iq80310_machdep.c revision 1.11 1 1.11 thorpej /* $NetBSD: iq80310_machdep.c,v 1.11 2001/11/27 00:34:48 thorpej Exp $ */
2 1.1 matt
3 1.1 matt /*
4 1.1 matt * Copyright (c) 1997,1998 Mark Brinicombe.
5 1.1 matt * Copyright (c) 1997,1998 Causality Limited.
6 1.1 matt * All rights reserved.
7 1.1 matt *
8 1.1 matt * Redistribution and use in source and binary forms, with or without
9 1.1 matt * modification, are permitted provided that the following conditions
10 1.1 matt * are met:
11 1.1 matt * 1. Redistributions of source code must retain the above copyright
12 1.1 matt * notice, this list of conditions and the following disclaimer.
13 1.1 matt * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 matt * notice, this list of conditions and the following disclaimer in the
15 1.1 matt * documentation and/or other materials provided with the distribution.
16 1.1 matt * 3. All advertising materials mentioning features or use of this software
17 1.1 matt * must display the following acknowledgement:
18 1.1 matt * This product includes software developed by Mark Brinicombe
19 1.1 matt * for the NetBSD Project.
20 1.1 matt * 4. The name of the company nor the name of the author may be used to
21 1.1 matt * endorse or promote products derived from this software without specific
22 1.1 matt * prior written permission.
23 1.1 matt *
24 1.1 matt * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR IMPLIED
25 1.1 matt * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
26 1.1 matt * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
27 1.1 matt * IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
28 1.1 matt * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
29 1.1 matt * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
30 1.1 matt * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 1.1 matt * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 1.1 matt * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 1.1 matt * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 1.1 matt * SUCH DAMAGE.
35 1.1 matt *
36 1.2 thorpej * Machine dependant functions for kernel setup for Intel IQ80310 evaluation
37 1.2 thorpej * boards using RedBoot firmware.
38 1.1 matt */
39 1.1 matt
40 1.1 matt #include "opt_ddb.h"
41 1.1 matt #include "opt_pmap_debug.h"
42 1.1 matt
43 1.1 matt #include <sys/param.h>
44 1.1 matt #include <sys/device.h>
45 1.1 matt #include <sys/systm.h>
46 1.1 matt #include <sys/kernel.h>
47 1.1 matt #include <sys/exec.h>
48 1.1 matt #include <sys/proc.h>
49 1.1 matt #include <sys/msgbuf.h>
50 1.1 matt #include <sys/reboot.h>
51 1.1 matt #include <sys/termios.h>
52 1.1 matt
53 1.1 matt #include <dev/cons.h>
54 1.1 matt
55 1.1 matt #include <machine/db_machdep.h>
56 1.1 matt #include <ddb/db_sym.h>
57 1.1 matt #include <ddb/db_extern.h>
58 1.1 matt
59 1.1 matt #include <machine/bootconfig.h>
60 1.1 matt #include <machine/bus.h>
61 1.1 matt #include <machine/cpu.h>
62 1.1 matt #include <machine/frame.h>
63 1.10 thorpej #include <arm/undefined.h>
64 1.1 matt
65 1.1 matt #include <arm/xscale/i80312reg.h>
66 1.1 matt #include <arm/xscale/i80312var.h>
67 1.1 matt
68 1.3 thorpej #include <dev/pci/ppbreg.h>
69 1.3 thorpej
70 1.2 thorpej #include <evbarm/iq80310/iq80310reg.h>
71 1.2 thorpej #include <evbarm/iq80310/iq80310var.h>
72 1.2 thorpej #include <evbarm/iq80310/obiovar.h>
73 1.2 thorpej
74 1.1 matt #include "opt_ipkdb.h"
75 1.1 matt
76 1.1 matt /*
77 1.1 matt * Address to call from cpu_reset() to reset the machine.
78 1.1 matt * This is machine architecture dependant as it varies depending
79 1.1 matt * on where the ROM appears when you turn the MMU off.
80 1.1 matt */
81 1.1 matt
82 1.2 thorpej u_int cpu_reset_address = 0;
83 1.1 matt
84 1.1 matt /* Define various stack sizes in pages */
85 1.1 matt #define IRQ_STACK_SIZE 1
86 1.1 matt #define ABT_STACK_SIZE 1
87 1.1 matt #ifdef IPKDB
88 1.1 matt #define UND_STACK_SIZE 2
89 1.1 matt #else
90 1.1 matt #define UND_STACK_SIZE 1
91 1.1 matt #endif
92 1.1 matt
93 1.1 matt BootConfig bootconfig; /* Boot config storage */
94 1.1 matt static char bootargs[MAX_BOOT_STRING + 1];
95 1.1 matt char *boot_args = NULL;
96 1.1 matt char *boot_file = NULL;
97 1.1 matt
98 1.1 matt vm_offset_t physical_start;
99 1.1 matt vm_offset_t physical_freestart;
100 1.1 matt vm_offset_t physical_freeend;
101 1.1 matt vm_offset_t physical_end;
102 1.1 matt u_int free_pages;
103 1.1 matt vm_offset_t pagetables_start;
104 1.1 matt int physmem = 0;
105 1.1 matt
106 1.1 matt /*int debug_flags;*/
107 1.1 matt #ifndef PMAP_STATIC_L1S
108 1.1 matt int max_processes = 64; /* Default number */
109 1.1 matt #endif /* !PMAP_STATIC_L1S */
110 1.1 matt
111 1.1 matt /* Physical and virtual addresses for some global pages */
112 1.1 matt pv_addr_t systempage;
113 1.1 matt pv_addr_t irqstack;
114 1.1 matt pv_addr_t undstack;
115 1.1 matt pv_addr_t abtstack;
116 1.1 matt pv_addr_t kernelstack;
117 1.8 thorpej pv_addr_t minidataclean;
