMIF_REG_CS1NVMEN_MASK);
Aneesh V2ae610f2011-07-21 09:10:09 -0400132
133 /*
134 * Keep REG_INITREF_DIS = 1 to prevent re-initialization of SDRAM
135 * when EMIF_SDRAM_CONFIG register is written
136 */
Sricharanbb772a52011-11-15 09:50:00 -0500137 setbits_le32(&emif->emif_sdram_ref_ctrl, EMIF_REG_INITREF_DIS_MASK);
Aneesh V2ae610f2011-07-21 09:10:09 -0400138
139 /*
140 * Set the SDRAM_CONFIG and PHY_CTRL for the
141 * un-locked frequency & default RL
142 */
143 writel(regs->sdram_config_init, &emif->emif_sdram_config);
Taras Kondratiuk0474fb02013-08-06 16:16:50 +0300144 writel(regs->emif_ddr_phy_ctlr_1_init, &emif->emif_ddr_phy_ctrl_1);
SRICHARAN Rf4010732012-03-12 02:25:37 +0000145
SRICHARAN R25476382012-06-04 03:40:23 +0000146 do_ext_phy_settings(base, regs);
Aneesh V2ae610f2011-07-21 09:10:09 -0400147
148 do_lpddr2_init(base, CS0);
Sricharanbb772a52011-11-15 09:50:00 -0500149 if (regs->sdram_config & EMIF_REG_EBANK_MASK)
Aneesh V2ae610f2011-07-21 09:10:09 -0400150 do_lpddr2_init(base, CS1);
151
152 writel(regs->sdram_config, &emif->emif_sdram_config);
153 writel(regs->emif_ddr_phy_ctlr_1, &emif->emif_ddr_phy_ctrl_1);
154
155 /* Enable refresh now */
Sricharanbb772a52011-11-15 09:50:00 -0500156 clrbits_le32(&emif->emif_sdram_ref_ctrl, EMIF_REG_INITREF_DIS_MASK);
Aneesh V2ae610f2011-07-21 09:10:09 -0400157
SRICHARAN R25476382012-06-04 03:40:23 +0000158 }
159
160__weak void do_ext_phy_settings(u32 base, const struct emif_regs *regs)
161{
Aneesh V2ae610f2011-07-21 09:10:09 -0400162}
163
Sricharanbb772a52011-11-15 09:50:00 -0500164void emif_update_timings(u32 base, const struct emif_regs *regs)
Aneesh V2ae610f2011-07-21 09:10:09 -0400165{
166 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
167
Lokesh Vutlade095472016-03-05 17:32:28 +0530168 if (!is_dra7xx())
169 writel(regs->ref_ctrl, &emif->emif_sdram_ref_ctrl_shdw);
170 else
171 writel(regs->ref_ctrl_final, &emif->emif_sdram_ref_ctrl_shdw);
172
Aneesh V2ae610f2011-07-21 09:10:09 -0400173 writel(regs->sdram_tim1, &emif->emif_sdram_tim_1_shdw);
174 writel(regs->sdram_tim2, &emif->emif_sdram_tim_2_shdw);
175 writel(regs->sdram_tim3, &emif->emif_sdram_tim_3_shdw);
176 if (omap_revision() == OMAP4430_ES1_0) {
177 /* ES1 bug EMIF should be in force idle during freq_update */
178 writel(0, &emif->emif_pwr_mgmt_ctrl);
179 } else {
180 writel(EMIF_PWR_MGMT_CTRL, &emif->emif_pwr_mgmt_ctrl);
181 writel(EMIF_PWR_MGMT_CTRL_SHDW, &emif->emif_pwr_mgmt_ctrl_shdw);
182 }
183 writel(regs->read_idle_ctrl, &emif->emif_read_idlectrl_shdw);
184 writel(regs->zq_config, &emif->emif_zq_config);
185 writel(regs->temp_alert_config, &emif->emif_temp_alert_config);
186 writel(regs->emif_ddr_phy_ctlr_1, &emif->emif_ddr_phy_ctrl_1_shdw);
Aneesh V924eb362011-07-21 09:29:26 -0400187
Nishanth Menon3ac8c0b2014-01-14 10:54:42 -0600188 if ((omap_revision() >= OMAP5430_ES1_0) || is_dra7xx()) {
Sricharanbb772a52011-11-15 09:50:00 -0500189 writel(EMIF_L3_CONFIG_VAL_SYS_10_MPU_5_LL_0,
190 &emif->emif_l3_config);
191 } else if (omap_revision() >= OMAP4460_ES1_0) {
Aneesh V924eb362011-07-21 09:29:26 -0400192 writel(EMIF_L3_CONFIG_VAL_SYS_10_MPU_3_LL_0,
193 &emif->emif_l3_config);
194 } else {
195 writel(EMIF_L3_CONFIG_VAL_SYS_10_LL_0,
196 &emif->emif_l3_config);
Aneesh V2ae610f2011-07-21 09:10:09 -0400197 }
198}
199
Tom Rinif5af0822016-03-16 10:38:21 -0400200#ifndef CONFIG_OMAP44XX
SRICHARAN R6c709352013-11-08 17:40:37 +0530201static void omap5_ddr3_leveling(u32 base, const struct emif_regs *regs)
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000202{
203 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
204
205 /* keep sdram in self-refresh */
206 writel(((LP_MODE_SELF_REFRESH << EMIF_REG_LP_MODE_SHIFT)
207 & EMIF_REG_LP_MODE_MASK), &emif->emif_pwr_mgmt_ctrl);
208 __udelay(130);
209
210 /*
211 * Set invert_clkout (if activated)--DDR_PHYCTRL_1
SRICHARAN R6c709352013-11-08 17:40:37 +0530212 * Invert clock adds an additional half cycle delay on the
213 * command interface. The additional half cycle, is usually
214 * meant to enable leveling in the situation that DQS is later
215 * than CK on the board.It also helps provide some additional
216 * margin for leveling.
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000217 */
SRICHARAN R6c709352013-11-08 17:40:37 +0530218 writel(regs->emif_ddr_phy_ctlr_1,
219 &emif->emif_ddr_phy_ctrl_1);
220
221 writel(regs->emif_ddr_phy_ctlr_1,
222 &emif->emif_ddr_phy_ctrl_1_shdw);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000223 __udelay(130);
224
225 writel(((LP_MODE_DISABLE << EMIF_REG_LP_MODE_SHIFT)
SRICHARAN R6c709352013-11-08 17:40:37 +0530226 & EMIF_REG_LP_MODE_MASK), &emif->emif_pwr_mgmt_ctrl);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000227
228 /* Launch Full leveling */
229 writel(DDR3_FULL_LVL, &emif->emif_rd_wr_lvl_ctl);
230
231 /* Wait till full leveling is complete */
232 readl(&emif->emif_rd_wr_lvl_ctl);
SRICHARAN R6c709352013-11-08 17:40:37 +0530233 __udelay(130);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000234
235 /* Read data eye leveling no of samples */
236 config_data_eye_leveling_samples(base);
237
SRICHARAN R6c709352013-11-08 17:40:37 +0530238 /*
239 * Launch 8 incremental WR_LVL- to compensate for
240 * PHY limitation.
