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drm_mm.c revision 1.7
      1  1.7  riastrad /*	$NetBSD: drm_mm.c,v 1.7 2021/12/18 23:44:57 riastradh Exp $	*/
      2  1.4  riastrad 
      3  1.1  riastrad /**************************************************************************
      4  1.1  riastrad  *
      5  1.1  riastrad  * Copyright 2006 Tungsten Graphics, Inc., Bismarck, ND., USA.
      6  1.7  riastrad  * Copyright 2016 Intel Corporation
      7  1.1  riastrad  * All Rights Reserved.
      8  1.1  riastrad  *
      9  1.1  riastrad  * Permission is hereby granted, free of charge, to any person obtaining a
     10  1.1  riastrad  * copy of this software and associated documentation files (the
     11  1.1  riastrad  * "Software"), to deal in the Software without restriction, including
     12  1.1  riastrad  * without limitation the rights to use, copy, modify, merge, publish,
     13  1.1  riastrad  * distribute, sub license, and/or sell copies of the Software, and to
     14  1.1  riastrad  * permit persons to whom the Software is furnished to do so, subject to
     15  1.1  riastrad  * the following conditions:
     16  1.1  riastrad  *
     17  1.1  riastrad  * The above copyright notice and this permission notice (including the
     18  1.1  riastrad  * next paragraph) shall be included in all copies or substantial portions
     19  1.1  riastrad  * of the Software.
     20  1.1  riastrad  *
     21  1.1  riastrad  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
     22  1.1  riastrad  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
     23  1.1  riastrad  * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
     24  1.1  riastrad  * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM,
     25  1.1  riastrad  * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
     26  1.1  riastrad  * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
     27  1.1  riastrad  * USE OR OTHER DEALINGS IN THE SOFTWARE.
     28  1.1  riastrad  *
     29  1.1  riastrad  *
     30  1.1  riastrad  **************************************************************************/
     31  1.1  riastrad 
     32  1.1  riastrad /*
     33  1.1  riastrad  * Generic simple memory manager implementation. Intended to be used as a base
     34  1.1  riastrad  * class implementation for more advanced memory managers.
     35  1.1  riastrad  *
     36  1.1  riastrad  * Note that the algorithm used is quite simple and there might be substantial
     37  1.7  riastrad  * performance gains if a smarter free list is implemented. Currently it is
     38  1.7  riastrad  * just an unordered stack of free regions. This could easily be improved if
     39  1.7  riastrad  * an RB-tree is used instead. At least if we expect heavy fragmentation.
     40  1.1  riastrad  *
     41  1.1  riastrad  * Aligned allocations can also see improvement.
     42  1.1  riastrad  *
     43  1.1  riastrad  * Authors:
     44  1.1  riastrad  * Thomas Hellstrm <thomas-at-tungstengraphics-dot-com>
     45  1.1  riastrad  */
     46  1.1  riastrad 
     47  1.4  riastrad #include <sys/cdefs.h>
     48  1.7  riastrad __KERNEL_RCSID(0, "$NetBSD: drm_mm.c,v 1.7 2021/12/18 23:44:57 riastradh Exp $");
     49  1.7  riastrad 
     50  1.7  riastrad #include <linux/export.h>
     51  1.7  riastrad #include <linux/interval_tree_generic.h>
     52  1.7  riastrad #include <linux/seq_file.h>
     53  1.7  riastrad #include <linux/slab.h>
     54  1.7  riastrad #include <linux/stacktrace.h>
     55  1.4  riastrad 
     56  1.1  riastrad #include <drm/drm_mm.h>
     57  1.1  riastrad 
     58  1.3  riastrad /**
     59  1.3  riastrad  * DOC: Overview
     60  1.3  riastrad  *
     61  1.3  riastrad  * drm_mm provides a simple range allocator. The drivers are free to use the
     62  1.3  riastrad  * resource allocator from the linux core if it suits them, the upside of drm_mm
     63  1.3  riastrad  * is that it's in the DRM core. Which means that it's easier to extend for
     64  1.3  riastrad  * some of the crazier special purpose needs of gpus.
     65  1.3  riastrad  *
     66  1.3  riastrad  * The main data struct is &drm_mm, allocations are tracked in &drm_mm_node.
     67  1.3  riastrad  * Drivers are free to embed either of them into their own suitable
     68  1.7  riastrad  * datastructures. drm_mm itself will not do any memory allocations of its own,
     69  1.7  riastrad  * so if drivers choose not to embed nodes they need to still allocate them
     70  1.3  riastrad  * themselves.
     71  1.3  riastrad  *
     72  1.3  riastrad  * The range allocator also supports reservation of preallocated blocks. This is
     73  1.3  riastrad  * useful for taking over initial mode setting configurations from the firmware,
     74  1.3  riastrad  * where an object needs to be created which exactly matches the firmware's
     75  1.3  riastrad  * scanout target. As long as the range is still free it can be inserted anytime
     76  1.3  riastrad  * after the allocator is initialized, which helps with avoiding looped
     77  1.7  riastrad  * dependencies in the driver load sequence.
     78  1.3  riastrad  *
     79  1.3  riastrad  * drm_mm maintains a stack of most recently freed holes, which of all
     80  1.3  riastrad  * simplistic datastructures seems to be a fairly decent approach to clustering
     81  1.3  riastrad  * allocations and avoiding too much fragmentation. This means free space
     82  1.3  riastrad  * searches are O(num_holes). Given that all the fancy features drm_mm supports
     83  1.3  riastrad  * something better would be fairly complex and since gfx thrashing is a fairly
     84  1.3  riastrad  * steep cliff not a real concern. Removing a node again is O(1).
     85  1.3  riastrad  *
     86  1.3  riastrad  * drm_mm supports a few features: Alignment and range restrictions can be
     87  1.7  riastrad  * supplied. Furthermore every &drm_mm_node has a color value (which is just an
     88  1.7  riastrad  * opaque unsigned long) which in conjunction with a driver callback can be used
     89  1.3  riastrad  * to implement sophisticated placement restrictions. The i915 DRM driver uses
     90  1.3  riastrad  * this to implement guard pages between incompatible caching domains in the
     91  1.3  riastrad  * graphics TT.
     92  1.3  riastrad  *
     93  1.7  riastrad  * Two behaviors are supported for searching and allocating: bottom-up and
     94  1.7  riastrad  * top-down. The default is bottom-up. Top-down allocation can be used if the
     95  1.7  riastrad  * memory area has different restrictions, or just to reduce fragmentation.
     96  1.1  riastrad  *
     97  1.3  riastrad  * Finally iteration helpers to walk all nodes and all holes are provided as are
     98  1.3  riastrad  * some basic allocator dumpers for debugging.
     99  1.7  riastrad  *
    100  1.7  riastrad  * Note that this range allocator is not thread-safe, drivers need to protect
    101  1.7  riastrad  * modifications with their own locking. The idea behind this is that for a full
    102  1.7  riastrad  * memory manager additional data needs to be protected anyway, hence internal
    103  1.7  riastrad  * locking would be fully redundant.
