]> git.proxmox.com Git - mirror_ubuntu-artful-kernel.git/blob - arch/mips/netlogic/xlp/nlm_hal.c
Merge branch '3.11-fixes' into mips-for-linux-next
[mirror_ubuntu-artful-kernel.git] / arch / mips / netlogic / xlp / nlm_hal.c
1 /*
2 * Copyright 2003-2011 NetLogic Microsystems, Inc. (NetLogic). All rights
3 * reserved.
4 *
5 * This software is available to you under a choice of one of two
6 * licenses. You may choose to be licensed under the terms of the GNU
7 * General Public License (GPL) Version 2, available from the file
8 * COPYING in the main directory of this source tree, or the NetLogic
9 * license below:
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 *
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in
19 * the documentation and/or other materials provided with the
20 * distribution.
21 *
22 * THIS SOFTWARE IS PROVIDED BY NETLOGIC ``AS IS'' AND ANY EXPRESS OR
23 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
24 * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 * ARE DISCLAIMED. IN NO EVENT SHALL NETLOGIC OR CONTRIBUTORS BE LIABLE
26 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
27 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
28 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
29 * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
30 * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE
31 * OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN
32 * IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 */
34
35 #include <linux/types.h>
36 #include <linux/kernel.h>
37 #include <linux/mm.h>
38 #include <linux/delay.h>
39
40 #include <asm/mipsregs.h>
41 #include <asm/time.h>
42
43 #include <asm/netlogic/common.h>
44 #include <asm/netlogic/haldefs.h>
45 #include <asm/netlogic/xlp-hal/iomap.h>
46 #include <asm/netlogic/xlp-hal/xlp.h>
47 #include <asm/netlogic/xlp-hal/bridge.h>
48 #include <asm/netlogic/xlp-hal/pic.h>
49 #include <asm/netlogic/xlp-hal/sys.h>
50
51 /* Main initialization */
52 void nlm_node_init(int node)
53 {
54 struct nlm_soc_info *nodep;
55
56 nodep = nlm_get_node(node);
57 nodep->sysbase = nlm_get_sys_regbase(node);
58 nodep->picbase = nlm_get_pic_regbase(node);
59 nodep->ebase = read_c0_ebase() & (~((1 << 12) - 1));
60 spin_lock_init(&nodep->piclock);
61 }
62
63 int nlm_irq_to_irt(int irq)
64 {
65 uint64_t pcibase;
66 int devoff, irt;
67
68 devoff = 0;
69 switch (irq) {
70 case PIC_UART_0_IRQ:
71 devoff = XLP_IO_UART0_OFFSET(0);
72 break;
73 case PIC_UART_1_IRQ:
74 devoff = XLP_IO_UART1_OFFSET(0);
75 break;
76 case PIC_MMC_IRQ:
77 devoff = XLP_IO_SD_OFFSET(0);