241 */
242 writel(0x2 << EMIF_REG_WRLVLINC_INT_SHIFT,
243 &emif->emif_rd_wr_lvl_ctl);
244
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000245 __udelay(130);
246
247 /* Launch Incremental leveling */
248 writel(DDR3_INC_LVL, &emif->emif_rd_wr_lvl_ctl);
SRICHARAN R6c709352013-11-08 17:40:37 +0530249 __udelay(130);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000250}
251
Lokesh Vutla6213db72015-06-03 14:43:21 +0530252static void update_hwleveling_output(u32 base, const struct emif_regs *regs)
SRICHARAN R6c709352013-11-08 17:40:37 +0530253{
Lokesh Vutla6213db72015-06-03 14:43:21 +0530254 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
255 u32 *emif_ext_phy_ctrl_reg, *emif_phy_status;
Lokesh Vutlae3ce3aa2016-03-05 17:32:30 +0530256 u32 reg, i, phy;
Lokesh Vutla6213db72015-06-03 14:43:21 +0530257
Lokesh Vutlae18cd3d2017-12-29 11:47:47 +0530258 emif_phy_status = (u32 *)&emif->emif_ddr_phy_status[6];
Lokesh Vutlae3ce3aa2016-03-05 17:32:30 +0530259 phy = readl(&emif->emif_ddr_phy_ctrl_1);
Lokesh Vutla6213db72015-06-03 14:43:21 +0530260
261 /* Update PHY_REG_RDDQS_RATIO */
262 emif_ext_phy_ctrl_reg = (u32 *)&emif->emif_ddr_ext_phy_ctrl_7;
Lokesh Vutlae3ce3aa2016-03-05 17:32:30 +0530263 if (!(phy & EMIF_DDR_PHY_CTRL_1_RDLVL_MASK_MASK))
264 for (i = 0; i < PHY_RDDQS_RATIO_REGS; i++) {
265 reg = readl(emif_phy_status++);
266 writel(reg, emif_ext_phy_ctrl_reg++);
267 writel(reg, emif_ext_phy_ctrl_reg++);
268 }
Lokesh Vutla6213db72015-06-03 14:43:21 +0530269
270 /* Update PHY_REG_FIFO_WE_SLAVE_RATIO */
271 emif_ext_phy_ctrl_reg = (u32 *)&emif->emif_ddr_ext_phy_ctrl_2;
Lokesh Vutlae18cd3d2017-12-29 11:47:47 +0530272 emif_phy_status = (u32 *)&emif->emif_ddr_phy_status[11];
Lokesh Vutlae3ce3aa2016-03-05 17:32:30 +0530273 if (!(phy & EMIF_DDR_PHY_CTRL_1_RDLVLGATE_MASK_MASK))
274 for (i = 0; i < PHY_FIFO_WE_SLAVE_RATIO_REGS; i++) {
275 reg = readl(emif_phy_status++);
276 writel(reg, emif_ext_phy_ctrl_reg++);
277 writel(reg, emif_ext_phy_ctrl_reg++);
278 }
Lokesh Vutla6213db72015-06-03 14:43:21 +0530279
280 /* Update PHY_REG_WR_DQ/DQS_SLAVE_RATIO */
281 emif_ext_phy_ctrl_reg = (u32 *)&emif->emif_ddr_ext_phy_ctrl_12;
Lokesh Vutlae18cd3d2017-12-29 11:47:47 +0530282 emif_phy_status = (u32 *)&emif->emif_ddr_phy_status[16];
Lokesh Vutlae3ce3aa2016-03-05 17:32:30 +0530283 if (!(phy & EMIF_DDR_PHY_CTRL_1_WRLVL_MASK_MASK))
284 for (i = 0; i < PHY_REG_WR_DQ_SLAVE_RATIO_REGS; i++) {
285 reg = readl(emif_phy_status++);
286 writel(reg, emif_ext_phy_ctrl_reg++);
287 writel(reg, emif_ext_phy_ctrl_reg++);
288 }
Lokesh Vutla6213db72015-06-03 14:43:21 +0530289
290 /* Disable Leveling */
291 writel(regs->emif_ddr_phy_ctlr_1, &emif->emif_ddr_phy_ctrl_1);
292 writel(regs->emif_ddr_phy_ctlr_1, &emif->emif_ddr_phy_ctrl_1_shdw);
293 writel(0x0, &emif->emif_rd_wr_lvl_rmp_ctl);
Sricharan R92b04822013-05-30 03:19:39 +0000294}
295
Lokesh Vutla6213db72015-06-03 14:43:21 +0530296static void dra7_ddr3_leveling(u32 base, const struct emif_regs *regs)
297{
298 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
299
300 /* Clear Error Status */
301 clrsetbits_le32(&emif->emif_ddr_ext_phy_ctrl_36,
302 EMIF_REG_PHY_FIFO_WE_IN_MISALINED_CLR,
303 EMIF_REG_PHY_FIFO_WE_IN_MISALINED_CLR);
304
305 clrsetbits_le32(&emif->emif_ddr_ext_phy_ctrl_36_shdw,
306 EMIF_REG_PHY_FIFO_WE_IN_MISALINED_CLR,
307 EMIF_REG_PHY_FIFO_WE_IN_MISALINED_CLR);
308
309 /* Disable refreshed before leveling */
Lokesh Vutlad6927a52015-08-28 12:28:25 +0530310 clrsetbits_le32(&emif->emif_sdram_ref_ctrl, EMIF_REG_INITREF_DIS_MASK,
311 EMIF_REG_INITREF_DIS_MASK);
Lokesh Vutla6213db72015-06-03 14:43:21 +0530312
313 /* Start Full leveling */
314 writel(DDR3_FULL_LVL, &emif->emif_rd_wr_lvl_ctl);
315
316 __udelay(300);
317
318 /* Check for leveling timeout */
319 if (readl(&emif->emif_status) & EMIF_REG_LEVELING_TO_MASK) {
320 printf("Leveling timeout on EMIF%d\n", emif_num(base));
321 return;
322 }
323
324 /* Enable refreshes after leveling */
Lokesh Vutlad6927a52015-08-28 12:28:25 +0530325 clrbits_le32(&emif->emif_sdram_ref_ctrl, EMIF_REG_INITREF_DIS_MASK);
Lokesh Vutla6213db72015-06-03 14:43:21 +0530326
327 debug("HW leveling success\n");
328 /*
329 * Update slave ratios in EXT_PHY_CTRLx registers
330 * as per HW leveling output
331 */
332 update_hwleveling_output(base, regs);
333}
334
Lokesh Vutla650fda92017-12-29 11:47:48 +0530335static void dra7_reset_ddr_data(u32 base, u32 size)
336{
337#if defined(CONFIG_TI_EDMA3) && !defined(CONFIG_DMA)
338 enable_edma3_clocks();
339
340 edma3_fill(EDMA3_BASE, 1, (void *)base, 0, size);
341
342 disable_edma3_clocks();
343#else
344 memset((void *)base, 0, size);
345#endif
346}
347
348static void dra7_enable_ecc(u32 base, const struct emif_regs *regs)
349{
350 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
Krunal Bhargav2b2e1572019-09-16 13:47:18 +0530351 u32 rgn, rgn_start, size, ctrl_reg;
Lokesh Vutla650fda92017-12-29 11:47:48 +0530352
353 /* ECC available only on dra76x EMIF1 */
354 if ((base != EMIF1_BASE) || !is_dra76x())
355 return;
356
357 if (regs->emif_ecc_ctrl_reg & EMIF_ECC_CTRL_REG_ECC_EN_MASK) {
Krunal Bhargavd0a37a52019-09-16 13:47:17 +0530358 /* Disable high-order interleaving */
359 clrbits_le32(MA_PRIORITY, MA_HIMEM_INTERLEAVE_UN_MASK);
360
Krunal Bhargav2b2e1572019-09-16 13:47:18 +0530361#ifdef CONFIG_DRA7XX
362 /* Clear the status flags and other history */
363 writel(readl(&emif->emif_1b_ecc_err_cnt),
364 &emif->emif_1b_ecc_err_cnt);
365 writel(0xffffffff, &emif->emif_1b_ecc_err_dist_1);
366 writel(0x2, &emif->emif_1b_ecc_err_addr_log);
367 writel(0x1, &emif->emif_2b_ecc_err_addr_log);
368 writel(EMIF_INT_WR_ECC_ERR_SYS_MASK |
369 EMIF_INT_TWOBIT_ECC_ERR_SYS_MASK |
370 EMIF_INT_ONEBIT_ECC_ERR_SYS_MASK,
371 &emif->emif_irqstatus_sys);
372#endif
Lokesh Vutla650fda92017-12-29 11:47:48 +0530373 writel(regs->emif_ecc_address_range_1,
374 &emif->emif_ecc_address_range_1);
375 writel(regs->emif_ecc_address_range_2,
376 &emif->emif_ecc_address_range_2);
Krunal Bhargav2b2e1572019-09-16 13:47:18 +0530377
378 /* Disable RMW and ECC verification for read accesses */
379 ctrl_reg = (regs->emif_ecc_ctrl_reg &
380 ~EMIF_ECC_REG_RMW_EN_MASK) |
381 EMIF_ECC_CTRL_REG_ECC_VERIFY_DIS_MASK;
382 writel(ctrl_reg, &emif->emif_ecc_ctrl_reg);
Lokesh Vutla650fda92017-12-29 11:47:48 +0530383
384 /* Set region1 memory with 0 */
Lokesh Vutlaed474ae2019-09-16 13:47:15 +0530385 rgn_start = (regs->emif_ecc_address_range_1 &
386 EMIF_ECC_REG_ECC_START_ADDR_MASK) << 16;
387 rgn = rgn_start + CONFIG_SYS_SDRAM_BASE;
Lokesh Vutla650fda92017-12-29 11:47:48 +0530388 size = (regs->emif_ecc_address_range_1 &
Lokesh Vutlaed474ae2019-09-16 13:47:15 +0530389 EMIF_ECC_REG_ECC_END_ADDR_MASK) + 0x10000 - rgn_start;
Lokesh Vutla650fda92017-12-29 11:47:48 +0530390
391 if (regs->emif_ecc_ctrl_reg &
392 EMIF_ECC_REG_ECC_ADDR_RGN_1_EN_MASK)
393 dra7_reset_ddr_data(rgn, size);
394
395 /* Set region2 memory with 0 */
Lokesh Vutlaed474ae2019-09-16 13:47:15 +0530396 rgn_start = (regs->emif_ecc_address_range_2 &
397 EMIF_ECC_REG_ECC_START_ADDR_MASK) << 16;
398 rgn = rgn_start + CONFIG_SYS_SDRAM_BASE;
Lokesh Vutla650fda92017-12-29 11:47:48 +0530399 size = (regs->emif_ecc_address_range_2 &
Lokesh Vutlaed474ae2019-09-16 13:47:15 +0530400 EMIF_ECC_REG_ECC_END_ADDR_MASK) + 0x10000 - rgn_start;
Lokesh Vutla650fda92017-12-29 11:47:48 +0530401
402 if (regs->emif_ecc_ctrl_reg &
403 EMIF_ECC_REG_ECC_ADDR_RGN_2_EN_MASK)
404 dra7_reset_ddr_data(rgn, size);
405
Krunal Bhargav2b2e1572019-09-16 13:47:18 +0530406 /* Default value enables RMW and ECC verification */
407 writel(regs->emif_ecc_ctrl_reg, &emif->emif_ecc_ctrl_reg);
Lokesh Vutla650fda92017-12-29 11:47:48 +0530408 }
409}
410
Lokesh Vutla6213db72015-06-03 14:43:21 +0530411static void dra7_ddr3_init(u32 base, const struct emif_regs *regs)
412{
413 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
414
Lokesh Vutla4571c512016-03-05 17:32:29 +0530415 if (warm_reset()) {
Lokesh Vutla6213db72015-06-03 14:43:21 +0530416 emif_reset_phy(base);
Lokesh Vutla4571c512016-03-05 17:32:29 +0530417 writel(0x0, &emif->emif_pwr_mgmt_ctrl);
418 }
Lokesh Vutla6213db72015-06-03 14:43:21 +0530419 do_ext_phy_settings(base, regs);
420
421 writel(regs->ref_ctrl | EMIF_REG_INITREF_DIS_MASK,
422 &emif->emif_sdram_ref_ctrl);
423 /* Update timing registers */
424 writel(regs->sdram_tim1, &emif->emif_sdram_tim_1);
425 writel(regs->sdram_tim2, &emif->emif_sdram_tim_2);
426 writel(regs->sdram_tim3, &emif->emif_sdram_tim_3);
427
428 writel(EMIF_L3_CONFIG_VAL_SYS_10_MPU_5_LL_0, &emif->emif_l3_config);
429 writel(regs->read_idle_ctrl, &emif->emif_read_idlectrl);
430 writel(regs->zq_config, &emif->emif_zq_config);
431 writel(regs->temp_alert_config, &emif->emif_temp_alert_config);
432 writel(regs->emif_rd_wr_lvl_rmp_ctl, &emif->emif_rd_wr_lvl_rmp_ctl);
433 writel(regs->emif_rd_wr_lvl_ctl, &emif->emif_rd_wr_lvl_ctl);
434
435 writel(regs->emif_ddr_phy_ctlr_1_init, &emif->emif_ddr_phy_ctrl_1);
436 writel(regs->emif_rd_wr_exec_thresh, &emif->emif_rd_wr_exec_thresh);
437
438 writel(regs->ref_ctrl, &emif->emif_sdram_ref_ctrl);
439
440 writel(regs->sdram_config2, &emif->emif_lpddr2_nvm_config);
441 writel(regs->sdram_config_init, &emif->emif_sdram_config);
442
443 __udelay(1000);
444
445 writel(regs->ref_ctrl_final, &emif->emif_sdram_ref_ctrl);
446
Lokesh Vutla650fda92017-12-29 11:47:48 +0530447 if (regs->emif_rd_wr_lvl_rmp_ctl & EMIF_REG_RDWRLVL_EN_MASK) {
448 /*
449 * Perform Dummy ECC setup just to allow hardware
450 * leveling of ECC memories
451 */
452 if (is_dra76x() && (base == EMIF1_BASE) &&
453 (regs->emif_ecc_ctrl_reg & EMIF_ECC_CTRL_REG_ECC_EN_MASK)) {
454 writel(0, &emif->emif_ecc_address_range_1);
455 writel(0, &emif->emif_ecc_address_range_2);
456 writel(EMIF_ECC_CTRL_REG_ECC_EN_MASK |
457 EMIF_ECC_CTRL_REG_ECC_ADDR_RGN_PROT_MASK,
458 &emif->emif_ecc_ctrl_reg);
459 }
460
Lokesh Vutla6213db72015-06-03 14:43:21 +0530461 dra7_ddr3_leveling(base, regs);
Lokesh Vutla650fda92017-12-29 11:47:48 +0530462
463 /* Disable ECC */
464 if (is_dra76x())
465 writel(0, &emif->emif_ecc_ctrl_reg);
466 }
467
468 /* Enable ECC as necessary */
469 dra7_enable_ecc(base, regs);
Lokesh Vutla6213db72015-06-03 14:43:21 +0530470}
471
472static void omap5_ddr3_init(u32 base, const struct emif_regs *regs)
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000473{
474 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000475
Lokesh Vutla802bb572015-02-16 10:15:56 +0530476 writel(regs->ref_ctrl, &emif->emif_sdram_ref_ctrl);
477 writel(regs->sdram_config_init, &emif->emif_sdram_config);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000478 /*
479 * Set SDRAM_CONFIG and PHY control registers to locked frequency
480 * and RL =7. As the default values of the Mode Registers are not
481 * defined, contents of mode Registers must be fully initialized.