    104  1.1  riastrad  */
    105  1.1  riastrad 
    106  1.7  riastrad #ifdef CONFIG_DRM_DEBUG_MM
    107  1.7  riastrad #include <linux/stackdepot.h>
    108  1.7  riastrad 
    109  1.7  riastrad #define STACKDEPTH 32
    110  1.7  riastrad #define BUFSZ 4096
    111  1.7  riastrad 
    112  1.7  riastrad static noinline void save_stack(struct drm_mm_node *node)
    113  1.7  riastrad {
    114  1.7  riastrad 	unsigned long entries[STACKDEPTH];
    115  1.7  riastrad 	unsigned int n;
    116  1.7  riastrad 
    117  1.7  riastrad 	n = stack_trace_save(entries, ARRAY_SIZE(entries), 1);
    118  1.7  riastrad 
    119  1.7  riastrad 	/* May be called under spinlock, so avoid sleeping */
    120  1.7  riastrad 	node->stack = stack_depot_save(entries, n, GFP_NOWAIT);
    121  1.7  riastrad }
    122  1.7  riastrad 
    123  1.7  riastrad static void show_leaks(struct drm_mm *mm)
    124  1.7  riastrad {
    125  1.7  riastrad 	struct drm_mm_node *node;
    126  1.7  riastrad 	unsigned long *entries;
    127  1.7  riastrad 	unsigned int nr_entries;
    128  1.7  riastrad 	char *buf;
    129  1.7  riastrad 
    130  1.7  riastrad 	buf = kmalloc(BUFSZ, GFP_KERNEL);
    131  1.7  riastrad 	if (!buf)
    132  1.7  riastrad 		return;
    133  1.7  riastrad 
    134  1.7  riastrad 	list_for_each_entry(node, drm_mm_nodes(mm), node_list) {
    135  1.7  riastrad 		if (!node->stack) {
    136  1.7  riastrad 			DRM_ERROR("node [%08llx + %08llx]: unknown owner\n",
    137  1.7  riastrad 				  node->start, node->size);
    138  1.7  riastrad 			continue;
    139  1.7  riastrad 		}
    140  1.7  riastrad 
    141  1.7  riastrad 		nr_entries = stack_depot_fetch(node->stack, &entries);
    142  1.7  riastrad 		stack_trace_snprint(buf, BUFSZ, entries, nr_entries, 0);
    143  1.7  riastrad 		DRM_ERROR("node [%08llx + %08llx]: inserted at\n%s",
    144  1.7  riastrad 			  node->start, node->size, buf);
    145  1.7  riastrad 	}
    146  1.7  riastrad 
    147  1.7  riastrad 	kfree(buf);
    148  1.7  riastrad }
    149  1.7  riastrad 
    150  1.7  riastrad #undef STACKDEPTH
    151  1.7  riastrad #undef BUFSZ
    152  1.7  riastrad #else
    153  1.7  riastrad static void save_stack(struct drm_mm_node *node) { }
    154  1.7  riastrad static void show_leaks(struct drm_mm *mm) { }
    155  1.7  riastrad #endif
    156  1.7  riastrad 
    157  1.7  riastrad #define START(node) ((node)->start)
    158  1.7  riastrad #define LAST(node)  ((node)->start + (node)->size - 1)
    159  1.7  riastrad 
    160  1.7  riastrad INTERVAL_TREE_DEFINE(struct drm_mm_node, rb,
    161  1.7  riastrad 		     u64, __subtree_last,
    162  1.7  riastrad 		     START, LAST, static inline, drm_mm_interval_tree)
    163  1.7  riastrad 
    164  1.7  riastrad struct drm_mm_node *
    165  1.7  riastrad __drm_mm_interval_first(const struct drm_mm *mm, u64 start, u64 last)
    166  1.7  riastrad {
    167  1.7  riastrad 	return drm_mm_interval_tree_iter_first((struct rb_root_cached *)&mm->interval_tree,
    168  1.7  riastrad 					       start, last) ?: (struct drm_mm_node *)&mm->head_node;
    169  1.7  riastrad }
    170  1.7  riastrad EXPORT_SYMBOL(__drm_mm_interval_first);
    171  1.7  riastrad 
    172  1.7  riastrad static void drm_mm_interval_tree_add_node(struct drm_mm_node *hole_node,
    173  1.7  riastrad 					  struct drm_mm_node *node)
    174  1.1  riastrad {
    175  1.1  riastrad 	struct drm_mm *mm = hole_node->mm;
    176  1.7  riastrad 	struct rb_node **link, *rb;
    177  1.7  riastrad 	struct drm_mm_node *parent;
    178  1.7  riastrad 	bool leftmost;
    179  1.7  riastrad 
    180  1.7  riastrad 	node->__subtree_last = LAST(node);
    181  1.7  riastrad 
    182  1.7  riastrad 	if (drm_mm_node_allocated(hole_node)) {
    183  1.7  riastrad 		rb = &hole_node->rb;
    184  1.7  riastrad 		while (rb) {
    185  1.7  riastrad 			parent = rb_entry(rb, struct drm_mm_node, rb);
    186  1.7  riastrad 			if (parent->__subtree_last >= node->__subtree_last)
    187  1.7  riastrad 				break;
    188  1.7  riastrad 
    189  1.7  riastrad 			parent->__subtree_last = node->__subtree_last;
    190  1.7  riastrad 			rb = rb_parent(rb);
    191  1.7  riastrad 		}
    192  1.7  riastrad 
    193  1.7  riastrad 		rb = &hole_node->rb;
    194  1.7  riastrad 		link = &hole_node->rb.rb_right;
    195  1.7  riastrad 		leftmost = false;
    196  1.7  riastrad 	} else {
    197  1.7  riastrad 		rb = NULL;
    198  1.7  riastrad 		link = &mm->interval_tree.rb_root.rb_node;
    199  1.7  riastrad 		leftmost = true;
    200  1.7  riastrad 	}
    201  1.7  riastrad 
    202  1.7  riastrad 	while (*link) {
    203  1.7  riastrad 		rb = *link;
    204  1.7  riastrad 		parent = rb_entry(rb, struct drm_mm_node, rb);
    205  1.7  riastrad 		if (parent->__subtree_last < node->__subtree_last)
    206  1.7  riastrad 			parent->__subtree_last = node->__subtree_last;
    207  1.7  riastrad 		if (node->start < parent->start) {
    208  1.7  riastrad 			link = &parent->rb.rb_left;
    209  1.7  riastrad 		} else {
    210  1.7  riastrad 			link = &parent->rb.rb_right;
    211  1.7  riastrad 			leftmost = false;
    212  1.7  riastrad 		}
    213  1.7  riastrad 	}
    214  1.7  riastrad 
    215  1.7  riastrad 	rb_link_node(&node->rb, rb, link);
    216  1.7  riastrad 	rb_insert_augmented_cached(&node->rb, &mm->interval_tree, leftmost,
    217  1.7  riastrad 				   &drm_mm_interval_tree_augment);
    218  1.7  riastrad }
    219  1.7  riastrad 
    220  1.7  riastrad #define RB_INSERT(root, member, expr) do { \
    221  1.7  riastrad 	struct rb_node **link = &root.rb_node, *rb = NULL; \
    222  1.7  riastrad 	u64 x = expr(node); \
    223  1.7  riastrad 	while (*link) { \
    224  1.7  riastrad 		rb = *link; \
    225  1.7  riastrad 		if (x < expr(rb_entry(rb, struct drm_mm_node, member))) \
    226  1.7  riastrad 			link = &rb->rb_left; \
    227  1.7  riastrad 		else \
    228  1.7  riastrad 			link = &rb->rb_right; \
    229  1.7  riastrad 	} \
    230  1.7  riastrad 	rb_link_node(&node->member, rb, link); \
    231  1.7  riastrad 	rb_insert_color(&node->member, &root); \
    232  1.7  riastrad } while (0)
    233  1.7  riastrad 
    234  1.7  riastrad #define HOLE_SIZE(NODE) ((NODE)->hole_size)
    235  1.7  riastrad #define HOLE_ADDR(NODE) (__drm_mm_hole_node_start(NODE))
    236  1.7  riastrad 
    237  1.7  riastrad static u64 rb_to_hole_size(struct rb_node *rb)
    238  1.7  riastrad {
    239  1.7  riastrad 	return rb_entry(rb, struct drm_mm_node, rb_hole_size)->hole_size;
    240  1.7  riastrad }
    241  1.7  riastrad 
    242  1.7  riastrad static void insert_hole_size(struct rb_root_cached *root,
    243  1.7  riastrad 			     struct drm_mm_node *node)
    244  1.7  riastrad {
    245  1.7  riastrad 	struct rb_node **link = &root->rb_root.rb_node, *rb = NULL;
    246  1.7  riastrad 	u64 x = node->hole_size;
    247  1.7  riastrad 	bool first = true;
    248  1.7  riastrad 
    249  1.7  riastrad 	while (*link) {
    250  1.7  riastrad 		rb = *link;
    251  1.7  riastrad 		if (x > rb_to_hole_size(rb)) {