118 1.1 matt
119 1.1 matt vm_offset_t msgbufphys;
120 1.1 matt
121 1.1 matt extern u_int data_abort_handler_address;
122 1.1 matt extern u_int prefetch_abort_handler_address;
123 1.1 matt extern u_int undefined_handler_address;
124 1.1 matt
125 1.1 matt #ifdef PMAP_DEBUG
126 1.1 matt extern int pmap_debug_level;
127 1.1 matt #endif
128 1.1 matt
129 1.1 matt #define KERNEL_PT_SYS 0 /* Page table for mapping proc0 zero page */
130 1.1 matt #define KERNEL_PT_KERNEL 1 /* Page table for mapping kernel */
131 1.3 thorpej #define KERNEL_PT_IOPXS 2 /* Page table for mapping i80312 */
132 1.3 thorpej #define KERNEL_PT_VMDATA 3 /* Page tables for mapping kernel VM */
133 1.1 matt #define KERNEL_PT_VMDATA_NUM (KERNEL_VM_SIZE >> (PDSHIFT + 2))
134 1.1 matt #define NUM_KERNEL_PTS (KERNEL_PT_VMDATA + KERNEL_PT_VMDATA_NUM)
135 1.1 matt
136 1.1 matt pt_entry_t kernel_pt_table[NUM_KERNEL_PTS];
137 1.1 matt
138 1.1 matt struct user *proc0paddr;
139 1.1 matt
140 1.1 matt /* Prototypes */
141 1.1 matt
142 1.2 thorpej void consinit(void);
143 1.1 matt
144 1.2 thorpej void map_section(vm_offset_t pt, vm_offset_t va, vm_offset_t pa,
145 1.2 thorpej int cacheable);
146 1.2 thorpej void map_pagetable(vm_offset_t pt, vm_offset_t va, vm_offset_t pa);
147 1.2 thorpej void map_entry(vm_offset_t pt, vm_offset_t va, vm_offset_t pa);
148 1.2 thorpej void map_entry_nc(vm_offset_t pt, vm_offset_t va, vm_offset_t pa);
149 1.2 thorpej void map_entry_ro(vm_offset_t pt, vm_offset_t va, vm_offset_t pa);
150 1.2 thorpej vm_size_t map_chunk(vm_offset_t pd, vm_offset_t pt, vm_offset_t va,
151 1.2 thorpej vm_offset_t pa, vm_size_t size, u_int acc, u_int flg);
152 1.2 thorpej
153 1.2 thorpej void process_kernel_args(char *);
154 1.2 thorpej void data_abort_handler(trapframe_t *frame);
155 1.2 thorpej void prefetch_abort_handler(trapframe_t *frame);
156 1.2 thorpej void undefinedinstruction_bounce(trapframe_t *frame);
157 1.2 thorpej
158 1.2 thorpej extern void parse_mi_bootargs(char *args);
159 1.2 thorpej extern void dumpsys(void);
160 1.1 matt
161 1.1 matt #include "com.h"
162 1.2 thorpej #if NCOM > 0
163 1.1 matt #include <dev/ic/comreg.h>
164 1.1 matt #include <dev/ic/comvar.h>
165 1.1 matt #endif
166 1.1 matt
167 1.1 matt #ifndef CONSPEED
168 1.2 thorpej #define CONSPEED B115200 /* What RedBoot uses */
169 1.1 matt #endif
170 1.1 matt #ifndef CONMODE
171 1.1 matt #define CONMODE ((TTYDEF_CFLAG & ~(CSIZE | CSTOPB | PARENB)) | CS8) /* 8N1 */
172 1.1 matt #endif
173 1.1 matt
174 1.1 matt int comcnspeed = CONSPEED;
175 1.1 matt int comcnmode = CONMODE;
176 1.1 matt
177 1.1 matt /*
178 1.1 matt * void cpu_reboot(int howto, char *bootstr)
179 1.1 matt *
180 1.1 matt * Reboots the system
181 1.1 matt *
182 1.1 matt * Deal with any syncing, unmounting, dumping and shutdown hooks,
183 1.1 matt * then reset the CPU.
184 1.1 matt */
185 1.1 matt void
186 1.1 matt cpu_reboot(int howto, char *bootstr)
187 1.1 matt {
188 1.1 matt #ifdef DIAGNOSTIC
189 1.1 matt /* info */
190 1.1 matt printf("boot: howto=%08x curproc=%p\n", howto, curproc);
191 1.1 matt #endif
192 1.1 matt
193 1.1 matt /*
194 1.1 matt * If we are still cold then hit the air brakes
195 1.1 matt * and crash to earth fast
196 1.1 matt */
197 1.1 matt if (cold) {
198 1.1 matt doshutdownhooks();
199 1.1 matt printf("The operating system has halted.\n");
200 1.1 matt printf("Please press any key to reboot.\n\n");
201 1.1 matt cngetc();
202 1.1 matt printf("rebooting...\n");
203 1.1 matt cpu_reset();
204 1.1 matt /*NOTREACHED*/
205 1.1 matt }
206 1.1 matt
207 1.1 matt /* Disable console buffering */
208 1.1 matt /* cnpollc(1);*/
209 1.1 matt
210 1.1 matt /*
211 1.1 matt * If RB_NOSYNC was not specified sync the discs.
212 1.2 thorpej * Note: Unless cold is set to 1 here, syslogd will die during the
213 1.2 thorpej * unmount. It looks like syslogd is getting woken up only to find
214 1.2 thorpej * that it cannot page part of the binary in as the filesystem has
215 1.2 thorpej * been unmounted.
216 1.1 matt */
217 1.1 matt if (!(howto & RB_NOSYNC))
218 1.1 matt bootsync();
219 1.1 matt
220 1.1 matt /* Say NO to interrupts */
221 1.1 matt splhigh();
222 1.1 matt
223 1.1 matt /* Do a dump if requested. */
224 1.1 matt if ((howto & (RB_DUMP | RB_HALT)) == RB_DUMP)
225 1.1 matt dumpsys();
226 1.1 matt
227 1.1 matt /* Run any shutdown hooks */
228 1.1 matt doshutdownhooks();
229 1.1 matt
230 1.1 matt /* Make sure IRQ's are disabled */
231 1.1 matt IRQdisable;
232 1.1 matt
233 1.1 matt if (howto & RB_HALT) {
234 1.1 matt printf("The operating system has halted.\n");
235 1.1 matt printf("Please press any key to reboot.\n\n");
236 1.1 matt cngetc();
237 1.1 matt }
238 1.1 matt
239 1.1 matt printf("rebooting...\n");
240 1.1 matt cpu_reset();
241 1.1 matt /*NOTREACHED*/
242 1.1 matt }
243 1.1 matt
244 1.1 matt /*
245 1.1 matt * Mapping table for core kernel memory. This memory is mapped at init
246 1.1 matt * time with section mappings.
