Linux 2.6.31.8
[linux/fpc-iii.git] / arch / mips / kernel / vpe.c
blob9a1ab7e87fd4d00e1705f858654f841a4f198e6f
1 /*
2 * Copyright (C) 2004, 2005 MIPS Technologies, Inc. All rights reserved.
4 * This program is free software; you can distribute it and/or modify it
5 * under the terms of the GNU General Public License (Version 2) as
6 * published by the Free Software Foundation.
8 * This program is distributed in the hope it will be useful, but WITHOUT
9 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
10 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
11 * for more details.
13 * You should have received a copy of the GNU General Public License along
14 * with this program; if not, write to the Free Software Foundation, Inc.,
15 * 59 Temple Place - Suite 330, Boston MA 02111-1307, USA.
19 * VPE support module
21 * Provides support for loading a MIPS SP program on VPE1.
22 * The SP enviroment is rather simple, no tlb's. It needs to be relocatable
23 * (or partially linked). You should initialise your stack in the startup
24 * code. This loader looks for the symbol __start and sets up
25 * execution to resume from there. The MIPS SDE kit contains suitable examples.
27 * To load and run, simply cat a SP 'program file' to /dev/vpe1.
28 * i.e cat spapp >/dev/vpe1.
30 #include <linux/kernel.h>
31 #include <linux/device.h>
32 #include <linux/module.h>
33 #include <linux/fs.h>
34 #include <linux/init.h>
35 #include <asm/uaccess.h>
36 #include <linux/slab.h>
37 #include <linux/list.h>
38 #include <linux/vmalloc.h>
39 #include <linux/elf.h>
40 #include <linux/seq_file.h>
41 #include <linux/smp_lock.h>
42 #include <linux/syscalls.h>
43 #include <linux/moduleloader.h>
44 #include <linux/interrupt.h>
45 #include <linux/poll.h>
46 #include <linux/bootmem.h>
47 #include <asm/mipsregs.h>
48 #include <asm/mipsmtregs.h>
49 #include <asm/cacheflush.h>
50 #include <asm/atomic.h>
51 #include <asm/cpu.h>
52 #include <asm/mips_mt.h>
53 #include <asm/processor.h>
54 #include <asm/system.h>
55 #include <asm/vpe.h>
56 #include <asm/kspd.h>
58 typedef void *vpe_handle;
60 #ifndef ARCH_SHF_SMALL
61 #define ARCH_SHF_SMALL 0
62 #endif
64 /* If this is set, the section belongs in the init part of the module */
65 #define INIT_OFFSET_MASK (1UL << (BITS_PER_LONG-1))
68 * The number of TCs and VPEs physically available on the core
70 static int hw_tcs, hw_vpes;
71 static char module_name[] = "vpe";
72 static int major;
73 static const int minor = 1; /* fixed for now */
75 #ifdef CONFIG_MIPS_APSP_KSPD
76 static struct kspd_notifications kspd_events;
77 static int kspd_events_reqd = 0;
78 #endif
80 /* grab the likely amount of memory we will need. */
81 #ifdef CONFIG_MIPS_VPE_LOADER_TOM
82 #define P_SIZE (2 * 1024 * 1024)
83 #else
84 /* add an overhead to the max kmalloc size for non-striped symbols/etc */
85 #define P_SIZE (256 * 1024)
86 #endif
88 extern unsigned long physical_memsize;
90 #define MAX_VPES 16
91 #define VPE_PATH_MAX 256
93 enum vpe_state {
94 VPE_STATE_UNUSED = 0,
95 VPE_STATE_INUSE,
96 VPE_STATE_RUNNING
99 enum tc_state {
100 TC_STATE_UNUSED = 0,
101 TC_STATE_INUSE,
102 TC_STATE_RUNNING,
103 TC_STATE_DYNAMIC
106 struct vpe {
107 enum vpe_state state;
109 /* (device) minor associated with this vpe */
110 int minor;
112 /* elfloader stuff */
113 void *load_addr;
114 unsigned long len;
115 char *pbuffer;
116 unsigned long plen;
117 unsigned int uid, gid;
118 char cwd[VPE_PATH_MAX];
120 unsigned long __start;
122 /* tc's associated with this vpe */
123 struct list_head tc;
125 /* The list of vpe's */
126 struct list_head list;
128 /* shared symbol address */
129 void *shared_ptr;
131 /* the list of who wants to know when something major happens */
132 struct list_head notify;
134 unsigned int ntcs;
137 struct tc {
138 enum tc_state state;
139 int index;
141 struct vpe *pvpe; /* parent VPE */
142 struct list_head tc; /* The list of TC's with this VPE */
143 struct list_head list; /* The global list of tc's */
146 struct {
147 /* Virtual processing elements */
148 struct list_head vpe_list;
150 /* Thread contexts */
151 struct list_head tc_list;
152 } vpecontrol = {
153 .vpe_list = LIST_HEAD_INIT(vpecontrol.vpe_list),
154 .tc_list = LIST_HEAD_INIT(vpecontrol.tc_list)
157 static void release_progmem(void *ptr);
159 /* get the vpe associated with this minor */
160 static struct vpe *get_vpe(int minor)
162 struct vpe *v;
164 if (!cpu_has_mipsmt)
165 return NULL;
167 list_for_each_entry(v, &vpecontrol.vpe_list, list) {
168 if (v->minor == minor)
169 return v;
172 return NULL;
175 /* get the vpe associated with this minor */
176 static struct tc *get_tc(int index)
178 struct tc *t;
180 list_for_each_entry(t, &vpecontrol.tc_list, list) {
181 if (t->index == index)
182 return t;
185 return NULL;
188 /* allocate a vpe and associate it with this minor (or index) */
189 static struct vpe *alloc_vpe(int minor)
191 struct vpe *v;
193 if ((v = kzalloc(sizeof(struct vpe), GFP_KERNEL)) == NULL) {
194 return NULL;
197 INIT_LIST_HEAD(&v->tc);
198 list_add_tail(&v->list, &vpecontrol.vpe_list);
200 INIT_LIST_HEAD(&v->notify);
201 v->minor = minor;
202 return v;
205 /* allocate a tc. At startup only tc0 is running, all other can be halted. */
206 static struct tc *alloc_tc(int index)
208 struct tc *tc;
210 if ((tc = kzalloc(sizeof(struct tc), GFP_KERNEL)) == NULL)
211 goto out;
213 INIT_LIST_HEAD(&tc->tc);
214 tc->index = index;
215 list_add_tail(&tc->list, &vpecontrol.tc_list);
217 out:
218 return tc;
221 /* clean up and free everything */
222 static void release_vpe(struct vpe *v)
224 list_del(&v->list);
225 if (v->load_addr)
226 release_progmem(v);
227 kfree(v);
230 static void dump_mtregs(void)
232 unsigned long val;
234 val = read_c0_config3();
235 printk("config3 0x%lx MT %ld\n", val,
236 (val & CONFIG3_MT) >> CONFIG3_MT_SHIFT);
238 val = read_c0_mvpcontrol();
239 printk("MVPControl 0x%lx, STLB %ld VPC %ld EVP %ld\n", val,
240 (val & MVPCONTROL_STLB) >> MVPCONTROL_STLB_SHIFT,
241 (val & MVPCONTROL_VPC) >> MVPCONTROL_VPC_SHIFT,
242 (val & MVPCONTROL_EVP));
244 val = read_c0_mvpconf0();
245 printk("mvpconf0 0x%lx, PVPE %ld PTC %ld M %ld\n", val,
246 (val & MVPCONF0_PVPE) >> MVPCONF0_PVPE_SHIFT,
247 val & MVPCONF0_PTC, (val & MVPCONF0_M) >> MVPCONF0_M_SHIFT);
250 /* Find some VPE program space */
251 static void *alloc_progmem(unsigned long len)
253 void *addr;
255 #ifdef CONFIG_MIPS_VPE_LOADER_TOM
257 * This means you must tell Linux to use less memory than you
258 * physically have, for example by passing a mem= boot argument.