    252  1.7  riastrad 			link = &rb->rb_left;
    253  1.7  riastrad 		} else {
    254  1.7  riastrad 			link = &rb->rb_right;
    255  1.7  riastrad 			first = false;
    256  1.7  riastrad 		}
    257  1.7  riastrad 	}
    258  1.7  riastrad 
    259  1.7  riastrad 	rb_link_node(&node->rb_hole_size, rb, link);
    260  1.7  riastrad 	rb_insert_color_cached(&node->rb_hole_size, root, first);
    261  1.7  riastrad }
    262  1.7  riastrad 
    263  1.7  riastrad static void add_hole(struct drm_mm_node *node)
    264  1.7  riastrad {
    265  1.7  riastrad 	struct drm_mm *mm = node->mm;
    266  1.7  riastrad 
    267  1.7  riastrad 	node->hole_size =
    268  1.7  riastrad 		__drm_mm_hole_node_end(node) - __drm_mm_hole_node_start(node);
    269  1.7  riastrad 	DRM_MM_BUG_ON(!drm_mm_hole_follows(node));
    270  1.1  riastrad 
    271  1.7  riastrad 	insert_hole_size(&mm->holes_size, node);
    272  1.7  riastrad 	RB_INSERT(mm->holes_addr, rb_hole_addr, HOLE_ADDR);
    273  1.1  riastrad 
    274  1.7  riastrad 	list_add(&node->hole_stack, &mm->hole_stack);
    275  1.7  riastrad }
    276  1.7  riastrad 
    277  1.7  riastrad static void rm_hole(struct drm_mm_node *node)
    278  1.7  riastrad {
    279  1.7  riastrad 	DRM_MM_BUG_ON(!drm_mm_hole_follows(node));
    280  1.7  riastrad 
    281  1.7  riastrad 	list_del(&node->hole_stack);
    282  1.7  riastrad 	rb_erase_cached(&node->rb_hole_size, &node->mm->holes_size);
    283  1.7  riastrad 	rb_erase(&node->rb_hole_addr, &node->mm->holes_addr);
    284  1.7  riastrad 	node->hole_size = 0;
    285  1.7  riastrad 
    286  1.7  riastrad 	DRM_MM_BUG_ON(drm_mm_hole_follows(node));
    287  1.7  riastrad }
    288  1.7  riastrad 
    289  1.7  riastrad static inline struct drm_mm_node *rb_hole_size_to_node(struct rb_node *rb)
    290  1.7  riastrad {
    291  1.7  riastrad 	return rb_entry_safe(rb, struct drm_mm_node, rb_hole_size);
    292  1.7  riastrad }
    293  1.7  riastrad 
    294  1.7  riastrad static inline struct drm_mm_node *rb_hole_addr_to_node(struct rb_node *rb)
    295  1.7  riastrad {
    296  1.7  riastrad 	return rb_entry_safe(rb, struct drm_mm_node, rb_hole_addr);
    297  1.7  riastrad }
    298  1.1  riastrad 
    299  1.7  riastrad static inline u64 rb_hole_size(struct rb_node *rb)
    300  1.7  riastrad {
    301  1.7  riastrad 	return rb_entry(rb, struct drm_mm_node, rb_hole_size)->hole_size;
    302  1.7  riastrad }
    303  1.3  riastrad 
    304  1.7  riastrad static struct drm_mm_node *best_hole(struct drm_mm *mm, u64 size)
    305  1.7  riastrad {
    306  1.7  riastrad 	struct rb_node *rb = mm->holes_size.rb_root.rb_node;
    307  1.7  riastrad 	struct drm_mm_node *best = NULL;
    308  1.4  riastrad 
    309  1.7  riastrad 	do {
    310  1.7  riastrad 		struct drm_mm_node *node =
    311  1.7  riastrad 			rb_entry(rb, struct drm_mm_node, rb_hole_size);
    312  1.7  riastrad 
    313  1.7  riastrad 		if (size <= node->hole_size) {
    314  1.7  riastrad 			best = node;
    315  1.7  riastrad 			rb = rb->rb_right;
    316  1.7  riastrad 		} else {
    317  1.7  riastrad 			rb = rb->rb_left;
    318  1.3  riastrad 		}
    319  1.7  riastrad 	} while (rb);
    320  1.7  riastrad 
    321  1.7  riastrad 	return best;
    322  1.7  riastrad }
    323  1.7  riastrad 
    324  1.7  riastrad static struct drm_mm_node *find_hole(struct drm_mm *mm, u64 addr)
    325  1.7  riastrad {
    326  1.7  riastrad 	struct rb_node *rb = mm->holes_addr.rb_node;
    327  1.7  riastrad 	struct drm_mm_node *node = NULL;
    328  1.7  riastrad 
    329  1.7  riastrad 	while (rb) {
    330  1.7  riastrad 		u64 hole_start;
    331  1.7  riastrad 
    332  1.7  riastrad 		node = rb_hole_addr_to_node(rb);
    333  1.7  riastrad 		hole_start = __drm_mm_hole_node_start(node);
    334  1.7  riastrad 
    335  1.7  riastrad 		if (addr < hole_start)
    336  1.7  riastrad 			rb = node->rb_hole_addr.rb_left;
    337  1.7  riastrad 		else if (addr > hole_start + node->hole_size)
    338  1.7  riastrad 			rb = node->rb_hole_addr.rb_right;
    339  1.7  riastrad 		else
    340  1.7  riastrad 			break;
    341  1.1  riastrad 	}
    342  1.1  riastrad 
    343  1.7  riastrad 	return node;
    344  1.7  riastrad }
    345  1.7  riastrad 
    346  1.7  riastrad static struct drm_mm_node *
    347  1.7  riastrad first_hole(struct drm_mm *mm,
    348  1.7  riastrad 	   u64 start, u64 end, u64 size,
    349  1.7  riastrad 	   enum drm_mm_insert_mode mode)
    350  1.7  riastrad {
    351  1.7  riastrad 	switch (mode) {
    352  1.7  riastrad 	default:
    353  1.7  riastrad 	case DRM_MM_INSERT_BEST:
    354  1.7  riastrad 		return best_hole(mm, size);
    355  1.7  riastrad 
    356  1.7  riastrad 	case DRM_MM_INSERT_LOW:
    357  1.7  riastrad 		return find_hole(mm, start);
    358  1.3  riastrad 
    359  1.7  riastrad 	case DRM_MM_INSERT_HIGH:
    360  1.7  riastrad 		return find_hole(mm, end);
    361  1.7  riastrad 
    362  1.7  riastrad 	case DRM_MM_INSERT_EVICT:
    363  1.7  riastrad 		return list_first_entry_or_null(&mm->hole_stack,
    364  1.7  riastrad 						struct drm_mm_node,
    365  1.7  riastrad 						hole_stack);
    366  1.1  riastrad 	}
    367  1.7  riastrad }
    368  1.1  riastrad 
    369  1.7  riastrad static struct drm_mm_node *
    370  1.7  riastrad next_hole(struct drm_mm *mm,
    371  1.7  riastrad 	  struct drm_mm_node *node,
    372  1.7  riastrad 	  enum drm_mm_insert_mode mode)
    373  1.7  riastrad {
    374  1.7  riastrad 	switch (mode) {
    375  1.7  riastrad 	default:
    376  1.7  riastrad 	case DRM_MM_INSERT_BEST:
    377  1.7  riastrad 		return rb_hole_size_to_node(rb_prev(&node->rb_hole_size));
    378  1.1  riastrad 
    379  1.7  riastrad 	case DRM_MM_INSERT_LOW:
    380  1.7  riastrad 		return rb_hole_addr_to_node(rb_next(&node->rb_hole_addr));
    381  1.1  riastrad 
    382  1.7  riastrad 	case DRM_MM_INSERT_HIGH:
    383  1.7  riastrad 		return rb_hole_addr_to_node(rb_prev(&node->rb_hole_addr));
    384  1.1  riastrad 
    385  1.7  riastrad 	case DRM_MM_INSERT_EVICT:
    386  1.7  riastrad 		node = list_next_entry(node, hole_stack);
    387  1.7  riastrad 		return &node->hole_stack == &mm->hole_stack ? NULL : node;
    388  1.1  riastrad 	}
    389  1.1  riastrad }
    390  1.1  riastrad 
    391  1.3  riastrad /**
    392  1.3  riastrad  * drm_mm_reserve_node - insert an pre-initialized node
    393  1.3  riastrad  * @mm: drm_mm allocator to insert @node into
    394  1.3  riastrad  * @node: drm_mm_node to insert
    395  1.3  riastrad  *
    396  1.7  riastrad  * This functions inserts an already set-up &drm_mm_node into the allocator,
    397  1.7  riastrad  * meaning that start, size and color must be set by the caller. All other
    398  1.7  riastrad  * fields must be cleared to 0. This is useful to initialize the allocator with
    399  1.7  riastrad  * preallocated objects which must be set-up before the range allocator can be
    400  1.7  riastrad  * set-up, e.g. when taking over a firmware framebuffer.
