Home | History | Annotate | Download | only in vm
      1 /*
      2  * CDDL HEADER START
      3  *
      4  * The contents of this file are subject to the terms of the
      5  * Common Development and Distribution License (the "License").
      6  * You may not use this file except in compliance with the License.
      7  *
      8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
      9  * or http://www.opensolaris.org/os/licensing.
     10  * See the License for the specific language governing permissions
     11  * and limitations under the License.
     12  *
     13  * When distributing Covered Code, include this CDDL HEADER in each
     14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
     15  * If applicable, add the following below this CDDL HEADER, with the
     16  * fields enclosed by brackets "[]" replaced with your own identifying
     17  * information: Portions Copyright [yyyy] [name of copyright owner]
     18  *
     19  * CDDL HEADER END
     20  */
     21 /*
     22  * Copyright 2008 Sun Microsystems, Inc.  All rights reserved.
     23  * Use is subject to license terms.
     24  */
     25 
     26 /*
     27  * UNIX machine dependent virtual memory support.
     28  */
     29 
     30 #ifndef	_VM_DEP_H
     31 #define	_VM_DEP_H
     32 
     33 
     34 #ifdef	__cplusplus
     35 extern "C" {
     36 #endif
     37 
     38 #include <sys/clock.h>
     39 #include <vm/hat_pte.h>
     40 #include <sys/param.h>
     41 #include <sys/memnode.h>
     42 
     43 /*
     44  * WARNING: vm_dep.h is included by files in common.
     45  */
     46 
     47 #define	GETTICK()	tsc_read()
     48 /*
     49  * Do not use this function for obtaining clock tick.  This
     50  * is called by callers who do not need to have a guarenteed
     51  * correct tick value.  The proper routine to use is tsc_read().
     52  */
     53 
     54 extern hrtime_t		randtick();
     55 extern uint_t page_create_update_flags_x86(uint_t);
     56 
     57 extern size_t plcnt_sz(size_t);
     58 #define	PLCNT_SZ(ctrs_sz) (ctrs_sz = plcnt_sz(ctrs_sz))
     59 
     60 extern caddr_t plcnt_init(caddr_t);
     61 #define	PLCNT_INIT(addr) (addr = plcnt_init(addr))
     62 
     63 extern void plcnt_inc_dec(page_t *, int, int, long, int);
     64 #define	PLCNT_INCR(pp, mnode, mtype, szc, flags)			\
     65 	plcnt_inc_dec(pp, mtype, szc, 1l << PAGE_BSZS_SHIFT(szc), flags)
     66 #define	PLCNT_DECR(pp, mnode, mtype, szc, flags)			\
     67 	plcnt_inc_dec(pp, mtype, szc, -1l << PAGE_BSZS_SHIFT(szc), flags)
     68 
     69 /*
     70  * macro to update page list max counts.  no-op on x86.
     71  */
     72 #define	PLCNT_XFER_NORELOC(pp)
     73 
     74 #define	PLCNT_MODIFY_MAX(pfn, cnt)	mtype_modify_max(pfn, (pgcnt_t)cnt)
     75 extern int memrange_num(pfn_t);
     76 extern int pfn_2_mtype(pfn_t);
     77 extern int mtype_func(int, int, uint_t);
     78 extern void mtype_modify_max(pfn_t, long);
     79 extern int mnode_pgcnt(int);
     80 extern int mnode_range_cnt(int);
     81 
     82 /*
     83  * candidate counters in vm_pagelist.c are indexed by color and range
     84  */
     85 #define	NUM_MEM_RANGES	4		/* memory range types */
     86 #define	MAX_MNODE_MRANGES	NUM_MEM_RANGES
     87 #define	MNODE_RANGE_CNT(mnode)	mnode_range_cnt(mnode)
     88 #define	MNODE_MAX_MRANGE(mnode)	memrange_num(mem_node_config[mnode].physbase)
     89 
     90 /*
     91  * This was really badly defined, it implicitly uses mnode_maxmrange[]
     92  * which is a static in vm_pagelist.c
     93  */
     94 extern int mtype_2_mrange(int);
     95 #define	MTYPE_2_MRANGE(mnode, mtype)	\
     96 	(mnode_maxmrange[mnode] - mtype_2_mrange(mtype))
     97 
     98 /*
     99  * Per page size free lists. Allocated dynamically.