482 * H/W takes care of this initialization
483 */
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000484 writel(regs->emif_ddr_phy_ctlr_1_init, &emif->emif_ddr_phy_ctrl_1);
485
486 /* Update timing registers */
487 writel(regs->sdram_tim1, &emif->emif_sdram_tim_1);
488 writel(regs->sdram_tim2, &emif->emif_sdram_tim_2);
489 writel(regs->sdram_tim3, &emif->emif_sdram_tim_3);
490
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000491 writel(regs->read_idle_ctrl, &emif->emif_read_idlectrl);
492
Lokesh Vutla6213db72015-06-03 14:43:21 +0530493 writel(regs->sdram_config2, &emif->emif_lpddr2_nvm_config);
494 writel(regs->sdram_config_init, &emif->emif_sdram_config);
495 do_ext_phy_settings(base, regs);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000496
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000497 writel(regs->emif_rd_wr_lvl_rmp_ctl, &emif->emif_rd_wr_lvl_rmp_ctl);
Lokesh Vutla6213db72015-06-03 14:43:21 +0530498 omap5_ddr3_leveling(base, regs);
499}
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000500
Lokesh Vutla6213db72015-06-03 14:43:21 +0530501static void ddr3_init(u32 base, const struct emif_regs *regs)
502{
503 if (is_omap54xx())
504 omap5_ddr3_init(base, regs);
505 else
506 dra7_ddr3_init(base, regs);
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000507}
Tom Rinif5af0822016-03-16 10:38:21 -0400508#endif
Lokesh Vutla784ab7c2012-05-22 00:03:25 +0000509
Aneesh V095aea22011-07-21 09:10:12 -0400510#ifndef CONFIG_SYS_EMIF_PRECALCULATED_TIMING_REGS
511#define print_timing_reg(reg) debug(#reg" - 0x%08x\n", (reg))
512
Aneesh V095aea22011-07-21 09:10:12 -0400513/*
514 * Organization and refresh requirements for LPDDR2 devices of different
515 * types and densities. Derived from JESD209-2 section 2.4
516 */
517const struct lpddr2_addressing addressing_table[] = {
518 /* Banks tREFIx10 rowx32,rowx16 colx32,colx16 density */
519 {BANKS4, T_REFI_15_6, {ROW_12, ROW_12}, {COL_7, COL_8} },/*64M */
520 {BANKS4, T_REFI_15_6, {ROW_12, ROW_12}, {COL_8, COL_9} },/*128M */
521 {BANKS4, T_REFI_7_8, {ROW_13, ROW_13}, {COL_8, COL_9} },/*256M */
522 {BANKS4, T_REFI_7_8, {ROW_13, ROW_13}, {COL_9, COL_10} },/*512M */
523 {BANKS8, T_REFI_7_8, {ROW_13, ROW_13}, {COL_9, COL_10} },/*1GS4 */
524 {BANKS8, T_REFI_3_9, {ROW_14, ROW_14}, {COL_9, COL_10} },/*2GS4 */
525 {BANKS8, T_REFI_3_9, {ROW_14, ROW_14}, {COL_10, COL_11} },/*4G */
526 {BANKS8, T_REFI_3_9, {ROW_15, ROW_15}, {COL_10, COL_11} },/*8G */
527 {BANKS4, T_REFI_7_8, {ROW_14, ROW_14}, {COL_9, COL_10} },/*1GS2 */
528 {BANKS4, T_REFI_3_9, {ROW_15, ROW_15}, {COL_9, COL_10} },/*2GS2 */
529};
530
531static const u32 lpddr2_density_2_size_in_mbytes[] = {
532 8, /* 64Mb */
533 16, /* 128Mb */
534 32, /* 256Mb */
535 64, /* 512Mb */
536 128, /* 1Gb */
537 256, /* 2Gb */
538 512, /* 4Gb */
539 1024, /* 8Gb */
540 2048, /* 16Gb */
541 4096 /* 32Gb */
542};
543
544/*
545 * Calculate the period of DDR clock from frequency value and set the
546 * denominator and numerator in global variables for easy access later
547 */
548static void set_ddr_clk_period(u32 freq)
549{
550 /*
551 * period = 1/freq
552 * period_in_ns = 10^9/freq
553 */
554 *T_num = 1000000000;
555 *T_den = freq;
556 cancel_out(T_num, T_den, 200);
557
558}
559
560/*
561 * Convert time in nano seconds to number of cycles of DDR clock
562 */
563static inline u32 ns_2_cycles(u32 ns)
564{
565 return ((ns * (*T_den)) + (*T_num) - 1) / (*T_num);
566}
567
568/*
569 * ns_2_cycles with the difference that the time passed is 2 times the actual
570 * value(to avoid fractions). The cycles returned is for the original value of
571 * the timing parameter
572 */
573static inline u32 ns_x2_2_cycles(u32 ns)
574{
575 return ((ns * (*T_den)) + (*T_num) * 2 - 1) / ((*T_num) * 2);
576}
577
578/*
579 * Find addressing table index based on the device's type(S2 or S4) and
580 * density
581 */
582s8 addressing_table_index(u8 type, u8 density, u8 width)
583{
584 u8 index;
585 if ((density > LPDDR2_DENSITY_8Gb) || (width == LPDDR2_IO_WIDTH_8))
586 return -1;
587
588 /*
589 * Look at the way ADDR_TABLE_INDEX* values have been defined
590 * in emif.h compared to LPDDR2_DENSITY_* values
591 * The table is layed out in the increasing order of density
592 * (ignoring type). The exceptions 1GS2 and 2GS2 have been placed
593 * at the end
594 */
595 if ((type == LPDDR2_TYPE_S2) && (density == LPDDR2_DENSITY_1Gb))
596 index = ADDR_TABLE_INDEX1GS2;
597 else if ((type == LPDDR2_TYPE_S2) && (density == LPDDR2_DENSITY_2Gb))
598 index = ADDR_TABLE_INDEX2GS2;
599 else
600 index = density;
601
602 debug("emif: addressing table index %d\n", index);
603
604 return index;
605}
606
607/*
608 * Find the the right timing table from the array of timing
609 * tables of the device using DDR clock frequency
610 */
611static const struct lpddr2_ac_timings *get_timings_table(const struct
Bin Mengd679a522018-02-12 17:54:36 +0800612 lpddr2_ac_timings *const *device_timings,
Aneesh V095aea22011-07-21 09:10:12 -0400613 u32 freq)
614{
615 u32 i, temp, freq_nearest;
616 const struct lpddr2_ac_timings *timings = 0;
617
618 emif_assert(freq <= MAX_LPDDR2_FREQ);
619 emif_assert(device_timings);
620
621 /*
622 * Start with the maximum allowed frequency - that is always safe
623 */
624 freq_nearest = MAX_LPDDR2_FREQ;
625 /*
626 * Find the timings table that has the max frequency value:
627 * i. Above or equal to the DDR frequency - safe
628 * ii. The lowest that satisfies condition (i) - optimal
629 */
630 for (i = 0; (i < MAX_NUM_SPEEDBINS) && device_timings[i]; i++) {
631 temp = device_timings[i]->max_freq;
632 if ((temp >= freq) && (temp <= freq_nearest)) {
633 freq_nearest = temp;
634 timings = device_timings[i];
635 }
636 }
637 debug("emif: timings table: %d\n", freq_nearest);
638 return timings;
639}
640
641/*
642 * Finds the value of emif_sdram_config_reg
643 * All parameters are programmed based on the device on CS0.
