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My legal and preferred first names are SeongJae and SJ, respectively. I was using the legal name for commits and tags, while using the preferred name for conversations. It sometimes confuses people including myself. Consistently use the preferred name. Together remove copyright notes on files. Those are only confusing for people who are not familiar with the law. Meanwhile, we can infer the information in a better way from git logs and public information. Link: https://lore.kernel.org/20260630013820.143366-1-sj@kernel.org Signed-off-by: SJ Park <sj@kernel.org> Acked-by: Lorenzo Stoakes <ljs@kernel.org> Acked-by: David Hildenbrand (Arm) <david@kernel.org> Cc: Liam R. Howlett <liam@infradead.org> Cc: Michal Hocko <mhocko@suse.com> Cc: Mike Rapoport <rppt@kernel.org> Cc: Suren Baghdasaryan <surenb@google.com> Cc: Vlastimil Babka <vbabka@kernel.org> Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
1094 lines
40 KiB
C
1094 lines
40 KiB
C
/* SPDX-License-Identifier: GPL-2.0 */
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/*
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* DAMON api
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*/
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#ifndef _DAMON_H_
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#define _DAMON_H_
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#include <linux/math64.h>
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#include <linux/memcontrol.h>
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#include <linux/mutex.h>
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#include <linux/prandom.h>
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#include <linux/time64.h>
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#include <linux/types.h>
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/* Minimal region size. Every damon_region is aligned by this. */
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#define DAMON_MIN_REGION_SZ PAGE_SIZE
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/* Maximum number of monitoring probes. */
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#define DAMON_MAX_PROBES (4)
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/* Max priority score for DAMON-based operation schemes */
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#define DAMOS_MAX_SCORE (99)
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/**
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* struct damon_addr_range - Represents an address region of [@start, @end).
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* @start: Start address of the region (inclusive).
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* @end: End address of the region (exclusive).
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*/
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struct damon_addr_range {
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unsigned long start;
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unsigned long end;
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};
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/**
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* struct damon_size_range - Represents size for filter to operate on [@min, @max].
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* @min: Min size (inclusive).
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* @max: Max size (inclusive).
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*/
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struct damon_size_range {
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unsigned long min;
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unsigned long max;
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};
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/**
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* struct damon_region - Represents a monitoring target region.
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* @ar: The address range of the region.
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* @sampling_addr: Address of the sample for the next access check.
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* @nr_accesses: Access frequency of this region.
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* @nr_accesses_bp: @nr_accesses in basis point (0.01%) that updated for
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* each sampling interval.
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* @probe_hits: Number of probe-positive region samples.
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* @list: List head for siblings.
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* @age: Age of this region.
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*
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* For any use case, @ar should be non-zero positive size.
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*
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* @nr_accesses is reset to zero for every &damon_attrs->aggr_interval and be
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* increased for every &damon_attrs->sample_interval if an access to the region
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* during the last sampling interval is found. The update of this field should
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* not be done with direct access but with the helper function,
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* damon_update_region_access_rate().
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*
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* @nr_accesses_bp is another representation of @nr_accesses in basis point
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* (1 in 10,000) that updated for every &damon_attrs->sample_interval in a
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* manner similar to moving sum. By the algorithm, this value becomes
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* @nr_accesses * 10000 for every &struct damon_attrs->aggr_interval. This can
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* be used when the aggregation interval is too huge and therefore cannot wait
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* for it before getting the access monitoring results.
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*
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* @age is initially zero, increased for each aggregation interval, and reset
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* to zero again if the access frequency is significantly changed. If two
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* regions are merged into a new region, both @nr_accesses and @age of the new
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* region are set as region size-weighted average of those of the two regions.
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*/
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struct damon_region {
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struct damon_addr_range ar;
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unsigned long sampling_addr;
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unsigned int nr_accesses;
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unsigned int nr_accesses_bp;
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unsigned char probe_hits[DAMON_MAX_PROBES];
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struct list_head list;
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unsigned int age;
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/* private: Internal value for age calculation. */
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unsigned int last_nr_accesses;
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};
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/**
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* struct damon_target - Represents a monitoring target.
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* @pid: The PID of the virtual address space to monitor.
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* @nr_regions: Number of monitoring target regions of this target.
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* @regions_list: Head of the monitoring target regions of this target.
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* @list: List head for siblings.
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* @obsolete: Whether the commit destination target is obsolete.
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*
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* Each monitoring context could have multiple targets. For example, a context
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* for virtual memory address spaces could have multiple target processes. The
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* @pid should be set for appropriate &struct damon_operations including the
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* virtual address spaces monitoring operations.
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*
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* @obsolete is used only for damon_commit_targets() source targets, to specify
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* the matching destination targets are obsolete. Read damon_commit_targets()
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* to see how it is handled.