    100  * dimensions [mtype][mmu_page_sizes][colors]
    101  *
    102  * mtype specifies a physical memory range with a unique mnode.
    103  */
    104 
    105 extern page_t ****page_freelists;
    106 
    107 #define	PAGE_FREELISTS(mnode, szc, color, mtype)		\
    108 	(*(page_freelists[mtype][szc] + (color)))
    109 
    110 /*
    111  * For now there is only a single size cache list. Allocated dynamically.
    112  * dimensions [mtype][colors]
    113  *
    114  * mtype specifies a physical memory range with a unique mnode.
    115  */
    116 extern page_t ***page_cachelists;
    117 
    118 #define	PAGE_CACHELISTS(mnode, color, mtype) 		\
    119 	(*(page_cachelists[mtype] + (color)))
    120 
    121 /*
    122  * There are mutexes for both the page freelist
    123  * and the page cachelist.  We want enough locks to make contention
    124  * reasonable, but not too many -- otherwise page_freelist_lock() gets
    125  * so expensive that it becomes the bottleneck!
    126  */
    127 
    128 #define	NPC_MUTEX	16
    129 
    130 extern kmutex_t	*fpc_mutex[NPC_MUTEX];
    131 extern kmutex_t	*cpc_mutex[NPC_MUTEX];
    132 
    133 extern page_t *page_get_mnode_freelist(int, uint_t, int, uchar_t, uint_t);
    134 extern page_t *page_get_mnode_cachelist(uint_t, uint_t, int, int);
    135 
    136 /* mem node iterator is not used on x86 */
    137 #define	MEM_NODE_ITERATOR_DECL(it)
    138 #define	MEM_NODE_ITERATOR_INIT(pfn, mnode, szc, it)
    139 
    140 /*
    141  * interleaved_mnodes mode is never set on x86, therefore,
    142  * simply return the limits of the given mnode, which then
    143  * determines the length of hpm_counters array for the mnode.
    144  */
    145 #define	HPM_COUNTERS_LIMITS(mnode, physbase, physmax, first) 	\
    146 	{							\
    147 		(physbase) = mem_node_config[(mnode)].physbase;	\
    148 		(physmax) = mem_node_config[(mnode)].physmax;	\
    149 		(first) = (mnode);				\
    150 	}
    151 
    152 #define	PAGE_CTRS_WRITE_LOCK(mnode)				\
    153 	{							\
    154 		rw_enter(&page_ctrs_rwlock[(mnode)], RW_WRITER);\
    155 		page_freelist_lock(mnode);			\
    156 	}
    157 
    158 #define	PAGE_CTRS_WRITE_UNLOCK(mnode)				\
    159 	{							\
    160 		page_freelist_unlock(mnode);			\
    161 		rw_exit(&page_ctrs_rwlock[(mnode)]);		\
    162 	}
    163 
    164 #define	PAGE_GET_COLOR_SHIFT(szc, nszc)				\
    165 	    (hw_page_array[(nszc)].hp_shift - hw_page_array[(szc)].hp_shift)
    166 
    167 #define	PAGE_CONVERT_COLOR(ncolor, szc, nszc)			\
    168 	    ((ncolor) << PAGE_GET_COLOR_SHIFT((szc), (nszc)))
    169 
    170 #define	PFN_2_COLOR(pfn, szc, it)					\
    171 	(((pfn) & page_colors_mask) >>			                \
    172 	(hw_page_array[szc].hp_shift - hw_page_array[0].hp_shift))
    173 
    174 #define	PNUM_SIZE(szc)							\
    175 	(hw_page_array[(szc)].hp_pgcnt)
    176 #define	PNUM_SHIFT(szc)							\
    177 	(hw_page_array[(szc)].hp_shift - hw_page_array[0].hp_shift)
    178 #define	PAGE_GET_SHIFT(szc)						\
    179 	(hw_page_array[(szc)].hp_shift)
    180 #define	PAGE_GET_PAGECOLORS(szc)					\
    181 	(hw_page_array[(szc)].hp_colors)
    182 
    183 /*
    184  * This macro calculates the next sequential pfn with the specified
    185  * color using color equivalency mask
    186  */
    187 #define	PAGE_NEXT_PFN_FOR_COLOR(pfn, szc, color, ceq_mask, color_mask, it)    \
    188 	{								      \
    189 		uint_t	pfn_shift = PAGE_BSZS_SHIFT(szc);                     \
