linux-old/arch/sparc/mm/sun4c.c
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   1/* $Id: sun4c.c,v 1.210 2001/11/13 03:27:47 davem Exp $
   2 * sun4c.c: Doing in software what should be done in hardware.
   3 *
   4 * Copyright (C) 1996 David S. Miller (davem@caip.rutgers.edu)
   5 * Copyright (C) 1996 Eddie C. Dost (ecd@skynet.be)
   6 * Copyright (C) 1996 Andrew Tridgell (Andrew.Tridgell@anu.edu.au)
   7 * Copyright (C) 1997-2000 Anton Blanchard (anton@samba.org)
   8 * Copyright (C) 1998 Jakub Jelinek (jj@sunsite.mff.cuni.cz)
   9 */
  10
  11#define NR_TASK_BUCKETS 512
  12
  13#include <linux/config.h>
  14#include <linux/kernel.h>
  15#include <linux/mm.h>
  16#include <linux/init.h>
  17#include <linux/bootmem.h>
  18#include <linux/highmem.h>
  19#include <linux/fs.h>
  20#include <linux/seq_file.h>
  21
  22#include <asm/scatterlist.h>
  23#include <asm/page.h>
  24#include <asm/pgalloc.h>
  25#include <asm/pgtable.h>
  26#include <asm/vaddrs.h>
  27#include <asm/idprom.h>
  28#include <asm/machines.h>
  29#include <asm/memreg.h>
  30#include <asm/processor.h>
  31#include <asm/auxio.h>
  32#include <asm/io.h>
  33#include <asm/oplib.h>
  34#include <asm/openprom.h>
  35#include <asm/mmu_context.h>
  36#include <asm/sun4paddr.h>
  37#include <asm/highmem.h>
  38#include <asm/btfixup.h>
  39
  40/* Because of our dynamic kernel TLB miss strategy, and how
  41 * our DVMA mapping allocation works, you _MUST_:
  42 *
  43 * 1) Disable interrupts _and_ not touch any dynamic kernel
  44 *    memory while messing with kernel MMU state.  By
  45 *    dynamic memory I mean any object which is not in
  46 *    the kernel image itself or a task_struct (both of
  47 *    which are locked into the MMU).
  48 * 2) Disable interrupts while messing with user MMU state.
  49 */
  50
  51extern int num_segmaps, num_contexts;
  52
  53extern unsigned long page_kernel;
  54
  55#ifdef CONFIG_SUN4
  56#define SUN4C_VAC_SIZE sun4c_vacinfo.num_bytes
  57#else
  58/* That's it, we prom_halt() on sun4c if the cache size is something other than 65536.
  59 * So let's save some cycles and just use that everywhere except for that bootup
  60 * sanity check.
  61 */
  62#define SUN4C_VAC_SIZE 65536
  63#endif
  64
  65#define SUN4C_KERNEL_BUCKETS 32
  66
  67/* Flushing the cache. */
  68struct sun4c_vac_props sun4c_vacinfo;
  69unsigned long sun4c_kernel_faults;
  70
  71/* Invalidate every sun4c cache line tag. */
  72static void __init sun4c_flush_all(void)
  73{
  74        unsigned long begin, end;
  75
  76        if (sun4c_vacinfo.on)
  77                panic("SUN4C: AIEEE, trying to invalidate vac while it is on.");
  78
  79        /* Clear 'valid' bit in all cache line tags */
  80        begin = AC_CACHETAGS;
  81        end = (AC_CACHETAGS + SUN4C_VAC_SIZE);
  82        while (begin < end) {
  83                __asm__ __volatile__("sta %%g0, [%0] %1\n\t" : :
  84                                     "r" (begin), "i" (ASI_CONTROL));
  85                begin += sun4c_vacinfo.linesize;
  86        }
  87}
  88
  89static void sun4c_flush_context_hw(void)
  90{
  91        unsigned long end = SUN4C_VAC_SIZE;
  92
  93        __asm__ __volatile__(
  94                "1:     addcc   %0, -4096, %0\n\t"
  95                "       bne     1b\n\t"
  96                "        sta    %%g0, [%0] %2"
  97        : "=&r" (end)
  98        : "0" (end), "i" (ASI_HWFLUSHCONTEXT)
  99        : "cc");
 100}
 101
 102/* Must be called minimally with IRQs disabled. */
 103static void sun4c_flush_segment_hw(unsigned long addr)
 104{
 105        if (sun4c_get_segmap(addr) != invalid_segment) {
 106                unsigned long vac_size = SUN4C_VAC_SIZE;
 107
 108                __asm__ __volatile__(
 109                        "1:     addcc   %0, -4096, %0\n\t"
 110                        "       bne     1b\n\t"
 111                        "        sta    %%g0, [%2 + %0] %3"
 112                        : "=&r" (vac_size)
 113                        : "0" (vac_size), "r" (addr), "i" (ASI_HWFLUSHSEG)
 114                        : "cc");
 115        }
 116}
 117
 118/* File local boot time fixups. */
 119BTFIXUPDEF_CALL(void, sun4c_flush_page, unsigned long)
 120BTFIXUPDEF_CALL(void, sun4c_flush_segment, unsigned long)
 121BTFIXUPDEF_CALL(void, sun4c_flush_context, void)
 122
 123#define sun4c_flush_page(addr) BTFIXUP_CALL(sun4c_flush_page)(addr)
 124#define sun4c_flush_segment(addr) BTFIXUP_CALL(sun4c_flush_segment)(addr)
 125#define sun4c_flush_context() BTFIXUP_CALL(sun4c_flush_context)()
 126
 127/* Must be called minimally with interrupts disabled. */
 128static void sun4c_flush_page_hw(unsigned long addr)
 129{
 130        addr &= PAGE_MASK;
 131        if ((int)sun4c_get_pte(addr) < 0)
 132                __asm__ __volatile__("sta %%g0, [%0] %1"
 133                                     : : "r" (addr), "i" (ASI_HWFLUSHPAGE));
 134}
 135
 136/* Don't inline the software version as it eats too many cache lines if expanded. */
 137static void sun4c_flush_context_sw(void)
 138{
 139        unsigned long nbytes = SUN4C_VAC_SIZE;
 140        unsigned long lsize = sun4c_vacinfo.linesize;
 141
 142        __asm__ __volatile__(
 143        "add    %2, %2, %%g1\n\t"
 144        "add    %2, %%g1, %%g2\n\t"
 145        "add    %2, %%g2, %%g3\n\t"
 146        "add    %2, %%g3, %%g4\n\t"
 147        "add    %2, %%g4, %%g5\n\t"
 148        "add    %2, %%g5, %%o4\n\t"
 149        "add    %2, %%o4, %%o5\n"
 150        "1:\n\t"
 151        "subcc  %0, %%o5, %0\n\t"
 152        "sta    %%g0, [%0] %3\n\t"
 153        "sta    %%g0, [%0 + %2] %3\n\t"
 154        "sta    %%g0, [%0 + %%g1] %3\n\t"
 155        "sta    %%g0, [%0 + %%g2] %3\n\t"
 156        "sta    %%g0, [%0 + %%g3] %3\n\t"
 157        "sta    %%g0, [%0 + %%g4] %3\n\t"
 158        "sta    %%g0, [%0 + %%g5] %3\n\t"
 159        "bg     1b\n\t"
 160        " sta   %%g0, [%1 + %%o4] %3\n"
 161        : "=&r" (nbytes)
 162        : "0" (nbytes), "r" (lsize), "i" (ASI_FLUSHCTX)
 163        : "g1", "g2", "g3", "g4", "g5", "o4", "o5", "cc");
 164}
 165
 166/* Don't inline the software version as it eats too many cache lines if expanded. */
 167static void sun4c_flush_segment_sw(unsigned long addr)
 168{
 169        if (sun4c_get_segmap(addr) != invalid_segment) {
 170                unsigned long nbytes = SUN4C_VAC_SIZE;
 171                unsigned long lsize = sun4c_vacinfo.linesize;
 172
 173                __asm__ __volatile__(
 174                "add    %2, %2, %%g1\n\t"
 175                "add    %2, %%g1, %%g2\n\t"
 176                "add    %2, %%g2, %%g3\n\t"
 177                "add    %2, %%g3, %%g4\n\t"
 178                "add    %2, %%g4, %%g5\n\t"
 179                "add    %2, %%g5, %%o4\n\t"
 180                "add    %2, %%o4, %%o5\n"
 181                "1:\n\t"
 182                "subcc  %1, %%o5, %1\n\t"
 183                "sta    %%g0, [%0] %6\n\t"
 184                "sta    %%g0, [%0 + %2] %6\n\t"
 185                "sta    %%g0, [%0 + %%g1] %6\n\t"
 186                "sta    %%g0, [%0 + %%g2] %6\n\t"
 187                "sta    %%g0, [%0 + %%g3] %6\n\t"
 188                "sta    %%g0, [%0 + %%g4] %6\n\t"
 189                "sta    %%g0, [%0 + %%g5] %6\n\t"
 190                "sta    %%g0, [%0 + %%o4] %6\n\t"
 191                "bg     1b\n\t"
 192                " add   %0, %%o5, %0\n"
 193                : "=&r" (addr), "=&r" (nbytes), "=&r" (lsize)
 194                : "0" (addr), "1" (nbytes), "2" (lsize),
 195                  "i" (ASI_FLUSHSEG)
 196                : "g1", "g2", "g3", "g4", "g5", "o4", "o5", "cc");
 197        }
 198}
 199
 200/* Don't inline the software version as it eats too many cache lines if expanded. */
 201static void sun4c_flush_page_sw(unsigned long addr)
 202{
 203        addr &= PAGE_MASK;
 204        if ((sun4c_get_pte(addr) & (_SUN4C_PAGE_NOCACHE | _SUN4C_PAGE_VALID)) ==
 205            _SUN4C_PAGE_VALID) {
 206                unsigned long left = PAGE_SIZE;
 207                unsigned long lsize = sun4c_vacinfo.linesize;
 208
 209                __asm__ __volatile__(
 210                "add    %2, %2, %%g1\n\t"
 211                "add    %2, %%g1, %%g2\n\t"
 212                "add    %2, %%g2, %%g3\n\t"
 213                "add    %2, %%g3, %%g4\n\t"
 214                "add    %2, %%g4, %%g5\n\t"
 215                "add    %2, %%g5, %%o4\n\t"
 216                "add    %2, %%o4, %%o5\n"
 217                "1:\n\t"
 218                "subcc  %1, %%o5, %1\n\t"
 219                "sta    %%g0, [%0] %6\n\t"
 220                "sta    %%g0, [%0 + %2] %6\n\t"
 221                "sta    %%g0, [%0 + %%g1] %6\n\t"
 222                "sta    %%g0, [%0 + %%g2] %6\n\t"
 223                "sta    %%g0, [%0 + %%g3] %6\n\t"
 224                "sta    %%g0, [%0 + %%g4] %6\n\t"
 225                "sta    %%g0, [%0 + %%g5] %6\n\t"
 226                "sta    %%g0, [%0 + %%o4] %6\n\t"
 227                "bg     1b\n\t"
 228                " add   %0, %%o5, %0\n"
 229                : "=&r" (addr), "=&r" (left), "=&r" (lsize)
 230                : "0" (addr), "1" (left), "2" (lsize),
 231                  "i" (ASI_FLUSHPG)
 232                : "g1", "g2", "g3", "g4", "g5", "o4", "o5", "cc");
 233        }
 234}
 235
 236/* The sun4c's do have an on chip store buffer.  And the way you
 237 * clear them out isn't so obvious.  The only way I can think of
 238 * to accomplish this is to read the current context register,
 239 * store the same value there, then read an external hardware
 240 * register.
