riscv_machdep.c revision 1.28 1 1.28 skrll /* $NetBSD: riscv_machdep.c,v 1.28 2023/05/28 12:56:56 skrll Exp $ */
2 1.12 skrll
3 1.1 matt /*-
4 1.18 skrll * Copyright (c) 2014, 2019, 2022 The NetBSD Foundation, Inc.
5 1.1 matt * All rights reserved.
6 1.1 matt *
7 1.1 matt * This code is derived from software contributed to The NetBSD Foundation
8 1.18 skrll * by Matt Thomas of 3am Software Foundry, and by Nick Hudson.
9 1.1 matt *
10 1.1 matt * Redistribution and use in source and binary forms, with or without
11 1.1 matt * modification, are permitted provided that the following conditions
12 1.1 matt * are met:
13 1.1 matt * 1. Redistributions of source code must retain the above copyright
14 1.1 matt * notice, this list of conditions and the following disclaimer.
15 1.1 matt * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 matt * notice, this list of conditions and the following disclaimer in the
17 1.1 matt * documentation and/or other materials provided with the distribution.
18 1.1 matt *
19 1.1 matt * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 matt * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 matt * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 matt * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 matt * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 matt * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 matt * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 matt * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 matt * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 matt * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 matt * POSSIBILITY OF SUCH DAMAGE.
30 1.1 matt */
31 1.1 matt
32 1.26 skrll #include "opt_ddb.h"
33 1.18 skrll #include "opt_modular.h"
34 1.18 skrll #include "opt_riscv_debug.h"
35 1.18 skrll
36 1.1 matt #include <sys/cdefs.h>
37 1.28 skrll __RCSID("$NetBSD: riscv_machdep.c,v 1.28 2023/05/28 12:56:56 skrll Exp $");
38 1.1 matt
39 1.16 skrll #include <sys/param.h>
40 1.1 matt
41 1.26 skrll #include <sys/asan.h>
42 1.18 skrll #include <sys/boot_flag.h>
43 1.1 matt #include <sys/cpu.h>
44 1.1 matt #include <sys/exec.h>
45 1.1 matt #include <sys/kmem.h>
46 1.1 matt #include <sys/ktrace.h>
47 1.16 skrll #include <sys/lwp.h>
48 1.1 matt #include <sys/module.h>
49 1.26 skrll #include <sys/mount.h>
50 1.18 skrll #include <sys/msgbuf.h>
51 1.26 skrll #include <sys/optstr.h>
52 1.1 matt #include <sys/proc.h>
53 1.1 matt #include <sys/reboot.h>
54 1.1 matt #include <sys/syscall.h>
55 1.26 skrll #include <sys/sysctl.h>
56 1.16 skrll #include <sys/systm.h>
57 1.1 matt
58 1.18 skrll #include <dev/cons.h>
59 1.1 matt #include <uvm/uvm_extern.h>
60 1.1 matt
61 1.26 skrll #include <riscv/frame.h>
62 1.1 matt #include <riscv/locore.h>
63 1.18 skrll #include <riscv/machdep.h>
64 1.18 skrll #include <riscv/pte.h>
65 1.26 skrll #include <riscv/sbi.h>
66 1.1 matt
67 1.22 skrll #include <libfdt.h>
68 1.22 skrll #include <dev/fdt/fdtvar.h>
69 1.26 skrll #include <dev/fdt/fdt_boot.h>
70 1.22 skrll #include <dev/fdt/fdt_memory.h>
71 1.26 skrll #include <dev/fdt/fdt_private.h>
72 1.22 skrll
73 1.26 skrll int cpu_printfataltraps = 1;
74 1.1 matt char machine[] = MACHINE;
75 1.1 matt char machine_arch[] = MACHINE_ARCH;
76 1.1 matt
77 1.18 skrll #ifdef VERBOSE_INIT_RISCV
78 1.20 simonb #define VPRINTF(...) printf(__VA_ARGS__)
79 1.18 skrll #else
80 1.20 simonb #define VPRINTF(...) __nothing
81 1.18 skrll #endif
82 1.18 skrll
83 1.18 skrll #ifndef FDT_MAX_BOOT_STRING
84 1.20 simonb #define FDT_MAX_BOOT_STRING 1024
85 1.18 skrll #endif
86 1.26 skrll /* 64 should be enough, even for a ZFS UUID */
87 1.26 skrll #define MAX_BOOT_DEV_STR 64
88 1.18 skrll
89 1.18 skrll char bootargs[FDT_MAX_BOOT_STRING] = "";
90 1.26 skrll char bootdevstr[MAX_BOOT_DEV_STR] = "";
91 1.18 skrll char *boot_args = NULL;
92 1.18 skrll
93 1.26 skrll paddr_t physical_start;
94 1.26 skrll paddr_t physical_end;
95 1.26 skrll
96 1.18 skrll static void
97 1.18 skrll earlyconsputc(dev_t dev, int c)
98 1.18 skrll {
99 1.18 skrll uartputc(c);
100 1.18 skrll }
101 1.18 skrll
102 1.18 skrll static int
103 1.18 skrll earlyconsgetc(dev_t dev)
104 1.18 skrll {
105 1.19 skrll return uartgetc();
106 1.18 skrll }
107 1.18 skrll
108 1.18 skrll static struct consdev earlycons = {
109 1.18 skrll .cn_putc = earlyconsputc,
110 1.18 skrll .cn_getc = earlyconsgetc,
111 1.18 skrll .cn_pollc = nullcnpollc,
112 1.18 skrll };
113 1.18 skrll
114 1.1 matt struct vm_map *phys_map;
115 1.1 matt
116 1.1 matt struct trapframe cpu_ddb_regs;
117 1.1 matt const pcu_ops_t * const pcu_ops_md_defs[PCU_UNIT_COUNT] = {
118 1.14 skrll #ifdef FPE
119 1.1 matt [PCU_FPU] = &pcu_fpu_ops,
120 1.14 skrll #endif
121 1.1 matt };
122 1.1 matt
123 1.18 skrll /*
124 1.18 skrll * Used by PHYSTOV and VTOPHYS -- Will be set be BSS is zeroed so
125 1.18 skrll * keep it in data
126 1.18 skrll */
127 1.18 skrll unsigned long kern_vtopdiff __attribute__((__section__(".data")));
128 1.18 skrll
129 1.26 skrll
130 1.26 skrll /*
131 1.26 skrll * machine dependent system variables.