260 addr = pfn_to_kaddr(max_low_pfn);
261 memset(addr, 0, len);
262 #else
263 /* simple grab some mem for now */
264 addr = kzalloc(len, GFP_KERNEL);
265 #endif
267 return addr;
270 static void release_progmem(void *ptr)
272 #ifndef CONFIG_MIPS_VPE_LOADER_TOM
273 kfree(ptr);
274 #endif
277 /* Update size with this section: return offset. */
278 static long get_offset(unsigned long *size, Elf_Shdr * sechdr)
280 long ret;
282 ret = ALIGN(*size, sechdr->sh_addralign ? : 1);
283 *size = ret + sechdr->sh_size;
284 return ret;
287 /* Lay out the SHF_ALLOC sections in a way not dissimilar to how ld
288 might -- code, read-only data, read-write data, small data. Tally
289 sizes, and place the offsets into sh_entsize fields: high bit means it
290 belongs in init. */
291 static void layout_sections(struct module *mod, const Elf_Ehdr * hdr,
292 Elf_Shdr * sechdrs, const char *secstrings)
294 static unsigned long const masks[][2] = {
295 /* NOTE: all executable code must be the first section
296 * in this array; otherwise modify the text_size
297 * finder in the two loops below */
298 {SHF_EXECINSTR | SHF_ALLOC, ARCH_SHF_SMALL},
299 {SHF_ALLOC, SHF_WRITE | ARCH_SHF_SMALL},
300 {SHF_WRITE | SHF_ALLOC, ARCH_SHF_SMALL},
301 {ARCH_SHF_SMALL | SHF_ALLOC, 0}
303 unsigned int m, i;
305 for (i = 0; i < hdr->e_shnum; i++)
306 sechdrs[i].sh_entsize = ~0UL;
308 for (m = 0; m < ARRAY_SIZE(masks); ++m) {
309 for (i = 0; i < hdr->e_shnum; ++i) {
310 Elf_Shdr *s = &sechdrs[i];
312 // || strncmp(secstrings + s->sh_name, ".init", 5) == 0)
313 if ((s->sh_flags & masks[m][0]) != masks[m][0]
314 || (s->sh_flags & masks[m][1])
315 || s->sh_entsize != ~0UL)
316 continue;
317 s->sh_entsize =
318 get_offset((unsigned long *)&mod->core_size, s);
321 if (m == 0)
322 mod->core_text_size = mod->core_size;
328 /* from module-elf32.c, but subverted a little */
330 struct mips_hi16 {
331 struct mips_hi16 *next;
332 Elf32_Addr *addr;
333 Elf32_Addr value;
336 static struct mips_hi16 *mips_hi16_list;
337 static unsigned int gp_offs, gp_addr;
339 static int apply_r_mips_none(struct module *me, uint32_t *location,
340 Elf32_Addr v)
342 return 0;
345 static int apply_r_mips_gprel16(struct module *me, uint32_t *location,
346 Elf32_Addr v)
348 int rel;
350 if( !(*location & 0xffff) ) {
351 rel = (int)v - gp_addr;
353 else {
354 /* .sbss + gp(relative) + offset */
355 /* kludge! */
356 rel = (int)(short)((int)v + gp_offs +
357 (int)(short)(*location & 0xffff) - gp_addr);
360 if( (rel > 32768) || (rel < -32768) ) {
361 printk(KERN_DEBUG "VPE loader: apply_r_mips_gprel16: "
362 "relative address 0x%x out of range of gp register\n",
363 rel);
364 return -ENOEXEC;
367 *location = (*location & 0xffff0000) | (rel & 0xffff);
369 return 0;
372 static int apply_r_mips_pc16(struct module *me, uint32_t *location,
373 Elf32_Addr v)
375 int rel;
376 rel = (((unsigned int)v - (unsigned int)location));
377 rel >>= 2; // because the offset is in _instructions_ not bytes.
378 rel -= 1; // and one instruction less due to the branch delay slot.
380 if( (rel > 32768) || (rel < -32768) ) {
381 printk(KERN_DEBUG "VPE loader: "
382 "apply_r_mips_pc16: relative address out of range 0x%x\n", rel);
383 return -ENOEXEC;
386 *location = (*location & 0xffff0000) | (rel & 0xffff);
388 return 0;
391 static int apply_r_mips_32(struct module *me, uint32_t *location,
392 Elf32_Addr v)
394 *location += v;
396 return 0;
399 static int apply_r_mips_26(struct module *me, uint32_t *location,
400 Elf32_Addr v)
402 if (v % 4) {
403 printk(KERN_DEBUG "VPE loader: apply_r_mips_26 "
404 " unaligned relocation\n");
405 return -ENOEXEC;
409 * Not desperately convinced this is a good check of an overflow condition
410 * anyway. But it gets in the way of handling undefined weak symbols which
411 * we want to set to zero.