 241 */
 242void sun4c_complete_all_stores(void)
 243{
 244        volatile int _unused;
 245
 246        _unused = sun4c_get_context();
 247        sun4c_set_context(_unused);
 248#ifdef CONFIG_SUN_AUXIO
 249        _unused = get_auxio();
 250#endif
 251}
 252
 253/* Bootup utility functions. */
 254static inline void sun4c_init_clean_segmap(unsigned char pseg)
 255{
 256        unsigned long vaddr;
 257
 258        sun4c_put_segmap(0, pseg);
 259        for (vaddr = 0; vaddr < SUN4C_REAL_PGDIR_SIZE; vaddr += PAGE_SIZE)
 260                sun4c_put_pte(vaddr, 0);
 261        sun4c_put_segmap(0, invalid_segment);
 262}
 263
 264static inline void sun4c_init_clean_mmu(unsigned long kernel_end)
 265{
 266        unsigned long vaddr;
 267        unsigned char savectx, ctx;
 268
 269        savectx = sun4c_get_context();
 270        kernel_end = SUN4C_REAL_PGDIR_ALIGN(kernel_end);
 271        for (ctx = 0; ctx < num_contexts; ctx++) {
 272                sun4c_set_context(ctx);
 273                for (vaddr = 0; vaddr < 0x20000000; vaddr += SUN4C_REAL_PGDIR_SIZE)
 274                        sun4c_put_segmap(vaddr, invalid_segment);
 275                for (vaddr = 0xe0000000; vaddr < KERNBASE; vaddr += SUN4C_REAL_PGDIR_SIZE)
 276                        sun4c_put_segmap(vaddr, invalid_segment);
 277                for (vaddr = kernel_end; vaddr < KADB_DEBUGGER_BEGVM; vaddr += SUN4C_REAL_PGDIR_SIZE)
 278                        sun4c_put_segmap(vaddr, invalid_segment);
 279                for (vaddr = LINUX_OPPROM_ENDVM; vaddr; vaddr += SUN4C_REAL_PGDIR_SIZE)
 280                        sun4c_put_segmap(vaddr, invalid_segment);
 281        }
 282        sun4c_set_context(savectx);
 283}
 284
 285void __init sun4c_probe_vac(void)
 286{
 287        sun4c_disable_vac();
 288
 289        if (ARCH_SUN4) {
 290                switch (idprom->id_machtype) {
 291
 292                case (SM_SUN4|SM_4_110):
 293                        sun4c_vacinfo.type = VAC_NONE;
 294                        sun4c_vacinfo.num_bytes = 0;
 295                        sun4c_vacinfo.linesize = 0;
 296                        sun4c_vacinfo.do_hwflushes = 0;
 297                        prom_printf("No VAC. Get some bucks and buy a real computer.");
 298                        prom_halt();
 299                        break;
 300
 301                case (SM_SUN4|SM_4_260):
 302                        sun4c_vacinfo.type = VAC_WRITE_BACK;
 303                        sun4c_vacinfo.num_bytes = 128 * 1024;
 304                        sun4c_vacinfo.linesize = 16;
 305                        sun4c_vacinfo.do_hwflushes = 0;
 306                        break;
 307
 308                case (SM_SUN4|SM_4_330):
 309                        sun4c_vacinfo.type = VAC_WRITE_THROUGH;
 310                        sun4c_vacinfo.num_bytes = 128 * 1024;
 311                        sun4c_vacinfo.linesize = 16;
 312                        sun4c_vacinfo.do_hwflushes = 0;
 313                        break;
 314
 315                case (SM_SUN4|SM_4_470):
 316                        sun4c_vacinfo.type = VAC_WRITE_BACK;
 317                        sun4c_vacinfo.num_bytes = 128 * 1024;
 318                        sun4c_vacinfo.linesize = 32;
 319                        sun4c_vacinfo.do_hwflushes = 0;
 320                        break;
 321
 322                default:
 323                        prom_printf("Cannot initialize VAC - weird sun4 model idprom->id_machtype = %d", idprom->id_machtype);
 324                        prom_halt();
 325                };
 326        } else {
 327                sun4c_vacinfo.type = VAC_WRITE_THROUGH;
 328
 329                if ((idprom->id_machtype == (SM_SUN4C | SM_4C_SS1)) ||
 330                    (idprom->id_machtype == (SM_SUN4C | SM_4C_SS1PLUS))) {
 331                        /* PROM on SS1 lacks this info, to be super safe we
 332                         * hard code it here since this arch is cast in stone.
 333                         */
 334                        sun4c_vacinfo.num_bytes = 65536;
 335                        sun4c_vacinfo.linesize = 16;
 336                } else {
 337                        sun4c_vacinfo.num_bytes =
 338                         prom_getintdefault(prom_root_node, "vac-size", 65536);
 339                        sun4c_vacinfo.linesize =
 340                         prom_getintdefault(prom_root_node, "vac-linesize", 16);
 341                }
 342                sun4c_vacinfo.do_hwflushes =
 343                 prom_getintdefault(prom_root_node, "vac-hwflush", 0);
 344
 345                if (sun4c_vacinfo.do_hwflushes == 0)
 346                        sun4c_vacinfo.do_hwflushes =
 347                         prom_getintdefault(prom_root_node, "vac_hwflush", 0);
 348
 349                if (sun4c_vacinfo.num_bytes != 65536) {
 350                        prom_printf("WEIRD Sun4C VAC cache size, "
 351                                    "tell sparclinux@vger.kernel.org");
 352                        prom_halt();
 353                }
 354        }
 355
 356        sun4c_vacinfo.num_lines =
 357                (sun4c_vacinfo.num_bytes / sun4c_vacinfo.linesize);
 358        switch (sun4c_vacinfo.linesize) {
 359        case 16:
 360                sun4c_vacinfo.log2lsize = 4;
 361                break;
 362        case 32:
 363                sun4c_vacinfo.log2lsize = 5;
 364                break;
 365        default:
 366                prom_printf("probe_vac: Didn't expect vac-linesize of %d, halting\n",
 367                            sun4c_vacinfo.linesize);
 368                prom_halt();
 369        };
 370
 371        sun4c_flush_all();
 372        sun4c_enable_vac();
 373}
 374
 375/* Patch instructions for the low level kernel fault handler. */
 376extern unsigned long invalid_segment_patch1, invalid_segment_patch1_ff;
 377extern unsigned long invalid_segment_patch2, invalid_segment_patch2_ff;
 378extern unsigned long invalid_segment_patch1_1ff, invalid_segment_patch2_1ff;
 379extern unsigned long num_context_patch1, num_context_patch1_16;
 380extern unsigned long num_context_patch2, num_context_patch2_16;
 381extern unsigned long vac_linesize_patch, vac_linesize_patch_32;
 382extern unsigned long vac_hwflush_patch1, vac_hwflush_patch1_on;
 383extern unsigned long vac_hwflush_patch2, vac_hwflush_patch2_on;
 384
 385#define PATCH_INSN(src, dst) do {       \
 386                daddr = &(dst);         \
 387                iaddr = &(src);         \
 388                *daddr = *iaddr;        \
 389        } while (0)
 390
 391static void __init patch_kernel_fault_handler(void)
 392{
 393        unsigned long *iaddr, *daddr;
 394
 395        switch (num_segmaps) {
 396                case 128:
 397                        /* Default, nothing to do. */
 398                        break;
 399                case 256:
 400                        PATCH_INSN(invalid_segment_patch1_ff,
 401                                   invalid_segment_patch1);
 402                        PATCH_INSN(invalid_segment_patch2_ff,
 403                                   invalid_segment_patch2);
 404                        break;
 405                case 512:
 406                        PATCH_INSN(invalid_segment_patch1_1ff,
 407                                   invalid_segment_patch1);
 408                        PATCH_INSN(invalid_segment_patch2_1ff,
 409                                   invalid_segment_patch2);
 410                        break;
 411                default:
 412                        prom_printf("Unhandled number of segmaps: %d\n",
 413                                    num_segmaps);
 414                        prom_halt();
 415        };
 416        switch (num_contexts) {
 417                case 8:
 418                        /* Default, nothing to do. */
 419                        break;
 420                case 16:
 421                        PATCH_INSN(num_context_patch1_16,
 422                                   num_context_patch1);
 423                        break;
 424                default:
 425                        prom_printf("Unhandled number of contexts: %d\n",
 426                                    num_contexts);
 427                        prom_halt();
 428        };
 429
 430        if (sun4c_vacinfo.do_hwflushes != 0) {
 431                PATCH_INSN(vac_hwflush_patch1_on, vac_hwflush_patch1);
 432                PATCH_INSN(vac_hwflush_patch2_on, vac_hwflush_patch2);
 433        } else {
 434                switch (sun4c_vacinfo.linesize) {
 435                case 16:
 436                        /* Default, nothing to do. */
 437                        break;
 438                case 32:
 439                        PATCH_INSN(vac_linesize_patch_32, vac_linesize_patch);
 440                        break;
 441                default:
 442                        prom_printf("Impossible VAC linesize %d, halting...\n",
 443                                    sun4c_vacinfo.linesize);
 444                        prom_halt();
 445                };
 446        }
 447}
 448
 449static void __init sun4c_probe_mmu(void)
 450{
 451        if (ARCH_SUN4) {
 452                switch (idprom->id_machtype) {
 453                case (SM_SUN4|SM_4_110):
 454                        prom_printf("No support for 4100 yet\n");
 455                        prom_halt();
 456                        num_segmaps = 256;
 457                        num_contexts = 8;
 458                        break;
 459
 460                case (SM_SUN4|SM_4_260):
 461                        /* should be 512 segmaps. when it get fixed */
 462                        num_segmaps = 256;
 463                        num_contexts = 16;
 464                        break;
 465
 466                case (SM_SUN4|SM_4_330):
 467                        num_segmaps = 256;
 468                        num_contexts = 16;
 469                        break;
 470
 471                case (SM_SUN4|SM_4_470):
 472                        /* should be 1024 segmaps. when it get fixed */
 473                        num_segmaps = 256;
 474                        num_contexts = 64;
 475                        break;
 476                default:
 477                        prom_printf("Invalid SUN4 model\n");
 478                        prom_halt();
 479                };
 480        } else {
 481                if ((idprom->id_machtype == (SM_SUN4C | SM_4C_SS1)) ||
 482                    (idprom->id_machtype == (SM_SUN4C | SM_4C_SS1PLUS))) {
 483                        /* Hardcode these just to be safe, PROM on SS1 does
 484                        * not have this info available in the root node.
 485                        */
 486                        num_segmaps = 128;
 487                        num_contexts = 8;
 488                } else {
 489                        num_segmaps =
 490                            prom_getintdefault(prom_root_node, "mmu-npmg", 128);
 491                        num_contexts =
 492                            prom_getintdefault(prom_root_node, "mmu-nctx", 0x8);
 493                }
 494        }
 495        patch_kernel_fault_handler();
 496}
 497
 498volatile unsigned long *sun4c_memerr_reg = 0;
 499
 500void __init sun4c_probe_memerr_reg(void)
 501{
 502        int node;
 503        struct linux_prom_registers regs[1];
 504
 505        if (ARCH_SUN4) {
 506                sun4c_memerr_reg = ioremap(sun4_memreg_physaddr, PAGE_SIZE);
 507        } else {
 508                node = prom_getchild(prom_root_node);
 509                node = prom_searchsiblings(prom_root_node, "memory-error");
 510                if (!node)
 511                        return;
 512                prom_getproperty(node, "reg", (char *)regs, sizeof(regs));
 513                /* hmm I think regs[0].which_io is zero here anyways */
 514                sun4c_memerr_reg = ioremap(regs[0].phys_addr, regs[0].reg_size);
 515        }
 516}
 517
 518static inline void sun4c_init_ss2_cache_bug(void)
 519{
 520        extern unsigned long start;
 521
 522        if ((idprom->id_machtype == (SM_SUN4C | SM_4C_SS2)) ||
 523            (idprom->id_machtype == (SM_SUN4C | SM_4C_IPX)) ||
 524            (idprom->id_machtype == (SM_SUN4 | SM_4_330)) ||
 525            (idprom->id_machtype == (SM_SUN4C | SM_4C_ELC))) {
 526                /* Whee.. */
 527                printk("SS2 cache bug detected, uncaching trap table page\n");
 528                sun4c_flush_page((unsigned int) &start);
 529                sun4c_put_pte(((unsigned long) &start),
 530                        (sun4c_get_pte((unsigned long) &start) | _SUN4C_PAGE_NOCACHE));
 531        }
 532}
 533
 534/* Addr is always aligned on a page boundry for us already. */
 535static void sun4c_map_dma_area(unsigned long va, u32 addr, int len)
 536{
 537        unsigned long page, end;
 538
 539        end = PAGE_ALIGN((addr + len));
 540        while (addr < end) {
 541                page = va;
 542                sun4c_flush_page(page);
 543                page -= PAGE_OFFSET;
 544                page >>= PAGE_SHIFT;
 545                page |= (_SUN4C_PAGE_VALID | _SUN4C_PAGE_DIRTY |
 546                         _SUN4C_PAGE_NOCACHE | _SUN4C_PAGE_PRIV);
 547                sun4c_put_pte(addr, page);
 548                addr += PAGE_SIZE;
 549                va += PAGE_SIZE;
 550        }
 551}
 552
 553static unsigned long sun4c_translate_dvma(unsigned long busa)
 554{
 555        /* Fortunately for us, bus_addr == uncached_virt in sun4c. */
 556        unsigned long pte = sun4c_get_pte(busa);
 557        return (pte << PAGE_SHIFT) + PAGE_OFFSET;
 558}
 559
 560static void sun4c_unmap_dma_area(unsigned long busa, int len)
 561{
 562        /* Fortunately for us, bus_addr == uncached_virt in sun4c. */
 563        /* XXX Implement this */
 564}
 565
 566/* TLB management. */
 567
 568/* Don't change this struct without changing entry.S. This is used
 569 * in the in-window kernel fault handler, and you don't want to mess
 570 * with that. (See sun4c_fault in entry.S).