132 1.26 skrll */
133 1.26 skrll SYSCTL_SETUP(sysctl_machdep_setup, "sysctl machdep subtree setup")
134 1.26 skrll {
135 1.26 skrll sysctl_createv(clog, 0, NULL, NULL,
136 1.26 skrll CTLFLAG_PERMANENT,
137 1.26 skrll CTLTYPE_NODE, "machdep", NULL,
138 1.26 skrll NULL, 0, NULL, 0,
139 1.26 skrll CTL_MACHDEP, CTL_EOL);
140 1.26 skrll }
141 1.26 skrll
142 1.1 matt void
143 1.1 matt delay(unsigned long us)
144 1.1 matt {
145 1.1 matt const uint32_t cycles_per_us = curcpu()->ci_data.cpu_cc_freq / 1000000;
146 1.1 matt const uint64_t cycles = (uint64_t)us * cycles_per_us;
147 1.24 simonb const uint64_t finish = csr_cycle_read() + cycles;
148 1.1 matt
149 1.24 simonb while (csr_cycle_read() < finish) {
150 1.1 matt /* spin, baby spin */
151 1.1 matt }
152 1.1 matt }
153 1.1 matt
154 1.1 matt #ifdef MODULAR
155 1.1 matt /*
156 1.10 skrll * Push any modules loaded by the boot loader.
157 1.1 matt */
158 1.1 matt void
159 1.1 matt module_init_md(void)
160 1.1 matt {
161 1.1 matt }
162 1.1 matt #endif /* MODULAR */
163 1.1 matt
164 1.1 matt /*
165 1.1 matt * Set registers on exec.
166 1.26 skrll * Clear all registers except sp, pc.
167 1.26 skrll * sp is set to the stack pointer passed in. pc is set to the entry
168 1.26 skrll * point given by the exec_package passed in.
169 1.1 matt */
170 1.1 matt void
171 1.1 matt setregs(struct lwp *l, struct exec_package *pack, vaddr_t stack)
172 1.1 matt {
173 1.1 matt struct trapframe * const tf = l->l_md.md_utf;
174 1.1 matt struct proc * const p = l->l_proc;
175 1.1 matt
176 1.26 skrll memset(tf, 0, sizeof(*tf));
177 1.1 matt tf->tf_sp = (intptr_t)stack_align(stack);
178 1.1 matt tf->tf_pc = (intptr_t)pack->ep_entry & ~1;
179 1.1 matt #ifdef _LP64
180 1.25 simonb tf->tf_sr = (p->p_flag & PK_32) ? SR_USER32 : SR_USER64;
181 1.1 matt #else
182 1.1 matt tf->tf_sr = SR_USER;
183 1.1 matt #endif
184 1.26 skrll
185 1.26 skrll // Set up arguments for ___start(cleanup, ps_strings)
186 1.26 skrll tf->tf_a0 = 0; // cleanup
187 1.26 skrll tf->tf_a1 = p->p_psstrp; // ps_strings
188 1.26 skrll
189 1.26 skrll /*
190 1.26 skrll * Must have interrupts disabled for exception return.
191 1.26 skrll * Must be switching to user mode.
192 1.26 skrll * Must enable interrupts after sret.
193 1.26 skrll */
194 1.26 skrll KASSERT(__SHIFTOUT(tf->tf_sr, SR_SIE) == 0);
195 1.26 skrll KASSERT(__SHIFTOUT(tf->tf_sr, SR_SPP) == 0);
196 1.26 skrll KASSERT(__SHIFTOUT(tf->tf_sr, SR_SPIE) != 0);
197 1.1 matt }
198 1.1 matt
199 1.1 matt void
200 1.4 kamil md_child_return(struct lwp *l)
201 1.1 matt {
202 1.26 skrll struct trapframe * const tf = lwp_trapframe(l);
203 1.1 matt
204 1.1 matt tf->tf_a0 = 0;
205 1.1 matt tf->tf_a1 = 1;
206 1.13 skrll #ifdef FPE
207 1.26 skrll /* Disable FP as we can't be using it (yet). */
208 1.26 skrll tf->tf_sr &= ~SR_FS;
209 1.13 skrll #endif
210 1.26 skrll
211 1.26 skrll /*
212 1.26 skrll * Must have interrupts disabled for exception return.
213 1.26 skrll * Must be switching to user mode.
214 1.26 skrll * Must enable interrupts after sret.
215 1.26 skrll */
216 1.26 skrll
217 1.26 skrll KASSERT(__SHIFTOUT(tf->tf_sr, SR_SIE) == 0);
218 1.26 skrll KASSERT(__SHIFTOUT(tf->tf_sr, SR_SPP) == 0);
219 1.26 skrll KASSERT(__SHIFTOUT(tf->tf_sr, SR_SPIE) != 0);
220 1.26 skrll
221 1.26 skrll userret(l);
222 1.1 matt }
223 1.1 matt
224 1.1 matt void
225 1.1 matt cpu_spawn_return(struct lwp *l)
226 1.1 matt {
227 1.1 matt userret(l);
228 1.1 matt }
229 1.1 matt
230 1.10 skrll /*
231 1.1 matt * Start a new LWP
232 1.1 matt */
233 1.1 matt void
234 1.1 matt startlwp(void *arg)
235 1.1 matt {
236 1.1 matt ucontext_t * const uc = arg;
237 1.1 matt lwp_t * const l = curlwp;
238 1.1 matt int error __diagused;
239 1.1 matt
240 1.1 matt error = cpu_setmcontext(l, &uc->uc_mcontext, uc->uc_flags);
241 1.1 matt KASSERT(error == 0);
242 1.1 matt
243 1.26 skrll kmem_free(uc, sizeof(*uc));
244 1.1 matt userret(l);
245 1.1 matt }
246 1.1 matt
247 1.1 matt // We've worked hard to make sure struct reg and __gregset_t are the same.
248 1.1 matt // Ditto for struct fpreg and fregset_t.
