1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright (c) 2011 The Chromium OS Authors.
4 */
5
6 #include <common.h>
7 #include <bootstage.h>
8 #include <cpu_func.h>
9 #include <dm.h>
10 #include <errno.h>
11 #include <log.h>
12 #include <asm/global_data.h>
13 #include <linux/delay.h>
14 #include <linux/libfdt.h>
15 #include <os.h>
16 #include <asm/io.h>
17 #include <asm/malloc.h>
18 #include <asm/setjmp.h>
19 #include <asm/state.h>
20 #include <dm/root.h>
21
22 DECLARE_GLOBAL_DATA_PTR;
23
24 /* Enable access to PCI memory with map_sysmem() */
25 static bool enable_pci_map;
26
27 #ifdef CONFIG_PCI
28 /* Last device that was mapped into memory, and length of mapping */
29 static struct udevice *map_dev;
30 unsigned long map_len;
31 #endif
32
sandbox_exit(void)33 void sandbox_exit(void)
34 {
35 /* Do this here while it still has an effect */
36 os_fd_restore();
37 if (state_uninit())
38 os_exit(2);
39
40 if (dm_uninit())
41 os_exit(2);
42
43 /* This is considered normal termination for now */
44 os_exit(0);
45 }
46
47 /* delay x useconds */
__udelay(unsigned long usec)48 void __udelay(unsigned long usec)
49 {
50 struct sandbox_state *state = state_get_current();
51
52 if (!state->skip_delays)
53 os_usleep(usec);
54 }
55
cleanup_before_linux(void)56 int cleanup_before_linux(void)
57 {
58 return 0;
59 }
60
cleanup_before_linux_select(int flags)61 int cleanup_before_linux_select(int flags)
62 {
63 return 0;
64 }
65
66 /**
67 * is_in_sandbox_mem() - Checks if a pointer is within sandbox's emulated DRAM
68 *
69 * This provides a way to check if a pointer is owned by sandbox (and is within
70 * its RAM) or not. Sometimes pointers come from a test which conceptually runs
71 * output sandbox, potentially with direct access to the C-library malloc()
72 * function, or the sandbox stack (which is not actually within the emulated
73 * DRAM.
74 *
75 * Such pointers obviously cannot be mapped into sandbox's DRAM, so we must
76 * detect them an process them separately, by recording a mapping to a tag,
77 * which we can use to map back to the pointer later.
78 *
79 * @ptr: Pointer to check
80 * @return true if this is within sandbox emulated DRAM, false if not
81 */
is_in_sandbox_mem(const void * ptr)82 static bool is_in_sandbox_mem(const void *ptr)
83 {
84 return (const uint8_t *)ptr >= gd->arch.ram_buf &&
85 (const uint8_t *)ptr < gd->arch.ram_buf + gd->ram_size;
86 }
87
88 /**
89 * phys_to_virt() - Converts a sandbox RAM address to a pointer
90 *
91 * Sandbox uses U-Boot addresses from 0 to the size of DRAM. These index into
92 * the emulated DRAM buffer used by sandbox. This function converts such an
93 * address to a pointer into this buffer, which can be used to access the
94 * memory.