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*/
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struct damon_target {
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struct pid *pid;
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unsigned int nr_regions;
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struct list_head regions_list;
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struct list_head list;
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bool obsolete;
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};
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/**
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* enum damos_action - Represents an action of a Data Access Monitoring-based
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* Operation Scheme.
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*
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* @DAMOS_WILLNEED: Call ``madvise()`` for the region with MADV_WILLNEED.
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* @DAMOS_COLD: Call ``madvise()`` for the region with MADV_COLD.
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* @DAMOS_PAGEOUT: Reclaim the region.
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* @DAMOS_HUGEPAGE: Call ``madvise()`` for the region with MADV_HUGEPAGE.
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* @DAMOS_NOHUGEPAGE: Call ``madvise()`` for the region with MADV_NOHUGEPAGE.
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* @DAMOS_COLLAPSE: Call ``madvise()`` for the region with MADV_COLLAPSE.
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* @DAMOS_LRU_PRIO: Prioritize the region on its LRU lists.
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* @DAMOS_LRU_DEPRIO: Deprioritize the region on its LRU lists.
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* @DAMOS_MIGRATE_HOT: Migrate the regions prioritizing warmer regions.
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* @DAMOS_MIGRATE_COLD: Migrate the regions prioritizing colder regions.
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* @DAMOS_STAT: Do nothing but count the stat.
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* @NR_DAMOS_ACTIONS: Total number of DAMOS actions
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*
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* The support of each action is up to running &struct damon_operations.
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* Refer to 'Operation Action' section of Documentation/mm/damon/design.rst for
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* status of the supports.
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*
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* Note that DAMOS_PAGEOUT doesn't trigger demotions.
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*/
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enum damos_action {
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DAMOS_WILLNEED,
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DAMOS_COLD,
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DAMOS_PAGEOUT,
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DAMOS_HUGEPAGE,
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DAMOS_NOHUGEPAGE,
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DAMOS_COLLAPSE,
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DAMOS_LRU_PRIO,
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DAMOS_LRU_DEPRIO,
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DAMOS_MIGRATE_HOT,
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DAMOS_MIGRATE_COLD,
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DAMOS_STAT, /* Do nothing but only record the stat */
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NR_DAMOS_ACTIONS,
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};
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/**
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* enum damos_quota_goal_metric - Represents the metric to be used as the goal
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*
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* @DAMOS_QUOTA_USER_INPUT: User-input value.
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* @DAMOS_QUOTA_SOME_MEM_PSI_US: System level some memory PSI in us.
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* @DAMOS_QUOTA_NODE_MEM_USED_BP: MemUsed ratio of a node.
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* @DAMOS_QUOTA_NODE_MEM_FREE_BP: MemFree ratio of a node.
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* @DAMOS_QUOTA_NODE_MEMCG_USED_BP: MemUsed ratio of a node for a cgroup.
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* @DAMOS_QUOTA_NODE_MEMCG_FREE_BP: MemFree ratio of a node for a cgroup.
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* @DAMOS_QUOTA_ACTIVE_MEM_BP: Active to total LRU memory ratio.
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* @DAMOS_QUOTA_INACTIVE_MEM_BP: Inactive to total LRU memory ratio.
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* @DAMOS_QUOTA_NODE_ELIGIBLE_MEM_BP: Scheme-eligible memory ratio of a
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* node in basis points (0-10000).
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* @NR_DAMOS_QUOTA_GOAL_METRICS: Number of DAMOS quota goal metrics.
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*
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* Metrics equal to larger than @NR_DAMOS_QUOTA_GOAL_METRICS are unsupported.
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*/
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enum damos_quota_goal_metric {
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DAMOS_QUOTA_USER_INPUT,
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DAMOS_QUOTA_SOME_MEM_PSI_US,
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DAMOS_QUOTA_NODE_MEM_USED_BP,
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DAMOS_QUOTA_NODE_MEM_FREE_BP,
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DAMOS_QUOTA_NODE_MEMCG_USED_BP,
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DAMOS_QUOTA_NODE_MEMCG_FREE_BP,
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DAMOS_QUOTA_ACTIVE_MEM_BP,
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DAMOS_QUOTA_INACTIVE_MEM_BP,
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DAMOS_QUOTA_NODE_ELIGIBLE_MEM_BP,
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NR_DAMOS_QUOTA_GOAL_METRICS,
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};
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/**
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* struct damos_quota_goal - DAMOS scheme quota auto-tuning goal.
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* @metric: Metric to be used for representing the goal.
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* @target_value: Target value of @metric to achieve with the tuning.
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* @current_value: Current value of @metric.
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* @last_psi_total: Last measured total PSI
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* @nid: Node id.
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* @memcg_id: Memcg id.
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* @list: List head for siblings.