247 1.1 matt */
248 1.1 matt struct l1_sec_map {
249 1.1 matt vaddr_t va;
250 1.1 matt vaddr_t pa;
251 1.1 matt vsize_t size;
252 1.1 matt int flags;
253 1.1 matt } l1_sec_table[] = {
254 1.2 thorpej /*
255 1.2 thorpej * Map the on-board devices VA == PA so that we can access them
256 1.2 thorpej * with the MMU on or off.
257 1.2 thorpej */
258 1.2 thorpej {
259 1.2 thorpej IQ80310_OBIO_BASE,
260 1.2 thorpej IQ80310_OBIO_BASE,
261 1.2 thorpej IQ80310_OBIO_SIZE,
262 1.2 thorpej 0,
263 1.2 thorpej },
264 1.2 thorpej
265 1.1 matt {
266 1.1 matt 0,
267 1.1 matt 0,
268 1.1 matt 0,
269 1.1 matt 0,
270 1.1 matt }
271 1.1 matt };
272 1.1 matt
273 1.1 matt /*
274 1.2 thorpej * u_int initarm(...)
275 1.1 matt *
276 1.1 matt * Initial entry point on startup. This gets called before main() is
277 1.1 matt * entered.
278 1.1 matt * It should be responsible for setting up everything that must be
279 1.1 matt * in place when main is called.
280 1.1 matt * This includes
281 1.1 matt * Taking a copy of the boot configuration structure.
282 1.1 matt * Initialising the physical console so characters can be printed.
283 1.1 matt * Setting up page tables for the kernel
284 1.1 matt * Relocating the kernel to the bottom of physical memory
285 1.1 matt */
286 1.1 matt u_int
287 1.2 thorpej initarm(void)
288 1.1 matt {
289 1.8 thorpej extern vaddr_t xscale_cache_clean_addr, xscale_minidata_clean_addr;
290 1.8 thorpej extern vsize_t xscale_minidata_clean_size;
291 1.1 matt int loop;
292 1.1 matt int loop1;
293 1.1 matt u_int l1pagetable;
294 1.1 matt u_int l2pagetable;
295 1.1 matt extern char page0[], page0_end[];
296 1.1 matt pv_addr_t kernel_l1pt;
297 1.1 matt pv_addr_t kernel_ptpt;
298 1.2 thorpej paddr_t memstart;
299 1.2 thorpej psize_t memsize;
300 1.2 thorpej
301 1.2 thorpej /*
302 1.2 thorpej * Clear out the 7-segment display. Whee, the first visual
303 1.2 thorpej * indication that we're running kernel code.
304 1.2 thorpej */
305 1.2 thorpej iq80310_7seg(' ', ' ');
306 1.1 matt
307 1.1 matt /*
308 1.1 matt * Heads up ... Setup the CPU / MMU / TLB functions
309 1.1 matt */
310 1.1 matt if (set_cpufuncs())
311 1.1 matt panic("cpu not recognized!");
312 1.1 matt
313 1.2 thorpej /* Calibrate the delay loop. */
314 1.2 thorpej iq80310_calibrate_delay();
315 1.1 matt
316 1.1 matt /*
317 1.2 thorpej * Since we map the on-board devices VA==PA, and the kernel
318 1.2 thorpej * is running VA==PA, it's possible for us to initialize
319 1.2 thorpej * the console now.
320 1.1 matt */
321 1.2 thorpej consinit();
322 1.1 matt
323 1.1 matt /* Talk to the user */
324 1.2 thorpej printf("\nNetBSD/evbarm (IQ80310) booting ...\n");
325 1.1 matt
326 1.1 matt /*
327 1.3 thorpej * Reset the secondary PCI bus. RedBoot doesn't stop devices
328 1.3 thorpej * on the PCI bus before handing us control, so we have to
329 1.3 thorpej * do this.
330 1.3 thorpej *
331 1.3 thorpej * XXX This is arguably a bug in RedBoot, and doing this reset
332 1.3 thorpej * XXX could be problematic in the future if we encounter an
333 1.3 thorpej * XXX application where the PPB in the i80312 is used as a
334 1.3 thorpej * XXX PPB.