412 * if ((v & 0xf0000000) != (((unsigned long)location + 4) & 0xf0000000)) {
413 * printk(KERN_ERR
414 * "module %s: relocation overflow\n",
415 * me->name);
416 * return -ENOEXEC;
420 *location = (*location & ~0x03ffffff) |
421 ((*location + (v >> 2)) & 0x03ffffff);
422 return 0;
425 static int apply_r_mips_hi16(struct module *me, uint32_t *location,
426 Elf32_Addr v)
428 struct mips_hi16 *n;
431 * We cannot relocate this one now because we don't know the value of
432 * the carry we need to add. Save the information, and let LO16 do the
433 * actual relocation.
435 n = kmalloc(sizeof *n, GFP_KERNEL);
436 if (!n)
437 return -ENOMEM;
439 n->addr = location;
440 n->value = v;
441 n->next = mips_hi16_list;
442 mips_hi16_list = n;
444 return 0;
447 static int apply_r_mips_lo16(struct module *me, uint32_t *location,
448 Elf32_Addr v)
450 unsigned long insnlo = *location;
451 Elf32_Addr val, vallo;
452 struct mips_hi16 *l, *next;
454 /* Sign extend the addend we extract from the lo insn. */
455 vallo = ((insnlo & 0xffff) ^ 0x8000) - 0x8000;
457 if (mips_hi16_list != NULL) {
459 l = mips_hi16_list;
460 while (l != NULL) {
461 unsigned long insn;
464 * The value for the HI16 had best be the same.
466 if (v != l->value) {
467 printk(KERN_DEBUG "VPE loader: "
468 "apply_r_mips_lo16/hi16: \t"
469 "inconsistent value information\n");
470 goto out_free;
474 * Do the HI16 relocation. Note that we actually don't
475 * need to know anything about the LO16 itself, except
476 * where to find the low 16 bits of the addend needed
477 * by the LO16.
479 insn = *l->addr;
480 val = ((insn & 0xffff) << 16) + vallo;
481 val += v;
484 * Account for the sign extension that will happen in
485 * the low bits.
487 val = ((val >> 16) + ((val & 0x8000) != 0)) & 0xffff;
489 insn = (insn & ~0xffff) | val;
490 *l->addr = insn;
492 next = l->next;
493 kfree(l);
494 l = next;
497 mips_hi16_list = NULL;
501 * Ok, we're done with the HI16 relocs. Now deal with the LO16.
503 val = v + vallo;
504 insnlo = (insnlo & ~0xffff) | (val & 0xffff);
505 *location = insnlo;
507 return 0;
509 out_free:
510 while (l != NULL) {
511 next = l->next;
512 kfree(l);
513 l = next;
515 mips_hi16_list = NULL;
517 return -ENOEXEC;
520 static int (*reloc_handlers[]) (struct module *me, uint32_t *location,
521 Elf32_Addr v) = {
522 [R_MIPS_NONE] = apply_r_mips_none,
523 [R_MIPS_32] = apply_r_mips_32,
524 [R_MIPS_26] = apply_r_mips_26,
525 [R_MIPS_HI16] = apply_r_mips_hi16,
526 [R_MIPS_LO16] = apply_r_mips_lo16,
527 [R_MIPS_GPREL16] = apply_r_mips_gprel16,
528 [R_MIPS_PC16] = apply_r_mips_pc16
531 static char *rstrs[] = {
532 [R_MIPS_NONE] = "MIPS_NONE",
533 [R_MIPS_32] = "MIPS_32",
534 [R_MIPS_26] = "MIPS_26",
535 [R_MIPS_HI16] = "MIPS_HI16",
536 [R_MIPS_LO16] = "MIPS_LO16",
537 [R_MIPS_GPREL16] = "MIPS_GPREL16",
538 [R_MIPS_PC16] = "MIPS_PC16"
541 static int apply_relocations(Elf32_Shdr *sechdrs,
542 const char *strtab,
543 unsigned int symindex,
544 unsigned int relsec,
545 struct module *me)
547 Elf32_Rel *rel = (void *) sechdrs[relsec].sh_addr;
548 Elf32_Sym *sym;
549 uint32_t *location;
550 unsigned int i;
551 Elf32_Addr v;
552 int res;
554 for (i = 0; i < sechdrs[relsec].sh_size / sizeof(*rel); i++) {
555 Elf32_Word r_info = rel[i].r_info;
557 /* This is where to make the change */
558 location = (void *)sechdrs[sechdrs[relsec].sh_info].sh_addr
559 + rel[i].r_offset;
560 /* This is the symbol it is referring to */
561 sym = (Elf32_Sym *)sechdrs[symindex].sh_addr
562 + ELF32_R_SYM(r_info);
564 if (!sym->st_value) {
565 printk(KERN_DEBUG "%s: undefined weak symbol %s\n",
566 me->name, strtab + sym->st_name);
567 /* just print the warning, dont barf */
570 v = sym->st_value;
572 res = reloc_handlers[ELF32_R_TYPE(r_info)](me, location, v);
573 if( res ) {
574 char *r = rstrs[ELF32_R_TYPE(r_info)];
575 printk(KERN_WARNING "VPE loader: .text+0x%x "
576 "relocation type %s for symbol \"%s\" failed\n",
577 rel[i].r_offset, r ? r : "UNKNOWN",
578 strtab + sym->st_name);
579 return res;
583 return 0;
586 static inline void save_gp_address(unsigned int secbase, unsigned int rel)
588 gp_addr = secbase + rel;
589 gp_offs = gp_addr - (secbase & 0xffff0000);
591 /* end module-elf32.c */
595 /* Change all symbols so that sh_value encodes the pointer directly. */
596 static void simplify_symbols(Elf_Shdr * sechdrs,
597 unsigned int symindex,
598 const char *strtab,
599 const char *secstrings,
600 unsigned int nsecs, struct module *mod)
602 Elf_Sym *sym = (void *)sechdrs[symindex].sh_addr;
603 unsigned long secbase, bssbase = 0;
604 unsigned int i, n = sechdrs[symindex].sh_size / sizeof(Elf_Sym);
605 int size;
607 /* find the .bss section for COMMON symbols */
608 for (i = 0; i < nsecs; i++) {
609 if (strncmp(secstrings + sechdrs[i].sh_name, ".bss", 4) == 0) {
610 bssbase = sechdrs[i].sh_addr;
611 break;
615 for (i = 1; i < n; i++) {
616 switch (sym[i].st_shndx) {
617 case SHN_COMMON:
618 /* Allocate space for the symbol in the .bss section.