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*
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* Data structure for getting the current score of the quota tuning goal. The
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* score is calculated by how close @current_value and @target_value are. Then
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* the score is entered to DAMON's internal feedback loop mechanism to get the
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* auto-tuned quota.
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*
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* If @metric is DAMOS_QUOTA_USER_INPUT, @current_value should be manually
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* entered by the user, probably inside the kdamond callbacks. Otherwise,
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* DAMON sets @current_value with self-measured value of @metric.
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*
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* If @metric is DAMOS_QUOTA_NODE_MEM_{USED,FREE}_BP, @nid represents the node
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* id of the target node to account the used/free memory.
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*
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* If @metric is DAMOS_QUOTA_NODE_MEMCG_{USED,FREE}_BP, @nid and @memcg_id
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* represents the node id and the cgroup to account the used memory for.
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*/
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struct damos_quota_goal {
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enum damos_quota_goal_metric metric;
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unsigned long target_value;
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unsigned long current_value;
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/* metric-dependent fields */
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union {
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u64 last_psi_total;
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struct {
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int nid;
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u64 memcg_id;
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};
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};
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struct list_head list;
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};
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/**
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* enum damos_quota_goal_tuner - Goal-based quota tuning logic.
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* @DAMOS_QUOTA_GOAL_TUNER_CONSIST: Aim long term consistent quota.
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* @DAMOS_QUOTA_GOAL_TUNER_TEMPORAL: Aim zero quota asap.
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*/
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enum damos_quota_goal_tuner {
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DAMOS_QUOTA_GOAL_TUNER_CONSIST,
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DAMOS_QUOTA_GOAL_TUNER_TEMPORAL,
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};
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/**
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* struct damos_quota - Controls the aggressiveness of the given scheme.
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* @reset_interval: Charge reset interval in milliseconds.
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* @ms: Maximum milliseconds that the scheme can use.
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* @sz: Maximum bytes of memory that the action can be applied.
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* @goals: Head of quota tuning goals (&damos_quota_goal) list.
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* @goal_tuner: Goal-based @esz tuning algorithm to use.
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* @esz: Effective size quota in bytes.
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* @fail_charge_num: Failed regions charge rate numerator.
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* @fail_charge_denom: Failed regions charge rate denominator.
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*
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* @weight_sz: Weight of the region's size for prioritization.
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* @weight_nr_accesses: Weight of the region's nr_accesses for prioritization.
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* @weight_age: Weight of the region's age for prioritization.
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*
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* To avoid consuming too much CPU time or IO resources for applying the
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* &struct damos->action to large memory, DAMON allows users to set time and/or
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* size quotas. The quotas can be set by writing non-zero values to &ms and
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* &sz, respectively. If the time quota is set, DAMON tries to use only up to
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* &ms milliseconds within &reset_interval for applying the action. If the
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* size quota is set, DAMON tries to apply the action only up to &sz bytes
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* within &reset_interval.
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*
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* To convince the different types of quotas and goals, DAMON internally
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* converts those into one single size quota called "effective quota". DAMON
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* internally uses it as the only one real quota. The conversion is made as
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* follows.
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*
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* The time quota is transformed to a size quota using estimated throughput of
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* the scheme's action. DAMON then compares it against &sz and uses smaller
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* one as the effective quota.
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*
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* If @goals is not empty, DAMON calculates yet another size quota based on the
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* goals using its internal feedback loop algorithm, for every @reset_interval.
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* Then, if the new size quota is smaller than the effective quota, it uses the
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* new size quota as the effective quota.
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*
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* The resulting effective size quota in bytes is set to @esz.
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*
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* For DAMOS action applying failed amount of regions, charging those same to
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* those that the action has successfully applied may be unfair. For the
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* reason, 'the size * @fail_charge_num / @fail_charge_denom' is charged.
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*
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* For selecting regions within the quota, DAMON prioritizes current scheme's
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* target memory regions using the &struct damon_operations->get_scheme_score.
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* You could customize the prioritization logic by setting &weight_sz,
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* &weight_nr_accesses, and &weight_age, because monitoring operations are
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* encouraged to respect those.
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*/
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struct damos_quota {
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unsigned long reset_interval;
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unsigned long ms;
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unsigned long sz;
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struct list_head goals;
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enum damos_quota_goal_tuner goal_tuner;
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unsigned long esz;
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unsigned int fail_charge_num;
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unsigned int fail_charge_denom;
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unsigned int weight_sz;
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unsigned int weight_nr_accesses;
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unsigned int weight_age;
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/* private: */
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/* For throughput estimation */
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unsigned long total_charged_sz;
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unsigned long total_charged_ns;
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/* For charging the quota */
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unsigned long charged_sz;
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unsigned long charged_from;
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struct damon_target *charge_target_from;
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unsigned long charge_addr_from;
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/* For prioritization */
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unsigned int min_score;
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/* For feedback loop */
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unsigned long esz_bp;
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};
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/**
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* enum damos_wmark_metric - Represents the watermark metric.