249 1.1 matt
250 1.15 skrll #ifdef _LP64
251 1.1 matt CTASSERT(sizeof(struct reg) == sizeof(__gregset_t));
252 1.15 skrll #endif
253 1.1 matt CTASSERT(sizeof(struct fpreg) == sizeof(__fregset_t));
254 1.1 matt
255 1.1 matt void
256 1.1 matt cpu_getmcontext(struct lwp *l, mcontext_t *mcp, unsigned int *flags)
257 1.1 matt {
258 1.1 matt const struct trapframe * const tf = l->l_md.md_utf;
259 1.1 matt
260 1.1 matt /* Save register context. */
261 1.1 matt *(struct reg *)mcp->__gregs = tf->tf_regs;
262 1.1 matt
263 1.1 matt *flags |= _UC_CPU | _UC_TLSBASE;
264 1.1 matt
265 1.1 matt /* Save floating point register context, if any. */
266 1.1 matt KASSERT(l == curlwp);
267 1.2 chs if (fpu_valid_p(l)) {
268 1.1 matt /*
269 1.1 matt * If this process is the current FP owner, dump its
270 1.1 matt * context to the PCB first.
271 1.1 matt */
272 1.2 chs fpu_save(l);
273 1.1 matt
274 1.1 matt struct pcb * const pcb = lwp_getpcb(l);
275 1.1 matt *(struct fpreg *)mcp->__fregs = pcb->pcb_fpregs;
276 1.1 matt *flags |= _UC_FPU;
277 1.1 matt }
278 1.1 matt }
279 1.1 matt
280 1.1 matt int
281 1.1 matt cpu_mcontext_validate(struct lwp *l, const mcontext_t *mcp)
282 1.1 matt {
283 1.1 matt /*
284 1.1 matt * Verify that at least the PC and SP are user addresses.
285 1.1 matt */
286 1.1 matt if ((intptr_t) mcp->__gregs[_REG_PC] < 0
287 1.1 matt || (intptr_t) mcp->__gregs[_REG_SP] < 0
288 1.1 matt || (mcp->__gregs[_REG_PC] & 1))
289 1.1 matt return EINVAL;
290 1.1 matt
291 1.1 matt return 0;
292 1.1 matt }
293 1.1 matt
294 1.1 matt int
295 1.1 matt cpu_setmcontext(struct lwp *l, const mcontext_t *mcp, unsigned int flags)
296 1.1 matt {
297 1.1 matt struct trapframe * const tf = l->l_md.md_utf;
298 1.1 matt struct proc * const p = l->l_proc;
299 1.1 matt const __greg_t * const gr = mcp->__gregs;
300 1.1 matt int error;
301 1.1 matt
302 1.1 matt /* Restore register context, if any. */
303 1.1 matt if (flags & _UC_CPU) {
304 1.1 matt error = cpu_mcontext_validate(l, mcp);
305 1.1 matt if (error)
306 1.1 matt return error;
307 1.1 matt
308 1.1 matt /* Save register context. */
309 1.1 matt tf->tf_regs = *(const struct reg *)gr;
310 1.1 matt }
311 1.1 matt
312 1.1 matt /* Restore the private thread context */
313 1.1 matt if (flags & _UC_TLSBASE) {
314 1.26 skrll lwp_setprivate(l, (void *)(intptr_t)mcp->__gregs[_X_TP]);
315 1.1 matt }
316 1.1 matt
317 1.1 matt /* Restore floating point register context, if any. */
318 1.1 matt if (flags & _UC_FPU) {
319 1.1 matt KASSERT(l == curlwp);
320 1.1 matt /* Tell PCU we are replacing the FPU contents. */
321 1.2 chs fpu_replace(l);
322 1.1 matt
323 1.1 matt /*
324 1.1 matt * The PCB FP regs struct includes the FP CSR, so use the
325 1.1 matt * proper size of fpreg when copying.
326 1.1 matt */
327 1.1 matt struct pcb * const pcb = lwp_getpcb(l);
328 1.1 matt pcb->pcb_fpregs = *(const struct fpreg *)mcp->__fregs;
329 1.1 matt }
330 1.1 matt
331 1.1 matt mutex_enter(p->p_lock);
332 1.1 matt if (flags & _UC_SETSTACK)
333 1.1 matt l->l_sigstk.ss_flags |= SS_ONSTACK;
334 1.1 matt if (flags & _UC_CLRSTACK)
335 1.1 matt l->l_sigstk.ss_flags &= ~SS_ONSTACK;
336 1.1 matt mutex_exit(p->p_lock);
337 1.1 matt
338 1.26 skrll return 0;
339 1.1 matt }
340 1.1 matt
341 1.1 matt void
342 1.6 ad cpu_need_resched(struct cpu_info *ci, struct lwp *l, int flags)
343 1.1 matt {
344 1.1 matt KASSERT(kpreempt_disabled());
345 1.1 matt
346 1.6 ad if ((flags & RESCHED_KPREEMPT) != 0) {
347 1.1 matt #ifdef __HAVE_PREEMPTION
348 1.6 ad if ((flags & RESCHED_REMOTE) != 0) {
349 1.17 skrll cpu_send_ipi(ci, IPI_KPREEMPT);
350 1.6 ad } else {
351 1.1 matt softint_trigger(SOFTINT_KPREEMPT);
352 1.17 skrll }
353 1.1 matt #endif
354 1.1 matt return;
355 1.1 matt }
356 1.6 ad if ((flags & RESCHED_REMOTE) != 0) {
357 1.1 matt #ifdef MULTIPROCESSOR
358 1.1 matt cpu_send_ipi(ci, IPI_AST);
359 1.1 matt #endif
360 1.6 ad } else {
361 1.26 skrll l->l_md.md_astpending = 1; /* force call to ast() */
362 1.6 ad }
363 1.1 matt }
364 1.1 matt
365 1.1 matt void
366 1.1 matt cpu_signotify(struct lwp *l)
367 1.1 matt {
368 1.1 matt KASSERT(kpreempt_disabled());
369 1.1 matt #ifdef __HAVE_FAST_SOFTINTS
370 1.1 matt KASSERT(lwp_locked(l, NULL));
371 1.1 matt #endif
372 1.1 matt
373 1.6 ad if (l->l_cpu != curcpu()) {
374 1.6 ad #ifdef MULTIPROCESSOR
375 1.6 ad cpu_send_ipi(ci, IPI_AST);
376 1.6 ad #endif
377 1.6 ad } else {
378 1.6 ad l->l_md.md_astpending = 1; /* force call to ast() */
379 1.6 ad }
380 1.1 matt }
381 1.1 matt
382 1.26 skrll
383 1.1 matt void
384 1.1 matt cpu_need_proftick(struct lwp *l)
385 1.1 matt {
386 1.1 matt KASSERT(kpreempt_disabled());
387 1.1 matt KASSERT(l->l_cpu == curcpu());
388 1.1 matt
389 1.1 matt l->l_pflag |= LP_OWEUPC;
390 1.1 matt l->l_md.md_astpending = 1; /* force call to ast() */
391 1.1 matt }
392 1.1 matt
393 1.26 skrll
394 1.26 skrll /* Sync the discs, unmount the filesystems, and adjust the todr */
395 1.26 skrll static void
396 1.26 skrll bootsync(void)
397 1.26 skrll {
398 1.26 skrll static bool bootsyncdone = false;
399 1.26 skrll
400 1.26 skrll if (bootsyncdone)
401 1.26 skrll return;
402 1.26 skrll
403 1.26 skrll bootsyncdone = true;
404 1.26 skrll
405 1.26 skrll /* Make sure we can still manage to do things */
406 1.26 skrll if ((csr_sstatus_read() & SR_SIE) == 0) {
407 1.26 skrll /*
408 1.26 skrll * If we get here then boot has been called without RB_NOSYNC
409 1.26 skrll * and interrupts were disabled. This means the boot() call
410 1.26 skrll * did not come from a user process e.g. shutdown, but must
411 1.26 skrll * have come from somewhere in the kernel.