619 st_value is currently size.
620 We want it to have the address of the symbol. */
622 size = sym[i].st_value;
623 sym[i].st_value = bssbase;
625 bssbase += size;
626 break;
628 case SHN_ABS:
629 /* Don't need to do anything */
630 break;
632 case SHN_UNDEF:
633 /* ret = -ENOENT; */
634 break;
636 case SHN_MIPS_SCOMMON:
637 printk(KERN_DEBUG "simplify_symbols: ignoring SHN_MIPS_SCOMMON "
638 "symbol <%s> st_shndx %d\n", strtab + sym[i].st_name,
639 sym[i].st_shndx);
640 // .sbss section
641 break;
643 default:
644 secbase = sechdrs[sym[i].st_shndx].sh_addr;
646 if (strncmp(strtab + sym[i].st_name, "_gp", 3) == 0) {
647 save_gp_address(secbase, sym[i].st_value);
650 sym[i].st_value += secbase;
651 break;
656 #ifdef DEBUG_ELFLOADER
657 static void dump_elfsymbols(Elf_Shdr * sechdrs, unsigned int symindex,
658 const char *strtab, struct module *mod)
660 Elf_Sym *sym = (void *)sechdrs[symindex].sh_addr;
661 unsigned int i, n = sechdrs[symindex].sh_size / sizeof(Elf_Sym);
663 printk(KERN_DEBUG "dump_elfsymbols: n %d\n", n);
664 for (i = 1; i < n; i++) {
665 printk(KERN_DEBUG " i %d name <%s> 0x%x\n", i,
666 strtab + sym[i].st_name, sym[i].st_value);
669 #endif
671 /* We are prepared so configure and start the VPE... */
672 static int vpe_run(struct vpe * v)
674 unsigned long flags, val, dmt_flag;
675 struct vpe_notifications *n;
676 unsigned int vpeflags;
677 struct tc *t;
679 /* check we are the Master VPE */
680 local_irq_save(flags);
681 val = read_c0_vpeconf0();
682 if (!(val & VPECONF0_MVP)) {
683 printk(KERN_WARNING
684 "VPE loader: only Master VPE's are allowed to configure MT\n");
685 local_irq_restore(flags);
687 return -1;
690 dmt_flag = dmt();
691 vpeflags = dvpe();
693 if (!list_empty(&v->tc)) {
694 if ((t = list_entry(v->tc.next, struct tc, tc)) == NULL) {
695 evpe(vpeflags);
696 emt(dmt_flag);
697 local_irq_restore(flags);
699 printk(KERN_WARNING
700 "VPE loader: TC %d is already in use.\n",
701 t->index);
702 return -ENOEXEC;
704 } else {
705 evpe(vpeflags);
706 emt(dmt_flag);
707 local_irq_restore(flags);
709 printk(KERN_WARNING
710 "VPE loader: No TC's associated with VPE %d\n",
711 v->minor);
713 return -ENOEXEC;
716 /* Put MVPE's into 'configuration state' */
717 set_c0_mvpcontrol(MVPCONTROL_VPC);
719 settc(t->index);
721 /* should check it is halted, and not activated */
722 if ((read_tc_c0_tcstatus() & TCSTATUS_A) || !(read_tc_c0_tchalt() & TCHALT_H)) {
723 evpe(vpeflags);
724 emt(dmt_flag);
725 local_irq_restore(flags);
727 printk(KERN_WARNING "VPE loader: TC %d is already active!\n",
728 t->index);
730 return -ENOEXEC;
733 /* Write the address we want it to start running from in the TCPC register. */
734 write_tc_c0_tcrestart((unsigned long)v->__start);
735 write_tc_c0_tccontext((unsigned long)0);
738 * Mark the TC as activated, not interrupt exempt and not dynamically
739 * allocatable
741 val = read_tc_c0_tcstatus();
742 val = (val & ~(TCSTATUS_DA | TCSTATUS_IXMT)) | TCSTATUS_A;
743 write_tc_c0_tcstatus(val);
745 write_tc_c0_tchalt(read_tc_c0_tchalt() & ~TCHALT_H);
748 * The sde-kit passes 'memsize' to __start in $a3, so set something
749 * here... Or set $a3 to zero and define DFLT_STACK_SIZE and
750 * DFLT_HEAP_SIZE when you compile your program
752 mttgpr(6, v->ntcs);
753 mttgpr(7, physical_memsize);
755 /* set up VPE1 */
757 * bind the TC to VPE 1 as late as possible so we only have the final
758 * VPE registers to set up, and so an EJTAG probe can trigger on it
760 write_tc_c0_tcbind((read_tc_c0_tcbind() & ~TCBIND_CURVPE) | 1);
762 write_vpe_c0_vpeconf0(read_vpe_c0_vpeconf0() & ~(VPECONF0_VPA));
764 back_to_back_c0_hazard();
766 /* Set up the XTC bit in vpeconf0 to point at our tc */
767 write_vpe_c0_vpeconf0( (read_vpe_c0_vpeconf0() & ~(VPECONF0_XTC))
768 | (t->index << VPECONF0_XTC_SHIFT));
770 back_to_back_c0_hazard();
772 /* enable this VPE */
773 write_vpe_c0_vpeconf0(read_vpe_c0_vpeconf0() | VPECONF0_VPA);
775 /* clear out any left overs from a previous program */
776 write_vpe_c0_status(0);
777 write_vpe_c0_cause(0);
779 /* take system out of configuration state */
780 clear_c0_mvpcontrol(MVPCONTROL_VPC);
783 * SMTC/SMVP kernels manage VPE enable independently,
784 * but uniprocessor kernels need to turn it on, even
785 * if that wasn't the pre-dvpe() state.