335 1.3 thorpej */
336 1.3 thorpej {
337 1.3 thorpej uint32_t reg;
338 1.3 thorpej
339 1.3 thorpej printf("Resetting secondary PCI bus...\n");
340 1.3 thorpej reg = bus_space_read_4(&obio_bs_tag,
341 1.3 thorpej I80312_PMMR_BASE + I80312_PPB_BASE, PPB_REG_BRIDGECONTROL);
342 1.3 thorpej bus_space_write_4(&obio_bs_tag,
343 1.3 thorpej I80312_PMMR_BASE + I80312_PPB_BASE, PPB_REG_BRIDGECONTROL,
344 1.3 thorpej reg | PPB_BC_SECONDARY_RESET);
345 1.3 thorpej delay(10 * 1000); /* 10ms enough? */
346 1.3 thorpej bus_space_write_4(&obio_bs_tag,
347 1.3 thorpej I80312_PMMR_BASE + I80312_PPB_BASE, PPB_REG_BRIDGECONTROL,
348 1.3 thorpej reg);
349 1.3 thorpej }
350 1.3 thorpej
351 1.3 thorpej /*
352 1.2 thorpej * Okay, RedBoot has provided us with the following memory map:
353 1.2 thorpej *
354 1.2 thorpej * Physical Address Range Description
355 1.2 thorpej * ----------------------- ----------------------------------
356 1.2 thorpej * 0x00000000 - 0x00000fff flash Memory
357 1.2 thorpej * 0x00001000 - 0x00001fff 80312 Internal Registers
358 1.2 thorpej * 0x00002000 - 0x007fffff flash Memory
359 1.2 thorpej * 0x00800000 - 0x7fffffff PCI ATU Outbound Direct Window
360 1.2 thorpej * 0x80000000 - 0x83ffffff Primary PCI 32-bit Memory
361 1.2 thorpej * 0x84000000 - 0x87ffffff Primary PCI 64-bit Memory
362 1.2 thorpej * 0x88000000 - 0x8bffffff Secondary PCI 32-bit Memory
363 1.2 thorpej * 0x8c000000 - 0x8fffffff Secondary PCI 64-bit Memory
364 1.2 thorpej * 0x90000000 - 0x9000ffff Primary PCI IO Space
365 1.2 thorpej * 0x90010000 - 0x9001ffff Secondary PCI IO Space
366 1.2 thorpej * 0x90020000 - 0x9fffffff Unused
367 1.2 thorpej * 0xa0000000 - 0xbfffffff SDRAM
368 1.2 thorpej * 0xc0000000 - 0xefffffff Unused
369 1.2 thorpej * 0xf0000000 - 0xffffffff 80200 Internal Registers
370 1.2 thorpej *
371 1.1 matt *
372 1.2 thorpej * Virtual Address Range C B Description
373 1.2 thorpej * ----------------------- - - ----------------------------------
374 1.2 thorpej * 0x00000000 - 0x00000fff Y Y SDRAM
375 1.2 thorpej * 0x00001000 - 0x00001fff N N 80312 Internal Registers
376 1.2 thorpej * 0x00002000 - 0x007fffff Y N flash Memory
377 1.2 thorpej * 0x00800000 - 0x7fffffff N N PCI ATU Outbound Direct Window
378 1.2 thorpej * 0x80000000 - 0x83ffffff N N Primary PCI 32-bit Memory
379 1.2 thorpej * 0x84000000 - 0x87ffffff N N Primary PCI 64-bit Memory
380 1.2 thorpej * 0x88000000 - 0x8bffffff N N Secondary PCI 32-bit Memory
381 1.2 thorpej * 0x8c000000 - 0x8fffffff N N Secondary PCI 64-bit Memory
382 1.2 thorpej * 0x90000000 - 0x9000ffff N N Primary PCI IO Space
383 1.2 thorpej * 0x90010000 - 0x9001ffff N N Secondary PCI IO Space
384 1.2 thorpej * 0xa0000000 - 0xa0000fff Y N flash
385 1.2 thorpej * 0xa0001000 - 0xbfffffff Y Y SDRAM
386 1.2 thorpej * 0xc0000000 - 0xcfffffff Y Y Cache Flush Region
387 1.2 thorpej * 0xf0000000 - 0xffffffff N N 80200 Internal Registers
388 1.1 matt *
389 1.2 thorpej * The first level page table is at 0xa0004000. There are also
390 1.2 thorpej * 2 second-level tables at 0xa0008000 and 0xa0008400.
391 1.1 matt *
392 1.2 thorpej * This corresponds roughly to the physical memory map, i.e.
393 1.2 thorpej * we are quite nearly running VA==PA.
394 1.1 matt */
395 1.1 matt
396 1.1 matt /*
397 1.1 matt * Examine the boot args string for options we need to know about
398 1.1 matt * now.
399 1.1 matt */
400 1.1 matt #if 0
401 1.1 matt process_kernel_args((char *)nwbootinfo.bt_args);
402 1.1 matt #endif
403 1.1 matt
404 1.2 thorpej /*
405 1.2 thorpej * Fetch the SDRAM start/size from the i80312 SDRAM configration
406 1.2 thorpej * registers.
407 1.2 thorpej */
408 1.3 thorpej i80312_sdram_bounds(&obio_bs_tag, I80312_PMMR_BASE + I80312_MEM_BASE,
409 1.3 thorpej &memstart, &memsize);
410 1.2 thorpej
411 1.1 matt printf("initarm: Configuring system ...\n");
412 1.1 matt
413 1.2 thorpej /* Fake bootconfig structure for the benefit of pmap.c */
414 1.2 thorpej /* XXX must make the memory description h/w independant */
415 1.2 thorpej bootconfig.dramblocks = 1;
416 1.2 thorpej bootconfig.dram[0].address = memstart;
417 1.2 thorpej bootconfig.dram[0].pages = memsize / NBPG;
418 1.2 thorpej
419 1.1 matt /*
420 1.1 matt * Set up the variables that define the availablilty of
421 1.2 thorpej * physical memory. For now, we're going to set
422 1.2 thorpej * physical_freestart to 0xa0200000 (where the kernel
423 1.2 thorpej * was loaded), and allocate the memory we need downwards.
424 1.2 thorpej * If we get too close to the page tables that RedBoot
425 1.2 thorpej * set up, we will panic. We will update physical_freestart
426 1.2 thorpej * and physical_freeend later to reflect what pmap_bootstrap()
427 1.2 thorpej * wants to see.
428 1.2 thorpej *
429 1.2 thorpej * XXX pmap_bootstrap() needs an enema.
430 1.1 matt */
431 1.2 thorpej physical_start = bootconfig.dram[0].address;
432 1.2 thorpej physical_end = physical_start + (bootconfig.dram[0].pages * NBPG);
433 1.2 thorpej
434 1.2 thorpej physical_freestart = 0xa0009000UL;
435 1.2 thorpej physical_freeend = 0xa0200000UL;
436 1.2 thorpej
437 1.1 matt physmem = (physical_end - physical_start) / NBPG;
438 1.1 matt
439 1.1 matt /* Tell the user about the memory */
440 1.1 matt printf("physmemory: %d pages at 0x%08lx -> 0x%08lx\n", physmem,
441 1.1 matt physical_start, physical_end - 1);
442 1.1 matt
443 1.1 matt /*
444 1.2 thorpej * Okay, the kernel starts 2MB in from the bottom of physical
445 1.2 thorpej * memory. We are going to allocate our bootstrap pages downwards
446 1.2 thorpej * from there.
447 1.2 thorpej *
448 1.2 thorpej * We need to allocate some fixed page tables to get the kernel
449 1.2 thorpej * going. We allocate one page directory and a number of page
450 1.2 thorpej * tables and store the physical addresses in the kernel_pt_table
451 1.2 thorpej * array.