644 * If there is a device on CS1, it will be same as that on CS0 or
645 * it will be NVM. We don't support NVM yet.
646 * If cs1_device pointer is NULL it is assumed that there is no device
647 * on CS1
648 */
649static u32 get_sdram_config_reg(const struct lpddr2_device_details *cs0_device,
650 const struct lpddr2_device_details *cs1_device,
651 const struct lpddr2_addressing *addressing,
652 u8 RL)
653{
654 u32 config_reg = 0;
655
Sricharanbb772a52011-11-15 09:50:00 -0500656 config_reg |= (cs0_device->type + 4) << EMIF_REG_SDRAM_TYPE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400657 config_reg |= EMIF_INTERLEAVING_POLICY_MAX_INTERLEAVING <<
Sricharanbb772a52011-11-15 09:50:00 -0500658 EMIF_REG_IBANK_POS_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400659
Sricharanbb772a52011-11-15 09:50:00 -0500660 config_reg |= cs0_device->io_width << EMIF_REG_NARROW_MODE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400661
Sricharanbb772a52011-11-15 09:50:00 -0500662 config_reg |= RL << EMIF_REG_CL_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400663
664 config_reg |= addressing->row_sz[cs0_device->io_width] <<
Sricharanbb772a52011-11-15 09:50:00 -0500665 EMIF_REG_ROWSIZE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400666
Sricharanbb772a52011-11-15 09:50:00 -0500667 config_reg |= addressing->num_banks << EMIF_REG_IBANK_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400668
669 config_reg |= (cs1_device ? EBANK_CS1_EN : EBANK_CS1_DIS) <<
Sricharanbb772a52011-11-15 09:50:00 -0500670 EMIF_REG_EBANK_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400671
672 config_reg |= addressing->col_sz[cs0_device->io_width] <<
Sricharanbb772a52011-11-15 09:50:00 -0500673 EMIF_REG_PAGESIZE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400674
675 return config_reg;
676}
677
678static u32 get_sdram_ref_ctrl(u32 freq,
679 const struct lpddr2_addressing *addressing)
680{
681 u32 ref_ctrl = 0, val = 0, freq_khz;
682 freq_khz = freq / 1000;
683 /*
684 * refresh rate to be set is 'tREFI * freq in MHz
685 * division by 10000 to account for khz and x10 in t_REFI_us_x10
686 */
687 val = addressing->t_REFI_us_x10 * freq_khz / 10000;
Sricharanbb772a52011-11-15 09:50:00 -0500688 ref_ctrl |= val << EMIF_REG_REFRESH_RATE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400689
690 return ref_ctrl;
691}
692
693static u32 get_sdram_tim_1_reg(const struct lpddr2_ac_timings *timings,
694 const struct lpddr2_min_tck *min_tck,
695 const struct lpddr2_addressing *addressing)
696{
697 u32 tim1 = 0, val = 0;
698 val = max(min_tck->tWTR, ns_x2_2_cycles(timings->tWTRx2)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500699 tim1 |= val << EMIF_REG_T_WTR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400700
701 if (addressing->num_banks == BANKS8)
702 val = (timings->tFAW * (*T_den) + 4 * (*T_num) - 1) /
703 (4 * (*T_num)) - 1;
704 else
705 val = max(min_tck->tRRD, ns_2_cycles(timings->tRRD)) - 1;
706
Sricharanbb772a52011-11-15 09:50:00 -0500707 tim1 |= val << EMIF_REG_T_RRD_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400708
709 val = ns_2_cycles(timings->tRASmin + timings->tRPab) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500710 tim1 |= val << EMIF_REG_T_RC_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400711
712 val = max(min_tck->tRAS_MIN, ns_2_cycles(timings->tRASmin)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500713 tim1 |= val << EMIF_REG_T_RAS_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400714
715 val = max(min_tck->tWR, ns_2_cycles(timings->tWR)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500716 tim1 |= val << EMIF_REG_T_WR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400717
718 val = max(min_tck->tRCD, ns_2_cycles(timings->tRCD)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500719 tim1 |= val << EMIF_REG_T_RCD_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400720
721 val = max(min_tck->tRP_AB, ns_2_cycles(timings->tRPab)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500722 tim1 |= val << EMIF_REG_T_RP_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400723
724 return tim1;
725}
726
727static u32 get_sdram_tim_2_reg(const struct lpddr2_ac_timings *timings,
728 const struct lpddr2_min_tck *min_tck)
729{
730 u32 tim2 = 0, val = 0;
731 val = max(min_tck->tCKE, timings->tCKE) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500732 tim2 |= val << EMIF_REG_T_CKE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400733
734 val = max(min_tck->tRTP, ns_x2_2_cycles(timings->tRTPx2)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500735 tim2 |= val << EMIF_REG_T_RTP_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400736
737 /*
738 * tXSRD = tRFCab + 10 ns. XSRD and XSNR should have the
739 * same value
740 */
741 val = ns_2_cycles(timings->tXSR) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500742 tim2 |= val << EMIF_REG_T_XSRD_SHIFT;
743 tim2 |= val << EMIF_REG_T_XSNR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400744
745 val = max(min_tck->tXP, ns_x2_2_cycles(timings->tXPx2)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500746 tim2 |= val << EMIF_REG_T_XP_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400747
748 return tim2;
749}
750
751static u32 get_sdram_tim_3_reg(const struct lpddr2_ac_timings *timings,
752 const struct lpddr2_min_tck *min_tck,
753 const struct lpddr2_addressing *addressing)
754{
755 u32 tim3 = 0, val = 0;
756 val = min(timings->tRASmax * 10 / addressing->t_REFI_us_x10 - 1, 0xF);
Sricharanbb772a52011-11-15 09:50:00 -0500757 tim3 |= val << EMIF_REG_T_RAS_MAX_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400758
759 val = ns_2_cycles(timings->tRFCab) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500760 tim3 |= val << EMIF_REG_T_RFC_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400761
762 val = ns_x2_2_cycles(timings->tDQSCKMAXx2) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500763 tim3 |= val << EMIF_REG_T_TDQSCKMAX_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400764
765 val = ns_2_cycles(timings->tZQCS) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500766 tim3 |= val << EMIF_REG_ZQ_ZQCS_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400767
768 val = max(min_tck->tCKESR, ns_2_cycles(timings->tCKESR)) - 1;
Sricharanbb772a52011-11-15 09:50:00 -0500769 tim3 |= val << EMIF_REG_T_CKESR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400770
771 return tim3;
772}
773
774static u32 get_zq_config_reg(const struct lpddr2_device_details *cs1_device,
775 const struct lpddr2_addressing *addressing,
776 u8 volt_ramp)
777{
778 u32 zq = 0, val = 0;
779 if (volt_ramp)
780 val =
781 EMIF_ZQCS_INTERVAL_DVFS_IN_US * 10 /
782 addressing->t_REFI_us_x10;
783 else
784 val =
785 EMIF_ZQCS_INTERVAL_NORMAL_IN_US * 10 /
786 addressing->t_REFI_us_x10;
Sricharanbb772a52011-11-15 09:50:00 -0500787 zq |= val << EMIF_REG_ZQ_REFINTERVAL_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400788
Sricharanbb772a52011-11-15 09:50:00 -0500789 zq |= (REG_ZQ_ZQCL_MULT - 1) << EMIF_REG_ZQ_ZQCL_MULT_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400790
Sricharanbb772a52011-11-15 09:50:00 -0500791 zq |= (REG_ZQ_ZQINIT_MULT - 1) << EMIF_REG_ZQ_ZQINIT_MULT_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400792
Sricharanbb772a52011-11-15 09:50:00 -0500793 zq |= REG_ZQ_SFEXITEN_ENABLE << EMIF_REG_ZQ_SFEXITEN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400794
795 /*
796 * Assuming that two chipselects have a single calibration resistor
797 * If there are indeed two calibration resistors, then this flag should
798 * be enabled to take advantage of dual calibration feature.
799 * This data should ideally come from board files. But considering
800 * that none of the boards today have calibration resistors per CS,
801 * it would be an unnecessary overhead.