    190 		pfn_t	spfn = pfn >> pfn_shift;                              \
    191 		pfn_t	stride = (ceq_mask) + 1;                              \
    192 		ASSERT(((color) & ~(ceq_mask)) == 0);                         \
    193 		ASSERT((((ceq_mask) + 1) & (ceq_mask)) == 0);                 \
    194 		if (((spfn ^ (color)) & (ceq_mask)) == 0) {                   \
    195 			pfn += stride << pfn_shift;                           \
    196 		} else {                                                      \
    197 			pfn = (spfn & ~(pfn_t)(ceq_mask)) | (color);          \
    198 			pfn = (pfn > spfn ? pfn : pfn + stride) << pfn_shift; \
    199 		}                                                             \
    200 	}
    201 
    202 /* get the color equivalency mask for the next szc */
    203 #define	PAGE_GET_NSZ_MASK(szc, mask)                                         \
    204 	((mask) >> (PAGE_GET_SHIFT((szc) + 1) - PAGE_GET_SHIFT(szc)))
    205 
    206 /* get the color of the next szc */
    207 #define	PAGE_GET_NSZ_COLOR(szc, color)                                       \
    208 	((color) >> (PAGE_GET_SHIFT((szc) + 1) - PAGE_GET_SHIFT(szc)))
    209 
    210 /* Find the bin for the given page if it was of size szc */
    211 #define	PP_2_BIN_SZC(pp, szc)	(PFN_2_COLOR(pp->p_pagenum, szc, NULL))
    212 
    213 #define	PP_2_BIN(pp)		(PP_2_BIN_SZC(pp, pp->p_szc))
    214 
    215 #define	PP_2_MEM_NODE(pp)	(PFN_2_MEM_NODE(pp->p_pagenum))
    216 #define	PP_2_MTYPE(pp)		(pfn_2_mtype(pp->p_pagenum))
    217 #define	PP_2_SZC(pp)		(pp->p_szc)
    218 
    219 #define	SZCPAGES(szc)		(1 << PAGE_BSZS_SHIFT(szc))
    220 #define	PFN_BASE(pfnum, szc)	(pfnum & ~(SZCPAGES(szc) - 1))
    221 
    222 /*
    223  * this structure is used for walking free page lists
    224  * controls when to split large pages into smaller pages,
    225  * and when to coalesce smaller pages into larger pages
    226  */
    227 typedef struct page_list_walker {
    228 	uint_t	plw_colors;		/* num of colors for szc */
    229 	uint_t  plw_color_mask;		/* colors-1 */
    230 	uint_t	plw_bin_step;		/* next bin: 1 or 2 */
    231 	uint_t  plw_count;		/* loop count */
    232 	uint_t	plw_bin0;		/* starting bin */
    233 	uint_t  plw_bin_marker;		/* bin after initial jump */
    234 	uint_t  plw_bin_split_prev;	/* last bin we tried to split */
    235 	uint_t  plw_do_split;		/* set if OK to split */
    236 	uint_t  plw_split_next;		/* next bin to split */
    237 	uint_t	plw_ceq_dif;		/* number of different color groups */
    238 					/* to check */
    239 	uint_t	plw_ceq_mask[MMU_PAGE_SIZES + 1]; /* color equiv mask */
    240 	uint_t	plw_bins[MMU_PAGE_SIZES + 1];	/* num of bins */
    241 } page_list_walker_t;
    242 
    243 void	page_list_walk_init(uchar_t szc, uint_t flags, uint_t bin,
    244     int can_split, int use_ceq, page_list_walker_t *plw);
    245 
    246 uint_t	page_list_walk_next_bin(uchar_t szc, uint_t bin,
    247     page_list_walker_t *plw);
    248 
    249 extern struct cpu	cpus[];
    250 #define	CPU0		cpus
    251 
    252 extern int mtype_init(vnode_t *, caddr_t, uint_t *, size_t);
    253 #define	MTYPE_INIT(mtype, vp, vaddr, flags, pgsz)		\
    254 	(mtype = mtype_init(vp, vaddr, &(flags), pgsz))
    255 
    256 /*
    257  * macros to loop through the mtype range (page_get_mnode_{free,cache,any}list,
    258  * and page_get_contig_pages)
    259  *
    260  * MTYPE_START sets the initial mtype. -1 if the mtype range specified does
    261  * not contain mnode.