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*
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* @DAMOS_WMARK_NONE: Ignore the watermarks of the given scheme.
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* @DAMOS_WMARK_FREE_MEM_RATE: Free memory rate of the system in [0,1000].
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* @NR_DAMOS_WMARK_METRICS: Total number of DAMOS watermark metrics
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*/
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enum damos_wmark_metric {
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DAMOS_WMARK_NONE,
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DAMOS_WMARK_FREE_MEM_RATE,
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NR_DAMOS_WMARK_METRICS,
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};
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/**
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* struct damos_watermarks - Controls when a given scheme should be activated.
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* @metric: Metric for the watermarks.
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* @interval: Watermarks check time interval in microseconds.
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* @high: High watermark.
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* @mid: Middle watermark.
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* @low: Low watermark.
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*
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* If &metric is &DAMOS_WMARK_NONE, the scheme is always active. Being active
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* means DAMON does monitoring and applying the action of the scheme to
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* appropriate memory regions. Else, DAMON checks &metric of the system for at
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* least every &interval microseconds and works as below.
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*
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* If &metric is higher than &high, the scheme is inactivated. If &metric is
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* between &mid and &low, the scheme is activated. If &metric is lower than
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* &low, the scheme is inactivated.
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*/
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struct damos_watermarks {
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enum damos_wmark_metric metric;
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unsigned long interval;
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unsigned long high;
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unsigned long mid;
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unsigned long low;
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/* private: */
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bool activated;
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};
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/**
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* struct damos_stat - Statistics on a given scheme.
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* @nr_tried: Total number of regions that the scheme is tried to be applied.
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* @sz_tried: Total size of regions that the scheme is tried to be applied.
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* @nr_applied: Total number of regions that the scheme is applied.
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* @sz_applied: Total size of regions that the scheme is applied.
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* @sz_ops_filter_passed:
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* Total bytes that passed ops layer-handled DAMOS filters.
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* @qt_exceeds: Total number of times the quota of the scheme has exceeded.
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* @nr_snapshots:
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* Total number of DAMON snapshots that the scheme has tried.
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*
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* "Tried an action to a region" in this context means the DAMOS core logic
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* determined the region as eligible to apply the action. The access pattern
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* (&struct damos_access_pattern), quotas (&struct damos_quota), watermarks
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* (&struct damos_watermarks) and filters (&struct damos_filter) that handled
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* on core logic can affect this. The core logic asks the operation set
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* (&struct damon_operations) to apply the action to the region.
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*
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* "Applied an action to a region" in this context means the operation set
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* (&struct damon_operations) successfully applied the action to the region, at
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* least to a part of the region. The filters (&struct damos_filter) that
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* handled on operation set layer and type of the action and pages of the
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* region can affect this. For example, if a filter is set to exclude
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* anonymous pages and the region has only anonymous pages, the region will be
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* failed at applying the action. If the action is &DAMOS_PAGEOUT and all
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* pages of the region are already paged out, the region will be failed at
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* applying the action.
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*/
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struct damos_stat {
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unsigned long nr_tried;
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unsigned long sz_tried;
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unsigned long nr_applied;
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unsigned long sz_applied;
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unsigned long sz_ops_filter_passed;
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unsigned long qt_exceeds;
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unsigned long nr_snapshots;
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};
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/**
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* enum damos_filter_type - Type of memory for &struct damos_filter
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* @DAMOS_FILTER_TYPE_ANON: Anonymous pages.
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* @DAMOS_FILTER_TYPE_ACTIVE: Active pages.
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* @DAMOS_FILTER_TYPE_MEMCG: Specific memcg's pages.
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* @DAMOS_FILTER_TYPE_YOUNG: Recently accessed pages.
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* @DAMOS_FILTER_TYPE_HUGEPAGE_SIZE: Page is part of a hugepage.
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* @DAMOS_FILTER_TYPE_UNMAPPED: Unmapped pages.
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* @DAMOS_FILTER_TYPE_ADDR: Address range.
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* @DAMOS_FILTER_TYPE_TARGET: Data Access Monitoring target.
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* @NR_DAMOS_FILTER_TYPES: Number of filter types.
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*
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* The anon pages type and memcg type filters are handled by underlying
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* &struct damon_operations as a part of scheme action trying, and therefore
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* accounted as 'tried'. In contrast, other types are handled by core layer
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* before trying of the action and therefore not accounted as 'tried'.
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*
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* The support of the filters that handled by &struct damon_operations depend
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* on the running &struct damon_operations.
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* &enum DAMON_OPS_PADDR supports both anon pages type and memcg type filters,
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* while &enum DAMON_OPS_VADDR and &enum DAMON_OPS_FVADDR don't support any of
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* the two types.