452 1.1 matt *
453 1.2 thorpej * The kernel page directory must be on a 16K boundary. The page
454 1.2 thorpej * tables must be on 4K bounaries. What we do is allocate the
455 1.2 thorpej * page directory on the first 16K boundary that we encounter, and
456 1.2 thorpej * the page tables on 4K boundaries otherwise. Since we allocate
457 1.2 thorpej * at least 3 L2 page tables, we are guaranteed to encounter at
458 1.2 thorpej * least one 16K aligned region.
459 1.1 matt */
460 1.1 matt
461 1.1 matt #ifdef VERBOSE_INIT_ARM
462 1.1 matt printf("Allocating page tables\n");
463 1.1 matt #endif
464 1.1 matt
465 1.2 thorpej free_pages = (physical_freeend - physical_freestart) / NBPG;
466 1.1 matt
467 1.1 matt #ifdef VERBOSE_INIT_ARM
468 1.2 thorpej printf("freestart = 0x%08lx, free_pages = %d (0x%08x)\n",
469 1.1 matt physical_freestart, free_pages, free_pages);
470 1.1 matt #endif
471 1.1 matt
472 1.1 matt /* Define a macro to simplify memory allocation */
473 1.2 thorpej #define valloc_pages(var, np) \
474 1.2 thorpej alloc_pages((var).pv_pa, (np)); \
475 1.1 matt (var).pv_va = KERNEL_BASE + (var).pv_pa - physical_start;
476 1.1 matt
477 1.2 thorpej #define alloc_pages(var, np) \
478 1.2 thorpej physical_freeend -= ((np) * NBPG); \
479 1.2 thorpej if (physical_freeend < physical_freestart) \
480 1.2 thorpej panic("initarm: out of memory"); \
481 1.2 thorpej (var) = physical_freeend; \
482 1.2 thorpej free_pages -= (np); \
483 1.1 matt memset((char *)(var), 0, ((np) * NBPG));
484 1.1 matt
485 1.1 matt loop1 = 0;
486 1.1 matt kernel_l1pt.pv_pa = 0;
487 1.1 matt for (loop = 0; loop <= NUM_KERNEL_PTS; ++loop) {
488 1.1 matt /* Are we 16KB aligned for an L1 ? */
489 1.2 thorpej if (((physical_freeend - PD_SIZE) & (PD_SIZE - 1)) == 0
490 1.1 matt && kernel_l1pt.pv_pa == 0) {
491 1.1 matt valloc_pages(kernel_l1pt, PD_SIZE / NBPG);
492 1.1 matt } else {
493 1.1 matt alloc_pages(kernel_pt_table[loop1], PT_SIZE / NBPG);
494 1.1 matt ++loop1;
495 1.1 matt }
496 1.1 matt }
497 1.1 matt
498 1.1 matt /* This should never be able to happen but better confirm that. */
499 1.1 matt if (!kernel_l1pt.pv_pa || (kernel_l1pt.pv_pa & (PD_SIZE-1)) != 0)
500 1.1 matt panic("initarm: Failed to align the kernel page directory\n");
501 1.1 matt
502 1.1 matt /*
503 1.1 matt * Allocate a page for the system page mapped to V0x00000000
504 1.1 matt * This page will just contain the system vectors and can be
505 1.1 matt * shared by all processes.
506 1.1 matt */
507 1.1 matt alloc_pages(systempage.pv_pa, 1);
508 1.1 matt
509 1.2 thorpej /* Allocate a page for the page table to map kernel page tables. */
510 1.1 matt valloc_pages(kernel_ptpt, PT_SIZE / NBPG);
511 1.1 matt
512 1.1 matt /* Allocate stacks for all modes */
513 1.1 matt valloc_pages(irqstack, IRQ_STACK_SIZE);
514 1.1 matt valloc_pages(abtstack, ABT_STACK_SIZE);
515 1.1 matt valloc_pages(undstack, UND_STACK_SIZE);
516 1.1 matt valloc_pages(kernelstack, UPAGES);
517 1.1 matt
518 1.8 thorpej /* Allocate enough pages for cleaning the Mini-Data cache. */
519 1.8 thorpej KASSERT(xscale_minidata_clean_size <= NBPG);
520 1.8 thorpej valloc_pages(minidataclean, 1);
521 1.8 thorpej xscale_minidata_clean_addr = minidataclean.pv_va;
522 1.8 thorpej
523 1.1 matt #ifdef VERBOSE_INIT_ARM
524 1.2 thorpej printf("IRQ stack: p0x%08lx v0x%08lx\n", irqstack.pv_pa,
525 1.2 thorpej irqstack.pv_va);
526 1.2 thorpej printf("ABT stack: p0x%08lx v0x%08lx\n", abtstack.pv_pa,
527 1.2 thorpej abtstack.pv_va);
528 1.2 thorpej printf("UND stack: p0x%08lx v0x%08lx\n", undstack.pv_pa,
529 1.2 thorpej undstack.pv_va);
530 1.2 thorpej printf("SVC stack: p0x%08lx v0x%08lx\n", kernelstack.pv_pa,
531 1.2 thorpej kernelstack.pv_va);
532 1.1 matt #endif
533 1.1 matt
534 1.2 thorpej /*
535 1.2 thorpej * XXX Defer this to later so that we can reclaim the memory
536 1.2 thorpej * XXX used by the RedBoot page tables.
537 1.2 thorpej */
538 1.1 matt alloc_pages(msgbufphys, round_page(MSGBUFSIZE) / NBPG);
539 1.1 matt
540 1.1 matt /*
541 1.1 matt * Ok we have allocated physical pages for the primary kernel
542 1.1 matt * page tables
543 1.1 matt */
544 1.1 matt
545 1.1 matt #ifdef VERBOSE_INIT_ARM
546 1.2 thorpej printf("Creating L1 page table at 0x%08lx\n", kernel_l1pt.pv_pa);
547 1.1 matt #endif
548 1.1 matt
549 1.1 matt /*
550 1.1 matt * Now we start consturction of the L1 page table
551 1.1 matt * We start by mapping the L2 page tables into the L1.