    401  1.3  riastrad  *
    402  1.3  riastrad  * Returns:
    403  1.3  riastrad  * 0 on success, -ENOSPC if there's no hole where @node is.
    404  1.3  riastrad  */
    405  1.3  riastrad int drm_mm_reserve_node(struct drm_mm *mm, struct drm_mm_node *node)
    406  1.1  riastrad {
    407  1.7  riastrad 	u64 end = node->start + node->size;
    408  1.3  riastrad 	struct drm_mm_node *hole;
    409  1.7  riastrad 	u64 hole_start, hole_end;
    410  1.7  riastrad 	u64 adj_start, adj_end;
    411  1.3  riastrad 
    412  1.7  riastrad 	end = node->start + node->size;
    413  1.7  riastrad 	if (unlikely(end <= node->start))
    414  1.7  riastrad 		return -ENOSPC;
    415  1.3  riastrad 
    416  1.3  riastrad 	/* Find the relevant hole to add our node to */
    417  1.7  riastrad 	hole = find_hole(mm, node->start);
    418  1.7  riastrad 	if (!hole)
    419  1.7  riastrad 		return -ENOSPC;
    420  1.1  riastrad 
    421  1.7  riastrad 	adj_start = hole_start = __drm_mm_hole_node_start(hole);
    422  1.7  riastrad 	adj_end = hole_end = hole_start + hole->hole_size;
    423  1.1  riastrad 
    424  1.7  riastrad 	if (mm->color_adjust)
    425  1.7  riastrad 		mm->color_adjust(hole, node->color, &adj_start, &adj_end);
    426  1.1  riastrad 
    427  1.7  riastrad 	if (adj_start > node->start || adj_end < end)
    428  1.7  riastrad 		return -ENOSPC;
    429  1.3  riastrad 
    430  1.7  riastrad 	node->mm = mm;
    431  1.3  riastrad 
    432  1.7  riastrad 	__set_bit(DRM_MM_NODE_ALLOCATED_BIT, &node->flags);
    433  1.7  riastrad 	list_add(&node->node_list, &hole->node_list);
    434  1.7  riastrad 	drm_mm_interval_tree_add_node(hole, node);
    435  1.7  riastrad 	node->hole_size = 0;
    436  1.7  riastrad 
    437  1.7  riastrad 	rm_hole(hole);
    438  1.7  riastrad 	if (node->start > hole_start)
    439  1.7  riastrad 		add_hole(hole);
    440  1.7  riastrad 	if (end < hole_end)
    441  1.7  riastrad 		add_hole(node);
    442  1.3  riastrad 
    443  1.7  riastrad 	save_stack(node);
    444  1.7  riastrad 	return 0;
    445  1.1  riastrad }
    446  1.3  riastrad EXPORT_SYMBOL(drm_mm_reserve_node);
    447  1.1  riastrad 
    448  1.7  riastrad static u64 rb_to_hole_size_or_zero(struct rb_node *rb)
    449  1.7  riastrad {
    450  1.7  riastrad 	return rb ? rb_to_hole_size(rb) : 0;
    451  1.7  riastrad }
    452  1.7  riastrad 
    453  1.1  riastrad /**
    454  1.7  riastrad  * drm_mm_insert_node_in_range - ranged search for space and insert @node
    455  1.3  riastrad  * @mm: drm_mm to allocate from
    456  1.3  riastrad  * @node: preallocate node to insert
    457  1.3  riastrad  * @size: size of the allocation
    458  1.3  riastrad  * @alignment: alignment of the allocation
    459  1.3  riastrad  * @color: opaque tag value to use for this node
    460  1.7  riastrad  * @range_start: start of the allowed range for this node
    461  1.7  riastrad  * @range_end: end of the allowed range for this node
    462  1.7  riastrad  * @mode: fine-tune the allocation search and placement
    463  1.3  riastrad  *
    464  1.7  riastrad  * The preallocated @node must be cleared to 0.
    465  1.3  riastrad  *
    466  1.3  riastrad  * Returns:
    467  1.3  riastrad  * 0 on success, -ENOSPC if there's no suitable hole.