78 break;
79 case PIC_I2C_0_IRQ: /* I2C will be fixed up */
80 case PIC_I2C_1_IRQ:
81 case PIC_I2C_2_IRQ:
82 case PIC_I2C_3_IRQ:
83 if (cpu_is_xlpii())
84 devoff = XLP2XX_IO_I2C_OFFSET(0);
85 else
86 devoff = XLP_IO_I2C0_OFFSET(0);
87 break;
88 default:
89 if (cpu_is_xlpii()) {
90 switch (irq) {
91 /* XLP2XX has three XHCI USB controller */
92 case PIC_2XX_XHCI_0_IRQ:
93 devoff = XLP2XX_IO_USB_XHCI0_OFFSET(0);
94 break;
95 case PIC_2XX_XHCI_1_IRQ:
96 devoff = XLP2XX_IO_USB_XHCI1_OFFSET(0);
97 break;
98 case PIC_2XX_XHCI_2_IRQ:
99 devoff = XLP2XX_IO_USB_XHCI2_OFFSET(0);
100 break;
101 }
102 } else {
103 switch (irq) {
104 case PIC_EHCI_0_IRQ:
105 devoff = XLP_IO_USB_EHCI0_OFFSET(0);
106 break;
107 case PIC_EHCI_1_IRQ:
108 devoff = XLP_IO_USB_EHCI1_OFFSET(0);
109 break;
110 case PIC_OHCI_0_IRQ:
111 devoff = XLP_IO_USB_OHCI0_OFFSET(0);
112 break;
113 case PIC_OHCI_1_IRQ:
114 devoff = XLP_IO_USB_OHCI1_OFFSET(0);
115 break;
116 case PIC_OHCI_2_IRQ:
117 devoff = XLP_IO_USB_OHCI2_OFFSET(0);
118 break;
119 case PIC_OHCI_3_IRQ:
120 devoff = XLP_IO_USB_OHCI3_OFFSET(0);
121 break;
122 }
123 }
124 }
125
126 if (devoff != 0) {
127 pcibase = nlm_pcicfg_base(devoff);
128 irt = nlm_read_reg(pcibase, XLP_PCI_IRTINFO_REG) & 0xffff;
129 /* HW weirdness, I2C IRT entry has to be fixed up */
130 switch (irq) {
131 case PIC_I2C_1_IRQ:
132 irt = irt + 1; break;
133 case PIC_I2C_2_IRQ:
134 irt = irt + 2; break;
135 case PIC_I2C_3_IRQ:
136 irt = irt + 3; break;
137 }
138 } else if (irq >= PIC_PCIE_LINK_0_IRQ && irq <= PIC_PCIE_LINK_3_IRQ) {
139 /* HW bug, PCI IRT entries are bad on early silicon, fix */
140 irt = PIC_IRT_PCIE_LINK_INDEX(irq - PIC_PCIE_LINK_0_IRQ);
141 } else {
142 irt = -1;
143 }
144 return irt;
145 }
146
147 unsigned int nlm_get_core_frequency(int node, int core)
148 {
149 unsigned int pll_divf, pll_divr, dfs_div, ext_div;
150 unsigned int rstval, dfsval, denom;
151 uint64_t num, sysbase;
152
153 sysbase = nlm_get_node(node)->sysbase;
154 rstval = nlm_read_sys_reg(sysbase, SYS_POWER_ON_RESET_CFG);
155 if (cpu_is_xlpii()) {
156 num = 1000000ULL * (400 * 3 + 100 * (rstval >> 26));
157 denom = 3;
158 } else {
159 dfsval = nlm_read_sys_reg(sysbase, SYS_CORE_DFS_DIV_VALUE);
160 pll_divf = ((rstval >> 10) & 0x7f) + 1;
161 pll_divr = ((rstval >> 8) & 0x3) + 1;
162 ext_div = ((rstval >> 30) & 0x3) + 1;
163 dfs_div = ((dfsval >> (core * 4)) & 0xf) + 1;
164
165 num = 800000000ULL * pll_divf;
166 denom = 3 * pll_divr * ext_div * dfs_div;
167 }
168 do_div(num, denom);
169 return (unsigned int)num;
170 }
171
172 /* Calculate Frequency to the PIC from PLL.