 571 */
 572struct sun4c_mmu_entry {
 573        struct sun4c_mmu_entry *next;
 574        struct sun4c_mmu_entry *prev;
 575        unsigned long vaddr;
 576        unsigned char pseg;
 577        unsigned char locked;
 578
 579        /* For user mappings only, and completely hidden from kernel
 580         * TLB miss code.
 581         */
 582        unsigned char ctx;
 583        struct sun4c_mmu_entry *lru_next;
 584        struct sun4c_mmu_entry *lru_prev;
 585};
 586
 587static struct sun4c_mmu_entry mmu_entry_pool[SUN4C_MAX_SEGMAPS];
 588
 589static void __init sun4c_init_mmu_entry_pool(void)
 590{
 591        int i;
 592
 593        for (i=0; i < SUN4C_MAX_SEGMAPS; i++) {
 594                mmu_entry_pool[i].pseg = i;
 595                mmu_entry_pool[i].next = 0;
 596                mmu_entry_pool[i].prev = 0;
 597                mmu_entry_pool[i].vaddr = 0;
 598                mmu_entry_pool[i].locked = 0;
 599                mmu_entry_pool[i].ctx = 0;
 600                mmu_entry_pool[i].lru_next = 0;
 601                mmu_entry_pool[i].lru_prev = 0;
 602        }
 603        mmu_entry_pool[invalid_segment].locked = 1;
 604}
 605
 606static inline void fix_permissions(unsigned long vaddr, unsigned long bits_on,
 607                                   unsigned long bits_off)
 608{
 609        unsigned long start, end;
 610
 611        end = vaddr + SUN4C_REAL_PGDIR_SIZE;
 612        for (start = vaddr; start < end; start += PAGE_SIZE)
 613                if (sun4c_get_pte(start) & _SUN4C_PAGE_VALID)
 614                        sun4c_put_pte(start, (sun4c_get_pte(start) | bits_on) &
 615                                      ~bits_off);
 616}
 617
 618static inline void sun4c_init_map_kernelprom(unsigned long kernel_end)
 619{
 620        unsigned long vaddr;
 621        unsigned char pseg, ctx;
 622#ifdef CONFIG_SUN4
 623        /* sun4/110 and 260 have no kadb. */
 624        if ((idprom->id_machtype != (SM_SUN4 | SM_4_260)) && 
 625            (idprom->id_machtype != (SM_SUN4 | SM_4_110))) {
 626#endif
 627        for (vaddr = KADB_DEBUGGER_BEGVM;
 628             vaddr < LINUX_OPPROM_ENDVM;
 629             vaddr += SUN4C_REAL_PGDIR_SIZE) {
 630                pseg = sun4c_get_segmap(vaddr);
 631                if (pseg != invalid_segment) {
 632                        mmu_entry_pool[pseg].locked = 1;
 633                        for (ctx = 0; ctx < num_contexts; ctx++)
 634                                prom_putsegment(ctx, vaddr, pseg);
 635                        fix_permissions(vaddr, _SUN4C_PAGE_PRIV, 0);
 636                }
 637        }
 638#ifdef CONFIG_SUN4
 639        }
 640#endif
 641        for (vaddr = KERNBASE; vaddr < kernel_end; vaddr += SUN4C_REAL_PGDIR_SIZE) {
 642                pseg = sun4c_get_segmap(vaddr);
 643                mmu_entry_pool[pseg].locked = 1;
 644                for (ctx = 0; ctx < num_contexts; ctx++)
 645                        prom_putsegment(ctx, vaddr, pseg);
 646                fix_permissions(vaddr, _SUN4C_PAGE_PRIV, _SUN4C_PAGE_NOCACHE);
 647        }
 648}
 649
 650static void __init sun4c_init_lock_area(unsigned long start, unsigned long end)
 651{
 652        int i, ctx;
 653
 654        while (start < end) {
 655                for (i = 0; i < invalid_segment; i++)
 656                        if (!mmu_entry_pool[i].locked)
 657                                break;
 658                mmu_entry_pool[i].locked = 1;
 659                sun4c_init_clean_segmap(i);
 660                for (ctx = 0; ctx < num_contexts; ctx++)
 661                        prom_putsegment(ctx, start, mmu_entry_pool[i].pseg);
 662                start += SUN4C_REAL_PGDIR_SIZE;
 663        }
 664}
 665
 666/* Don't change this struct without changing entry.S. This is used
 667 * in the in-window kernel fault handler, and you don't want to mess
 668 * with that. (See sun4c_fault in entry.S).
 669 */
 670struct sun4c_mmu_ring {
 671        struct sun4c_mmu_entry ringhd;
 672        int num_entries;
 673};
 674
 675static struct sun4c_mmu_ring sun4c_context_ring[SUN4C_MAX_CONTEXTS]; /* used user entries */
 676static struct sun4c_mmu_ring sun4c_ufree_ring;       /* free user entries */
 677static struct sun4c_mmu_ring sun4c_ulru_ring;        /* LRU user entries */
 678struct sun4c_mmu_ring sun4c_kernel_ring;      /* used kernel entries */
 679struct sun4c_mmu_ring sun4c_kfree_ring;       /* free kernel entries */
 680
 681static inline void sun4c_init_rings(void)
 682{
 683        int i;
 684
 685        for (i = 0; i < SUN4C_MAX_CONTEXTS; i++) {
 686                sun4c_context_ring[i].ringhd.next =
 687                        sun4c_context_ring[i].ringhd.prev =
 688                        &sun4c_context_ring[i].ringhd;
 689                sun4c_context_ring[i].num_entries = 0;
 690        }
 691        sun4c_ufree_ring.ringhd.next = sun4c_ufree_ring.ringhd.prev =
 692                &sun4c_ufree_ring.ringhd;
 693        sun4c_ufree_ring.num_entries = 0;
 694        sun4c_ulru_ring.ringhd.lru_next = sun4c_ulru_ring.ringhd.lru_prev =
 695                &sun4c_ulru_ring.ringhd;
 696        sun4c_ulru_ring.num_entries = 0;
 697        sun4c_kernel_ring.ringhd.next = sun4c_kernel_ring.ringhd.prev =
 698                &sun4c_kernel_ring.ringhd;
 699        sun4c_kernel_ring.num_entries = 0;
 700        sun4c_kfree_ring.ringhd.next = sun4c_kfree_ring.ringhd.prev =
 701                &sun4c_kfree_ring.ringhd;
 702        sun4c_kfree_ring.num_entries = 0;
 703}
 704
 705static void add_ring(struct sun4c_mmu_ring *ring,
 706                     struct sun4c_mmu_entry *entry)
 707{
 708        struct sun4c_mmu_entry *head = &ring->ringhd;
 709
 710        entry->prev = head;
 711        (entry->next = head->next)->prev = entry;
 712        head->next = entry;
 713        ring->num_entries++;
 714}
 715
 716static __inline__ void add_lru(struct sun4c_mmu_entry *entry)
 717{
 718        struct sun4c_mmu_ring *ring = &sun4c_ulru_ring;
 719        struct sun4c_mmu_entry *head = &ring->ringhd;
 720
 721        entry->lru_next = head;
 722        (entry->lru_prev = head->lru_prev)->lru_next = entry;
 723        head->lru_prev = entry;
 724}
 725
 726static void add_ring_ordered(struct sun4c_mmu_ring *ring,
 727                             struct sun4c_mmu_entry *entry)
 728{
 729        struct sun4c_mmu_entry *head = &ring->ringhd;
 730        unsigned long addr = entry->vaddr;
 731
 732        while ((head->next != &ring->ringhd) && (head->next->vaddr < addr))
 733                head = head->next;
 734
 735        entry->prev = head;
 736        (entry->next = head->next)->prev = entry;
 737        head->next = entry;
 738        ring->num_entries++;
 739
 740        add_lru(entry);
 741}
 742
 743static __inline__ void remove_ring(struct sun4c_mmu_ring *ring,
 744                                   struct sun4c_mmu_entry *entry)
 745{
 746        struct sun4c_mmu_entry *next = entry->next;
 747
 748        (next->prev = entry->prev)->next = next;
 749        ring->num_entries--;
 750}
 751
 752static void remove_lru(struct sun4c_mmu_entry *entry)
 753{
 754        struct sun4c_mmu_entry *next = entry->lru_next;
 755
 756        (next->lru_prev = entry->lru_prev)->lru_next = next;
 757}
 758
 759static void free_user_entry(int ctx, struct sun4c_mmu_entry *entry)
 760{
 761        remove_ring(sun4c_context_ring+ctx, entry);
 762        remove_lru(entry);
 763        add_ring(&sun4c_ufree_ring, entry);
 764}
 765
 766static void free_kernel_entry(struct sun4c_mmu_entry *entry,
 767                              struct sun4c_mmu_ring *ring)
 768{
 769        remove_ring(ring, entry);
 770        add_ring(&sun4c_kfree_ring, entry);
 771}
 772
 773static void __init sun4c_init_fill_kernel_ring(int howmany)
 774{
 775        int i;
 776
 777        while (howmany) {
 778                for (i = 0; i < invalid_segment; i++)
 779                        if (!mmu_entry_pool[i].locked)
 780                                break;
 781                mmu_entry_pool[i].locked = 1;
 782                sun4c_init_clean_segmap(i);
 783                add_ring(&sun4c_kfree_ring, &mmu_entry_pool[i]);
 784                howmany--;
 785        }
 786}
 787
 788static void __init sun4c_init_fill_user_ring(void)
 789{
 790        int i;
 791
 792        for (i = 0; i < invalid_segment; i++) {
 793                if (mmu_entry_pool[i].locked)
 794                        continue;
 795                sun4c_init_clean_segmap(i);
 796                add_ring(&sun4c_ufree_ring, &mmu_entry_pool[i]);
 797        }
 798}
 799
 800static void sun4c_kernel_unmap(struct sun4c_mmu_entry *kentry)
 801{
 802        int savectx, ctx;
 803
 804        savectx = sun4c_get_context();
 805        for (ctx = 0; ctx < num_contexts; ctx++) {
 806                sun4c_set_context(ctx);
 807                sun4c_put_segmap(kentry->vaddr, invalid_segment);
 808        }
 809        sun4c_set_context(savectx);
 810}
 811
 812static void sun4c_kernel_map(struct sun4c_mmu_entry *kentry)
 813{
 814        int savectx, ctx;
 815
 816        savectx = sun4c_get_context();
 817        for (ctx = 0; ctx < num_contexts; ctx++) {
 818                sun4c_set_context(ctx);
 819                sun4c_put_segmap(kentry->vaddr, kentry->pseg);
 820        }
 821        sun4c_set_context(savectx);
 822}
 823
 824#define sun4c_user_unmap(__entry) \
 825        sun4c_put_segmap((__entry)->vaddr, invalid_segment)
 826
 827static void sun4c_demap_context(struct sun4c_mmu_ring *crp, unsigned char ctx)
 828{
 829        struct sun4c_mmu_entry *head = &crp->ringhd;
 830        unsigned long flags;
 831
 832        save_and_cli(flags);
 833        if (head->next != head) {
 834                struct sun4c_mmu_entry *entry = head->next;
 835                int savectx = sun4c_get_context();
 836
 837                flush_user_windows();
 838                sun4c_set_context(ctx);
 839                sun4c_flush_context();
 840                do {
 841                        struct sun4c_mmu_entry *next = entry->next;
 842
 843                        sun4c_user_unmap(entry);
 844                        free_user_entry(ctx, entry);
 845
 846                        entry = next;
 847                } while (entry != head);
 848                sun4c_set_context(savectx);
 849        }
 850        restore_flags(flags);
 851}
 852
 853static int sun4c_user_taken_entries;  /* This is how much we have.             */
 854static int max_user_taken_entries;    /* This limits us and prevents deadlock. */
 855
 856static struct sun4c_mmu_entry *sun4c_kernel_strategy(void)
 857{
 858        struct sun4c_mmu_entry *this_entry;
 859
 860        /* If some are free, return first one. */
 861        if (sun4c_kfree_ring.num_entries) {
 862                this_entry = sun4c_kfree_ring.ringhd.next;
 863                return this_entry;
 864        }
 865
 866        /* Else free one up. */
 867        this_entry = sun4c_kernel_ring.ringhd.prev;
 868        sun4c_flush_segment(this_entry->vaddr);
 869        sun4c_kernel_unmap(this_entry);
 870        free_kernel_entry(this_entry, &sun4c_kernel_ring);
 871        this_entry = sun4c_kfree_ring.ringhd.next;
 872
 873        return this_entry;
 874}
 875
 876/* Using this method to free up mmu entries eliminates a lot of
 877 * potential races since we have a kernel that incurs tlb
 878 * replacement faults.  There may be performance penalties.