    468  1.1  riastrad  */
    469  1.7  riastrad int drm_mm_insert_node_in_range(struct drm_mm * const mm,
    470  1.7  riastrad 				struct drm_mm_node * const node,
    471  1.7  riastrad 				u64 size, u64 alignment,
    472  1.7  riastrad 				unsigned long color,
    473  1.7  riastrad 				u64 range_start, u64 range_end,
    474  1.7  riastrad 				enum drm_mm_insert_mode mode)
    475  1.7  riastrad {
    476  1.7  riastrad 	struct drm_mm_node *hole;
    477  1.7  riastrad 	u64 remainder_mask;
    478  1.7  riastrad 	bool once;
    479  1.7  riastrad 
    480  1.7  riastrad 	DRM_MM_BUG_ON(range_start > range_end);
    481  1.7  riastrad 
    482  1.7  riastrad 	if (unlikely(size == 0 || range_end - range_start < size))
    483  1.7  riastrad 		return -ENOSPC;
    484  1.7  riastrad 
    485  1.7  riastrad 	if (rb_to_hole_size_or_zero(rb_first_cached(&mm->holes_size)) < size)
    486  1.1  riastrad 		return -ENOSPC;
    487  1.1  riastrad 
    488  1.7  riastrad 	if (alignment <= 1)
    489  1.7  riastrad 		alignment = 0;
    490  1.1  riastrad 
    491  1.7  riastrad 	once = mode & DRM_MM_INSERT_ONCE;
    492  1.7  riastrad 	mode &= ~DRM_MM_INSERT_ONCE;
    493  1.1  riastrad 
    494  1.7  riastrad 	remainder_mask = is_power_of_2(alignment) ? alignment - 1 : 0;
    495  1.7  riastrad 	for (hole = first_hole(mm, range_start, range_end, size, mode);
    496  1.7  riastrad 	     hole;
    497  1.7  riastrad 	     hole = once ? NULL : next_hole(mm, hole, mode)) {
    498  1.7  riastrad 		u64 hole_start = __drm_mm_hole_node_start(hole);
    499  1.7  riastrad 		u64 hole_end = hole_start + hole->hole_size;
    500  1.7  riastrad 		u64 adj_start, adj_end;
    501  1.7  riastrad 		u64 col_start, col_end;
    502  1.7  riastrad 
    503  1.7  riastrad 		if (mode == DRM_MM_INSERT_LOW && hole_start >= range_end)
    504  1.7  riastrad 			break;
    505  1.7  riastrad 
    506  1.7  riastrad 		if (mode == DRM_MM_INSERT_HIGH && hole_end <= range_start)
    507  1.7  riastrad 			break;
    508  1.7  riastrad 
    509  1.7  riastrad 		col_start = hole_start;
    510  1.7  riastrad 		col_end = hole_end;
    511  1.7  riastrad 		if (mm->color_adjust)
    512  1.7  riastrad 			mm->color_adjust(hole, color, &col_start, &col_end);
    513  1.1  riastrad 
    514  1.7  riastrad 		adj_start = max(col_start, range_start);
    515  1.7  riastrad 		adj_end = min(col_end, range_end);
    516  1.4  riastrad 
    517  1.7  riastrad 		if (adj_end <= adj_start || adj_end - adj_start < size)
    518  1.7  riastrad 			continue;
    519  1.1  riastrad 
    520  1.7  riastrad 		if (mode == DRM_MM_INSERT_HIGH)
    521  1.7  riastrad 			adj_start = adj_end - size;
    522  1.3  riastrad 
    523  1.7  riastrad 		if (alignment) {
    524  1.7  riastrad 			u64 rem;
    525  1.1  riastrad 
    526  1.7  riastrad 			if (likely(remainder_mask))
    527  1.7  riastrad 				rem = adj_start & remainder_mask;
    528  1.7  riastrad 			else
    529  1.7  riastrad 				div64_u64_rem(adj_start, alignment, &rem);
    530  1.7  riastrad 			if (rem) {
    531  1.4  riastrad 				adj_start -= rem;
    532  1.7  riastrad 				if (mode != DRM_MM_INSERT_HIGH)
    533  1.7  riastrad 					adj_start += alignment;
    534  1.7  riastrad 
    535  1.7  riastrad 				if (adj_start < max(col_start, range_start) ||
    536  1.7  riastrad 				    min(col_end, range_end) - adj_start < size)
    537  1.7  riastrad 					continue;
    538  1.7  riastrad 
    539  1.7  riastrad 				if (adj_end <= adj_start ||
    540  1.7  riastrad 				    adj_end - adj_start < size)
    541  1.7  riastrad 					continue;
    542  1.7  riastrad 			}
    543  1.3  riastrad 		}
    544  1.1  riastrad 
    545  1.7  riastrad 		node->mm = mm;
    546  1.7  riastrad 		node->size = size;
    547  1.7  riastrad 		node->start = adj_start;
    548  1.7  riastrad 		node->color = color;
    549  1.7  riastrad 		node->hole_size = 0;
    550  1.1  riastrad 
    551  1.7  riastrad 		__set_bit(DRM_MM_NODE_ALLOCATED_BIT, &node->flags);
    552  1.7  riastrad 		list_add(&node->node_list, &hole->node_list);
    553  1.7  riastrad 		drm_mm_interval_tree_add_node(hole, node);
    554  1.1  riastrad 
    555  1.7  riastrad 		rm_hole(hole);
    556  1.7  riastrad 		if (adj_start > hole_start)
    557  1.7  riastrad 			add_hole(hole);
    558  1.7  riastrad 		if (adj_start + size < hole_end)
    559  1.7  riastrad 			add_hole(node);
    560  1.1  riastrad 
    561  1.7  riastrad 		save_stack(node);
    562  1.7  riastrad 		return 0;
    563  1.7  riastrad 	}
    564  1.1  riastrad 
    565  1.7  riastrad 	return -ENOSPC;
    566  1.1  riastrad }
    567  1.7  riastrad EXPORT_SYMBOL(drm_mm_insert_node_in_range);
    568  1.1  riastrad 
    569  1.7  riastrad static inline bool drm_mm_node_scanned_block(const struct drm_mm_node *node)
    570  1.7  riastrad {
    571  1.7  riastrad 	return test_bit(DRM_MM_NODE_SCANNED_BIT, &node->flags);
    572  1.1  riastrad }
    573  1.1  riastrad 
    574  1.1  riastrad /**
    575  1.3  riastrad  * drm_mm_remove_node - Remove a memory node from the allocator.
    576  1.3  riastrad  * @node: drm_mm_node to remove
    577  1.3  riastrad  *
    578  1.3  riastrad  * This just removes a node from its drm_mm allocator. The node does not need to
    579  1.3  riastrad  * be cleared again before it can be re-inserted into this or any other drm_mm
    580  1.7  riastrad  * allocator. It is a bug to call this function on a unallocated node.
    581  1.1  riastrad  */
    582  1.1  riastrad void drm_mm_remove_node(struct drm_mm_node *node)
    583  1.1  riastrad {
    584  1.1  riastrad 	struct drm_mm *mm = node->mm;
    585  1.1  riastrad 	struct drm_mm_node *prev_node;
    586  1.1  riastrad 
    587  1.7  riastrad 	DRM_MM_BUG_ON(!drm_mm_node_allocated(node));
    588  1.7  riastrad 	DRM_MM_BUG_ON(drm_mm_node_scanned_block(node));
    589  1.1  riastrad 
    590  1.7  riastrad 	prev_node = list_prev_entry(node, node_list);
    591  1.1  riastrad 
    592  1.7  riastrad 	if (drm_mm_hole_follows(node))
    593  1.7  riastrad 		rm_hole(node);
    594  1.1  riastrad 
    595  1.7  riastrad 	drm_mm_interval_tree_remove(node, &mm->interval_tree);
    596  1.1  riastrad 	list_del(&node->node_list);
    597  1.4  riastrad 
    598  1.7  riastrad 	if (drm_mm_hole_follows(prev_node))
    599  1.7  riastrad 		rm_hole(prev_node);
    600  1.7  riastrad 	add_hole(prev_node);
    601  1.1  riastrad 
    602  1.7  riastrad 	clear_bit_unlock(DRM_MM_NODE_ALLOCATED_BIT, &node->flags);
    603  1.1  riastrad }
    604  1.7  riastrad EXPORT_SYMBOL(drm_mm_remove_node);
    605  1.1  riastrad 
    606  1.1  riastrad /**
    607  1.3  riastrad  * drm_mm_replace_node - move an allocation from @old to @new
    608  1.3  riastrad  * @old: drm_mm_node to remove from the allocator
    609  1.3  riastrad  * @new: drm_mm_node which should inherit @old's allocation
    610  1.3  riastrad  *
    611  1.3  riastrad  * This is useful for when drivers embed the drm_mm_node structure and hence
    612  1.3  riastrad  * can't move allocations by reassigning pointers. It's a combination of remove
    613  1.3  riastrad  * and insert with the guarantee that the allocation start will match.