173 * freq_out = ( ref_freq/2 * (6 + ctrl2[7:0]) + ctrl2[20:8]/2^13 ) /
174 * ((2^ctrl0[7:5]) * Table(ctrl0[26:24]))
175 */
176 static unsigned int nlm_2xx_get_pic_frequency(int node)
177 {
178 u32 ctrl_val0, ctrl_val2, vco_post_div, pll_post_div;
179 u32 mdiv, fdiv, pll_out_freq_den, reg_select, ref_div, pic_div;
180 u64 ref_clk, sysbase, pll_out_freq_num, ref_clk_select;
181
182 sysbase = nlm_get_node(node)->sysbase;
183
184 /* Find ref_clk_base */
185 ref_clk_select =
186 (nlm_read_sys_reg(sysbase, SYS_POWER_ON_RESET_CFG) >> 18) & 0x3;
187 switch (ref_clk_select) {
188 case 0:
189 ref_clk = 200000000ULL;
190 ref_div = 3;
191 break;
192 case 1:
193 ref_clk = 100000000ULL;
194 ref_div = 1;
195 break;
196 case 2:
197 ref_clk = 125000000ULL;
198 ref_div = 1;
199 break;
200 case 3:
201 ref_clk = 400000000ULL;
202 ref_div = 3;
203 break;
204 }
205
206 /* Find the clock source PLL device for PIC */
207 reg_select = (nlm_read_sys_reg(sysbase, SYS_CLK_DEV_SEL) >> 22) & 0x3;
208 switch (reg_select) {
209 case 0:
210 ctrl_val0 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL0);
211 ctrl_val2 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL2);
212 break;
213 case 1:
214 ctrl_val0 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL0_DEVX(0));
215 ctrl_val2 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL2_DEVX(0));
216 break;
217 case 2:
218 ctrl_val0 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL0_DEVX(1));
219 ctrl_val2 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL2_DEVX(1));
220 break;
221 case 3:
222 ctrl_val0 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL0_DEVX(2));
223 ctrl_val2 = nlm_read_sys_reg(sysbase, SYS_PLL_CTRL2_DEVX(2));
224 break;
225 }
226
227 vco_post_div = (ctrl_val0 >> 5) & 0x7;
228 pll_post_div = (ctrl_val0 >> 24) & 0x7;
229 mdiv = ctrl_val2 & 0xff;
230 fdiv = (ctrl_val2 >> 8) & 0xfff;
231
232 /* Find PLL post divider value */
233 switch (pll_post_div) {
234 case 1:
235 pll_post_div = 2;
236 break;
237 case 3:
238 pll_post_div = 4;
239 break;
240 case 7:
241 pll_post_div = 8;
242 break;
243 case 6:
244 pll_post_div = 16;
245 break;
246 case 0:
247 default:
248 pll_post_div = 1;
249 break;
250 }
251
252 fdiv = fdiv/(1 << 13);
253 pll_out_freq_num = ((ref_clk >> 1) * (6 + mdiv)) + fdiv;
254 pll_out_freq_den = (1 << vco_post_div) * pll_post_div * 3;
255
256 if (pll_out_freq_den > 0)
257 do_div(pll_out_freq_num, pll_out_freq_den);
258
259 /* PIC post divider, which happens after PLL */
260 pic_div = (nlm_read_sys_reg(sysbase, SYS_CLK_DEV_DIV) >> 22) & 0x3;
261 do_div(pll_out_freq_num, 1 << pic_div);
262
263 return pll_out_freq_num;
264 }
265
266 unsigned int nlm_get_pic_frequency(int node)
267 {
268 if (cpu_is_xlpii())
269 return nlm_2xx_get_pic_frequency(node);
270 else
271 return 133333333;
272 }
273
274 unsigned int nlm_get_cpu_frequency(void)
275 {
276 return nlm_get_core_frequency(0, 0);
277 }
278
279 /*
280 * Fills upto 8 pairs of entries containing the DRAM map of a node
281 * if n < 0, get dram map for all nodes
282 */
283 int xlp_get_dram_map(int n, uint64_t *dram_map)
284 {
285 uint64_t bridgebase, base, lim;
286 uint32_t val;
287 int i, node, rv;
288
289 /* Look only at mapping on Node 0, we don't handle crazy configs */
290 bridgebase = nlm_get_bridge_regbase(0);
291 rv = 0;
292 for (i = 0; i < 8; i++) {
293 val = nlm_read_bridge_reg(bridgebase,
294 BRIDGE_DRAM_NODE_TRANSLN(i));
295 node = (val >> 1) & 0x3;
296 if (n >= 0 && n != node)
297 continue;
298 val = nlm_read_bridge_reg(bridgebase, BRIDGE_DRAM_BAR(i));
299 val = (val >> 12) & 0xfffff;
300 base = (uint64_t) val << 20;
301 val = nlm_read_bridge_reg(bridgebase, BRIDGE_DRAM_LIMIT(i));
302 val = (val >> 12) & 0xfffff;
303 if (val == 0) /* BAR not used */
304 continue;
305 lim = ((uint64_t)val + 1) << 20;
306 dram_map[rv] = base;
307 dram_map[rv + 1] = lim;
308 rv += 2;
309 }
310 return rv;
311 }