412 1.26 skrll */
413 1.26 skrll ENABLE_INTERRUPTS();
414 1.26 skrll printf("Warning interrupts disabled during boot()\n");
415 1.26 skrll }
416 1.26 skrll
417 1.26 skrll vfs_shutdown();
418 1.26 skrll
419 1.26 skrll resettodr();
420 1.26 skrll }
421 1.26 skrll
422 1.26 skrll
423 1.1 matt void
424 1.26 skrll cpu_reboot(int howto, char *bootstr)
425 1.1 matt {
426 1.26 skrll
427 1.26 skrll /*
428 1.26 skrll * If RB_NOSYNC was not specified sync the discs.
429 1.26 skrll * Note: Unless cold is set to 1 here, syslogd will die during the
430 1.26 skrll * unmount. It looks like syslogd is getting woken up only to find
431 1.26 skrll * that it cannot page part of the binary in as the filesystem has
432 1.26 skrll * been unmounted.
433 1.26 skrll */
434 1.26 skrll if ((howto & RB_NOSYNC) == 0)
435 1.26 skrll bootsync();
436 1.26 skrll
437 1.26 skrll #if 0
438 1.26 skrll /* Disable interrupts. */
439 1.26 skrll const int s = splhigh();
440 1.26 skrll
441 1.26 skrll /* Do a dump if requested. */
442 1.26 skrll if ((howto & (RB_DUMP | RB_HALT)) == RB_DUMP)
443 1.26 skrll dumpsys();
444 1.26 skrll
445 1.26 skrll splx(s);
446 1.26 skrll #endif
447 1.26 skrll
448 1.26 skrll pmf_system_shutdown(boothowto);
449 1.26 skrll
450 1.26 skrll /* Say NO to interrupts for good */
451 1.26 skrll splhigh();
452 1.26 skrll
453 1.26 skrll /* Run any shutdown hooks */
454 1.26 skrll doshutdownhooks();
455 1.26 skrll
456 1.26 skrll /* Make sure IRQ's are disabled */
457 1.26 skrll DISABLE_INTERRUPTS();
458 1.26 skrll
459 1.27 skrll if (howto & RB_HALT) {
460 1.27 skrll printf("\n");
461 1.27 skrll printf("The operating system has halted.\n");
462 1.27 skrll printf("Please press any key to reboot.\n\n");
463 1.27 skrll cnpollc(1); /* for proper keyboard command handling */
464 1.27 skrll if (cngetc() == 0) {
465 1.27 skrll /* no console attached, so just hlt */
466 1.27 skrll printf("No keyboard - cannot reboot after all.\n");
467 1.27 skrll goto spin;
468 1.27 skrll }
469 1.27 skrll cnpollc(0);
470 1.27 skrll }
471 1.27 skrll
472 1.27 skrll printf("rebooting...\n");
473 1.27 skrll
474 1.26 skrll sbi_system_reset(SBI_RESET_TYPE_COLDREBOOT, SBI_RESET_REASON_NONE);
475 1.27 skrll spin:
476 1.1 matt for (;;) {
477 1.26 skrll asm volatile("wfi" ::: "memory");
478 1.1 matt }
479 1.26 skrll /* NOTREACHED */
480 1.1 matt }
481 1.1 matt
482 1.1 matt void
483 1.1 matt cpu_dumpconf(void)
484 1.1 matt {
485 1.1 matt // TBD!!
486 1.1 matt }
487 1.1 matt
488 1.26 skrll
489 1.26 skrll int
490 1.26 skrll cpu_lwp_setprivate(lwp_t *l, void *addr)
491 1.26 skrll {
492 1.26 skrll struct trapframe * const tf = lwp_trapframe(l);
493 1.26 skrll
494 1.26 skrll tf->tf_reg[_REG_TP] = (register_t)addr;
495 1.26 skrll
496 1.26 skrll return 0;
497 1.26 skrll }
498 1.26 skrll
499 1.26 skrll
500 1.1 matt void
501 1.1 matt cpu_startup(void)
502 1.1 matt {
503 1.1 matt vaddr_t minaddr, maxaddr;
504 1.26 skrll char pbuf[10]; /* "999999 MB" -- But Sv39 is max 512GB */
505 1.1 matt
506 1.1 matt /*
507 1.1 matt * Good {morning,afternoon,evening,night}.
508 1.1 matt */
509 1.1 matt printf("%s%s", copyright, version);
510 1.1 matt format_bytes(pbuf, sizeof(pbuf), ctob(physmem));
511 1.1 matt printf("total memory = %s\n", pbuf);
512 1.1 matt
513 1.1 matt minaddr = 0;
514 1.1 matt /*
515 1.1 matt * Allocate a submap for physio.