787 #ifdef CONFIG_SMP
788 evpe(vpeflags);
789 #else
790 evpe(EVPE_ENABLE);
791 #endif
792 emt(dmt_flag);
793 local_irq_restore(flags);
795 list_for_each_entry(n, &v->notify, list)
796 n->start(minor);
798 return 0;
801 static int find_vpe_symbols(struct vpe * v, Elf_Shdr * sechdrs,
802 unsigned int symindex, const char *strtab,
803 struct module *mod)
805 Elf_Sym *sym = (void *)sechdrs[symindex].sh_addr;
806 unsigned int i, n = sechdrs[symindex].sh_size / sizeof(Elf_Sym);
808 for (i = 1; i < n; i++) {
809 if (strcmp(strtab + sym[i].st_name, "__start") == 0) {
810 v->__start = sym[i].st_value;
813 if (strcmp(strtab + sym[i].st_name, "vpe_shared") == 0) {
814 v->shared_ptr = (void *)sym[i].st_value;
818 if ( (v->__start == 0) || (v->shared_ptr == NULL))
819 return -1;
821 return 0;
825 * Allocates a VPE with some program code space(the load address), copies the
826 * contents of the program (p)buffer performing relocatations/etc, free's it
827 * when finished.
829 static int vpe_elfload(struct vpe * v)
831 Elf_Ehdr *hdr;
832 Elf_Shdr *sechdrs;
833 long err = 0;
834 char *secstrings, *strtab = NULL;
835 unsigned int len, i, symindex = 0, strindex = 0, relocate = 0;
836 struct module mod; // so we can re-use the relocations code
838 memset(&mod, 0, sizeof(struct module));
839 strcpy(mod.name, "VPE loader");
841 hdr = (Elf_Ehdr *) v->pbuffer;
842 len = v->plen;
844 /* Sanity checks against insmoding binaries or wrong arch,
845 weird elf version */
846 if (memcmp(hdr->e_ident, ELFMAG, SELFMAG) != 0
847 || (hdr->e_type != ET_REL && hdr->e_type != ET_EXEC)
848 || !elf_check_arch(hdr)
849 || hdr->e_shentsize != sizeof(*sechdrs)) {
850 printk(KERN_WARNING
851 "VPE loader: program wrong arch or weird elf version\n");
853 return -ENOEXEC;
856 if (hdr->e_type == ET_REL)
857 relocate = 1;
859 if (len < hdr->e_shoff + hdr->e_shnum * sizeof(Elf_Shdr)) {
860 printk(KERN_ERR "VPE loader: program length %u truncated\n",
861 len);
863 return -ENOEXEC;
866 /* Convenience variables */
867 sechdrs = (void *)hdr + hdr->e_shoff;
868 secstrings = (void *)hdr + sechdrs[hdr->e_shstrndx].sh_offset;
869 sechdrs[0].sh_addr = 0;
871 /* And these should exist, but gcc whinges if we don't init them */
872 symindex = strindex = 0;
874 if (relocate) {
875 for (i = 1; i < hdr->e_shnum; i++) {
876 if (sechdrs[i].sh_type != SHT_NOBITS
877 && len < sechdrs[i].sh_offset + sechdrs[i].sh_size) {
878 printk(KERN_ERR "VPE program length %u truncated\n",
879 len);
880 return -ENOEXEC;
883 /* Mark all sections sh_addr with their address in the
884 temporary image. */
885 sechdrs[i].sh_addr = (size_t) hdr + sechdrs[i].sh_offset;
887 /* Internal symbols and strings. */
888 if (sechdrs[i].sh_type == SHT_SYMTAB) {
889 symindex = i;
890 strindex = sechdrs[i].sh_link;
891 strtab = (char *)hdr + sechdrs[strindex].sh_offset;
894 layout_sections(&mod, hdr, sechdrs, secstrings);
897 v->load_addr = alloc_progmem(mod.core_size);
898 if (!v->load_addr)
899 return -ENOMEM;
901 pr_info("VPE loader: loading to %p\n", v->load_addr);
903 if (relocate) {
904 for (i = 0; i < hdr->e_shnum; i++) {
905 void *dest;
907 if (!(sechdrs[i].sh_flags & SHF_ALLOC))
908 continue;
910 dest = v->load_addr + sechdrs[i].sh_entsize;
912 if (sechdrs[i].sh_type != SHT_NOBITS)
913 memcpy(dest, (void *)sechdrs[i].sh_addr,
914 sechdrs[i].sh_size);
915 /* Update sh_addr to point to copy in image. */
916 sechdrs[i].sh_addr = (unsigned long)dest;
918 printk(KERN_DEBUG " section sh_name %s sh_addr 0x%x\n",
919 secstrings + sechdrs[i].sh_name, sechdrs[i].sh_addr);
922 /* Fix up syms, so that st_value is a pointer to location. */
923 simplify_symbols(sechdrs, symindex, strtab, secstrings,
924 hdr->e_shnum, &mod);
926 /* Now do relocations. */
927 for (i = 1; i < hdr->e_shnum; i++) {
928 const char *strtab = (char *)sechdrs[strindex].sh_addr;
929 unsigned int info = sechdrs[i].sh_info;
931 /* Not a valid relocation section? */
932 if (info >= hdr->e_shnum)
933 continue;
935 /* Don't bother with non-allocated sections */
936 if (!(sechdrs[info].sh_flags & SHF_ALLOC))
937 continue;
939 if (sechdrs[i].sh_type == SHT_REL)
940 err = apply_relocations(sechdrs, strtab, symindex, i,
941 &mod);
942 else if (sechdrs[i].sh_type == SHT_RELA)
943 err = apply_relocate_add(sechdrs, strtab, symindex, i,
944 &mod);
945 if (err < 0)
946 return err;
949 } else {
950 struct elf_phdr *phdr = (struct elf_phdr *) ((char *)hdr + hdr->e_phoff);
952 for (i = 0; i < hdr->e_phnum; i++) {
953 if (phdr->p_type == PT_LOAD) {
954 memcpy((void *)phdr->p_paddr,
955 (char *)hdr + phdr->p_offset,
956 phdr->p_filesz);
957 memset((void *)phdr->p_paddr + phdr->p_filesz,
958 0, phdr->p_memsz - phdr->p_filesz);
960 phdr++;
963 for (i = 0; i < hdr->e_shnum; i++) {