    614  1.1  riastrad  */
    615  1.1  riastrad void drm_mm_replace_node(struct drm_mm_node *old, struct drm_mm_node *new)
    616  1.1  riastrad {
    617  1.7  riastrad 	struct drm_mm *mm = old->mm;
    618  1.7  riastrad 
    619  1.7  riastrad 	DRM_MM_BUG_ON(!drm_mm_node_allocated(old));
    620  1.7  riastrad 
    621  1.7  riastrad 	*new = *old;
    622  1.7  riastrad 
    623  1.7  riastrad 	__set_bit(DRM_MM_NODE_ALLOCATED_BIT, &new->flags);
    624  1.1  riastrad 	list_replace(&old->node_list, &new->node_list);
    625  1.7  riastrad 	rb_replace_node_cached(&old->rb, &new->rb, &mm->interval_tree);
    626  1.7  riastrad 
    627  1.7  riastrad 	if (drm_mm_hole_follows(old)) {
    628  1.7  riastrad 		list_replace(&old->hole_stack, &new->hole_stack);
    629  1.7  riastrad 		rb_replace_node_cached(&old->rb_hole_size,
    630  1.7  riastrad 				       &new->rb_hole_size,
    631  1.7  riastrad 				       &mm->holes_size);
    632  1.7  riastrad 		rb_replace_node(&old->rb_hole_addr,
    633  1.7  riastrad 				&new->rb_hole_addr,
    634  1.7  riastrad 				&mm->holes_addr);
    635  1.7  riastrad 	}
    636  1.1  riastrad 
    637  1.7  riastrad 	clear_bit_unlock(DRM_MM_NODE_ALLOCATED_BIT, &old->flags);
    638  1.1  riastrad }
    639  1.1  riastrad EXPORT_SYMBOL(drm_mm_replace_node);
    640  1.1  riastrad 
    641  1.1  riastrad /**
    642  1.7  riastrad  * DOC: lru scan roster
    643  1.3  riastrad  *
    644  1.3  riastrad  * Very often GPUs need to have continuous allocations for a given object. When
    645  1.3  riastrad  * evicting objects to make space for a new one it is therefore not most
    646  1.3  riastrad  * efficient when we simply start to select all objects from the tail of an LRU
    647  1.3  riastrad  * until there's a suitable hole: Especially for big objects or nodes that
    648  1.3  riastrad  * otherwise have special allocation constraints there's a good chance we evict
    649  1.7  riastrad  * lots of (smaller) objects unnecessarily.
    650  1.3  riastrad  *
    651  1.3  riastrad  * The DRM range allocator supports this use-case through the scanning
    652  1.3  riastrad  * interfaces. First a scan operation needs to be initialized with
    653  1.7  riastrad  * drm_mm_scan_init() or drm_mm_scan_init_with_range(). The driver adds
    654  1.7  riastrad  * objects to the roster, probably by walking an LRU list, but this can be
    655  1.7  riastrad  * freely implemented. Eviction candiates are added using
    656  1.7  riastrad  * drm_mm_scan_add_block() until a suitable hole is found or there are no
    657  1.7  riastrad  * further evictable objects. Eviction roster metadata is tracked in &struct
    658  1.7  riastrad  * drm_mm_scan.
    659  1.3  riastrad  *
    660  1.7  riastrad  * The driver must walk through all objects again in exactly the reverse
    661  1.3  riastrad  * order to restore the allocator state. Note that while the allocator is used
    662  1.3  riastrad  * in the scan mode no other operation is allowed.
    663  1.3  riastrad  *
    664  1.7  riastrad  * Finally the driver evicts all objects selected (drm_mm_scan_remove_block()
    665  1.7  riastrad  * reported true) in the scan, and any overlapping nodes after color adjustment
    666  1.7  riastrad  * (drm_mm_scan_color_evict()). Adding and removing an object is O(1), and
    667  1.7  riastrad  * since freeing a node is also O(1) the overall complexity is
    668  1.7  riastrad  * O(scanned_objects). So like the free stack which needs to be walked before a
    669  1.7  riastrad  * scan operation even begins this is linear in the number of objects. It
    670  1.7  riastrad  * doesn't seem to hurt too badly.
    671  1.3  riastrad  */
    672  1.3  riastrad 
    673  1.3  riastrad /**
    674  1.7  riastrad  * drm_mm_scan_init_with_range - initialize range-restricted lru scanning
    675  1.7  riastrad  * @scan: scan state
    676  1.3  riastrad  * @mm: drm_mm to scan
    677  1.3  riastrad  * @size: size of the allocation
    678  1.3  riastrad  * @alignment: alignment of the allocation
    679  1.3  riastrad  * @color: opaque tag value to use for the allocation
    680  1.3  riastrad  * @start: start of the allowed range for the allocation
    681  1.3  riastrad  * @end: end of the allowed range for the allocation
    682  1.7  riastrad  * @mode: fine-tune the allocation search and placement
    683  1.1  riastrad  *
    684  1.1  riastrad  * This simply sets up the scanning routines with the parameters for the desired
    685  1.7  riastrad  * hole.
    686  1.1  riastrad  *
    687  1.3  riastrad  * Warning:
    688  1.3  riastrad  * As long as the scan list is non-empty, no other operations than
    689  1.1  riastrad  * adding/removing nodes to/from the scan list are allowed.
    690  1.1  riastrad  */
    691  1.7  riastrad void drm_mm_scan_init_with_range(struct drm_mm_scan *scan,
    692  1.7  riastrad 				 struct drm_mm *mm,
    693  1.4  riastrad 				 u64 size,
    694  1.7  riastrad 				 u64 alignment,
    695  1.1  riastrad 				 unsigned long color,
    696  1.4  riastrad 				 u64 start,
    697  1.7  riastrad 				 u64 end,
    698  1.7  riastrad 				 enum drm_mm_insert_mode mode)
    699  1.1  riastrad {
    700  1.7  riastrad 	DRM_MM_BUG_ON(start >= end);
    701  1.7  riastrad 	DRM_MM_BUG_ON(!size || size > end - start);
    702  1.7  riastrad 	DRM_MM_BUG_ON(mm->scan_active);
    703  1.7  riastrad 
    704  1.7  riastrad 	scan->mm = mm;
    705  1.7  riastrad 
    706  1.7  riastrad 	if (alignment <= 1)
    707  1.7  riastrad 		alignment = 0;
    708  1.7  riastrad 
    709  1.7  riastrad 	scan->color = color;
    710  1.7  riastrad 	scan->alignment = alignment;
    711  1.7  riastrad 	scan->remainder_mask = is_power_of_2(alignment) ? alignment - 1 : 0;
    712  1.7  riastrad 	scan->size = size;
    713  1.7  riastrad 	scan->mode = mode;
    714  1.7  riastrad 
    715  1.7  riastrad 	DRM_MM_BUG_ON(end <= start);
    716  1.7  riastrad 	scan->range_start = start;
    717  1.7  riastrad 	scan->range_end = end;
    718  1.7  riastrad 
    719  1.7  riastrad 	scan->hit_start = U64_MAX;
    720  1.7  riastrad 	scan->hit_end = 0;
    721  1.1  riastrad }
    722  1.7  riastrad EXPORT_SYMBOL(drm_mm_scan_init_with_range);
    723  1.1  riastrad 
    724  1.1  riastrad /**
    725  1.3  riastrad  * drm_mm_scan_add_block - add a node to the scan list
    726  1.7  riastrad  * @scan: the active drm_mm scanner
    727  1.3  riastrad  * @node: drm_mm_node to add
    728  1.3  riastrad  *
    729  1.1  riastrad  * Add a node to the scan list that might be freed to make space for the desired
    730  1.1  riastrad  * hole.
    731  1.1  riastrad  *
    732  1.3  riastrad  * Returns:
    733  1.3  riastrad  * True if a hole has been found, false otherwise.
    734  1.1  riastrad  */
    735  1.7  riastrad bool drm_mm_scan_add_block(struct drm_mm_scan *scan,
    736  1.7  riastrad 			   struct drm_mm_node *node)
    737  1.1  riastrad {
    738  1.7  riastrad 	struct drm_mm *mm = scan->mm;
    739  1.7  riastrad 	struct drm_mm_node *hole;
    740  1.4  riastrad 	u64 hole_start, hole_end;
    741  1.7  riastrad 	u64 col_start, col_end;
    742  1.4  riastrad 	u64 adj_start, adj_end;
    743  1.1  riastrad 
    744  1.7  riastrad 	DRM_MM_BUG_ON(node->mm != mm);
    745  1.7  riastrad 	DRM_MM_BUG_ON(!drm_mm_node_allocated(node));
    746  1.7  riastrad 	DRM_MM_BUG_ON(drm_mm_node_scanned_block(node));
    747  1.7  riastrad 	__set_bit(DRM_MM_NODE_SCANNED_BIT, &node->flags);
    748  1.7  riastrad 	mm->scan_active++;
    749  1.7  riastrad 
    750  1.7  riastrad 	/* Remove this block from the node_list so that we enlarge the hole
    751  1.7  riastrad 	 * (distance between the end of our previous node and the start of
    752  1.7  riastrad 	 * or next), without poisoning the link so that we can restore it
    753  1.7  riastrad 	 * later in drm_mm_scan_remove_block().