516 1.1 matt */
517 1.1 matt phys_map = uvm_km_suballoc(kernel_map, &minaddr, &maxaddr,
518 1.1 matt VM_PHYS_SIZE, 0, FALSE, NULL);
519 1.1 matt
520 1.11 ad format_bytes(pbuf, sizeof(pbuf), ptoa(uvm_availmem(false)));
521 1.1 matt printf("avail memory = %s\n", pbuf);
522 1.26 skrll
523 1.26 skrll fdtbus_intr_init();
524 1.26 skrll }
525 1.26 skrll
526 1.26 skrll static void
527 1.26 skrll riscv_add_memory(const struct fdt_memory *m, void *arg)
528 1.26 skrll {
529 1.26 skrll paddr_t first = atop(m->start);
530 1.26 skrll paddr_t last = atop(m->end);
531 1.26 skrll int freelist = VM_FREELIST_DEFAULT;
532 1.26 skrll
533 1.26 skrll VPRINTF("adding %#16" PRIxPADDR " - %#16" PRIxPADDR" to freelist %d\n",
534 1.26 skrll m->start, m->end, freelist);
535 1.26 skrll
536 1.26 skrll uvm_page_physload(first, last, first, last, freelist);
537 1.26 skrll physmem += last - first;
538 1.26 skrll }
539 1.26 skrll
540 1.26 skrll
541 1.26 skrll static void
542 1.26 skrll cpu_kernel_vm_init(paddr_t memory_start, paddr_t memory_end)
543 1.26 skrll {
544 1.26 skrll extern char __kernel_text[];
545 1.26 skrll extern char _end[];
546 1.26 skrll
547 1.26 skrll vaddr_t kernstart = trunc_page((vaddr_t)__kernel_text);
548 1.26 skrll vaddr_t kernend = round_page((vaddr_t)_end);
549 1.26 skrll paddr_t kernstart_phys = KERN_VTOPHYS(kernstart);
550 1.26 skrll paddr_t kernend_phys = KERN_VTOPHYS(kernend);
551 1.26 skrll
552 1.26 skrll VPRINTF("%s: kernel phys start %#" PRIxPADDR " end %#" PRIxPADDR "\n",
553 1.26 skrll __func__, kernstart_phys, kernend_phys);
554 1.26 skrll fdt_memory_remove_range(kernstart_phys,
555 1.26 skrll kernend_phys - kernstart_phys);
556 1.26 skrll
557 1.26 skrll /*
558 1.26 skrll * Don't give these pages to UVM.
559 1.26 skrll *
560 1.26 skrll * cpu_kernel_vm_init need to create proper tables then the following
561 1.26 skrll * will be true.
562 1.26 skrll *
563 1.26 skrll * Now we have APs started the pages used for stacks and L1PT can
564 1.26 skrll * be given to uvm
565 1.26 skrll */
566 1.26 skrll extern char const __start__init_memory[];
567 1.26 skrll extern char const __stop__init_memory[] __weak;
568 1.26 skrll if (__start__init_memory != __stop__init_memory) {
569 1.26 skrll const paddr_t spa = KERN_VTOPHYS((vaddr_t)__start__init_memory);
570 1.26 skrll const paddr_t epa = KERN_VTOPHYS((vaddr_t)__stop__init_memory);
571 1.26 skrll
572 1.26 skrll VPRINTF("%s: init phys start %#" PRIxPADDR
573 1.26 skrll " end %#" PRIxPADDR "\n", __func__, spa, epa);
574 1.26 skrll fdt_memory_remove_range(spa, epa - spa);
575 1.26 skrll }
576 1.26 skrll
577 1.26 skrll #ifdef _LP64
578 1.26 skrll paddr_t pa = memory_start & ~XSEGOFSET;
579 1.26 skrll pmap_direct_base = RISCV_DIRECTMAP_START;
580 1.26 skrll extern pd_entry_t l2_pte[PAGE_SIZE / sizeof(pd_entry_t)];
581 1.26 skrll
582 1.26 skrll
583 1.26 skrll const vsize_t vshift = XSEGSHIFT;
584 1.26 skrll const vaddr_t pdetab_mask = PMAP_PDETABSIZE - 1;
585 1.26 skrll const vsize_t inc = 1UL << vshift;
586 1.26 skrll
587 1.26 skrll const vaddr_t sva = RISCV_DIRECTMAP_START + pa;
588 1.26 skrll const vaddr_t eva = RISCV_DIRECTMAP_END;
589 1.26 skrll const size_t sidx = (sva >> vshift) & pdetab_mask;
590 1.26 skrll const size_t eidx = (eva >> vshift) & pdetab_mask;
591 1.26 skrll
592 1.26 skrll /* Allocate gigapages covering all physical memory in the direct map. */
593 1.26 skrll for (size_t i = sidx; i < eidx && pa < memory_end; i++, pa += inc) {
594 1.26 skrll l2_pte[i] = PA_TO_PTE(pa) | PTE_KERN | PTE_HARDWIRED | PTE_RW;
595 1.26 skrll VPRINTF("dm: %p : %#" PRIxPADDR "\n", &l2_pte[i], l2_pte[i]);
596 1.26 skrll }
597 1.26 skrll #endif
598 1.26 skrll // pt_dump(printf);
599 1.1 matt }
600 1.1 matt
601 1.18 skrll static void
602 1.18 skrll riscv_init_lwp0_uarea(void)
603 1.18 skrll {
604 1.18 skrll extern char lwp0uspace[];
605 1.18 skrll
606 1.18 skrll uvm_lwp_setuarea(&lwp0, (vaddr_t)lwp0uspace);
607 1.18 skrll memset(&lwp0.l_md, 0, sizeof(lwp0.l_md));
608 1.18 skrll memset(lwp_getpcb(&lwp0), 0, sizeof(struct pcb));
609 1.18 skrll
610 1.18 skrll struct trapframe *tf = (struct trapframe *)(lwp0uspace + USPACE) - 1;
611 1.26 skrll memset(tf, 0, sizeof(*tf));
612 1.18 skrll
613 1.18 skrll lwp0.l_md.md_utf = lwp0.l_md.md_ktf = tf;
614 1.18 skrll }
615 1.18 skrll
616 1.18 skrll
617 1.18 skrll static void
618 1.18 skrll riscv_print_memory(const struct fdt_memory *m, void *arg)
619 1.18 skrll {
620 1.18 skrll
621 1.18 skrll VPRINTF("FDT /memory @ 0x%" PRIx64 " size 0x%" PRIx64 "\n",