802 */
Sricharanbb772a52011-11-15 09:50:00 -0500803 zq |= REG_ZQ_DUALCALEN_DISABLE << EMIF_REG_ZQ_DUALCALEN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400804
Sricharanbb772a52011-11-15 09:50:00 -0500805 zq |= REG_ZQ_CS0EN_ENABLE << EMIF_REG_ZQ_CS0EN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400806
Sricharanbb772a52011-11-15 09:50:00 -0500807 zq |= (cs1_device ? 1 : 0) << EMIF_REG_ZQ_CS1EN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400808
809 return zq;
810}
811
812static u32 get_temp_alert_config(const struct lpddr2_device_details *cs1_device,
813 const struct lpddr2_addressing *addressing,
814 u8 is_derated)
815{
816 u32 alert = 0, interval;
817 interval =
818 TEMP_ALERT_POLL_INTERVAL_MS * 10000 / addressing->t_REFI_us_x10;
819 if (is_derated)
820 interval *= 4;
Sricharanbb772a52011-11-15 09:50:00 -0500821 alert |= interval << EMIF_REG_TA_REFINTERVAL_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400822
Sricharanbb772a52011-11-15 09:50:00 -0500823 alert |= TEMP_ALERT_CONFIG_DEVCT_1 << EMIF_REG_TA_DEVCNT_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400824
Sricharanbb772a52011-11-15 09:50:00 -0500825 alert |= TEMP_ALERT_CONFIG_DEVWDT_32 << EMIF_REG_TA_DEVWDT_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400826
Sricharanbb772a52011-11-15 09:50:00 -0500827 alert |= 1 << EMIF_REG_TA_SFEXITEN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400828
Sricharanbb772a52011-11-15 09:50:00 -0500829 alert |= 1 << EMIF_REG_TA_CS0EN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400830
Sricharanbb772a52011-11-15 09:50:00 -0500831 alert |= (cs1_device ? 1 : 0) << EMIF_REG_TA_CS1EN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400832
833 return alert;
834}
835
836static u32 get_read_idle_ctrl_reg(u8 volt_ramp)
837{
838 u32 idle = 0, val = 0;
839 if (volt_ramp)
Aneesh V924eb362011-07-21 09:29:26 -0400840 val = ns_2_cycles(READ_IDLE_INTERVAL_DVFS) / 64 - 1;
Aneesh V095aea22011-07-21 09:10:12 -0400841 else
842 /*Maximum value in normal conditions - suggested by hw team */
843 val = 0x1FF;
Sricharanbb772a52011-11-15 09:50:00 -0500844 idle |= val << EMIF_REG_READ_IDLE_INTERVAL_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400845
Sricharanbb772a52011-11-15 09:50:00 -0500846 idle |= EMIF_REG_READ_IDLE_LEN_VAL << EMIF_REG_READ_IDLE_LEN_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400847
848 return idle;
849}
850
851static u32 get_ddr_phy_ctrl_1(u32 freq, u8 RL)
852{
853 u32 phy = 0, val = 0;
854
Sricharanbb772a52011-11-15 09:50:00 -0500855 phy |= (RL + 2) << EMIF_REG_READ_LATENCY_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400856
857 if (freq <= 100000000)
858 val = EMIF_DLL_SLAVE_DLY_CTRL_100_MHZ_AND_LESS;
859 else if (freq <= 200000000)
860 val = EMIF_DLL_SLAVE_DLY_CTRL_200_MHZ;
861 else
862 val = EMIF_DLL_SLAVE_DLY_CTRL_400_MHZ;
Sricharanbb772a52011-11-15 09:50:00 -0500863 phy |= val << EMIF_REG_DLL_SLAVE_DLY_CTRL_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400864
865 /* Other fields are constant magic values. Hardcode them together */
866 phy |= EMIF_DDR_PHY_CTRL_1_BASE_VAL <<
Sricharanbb772a52011-11-15 09:50:00 -0500867 EMIF_EMIF_DDR_PHY_CTRL_1_BASE_VAL_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -0400868
869 return phy;
870}
871
Lokesh Vutlad3d82e92013-04-04 19:51:14 +0000872static u32 get_emif_mem_size(u32 base)
Aneesh V095aea22011-07-21 09:10:12 -0400873{
874 u32 size_mbytes = 0, temp;
Lokesh Vutlad3d82e92013-04-04 19:51:14 +0000875 struct emif_device_details dev_details;
876 struct lpddr2_device_details cs0_dev_details, cs1_dev_details;
877 u32 emif_nr = emif_num(base);
Aneesh V095aea22011-07-21 09:10:12 -0400878
Lokesh Vutlad3d82e92013-04-04 19:51:14 +0000879 emif_reset_phy(base);
880 dev_details.cs0_device_details = emif_get_device_details(emif_nr, CS0,
881 &cs0_dev_details);
882 dev_details.cs1_device_details = emif_get_device_details(emif_nr, CS1,
883 &cs1_dev_details);
884 emif_reset_phy(base);
Aneesh V095aea22011-07-21 09:10:12 -0400885
Lokesh Vutlad3d82e92013-04-04 19:51:14 +0000886 if (dev_details.cs0_device_details) {
887 temp = dev_details.cs0_device_details->density;
Aneesh V095aea22011-07-21 09:10:12 -0400888 size_mbytes += lpddr2_density_2_size_in_mbytes[temp];
889 }
890
Lokesh Vutlad3d82e92013-04-04 19:51:14 +0000891 if (dev_details.cs1_device_details) {
892 temp = dev_details.cs1_device_details->density;
Aneesh V095aea22011-07-21 09:10:12 -0400893 size_mbytes += lpddr2_density_2_size_in_mbytes[temp];
894 }
895 /* convert to bytes */
896 return size_mbytes << 20;
897}
898
899/* Gets the encoding corresponding to a given DMM section size */
900u32 get_dmm_section_size_map(u32 section_size)
901{
902 /*
903 * Section size mapping:
904 * 0x0: 16-MiB section
905 * 0x1: 32-MiB section
906 * 0x2: 64-MiB section
907 * 0x3: 128-MiB section
908 * 0x4: 256-MiB section
909 * 0x5: 512-MiB section
910 * 0x6: 1-GiB section
911 * 0x7: 2-GiB section
912 */
913 section_size >>= 24; /* divide by 16 MB */
914 return log_2_n_round_down(section_size);
915}
916
917static void emif_calculate_regs(
918 const struct emif_device_details *emif_dev_details,
919 u32 freq, struct emif_regs *regs)
920{
921 u32 temp, sys_freq;
922 const struct lpddr2_addressing *addressing;
923 const struct lpddr2_ac_timings *timings;
924 const struct lpddr2_min_tck *min_tck;
925 const struct lpddr2_device_details *cs0_dev_details =
926 emif_dev_details->cs0_device_details;
927 const struct lpddr2_device_details *cs1_dev_details =
928 emif_dev_details->cs1_device_details;
929 const struct lpddr2_device_timings *cs0_dev_timings =
930 emif_dev_details->cs0_device_timings;
931
932 emif_assert(emif_dev_details);
933 emif_assert(regs);
934 /*
935 * You can not have a device on CS1 without one on CS0
936 * So configuring EMIF without a device on CS0 doesn't
937 * make sense
938 */
939 emif_assert(cs0_dev_details);
940 emif_assert(cs0_dev_details->type != LPDDR2_TYPE_NVM);
941 /*
942 * If there is a device on CS1 it should be same type as CS0
943 * (or NVM. But NVM is not supported in this driver yet)
944 */
945 emif_assert((cs1_dev_details == NULL) ||
946 (cs1_dev_details->type == LPDDR2_TYPE_NVM) ||
947 (cs0_dev_details->type == cs1_dev_details->type));
948 emif_assert(freq <= MAX_LPDDR2_FREQ);
949
950 set_ddr_clk_period(freq);
951
952 /*
953 * The device on CS0 is used for all timing calculations
954 * There is only one set of registers for timings per EMIF. So, if the
955 * second CS(CS1) has a device, it should have the same timings as the
956 * device on CS0
957 */
958 timings = get_timings_table(cs0_dev_timings->ac_timings, freq);
959 emif_assert(timings);
960 min_tck = cs0_dev_timings->min_tck;
961
962 temp = addressing_table_index(cs0_dev_details->type,
963 cs0_dev_details->density,
964 cs0_dev_details->io_width);
965
966 emif_assert((temp >= 0));
967 addressing = &(addressing_table[temp]);
968 emif_assert(addressing);
969
970 sys_freq = get_sys_clk_freq();
971
972 regs->sdram_config_init = get_sdram_config_reg(cs0_dev_details,
973 cs1_dev_details,
974 addressing, RL_BOOT);
975
976 regs->sdram_config = get_sdram_config_reg(cs0_dev_details,
977 cs1_dev_details,
978 addressing, RL_FINAL);
979
980 regs->ref_ctrl = get_sdram_ref_ctrl(freq, addressing);
981
982 regs->sdram_tim1 = get_sdram_tim_1_reg(timings, min_tck, addressing);
983
984 regs->sdram_tim2 = get_sdram_tim_2_reg(timings, min_tck);
985
986 regs->sdram_tim3 = get_sdram_tim_3_reg(timings, min_tck, addressing);
987
988 regs->read_idle_ctrl = get_read_idle_ctrl_reg(LPDDR2_VOLTAGE_STABLE);
989
990 regs->temp_alert_config =
991 get_temp_alert_config(cs1_dev_details, addressing, 0);
992
993 regs->zq_config = get_zq_config_reg(cs1_dev_details, addressing,
994 LPDDR2_VOLTAGE_STABLE);
995
996 regs->emif_ddr_phy_ctlr_1_init =
997 get_ddr_phy_ctrl_1(sys_freq / 2, RL_BOOT);
998
999 regs->emif_ddr_phy_ctlr_1 =
1000 get_ddr_phy_ctrl_1(freq, RL_FINAL);
1001
1002 regs->freq = freq;
1003
1004 print_timing_reg(regs->sdram_config_init);
1005 print_timing_reg(regs->sdram_config);
1006 print_timing_reg(regs->ref_ctrl);
1007 print_timing_reg(regs->sdram_tim1);
1008 print_timing_reg(regs->sdram_tim2);
1009 print_timing_reg(regs->sdram_tim3);
1010 print_timing_reg(regs->read_idle_ctrl);
1011 print_timing_reg(regs->temp_alert_config);
1012 print_timing_reg(regs->zq_config);
1013 print_timing_reg(regs->emif_ddr_phy_ctlr_1);