    754  1.7  riastrad 	 */
    755  1.7  riastrad 	hole = list_prev_entry(node, node_list);
    756  1.7  riastrad 	DRM_MM_BUG_ON(list_next_entry(hole, node_list) != node);
    757  1.7  riastrad 	__list_del_entry(&node->node_list);
    758  1.1  riastrad 
    759  1.7  riastrad 	hole_start = __drm_mm_hole_node_start(hole);
    760  1.7  riastrad 	hole_end = __drm_mm_hole_node_end(hole);
    761  1.1  riastrad 
    762  1.7  riastrad 	col_start = hole_start;
    763  1.7  riastrad 	col_end = hole_end;
    764  1.7  riastrad 	if (mm->color_adjust)
    765  1.7  riastrad 		mm->color_adjust(hole, scan->color, &col_start, &col_end);
    766  1.1  riastrad 
    767  1.7  riastrad 	adj_start = max(col_start, scan->range_start);
    768  1.7  riastrad 	adj_end = min(col_end, scan->range_end);
    769  1.7  riastrad 	if (adj_end <= adj_start || adj_end - adj_start < scan->size)
    770  1.7  riastrad 		return false;
    771  1.7  riastrad 
    772  1.7  riastrad 	if (scan->mode == DRM_MM_INSERT_HIGH)
    773  1.7  riastrad 		adj_start = adj_end - scan->size;
    774  1.7  riastrad 
    775  1.7  riastrad 	if (scan->alignment) {
    776  1.7  riastrad 		u64 rem;
    777  1.7  riastrad 
    778  1.7  riastrad 		if (likely(scan->remainder_mask))
    779  1.7  riastrad 			rem = adj_start & scan->remainder_mask;
    780  1.7  riastrad 		else
    781  1.7  riastrad 			div64_u64_rem(adj_start, scan->alignment, &rem);
    782  1.7  riastrad 		if (rem) {
    783  1.7  riastrad 			adj_start -= rem;
    784  1.7  riastrad 			if (scan->mode != DRM_MM_INSERT_HIGH)
    785  1.7  riastrad 				adj_start += scan->alignment;
    786  1.7  riastrad 			if (adj_start < max(col_start, scan->range_start) ||
    787  1.7  riastrad 			    min(col_end, scan->range_end) - adj_start < scan->size)
    788  1.7  riastrad 				return false;
    789  1.7  riastrad 
    790  1.7  riastrad 			if (adj_end <= adj_start ||
    791  1.7  riastrad 			    adj_end - adj_start < scan->size)
    792  1.7  riastrad 				return false;
    793  1.7  riastrad 		}
    794  1.1  riastrad 	}
    795  1.1  riastrad 
    796  1.7  riastrad 	scan->hit_start = adj_start;
    797  1.7  riastrad 	scan->hit_end = adj_start + scan->size;
    798  1.1  riastrad 
    799  1.7  riastrad 	DRM_MM_BUG_ON(scan->hit_start >= scan->hit_end);
    800  1.7  riastrad 	DRM_MM_BUG_ON(scan->hit_start < hole_start);
    801  1.7  riastrad 	DRM_MM_BUG_ON(scan->hit_end > hole_end);
    802  1.1  riastrad 
    803  1.7  riastrad 	return true;
    804  1.1  riastrad }
    805  1.1  riastrad EXPORT_SYMBOL(drm_mm_scan_add_block);
    806  1.1  riastrad 
    807  1.1  riastrad /**
    808  1.3  riastrad  * drm_mm_scan_remove_block - remove a node from the scan list
    809  1.7  riastrad  * @scan: the active drm_mm scanner
    810  1.3  riastrad  * @node: drm_mm_node to remove
    811  1.1  riastrad  *
    812  1.7  riastrad  * Nodes **must** be removed in exactly the reverse order from the scan list as
    813  1.7  riastrad  * they have been added (e.g. using list_add() as they are added and then
    814  1.7  riastrad  * list_for_each() over that eviction list to remove), otherwise the internal
    815  1.7  riastrad  * state of the memory manager will be corrupted.
    816  1.1  riastrad  *
    817  1.1  riastrad  * When the scan list is empty, the selected memory nodes can be freed. An
    818  1.7  riastrad  * immediately following drm_mm_insert_node_in_range_generic() or one of the
    819  1.7  riastrad  * simpler versions of that function with !DRM_MM_SEARCH_BEST will then return
    820  1.7  riastrad  * the just freed block (because it's at the top of the free_stack list).
    821  1.1  riastrad  *
    822  1.3  riastrad  * Returns:
    823  1.3  riastrad  * True if this block should be evicted, false otherwise. Will always
    824  1.3  riastrad  * return false when no hole has been found.
    825  1.1  riastrad  */
    826  1.7  riastrad bool drm_mm_scan_remove_block(struct drm_mm_scan *scan,
    827  1.7  riastrad 			      struct drm_mm_node *node)
    828  1.1  riastrad {
    829  1.1  riastrad 	struct drm_mm_node *prev_node;
    830  1.1  riastrad 
    831  1.7  riastrad 	DRM_MM_BUG_ON(node->mm != scan->mm);
    832  1.7  riastrad 	DRM_MM_BUG_ON(!drm_mm_node_scanned_block(node));
    833  1.7  riastrad 	__clear_bit(DRM_MM_NODE_SCANNED_BIT, &node->flags);
    834  1.7  riastrad 
    835  1.7  riastrad 	DRM_MM_BUG_ON(!node->mm->scan_active);
    836  1.7  riastrad 	node->mm->scan_active--;
    837  1.7  riastrad 
    838  1.7  riastrad 	/* During drm_mm_scan_add_block() we decoupled this node leaving
    839  1.7  riastrad 	 * its pointers intact. Now that the caller is walking back along
    840  1.7  riastrad 	 * the eviction list we can restore this block into its rightful
    841  1.7  riastrad 	 * place on the full node_list. To confirm that the caller is walking
    842  1.7  riastrad 	 * backwards correctly we check that prev_node->next == node->next,
    843  1.7  riastrad 	 * i.e. both believe the same node should be on the other side of the
    844  1.7  riastrad 	 * hole.
    845  1.7  riastrad 	 */
    846  1.7  riastrad 	prev_node = list_prev_entry(node, node_list);
    847  1.7  riastrad 	DRM_MM_BUG_ON(list_next_entry(prev_node, node_list) !=
    848  1.7  riastrad 		      list_next_entry(node, node_list));
    849  1.1  riastrad 	list_add(&node->node_list, &prev_node->node_list);
    850  1.1  riastrad 
    851  1.7  riastrad 	return (node->start + node->size > scan->hit_start &&
    852  1.7  riastrad 		node->start < scan->hit_end);
    853  1.1  riastrad }
    854  1.1  riastrad EXPORT_SYMBOL(drm_mm_scan_remove_block);
    855  1.1  riastrad 
    856  1.3  riastrad /**
    857  1.7  riastrad  * drm_mm_scan_color_evict - evict overlapping nodes on either side of hole
    858  1.7  riastrad  * @scan: drm_mm scan with target hole
    859  1.7  riastrad  *
    860  1.7  riastrad  * After completing an eviction scan and removing the selected nodes, we may
    861  1.7  riastrad  * need to remove a few more nodes from either side of the target hole if
    862  1.7  riastrad  * mm.color_adjust is being used.
    863  1.3  riastrad  *
    864  1.3  riastrad  * Returns:
    865  1.7  riastrad  * A node to evict, or NULL if there are no overlapping nodes.