964 /* Internal symbols and strings. */
965 if (sechdrs[i].sh_type == SHT_SYMTAB) {
966 symindex = i;
967 strindex = sechdrs[i].sh_link;
968 strtab = (char *)hdr + sechdrs[strindex].sh_offset;
970 /* mark the symtab's address for when we try to find the
971 magic symbols */
972 sechdrs[i].sh_addr = (size_t) hdr + sechdrs[i].sh_offset;
977 /* make sure it's physically written out */
978 flush_icache_range((unsigned long)v->load_addr,
979 (unsigned long)v->load_addr + v->len);
981 if ((find_vpe_symbols(v, sechdrs, symindex, strtab, &mod)) < 0) {
982 if (v->__start == 0) {
983 printk(KERN_WARNING "VPE loader: program does not contain "
984 "a __start symbol\n");
985 return -ENOEXEC;
988 if (v->shared_ptr == NULL)
989 printk(KERN_WARNING "VPE loader: "
990 "program does not contain vpe_shared symbol.\n"
991 " Unable to use AMVP (AP/SP) facilities.\n");
994 printk(" elf loaded\n");
995 return 0;
998 static void cleanup_tc(struct tc *tc)
1000 unsigned long flags;
1001 unsigned int mtflags, vpflags;
1002 int tmp;
1004 local_irq_save(flags);
1005 mtflags = dmt();
1006 vpflags = dvpe();
1007 /* Put MVPE's into 'configuration state' */
1008 set_c0_mvpcontrol(MVPCONTROL_VPC);
1010 settc(tc->index);
1011 tmp = read_tc_c0_tcstatus();
1013 /* mark not allocated and not dynamically allocatable */
1014 tmp &= ~(TCSTATUS_A | TCSTATUS_DA);
1015 tmp |= TCSTATUS_IXMT; /* interrupt exempt */
1016 write_tc_c0_tcstatus(tmp);
1018 write_tc_c0_tchalt(TCHALT_H);
1019 mips_ihb();
1021 /* bind it to anything other than VPE1 */
1022 // write_tc_c0_tcbind(read_tc_c0_tcbind() & ~TCBIND_CURVPE); // | TCBIND_CURVPE
1024 clear_c0_mvpcontrol(MVPCONTROL_VPC);
1025 evpe(vpflags);
1026 emt(mtflags);
1027 local_irq_restore(flags);
1030 static int getcwd(char *buff, int size)
1032 mm_segment_t old_fs;
1033 int ret;
1035 old_fs = get_fs();
1036 set_fs(KERNEL_DS);
1038 ret = sys_getcwd(buff, size);
1040 set_fs(old_fs);
1042 return ret;
1045 /* checks VPE is unused and gets ready to load program */
1046 static int vpe_open(struct inode *inode, struct file *filp)
1048 enum vpe_state state;
1049 struct vpe_notifications *not;
1050 struct vpe *v;
1051 int ret, err = 0;
1053 lock_kernel();
1054 if (minor != iminor(inode)) {
1055 /* assume only 1 device at the moment. */
1056 printk(KERN_WARNING "VPE loader: only vpe1 is supported\n");
1057 err = -ENODEV;
1058 goto out;
1061 if ((v = get_vpe(tclimit)) == NULL) {
1062 printk(KERN_WARNING "VPE loader: unable to get vpe\n");
1063 err = -ENODEV;
1064 goto out;
1067 state = xchg(&v->state, VPE_STATE_INUSE);
1068 if (state != VPE_STATE_UNUSED) {
1069 printk(KERN_DEBUG "VPE loader: tc in use dumping regs\n");
1071 list_for_each_entry(not, &v->notify, list) {
1072 not->stop(tclimit);
1075 release_progmem(v->load_addr);
1076 cleanup_tc(get_tc(tclimit));
1079 /* this of-course trashes what was there before... */
1080 v->pbuffer = vmalloc(P_SIZE);
1081 v->plen = P_SIZE;
1082 v->load_addr = NULL;
1083 v->len = 0;
1085 v->uid = filp->f_cred->fsuid;
1086 v->gid = filp->f_cred->fsgid;
1088 #ifdef CONFIG_MIPS_APSP_KSPD
1089 /* get kspd to tell us when a syscall_exit happens */
1090 if (!kspd_events_reqd) {
1091 kspd_notify(&kspd_events);
1092 kspd_events_reqd++;
1094 #endif
1096 v->cwd[0] = 0;
1097 ret = getcwd(v->cwd, VPE_PATH_MAX);
1098 if (ret < 0)
1099 printk(KERN_WARNING "VPE loader: open, getcwd returned %d\n", ret);
1101 v->shared_ptr = NULL;
1102 v->__start = 0;
1104 out:
1105 unlock_kernel();
1106 return 0;
1109 static int vpe_release(struct inode *inode, struct file *filp)
1111 struct vpe *v;
1112 Elf_Ehdr *hdr;
1113 int ret = 0;
1115 v = get_vpe(tclimit);
1116 if (v == NULL)
1117 return -ENODEV;
1119 hdr = (Elf_Ehdr *) v->pbuffer;
1120 if (memcmp(hdr->e_ident, ELFMAG, SELFMAG) == 0) {
1121 if (vpe_elfload(v) >= 0) {
1122 vpe_run(v);
1123 } else {
1124 printk(KERN_WARNING "VPE loader: ELF load failed.\n");
1125 ret = -ENOEXEC;
1127 } else {
1128 printk(KERN_WARNING "VPE loader: only elf files are supported\n");
1129 ret = -ENOEXEC;
1132 /* It's good to be able to run the SP and if it chokes have a look at
1133 the /dev/rt?. But if we reset the pointer to the shared struct we
1134 lose what has happened. So perhaps if garbage is sent to the vpe
1135 device, use it as a trigger for the reset. Hopefully a nice
1136 executable will be along shortly. */
1137 if (ret < 0)
1138 v->shared_ptr = NULL;
1140 // cleanup any temp buffers
1141 if (v->pbuffer)
1142 vfree(v->pbuffer);
1143 v->plen = 0;
1144 return ret;
1147 static ssize_t vpe_write(struct file *file, const char __user * buffer,
1148 size_t count, loff_t * ppos)
1150 size_t ret = count;
1151 struct vpe *v;
1153 if (iminor(file->f_path.dentry->d_inode) != minor)
1154 return -ENODEV;
1156 v = get_vpe(tclimit);