622 1.18 skrll m->start, m->end - m->start);
623 1.18 skrll }
624 1.18 skrll
625 1.18 skrll
626 1.18 skrll static void
627 1.26 skrll parse_mi_bootargs(char *args)
628 1.18 skrll {
629 1.18 skrll int howto;
630 1.26 skrll bool found, start, skipping;
631 1.26 skrll
632 1.26 skrll if (args == NULL)
633 1.26 skrll return;
634 1.18 skrll
635 1.26 skrll start = true;
636 1.26 skrll skipping = false;
637 1.18 skrll for (char *cp = args; *cp; cp++) {
638 1.26 skrll /* check for "words" starting with a "-" only */
639 1.26 skrll if (start) {
640 1.26 skrll if (*cp == '-') {
641 1.26 skrll skipping = false;
642 1.26 skrll } else {
643 1.26 skrll skipping = true;
644 1.26 skrll }
645 1.26 skrll start = false;
646 1.26 skrll continue;
647 1.26 skrll }
648 1.26 skrll
649 1.26 skrll if (*cp == ' ') {
650 1.26 skrll start = true;
651 1.26 skrll skipping = false;
652 1.26 skrll continue;
653 1.26 skrll }
654 1.26 skrll
655 1.26 skrll if (skipping) {
656 1.18 skrll continue;
657 1.26 skrll }
658 1.18 skrll
659 1.26 skrll /* Check valid boot flags */
660 1.18 skrll howto = 0;
661 1.18 skrll BOOT_FLAG(*cp, howto);
662 1.18 skrll if (!howto)
663 1.18 skrll printf("bootflag '%c' not recognised\n", *cp);
664 1.18 skrll else
665 1.18 skrll boothowto |= howto;
666 1.18 skrll }
667 1.26 skrll
668 1.26 skrll found = optstr_get(args, "root", bootdevstr, sizeof(bootdevstr));
669 1.26 skrll if (found) {
670 1.26 skrll bootspec = bootdevstr;
671 1.26 skrll }
672 1.18 skrll }
673 1.18 skrll
674 1.18 skrll
675 1.1 matt void
676 1.21 skrll init_riscv(register_t hartid, paddr_t dtb)
677 1.1 matt {
678 1.9 thorpej
679 1.18 skrll /* set temporally to work printf()/panic() even before consinit() */
680 1.18 skrll cn_tab = &earlycons;
681 1.18 skrll
682 1.18 skrll /* Load FDT */
683 1.21 skrll const vaddr_t dtbva = VM_KERNEL_DTB_BASE + (dtb & (NBSEG - 1));
684 1.21 skrll void *fdt_data = (void *)dtbva;
685 1.18 skrll int error = fdt_check_header(fdt_data);
686 1.18 skrll if (error != 0)
687 1.18 skrll panic("fdt_check_header failed: %s", fdt_strerror(error));
688 1.18 skrll
689 1.18 skrll fdtbus_init(fdt_data);
690 1.18 skrll
691 1.18 skrll /* Lookup platform specific backend */
692 1.26 skrll const struct fdt_platform *plat = fdt_platform_find();
693 1.18 skrll if (plat == NULL)
694 1.18 skrll panic("Kernel does not support this device");
695 1.18 skrll
696 1.18 skrll /* Early console may be available, announce ourselves. */
697 1.18 skrll VPRINTF("FDT<%p>\n", fdt_data);
698 1.18 skrll
699 1.18 skrll const int chosen = OF_finddevice("/chosen");
700 1.18 skrll if (chosen >= 0)
701 1.18 skrll OF_getprop(chosen, "bootargs", bootargs, sizeof(bootargs));
702 1.18 skrll boot_args = bootargs;
703 1.18 skrll
704 1.26 skrll VPRINTF("devmap %p\n", plat->fp_devmap());
705 1.26 skrll pmap_devmap_bootstrap(0, plat->fp_devmap());
706 1.26 skrll
707 1.26 skrll VPRINTF("bootstrap\n");
708 1.26 skrll plat->fp_bootstrap();
709 1.26 skrll
710 1.18 skrll /*
711 1.18 skrll * If stdout-path is specified on the command line, override the
712 1.18 skrll * value in /chosen/stdout-path before initializing console.
713 1.18 skrll */
714 1.18 skrll VPRINTF("stdout\n");
715 1.26 skrll fdt_update_stdout_path(fdt_data, boot_args);
716 1.18 skrll
717 1.18 skrll /*
718 1.18 skrll * Done making changes to the FDT.
719 1.18 skrll */
720 1.18 skrll fdt_pack(fdt_data);
721 1.18 skrll
722 1.26 skrll const uint32_t dtbsize = round_page(fdt_totalsize(fdt_data));
723 1.26 skrll
724 1.26 skrll VPRINTF("fdt size %x/%x\n", dtbsize, fdt_totalsize(fdt_data));
725 1.26 skrll
726 1.18 skrll VPRINTF("consinit ");
727 1.18 skrll consinit();
728 1.18 skrll VPRINTF("ok\n");
729 1.18 skrll
730 1.18 skrll /* Talk to the user */
731 1.18 skrll printf("NetBSD/riscv (fdt) booting ...\n");
732 1.18 skrll
733 1.18 skrll #ifdef BOOT_ARGS
734 1.18 skrll char mi_bootargs[] = BOOT_ARGS;
735 1.26 skrll parse_mi_bootargs(mi_bootargs);
736 1.18 skrll #endif
737 1.18 skrll
738 1.18 skrll uint64_t memory_start, memory_end;
739 1.18 skrll fdt_memory_get(&memory_start, &memory_end);
740 1.26 skrll physical_start = memory_start;
741 1.26 skrll physical_end = memory_end;
742 1.18 skrll
743 1.18 skrll fdt_memory_foreach(riscv_print_memory, NULL);
744 1.18 skrll
745 1.18 skrll /* Cannot map memory above largest page number */
746 1.18 skrll const uint64_t maxppn = __SHIFTOUT_MASK(PTE_PPN) - 1;
747 1.18 skrll const uint64_t memory_limit = ptoa(maxppn);
748 1.18 skrll
749 1.18 skrll if (memory_end > memory_limit) {