1014 print_timing_reg(regs->emif_ddr_phy_ctlr_1_init);
1015}
1016#endif /* CONFIG_SYS_EMIF_PRECALCULATED_TIMING_REGS */
1017
Aneesh V1e463862011-07-21 09:10:15 -04001018#ifdef CONFIG_SYS_AUTOMATIC_SDRAM_DETECTION
1019const char *get_lpddr2_type(u8 type_id)
1020{
1021 switch (type_id) {
1022 case LPDDR2_TYPE_S4:
1023 return "LPDDR2-S4";
1024 case LPDDR2_TYPE_S2:
1025 return "LPDDR2-S2";
1026 default:
1027 return NULL;
1028 }
1029}
1030
1031const char *get_lpddr2_io_width(u8 width_id)
1032{
1033 switch (width_id) {
1034 case LPDDR2_IO_WIDTH_8:
1035 return "x8";
1036 case LPDDR2_IO_WIDTH_16:
1037 return "x16";
1038 case LPDDR2_IO_WIDTH_32:
1039 return "x32";
1040 default:
1041 return NULL;
1042 }
1043}
1044
1045const char *get_lpddr2_manufacturer(u32 manufacturer)
1046{
1047 switch (manufacturer) {
1048 case LPDDR2_MANUFACTURER_SAMSUNG:
1049 return "Samsung";
1050 case LPDDR2_MANUFACTURER_QIMONDA:
1051 return "Qimonda";
1052 case LPDDR2_MANUFACTURER_ELPIDA:
1053 return "Elpida";
1054 case LPDDR2_MANUFACTURER_ETRON:
1055 return "Etron";
1056 case LPDDR2_MANUFACTURER_NANYA:
1057 return "Nanya";
1058 case LPDDR2_MANUFACTURER_HYNIX:
1059 return "Hynix";
1060 case LPDDR2_MANUFACTURER_MOSEL:
1061 return "Mosel";
1062 case LPDDR2_MANUFACTURER_WINBOND:
1063 return "Winbond";
1064 case LPDDR2_MANUFACTURER_ESMT:
1065 return "ESMT";
1066 case LPDDR2_MANUFACTURER_SPANSION:
1067 return "Spansion";
1068 case LPDDR2_MANUFACTURER_SST:
1069 return "SST";
1070 case LPDDR2_MANUFACTURER_ZMOS:
1071 return "ZMOS";
1072 case LPDDR2_MANUFACTURER_INTEL:
1073 return "Intel";
1074 case LPDDR2_MANUFACTURER_NUMONYX:
1075 return "Numonyx";
1076 case LPDDR2_MANUFACTURER_MICRON:
1077 return "Micron";
1078 default:
1079 return NULL;
1080 }
1081}
1082
1083static void display_sdram_details(u32 emif_nr, u32 cs,
1084 struct lpddr2_device_details *device)
1085{
1086 const char *mfg_str;
1087 const char *type_str;
1088 char density_str[10];
1089 u32 density;
1090
1091 debug("EMIF%d CS%d\t", emif_nr, cs);
1092
1093 if (!device) {
1094 debug("None\n");
1095 return;
1096 }
1097
1098 mfg_str = get_lpddr2_manufacturer(device->manufacturer);
1099 type_str = get_lpddr2_type(device->type);
1100
1101 density = lpddr2_density_2_size_in_mbytes[device->density];
1102 if ((density / 1024 * 1024) == density) {
1103 density /= 1024;
1104 sprintf(density_str, "%d GB", density);
1105 } else
1106 sprintf(density_str, "%d MB", density);
1107 if (mfg_str && type_str)
1108 debug("%s\t\t%s\t%s\n", mfg_str, type_str, density_str);
1109}
1110
1111static u8 is_lpddr2_sdram_present(u32 base, u32 cs,
1112 struct lpddr2_device_details *lpddr2_device)
1113{
1114 u32 mr = 0, temp;
1115
1116 mr = get_mr(base, cs, LPDDR2_MR0);
1117 if (mr > 0xFF) {
1118 /* Mode register value bigger than 8 bit */
1119 return 0;
1120 }
1121
1122 temp = (mr & LPDDR2_MR0_DI_MASK) >> LPDDR2_MR0_DI_SHIFT;
1123 if (temp) {
1124 /* Not SDRAM */
1125 return 0;
1126 }
1127 temp = (mr & LPDDR2_MR0_DNVI_MASK) >> LPDDR2_MR0_DNVI_SHIFT;
1128
1129 if (temp) {
1130 /* DNV supported - But DNV is only supported for NVM */
1131 return 0;
1132 }
1133
1134 mr = get_mr(base, cs, LPDDR2_MR4);
1135 if (mr > 0xFF) {
1136 /* Mode register value bigger than 8 bit */
1137 return 0;
1138 }
1139
1140 mr = get_mr(base, cs, LPDDR2_MR5);
Steve Sakomanad0878a2012-05-30 07:38:08 +00001141 if (mr > 0xFF) {
Aneesh V1e463862011-07-21 09:10:15 -04001142 /* Mode register value bigger than 8 bit */
1143 return 0;
1144 }
1145
1146 if (!get_lpddr2_manufacturer(mr)) {
1147 /* Manufacturer not identified */
1148 return 0;
1149 }
1150 lpddr2_device->manufacturer = mr;
1151
1152 mr = get_mr(base, cs, LPDDR2_MR6);
1153 if (mr >= 0xFF) {
1154 /* Mode register value bigger than 8 bit */
1155 return 0;
1156 }
1157
1158 mr = get_mr(base, cs, LPDDR2_MR7);
1159 if (mr >= 0xFF) {
1160 /* Mode register value bigger than 8 bit */
1161 return 0;
1162 }
1163
1164 mr = get_mr(base, cs, LPDDR2_MR8);
1165 if (mr >= 0xFF) {
1166 /* Mode register value bigger than 8 bit */
1167 return 0;
1168 }
1169
1170 temp = (mr & MR8_TYPE_MASK) >> MR8_TYPE_SHIFT;
1171 if (!get_lpddr2_type(temp)) {
1172 /* Not SDRAM */
1173 return 0;
1174 }
1175 lpddr2_device->type = temp;
1176
1177 temp = (mr & MR8_DENSITY_MASK) >> MR8_DENSITY_SHIFT;
1178 if (temp > LPDDR2_DENSITY_32Gb) {
1179 /* Density not supported */
1180 return 0;
1181 }
1182 lpddr2_device->density = temp;
1183
1184 temp = (mr & MR8_IO_WIDTH_MASK) >> MR8_IO_WIDTH_SHIFT;
1185 if (!get_lpddr2_io_width(temp)) {
1186 /* IO width unsupported value */
1187 return 0;
1188 }
1189 lpddr2_device->io_width = temp;
1190
1191 /*
1192 * If all the above tests pass we should
1193 * have a device on this chip-select
1194 */
1195 return 1;
1196}
1197
Aneesh V025bc422011-09-08 11:05:53 -04001198struct lpddr2_device_details *emif_get_device_details(u32 emif_nr, u8 cs,
Aneesh V1e463862011-07-21 09:10:15 -04001199 struct lpddr2_device_details *lpddr2_dev_details)
1200{
1201 u32 phy;
Sricharanbb772a52011-11-15 09:50:00 -05001202 u32 base = (emif_nr == 1) ? EMIF1_BASE : EMIF2_BASE;
1203
Aneesh V1e463862011-07-21 09:10:15 -04001204 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
1205
1206 if (!lpddr2_dev_details)
1207 return NULL;
1208
1209 /* Do the minimum init for mode register accesses */
Lokesh Vutla784229c2012-05-29 19:26:42 +00001210 if (!(running_from_sdram() || warm_reset())) {
Aneesh V1e463862011-07-21 09:10:15 -04001211 phy = get_ddr_phy_ctrl_1(get_sys_clk_freq() / 2, RL_BOOT);
1212 writel(phy, &emif->emif_ddr_phy_ctrl_1);
1213 }
1214
1215 if (!(is_lpddr2_sdram_present(base, cs, lpddr2_dev_details)))
1216 return NULL;
1217
1218 display_sdram_details(emif_num(base), cs, lpddr2_dev_details);
1219
1220 return lpddr2_dev_details;
1221}
Aneesh V1e463862011-07-21 09:10:15 -04001222#endif /* CONFIG_SYS_AUTOMATIC_SDRAM_DETECTION */
1223
Aneesh V2ae610f2011-07-21 09:10:09 -04001224static void do_sdram_init(u32 base)
1225{
1226 const struct emif_regs *regs;
1227 u32 in_sdram, emif_nr;
1228
1229 debug(">>do_sdram_init() %x\n", base);
1230
1231 in_sdram = running_from_sdram();
Sricharanbb772a52011-11-15 09:50:00 -05001232 emif_nr = (base == EMIF1_BASE) ? 1 : 2;
Aneesh V2ae610f2011-07-21 09:10:09 -04001233
Aneesh V095aea22011-07-21 09:10:12 -04001234#ifdef CONFIG_SYS_EMIF_PRECALCULATED_TIMING_REGS
Aneesh V2ae610f2011-07-21 09:10:09 -04001235 emif_get_reg_dump(emif_nr, &regs);
1236 if (!regs) {
1237 debug("EMIF: reg dump not provided\n");
1238 return;
1239 }
Aneesh V095aea22011-07-21 09:10:12 -04001240#else
1241 /*
1242 * The user has not provided the register values. We need to
1243 * calculate it based on the timings and the DDR frequency
1244 */
1245 struct emif_device_details dev_details;
1246 struct emif_regs calculated_regs;
1247
1248 /*
1249 * Get device details:
1250 * - Discovered if CONFIG_SYS_AUTOMATIC_SDRAM_DETECTION is set
1251 * - Obtained from user otherwise
1252 */
1253 struct lpddr2_device_details cs0_dev_details, cs1_dev_details;
Aneesh V025bc422011-09-08 11:05:53 -04001254 emif_reset_phy(base);
Aneesh V4324c112011-11-21 23:39:02 +00001255 dev_details.cs0_device_details = emif_get_device_details(emif_nr, CS0,
Aneesh V025bc422011-09-08 11:05:53 -04001256 &cs0_dev_details);
Aneesh V4324c112011-11-21 23:39:02 +00001257 dev_details.cs1_device_details = emif_get_device_details(emif_nr, CS1,
Aneesh V025bc422011-09-08 11:05:53 -04001258 &cs1_dev_details);
1259 emif_reset_phy(base);
Aneesh V095aea22011-07-21 09:10:12 -04001260
1261 /* Return if no devices on this EMIF */
1262 if (!dev_details.cs0_device_details &&
1263 !dev_details.cs1_device_details) {
Aneesh V095aea22011-07-21 09:10:12 -04001264 return;
1265 }
1266
Aneesh V095aea22011-07-21 09:10:12 -04001267 /*
1268 * Get device timings:
1269 * - Default timings specified by JESD209-2 if
1270 * CONFIG_SYS_DEFAULT_LPDDR2_TIMINGS is set
1271 * - Obtained from user otherwise
1272 */
1273 emif_get_device_timings(emif_nr, &dev_details.cs0_device_timings,
1274 &dev_details.cs1_device_timings);
1275
1276 /* Calculate the register values */
Sricharan2e5ba482011-11-15 09:49:58 -05001277 emif_calculate_regs(&dev_details, omap_ddr_clk(), &calculated_regs);
Aneesh V095aea22011-07-21 09:10:12 -04001278 regs = &calculated_regs;
1279#endif /* CONFIG_SYS_EMIF_PRECALCULATED_TIMING_REGS */
Aneesh V2ae610f2011-07-21 09:10:09 -04001280
1281 /*
Tom Rinif5af0822016-03-16 10:38:21 -04001282 * Initializing the DDR device can not happen from SDRAM.