1157 if (v == NULL)
1158 return -ENODEV;
1160 if (v->pbuffer == NULL) {
1161 printk(KERN_ERR "VPE loader: no buffer for program\n");
1162 return -ENOMEM;
1165 if ((count + v->len) > v->plen) {
1166 printk(KERN_WARNING
1167 "VPE loader: elf size too big. Perhaps strip uneeded symbols\n");
1168 return -ENOMEM;
1171 count -= copy_from_user(v->pbuffer + v->len, buffer, count);
1172 if (!count)
1173 return -EFAULT;
1175 v->len += count;
1176 return ret;
1179 static const struct file_operations vpe_fops = {
1180 .owner = THIS_MODULE,
1181 .open = vpe_open,
1182 .release = vpe_release,
1183 .write = vpe_write
1186 /* module wrapper entry points */
1187 /* give me a vpe */
1188 vpe_handle vpe_alloc(void)
1190 int i;
1191 struct vpe *v;
1193 /* find a vpe */
1194 for (i = 1; i < MAX_VPES; i++) {
1195 if ((v = get_vpe(i)) != NULL) {
1196 v->state = VPE_STATE_INUSE;
1197 return v;
1200 return NULL;
1203 EXPORT_SYMBOL(vpe_alloc);
1205 /* start running from here */
1206 int vpe_start(vpe_handle vpe, unsigned long start)
1208 struct vpe *v = vpe;
1210 v->__start = start;
1211 return vpe_run(v);
1214 EXPORT_SYMBOL(vpe_start);
1216 /* halt it for now */
1217 int vpe_stop(vpe_handle vpe)
1219 struct vpe *v = vpe;
1220 struct tc *t;
1221 unsigned int evpe_flags;
1223 evpe_flags = dvpe();
1225 if ((t = list_entry(v->tc.next, struct tc, tc)) != NULL) {
1227 settc(t->index);
1228 write_vpe_c0_vpeconf0(read_vpe_c0_vpeconf0() & ~VPECONF0_VPA);
1231 evpe(evpe_flags);
1233 return 0;
1236 EXPORT_SYMBOL(vpe_stop);
1238 /* I've done with it thank you */
1239 int vpe_free(vpe_handle vpe)
1241 struct vpe *v = vpe;
1242 struct tc *t;
1243 unsigned int evpe_flags;
1245 if ((t = list_entry(v->tc.next, struct tc, tc)) == NULL) {
1246 return -ENOEXEC;
1249 evpe_flags = dvpe();
1251 /* Put MVPE's into 'configuration state' */
1252 set_c0_mvpcontrol(MVPCONTROL_VPC);
1254 settc(t->index);
1255 write_vpe_c0_vpeconf0(read_vpe_c0_vpeconf0() & ~VPECONF0_VPA);
1257 /* halt the TC */
1258 write_tc_c0_tchalt(TCHALT_H);
1259 mips_ihb();
1261 /* mark the TC unallocated */
1262 write_tc_c0_tcstatus(read_tc_c0_tcstatus() & ~TCSTATUS_A);
1264 v->state = VPE_STATE_UNUSED;
1266 clear_c0_mvpcontrol(MVPCONTROL_VPC);
1267 evpe(evpe_flags);
1269 return 0;
1272 EXPORT_SYMBOL(vpe_free);
1274 void *vpe_get_shared(int index)
1276 struct vpe *v;
1278 if ((v = get_vpe(index)) == NULL)
1279 return NULL;
1281 return v->shared_ptr;
1284 EXPORT_SYMBOL(vpe_get_shared);
1286 int vpe_getuid(int index)
1288 struct vpe *v;
1290 if ((v = get_vpe(index)) == NULL)
1291 return -1;
1293 return v->uid;
1296 EXPORT_SYMBOL(vpe_getuid);
1298 int vpe_getgid(int index)
1300 struct vpe *v;
1302 if ((v = get_vpe(index)) == NULL)
1303 return -1;
1305 return v->gid;
1308 EXPORT_SYMBOL(vpe_getgid);
1310 int vpe_notify(int index, struct vpe_notifications *notify)
1312 struct vpe *v;
1314 if ((v = get_vpe(index)) == NULL)
1315 return -1;
1317 list_add(&notify->list, &v->notify);
1318 return 0;
1321 EXPORT_SYMBOL(vpe_notify);
1323 char *vpe_getcwd(int index)
1325 struct vpe *v;
1327 if ((v = get_vpe(index)) == NULL)
1328 return NULL;
1330 return v->cwd;
1333 EXPORT_SYMBOL(vpe_getcwd);
1335 #ifdef CONFIG_MIPS_APSP_KSPD
1336 static void kspd_sp_exit( int sp_id)
1338 cleanup_tc(get_tc(sp_id));
1340 #endif
1342 static ssize_t store_kill(struct device *dev, struct device_attribute *attr,
1343 const char *buf, size_t len)
1345 struct vpe *vpe = get_vpe(tclimit);
1346 struct vpe_notifications *not;
1348 list_for_each_entry(not, &vpe->notify, list) {
1349 not->stop(tclimit);
1352 release_progmem(vpe->load_addr);
1353 cleanup_tc(get_tc(tclimit));
1354 vpe_stop(vpe);
1355 vpe_free(vpe);
1357 return len;
1360 static ssize_t show_ntcs(struct device *cd, struct device_attribute *attr,
1361 char *buf)
1363 struct vpe *vpe = get_vpe(tclimit);
1365 return sprintf(buf, "%d\n", vpe->ntcs);
1368 static ssize_t store_ntcs(struct device *dev, struct device_attribute *attr,
1369 const char *buf, size_t len)
1371 struct vpe *vpe = get_vpe(tclimit);
1372 unsigned long new;
1373 char *endp;
1375 new = simple_strtoul(buf, &endp, 0);
1376 if (endp == buf)
1377 goto out_einval;
1379 if (new == 0 || new > (hw_tcs - tclimit))
1380 goto out_einval;
1382 vpe->ntcs = new;
1384 return len;
1386 out_einval:
1387 return -EINVAL;
1390 static struct device_attribute vpe_class_attributes[] = {
1391 __ATTR(kill, S_IWUSR, NULL, store_kill),
1392 __ATTR(ntcs, S_IRUGO | S_IWUSR, show_ntcs, store_ntcs),
1396 static void vpe_device_release(struct device *cd)
1398 kfree(cd);
1401 struct class vpe_class = {
1402 .name = "vpe",
1403 .owner = THIS_MODULE,
1404 .dev_release = vpe_device_release,
1405 .dev_attrs = vpe_class_attributes,
1408 struct device vpe_device;