    262  *
    263  * MTYPE_NEXT sets the next mtype. -1 if there are no more valid
    264  * mtype in the range.
    265  */
    266 
    267 #define	MTYPE_START(mnode, mtype, flags)				\
    268 	(mtype = mtype_func(mnode, mtype, flags))
    269 
    270 #define	MTYPE_NEXT(mnode, mtype, flags) {				\
    271 	if (flags & PGI_MT_RANGE) {					\
    272 		mtype = mtype_func(mnode, mtype, flags | PGI_MT_NEXT);	\
    273 	} else {							\
    274 		mtype = -1;						\
    275 	}								\
    276 }
    277 
    278 extern int mtype_pgr_init(int *, page_t *, int, pgcnt_t);
    279 #define	MTYPE_PGR_INIT(mtype, flags, pp, mnode, pgcnt)			\
    280 	(mtype = mtype_pgr_init(&flags, pp, mnode, pgcnt))
    281 
    282 #define	MNODE_PGCNT(mnode)		mnode_pgcnt(mnode)
    283 
    284 extern void mnodetype_2_pfn(int, int, pfn_t *, pfn_t *);
    285 #define	MNODETYPE_2_PFN(mnode, mtype, pfnlo, pfnhi)			\
    286 	mnodetype_2_pfn(mnode, mtype, &pfnlo, &pfnhi)
    287 
    288 #define	PC_BIN_MUTEX(mnode, bin, flags) ((flags & PG_FREE_LIST) ?	\
    289 	&fpc_mutex[(bin) & (NPC_MUTEX - 1)][mnode] :			\
    290 	&cpc_mutex[(bin) & (NPC_MUTEX - 1)][mnode])
    291 
    292 #define	FPC_MUTEX(mnode, i)	(&fpc_mutex[i][mnode])
    293 #define	CPC_MUTEX(mnode, i)	(&cpc_mutex[i][mnode])
    294 
    295 #ifdef DEBUG
    296 #define	CHK_LPG(pp, szc)	chk_lpg(pp, szc)
    297 extern void	chk_lpg(page_t *, uchar_t);
    298 #else
    299 #define	CHK_LPG(pp, szc)
    300 #endif
    301 
    302 #define	FULL_REGION_CNT(rg_szc)	\
    303 	(LEVEL_SIZE(rg_szc) >> LEVEL_SHIFT(rg_szc - 1))
    304 
    305 /* Return the leader for this mapping size */
    306 #define	PP_GROUPLEADER(pp, szc) \
    307 	(&(pp)[-(int)((pp)->p_pagenum & (SZCPAGES(szc)-1))])
    308 
    309 /* Return the root page for this page based on p_szc */
    310 #define	PP_PAGEROOT(pp) ((pp)->p_szc == 0 ? (pp) : \
    311 	PP_GROUPLEADER((pp), (pp)->p_szc))
    312 
    313 /*
    314  * The counter base must be per page_counter element to prevent
    315  * races when re-indexing, and the base page size element should
    316  * be aligned on a boundary of the given region size.
    317  *
    318  * We also round up the number of pages spanned by the counters
    319  * for a given region to PC_BASE_ALIGN in certain situations to simplify
    320  * the coding for some non-performance critical routines.