Aneesh V2ae610f2011-07-21 09:10:09 -04001283 * Changing the timing registers in EMIF can happen(going from one
1284 * OPP to another)
1285 */
Lokesh Vutlac997da52015-06-04 10:08:50 +05301286 if (!in_sdram && (!warm_reset() || is_dra7xx())) {
Tom Rini7c352cd2015-06-05 15:51:11 +05301287 if (emif_sdram_type(regs->sdram_config) ==
1288 EMIF_SDRAM_TYPE_LPDDR2)
Lokesh Vutla784ab7c2012-05-22 00:03:25 +00001289 lpddr2_init(base, regs);
Tom Rinif5af0822016-03-16 10:38:21 -04001290#ifndef CONFIG_OMAP44XX
Lokesh Vutla784ab7c2012-05-22 00:03:25 +00001291 else
1292 ddr3_init(base, regs);
Tom Rinif5af0822016-03-16 10:38:21 -04001293#endif
Lokesh Vutla784ab7c2012-05-22 00:03:25 +00001294 }
Matthijs van Duinc9592e32017-03-07 03:42:24 +01001295#ifdef CONFIG_OMAP54XX
Tom Rini7c352cd2015-06-05 15:51:11 +05301296 if (warm_reset() && (emif_sdram_type(regs->sdram_config) ==
Lokesh Vutlac997da52015-06-04 10:08:50 +05301297 EMIF_SDRAM_TYPE_DDR3) && !is_dra7xx()) {
Lokesh Vutla166e5cc2013-03-27 20:24:42 +00001298 set_lpmode_selfrefresh(base);
1299 emif_reset_phy(base);
Lokesh Vutla6213db72015-06-03 14:43:21 +05301300 omap5_ddr3_leveling(base, regs);
Lokesh Vutla166e5cc2013-03-27 20:24:42 +00001301 }
Tom Rinif5af0822016-03-16 10:38:21 -04001302#endif
Aneesh V2ae610f2011-07-21 09:10:09 -04001303
1304 /* Write to the shadow registers */
1305 emif_update_timings(base, regs);
1306
1307 debug("<<do_sdram_init() %x\n", base);
1308}
1309
Sricharanbb772a52011-11-15 09:50:00 -05001310void emif_post_init_config(u32 base)
Aneesh V2ae610f2011-07-21 09:10:09 -04001311{
1312 struct emif_reg_struct *emif = (struct emif_reg_struct *)base;
Sricharanbb772a52011-11-15 09:50:00 -05001313 u32 omap_rev = omap_revision();
1314
Aneesh V2ae610f2011-07-21 09:10:09 -04001315 /* reset phy on ES2.0 */
Sricharanbb772a52011-11-15 09:50:00 -05001316 if (omap_rev == OMAP4430_ES2_0)
Aneesh V2ae610f2011-07-21 09:10:09 -04001317 emif_reset_phy(base);
1318
1319 /* Put EMIF back in smart idle on ES1.0 */
Sricharanbb772a52011-11-15 09:50:00 -05001320 if (omap_rev == OMAP4430_ES1_0)
Aneesh V2ae610f2011-07-21 09:10:09 -04001321 writel(0x80000000, &emif->emif_pwr_mgmt_ctrl);
1322}
1323
Sricharanbb772a52011-11-15 09:50:00 -05001324void dmm_init(u32 base)
Aneesh V2ae610f2011-07-21 09:10:09 -04001325{
1326 const struct dmm_lisa_map_regs *lisa_map_regs;
Lokesh Vutla86021142012-11-15 21:06:33 +00001327 u32 i, section, valid;
Aneesh V2ae610f2011-07-21 09:10:09 -04001328
Aneesh V095aea22011-07-21 09:10:12 -04001329#ifdef CONFIG_SYS_EMIF_PRECALCULATED_TIMING_REGS
Aneesh V2ae610f2011-07-21 09:10:09 -04001330 emif_get_dmm_regs(&lisa_map_regs);
Aneesh V095aea22011-07-21 09:10:12 -04001331#else
1332 u32 emif1_size, emif2_size, mapped_size, section_map = 0;
1333 u32 section_cnt, sys_addr;
1334 struct dmm_lisa_map_regs lis_map_regs_calculated = {0};
Aneesh V2ae610f2011-07-21 09:10:09 -04001335
Aneesh V095aea22011-07-21 09:10:12 -04001336 mapped_size = 0;
1337 section_cnt = 3;
1338 sys_addr = CONFIG_SYS_SDRAM_BASE;
Lokesh Vutlad3d82e92013-04-04 19:51:14 +00001339 emif1_size = get_emif_mem_size(EMIF1_BASE);
1340 emif2_size = get_emif_mem_size(EMIF2_BASE);
Aneesh V095aea22011-07-21 09:10:12 -04001341 debug("emif1_size 0x%x emif2_size 0x%x\n", emif1_size, emif2_size);
1342
1343 if (!emif1_size && !emif2_size)
1344 return;
1345
1346 /* symmetric interleaved section */
1347 if (emif1_size && emif2_size) {
1348 mapped_size = min(emif1_size, emif2_size);
1349 section_map = DMM_LISA_MAP_INTERLEAVED_BASE_VAL;
Sricharanbb772a52011-11-15 09:50:00 -05001350 section_map |= 0 << EMIF_SDRC_ADDR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001351 /* only MSB */
1352 section_map |= (sys_addr >> 24) <<
Sricharanbb772a52011-11-15 09:50:00 -05001353 EMIF_SYS_ADDR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001354 section_map |= get_dmm_section_size_map(mapped_size * 2)
Sricharanbb772a52011-11-15 09:50:00 -05001355 << EMIF_SYS_SIZE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001356 lis_map_regs_calculated.dmm_lisa_map_3 = section_map;
1357 emif1_size -= mapped_size;
1358 emif2_size -= mapped_size;
1359 sys_addr += (mapped_size * 2);
1360 section_cnt--;
1361 }
1362
1363 /*
1364 * Single EMIF section(we can have a maximum of 1 single EMIF
1365 * section- either EMIF1 or EMIF2 or none, but not both)
1366 */
1367 if (emif1_size) {
1368 section_map = DMM_LISA_MAP_EMIF1_ONLY_BASE_VAL;
1369 section_map |= get_dmm_section_size_map(emif1_size)
Sricharanbb772a52011-11-15 09:50:00 -05001370 << EMIF_SYS_SIZE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001371 /* only MSB */
1372 section_map |= (mapped_size >> 24) <<
Sricharanbb772a52011-11-15 09:50:00 -05001373 EMIF_SDRC_ADDR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001374 /* only MSB */
Sricharanbb772a52011-11-15 09:50:00 -05001375 section_map |= (sys_addr >> 24) << EMIF_SYS_ADDR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001376 section_cnt--;
1377 }
1378 if (emif2_size) {
1379 section_map = DMM_LISA_MAP_EMIF2_ONLY_BASE_VAL;
1380 section_map |= get_dmm_section_size_map(emif2_size) <<
Sricharanbb772a52011-11-15 09:50:00 -05001381 EMIF_SYS_SIZE_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001382 /* only MSB */
Sricharanbb772a52011-11-15 09:50:00 -05001383 section_map |= mapped_size >> 24 << EMIF_SDRC_ADDR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001384 /* only MSB */
Sricharanbb772a52011-11-15 09:50:00 -05001385 section_map |= sys_addr >> 24 << EMIF_SYS_ADDR_SHIFT;
Aneesh V095aea22011-07-21 09:10:12 -04001386 section_cnt--;
1387 }
1388
1389 if (section_cnt == 2) {
1390 /* Only 1 section - either symmetric or single EMIF */
1391 lis_map_regs_calculated.dmm_lisa_map_3 = section_map;
1392 lis_map_regs_calculated.dmm_lisa_map_2 = 0;
1393 lis_map_regs_calculated.dmm_lisa_map_1 = 0;
1394 } else {
1395 /* 2 sections - 1 symmetric, 1 single EMIF */
1396 lis_map_regs_calculated.dmm_lisa_map_2 = section_map;
1397 lis_map_regs_calculated.dmm_lisa_map_1 = 0;
1398 }
1399
1400 /* TRAP for invalid TILER mappings in section 0 */
1401 lis_map_regs_calculated.dmm_lisa_map_0 = DMM_LISA_MAP_0_INVAL_ADDR_TRAP;
1402
Lokesh Vutlae3f53102013-06-19 10:50:45 +05301403 if (omap_revision() >= OMAP4460_ES1_0)
1404 lis_map_regs_calculated.is_ma_present = 1;
1405
Aneesh V095aea22011-07-21 09:10:12 -04001406 lisa_map_regs = &lis_map_regs_calculated;
1407#endif
Aneesh V2ae610f2011-07-21 09:10:09 -04001408 struct dmm_lisa_map_regs *hw_lisa_map_regs =
1409 (struct dmm_lisa_map_regs *)base;
1410
1411 writel(0, &hw_lisa_map_regs->dmm_lisa_map_3);
1412 writel(0, &hw_lisa_map_regs->dmm_lisa_map_2);
1413 writel(0, &hw_lisa_map_regs->dmm_lisa_map_1);
1414 writel(0, &hw_lisa_map_regs->dmm_lisa_map_0);
1415
1416 writel(lisa_map_regs->dmm_lisa_map_3,
1417 &hw_lisa_map_regs->dmm_lisa_map_3);
1418 writel(lisa_map_regs->dmm_lisa_map_2,
1419 &hw_lisa_map_regs->dmm_lisa_map_2);
1420 writel(lisa_map_regs->dmm_lisa_map_1,
1421 &hw_lisa_map_regs->dmm_lisa_map_1);
1422 writel(lisa_map_regs->dmm_lisa_map_0,
1423 &hw_lisa_map_regs->dmm_lisa_map_0);
Aneesh V924eb362011-07-21 09:29:26 -04001424
Lokesh Vutla78314192013-02-12 21:29:07 +00001425 if (lisa_map_regs->is_ma_present) {
Aneesh V924eb362011-07-21 09:29:26 -04001426 hw_lisa_map_regs =
Sricharanbb772a52011-11-15 09:50:00 -05001427 (struct dmm_lisa_map_regs *)MA_BASE;
Aneesh V924eb362011-07-21 09:29:26 -04001428
1429 writel(lisa_map_regs->dmm_lisa_map_3,
1430 &hw_lisa_map_regs->dmm_lisa_map_3);
1431 writel(lisa_map_regs->dmm_lisa_map_2,
1432 &hw_lisa_map_regs->dmm_lisa_map_2);
1433 writel(lisa_map_regs->dmm_lisa_map_1,
1434 &hw_lisa_map_regs->dmm_lisa_map_1);
1435 writel(lisa_map_regs->dmm_lisa_map_0,
1436 &hw_lisa_map_regs->dmm_lisa_map_0);
Lokesh Vutla29c20ba2016-03-05 17:32:31 +05301437
1438 setbits_le32(MA_PRIORITY, MA_HIMEM_INTERLEAVE_UN_MASK);
Aneesh V924eb362011-07-21 09:29:26 -04001439 }
Lokesh Vutla86021142012-11-15 21:06:33 +00001440
1441 /*
1442 * EMIF should be configured only when
1443 * memory is mapped on it. Using emif1_enabled
1444 * and emif2_enabled variables for this.