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*/
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enum damos_filter_type {
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DAMOS_FILTER_TYPE_ANON,
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DAMOS_FILTER_TYPE_ACTIVE,
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DAMOS_FILTER_TYPE_MEMCG,
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DAMOS_FILTER_TYPE_YOUNG,
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DAMOS_FILTER_TYPE_HUGEPAGE_SIZE,
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DAMOS_FILTER_TYPE_UNMAPPED,
|
|
DAMOS_FILTER_TYPE_ADDR,
|
|
DAMOS_FILTER_TYPE_TARGET,
|
|
NR_DAMOS_FILTER_TYPES,
|
|
};
|
|
|
|
/**
|
|
* struct damos_filter - DAMOS action target memory filter.
|
|
* @type: Type of the target memory.
|
|
* @matching: Whether this is for @type-matching memory.
|
|
* @allow: Whether to include or exclude the @matching memory.
|
|
* @memcg_id: Memcg id of the question if @type is DAMOS_FILTER_MEMCG.
|
|
* @addr_range: Address range if @type is DAMOS_FILTER_TYPE_ADDR.
|
|
* @target_idx: Index of the &struct damon_target of
|
|
* &damon_ctx->adaptive_targets if @type is
|
|
* DAMOS_FILTER_TYPE_TARGET.
|
|
* @sz_range: Size range if @type is DAMOS_FILTER_TYPE_HUGEPAGE_SIZE.
|
|
* @list: List head for siblings.
|
|
*
|
|
* Before applying the &damos->action to a memory region, DAMOS checks if each
|
|
* byte of the region matches to this given condition and avoid applying the
|
|
* action if so. Support of each filter type depends on the running &struct
|
|
* damon_operations and the type. Refer to &enum damos_filter_type for more
|
|
* details.
|
|
*/
|
|
struct damos_filter {
|
|
enum damos_filter_type type;
|
|
bool matching;
|
|
bool allow;
|
|
union {
|
|
u64 memcg_id;
|
|
struct damon_addr_range addr_range;
|
|
int target_idx;
|
|
struct damon_size_range sz_range;
|
|
};
|
|
struct list_head list;
|
|
};
|
|
|
|
struct damon_ctx;
|
|
struct damos;
|
|
|
|
/**
|
|
* struct damos_walk_control - Control damos_walk().
|
|
*
|
|
* @walk_fn: Function to be called back for each region.
|
|
* @data: Data that will be passed to walk functions.
|
|
*
|
|
* Control damos_walk(), which requests specific kdamond to invoke the given
|
|
* function to each region that eligible to apply actions of the kdamond's
|
|
* schemes. Refer to damos_walk() for more details.
|
|
*/
|
|
struct damos_walk_control {
|
|
void (*walk_fn)(void *data, struct damon_ctx *ctx,
|
|
struct damon_target *t, struct damon_region *r,
|
|
struct damos *s, unsigned long sz_filter_passed);
|
|
void *data;
|
|
/* private: internal use only */
|
|
/* informs if the kdamond finished handling of the walk request */
|
|
struct completion completion;
|
|
/* informs if the walk is canceled. */
|
|
bool canceled;
|
|
};
|
|
|
|
/**
|
|
* struct damos_access_pattern - Target access pattern of the given scheme.
|
|
* @min_sz_region: Minimum size of target regions.
|
|
* @max_sz_region: Maximum size of target regions.
|
|
* @min_nr_accesses: Minimum ``->nr_accesses`` of target regions.
|
|
* @max_nr_accesses: Maximum ``->nr_accesses`` of target regions.
|
|
* @min_age_region: Minimum age of target regions.
|
|
* @max_age_region: Maximum age of target regions.
|
|
*/
|
|
struct damos_access_pattern {
|
|
unsigned long min_sz_region;
|
|
unsigned long max_sz_region;
|
|
unsigned int min_nr_accesses;
|
|
unsigned int max_nr_accesses;
|
|
unsigned int min_age_region;
|
|
unsigned int max_age_region;
|
|
};
|
|
|
|
/**
|
|
* struct damos_migrate_dests - Migration destination nodes and their weights.
|
|
* @node_id_arr: Array of migration destination node ids.
|
|
* @weight_arr: Array of migration weights for @node_id_arr.
|
|
* @nr_dests: Length of the @node_id_arr and @weight_arr arrays.
|
|
*
|
|
* @node_id_arr is an array of the ids of migration destination nodes.
|
|
* @weight_arr is an array of the weights for those. The weights in
|
|
* @weight_arr are for nodes in @node_id_arr of same array index.
|
|
*/
|
|
struct damos_migrate_dests {
|
|
unsigned int *node_id_arr;
|
|
unsigned int *weight_arr;
|
|
size_t nr_dests;
|
|
};
|
|
|
|
/**
|
|
* struct damos - Represents a Data Access Monitoring-based Operation Scheme.