 879 *
 880 * NOTE: Must be called with interrupts disabled.
 881 */
 882static struct sun4c_mmu_entry *sun4c_user_strategy(void)
 883{
 884        struct sun4c_mmu_entry *entry;
 885        unsigned char ctx;
 886        int savectx;
 887
 888        /* If some are free, return first one. */
 889        if (sun4c_ufree_ring.num_entries) {
 890                entry = sun4c_ufree_ring.ringhd.next;
 891                goto unlink_out;
 892        }
 893
 894        if (sun4c_user_taken_entries) {
 895                entry = sun4c_kernel_strategy();
 896                sun4c_user_taken_entries--;
 897                goto kunlink_out;
 898        }
 899
 900        /* Grab from the beginning of the LRU list. */
 901        entry = sun4c_ulru_ring.ringhd.lru_next;
 902        ctx = entry->ctx;
 903
 904        savectx = sun4c_get_context();
 905        flush_user_windows();
 906        sun4c_set_context(ctx);
 907        sun4c_flush_segment(entry->vaddr);
 908        sun4c_user_unmap(entry);
 909        remove_ring(sun4c_context_ring + ctx, entry);
 910        remove_lru(entry);
 911        sun4c_set_context(savectx);
 912
 913        return entry;
 914
 915unlink_out:
 916        remove_ring(&sun4c_ufree_ring, entry);
 917        return entry;
 918kunlink_out:
 919        remove_ring(&sun4c_kfree_ring, entry);
 920        return entry;
 921}
 922
 923/* NOTE: Must be called with interrupts disabled. */
 924void sun4c_grow_kernel_ring(void)
 925{
 926        struct sun4c_mmu_entry *entry;
 927
 928        /* Prevent deadlock condition. */
 929        if (sun4c_user_taken_entries >= max_user_taken_entries)
 930                return;
 931
 932        if (sun4c_ufree_ring.num_entries) {
 933                entry = sun4c_ufree_ring.ringhd.next;
 934                remove_ring(&sun4c_ufree_ring, entry);
 935                add_ring(&sun4c_kfree_ring, entry);
 936                sun4c_user_taken_entries++;
 937        }
 938}
 939
 940/* 2 page buckets for task struct and kernel stack allocation.
 941 *
 942 * TASK_STACK_BEGIN
 943 * bucket[0]
 944 * bucket[1]
 945 *   [ ... ]
 946 * bucket[NR_TASK_BUCKETS-1]
 947 * TASK_STACK_BEGIN + (sizeof(struct task_bucket) * NR_TASK_BUCKETS)
 948 *
 949 * Each slot looks like:
 950 *
 951 *  page 1 --  task struct + beginning of kernel stack
 952 *  page 2 --  rest of kernel stack
 953 */
 954
 955union task_union *sun4c_bucket[NR_TASK_BUCKETS];
 956
 957static int sun4c_lowbucket_avail;
 958
 959#define BUCKET_EMPTY     ((union task_union *) 0)
 960#define BUCKET_SHIFT     (PAGE_SHIFT + 1)        /* log2(sizeof(struct task_bucket)) */
 961#define BUCKET_SIZE      (1 << BUCKET_SHIFT)
 962#define BUCKET_NUM(addr) ((((addr) - SUN4C_LOCK_VADDR) >> BUCKET_SHIFT))
 963#define BUCKET_ADDR(num) (((num) << BUCKET_SHIFT) + SUN4C_LOCK_VADDR)
 964#define BUCKET_PTE(page)       \
 965        ((((page) - PAGE_OFFSET) >> PAGE_SHIFT) | pgprot_val(SUN4C_PAGE_KERNEL))
 966#define BUCKET_PTE_PAGE(pte)   \
 967        (PAGE_OFFSET + (((pte) & SUN4C_PFN_MASK) << PAGE_SHIFT))
 968
 969static void get_locked_segment(unsigned long addr)
 970{
 971        struct sun4c_mmu_entry *stolen;
 972        unsigned long flags;
 973
 974        save_and_cli(flags);
 975        addr &= SUN4C_REAL_PGDIR_MASK;
 976        stolen = sun4c_user_strategy();
 977        max_user_taken_entries--;
 978        stolen->vaddr = addr;
 979        flush_user_windows();
 980        sun4c_kernel_map(stolen);
 981        restore_flags(flags);
 982}
 983
 984static void free_locked_segment(unsigned long addr)
 985{
 986        struct sun4c_mmu_entry *entry;
 987        unsigned long flags;
 988        unsigned char pseg;
 989
 990        save_and_cli(flags);
 991        addr &= SUN4C_REAL_PGDIR_MASK;
 992        pseg = sun4c_get_segmap(addr);
 993        entry = &mmu_entry_pool[pseg];
 994
 995        flush_user_windows();
 996        sun4c_flush_segment(addr);
 997        sun4c_kernel_unmap(entry);
 998        add_ring(&sun4c_ufree_ring, entry);
 999        max_user_taken_entries++;
1000        restore_flags(flags);
1001}
1002
1003static inline void garbage_collect(int entry)
1004{
1005        int start, end;
1006
1007        /* 32 buckets per segment... */
1008        entry &= ~31;
1009        start = entry;
1010        for (end = (start + 32); start < end; start++)
1011                if (sun4c_bucket[start] != BUCKET_EMPTY)
1012                        return;
1013
1014        /* Entire segment empty, release it. */
1015        free_locked_segment(BUCKET_ADDR(entry));
1016}
1017
1018#ifdef CONFIG_SUN4
1019#define TASK_STRUCT_ORDER       0
1020#else
1021#define TASK_STRUCT_ORDER       1
1022#endif
1023
1024static struct task_struct *sun4c_alloc_task_struct(void)
1025{
1026        unsigned long addr, pages;
1027        int entry;
1028
1029        pages = __get_free_pages(GFP_KERNEL, TASK_STRUCT_ORDER);
1030        if (!pages)
1031                return (struct task_struct *) 0;
1032
1033        for (entry = sun4c_lowbucket_avail; entry < NR_TASK_BUCKETS; entry++)
1034                if (sun4c_bucket[entry] == BUCKET_EMPTY)
1035                        break;
1036        if (entry == NR_TASK_BUCKETS) {
1037                free_pages(pages, TASK_STRUCT_ORDER);
1038                return (struct task_struct *) 0;
1039        }
1040        if (entry >= sun4c_lowbucket_avail)
1041                sun4c_lowbucket_avail = entry + 1;
1042
1043        addr = BUCKET_ADDR(entry);
1044        sun4c_bucket[entry] = (union task_union *) addr;
1045        if(sun4c_get_segmap(addr) == invalid_segment)
1046                get_locked_segment(addr);
1047
1048        /* We are changing the virtual color of the page(s)
1049         * so we must flush the cache to guarentee consistancy.
1050         */
1051        sun4c_flush_page(pages);
1052#ifndef CONFIG_SUN4     
1053        sun4c_flush_page(pages + PAGE_SIZE);
1054#endif
1055
1056        sun4c_put_pte(addr, BUCKET_PTE(pages));
1057#ifndef CONFIG_SUN4     
1058        sun4c_put_pte(addr + PAGE_SIZE, BUCKET_PTE(pages + PAGE_SIZE));
1059#endif
1060        return (struct task_struct *) addr;
1061}
1062
1063static void sun4c_free_task_struct(struct task_struct *tsk)
1064{
1065        unsigned long tsaddr = (unsigned long) tsk;
1066        unsigned long pages = BUCKET_PTE_PAGE(sun4c_get_pte(tsaddr));
1067        int entry = BUCKET_NUM(tsaddr);
1068
1069        if (atomic_dec_and_test(&(tsk)->thread.refcount)) {
1070                /* We are deleting a mapping, so the flush here is mandatory. */
1071                sun4c_flush_page(tsaddr);
1072#ifndef CONFIG_SUN4     
1073                sun4c_flush_page(tsaddr + PAGE_SIZE);
1074#endif
1075                sun4c_put_pte(tsaddr, 0);
1076#ifndef CONFIG_SUN4     
1077                sun4c_put_pte(tsaddr + PAGE_SIZE, 0);
1078#endif
1079                sun4c_bucket[entry] = BUCKET_EMPTY;
1080                if (entry < sun4c_lowbucket_avail)
1081                        sun4c_lowbucket_avail = entry;
1082
1083                free_pages(pages, TASK_STRUCT_ORDER);
1084                garbage_collect(entry);
1085        }
1086}
1087
1088static void sun4c_get_task_struct(struct task_struct *tsk)
1089{
1090                atomic_inc(&(tsk)->thread.refcount);
1091}
1092
1093static void __init sun4c_init_buckets(void)
1094{
1095        int entry;
1096
1097        if (sizeof(union task_union) != (PAGE_SIZE << TASK_STRUCT_ORDER)) {
1098                prom_printf("task union not %d page(s)!\n", 1 << TASK_STRUCT_ORDER);
1099        }
1100        for (entry = 0; entry < NR_TASK_BUCKETS; entry++)
1101                sun4c_bucket[entry] = BUCKET_EMPTY;
1102        sun4c_lowbucket_avail = 0;
1103}
1104
1105static unsigned long sun4c_iobuffer_start;
1106static unsigned long sun4c_iobuffer_end;
1107static unsigned long sun4c_iobuffer_high;
1108static unsigned long *sun4c_iobuffer_map;
1109static int iobuffer_map_size;
1110
1111/*
1112 * Alias our pages so they do not cause a trap.
1113 * Also one page may be aliased into several I/O areas and we may
1114 * finish these I/O separately.
1115 */
1116static char *sun4c_lockarea(char *vaddr, unsigned long size)
1117{
1118        unsigned long base, scan;
1119        unsigned long npages;
1120        unsigned long vpage;
1121        unsigned long pte;
1122        unsigned long apage;
1123        unsigned long high;
1124        unsigned long flags;
1125
1126        npages = (((unsigned long)vaddr & ~PAGE_MASK) +
1127                  size + (PAGE_SIZE-1)) >> PAGE_SHIFT;
1128
1129        scan = 0;
1130        save_and_cli(flags);
1131        for (;;) {
1132                scan = find_next_zero_bit(sun4c_iobuffer_map,
1133                                          iobuffer_map_size, scan);
1134                if ((base = scan) + npages > iobuffer_map_size) goto abend;
1135                for (;;) {
1136                        if (scan >= base + npages) goto found;
1137                        if (test_bit(scan, sun4c_iobuffer_map)) break;
1138                        scan++;
1139                }
1140        }
1141
1142found:
1143        high = ((base + npages) << PAGE_SHIFT) + sun4c_iobuffer_start;
1144        high = SUN4C_REAL_PGDIR_ALIGN(high);
1145        while (high > sun4c_iobuffer_high) {
1146                get_locked_segment(sun4c_iobuffer_high);
1147                sun4c_iobuffer_high += SUN4C_REAL_PGDIR_SIZE;
1148        }
1149
1150        vpage = ((unsigned long) vaddr) & PAGE_MASK;
1151        for (scan = base; scan < base+npages; scan++) {
1152                pte = ((vpage-PAGE_OFFSET) >> PAGE_SHIFT);
1153                pte |= pgprot_val(SUN4C_PAGE_KERNEL);
1154                pte |= _SUN4C_PAGE_NOCACHE;
1155                set_bit(scan, sun4c_iobuffer_map);
1156                apage = (scan << PAGE_SHIFT) + sun4c_iobuffer_start;
1157
1158                /* Flush original mapping so we see the right things later. */
1159                sun4c_flush_page(vpage);
1160
1161                sun4c_put_pte(apage, pte);
1162                vpage += PAGE_SIZE;
1163        }
1164        restore_flags(flags);
1165        return (char *) ((base << PAGE_SHIFT) + sun4c_iobuffer_start +
1166                         (((unsigned long) vaddr) & ~PAGE_MASK));
1167
1168abend:
1169        restore_flags(flags);
1170        printk("DMA vaddr=0x%p size=%08lx\n", vaddr, size);
1171        panic("Out of iobuffer table");
1172        return 0;
1173}
1174
1175static void sun4c_unlockarea(char *vaddr, unsigned long size)
1176{
1177        unsigned long vpage, npages;
1178        unsigned long flags;
1179        int scan, high;
1180
1181        vpage = (unsigned long)vaddr & PAGE_MASK;
1182        npages = (((unsigned long)vaddr & ~PAGE_MASK) +
1183                  size + (PAGE_SIZE-1)) >> PAGE_SHIFT;
1184
1185        save_and_cli(flags);
1186        while (npages != 0) {
1187                --npages;
1188
1189                /* This mapping is marked non-cachable, no flush necessary. */
1190                sun4c_put_pte(vpage, 0);
1191                clear_bit((vpage - sun4c_iobuffer_start) >> PAGE_SHIFT,
1192                          sun4c_iobuffer_map);
1193                vpage += PAGE_SIZE;
1194        }
1195
1196        /* garbage collect */
1197        scan = (sun4c_iobuffer_high - sun4c_iobuffer_start) >> PAGE_SHIFT;
1198        while (scan >= 0 && !sun4c_iobuffer_map[scan >> 5])
1199                scan -= 32;
1200        scan += 32;
1201        high = sun4c_iobuffer_start + (scan << PAGE_SHIFT);
1202        high = SUN4C_REAL_PGDIR_ALIGN(high) + SUN4C_REAL_PGDIR_SIZE;
1203        while (high < sun4c_iobuffer_high) {
1204                sun4c_iobuffer_high -= SUN4C_REAL_PGDIR_SIZE;
1205                free_locked_segment(sun4c_iobuffer_high);
1206        }
1207        restore_flags(flags);
1208}
1209
1210/* Note the scsi code at init time passes to here buffers
1211 * which sit on the kernel stack, those are already locked
1212 * by implication and fool the page locking code above
1213 * if passed to by mistake.