95 *
96 * If the address is outside this range, it is assumed to be a tag
97 */
phys_to_virt(phys_addr_t paddr)98 void *phys_to_virt(phys_addr_t paddr)
99 {
100 struct sandbox_mapmem_entry *mentry;
101 struct sandbox_state *state;
102
103 /* If the address is within emulated DRAM, calculate the value */
104 if (paddr < gd->ram_size)
105 return (void *)(gd->arch.ram_buf + paddr);
106
107 /*
108 * Otherwise search out list of tags for the correct pointer previously
109 * created by map_to_sysmem()
110 */
111 state = state_get_current();
112 list_for_each_entry(mentry, &state->mapmem_head, sibling_node) {
113 if (mentry->tag == paddr) {
114 debug("%s: Used map from %lx to %p\n", __func__,
115 (ulong)paddr, mentry->ptr);
116 return mentry->ptr;
117 }
118 }
119
120 printf("%s: Cannot map sandbox address %lx (SDRAM from 0 to %lx)\n",
121 __func__, (ulong)paddr, (ulong)gd->ram_size);
122 os_abort();
123
124 /* Not reached */
125 return NULL;
126 }
127
find_tag(const void * ptr)128 struct sandbox_mapmem_entry *find_tag(const void *ptr)
129 {
130 struct sandbox_mapmem_entry *mentry;
131 struct sandbox_state *state = state_get_current();
132
133 list_for_each_entry(mentry, &state->mapmem_head, sibling_node) {
134 if (mentry->ptr == ptr) {
135 debug("%s: Used map from %p to %lx\n", __func__, ptr,
136 mentry->tag);
137 return mentry;
138 }
139 }
140 return NULL;
141 }
142
virt_to_phys(void * ptr)143 phys_addr_t virt_to_phys(void *ptr)
144 {
145 struct sandbox_mapmem_entry *mentry;
146
147 /*
148 * If it is in emulated RAM, don't bother looking for a tag. Just
149 * calculate the pointer using the provides offset into the RAM buffer.
150 */
151 if (is_in_sandbox_mem(ptr))
152 return (phys_addr_t)((uint8_t *)ptr - gd->arch.ram_buf);
153
154 mentry = find_tag(ptr);
155 if (!mentry) {
156 /* Abort so that gdb can be used here */
157 printf("%s: Cannot map sandbox address %p (SDRAM from 0 to %lx)\n",
158 __func__, ptr, (ulong)gd->ram_size);
159 os_abort();
160 }
161 debug("%s: Used map from %p to %lx\n", __func__, ptr, mentry->tag);
162
163 return mentry->tag;
164 }
165
map_physmem(phys_addr_t paddr,unsigned long len,unsigned long flags)166 void *map_physmem(phys_addr_t paddr, unsigned long len, unsigned long flags)
167 {
168 #if defined(CONFIG_PCI) && !defined(CONFIG_SPL_BUILD)
169 unsigned long plen = len;
170 void *ptr;
171
172 map_dev = NULL;
173 if (enable_pci_map && !pci_map_physmem(paddr, &len, &map_dev, &ptr)) {
174 if (plen != len) {
175 printf("%s: Warning: partial map at %x, wanted %lx, got %lx\n",
176 __func__, (uint)paddr, len, plen);
177 }
178 map_len = len;
179 return ptr;
180 }
181 #endif
182
183 return phys_to_virt(paddr);
184 }
185
unmap_physmem(const void * ptr,unsigned long flags)186 void unmap_physmem(const void *ptr, unsigned long flags)
187 {
188 #ifdef CONFIG_PCI
189 if (map_dev) {
190 pci_unmap_physmem(ptr, map_len, map_dev);
191 map_dev = NULL;
192 }
193 #endif
194 }
195
map_to_sysmem(const void * ptr)196 phys_addr_t map_to_sysmem(const void *ptr)
197 {
198 struct sandbox_mapmem_entry *mentry;
199
200 /*
201 * If it is in emulated RAM, don't bother creating a tag. Just return
202 * the offset into the RAM buffer.
203 */
204 if (is_in_sandbox_mem(ptr))
205 return (u8 *)ptr - gd->arch.ram_buf;
206
207 /*
208 * See if there is an existing tag with this pointer. If not, set up a
209 * new one.