|
|
* @pattern: Access pattern of target regions.
|
|
* @action: &damos_action to be applied to the target regions.
|
|
* @apply_interval_us: The time between applying the @action.
|
|
* @quota: Control the aggressiveness of this scheme.
|
|
* @wmarks: Watermarks for automated (in)activation of this scheme.
|
|
* @migrate_dests: Destination nodes if @action is "migrate_{hot,cold}".
|
|
* @target_nid: Destination node if @action is "migrate_{hot,cold}".
|
|
* @core_filters: Additional set of &struct damos_filter for &action.
|
|
* @ops_filters: ops layer handling &struct damos_filter objects list.
|
|
* @last_applied: Last @action applied ops-managing entity.
|
|
* @stat: Statistics of this scheme.
|
|
* @max_nr_snapshots: Upper limit of nr_snapshots stat.
|
|
* @list: List head for siblings.
|
|
*
|
|
* For each @apply_interval_us, DAMON finds regions which fit in the
|
|
* &pattern and applies &action to those. To avoid consuming too much
|
|
* CPU time or IO resources for the &action, "a is used.
|
|
*
|
|
* If @apply_interval_us is zero, &damon_attrs->aggr_interval is used instead.
|
|
*
|
|
* To do the work only when needed, schemes can be activated for specific
|
|
* system situations using &wmarks. If all schemes that registered to the
|
|
* monitoring context are inactive, DAMON stops monitoring either, and just
|
|
* repeatedly checks the watermarks.
|
|
*
|
|
* @migrate_dests specifies multiple migration target nodes with different
|
|
* weights for migrate_hot or migrate_cold actions. @target_nid is ignored if
|
|
* this is set.
|
|
*
|
|
* @target_nid is used to set the migration target node for migrate_hot or
|
|
* migrate_cold actions, and @migrate_dests is unset.
|
|
*
|
|
* Before applying the &action to a memory region, &struct damon_operations
|
|
* implementation could check pages of the region and skip &action to respect
|
|
* &core_filters
|
|
*
|
|
* The minimum entity that @action can be applied depends on the underlying
|
|
* &struct damon_operations. Since it may not be aligned with the core layer
|
|
* abstract, namely &struct damon_region, &struct damon_operations could apply
|
|
* @action to same entity multiple times. Large folios that underlying on
|
|
* multiple &struct damon region objects could be such examples. The &struct
|
|
* damon_operations can use @last_applied to avoid that. DAMOS core logic
|
|
* unsets @last_applied when each regions walking for applying the scheme is
|
|
* finished.
|
|
*
|
|
* After applying the &action to each region, &stat is updated.
|
|
*
|
|
* If &max_nr_snapshots is set as non-zero and &stat.nr_snapshots be same to or
|
|
* greater than it, the scheme is deactivated.
|
|
*/
|
|
struct damos {
|
|
struct damos_access_pattern pattern;
|
|
enum damos_action action;
|
|
unsigned long apply_interval_us;
|
|
/* private: internal use only */
|
|
/*
|
|
* number of sample intervals that should be passed before applying
|
|
* @action
|
|
*/
|
|
unsigned long next_apply_sis;
|
|
/* informs if ongoing DAMOS walk for this scheme is finished */
|
|
bool walk_completed;
|
|
/*
|
|
* If the current region in the filtering stage is allowed by core
|
|
* layer-handled filters. If true, operations layer allows it, too.
|
|
*/
|
|
bool core_filters_allowed;
|
|
/* whether to reject core/ops filters umatched regions */
|
|
bool core_filters_default_reject;
|
|
bool ops_filters_default_reject;
|
|
/* public: */
|
|
struct damos_quota quota;
|
|
struct damos_watermarks wmarks;
|
|
union {
|
|
struct {
|
|
int target_nid;
|
|
struct damos_migrate_dests migrate_dests;
|
|
};
|
|
};
|
|
struct list_head core_filters;
|
|
struct list_head ops_filters;
|
|
void *last_applied;
|
|
struct damos_stat stat;
|
|
unsigned long max_nr_snapshots;
|
|
struct list_head list;
|
|
};
|
|
|
|
/**
|
|
* enum damon_ops_id - Identifier for each monitoring operations implementation
|
|
*
|
|
* @DAMON_OPS_VADDR: Monitoring operations for virtual address spaces
|
|
* @DAMON_OPS_FVADDR: Monitoring operations for only fixed ranges of virtual
|
|
* address spaces
|
|
* @DAMON_OPS_PADDR: Monitoring operations for the physical address space
|
|
* @NR_DAMON_OPS: Number of monitoring operations implementations
|
|
*/
|
|
enum damon_ops_id {
|
|
DAMON_OPS_VADDR,
|
|
DAMON_OPS_FVADDR,
|
|
DAMON_OPS_PADDR,
|
|
NR_DAMON_OPS,
|
|
};
|
|
|
|
/**
|
|
* struct damon_operations - Monitoring operations for given use cases.