750 1.18 skrll fdt_memory_remove_range(memory_limit, memory_end);
751 1.18 skrll memory_end = memory_limit;
752 1.18 skrll }
753 1.18 skrll
754 1.18 skrll uint64_t memory_size __unused = memory_end - memory_start;
755 1.18 skrll
756 1.18 skrll VPRINTF("%s: memory start %" PRIx64 " end %" PRIx64 " (len %"
757 1.18 skrll PRIx64 ")\n", __func__, memory_start, memory_end, memory_size);
758 1.18 skrll
759 1.26 skrll fdt_memory_remove_reserved(memory_start, memory_end);
760 1.26 skrll
761 1.28 skrll fdt_memory_remove_range(dtb, dtbsize);
762 1.26 skrll
763 1.18 skrll /* Perform PT build and VM init */
764 1.26 skrll cpu_kernel_vm_init(memory_start, memory_end);
765 1.18 skrll
766 1.18 skrll VPRINTF("bootargs: %s\n", bootargs);
767 1.18 skrll
768 1.26 skrll parse_mi_bootargs(boot_args);
769 1.26 skrll
770 1.26 skrll #ifdef DDB
771 1.26 skrll if (boothowto & RB_KDB) {
772 1.26 skrll printf("Entering DDB...\n");
773 1.26 skrll cpu_Debugger();
774 1.26 skrll }
775 1.26 skrll #endif
776 1.18 skrll
777 1.18 skrll extern char __kernel_text[];
778 1.18 skrll extern char _end[];
779 1.26 skrll // extern char __data_start[];
780 1.26 skrll // extern char __rodata_start[];
781 1.18 skrll
782 1.18 skrll vaddr_t kernstart = trunc_page((vaddr_t)__kernel_text);
783 1.18 skrll vaddr_t kernend = round_page((vaddr_t)_end);
784 1.18 skrll paddr_t kernstart_phys __unused = KERN_VTOPHYS(kernstart);
785 1.18 skrll paddr_t kernend_phys __unused = KERN_VTOPHYS(kernend);
786 1.18 skrll
787 1.18 skrll vaddr_t kernelvmstart;
788 1.18 skrll
789 1.18 skrll vaddr_t kernstart_mega __unused = MEGAPAGE_TRUNC(kernstart);
790 1.18 skrll vaddr_t kernend_mega = MEGAPAGE_ROUND(kernend);
791 1.18 skrll
792 1.18 skrll kernelvmstart = kernend_mega;
793 1.18 skrll
794 1.26 skrll #if 0
795 1.26 skrll #ifdef MODULAR
796 1.26 skrll #define MODULE_RESERVED_MAX (1024 * 1024 * 128)
797 1.26 skrll #define MODULE_RESERVED_SIZE (1024 * 1024 * 32) /* good enough? */
798 1.26 skrll module_start = kernelvmstart;
799 1.26 skrll module_end = kernend_mega + MODULE_RESERVED_SIZE;
800 1.26 skrll if (module_end >= kernstart_mega + MODULE_RESERVED_MAX)
801 1.26 skrll module_end = kernstart_mega + MODULE_RESERVED_MAX;
802 1.26 skrll KASSERT(module_end > kernend_mega);
803 1.26 skrll kernelvmstart = module_end;
804 1.26 skrll #endif /* MODULAR */
805 1.26 skrll #endif
806 1.26 skrll KASSERT(kernelvmstart < VM_KERNEL_VM_BASE);
807 1.26 skrll
808 1.26 skrll kernelvmstart = VM_KERNEL_VM_BASE;
809 1.26 skrll
810 1.26 skrll /*
811 1.26 skrll * msgbuf is allocated from the top of the last biggest memory block.
812 1.26 skrll */
813 1.26 skrll paddr_t msgbufaddr = 0;
814 1.26 skrll
815 1.26 skrll #ifdef _LP64
816 1.26 skrll /* XXX check all ranges for last one with a big enough hole */
817 1.26 skrll msgbufaddr = memory_end - MSGBUFSIZE;
818 1.26 skrll KASSERT(msgbufaddr != 0); /* no space for msgbuf */
819 1.26 skrll fdt_memory_remove_range(msgbufaddr, msgbufaddr + MSGBUFSIZE);
820 1.26 skrll msgbufaddr = RISCV_PA_TO_KVA(msgbufaddr);
821 1.26 skrll VPRINTF("msgbufaddr = %#lx\n", msgbufaddr);
822 1.26 skrll initmsgbuf((void *)msgbufaddr, MSGBUFSIZE);
823 1.26 skrll #endif
824 1.26 skrll
825 1.26 skrll KASSERT(msgbufaddr != 0); /* no space for msgbuf */
826 1.26 skrll #ifdef _LP64
827 1.26 skrll initmsgbuf((void *)RISCV_PA_TO_KVA(msgbufaddr), MSGBUFSIZE);
828 1.26 skrll #endif
829 1.26 skrll
830 1.20 simonb #define DPRINTF(v) VPRINTF("%24s = 0x%16lx\n", #v, (unsigned long)v);
831 1.18 skrll
832 1.18 skrll VPRINTF("------------------------------------------\n");
833 1.18 skrll DPRINTF(kern_vtopdiff);
834 1.18 skrll DPRINTF(memory_start);
835 1.18 skrll DPRINTF(memory_end);
836 1.18 skrll DPRINTF(memory_size);
837 1.18 skrll DPRINTF(kernstart_phys);
838 1.18 skrll DPRINTF(kernend_phys)
839 1.26 skrll DPRINTF(msgbufaddr);
840 1.26 skrll // DPRINTF(physical_end);
841 1.18 skrll DPRINTF(VM_MIN_KERNEL_ADDRESS);
842 1.18 skrll DPRINTF(kernstart_mega);
843 1.18 skrll DPRINTF(kernstart);
844 1.18 skrll DPRINTF(kernend);
845 1.18 skrll DPRINTF(kernend_mega);
846 1.26 skrll #if 0
847 1.26 skrll #ifdef MODULAR
848 1.26 skrll DPRINTF(module_start);
849 1.26 skrll DPRINTF(module_end);
850 1.26 skrll #endif
851 1.26 skrll #endif
852 1.18 skrll DPRINTF(VM_MAX_KERNEL_ADDRESS);
853 1.26 skrll #ifdef _LP64
854 1.26 skrll DPRINTF(pmap_direct_base);
855 1.26 skrll #endif
856 1.18 skrll VPRINTF("------------------------------------------\n");
857 1.18 skrll
858 1.18 skrll #undef DPRINTF
859 1.18 skrll