552 1.1 matt * This means that we can replace L1 mappings later on if necessary
553 1.1 matt */
554 1.1 matt l1pagetable = kernel_l1pt.pv_pa;
555 1.1 matt
556 1.1 matt /* Map the L2 pages tables in the L1 page table */
557 1.1 matt map_pagetable(l1pagetable, 0x00000000,
558 1.1 matt kernel_pt_table[KERNEL_PT_SYS]);
559 1.1 matt map_pagetable(l1pagetable, KERNEL_BASE,
560 1.1 matt kernel_pt_table[KERNEL_PT_KERNEL]);
561 1.3 thorpej map_pagetable(l1pagetable, IQ80310_IOPXS_VBASE,
562 1.3 thorpej kernel_pt_table[KERNEL_PT_IOPXS]);
563 1.1 matt for (loop = 0; loop < KERNEL_PT_VMDATA_NUM; ++loop)
564 1.1 matt map_pagetable(l1pagetable, KERNEL_VM_BASE + loop * 0x00400000,
565 1.1 matt kernel_pt_table[KERNEL_PT_VMDATA + loop]);
566 1.1 matt map_pagetable(l1pagetable, PROCESS_PAGE_TBLS_BASE,
567 1.1 matt kernel_ptpt.pv_pa);
568 1.1 matt
569 1.1 matt #ifdef VERBOSE_INIT_ARM
570 1.1 matt printf("Mapping kernel\n");
571 1.1 matt #endif
572 1.1 matt
573 1.1 matt /* Now we fill in the L2 pagetable for the kernel static code/data */
574 1.1 matt l2pagetable = kernel_pt_table[KERNEL_PT_KERNEL];
575 1.1 matt
576 1.1 matt {
577 1.2 thorpej extern char etext[], _end[];
578 1.2 thorpej size_t textsize = (uintptr_t) etext - KERNEL_TEXT_BASE;
579 1.2 thorpej size_t totalsize = (uintptr_t) _end - KERNEL_TEXT_BASE;
580 1.1 matt u_int logical;
581 1.1 matt
582 1.2 thorpej /* Round down text size and round up total size. */
583 1.1 matt textsize = textsize & ~PGOFSET;
584 1.1 matt totalsize = (totalsize + PGOFSET) & ~PGOFSET;
585 1.2 thorpej
586 1.2 thorpej logical = 0x00200000; /* offset of kernel in RAM */
587 1.2 thorpej
588 1.2 thorpej /*
589 1.2 thorpej * This maps the kernel text/data/bss VA==PA.
590 1.2 thorpej */
591 1.1 matt logical += map_chunk(0, l2pagetable, KERNEL_BASE + logical,
592 1.1 matt physical_start + logical, textsize,
593 1.1 matt AP_KRW, PT_CACHEABLE);
594 1.1 matt logical += map_chunk(0, l2pagetable, KERNEL_BASE + logical,
595 1.1 matt physical_start + logical, totalsize - textsize,
596 1.1 matt AP_KRW, PT_CACHEABLE);
597 1.2 thorpej
598 1.2 thorpej #if 0 /* XXX No symbols yet. */
599 1.1 matt logical += map_chunk(0, l2pagetable, KERNEL_BASE + logical,
600 1.1 matt physical_start + logical, kernexec->a_syms + sizeof(int)
601 1.1 matt + *(u_int *)((int)end + kernexec->a_syms + sizeof(int)),
602 1.1 matt AP_KRW, PT_CACHEABLE);
603 1.1 matt #endif
604 1.1 matt }
605 1.1 matt
606 1.1 matt #ifdef VERBOSE_INIT_ARM
607 1.1 matt printf("Constructing L2 page tables\n");
608 1.1 matt #endif
609 1.1 matt
610 1.1 matt /* Map the stack pages */
611 1.1 matt map_chunk(0, l2pagetable, irqstack.pv_va, irqstack.pv_pa,
612 1.1 matt IRQ_STACK_SIZE * NBPG, AP_KRW, PT_CACHEABLE);
613 1.1 matt map_chunk(0, l2pagetable, abtstack.pv_va, abtstack.pv_pa,
614 1.1 matt ABT_STACK_SIZE * NBPG, AP_KRW, PT_CACHEABLE);
615 1.1 matt map_chunk(0, l2pagetable, undstack.pv_va, undstack.pv_pa,
616 1.1 matt UND_STACK_SIZE * NBPG, AP_KRW, PT_CACHEABLE);
617 1.1 matt map_chunk(0, l2pagetable, kernelstack.pv_va, kernelstack.pv_pa,
618 1.1 matt UPAGES * NBPG, AP_KRW, PT_CACHEABLE);
619 1.1 matt map_chunk(0, l2pagetable, kernel_l1pt.pv_va, kernel_l1pt.pv_pa,
620 1.1 matt PD_SIZE, AP_KRW, 0);
621 1.1 matt
622 1.8 thorpej /* Map the Mini-Data cache clean area. */
623 1.8 thorpej map_chunk(0, l2pagetable, minidataclean.pv_va, minidataclean.pv_pa,
624 1.8 thorpej NBPG, AP_KRW, PT_CACHEABLE);
625 1.8 thorpej
626 1.1 matt /* Map the page table that maps the kernel pages */
627 1.1 matt map_entry_nc(l2pagetable, kernel_ptpt.pv_pa, kernel_ptpt.pv_pa);
628 1.1 matt
629 1.1 matt /*
630 1.1 matt * Map entries in the page table used to map PTE's
631 1.1 matt * Basically every kernel page table gets mapped here
632 1.1 matt */
633 1.1 matt /* The -2 is slightly bogus, it should be -log2(sizeof(pt_entry_t)) */
634 1.1 matt l2pagetable = kernel_ptpt.pv_pa;
635 1.1 matt map_entry_nc(l2pagetable, (KERNEL_BASE >> (PGSHIFT-2)),
636 1.1 matt kernel_pt_table[KERNEL_PT_KERNEL]);
637 1.1 matt map_entry_nc(l2pagetable, (PROCESS_PAGE_TBLS_BASE >> (PGSHIFT-2)),
638 1.1 matt kernel_ptpt.pv_pa);
639 1.1 matt map_entry_nc(l2pagetable, (0x00000000 >> (PGSHIFT-2)),
640 1.1 matt kernel_pt_table[KERNEL_PT_SYS]);
641 1.1 matt for (loop = 0; loop < KERNEL_PT_VMDATA_NUM; ++loop)
642 1.1 matt map_entry_nc(l2pagetable, ((KERNEL_VM_BASE +
643 1.1 matt (loop * 0x00400000)) >> (PGSHIFT-2)),
644 1.1 matt kernel_pt_table[KERNEL_PT_VMDATA + loop]);
645 1.1 matt
646 1.1 matt /*
647 1.1 matt * Map the system page in the kernel page table for the bottom 1Meg
648 1.1 matt * of the virtual memory map.