    321  */
    322 
    323 #define	PC_BASE_ALIGN		((pfn_t)1 << PAGE_BSZS_SHIFT(MMU_PAGE_SIZES-1))
    324 #define	PC_BASE_ALIGN_MASK	(PC_BASE_ALIGN - 1)
    325 
    326 /*
    327  * cpu/mmu-dependent vm variables
    328  */
    329 extern uint_t mmu_page_sizes;
    330 extern uint_t mmu_exported_page_sizes;
    331 /*
    332  * page sizes that legacy applications can see via getpagesizes(3c).
    333  * Used to prevent legacy applications from inadvertantly using the
    334  * 'new' large pagesizes (1g and above).
    335  */
    336 extern uint_t mmu_legacy_page_sizes;
    337 
    338 /* For x86, userszc is the same as the kernel's szc */
    339 #define	USERSZC_2_SZC(userszc)	(userszc)
    340 #define	SZC_2_USERSZC(szc)	(szc)
    341 
    342 /*
    343  * for hw_page_map_t, sized to hold the ratio of large page to base
    344  * pagesize (1024 max)
    345  */
    346 typedef	short	hpmctr_t;
    347 
    348 /*
    349  * get the setsize of the current cpu - assume homogenous for x86
    350  */
    351 extern int	l2cache_sz, l2cache_linesz, l2cache_assoc;
    352 
    353 #define	L2CACHE_ALIGN		l2cache_linesz
    354 #define	L2CACHE_ALIGN_MAX	64
    355 #define	CPUSETSIZE()		\
    356 	(l2cache_assoc ? (l2cache_sz / l2cache_assoc) : MMU_PAGESIZE)
    357 
    358 /*
    359  * Return the log2(pagesize(szc) / MMU_PAGESIZE) --- or the shift count
    360  * for the number of base pages in this pagesize
    361  */
    362 #define	PAGE_BSZS_SHIFT(szc) (LEVEL_SHIFT(szc) - MMU_PAGESHIFT)
    363 
    364 /*
    365  * Internal PG_ flags.
    366  */
    367 #define	PGI_RELOCONLY	0x010000	/* opposite of PG_NORELOC */
    368 #define	PGI_NOCAGE	0x020000	/* cage is disabled */
    369 #define	PGI_PGCPHIPRI	0x040000	/* page_get_contig_page pri alloc */
    370 #define	PGI_PGCPSZC0	0x080000	/* relocate base pagesize page */
    371 
    372 /*
    373  * PGI range flags - should not overlap PGI flags
    374  */
    375 #define	PGI_MT_RANGE0	0x1000000	/* mtype range to 0 */
    376 #define	PGI_MT_RANGE16M 0x2000000	/* mtype range to 16m */
    377 #define	PGI_MT_RANGE4G	0x4000000	/* mtype range to 4g */
    378 #define	PGI_MT_NEXT	0x8000000	/* get next mtype */
    379 #define	PGI_MT_RANGE	(PGI_MT_RANGE0 | PGI_MT_RANGE16M | PGI_MT_RANGE4G)
    380 
    381 
    382 /*
    383  * Maximum and default values for user heap, stack, private and shared
    384  * anonymous memory, and user text and initialized data.
    385  * Used by map_pgsz*() routines.
    386  */
    387 extern size_t max_uheap_lpsize;
    388 extern size_t default_uheap_lpsize;
    389 extern size_t max_ustack_lpsize;
    390 extern size_t default_ustack_lpsize;
    391 extern size_t max_privmap_lpsize;
    392 extern size_t max_uidata_lpsize;
    393 extern size_t max_utext_lpsize;
    394 extern size_t max_shm_lpsize;
    395 extern size_t mcntl0_lpsize;
    396 
    397 /*
    398  * Sanity control. Don't use large pages regardless of user
    399  * settings if there's less than priv or shm_lpg_min_physmem memory installed.
    400  * The units for this variable are 8K pages.
    401  */
    402 extern pgcnt_t privm_lpg_min_physmem;
    403 extern pgcnt_t shm_lpg_min_physmem;
    404 
    405 /*
    406  * hash as and addr to get a bin.