|
|
*
|
|
* @id: Identifier of this operations set.
|
|
* @init: Initialize operations-related data structures.
|
|
* @update: Update operations-related data structures.
|
|
* @prepare_access_checks: Prepare next access check of target regions.
|
|
* @check_accesses: Check the accesses to target regions.
|
|
* @apply_probes: Apply probes for each region.
|
|
* @get_scheme_score: Get the score of a region for a scheme.
|
|
* @apply_scheme: Apply a DAMON-based operation scheme.
|
|
* @target_valid: Determine if the target is valid.
|
|
* @cleanup_target: Clean up each target before deallocation.
|
|
*
|
|
* DAMON can be extended for various address spaces and usages. For this,
|
|
* users should register the low level operations for their target address
|
|
* space and usecase via the &damon_ctx.ops. Then, the monitoring thread
|
|
* (&damon_ctx.kdamond) calls @init and @prepare_access_checks before starting
|
|
* the monitoring, @update after each &damon_attrs.ops_update_interval, and
|
|
* @check_accesses, @target_valid and @prepare_access_checks after each
|
|
* &damon_attrs.sample_interval.
|
|
*
|
|
* Each &struct damon_operations instance having valid @id can be registered
|
|
* via damon_register_ops() and selected by damon_select_ops() later.
|
|
* @init should initialize operations-related data structures. For example,
|
|
* this could be used to construct proper monitoring target regions and link
|
|
* those to @damon_ctx.adaptive_targets.
|
|
* @update should update the operations-related data structures. For example,
|
|
* this could be used to update monitoring target regions for current status.
|
|
* @prepare_access_checks should manipulate the monitoring regions to be
|
|
* prepared for the next access check.
|
|
* @check_accesses should check the accesses to each region that made after the
|
|
* last preparation and update the number of observed accesses of each region.
|
|
* It should also return max number of observed accesses that made as a result
|
|
* of its update. The value will be used for regions adjustment threshold.
|
|
* @apply_probes should apply the data attribute probes to each region and
|
|
* accordingly update the probe hits counter of the region.
|
|
* @get_scheme_score should return the priority score of a region for a scheme
|
|
* as an integer in [0, &DAMOS_MAX_SCORE].
|
|
* @apply_scheme is called from @kdamond when a region for user provided
|
|
* DAMON-based operation scheme is found. It should apply the scheme's action
|
|
* to the region and return bytes of the region that the action is successfully
|
|
* applied. It should also report how many bytes of the region has passed
|
|
* filters (&struct damos_filter) that handled by itself.
|
|
* @target_valid should check whether the target is still valid for the
|
|
* monitoring.
|
|
* @cleanup_target is called before the target will be deallocated.
|
|
*/
|
|
struct damon_operations {
|
|
enum damon_ops_id id;
|
|
void (*init)(struct damon_ctx *context);
|
|
void (*update)(struct damon_ctx *context);
|
|
void (*prepare_access_checks)(struct damon_ctx *context);
|
|
unsigned int (*check_accesses)(struct damon_ctx *context);
|
|
void (*apply_probes)(struct damon_ctx *context);
|
|
int (*get_scheme_score)(struct damon_ctx *context,
|
|
struct damon_region *r, struct damos *scheme);
|
|
unsigned long (*apply_scheme)(struct damon_ctx *context,
|
|
struct damon_target *t, struct damon_region *r,
|
|
struct damos *scheme, unsigned long *sz_filter_passed);
|
|
bool (*target_valid)(struct damon_target *t);
|
|
void (*cleanup_target)(struct damon_target *t);
|
|
};
|
|
|
|
/*
|
|
* struct damon_call_control - Control damon_call().
|
|
*
|
|
* @fn: Function to be called back.
|
|
* @data: Data that will be passed to @fn.
|
|
* @repeat: Repeat invocations.
|
|
* @return_code: Return code from @fn invocation.
|
|
* @dealloc_on_cancel: If @repeat is true, de-allocate when canceled.
|
|
*
|
|
* Control damon_call(), which requests specific kdamond to invoke a given
|
|
* function. Refer to damon_call() for more details.
|
|
*/
|
|
struct damon_call_control {
|
|
int (*fn)(void *data);
|
|
void *data;
|
|
bool repeat;
|
|
int return_code;
|
|
bool dealloc_on_cancel;
|
|
/* private: internal use only */
|
|
/* informs if the kdamond finished handling of the request */
|
|
struct completion completion;
|
|
/* informs if the kdamond canceled @fn infocation */
|
|
bool canceled;
|
|
/* List head for siblings. */
|
|
struct list_head list;
|
|
};
|
|
|
|
/**
|
|
* struct damon_intervals_goal - Monitoring intervals auto-tuning goal.