1214 */
1215static __u32 sun4c_get_scsi_one(char *bufptr, unsigned long len, struct sbus_bus *sbus)
1216{
1217        unsigned long page;
1218
1219        page = ((unsigned long)bufptr) & PAGE_MASK;
1220        if (!VALID_PAGE(virt_to_page(page))) {
1221                sun4c_flush_page(page);
1222                return (__u32)bufptr; /* already locked */
1223        }
1224        return (__u32)sun4c_lockarea(bufptr, len);
1225}
1226
1227static void sun4c_get_scsi_sgl(struct scatterlist *sg, int sz, struct sbus_bus *sbus)
1228{
1229        while (sz != 0) {
1230                sz--;
1231                sg[sz].dvma_address = (__u32)sun4c_lockarea(sg[sz].address, sg[sz].length);
1232                sg[sz].dvma_length = sg[sz].length;
1233        }
1234}
1235
1236static void sun4c_release_scsi_one(__u32 bufptr, unsigned long len, struct sbus_bus *sbus)
1237{
1238        if (bufptr < sun4c_iobuffer_start)
1239                return; /* On kernel stack or similar, see above */
1240        sun4c_unlockarea((char *)bufptr, len);
1241}
1242
1243static void sun4c_release_scsi_sgl(struct scatterlist *sg, int sz, struct sbus_bus *sbus)
1244{
1245        while (sz != 0) {
1246                --sz;
1247                sun4c_unlockarea((char *)sg[sz].dvma_address, sg[sz].length);
1248        }
1249}
1250
1251#define TASK_ENTRY_SIZE    BUCKET_SIZE /* see above */
1252#define LONG_ALIGN(x) (((x)+(sizeof(long))-1)&~((sizeof(long))-1))
1253
1254struct vm_area_struct sun4c_kstack_vma;
1255
1256static void __init sun4c_init_lock_areas(void)
1257{
1258        unsigned long sun4c_taskstack_start;
1259        unsigned long sun4c_taskstack_end;
1260        int bitmap_size;
1261
1262        sun4c_init_buckets();
1263        sun4c_taskstack_start = SUN4C_LOCK_VADDR;
1264        sun4c_taskstack_end = (sun4c_taskstack_start +
1265                               (TASK_ENTRY_SIZE * NR_TASK_BUCKETS));
1266        if (sun4c_taskstack_end >= SUN4C_LOCK_END) {
1267                prom_printf("Too many tasks, decrease NR_TASK_BUCKETS please.\n");
1268                prom_halt();
1269        }
1270
1271        sun4c_iobuffer_start = sun4c_iobuffer_high =
1272                                SUN4C_REAL_PGDIR_ALIGN(sun4c_taskstack_end);
1273        sun4c_iobuffer_end = SUN4C_LOCK_END;
1274        bitmap_size = (sun4c_iobuffer_end - sun4c_iobuffer_start) >> PAGE_SHIFT;
1275        bitmap_size = (bitmap_size + 7) >> 3;
1276        bitmap_size = LONG_ALIGN(bitmap_size);
1277        iobuffer_map_size = bitmap_size << 3;
1278        sun4c_iobuffer_map = __alloc_bootmem(bitmap_size, SMP_CACHE_BYTES, 0UL);
1279        memset((void *) sun4c_iobuffer_map, 0, bitmap_size);
1280
1281        sun4c_kstack_vma.vm_mm = &init_mm;
1282        sun4c_kstack_vma.vm_start = sun4c_taskstack_start;
1283        sun4c_kstack_vma.vm_end = sun4c_taskstack_end;
1284        sun4c_kstack_vma.vm_page_prot = PAGE_SHARED;
1285        sun4c_kstack_vma.vm_flags = VM_READ | VM_WRITE | VM_EXEC;
1286        insert_vm_struct(&init_mm, &sun4c_kstack_vma);
1287}
1288
1289/* Cache flushing on the sun4c. */
1290static void sun4c_flush_cache_all(void)
1291{
1292        unsigned long begin, end;
1293
1294        flush_user_windows();
1295        begin = (KERNBASE + SUN4C_REAL_PGDIR_SIZE);
1296        end = (begin + SUN4C_VAC_SIZE);
1297
1298        if (sun4c_vacinfo.linesize == 32) {
1299                while (begin < end) {
1300                        __asm__ __volatile__(
1301                        "ld     [%0 + 0x00], %%g0\n\t"
1302                        "ld     [%0 + 0x20], %%g0\n\t"
1303                        "ld     [%0 + 0x40], %%g0\n\t"
1304                        "ld     [%0 + 0x60], %%g0\n\t"
1305                        "ld     [%0 + 0x80], %%g0\n\t"
1306                        "ld     [%0 + 0xa0], %%g0\n\t"
1307                        "ld     [%0 + 0xc0], %%g0\n\t"
1308                        "ld     [%0 + 0xe0], %%g0\n\t"
1309                        "ld     [%0 + 0x100], %%g0\n\t"
1310                        "ld     [%0 + 0x120], %%g0\n\t"
1311                        "ld     [%0 + 0x140], %%g0\n\t"
1312                        "ld     [%0 + 0x160], %%g0\n\t"
1313                        "ld     [%0 + 0x180], %%g0\n\t"
1314                        "ld     [%0 + 0x1a0], %%g0\n\t"
1315                        "ld     [%0 + 0x1c0], %%g0\n\t"
1316                        "ld     [%0 + 0x1e0], %%g0\n"
1317                        : : "r" (begin));
1318                        begin += 512;
1319                }
1320        } else {
1321                while (begin < end) {
1322                        __asm__ __volatile__(
1323                        "ld     [%0 + 0x00], %%g0\n\t"
1324                        "ld     [%0 + 0x10], %%g0\n\t"
1325                        "ld     [%0 + 0x20], %%g0\n\t"
1326                        "ld     [%0 + 0x30], %%g0\n\t"
1327                        "ld     [%0 + 0x40], %%g0\n\t"
1328                        "ld     [%0 + 0x50], %%g0\n\t"
1329                        "ld     [%0 + 0x60], %%g0\n\t"
1330                        "ld     [%0 + 0x70], %%g0\n\t"
1331                        "ld     [%0 + 0x80], %%g0\n\t"
1332                        "ld     [%0 + 0x90], %%g0\n\t"
1333                        "ld     [%0 + 0xa0], %%g0\n\t"
1334                        "ld     [%0 + 0xb0], %%g0\n\t"
1335                        "ld     [%0 + 0xc0], %%g0\n\t"
1336                        "ld     [%0 + 0xd0], %%g0\n\t"
1337                        "ld     [%0 + 0xe0], %%g0\n\t"
1338                        "ld     [%0 + 0xf0], %%g0\n"
1339                        : : "r" (begin));
1340                        begin += 256;
1341                }
1342        }
1343}
1344
1345static void sun4c_flush_cache_mm(struct mm_struct *mm)
1346{
1347        int new_ctx = mm->context;
1348
1349        if (new_ctx != NO_CONTEXT) {
1350                flush_user_windows();
1351
1352                if (sun4c_context_ring[new_ctx].num_entries) {
1353                        struct sun4c_mmu_entry *head = &sun4c_context_ring[new_ctx].ringhd;
1354                        unsigned long flags;
1355
1356                        save_and_cli(flags);
1357                        if (head->next != head) {
1358                                struct sun4c_mmu_entry *entry = head->next;
1359                                int savectx = sun4c_get_context();
1360
1361                                sun4c_set_context(new_ctx);
1362                                sun4c_flush_context();
1363                                do {
1364                                        struct sun4c_mmu_entry *next = entry->next;
1365
1366                                        sun4c_user_unmap(entry);
1367                                        free_user_entry(new_ctx, entry);
1368
1369                                        entry = next;
1370                                } while (entry != head);
1371                                sun4c_set_context(savectx);
1372                        }
1373                        restore_flags(flags);
1374                }
1375        }
1376}
1377
1378static void sun4c_flush_cache_range(struct mm_struct *mm, unsigned long start, unsigned long end)
1379{
1380        int new_ctx = mm->context;
1381
1382        if (new_ctx != NO_CONTEXT) {
1383                struct sun4c_mmu_entry *head = &sun4c_context_ring[new_ctx].ringhd;
1384                struct sun4c_mmu_entry *entry;
1385                unsigned long flags;
1386
1387                flush_user_windows();
1388
1389                save_and_cli(flags);
1390                /* All user segmap chains are ordered on entry->vaddr. */
1391                for (entry = head->next;
1392                     (entry != head) && ((entry->vaddr+SUN4C_REAL_PGDIR_SIZE) < start);
1393                     entry = entry->next)
1394                        ;
1395
1396                /* Tracing various job mixtures showed that this conditional
1397                 * only passes ~35% of the time for most worse case situations,
1398                 * therefore we avoid all of this gross overhead ~65% of the time.
1399                 */
1400                if ((entry != head) && (entry->vaddr < end)) {
1401                        int octx = sun4c_get_context();
1402                        sun4c_set_context(new_ctx);
1403
1404                        /* At this point, always, (start >= entry->vaddr) and
1405                         * (entry->vaddr < end), once the latter condition
1406                         * ceases to hold, or we hit the end of the list, we
1407                         * exit the loop.  The ordering of all user allocated
1408                         * segmaps makes this all work out so beautifully.
1409                         */
1410                        do {
1411                                struct sun4c_mmu_entry *next = entry->next;
1412                                unsigned long realend;
1413
1414                                /* "realstart" is always >= entry->vaddr */
1415                                realend = entry->vaddr + SUN4C_REAL_PGDIR_SIZE;
1416                                if (end < realend)
1417                                        realend = end;
1418                                if ((realend - entry->vaddr) <= (PAGE_SIZE << 3)) {
1419                                        unsigned long page = entry->vaddr;
1420                                        while (page < realend) {
1421                                                sun4c_flush_page(page);
1422                                                page += PAGE_SIZE;
1423                                        }
1424                                } else {
1425                                        sun4c_flush_segment(entry->vaddr);
1426                                        sun4c_user_unmap(entry);
1427                                        free_user_entry(new_ctx, entry);
1428                                }
1429                                entry = next;
1430                        } while ((entry != head) && (entry->vaddr < end));
1431                        sun4c_set_context(octx);
1432                }
1433                restore_flags(flags);
1434        }
1435}
1436
1437static void sun4c_flush_cache_page(struct vm_area_struct *vma, unsigned long page)
1438{
1439        struct mm_struct *mm = vma->vm_mm;
1440        int new_ctx = mm->context;
1441
1442        /* Sun4c has no separate I/D caches so cannot optimize for non
1443         * text page flushes.