210 */
211 mentry = find_tag(ptr);
212 if (!mentry) {
213 struct sandbox_state *state = state_get_current();
214
215 mentry = malloc(sizeof(*mentry));
216 if (!mentry) {
217 printf("%s: Error: Out of memory\n", __func__);
218 os_exit(ENOMEM);
219 }
220 mentry->tag = state->next_tag++;
221 mentry->ptr = (void *)ptr;
222 list_add_tail(&mentry->sibling_node, &state->mapmem_head);
223 debug("%s: Added map from %p to %lx\n", __func__, ptr,
224 (ulong)mentry->tag);
225 }
226
227 /*
228 * Return the tag as the address to use. A later call to map_sysmem()
229 * will return ptr
230 */
231 return mentry->tag;
232 }
233
sandbox_read(const void * addr,enum sandboxio_size_t size)234 unsigned int sandbox_read(const void *addr, enum sandboxio_size_t size)
235 {
236 struct sandbox_state *state = state_get_current();
237
238 if (!state->allow_memio)
239 return 0;
240
241 switch (size) {
242 case SB_SIZE_8:
243 return *(u8 *)addr;
244 case SB_SIZE_16:
245 return *(u16 *)addr;
246 case SB_SIZE_32:
247 return *(u32 *)addr;
248 case SB_SIZE_64:
249 return *(u64 *)addr;
250 }
251
252 return 0;
253 }
254
sandbox_write(void * addr,unsigned int val,enum sandboxio_size_t size)255 void sandbox_write(void *addr, unsigned int val, enum sandboxio_size_t size)
256 {
257 struct sandbox_state *state = state_get_current();
258
259 if (!state->allow_memio)
260 return;
261
262 switch (size) {
263 case SB_SIZE_8:
264 *(u8 *)addr = val;
265 break;
266 case SB_SIZE_16:
267 *(u16 *)addr = val;
268 break;
269 case SB_SIZE_32:
270 *(u32 *)addr = val;
271 break;
272 case SB_SIZE_64:
273 *(u64 *)addr = val;
274 break;
275 }
276 }
277
sandbox_set_enable_memio(bool enable)278 void sandbox_set_enable_memio(bool enable)
279 {
280 struct sandbox_state *state = state_get_current();
281
282 state->allow_memio = enable;
283 }
284
sandbox_set_enable_pci_map(int enable)285 void sandbox_set_enable_pci_map(int enable)
286 {
287 enable_pci_map = enable;
288 }
289
flush_dcache_range(unsigned long start,unsigned long stop)290 void flush_dcache_range(unsigned long start, unsigned long stop)
291 {
292 }
293
invalidate_dcache_range(unsigned long start,unsigned long stop)294 void invalidate_dcache_range(unsigned long start, unsigned long stop)
295 {
296 }
297
sandbox_read_fdt_from_file(void)298 int sandbox_read_fdt_from_file(void)
299 {
300 struct sandbox_state *state = state_get_current();
301 const char *fname = state->fdt_fname;
302 void *blob;
303 loff_t size;
304 int err;
305 int fd;
306
307 blob = map_sysmem(CONFIG_SYS_FDT_LOAD_ADDR, 0);
308 if (!state->fdt_fname) {
309 err = fdt_create_empty_tree(blob, 256);
310 if (!err)
311 goto done;
312 printf("Unable to create empty FDT: %s\n", fdt_strerror(err));
313 return -EINVAL;
314 }
315
316 err = os_get_filesize(fname, &size);
317 if (err < 0) {
318 printf("Failed to file FDT file '%s'\n", fname);
319 return err;
320 }
321 fd = os_open(fname, OS_O_RDONLY);
322 if (fd < 0) {
323 printf("Failed to open FDT file '%s'\n", fname);
324 return -EACCES;
325 }
326 if (os_read(fd, blob, size) != size) {
327 os_close(fd);
328 return -EIO;
329 }
330 os_close(fd);
331
332 done:
333 gd->fdt_blob = blob;
334
335 return 0;
336 }
337
timer_get_boot_us(void)338 ulong timer_get_boot_us(void)
339 {
340 static uint64_t base_count;
341 uint64_t count = os_get_nsec();
342
343 if (!base_count)
344 base_count = count;
345
346 return (count - base_count) / 1000;
347 }
348