1445 */
1446 emif1_enabled = 0;
1447 emif2_enabled = 0;
1448 for (i = 0; i < 4; i++) {
1449 section = __raw_readl(DMM_BASE + i*4);
1450 valid = (section & EMIF_SDRC_MAP_MASK) >>
1451 (EMIF_SDRC_MAP_SHIFT);
1452 if (valid == 3) {
1453 emif1_enabled = 1;
1454 emif2_enabled = 1;
1455 break;
Lokesh Vutla86021142012-11-15 21:06:33 +00001456 }
Lokesh Vutla86021142012-11-15 21:06:33 +00001457
Felipe Balbidbf02ec2014-11-06 08:28:46 -06001458 if (valid == 1)
1459 emif1_enabled = 1;
1460
1461 if (valid == 2)
1462 emif2_enabled = 1;
1463 }
Aneesh V2ae610f2011-07-21 09:10:09 -04001464}
1465
SRICHARAN R54d022e2013-11-08 17:40:38 +05301466static void do_bug0039_workaround(u32 base)
1467{
1468 u32 val, i, clkctrl;
1469 struct emif_reg_struct *emif_base = (struct emif_reg_struct *)base;
1470 const struct read_write_regs *bug_00339_regs;
1471 u32 iterations;
1472 u32 *phy_status_base = &emif_base->emif_ddr_phy_status[0];
1473 u32 *phy_ctrl_base = &emif_base->emif_ddr_ext_phy_ctrl_1;
1474
1475 if (is_dra7xx())
1476 phy_status_base++;
1477
1478 bug_00339_regs = get_bug_regs(&iterations);
1479
1480 /* Put EMIF in to idle */
1481 clkctrl = __raw_readl((*prcm)->cm_memif_clkstctrl);
1482 __raw_writel(0x0, (*prcm)->cm_memif_clkstctrl);
1483
1484 /* Copy the phy status registers in to phy ctrl shadow registers */
1485 for (i = 0; i < iterations; i++) {
1486 val = __raw_readl(phy_status_base +
1487 bug_00339_regs[i].read_reg - 1);
1488
1489 __raw_writel(val, phy_ctrl_base +
1490 ((bug_00339_regs[i].write_reg - 1) << 1));
1491
1492 __raw_writel(val, phy_ctrl_base +
1493 (bug_00339_regs[i].write_reg << 1) - 1);
1494 }
1495
1496 /* Disable leveling */
1497 writel(0x0, &emif_base->emif_rd_wr_lvl_rmp_ctl);
1498
1499 __raw_writel(clkctrl, (*prcm)->cm_memif_clkstctrl);
1500}
1501
Aneesh V2ae610f2011-07-21 09:10:09 -04001502/*
1503 * SDRAM initialization:
1504 * SDRAM initialization has two parts:
1505 * 1. Configuring the SDRAM device
1506 * 2. Update the AC timings related parameters in the EMIF module
1507 * (1) should be done only once and should not be done while we are
1508 * running from SDRAM.
1509 * (2) can and should be done more than once if OPP changes.
1510 * Particularly, this may be needed when we boot without SPL and
1511 * and using Configuration Header(CH). ROM code supports only at 50% OPP
1512 * at boot (low power boot). So u-boot has to switch to OPP100 and update
1513 * the frequency. So,
1514 * Doing (1) and (2) makes sense - first time initialization
1515 * Doing (2) and not (1) makes sense - OPP change (when using CH)
1516 * Doing (1) and not (2) doen't make sense
1517 * See do_sdram_init() for the details
1518 */
1519void sdram_init(void)
1520{
1521 u32 in_sdram, size_prog, size_detect;
Tom Rini7c352cd2015-06-05 15:51:11 +05301522 struct emif_reg_struct *emif = (struct emif_reg_struct *)EMIF1_BASE;
1523 u32 sdram_type = emif_sdram_type(emif->emif_sdram_config);
Aneesh V2ae610f2011-07-21 09:10:09 -04001524
1525 debug(">>sdram_init()\n");
1526
Sricharan508a58f2011-11-15 09:49:55 -05001527 if (omap_hw_init_context() == OMAP_INIT_CONTEXT_UBOOT_AFTER_SPL)
Aneesh V2ae610f2011-07-21 09:10:09 -04001528 return;
1529
1530 in_sdram = running_from_sdram();
1531 debug("in_sdram = %d\n", in_sdram);
1532
Lokesh Vutla166e5cc2013-03-27 20:24:42 +00001533 if (!in_sdram) {
1534 if ((sdram_type == EMIF_SDRAM_TYPE_LPDDR2) && !warm_reset())
SRICHARAN R01b753f2013-02-04 04:22:00 +00001535 bypass_dpll((*prcm)->cm_clkmode_dpll_core);
Lokesh Vutla166e5cc2013-03-27 20:24:42 +00001536 else if (sdram_type == EMIF_SDRAM_TYPE_DDR3)
SRICHARAN R01b753f2013-02-04 04:22:00 +00001537 writel(CM_DLL_CTRL_NO_OVERRIDE, (*prcm)->cm_dll_ctrl);
Lokesh Vutla753bae82012-05-22 00:03:26 +00001538 }
Aneesh V2ae610f2011-07-21 09:10:09 -04001539
Lokesh Vutla784229c2012-05-29 19:26:42 +00001540 if (!in_sdram)
Sricharanbb772a52011-11-15 09:50:00 -05001541 dmm_init(DMM_BASE);
Lokesh Vutla784229c2012-05-29 19:26:42 +00001542
Lokesh Vutla86021142012-11-15 21:06:33 +00001543 if (emif1_enabled)
1544 do_sdram_init(EMIF1_BASE);
1545
1546 if (emif2_enabled)
1547 do_sdram_init(EMIF2_BASE);
1548
Lokesh Vutla784229c2012-05-29 19:26:42 +00001549 if (!(in_sdram || warm_reset())) {
Lokesh Vutla86021142012-11-15 21:06:33 +00001550 if (emif1_enabled)
1551 emif_post_init_config(EMIF1_BASE);
1552 if (emif2_enabled)
1553 emif_post_init_config(EMIF2_BASE);
Aneesh V2ae610f2011-07-21 09:10:09 -04001554 }
1555
1556 /* for the shadow registers to take effect */
Lokesh Vutla9ca8bfe2013-02-04 04:21:59 +00001557 if (sdram_type == EMIF_SDRAM_TYPE_LPDDR2)
Lokesh Vutla753bae82012-05-22 00:03:26 +00001558 freq_update_core();
Aneesh V2ae610f2011-07-21 09:10:09 -04001559
1560 /* Do some testing after the init */
1561 if (!in_sdram) {
Sricharan508a58f2011-11-15 09:49:55 -05001562 size_prog = omap_sdram_size();
SRICHARAN R41321fd2012-05-17 00:12:08 +00001563 size_prog = log_2_n_round_down(size_prog);
1564 size_prog = (1 << size_prog);
1565
Aneesh V2ae610f2011-07-21 09:10:09 -04001566 size_detect = get_ram_size((long *)CONFIG_SYS_SDRAM_BASE,
1567 size_prog);
1568 /* Compare with the size programmed */
1569 if (size_detect != size_prog) {
1570 printf("SDRAM: identified size not same as expected"
1571 " size identified: %x expected: %x\n",
1572 size_detect,
1573 size_prog);
1574 } else
1575 debug("get_ram_size() successful");
1576 }
1577
Daniel Allred501f0ef2016-09-02 00:40:22 -05001578#if defined(CONFIG_TI_SECURE_DEVICE)
1579 /*
1580 * On HS devices, do static EMIF firewall configuration
1581 * but only do it if not already running in SDRAM
1582 */
1583 if (!in_sdram)
1584 if (0 != secure_emif_reserve())
1585 hang();
1586
1587 /* On HS devices, ensure static EMIF firewall APIs are locked */
1588 if (0 != secure_emif_firewall_lock())
1589 hang();
1590#endif
1591
SRICHARAN R54d022e2013-11-08 17:40:38 +05301592 if (sdram_type == EMIF_SDRAM_TYPE_DDR3 &&
Sricharan Rf2a1b932014-07-31 12:05:50 +05301593 (!in_sdram && !warm_reset()) && (!is_dra7xx())) {
Lokesh Vutla9fcf3d32014-05-15 11:08:41 +05301594 if (emif1_enabled)
1595 do_bug0039_workaround(EMIF1_BASE);
1596 if (emif2_enabled)
1597 do_bug0039_workaround(EMIF2_BASE);
SRICHARAN R54d022e2013-11-08 17:40:38 +05301598 }
1599
Aneesh V2ae610f2011-07-21 09:10:09 -04001600 debug("<<sdram_init()\n");
1601}