860 1.26 skrll uvm_md_init();
861 1.18 skrll
862 1.18 skrll /*
863 1.26 skrll * pass memory pages to uvm
864 1.18 skrll */
865 1.26 skrll physmem = 0;
866 1.26 skrll fdt_memory_foreach(riscv_add_memory, NULL);
867 1.26 skrll
868 1.26 skrll pmap_bootstrap(kernelvmstart, VM_MAX_KERNEL_ADDRESS);
869 1.26 skrll
870 1.26 skrll kasan_init();
871 1.26 skrll
872 1.26 skrll /* Finish setting up lwp0 on our end before we call main() */
873 1.26 skrll riscv_init_lwp0_uarea();
874 1.26 skrll }
875 1.26 skrll
876 1.26 skrll
877 1.26 skrll #ifdef _LP64
878 1.26 skrll static void
879 1.26 skrll pte_bits(void (*pr)(const char *, ...), pt_entry_t pte)
880 1.26 skrll {
881 1.26 skrll (*pr)("%c%c%c%c%c%c%c%c",
882 1.26 skrll (pte & PTE_D) ? 'D' : '.',
883 1.26 skrll (pte & PTE_A) ? 'A' : '.',
884 1.26 skrll (pte & PTE_G) ? 'G' : '.',
885 1.26 skrll (pte & PTE_U) ? 'U' : '.',
886 1.26 skrll (pte & PTE_X) ? 'X' : '.',
887 1.26 skrll (pte & PTE_W) ? 'W' : '.',
888 1.26 skrll (pte & PTE_R) ? 'R' : '.',
889 1.26 skrll (pte & PTE_V) ? 'V' : '.');
890 1.26 skrll }
891 1.26 skrll
892 1.26 skrll static void
893 1.26 skrll dump_ln_table(paddr_t pdp_pa, int topbit, int level, vaddr_t va,
894 1.26 skrll void (*pr)(const char *, ...) __printflike(1, 2))
895 1.26 skrll {
896 1.26 skrll pd_entry_t *pdp = (void *)PMAP_DIRECT_MAP(pdp_pa);
897 1.26 skrll
898 1.26 skrll (*pr)("l%u @ pa %#16" PRIxREGISTER "\n", level, pdp_pa);
899 1.26 skrll for (size_t i = 0; i < PAGE_SIZE / sizeof(pd_entry_t); i++) {
900 1.26 skrll pd_entry_t entry = pdp[i];
901 1.26 skrll
902 1.26 skrll if (topbit) {
903 1.26 skrll va = i << (PGSHIFT + level * SEGLENGTH);
904 1.26 skrll if (va & __BIT(topbit)) {
905 1.26 skrll va |= __BITS(63, topbit);
906 1.26 skrll }
907 1.26 skrll }
908 1.26 skrll if (entry != 0) {
909 1.26 skrll paddr_t pa = __SHIFTOUT(entry, PTE_PPN) << PGSHIFT;
910 1.26 skrll // check level PPN bits.
911 1.26 skrll if (PTE_ISLEAF_P(entry)) {
912 1.26 skrll (*pr)("l%u %3zu va 0x%016lx pa 0x%012lx - ",
913 1.26 skrll level, i, va, pa);
914 1.26 skrll pte_bits(pr, entry);
915 1.26 skrll (*pr)("\n");
916 1.26 skrll } else {
917 1.26 skrll (*pr)("l%u %3zu va 0x%016lx -> 0x%012lx - ",
918 1.26 skrll level, i, va, pa);
919 1.26 skrll pte_bits(pr, entry);
920 1.26 skrll (*pr)("\n");
921 1.26 skrll if (level == 0) {
922 1.26 skrll (*pr)("wtf\n");
923 1.26 skrll continue;
924 1.26 skrll }
925 1.26 skrll if (pte_pde_valid_p(entry))
926 1.26 skrll dump_ln_table(pa, 0, level - 1, va, pr);
927 1.26 skrll }
928 1.26 skrll }
929 1.26 skrll va += 1UL << (PGSHIFT + level * SEGLENGTH);
930 1.26 skrll }
931 1.26 skrll }
932 1.26 skrll
933 1.26 skrll #endif
934 1.26 skrll
935 1.26 skrll void
936 1.26 skrll pt_dump(void (*pr)(const char *, ...) __printflike(1, 2))
937 1.26 skrll {
938 1.26 skrll const register_t satp = csr_satp_read();
939 1.26 skrll size_t topbit = sizeof(long) * NBBY - 1;
940 1.26 skrll
941 1.26 skrll #ifdef _LP64
942 1.26 skrll const paddr_t satp_pa = __SHIFTOUT(satp, SATP_PPN) << PGSHIFT;
943 1.26 skrll const uint8_t mode = __SHIFTOUT(satp, SATP_MODE);
944 1.26 skrll u_int level = 1;
945 1.26 skrll
946 1.26 skrll switch (mode) {
947 1.26 skrll case SATP_MODE_SV39:
948 1.26 skrll case SATP_MODE_SV48:
949 1.26 skrll topbit = (39 - 1) + (mode - 8) * SEGLENGTH;
950 1.26 skrll level = mode - 6;
951 1.26 skrll break;
952 1.26 skrll }
953 1.26 skrll #endif
954 1.26 skrll (*pr)("topbit = %zu\n", topbit);
955 1.18 skrll
956 1.26 skrll (*pr)("satp = 0x%" PRIxREGISTER "\n", satp);
957 1.18 skrll #ifdef _LP64
958 1.26 skrll dump_ln_table(satp_pa, topbit, level, 0, pr);
959 1.18 skrll #endif
960 1.26 skrll }
961 1.26 skrll
962 1.26 skrll void
963 1.26 skrll consinit(void)
964 1.26 skrll {
965 1.26 skrll static bool initialized = false;
966 1.26 skrll const struct fdt_console *cons = fdtbus_get_console();
967 1.26 skrll const struct fdt_platform *plat = fdt_platform_find();
968 1.18 skrll
969 1.26 skrll if (initialized || cons == NULL)
970 1.26 skrll return;
971 1.26 skrll
972 1.26 skrll u_int uart_freq = 0;
973 1.26 skrll extern struct bus_space riscv_generic_bs_tag;
974 1.26 skrll struct fdt_attach_args faa = {
975 1.26 skrll .faa_bst = &riscv_generic_bs_tag,
976 1.26 skrll };
977 1.26 skrll
978 1.26 skrll faa.faa_phandle = fdtbus_get_stdout_phandle();
979 1.26 skrll if (plat->fp_uart_freq != NULL)
980 1.26 skrll uart_freq = plat->fp_uart_freq();
981 1.18 skrll
982 1.26 skrll cons->consinit(&faa, uart_freq);
983 1.18 skrll
984 1.26 skrll initialized = true;
985 1.1 matt }
986