1444         */
1445        if (new_ctx != NO_CONTEXT) {
1446                int octx = sun4c_get_context();
1447                unsigned long flags;
1448
1449                flush_user_windows();
1450                save_and_cli(flags);
1451                sun4c_set_context(new_ctx);
1452                sun4c_flush_page(page);
1453                sun4c_set_context(octx);
1454                restore_flags(flags);
1455        }
1456}
1457
1458static void sun4c_flush_page_to_ram(unsigned long page)
1459{
1460        unsigned long flags;
1461
1462        save_and_cli(flags);
1463        sun4c_flush_page(page);
1464        restore_flags(flags);
1465}
1466
1467/* Sun4c cache is unified, both instructions and data live there, so
1468 * no need to flush the on-stack instructions for new signal handlers.
1469 */
1470static void sun4c_flush_sig_insns(struct mm_struct *mm, unsigned long insn_addr)
1471{
1472}
1473
1474/* TLB flushing on the sun4c.  These routines count on the cache
1475 * flushing code to flush the user register windows so that we need
1476 * not do so when we get here.
1477 */
1478
1479static void sun4c_flush_tlb_all(void)
1480{
1481        struct sun4c_mmu_entry *this_entry, *next_entry;
1482        unsigned long flags;
1483        int savectx, ctx;
1484
1485        save_and_cli(flags);
1486        this_entry = sun4c_kernel_ring.ringhd.next;
1487        savectx = sun4c_get_context();
1488        flush_user_windows();
1489        while (sun4c_kernel_ring.num_entries) {
1490                next_entry = this_entry->next;
1491                sun4c_flush_segment(this_entry->vaddr);
1492                for (ctx = 0; ctx < num_contexts; ctx++) {
1493                        sun4c_set_context(ctx);
1494                        sun4c_put_segmap(this_entry->vaddr, invalid_segment);
1495                }
1496                free_kernel_entry(this_entry, &sun4c_kernel_ring);
1497                this_entry = next_entry;
1498        }
1499        sun4c_set_context(savectx);
1500        restore_flags(flags);
1501}
1502
1503static void sun4c_flush_tlb_mm(struct mm_struct *mm)
1504{
1505        int new_ctx = mm->context;
1506
1507        if (new_ctx != NO_CONTEXT) {
1508                struct sun4c_mmu_entry *head = &sun4c_context_ring[new_ctx].ringhd;
1509                unsigned long flags;
1510
1511                save_and_cli(flags);
1512                if (head->next != head) {
1513                        struct sun4c_mmu_entry *entry = head->next;
1514                        int savectx = sun4c_get_context();
1515
1516                        sun4c_set_context(new_ctx);
1517                        sun4c_flush_context();
1518                        do {
1519                                struct sun4c_mmu_entry *next = entry->next;
1520
1521                                sun4c_user_unmap(entry);
1522                                free_user_entry(new_ctx, entry);
1523
1524                                entry = next;
1525                        } while (entry != head);
1526                        sun4c_set_context(savectx);
1527                }
1528                restore_flags(flags);
1529        }
1530}
1531
1532static void sun4c_flush_tlb_range(struct mm_struct *mm, unsigned long start, unsigned long end)
1533{
1534        int new_ctx = mm->context;
1535
1536        if (new_ctx != NO_CONTEXT) {
1537                struct sun4c_mmu_entry *head = &sun4c_context_ring[new_ctx].ringhd;
1538                struct sun4c_mmu_entry *entry;
1539                unsigned long flags;
1540
1541                save_and_cli(flags);
1542                /* See commentary in sun4c_flush_cache_range(). */
1543                for (entry = head->next;
1544                     (entry != head) && ((entry->vaddr+SUN4C_REAL_PGDIR_SIZE) < start);
1545                     entry = entry->next)
1546                        ;
1547
1548                if ((entry != head) && (entry->vaddr < end)) {
1549                        int octx = sun4c_get_context();
1550
1551                        sun4c_set_context(new_ctx);
1552                        do {
1553                                struct sun4c_mmu_entry *next = entry->next;
1554
1555                                sun4c_flush_segment(entry->vaddr);
1556                                sun4c_user_unmap(entry);
1557                                free_user_entry(new_ctx, entry);
1558
1559                                entry = next;
1560                        } while ((entry != head) && (entry->vaddr < end));
1561                        sun4c_set_context(octx);
1562                }
1563                restore_flags(flags);
1564        }
1565}
1566
1567static void sun4c_flush_tlb_page(struct vm_area_struct *vma, unsigned long page)
1568{
1569        struct mm_struct *mm = vma->vm_mm;
1570        int new_ctx = mm->context;
1571
1572        if (new_ctx != NO_CONTEXT) {
1573                int savectx = sun4c_get_context();
1574                unsigned long flags;
1575
1576                save_and_cli(flags);
1577                sun4c_set_context(new_ctx);
1578                page &= PAGE_MASK;
1579                sun4c_flush_page(page);
1580                sun4c_put_pte(page, 0);
1581                sun4c_set_context(savectx);
1582                restore_flags(flags);
1583        }
1584}
1585
1586void sun4c_mapioaddr(unsigned long physaddr, unsigned long virt_addr,
1587                     int bus_type, int rdonly)
1588{
1589        unsigned long page_entry;
1590
1591        page_entry = ((physaddr >> PAGE_SHIFT) & SUN4C_PFN_MASK);
1592        page_entry |= ((pg_iobits | _SUN4C_PAGE_PRIV) & ~(_SUN4C_PAGE_PRESENT));
1593        if (rdonly)
1594                page_entry &= ~_SUN4C_WRITEABLE;
1595        sun4c_put_pte(virt_addr, page_entry);
1596}
1597
1598void sun4c_unmapioaddr(unsigned long virt_addr)
1599{
1600        sun4c_put_pte(virt_addr, 0);
1601}
1602
1603static void sun4c_alloc_context(struct mm_struct *old_mm, struct mm_struct *mm)
1604{
1605        struct ctx_list *ctxp;
1606
1607        ctxp = ctx_free.next;
1608        if (ctxp != &ctx_free) {
1609                remove_from_ctx_list(ctxp);
1610                add_to_used_ctxlist(ctxp);
1611                mm->context = ctxp->ctx_number;
1612                ctxp->ctx_mm = mm;
1613                return;
1614        }
1615        ctxp = ctx_used.next;
1616        if (ctxp->ctx_mm == old_mm)
1617                ctxp = ctxp->next;
1618        remove_from_ctx_list(ctxp);
1619        add_to_used_ctxlist(ctxp);
1620        ctxp->ctx_mm->context = NO_CONTEXT;
1621        ctxp->ctx_mm = mm;
1622        mm->context = ctxp->ctx_number;
1623        sun4c_demap_context(&sun4c_context_ring[ctxp->ctx_number],
1624                               ctxp->ctx_number);
1625}
1626
1627/* Switch the current MM context. */
1628static void sun4c_switch_mm(struct mm_struct *old_mm, struct mm_struct *mm, struct task_struct *tsk, int cpu)
1629{
1630        struct ctx_list *ctx;
1631        int dirty = 0;
1632
1633        if (mm->context == NO_CONTEXT) {
1634                dirty = 1;
1635                sun4c_alloc_context(old_mm, mm);
1636        } else {
1637                /* Update the LRU ring of contexts. */
1638                ctx = ctx_list_pool + mm->context;
1639                remove_from_ctx_list(ctx);
1640                add_to_used_ctxlist(ctx);
1641        }
1642        if (dirty || old_mm != mm)
1643                sun4c_set_context(mm->context);
1644}
1645
1646static void sun4c_destroy_context(struct mm_struct *mm)
1647{
1648        struct ctx_list *ctx_old;
1649
1650        if (mm->context != NO_CONTEXT) {
1651                sun4c_demap_context(&sun4c_context_ring[mm->context], mm->context);
1652                ctx_old = ctx_list_pool + mm->context;
1653                remove_from_ctx_list(ctx_old);
1654                add_to_free_ctxlist(ctx_old);
1655                mm->context = NO_CONTEXT;
1656        }
1657}
1658
1659static void sun4c_mmu_info(struct seq_file *m)
1660{
1661        int used_user_entries, i;
1662
1663        used_user_entries = 0;
1664        for (i = 0; i < num_contexts; i++)
1665                used_user_entries += sun4c_context_ring[i].num_entries;
1666
1667        seq_printf(m, 
1668                   "vacsize\t\t: %d bytes\n"
1669                   "vachwflush\t: %s\n"
1670                   "vaclinesize\t: %d bytes\n"
1671                   "mmuctxs\t\t: %d\n"
1672                   "mmupsegs\t: %d\n"
1673                   "kernelpsegs\t: %d\n"
1674                   "kfreepsegs\t: %d\n"
1675                   "usedpsegs\t: %d\n"
1676                   "ufreepsegs\t: %d\n"
1677                   "user_taken\t: %d\n"
1678                   "max_taken\t: %d\n",
1679                   sun4c_vacinfo.num_bytes,
1680                   (sun4c_vacinfo.do_hwflushes ? "yes" : "no"),
1681                   sun4c_vacinfo.linesize,
1682                   num_contexts,
1683                   (invalid_segment + 1),
1684                   sun4c_kernel_ring.num_entries,
1685                   sun4c_kfree_ring.num_entries,
1686                   used_user_entries,
1687                   sun4c_ufree_ring.num_entries,
1688                   sun4c_user_taken_entries,
1689                   max_user_taken_entries);
1690}
1691
1692/* Nothing below here should touch the mmu hardware nor the mmu_entry
1693 * data structures.
1694 */
1695
1696/* First the functions which the mid-level code uses to directly
1697 * manipulate the software page tables.  Some defines since we are
1698 * emulating the i386 page directory layout.
1699 */
1700#define PGD_PRESENT  0x001
1701#define PGD_RW       0x002
1702#define PGD_USER     0x004
1703#define PGD_ACCESSED 0x020
1704#define PGD_DIRTY    0x040
1705#define PGD_TABLE    (PGD_PRESENT | PGD_RW | PGD_USER | PGD_ACCESSED | PGD_DIRTY)
1706
1707static void sun4c_set_pte(pte_t *ptep, pte_t pte)
1708{
1709        *ptep = pte;
1710}
1711
1712static void sun4c_pgd_set(pgd_t * pgdp, pmd_t * pmdp)
1713{
1714}
1715
1716static void sun4c_pmd_set(pmd_t * pmdp, pte_t * ptep)
1717{
1718        *pmdp = __pmd(PGD_TABLE | (unsigned long) ptep);
1719}
1720
1721static int sun4c_pte_present(pte_t pte)
1722{
1723        return ((pte_val(pte) & (_SUN4C_PAGE_PRESENT | _SUN4C_PAGE_PRIV)) != 0);
1724}
1725static void sun4c_pte_clear(pte_t *ptep)        { *ptep = __pte(0); }
1726
1727static int sun4c_pmd_bad(pmd_t pmd)
1728{
1729        return (((pmd_val(pmd) & ~PAGE_MASK) != PGD_TABLE) ||
1730                (!VALID_PAGE(virt_to_page(pmd_val(pmd)))));
1731}
1732
1733static int sun4c_pmd_present(pmd_t pmd)
1734{
1735        return ((pmd_val(pmd) & PGD_PRESENT) != 0);
1736}
1737static void sun4c_pmd_clear(pmd_t *pmdp)        { *pmdp = __pmd(0); }
1738
1739static int sun4c_pgd_none(pgd_t pgd)            { return 0; }
1740static int sun4c_pgd_bad(pgd_t pgd)             { return 0; }
1741static int sun4c_pgd_present(pgd_t pgd)         { return 1; }
1742static void sun4c_pgd_clear(pgd_t * pgdp)       { }
1743
1744/*
1745 * The following only work if pte_present() is true.
1746 * Undefined behaviour if not..
1747 */
1748static pte_t sun4c_pte_mkwrite(pte_t pte)
1749{
1750        pte = __pte(pte_val(pte) | _SUN4C_PAGE_WRITE);
1751        if (pte_val(pte) & _SUN4C_PAGE_MODIFIED)
1752                pte = __pte(pte_val(pte) | _SUN4C_PAGE_SILENT_WRITE);
1753        return pte;
1754}
1755
1756static pte_t sun4c_pte_mkdirty(pte_t pte)
1757{
1758        pte = __pte(pte_val(pte) | _SUN4C_PAGE_MODIFIED);
1759        if (pte_val(pte) & _SUN4C_PAGE_WRITE)
1760                pte = __pte(pte_val(pte) | _SUN4C_PAGE_SILENT_WRITE);
1761        return pte;
1762}
1763
1764static pte_t sun4c_pte_mkyoung(pte_t pte)
1765{
1766        pte = __pte(pte_val(pte) | _SUN4C_PAGE_ACCESSED);
1767        if (pte_val(pte) & _SUN4C_PAGE_READ)
1768                pte = __pte(pte_val(pte) | _SUN4C_PAGE_SILENT_READ);
1769        return pte;
1770}
1771
1772/*
1773 * Conversion functions: convert a page and protection to a page entry,
1774 * and a page entry and page directory to the page they refer to.