    407  */
    408 
    409 #define	AS_2_BIN(as, seg, vp, addr, bin, szc)				    \
    410 	bin = (((((uintptr_t)(addr) >> PAGESHIFT) + ((uintptr_t)(as) >> 4)) \
    411 	    & page_colors_mask) >>					    \
    412 	    (hw_page_array[szc].hp_shift - hw_page_array[0].hp_shift))
    413 
    414 /*
    415  * cpu private vm data - accessed thru CPU->cpu_vm_data
    416  *	vc_pnum_memseg: tracks last memseg visited in page_numtopp_nolock()
    417  *	vc_pnext_memseg: tracks last memseg visited in page_nextn()
    418  *	vc_kmptr: orignal unaligned kmem pointer for this vm_cpu_data_t
    419  *	vc_kmsize: orignal kmem size for this vm_cpu_data_t
    420  */
    421 
    422 typedef struct {
    423 	struct memseg	*vc_pnum_memseg;
    424 	struct memseg	*vc_pnext_memseg;
    425 	void		*vc_kmptr;
    426 	size_t		vc_kmsize;
    427 } vm_cpu_data_t;
    428 
    429 /* allocation size to ensure vm_cpu_data_t resides in its own cache line */
    430 #define	VM_CPU_DATA_PADSIZE						\
    431 	(P2ROUNDUP(sizeof (vm_cpu_data_t), L2CACHE_ALIGN_MAX))
    432 
    433 /* for boot cpu before kmem is initialized */
    434 extern char	vm_cpu_data0[];
    435 
    436 /*
    437  * When a bin is empty, and we can't satisfy a color request correctly,
    438  * we scan.  If we assume that the programs have reasonable spatial
    439  * behavior, then it will not be a good idea to use the adjacent color.
    440  * Using the adjacent color would result in virtually adjacent addresses
    441  * mapping into the same spot in the cache.  So, if we stumble across
    442  * an empty bin, skip a bunch before looking.  After the first skip,
    443  * then just look one bin at a time so we don't miss our cache on
    444  * every look. Be sure to check every bin.  Page_create() will panic
    445  * if we miss a page.
    446  *
    447  * This also explains the `<=' in the for loops in both page_get_freelist()
    448  * and page_get_cachelist().  Since we checked the target bin, skipped
    449  * a bunch, then continued one a time, we wind up checking the target bin
    450  * twice to make sure we get all of them bins.
    451  */
    452 #define	BIN_STEP	19
    453 
    454 #ifdef VM_STATS
    455 struct vmm_vmstats_str {
    456 	ulong_t pgf_alloc[MMU_PAGE_SIZES];	/* page_get_freelist */
    457 	ulong_t pgf_allocok[MMU_PAGE_SIZES];
    458 	ulong_t pgf_allocokrem[MMU_PAGE_SIZES];
    459 	ulong_t pgf_allocfailed[MMU_PAGE_SIZES];
    460 	ulong_t	pgf_allocdeferred;
    461 	ulong_t	pgf_allocretry[MMU_PAGE_SIZES];
    462 	ulong_t pgc_alloc;			/* page_get_cachelist */
    463 	ulong_t pgc_allocok;
    464 	ulong_t pgc_allocokrem;
    465 	ulong_t pgc_allocokdeferred;
    466 	ulong_t pgc_allocfailed;
    467 	ulong_t	pgcp_alloc[MMU_PAGE_SIZES];	/* page_get_contig_pages */
    468 	ulong_t	pgcp_allocfailed[MMU_PAGE_SIZES];
    469 	ulong_t	pgcp_allocempty[MMU_PAGE_SIZES];
    470 	ulong_t	pgcp_allocok[MMU_PAGE_SIZES];