649 1.1 matt */
650 1.1 matt l2pagetable = kernel_pt_table[KERNEL_PT_SYS];
651 1.1 matt map_entry(l2pagetable, 0x00000000, systempage.pv_pa);
652 1.1 matt
653 1.3 thorpej /*
654 1.3 thorpej * Map devices we can map w/ section mappings.
655 1.3 thorpej */
656 1.1 matt loop = 0;
657 1.1 matt while (l1_sec_table[loop].size) {
658 1.1 matt vm_size_t sz;
659 1.1 matt
660 1.1 matt #ifdef VERBOSE_INIT_ARM
661 1.1 matt printf("%08lx -> %08lx @ %08lx\n", l1_sec_table[loop].pa,
662 1.1 matt l1_sec_table[loop].pa + l1_sec_table[loop].size - 1,
663 1.1 matt l1_sec_table[loop].va);
664 1.1 matt #endif
665 1.1 matt for (sz = 0; sz < l1_sec_table[loop].size; sz += L1_SEC_SIZE)
666 1.1 matt map_section(l1pagetable, l1_sec_table[loop].va + sz,
667 1.1 matt l1_sec_table[loop].pa + sz,
668 1.1 matt l1_sec_table[loop].flags);
669 1.1 matt ++loop;
670 1.1 matt }
671 1.3 thorpej
672 1.3 thorpej /*
673 1.3 thorpej * Map the PCI I/O spaces and i80312 registers. These are too
674 1.3 thorpej * small to be mapped w/ section mappings.
675 1.3 thorpej */
676 1.3 thorpej l2pagetable = kernel_pt_table[KERNEL_PT_IOPXS];
677 1.3 thorpej #ifdef VERBOSE_INIT_ARM
678 1.3 thorpej printf("Mapping PIOW 0x%08lx -> 0x%08lx @ 0x%08lx\n",
679 1.3 thorpej I80312_PCI_XLATE_PIOW_BASE,
680 1.3 thorpej I80312_PCI_XLATE_PIOW_BASE + I80312_PCI_XLATE_IOSIZE - 1,
681 1.3 thorpej IQ80310_PIOW_VBASE);
682 1.3 thorpej #endif
683 1.3 thorpej map_chunk(0, l2pagetable, IQ80310_PIOW_VBASE,
684 1.3 thorpej I80312_PCI_XLATE_PIOW_BASE, I80312_PCI_XLATE_IOSIZE, AP_KRW, 0);
685 1.3 thorpej
686 1.3 thorpej #ifdef VERBOSE_INIT_ARM
687 1.3 thorpej printf("Mapping SIOW 0x%08lx -> 0x%08lx @ 0x%08lx\n",
688 1.3 thorpej I80312_PCI_XLATE_SIOW_BASE,
689 1.3 thorpej I80312_PCI_XLATE_SIOW_BASE + I80312_PCI_XLATE_IOSIZE - 1,
690 1.3 thorpej IQ80310_SIOW_VBASE);
691 1.3 thorpej #endif
692 1.3 thorpej map_chunk(0, l2pagetable, IQ80310_SIOW_VBASE,
693 1.3 thorpej I80312_PCI_XLATE_SIOW_BASE, I80312_PCI_XLATE_IOSIZE, AP_KRW, 0);
694 1.3 thorpej
695 1.3 thorpej #ifdef VERBOSE_INIT_ARM
696 1.4 thorpej printf("Mapping 80312 0x%08lx -> 0x%08lx @ 0x%08lx\n",
697 1.3 thorpej I80312_PMMR_BASE,
698 1.3 thorpej I80312_PMMR_BASE + I80312_PMMR_SIZE - 1,
699 1.3 thorpej IQ80310_80312_VBASE);
700 1.3 thorpej #endif
701 1.3 thorpej map_chunk(0, l2pagetable, IQ80310_80312_VBASE,
702 1.3 thorpej I80312_PMMR_BASE, I80312_PMMR_SIZE, AP_KRW, 0);
703 1.8 thorpej
704 1.8 thorpej /*
705 1.8 thorpej * Give the XScale global cache clean code an appropriately
706 1.8 thorpej * sized chunk of unmapped VA space starting at 0xff000000
707 1.8 thorpej * (our device mappings end before this address).
708 1.8 thorpej */
709 1.8 thorpej xscale_cache_clean_addr = 0xff000000U;
710 1.1 matt
711 1.1 matt /*
712 1.1 matt * Now we have the real page tables in place so we can switch to them.
713 1.2 thorpej * Once this is done we will be running with the REAL kernel page
714 1.2 thorpej * tables.
715 1.2 thorpej */
716 1.2 thorpej
717 1.2 thorpej /*
718 1.2 thorpej * Update the physical_freestart/physical_freeend/free_pages
719 1.2 thorpej * variables.
720 1.1 matt */
721 1.2 thorpej {
722 1.2 thorpej extern char _end[];
723 1.2 thorpej
724 1.2 thorpej physical_freestart = (((uintptr_t) _end) + PGOFSET) & ~PGOFSET;
725 1.2 thorpej physical_freeend = physical_end;
726 1.2 thorpej free_pages = (physical_freeend - physical_freestart) / NBPG;
727 1.2 thorpej }
728 1.1 matt
729 1.1 matt /* Switch tables */
730 1.1 matt #ifdef VERBOSE_INIT_ARM
731 1.2 thorpej printf("freestart = 0x%08lx, free_pages = %d (0x%x)\n",
732 1.1 matt physical_freestart, free_pages, free_pages);
733 1.1 matt printf("switching to new L1 page table @%#lx...", kernel_l1pt.pv_pa);
734 1.1 matt #endif
735 1.1 matt setttb(kernel_l1pt.pv_pa);
736 1.1 matt
737 1.1 matt #ifdef VERBOSE_INIT_ARM
738 1.1 matt printf("done!\n");
739 1.1 matt #endif
740 1.1 matt
741 1.1 matt #ifdef VERBOSE_INIT_ARM
742 1.1 matt printf("bootstrap done.\n");
743 1.1 matt #endif
744 1.1 matt
745 1.2 thorpej /* Right, set up the vectors at the bottom of page 0 */
746 1.1 matt memcpy((char *)0x00000000, page0, page0_end - page0);
747 1.1 matt
748 1.1 matt /* We have modified a text page so sync the icache */
749 1.1 matt cpu_cache_syncI();
750 1.1 matt
751 1.1 matt /*
752 1.1 matt * Pages were allocated during the secondary bootstrap for the
753 1.1 matt * stacks for different CPU modes.