    866  1.3  riastrad  */
    867  1.7  riastrad struct drm_mm_node *drm_mm_scan_color_evict(struct drm_mm_scan *scan)
    868  1.1  riastrad {
    869  1.7  riastrad 	struct drm_mm *mm = scan->mm;
    870  1.7  riastrad 	struct drm_mm_node *hole;
    871  1.7  riastrad 	u64 hole_start, hole_end;
    872  1.7  riastrad 
    873  1.7  riastrad 	DRM_MM_BUG_ON(list_empty(&mm->hole_stack));
    874  1.7  riastrad 
    875  1.7  riastrad 	if (!mm->color_adjust)
    876  1.7  riastrad 		return NULL;
    877  1.7  riastrad 
    878  1.7  riastrad 	/*
    879  1.7  riastrad 	 * The hole found during scanning should ideally be the first element
    880  1.7  riastrad 	 * in the hole_stack list, but due to side-effects in the driver it
    881  1.7  riastrad 	 * may not be.
    882  1.7  riastrad 	 */
    883  1.7  riastrad 	list_for_each_entry(hole, &mm->hole_stack, hole_stack) {
    884  1.7  riastrad 		hole_start = __drm_mm_hole_node_start(hole);
    885  1.7  riastrad 		hole_end = hole_start + hole->hole_size;
    886  1.7  riastrad 
    887  1.7  riastrad 		if (hole_start <= scan->hit_start &&
    888  1.7  riastrad 		    hole_end >= scan->hit_end)
    889  1.7  riastrad 			break;
    890  1.7  riastrad 	}
    891  1.7  riastrad 
    892  1.7  riastrad 	/* We should only be called after we found the hole previously */
    893  1.7  riastrad 	DRM_MM_BUG_ON(&hole->hole_stack == &mm->hole_stack);
    894  1.7  riastrad 	if (unlikely(&hole->hole_stack == &mm->hole_stack))
    895  1.7  riastrad 		return NULL;
    896  1.7  riastrad 
    897  1.7  riastrad 	DRM_MM_BUG_ON(hole_start > scan->hit_start);
    898  1.7  riastrad 	DRM_MM_BUG_ON(hole_end < scan->hit_end);
    899  1.7  riastrad 
    900  1.7  riastrad 	mm->color_adjust(hole, scan->color, &hole_start, &hole_end);
    901  1.7  riastrad 	if (hole_start > scan->hit_start)
    902  1.7  riastrad 		return hole;
    903  1.7  riastrad 	if (hole_end < scan->hit_end)
    904  1.7  riastrad 		return list_next_entry(hole, node_list);
    905  1.1  riastrad 
    906  1.7  riastrad 	return NULL;
    907  1.1  riastrad }
    908  1.7  riastrad EXPORT_SYMBOL(drm_mm_scan_color_evict);
    909  1.1  riastrad 
    910  1.3  riastrad /**
    911  1.3  riastrad  * drm_mm_init - initialize a drm-mm allocator
    912  1.3  riastrad  * @mm: the drm_mm structure to initialize
    913  1.3  riastrad  * @start: start of the range managed by @mm
    914  1.3  riastrad  * @size: end of the range managed by @mm
    915  1.3  riastrad  *
    916  1.3  riastrad  * Note that @mm must be cleared to 0 before calling this function.
    917  1.3  riastrad  */
    918  1.7  riastrad void drm_mm_init(struct drm_mm *mm, u64 start, u64 size)
    919  1.1  riastrad {
    920  1.7  riastrad 	DRM_MM_BUG_ON(start + size <= start);
    921  1.7  riastrad 
    922  1.7  riastrad 	mm->color_adjust = NULL;
    923  1.7  riastrad 
    924  1.1  riastrad 	INIT_LIST_HEAD(&mm->hole_stack);
    925  1.7  riastrad 	mm->interval_tree = RB_ROOT_CACHED;
    926  1.7  riastrad 	mm->holes_size = RB_ROOT_CACHED;
    927  1.7  riastrad 	mm->holes_addr = RB_ROOT;
    928  1.1  riastrad 
    929  1.1  riastrad 	/* Clever trick to avoid a special case in the free hole tracking. */
    930  1.1  riastrad 	INIT_LIST_HEAD(&mm->head_node.node_list);
    931  1.7  riastrad 	mm->head_node.flags = 0;
    932  1.1  riastrad 	mm->head_node.mm = mm;
    933  1.1  riastrad 	mm->head_node.start = start + size;
    934  1.7  riastrad 	mm->head_node.size = -size;
    935  1.7  riastrad 	add_hole(&mm->head_node);
    936  1.1  riastrad 
    937  1.7  riastrad 	mm->scan_active = 0;
    938  1.1  riastrad }
    939  1.1  riastrad EXPORT_SYMBOL(drm_mm_init);
    940  1.1  riastrad 
    941  1.3  riastrad /**
    942  1.3  riastrad  * drm_mm_takedown - clean up a drm_mm allocator
    943  1.3  riastrad  * @mm: drm_mm allocator to clean up
    944  1.3  riastrad  *
    945  1.3  riastrad  * Note that it is a bug to call this function on an allocator which is not
    946  1.3  riastrad  * clean.
    947  1.3  riastrad  */
    948  1.7  riastrad void drm_mm_takedown(struct drm_mm *mm)
    949  1.1  riastrad {
    950  1.7  riastrad 	if (WARN(!drm_mm_clean(mm),
    951  1.7  riastrad 		 "Memory manager not clean during takedown.\n"))
    952  1.7  riastrad 		show_leaks(mm);
    953  1.3  riastrad }
    954  1.3  riastrad EXPORT_SYMBOL(drm_mm_takedown);
    955  1.1  riastrad 
    956  1.7  riastrad static u64 drm_mm_dump_hole(struct drm_printer *p, const struct drm_mm_node *entry)
    957  1.3  riastrad {
    958  1.7  riastrad 	u64 start, size;
    959  1.1  riastrad 
    960  1.7  riastrad 	size = entry->hole_size;
    961  1.7  riastrad 	if (size) {
    962  1.7  riastrad 		start = drm_mm_hole_node_start(entry);
    963  1.7  riastrad 		drm_printf(p, "%#018"PRIx64"-%#018"PRIx64": %"PRIu64": free\n",
    964  1.7  riastrad 			   start, start + size, size);
    965  1.1  riastrad 	}
    966  1.1  riastrad 
    967  1.7  riastrad 	return size;
    968  1.1  riastrad }
    969  1.3  riastrad /**
    970  1.7  riastrad  * drm_mm_print - print allocator state
    971  1.7  riastrad  * @mm: drm_mm allocator to print
    972  1.7  riastrad  * @p: DRM printer to use
    973  1.3  riastrad  */
    974  1.7  riastrad void drm_mm_print(const struct drm_mm *mm, struct drm_printer *p)
    975  1.1  riastrad {
    976  1.7  riastrad 	const struct drm_mm_node *entry;
    977  1.4  riastrad 	u64 total_used = 0, total_free = 0, total = 0;
    978  1.1  riastrad 
    979  1.7  riastrad 	total_free += drm_mm_dump_hole(p, &mm->head_node);
    980  1.1  riastrad 
    981  1.1  riastrad 	drm_mm_for_each_node(entry, mm) {
    982  1.7  riastrad 		drm_printf(p, "%#018llx-%#018llx: %llu: used\n", entry->start,
    983  1.4  riastrad 			   entry->start + entry->size, entry->size);
    984  1.1  riastrad 		total_used += entry->size;
    985  1.7  riastrad 		total_free += drm_mm_dump_hole(p, entry);
    986  1.1  riastrad 	}
    987  1.1  riastrad 	total = total_free + total_used;
    988  1.1  riastrad 
    989  1.7  riastrad 	drm_printf(p, "total: %llu, used %llu free %llu\n", total,
    990  1.4  riastrad 		   total_used, total_free);
    991  1.1  riastrad }
    992  1.7  riastrad EXPORT_SYMBOL(drm_mm_print);
    993