1775 */
1776static pte_t sun4c_mk_pte(struct page *page, pgprot_t pgprot)
1777{
1778        return __pte((page - mem_map) | pgprot_val(pgprot));
1779}
1780
1781static pte_t sun4c_mk_pte_phys(unsigned long phys_page, pgprot_t pgprot)
1782{
1783        return __pte((phys_page >> PAGE_SHIFT) | pgprot_val(pgprot));
1784}
1785
1786static pte_t sun4c_mk_pte_io(unsigned long page, pgprot_t pgprot, int space)
1787{
1788        return __pte(((page - PAGE_OFFSET) >> PAGE_SHIFT) | pgprot_val(pgprot));
1789}
1790
1791static struct page *sun4c_pte_page(pte_t pte)
1792{
1793        return (mem_map + (unsigned long)(pte_val(pte) & SUN4C_PFN_MASK));
1794}
1795
1796static inline unsigned long sun4c_pmd_page(pmd_t pmd)
1797{
1798        return (pmd_val(pmd) & PAGE_MASK);
1799}
1800
1801static unsigned long sun4c_pgd_page(pgd_t pgd) { return 0; }
1802
1803/* to find an entry in a page-table-directory */
1804static inline pgd_t *sun4c_pgd_offset(struct mm_struct * mm, unsigned long address)
1805{
1806        return mm->pgd + (address >> SUN4C_PGDIR_SHIFT);
1807}
1808
1809/* Find an entry in the second-level page table.. */
1810static pmd_t *sun4c_pmd_offset(pgd_t * dir, unsigned long address)
1811{
1812        return (pmd_t *) dir;
1813}
1814
1815/* Find an entry in the third-level page table.. */ 
1816pte_t *sun4c_pte_offset(pmd_t * dir, unsigned long address)
1817{
1818        return (pte_t *) sun4c_pmd_page(*dir) + ((address >> PAGE_SHIFT) & (SUN4C_PTRS_PER_PTE - 1));
1819}
1820
1821static void sun4c_free_pte_slow(pte_t *pte)
1822{
1823        free_page((unsigned long)pte);
1824}
1825
1826static void sun4c_free_pgd_slow(pgd_t *pgd)
1827{
1828        free_page((unsigned long)pgd);
1829}
1830
1831static pgd_t *sun4c_get_pgd_fast(void)
1832{
1833        unsigned long *ret;
1834
1835        if ((ret = pgd_quicklist) != NULL) {
1836                pgd_quicklist = (unsigned long *)(*ret);
1837                ret[0] = ret[1];
1838                pgtable_cache_size--;
1839        } else {
1840                pgd_t *init;
1841                
1842                ret = (unsigned long *)__get_free_page(GFP_KERNEL);
1843                memset (ret, 0, (KERNBASE / SUN4C_PGDIR_SIZE) * sizeof(pgd_t));
1844                init = sun4c_pgd_offset(&init_mm, 0);
1845                memcpy (((pgd_t *)ret) + USER_PTRS_PER_PGD, init + USER_PTRS_PER_PGD,
1846                        (PTRS_PER_PGD - USER_PTRS_PER_PGD) * sizeof(pgd_t));
1847        }
1848        return (pgd_t *)ret;
1849}
1850
1851static void sun4c_free_pgd_fast(pgd_t *pgd)
1852{
1853        *(unsigned long *)pgd = (unsigned long) pgd_quicklist;
1854        pgd_quicklist = (unsigned long *) pgd;
1855        pgtable_cache_size++;
1856}
1857
1858static pte_t *sun4c_pte_alloc_one(struct mm_struct *mm, unsigned long address)
1859{
1860        pte_t *pte = (pte_t *)__get_free_page(GFP_KERNEL);
1861        if (pte)
1862                memset(pte, 0, PAGE_SIZE);
1863        return pte;
1864}
1865
1866pte_t *sun4c_pte_alloc_one_fast(struct mm_struct *mm, unsigned long address)
1867{
1868        unsigned long *ret;
1869
1870        if ((ret = (unsigned long *)pte_quicklist) != NULL) {
1871                pte_quicklist = (unsigned long *)(*ret);
1872                ret[0] = ret[1];
1873                pgtable_cache_size--;
1874        }
1875        return (pte_t *)ret;
1876}
1877
1878static __inline__ void sun4c_free_pte_fast(pte_t *pte)
1879{
1880        *(unsigned long *)pte = (unsigned long) pte_quicklist;
1881        pte_quicklist = (unsigned long *) pte;
1882        pgtable_cache_size++;
1883}
1884
1885/*
1886 * allocating and freeing a pmd is trivial: the 1-entry pmd is
1887 * inside the pgd, so has no extra memory associated with it.
1888 */
1889static pmd_t *sun4c_pmd_alloc_one_fast(struct mm_struct *mm, unsigned long address)
1890{
1891        BUG();
1892        return NULL;
1893}
1894
1895static void sun4c_free_pmd_fast(pmd_t * pmd) { }
1896
1897static int sun4c_check_pgt_cache(int low, int high)
1898{
1899        int freed = 0;
1900        if (pgtable_cache_size > high) {
1901                do {
1902                        if (pgd_quicklist)
1903                                sun4c_free_pgd_slow(sun4c_get_pgd_fast()), freed++;
1904                        if (pte_quicklist)
1905                                sun4c_free_pte_slow(sun4c_pte_alloc_one_fast(NULL, 0)), freed++;
1906                } while (pgtable_cache_size > low);
1907        }
1908        return freed;
1909}
1910
1911/* An experiment, turn off by default for now... -DaveM */
1912#define SUN4C_PRELOAD_PSEG
1913
1914void sun4c_update_mmu_cache(struct vm_area_struct *vma, unsigned long address, pte_t pte)
1915{
1916        unsigned long flags;
1917        int pseg;
1918
1919        save_and_cli(flags);
1920        address &= PAGE_MASK;
1921        if ((pseg = sun4c_get_segmap(address)) == invalid_segment) {
1922                struct sun4c_mmu_entry *entry = sun4c_user_strategy();
1923                struct mm_struct *mm = vma->vm_mm;
1924                unsigned long start, end;
1925
1926                entry->vaddr = start = (address & SUN4C_REAL_PGDIR_MASK);
1927                entry->ctx = mm->context;
1928                add_ring_ordered(sun4c_context_ring + mm->context, entry);
1929                sun4c_put_segmap(entry->vaddr, entry->pseg);
1930                end = start + SUN4C_REAL_PGDIR_SIZE;
1931                while (start < end) {
1932#ifdef SUN4C_PRELOAD_PSEG
1933                        pgd_t *pgdp = sun4c_pgd_offset(mm, start);
1934                        pte_t *ptep;
1935
1936                        if (!pgdp)
1937                                goto no_mapping;
1938                        ptep = sun4c_pte_offset((pmd_t *) pgdp, start);
1939                        if (!ptep || !(pte_val(*ptep) & _SUN4C_PAGE_PRESENT))
1940                                goto no_mapping;
1941                        sun4c_put_pte(start, pte_val(*ptep));
1942                        goto next;
1943
1944                no_mapping:
1945#endif
1946                        sun4c_put_pte(start, 0);
1947#ifdef SUN4C_PRELOAD_PSEG
1948                next:
1949#endif
1950                        start += PAGE_SIZE;
1951                }
1952#ifndef SUN4C_PRELOAD_PSEG
1953                sun4c_put_pte(address, pte_val(pte));
1954#endif
1955                restore_flags(flags);
1956                return;
1957        } else {
1958                struct sun4c_mmu_entry *entry = &mmu_entry_pool[pseg];
1959
1960                remove_lru(entry);
1961                add_lru(entry);
1962        }
1963
1964        sun4c_put_pte(address, pte_val(pte));
1965        restore_flags(flags);
1966}
1967
1968extern void sparc_context_init(int);
1969extern unsigned long end;
1970extern unsigned long bootmem_init(unsigned long *pages_avail);
1971extern unsigned long last_valid_pfn;
1972extern void sun_serial_setup(void);
1973
1974extern unsigned long fix_kmap_begin;
1975extern unsigned long fix_kmap_end;
1976
1977void __init sun4c_paging_init(void)
1978{
1979        int i, cnt;
1980        unsigned long kernel_end, vaddr;
1981        extern struct resource sparc_iomap;
1982        unsigned long end_pfn, pages_avail;
1983
1984        fix_kmap_begin = KERNBASE + SRMMU_MAXMEM; /* Why bother with SRMMU_MAXMEM? */
1985        fix_kmap_end = fix_kmap_begin + ((KM_TYPE_NR*NR_CPUS)-1)*PAGE_SIZE;
1986
1987        kernel_end = (unsigned long) &end;
1988        kernel_end += (SUN4C_REAL_PGDIR_SIZE * 4);
1989        kernel_end = SUN4C_REAL_PGDIR_ALIGN(kernel_end);
1990
1991        pages_avail = 0;
1992        last_valid_pfn = bootmem_init(&pages_avail);
1993        end_pfn = last_valid_pfn;
1994
1995        /* This does not logically belong here, but we need to
1996         * call it at the moment we are able to use the bootmem
1997         * allocator.