754 1.1 matt * We must now set the r13 registers in the different CPU modes to
755 1.1 matt * point to these stacks.
756 1.1 matt * Since the ARM stacks use STMFD etc. we must set r13 to the top end
757 1.1 matt * of the stack memory.
758 1.1 matt */
759 1.1 matt printf("init subsystems: stacks ");
760 1.1 matt
761 1.1 matt set_stackptr(PSR_IRQ32_MODE, irqstack.pv_va + IRQ_STACK_SIZE * NBPG);
762 1.1 matt set_stackptr(PSR_ABT32_MODE, abtstack.pv_va + ABT_STACK_SIZE * NBPG);
763 1.1 matt set_stackptr(PSR_UND32_MODE, undstack.pv_va + UND_STACK_SIZE * NBPG);
764 1.1 matt
765 1.1 matt /*
766 1.1 matt * Well we should set a data abort handler.
767 1.2 thorpej * Once things get going this will change as we will need a proper
768 1.2 thorpej * handler.
769 1.1 matt * Until then we will use a handler that just panics but tells us
770 1.1 matt * why.
771 1.1 matt * Initialisation of the vectors will just panic on a data abort.
772 1.1 matt * This just fills in a slighly better one.
773 1.1 matt */
774 1.1 matt printf("vectors ");
775 1.1 matt data_abort_handler_address = (u_int)data_abort_handler;
776 1.1 matt prefetch_abort_handler_address = (u_int)prefetch_abort_handler;
777 1.1 matt undefined_handler_address = (u_int)undefinedinstruction_bounce;
778 1.1 matt
779 1.1 matt /* At last !
780 1.1 matt * We now have the kernel in physical memory from the bottom upwards.
781 1.1 matt * Kernel page tables are physically above this.
782 1.1 matt * The kernel is mapped to KERNEL_TEXT_BASE
783 1.1 matt * The kernel data PTs will handle the mapping of 0xf1000000-0xf3ffffff
784 1.1 matt * The page tables are mapped to 0xefc00000
785 1.1 matt */
786 1.1 matt
787 1.1 matt /* Initialise the undefined instruction handlers */
788 1.1 matt printf("undefined ");
789 1.1 matt undefined_init();
790 1.1 matt
791 1.1 matt /* Boot strap pmap telling it where the kernel page table is */
792 1.1 matt printf("pmap ");
793 1.1 matt pmap_bootstrap((pd_entry_t *)kernel_l1pt.pv_va, kernel_ptpt);
794 1.1 matt
795 1.1 matt /* Setup the IRQ system */
796 1.1 matt printf("irq ");
797 1.1 matt irq_init();
798 1.1 matt printf("done.\n");
799 1.1 matt
800 1.1 matt #ifdef IPKDB
801 1.1 matt /* Initialise ipkdb */
802 1.1 matt ipkdb_init();
803 1.1 matt if (boothowto & RB_KDB)
804 1.1 matt ipkdb_connect(0);
805 1.1 matt #endif
806 1.1 matt
807 1.1 matt #ifdef DDB
808 1.1 matt db_machine_init();
809 1.7 thorpej
810 1.7 thorpej /* Firmware doesn't load symbols. */
811 1.7 thorpej ddb_init(0, NULL, NULL);
812 1.1 matt
813 1.1 matt if (boothowto & RB_KDB)
814 1.1 matt Debugger();
815 1.1 matt #endif
816 1.1 matt
817 1.1 matt /* We return the new stack pointer address */
818 1.1 matt return(kernelstack.pv_va + USPACE_SVC_STACK_TOP);
819 1.1 matt }
820 1.1 matt
821 1.1 matt void
822 1.2 thorpej process_kernel_args(char *args)
823 1.1 matt {
824 1.1 matt
825 1.1 matt boothowto = 0;
826 1.1 matt
827 1.1 matt /* Make a local copy of the bootargs */
828 1.1 matt strncpy(bootargs, args, MAX_BOOT_STRING);
829 1.1 matt
830 1.1 matt args = bootargs;
831 1.1 matt boot_file = bootargs;
832 1.1 matt
833 1.1 matt /* Skip the kernel image filename */
834 1.1 matt while (*args != ' ' && *args != 0)
835 1.1 matt ++args;
836 1.1 matt
837 1.1 matt if (*args != 0)
838 1.1 matt *args++ = 0;
839 1.1 matt
840 1.1 matt while (*args == ' ')
841 1.1 matt ++args;
842 1.1 matt
843 1.1 matt boot_args = args;
844 1.1 matt
845 1.1 matt printf("bootfile: %s\n", boot_file);
846 1.1 matt printf("bootargs: %s\n", boot_args);
847 1.1 matt
848 1.1 matt parse_mi_bootargs(boot_args);
849 1.1 matt }
850 1.1 matt
851 1.1 matt void
852 1.1 matt consinit(void)
853 1.1 matt {
854 1.2 thorpej static int consinit_called;
855 1.1 matt
856 1.1 matt if (consinit_called != 0)
857 1.1 matt return;
858 1.1 matt
859 1.1 matt consinit_called = 1;
860 1.1 matt
861 1.2 thorpej #if NCOM > 0
862 1.2 thorpej if (comcnattach(&obio_bs_tag, IQ80310_UART2, comcnspeed,
863 1.2 thorpej COM_FREQ, comcnmode))
864 1.2 thorpej panic("can't init serial console @%lx", IQ80310_UART1);
865 1.1 matt #else
866 1.2 thorpej panic("serial console @%lx not configured", IQ80310_UART1);
867 1.1 matt #endif
868 1.1 matt }
869