1410 static int __init vpe_module_init(void)
1412 unsigned int mtflags, vpflags;
1413 unsigned long flags, val;
1414 struct vpe *v = NULL;
1415 struct tc *t;
1416 int tc, err;
1418 if (!cpu_has_mipsmt) {
1419 printk("VPE loader: not a MIPS MT capable processor\n");
1420 return -ENODEV;
1423 if (vpelimit == 0) {
1424 printk(KERN_WARNING "No VPEs reserved for AP/SP, not "
1425 "initializing VPE loader.\nPass maxvpes=<n> argument as "
1426 "kernel argument\n");
1428 return -ENODEV;
1431 if (tclimit == 0) {
1432 printk(KERN_WARNING "No TCs reserved for AP/SP, not "
1433 "initializing VPE loader.\nPass maxtcs=<n> argument as "
1434 "kernel argument\n");
1436 return -ENODEV;
1439 major = register_chrdev(0, module_name, &vpe_fops);
1440 if (major < 0) {
1441 printk("VPE loader: unable to register character device\n");
1442 return major;
1445 err = class_register(&vpe_class);
1446 if (err) {
1447 printk(KERN_ERR "vpe_class registration failed\n");
1448 goto out_chrdev;
1451 device_initialize(&vpe_device);
1452 vpe_device.class = &vpe_class,
1453 vpe_device.parent = NULL,
1454 dev_set_name(&vpe_device, "vpe1");
1455 vpe_device.devt = MKDEV(major, minor);
1456 err = device_add(&vpe_device);
1457 if (err) {
1458 printk(KERN_ERR "Adding vpe_device failed\n");
1459 goto out_class;
1462 local_irq_save(flags);
1463 mtflags = dmt();
1464 vpflags = dvpe();
1466 /* Put MVPE's into 'configuration state' */
1467 set_c0_mvpcontrol(MVPCONTROL_VPC);
1469 /* dump_mtregs(); */
1471 val = read_c0_mvpconf0();
1472 hw_tcs = (val & MVPCONF0_PTC) + 1;
1473 hw_vpes = ((val & MVPCONF0_PVPE) >> MVPCONF0_PVPE_SHIFT) + 1;
1475 for (tc = tclimit; tc < hw_tcs; tc++) {
1477 * Must re-enable multithreading temporarily or in case we
1478 * reschedule send IPIs or similar we might hang.
1480 clear_c0_mvpcontrol(MVPCONTROL_VPC);
1481 evpe(vpflags);
1482 emt(mtflags);
1483 local_irq_restore(flags);
1484 t = alloc_tc(tc);
1485 if (!t) {
1486 err = -ENOMEM;
1487 goto out;
1490 local_irq_save(flags);
1491 mtflags = dmt();
1492 vpflags = dvpe();
1493 set_c0_mvpcontrol(MVPCONTROL_VPC);
1495 /* VPE's */
1496 if (tc < hw_tcs) {
1497 settc(tc);
1499 if ((v = alloc_vpe(tc)) == NULL) {
1500 printk(KERN_WARNING "VPE: unable to allocate VPE\n");
1502 goto out_reenable;
1505 v->ntcs = hw_tcs - tclimit;
1507 /* add the tc to the list of this vpe's tc's. */
1508 list_add(&t->tc, &v->tc);
1510 /* deactivate all but vpe0 */
1511 if (tc >= tclimit) {
1512 unsigned long tmp = read_vpe_c0_vpeconf0();
1514 tmp &= ~VPECONF0_VPA;
1516 /* master VPE */
1517 tmp |= VPECONF0_MVP;
1518 write_vpe_c0_vpeconf0(tmp);
1521 /* disable multi-threading with TC's */
1522 write_vpe_c0_vpecontrol(read_vpe_c0_vpecontrol() & ~VPECONTROL_TE);
1524 if (tc >= vpelimit) {
1526 * Set config to be the same as vpe0,
1527 * particularly kseg0 coherency alg
1529 write_vpe_c0_config(read_c0_config());
1533 /* TC's */
1534 t->pvpe = v; /* set the parent vpe */
1536 if (tc >= tclimit) {
1537 unsigned long tmp;
1539 settc(tc);
1541 /* Any TC that is bound to VPE0 gets left as is - in case
1542 we are running SMTC on VPE0. A TC that is bound to any
1543 other VPE gets bound to VPE0, ideally I'd like to make
1544 it homeless but it doesn't appear to let me bind a TC
1545 to a non-existent VPE. Which is perfectly reasonable.
1547 The (un)bound state is visible to an EJTAG probe so may
1548 notify GDB...
1551 if (((tmp = read_tc_c0_tcbind()) & TCBIND_CURVPE)) {
1552 /* tc is bound >vpe0 */
1553 write_tc_c0_tcbind(tmp & ~TCBIND_CURVPE);
1555 t->pvpe = get_vpe(0); /* set the parent vpe */
1558 /* halt the TC */
1559 write_tc_c0_tchalt(TCHALT_H);
1560 mips_ihb();
1562 tmp = read_tc_c0_tcstatus();
1564 /* mark not activated and not dynamically allocatable */
1565 tmp &= ~(TCSTATUS_A | TCSTATUS_DA);
1566 tmp |= TCSTATUS_IXMT; /* interrupt exempt */
1567 write_tc_c0_tcstatus(tmp);
1571 out_reenable:
1572 /* release config state */
1573 clear_c0_mvpcontrol(MVPCONTROL_VPC);
1575 evpe(vpflags);
1576 emt(mtflags);
1577 local_irq_restore(flags);
1579 #ifdef CONFIG_MIPS_APSP_KSPD
1580 kspd_events.kspd_sp_exit = kspd_sp_exit;
1581 #endif
1582 return 0;
1584 out_class:
1585 class_unregister(&vpe_class);
1586 out_chrdev:
1587 unregister_chrdev(major, module_name);
1589 out:
1590 return err;
1593 static void __exit vpe_module_exit(void)
1595 struct vpe *v, *n;
1597 list_for_each_entry_safe(v, n, &vpecontrol.vpe_list, list) {
1598 if (v->state != VPE_STATE_UNUSED) {
1599 release_vpe(v);
1603 device_del(&vpe_device);
1604 unregister_chrdev(major, module_name);
1607 module_init(vpe_module_init);
1608 module_exit(vpe_module_exit);
1609 MODULE_DESCRIPTION("MIPS VPE Loader");
1610 MODULE_AUTHOR("Elizabeth Oldham, MIPS Technologies, Inc.");
1611 MODULE_LICENSE("GPL");