1998         */
1999        sun_serial_setup();
2000
2001        sun4c_probe_mmu();
2002        invalid_segment = (num_segmaps - 1);
2003        sun4c_init_mmu_entry_pool();
2004        sun4c_init_rings();
2005        sun4c_init_map_kernelprom(kernel_end);
2006        sun4c_init_clean_mmu(kernel_end);
2007        sun4c_init_fill_kernel_ring(SUN4C_KERNEL_BUCKETS);
2008        sun4c_init_lock_area(sparc_iomap.start, IOBASE_END);
2009        sun4c_init_lock_area(DVMA_VADDR, DVMA_END);
2010        sun4c_init_lock_areas();
2011        sun4c_init_fill_user_ring();
2012
2013        sun4c_set_context(0);
2014        memset(swapper_pg_dir, 0, PAGE_SIZE);
2015        memset(pg0, 0, PAGE_SIZE);
2016        memset(pg1, 0, PAGE_SIZE);
2017        memset(pg2, 0, PAGE_SIZE);
2018        memset(pg3, 0, PAGE_SIZE);
2019
2020        /* Save work later. */
2021        vaddr = VMALLOC_START;
2022        swapper_pg_dir[vaddr>>SUN4C_PGDIR_SHIFT] = __pgd(PGD_TABLE | (unsigned long) pg0);
2023        vaddr += SUN4C_PGDIR_SIZE;
2024        swapper_pg_dir[vaddr>>SUN4C_PGDIR_SHIFT] = __pgd(PGD_TABLE | (unsigned long) pg1);
2025        vaddr += SUN4C_PGDIR_SIZE;
2026        swapper_pg_dir[vaddr>>SUN4C_PGDIR_SHIFT] = __pgd(PGD_TABLE | (unsigned long) pg2);
2027        vaddr += SUN4C_PGDIR_SIZE;
2028        swapper_pg_dir[vaddr>>SUN4C_PGDIR_SHIFT] = __pgd(PGD_TABLE | (unsigned long) pg3);
2029        sun4c_init_ss2_cache_bug();
2030        sparc_context_init(num_contexts);
2031
2032        {
2033                unsigned long zones_size[MAX_NR_ZONES];
2034                unsigned long zholes_size[MAX_NR_ZONES];
2035                unsigned long npages;
2036                int znum;
2037
2038                for (znum = 0; znum < MAX_NR_ZONES; znum++)
2039                        zones_size[znum] = zholes_size[znum] = 0;
2040
2041                npages = max_low_pfn - (phys_base >> PAGE_SHIFT);
2042
2043                zones_size[ZONE_DMA] = npages;
2044                zholes_size[ZONE_DMA] = npages - pages_avail;
2045
2046                npages = highend_pfn - max_low_pfn;
2047                zones_size[ZONE_HIGHMEM] = npages;
2048                zholes_size[ZONE_HIGHMEM] = npages - calc_highpages();
2049
2050                free_area_init_node(0, NULL, NULL, zones_size,
2051                                    phys_base, zholes_size);
2052        }
2053
2054        cnt = 0;
2055        for (i = 0; i < num_segmaps; i++)
2056                if (mmu_entry_pool[i].locked)
2057                        cnt++;
2058
2059        max_user_taken_entries = num_segmaps - cnt - 40 - 1;
2060
2061        printk("SUN4C: %d mmu entries for the kernel\n", cnt);
2062}
2063
2064/* Load up routines and constants for sun4c mmu */
2065void __init ld_mmu_sun4c(void)
2066{
2067        extern void ___xchg32_sun4c(void);
2068        
2069        printk("Loading sun4c MMU routines\n");
2070
2071        /* First the constants */
2072        BTFIXUPSET_SIMM13(pmd_shift, SUN4C_PMD_SHIFT);
2073        BTFIXUPSET_SETHI(pmd_size, SUN4C_PMD_SIZE);
2074        BTFIXUPSET_SETHI(pmd_mask, SUN4C_PMD_MASK);
2075        BTFIXUPSET_SIMM13(pgdir_shift, SUN4C_PGDIR_SHIFT);
2076        BTFIXUPSET_SETHI(pgdir_size, SUN4C_PGDIR_SIZE);
2077        BTFIXUPSET_SETHI(pgdir_mask, SUN4C_PGDIR_MASK);
2078
2079        BTFIXUPSET_SIMM13(ptrs_per_pte, SUN4C_PTRS_PER_PTE);
2080        BTFIXUPSET_SIMM13(ptrs_per_pmd, SUN4C_PTRS_PER_PMD);
2081        BTFIXUPSET_SIMM13(ptrs_per_pgd, SUN4C_PTRS_PER_PGD);
2082        BTFIXUPSET_SIMM13(user_ptrs_per_pgd, KERNBASE / SUN4C_PGDIR_SIZE);
2083
2084        BTFIXUPSET_INT(page_none, pgprot_val(SUN4C_PAGE_NONE));
2085        BTFIXUPSET_INT(page_shared, pgprot_val(SUN4C_PAGE_SHARED));
2086        BTFIXUPSET_INT(page_copy, pgprot_val(SUN4C_PAGE_COPY));
2087        BTFIXUPSET_INT(page_readonly, pgprot_val(SUN4C_PAGE_READONLY));
2088        BTFIXUPSET_INT(page_kernel, pgprot_val(SUN4C_PAGE_KERNEL));
2089        page_kernel = pgprot_val(SUN4C_PAGE_KERNEL);
2090        pg_iobits = _SUN4C_PAGE_PRESENT | _SUN4C_READABLE | _SUN4C_WRITEABLE |
2091                    _SUN4C_PAGE_IO | _SUN4C_PAGE_NOCACHE;
2092        
2093        /* Functions */
2094        BTFIXUPSET_CALL(___xchg32, ___xchg32_sun4c, BTFIXUPCALL_NORM);
2095        BTFIXUPSET_CALL(do_check_pgt_cache, sun4c_check_pgt_cache, BTFIXUPCALL_NORM);
2096        
2097        BTFIXUPSET_CALL(flush_cache_all, sun4c_flush_cache_all, BTFIXUPCALL_NORM);
2098
2099        if (sun4c_vacinfo.do_hwflushes) {
2100                BTFIXUPSET_CALL(sun4c_flush_page, sun4c_flush_page_hw, BTFIXUPCALL_NORM);
2101                BTFIXUPSET_CALL(sun4c_flush_segment, sun4c_flush_segment_hw, BTFIXUPCALL_NORM);
2102                BTFIXUPSET_CALL(sun4c_flush_context, sun4c_flush_context_hw, BTFIXUPCALL_NORM);
2103        } else {
2104                BTFIXUPSET_CALL(sun4c_flush_page, sun4c_flush_page_sw, BTFIXUPCALL_NORM);
2105                BTFIXUPSET_CALL(sun4c_flush_segment, sun4c_flush_segment_sw, BTFIXUPCALL_NORM);
2106                BTFIXUPSET_CALL(sun4c_flush_context, sun4c_flush_context_sw, BTFIXUPCALL_NORM);
2107        }
2108
2109        BTFIXUPSET_CALL(flush_tlb_mm, sun4c_flush_tlb_mm, BTFIXUPCALL_NORM);
2110        BTFIXUPSET_CALL(flush_cache_mm, sun4c_flush_cache_mm, BTFIXUPCALL_NORM);
2111        BTFIXUPSET_CALL(destroy_context, sun4c_destroy_context, BTFIXUPCALL_NORM);
2112        BTFIXUPSET_CALL(switch_mm, sun4c_switch_mm, BTFIXUPCALL_NORM);
2113        BTFIXUPSET_CALL(flush_cache_page, sun4c_flush_cache_page, BTFIXUPCALL_NORM);
2114        BTFIXUPSET_CALL(flush_tlb_page, sun4c_flush_tlb_page, BTFIXUPCALL_NORM);
2115        BTFIXUPSET_CALL(flush_tlb_range, sun4c_flush_tlb_range, BTFIXUPCALL_NORM);
2116        BTFIXUPSET_CALL(flush_cache_range, sun4c_flush_cache_range, BTFIXUPCALL_NORM);
2117        BTFIXUPSET_CALL(free_task_struct, sun4c_free_task_struct, BTFIXUPCALL_NORM);
2118        BTFIXUPSET_CALL(__flush_page_to_ram, sun4c_flush_page_to_ram, BTFIXUPCALL_NORM);
2119        BTFIXUPSET_CALL(flush_tlb_all, sun4c_flush_tlb_all, BTFIXUPCALL_NORM);
2120
2121        BTFIXUPSET_CALL(flush_sig_insns, sun4c_flush_sig_insns, BTFIXUPCALL_NOP);
2122
2123        BTFIXUPSET_CALL(set_pte, sun4c_set_pte, BTFIXUPCALL_STO1O0);
2124
2125        BTFIXUPSET_CALL(pte_page, sun4c_pte_page, BTFIXUPCALL_NORM);
2126#if PAGE_SHIFT <= 12    
2127        BTFIXUPSET_CALL(pmd_page, sun4c_pmd_page, BTFIXUPCALL_ANDNINT(PAGE_SIZE - 1));
2128#else
2129        BTFIXUPSET_CALL(pmd_page, sun4c_pmd_page, BTFIXUPCALL_NORM);
2130#endif
2131        BTFIXUPSET_CALL(pmd_set, sun4c_pmd_set, BTFIXUPCALL_NORM);
2132
2133        BTFIXUPSET_CALL(pte_present, sun4c_pte_present, BTFIXUPCALL_NORM);
2134        BTFIXUPSET_CALL(pte_clear, sun4c_pte_clear, BTFIXUPCALL_STG0O0);
2135
2136        BTFIXUPSET_CALL(pmd_bad, sun4c_pmd_bad, BTFIXUPCALL_NORM);
2137        BTFIXUPSET_CALL(pmd_present, sun4c_pmd_present, BTFIXUPCALL_NORM);
2138        BTFIXUPSET_CALL(pmd_clear, sun4c_pmd_clear, BTFIXUPCALL_STG0O0);
2139
2140        BTFIXUPSET_CALL(pgd_none, sun4c_pgd_none, BTFIXUPCALL_RETINT(0));
2141        BTFIXUPSET_CALL(pgd_bad, sun4c_pgd_bad, BTFIXUPCALL_RETINT(0));
2142        BTFIXUPSET_CALL(pgd_present, sun4c_pgd_present, BTFIXUPCALL_RETINT(1));
2143        BTFIXUPSET_CALL(pgd_clear, sun4c_pgd_clear, BTFIXUPCALL_NOP);
2144
2145        BTFIXUPSET_CALL(mk_pte, sun4c_mk_pte, BTFIXUPCALL_NORM);
2146        BTFIXUPSET_CALL(mk_pte_phys, sun4c_mk_pte_phys, BTFIXUPCALL_NORM);
2147        BTFIXUPSET_CALL(mk_pte_io, sun4c_mk_pte_io, BTFIXUPCALL_NORM);
2148        
2149        BTFIXUPSET_INT(pte_modify_mask, _SUN4C_PAGE_CHG_MASK);
2150        BTFIXUPSET_CALL(pmd_offset, sun4c_pmd_offset, BTFIXUPCALL_NORM);
2151        BTFIXUPSET_CALL(pte_offset, sun4c_pte_offset, BTFIXUPCALL_NORM);
2152        BTFIXUPSET_CALL(free_pte_fast, sun4c_free_pte_fast, BTFIXUPCALL_NORM);
2153        BTFIXUPSET_CALL(pte_alloc_one, sun4c_pte_alloc_one, BTFIXUPCALL_NORM);
2154        BTFIXUPSET_CALL(pte_alloc_one_fast, sun4c_pte_alloc_one_fast, BTFIXUPCALL_NORM);
2155        BTFIXUPSET_CALL(free_pmd_fast, sun4c_free_pmd_fast, BTFIXUPCALL_NOP);
2156        BTFIXUPSET_CALL(pmd_alloc_one_fast, sun4c_pmd_alloc_one_fast, BTFIXUPCALL_RETO0);
2157        BTFIXUPSET_CALL(free_pgd_fast, sun4c_free_pgd_fast, BTFIXUPCALL_NORM);
2158        BTFIXUPSET_CALL(get_pgd_fast, sun4c_get_pgd_fast, BTFIXUPCALL_NORM);
2159
2160        BTFIXUPSET_HALF(pte_writei, _SUN4C_PAGE_WRITE);
2161        BTFIXUPSET_HALF(pte_dirtyi, _SUN4C_PAGE_MODIFIED);
2162        BTFIXUPSET_HALF(pte_youngi, _SUN4C_PAGE_ACCESSED);
2163        BTFIXUPSET_HALF(pte_wrprotecti, _SUN4C_PAGE_WRITE|_SUN4C_PAGE_SILENT_WRITE);
2164        BTFIXUPSET_HALF(pte_mkcleani, _SUN4C_PAGE_MODIFIED|_SUN4C_PAGE_SILENT_WRITE);
2165        BTFIXUPSET_HALF(pte_mkoldi, _SUN4C_PAGE_ACCESSED|_SUN4C_PAGE_SILENT_READ);
2166        BTFIXUPSET_CALL(pte_mkwrite, sun4c_pte_mkwrite, BTFIXUPCALL_NORM);
2167        BTFIXUPSET_CALL(pte_mkdirty, sun4c_pte_mkdirty, BTFIXUPCALL_NORM);
2168        BTFIXUPSET_CALL(pte_mkyoung, sun4c_pte_mkyoung, BTFIXUPCALL_NORM);
2169        BTFIXUPSET_CALL(update_mmu_cache, sun4c_update_mmu_cache, BTFIXUPCALL_NORM);
2170
2171        BTFIXUPSET_CALL(mmu_lockarea, sun4c_lockarea, BTFIXUPCALL_NORM);
2172        BTFIXUPSET_CALL(mmu_unlockarea, sun4c_unlockarea, BTFIXUPCALL_NORM);
2173
2174        BTFIXUPSET_CALL(mmu_get_scsi_one, sun4c_get_scsi_one, BTFIXUPCALL_NORM);
2175        BTFIXUPSET_CALL(mmu_get_scsi_sgl, sun4c_get_scsi_sgl, BTFIXUPCALL_NORM);
2176        BTFIXUPSET_CALL(mmu_release_scsi_one, sun4c_release_scsi_one, BTFIXUPCALL_NORM);
2177        BTFIXUPSET_CALL(mmu_release_scsi_sgl, sun4c_release_scsi_sgl, BTFIXUPCALL_NORM);
2178
2179        BTFIXUPSET_CALL(mmu_map_dma_area, sun4c_map_dma_area, BTFIXUPCALL_NORM);
2180        BTFIXUPSET_CALL(mmu_unmap_dma_area, sun4c_unmap_dma_area, BTFIXUPCALL_NORM);
2181        BTFIXUPSET_CALL(mmu_translate_dvma, sun4c_translate_dvma, BTFIXUPCALL_NORM);
2182
2183        /* Task struct and kernel stack allocating/freeing. */
2184        BTFIXUPSET_CALL(alloc_task_struct, sun4c_alloc_task_struct, BTFIXUPCALL_NORM);
2185        BTFIXUPSET_CALL(get_task_struct, sun4c_get_task_struct, BTFIXUPCALL_NORM);
2186
2187        BTFIXUPSET_CALL(mmu_info, sun4c_mmu_info, BTFIXUPCALL_NORM);
2188
2189        /* These should _never_ get called with two level tables. */
2190        BTFIXUPSET_CALL(pgd_set, sun4c_pgd_set, BTFIXUPCALL_NOP);
2191        BTFIXUPSET_CALL(pgd_page, sun4c_pgd_page, BTFIXUPCALL_RETO0);
2192}
2193
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