    471 	ulong_t	ptcp[MMU_PAGE_SIZES];		/* page_trylock_contig_pages */
    472 	ulong_t	ptcpfreethresh[MMU_PAGE_SIZES];
    473 	ulong_t	ptcpfailexcl[MMU_PAGE_SIZES];
    474 	ulong_t	ptcpfailszc[MMU_PAGE_SIZES];
    475 	ulong_t	ptcpfailcage[MMU_PAGE_SIZES];
    476 	ulong_t	ptcpok[MMU_PAGE_SIZES];
    477 	ulong_t	pgmf_alloc[MMU_PAGE_SIZES];	/* page_get_mnode_freelist */
    478 	ulong_t	pgmf_allocfailed[MMU_PAGE_SIZES];
    479 	ulong_t	pgmf_allocempty[MMU_PAGE_SIZES];
    480 	ulong_t	pgmf_allocok[MMU_PAGE_SIZES];
    481 	ulong_t	pgmc_alloc;			/* page_get_mnode_cachelist */
    482 	ulong_t	pgmc_allocfailed;
    483 	ulong_t	pgmc_allocempty;
    484 	ulong_t	pgmc_allocok;
    485 	ulong_t	pladd_free[MMU_PAGE_SIZES];	/* page_list_add/sub */
    486 	ulong_t	plsub_free[MMU_PAGE_SIZES];
    487 	ulong_t	pladd_cache;
    488 	ulong_t	plsub_cache;
    489 	ulong_t	plsubpages_szcbig;
    490 	ulong_t	plsubpages_szc0;
    491 	ulong_t	pfs_req[MMU_PAGE_SIZES];	/* page_freelist_split */
    492 	ulong_t	pfs_demote[MMU_PAGE_SIZES];
    493 	ulong_t	pfc_coalok[MMU_PAGE_SIZES][MAX_MNODE_MRANGES];
    494 	ulong_t	ppr_reloc[MMU_PAGE_SIZES];	/* page_relocate */
    495 	ulong_t ppr_relocnoroot[MMU_PAGE_SIZES];
    496 	ulong_t ppr_reloc_replnoroot[MMU_PAGE_SIZES];
    497 	ulong_t ppr_relocnolock[MMU_PAGE_SIZES];
    498 	ulong_t ppr_relocnomem[MMU_PAGE_SIZES];
    499 	ulong_t ppr_relocok[MMU_PAGE_SIZES];
    500 	ulong_t ppr_copyfail;
    501 	/* page coalesce counter */
    502 	ulong_t page_ctrs_coalesce[MMU_PAGE_SIZES][MAX_MNODE_MRANGES];
    503 	/* candidates useful */
    504 	ulong_t page_ctrs_cands_skip[MMU_PAGE_SIZES][MAX_MNODE_MRANGES];
    505 	/* ctrs changed after locking */
    506 	ulong_t page_ctrs_changed[MMU_PAGE_SIZES][MAX_MNODE_MRANGES];
    507 	/* page_freelist_coalesce failed */
    508 	ulong_t page_ctrs_failed[MMU_PAGE_SIZES][MAX_MNODE_MRANGES];
    509 	ulong_t page_ctrs_coalesce_all;	/* page coalesce all counter */
    510 	ulong_t page_ctrs_cands_skip_all; /* candidates useful for all func */
    511 	ulong_t	restrict4gcnt;
    512 	ulong_t	unrestrict16mcnt;	/* non-DMA 16m allocs allowed */
    513 	ulong_t	pgpanicalloc;		/* PG_PANIC allocation */
    514 	ulong_t	pcf_deny[MMU_PAGE_SIZES];	/* page_chk_freelist */
    515 	ulong_t	pcf_allow[MMU_PAGE_SIZES];
    516 };
    517 extern struct vmm_vmstats_str vmm_vmstats;
    518 #endif	/* VM_STATS */
    519 
    520 extern size_t page_ctrs_sz(void);
    521 extern caddr_t page_ctrs_alloc(caddr_t);
    522 extern void page_ctr_sub(int, int, page_t *, int);
    523 extern page_t *page_freelist_split(uchar_t,
    524     uint_t, int, int, pfn_t, pfn_t, page_list_walker_t *);
    525 extern page_t *page_freelist_coalesce(int, uchar_t, uint_t, uint_t, int,
    526     pfn_t);
    527 extern uint_t page_get_pagecolors(uint_t);
    528 extern void pfnzero(pfn_t, uint_t, uint_t);
    529 
    530 #ifdef	__cplusplus
    531 }
    532 #endif
    533 
    534 #endif	/* _VM_DEP_H */
    535