|
|
*
|
|
* @access_bp: Access events observation ratio to achieve in bp.
|
|
* @aggrs: Number of aggregations to achieve @access_bp within.
|
|
* @min_sample_us: Minimum resulting sampling interval in microseconds.
|
|
* @max_sample_us: Maximum resulting sampling interval in microseconds.
|
|
*
|
|
* DAMON automatically tunes &damon_attrs->sample_interval and
|
|
* &damon_attrs->aggr_interval aiming the ratio in bp (1/10,000) of
|
|
* DAMON-observed access events to theoretical maximum amount within @aggrs
|
|
* aggregations be same to @access_bp. The logic increases
|
|
* &damon_attrs->aggr_interval and &damon_attrs->sampling_interval in same
|
|
* ratio if the current access events observation ratio is lower than the
|
|
* target for each @aggrs aggregations, and vice versa.
|
|
*
|
|
* If @aggrs is zero, the tuning is disabled and hence this struct is ignored.
|
|
*/
|
|
struct damon_intervals_goal {
|
|
unsigned long access_bp;
|
|
unsigned long aggrs;
|
|
unsigned long min_sample_us;
|
|
unsigned long max_sample_us;
|
|
};
|
|
|
|
/**
|
|
* enum damon_filter_type - Type of &struct damon_filter
|
|
*
|
|
* @DAMON_FILTER_TYPE_ANON: Anonymous pages.
|
|
* @DAMON_FILTER_TYPE_MEMCG: Specific memcg's pages.
|
|
*/
|
|
enum damon_filter_type {
|
|
DAMON_FILTER_TYPE_ANON,
|
|
DAMON_FILTER_TYPE_MEMCG,
|
|
};
|
|
|
|
/**
|
|
* struct damon_filter - DAMON region filter for &struct damon_probe.
|
|
*
|
|
* @type: Type of the region.
|
|
* @matching: Whether this filter is for the type-matching ones.
|
|
* @allow: Whether the @type-@matching ones should pass this filter.
|
|
* @memcg_id: Memcg id of the question if @type is DAMON_FILTER_MEMCG.
|
|
* @list: Siblings list.
|
|
*/
|
|
struct damon_filter {
|
|
enum damon_filter_type type;
|
|
bool matching;
|
|
bool allow;
|
|
union {
|
|
u64 memcg_id;
|
|
};
|
|
struct list_head list;
|
|
};
|
|
|
|
/**
|
|
* struct damon_probe - Data region attribute probe.
|
|
*
|
|
* @filters: Filters for assessing if a given region is for this probe.
|
|
* @list: Siblings list.
|
|
*/
|
|
struct damon_probe {
|
|
struct list_head filters;
|
|
struct list_head list;
|
|
};
|
|
|
|
/**
|
|
* struct damon_attrs - Monitoring attributes for accuracy/overhead control.
|
|
*
|
|
* @sample_interval: The time between access samplings.
|
|
* @aggr_interval: The time between monitor results aggregations.
|
|
* @ops_update_interval: The time between monitoring operations updates.
|
|
* @intervals_goal: Intervals auto-tuning goal.
|
|
* @min_nr_regions: The minimum number of adaptive monitoring
|
|
* regions.
|
|
* @max_nr_regions: The maximum number of adaptive monitoring
|
|
* regions.
|
|
*
|
|
* For each @sample_interval, DAMON checks whether each region is accessed or
|
|
* not during the last @sample_interval. If such access is found, DAMON
|
|
* aggregates the information by increasing &damon_region->nr_accesses for
|
|
* @aggr_interval time. For each @aggr_interval, the count is reset. DAMON
|
|
* also checks whether the target memory regions need update (e.g., by
|
|
* ``mmap()`` calls from the application, in case of virtual memory monitoring)
|
|
* and applies the changes for each @ops_update_interval. All time intervals
|
|
* are in micro-seconds. Please refer to &struct damon_operations and &struct
|
|
* damon_call_control for more detail.
|
|
*/
|
|
struct damon_attrs {
|
|
unsigned long sample_interval;
|
|
unsigned long aggr_interval;
|
|
unsigned long ops_update_interval;
|
|
struct damon_intervals_goal intervals_goal;
|
|
unsigned long min_nr_regions;
|
|
unsigned long max_nr_regions;
|
|
/* private: internal use only */
|
|
/*
|
|
* @aggr_interval to @sample_interval ratio.
|
|
* Core-external components call damon_set_attrs() with &damon_attrs
|
|
* that this field is unset. In the case, damon_set_attrs() sets this
|
|
* field of resulting &damon_attrs. Core-internal components such as
|
|
* kdamond_tune_intervals() calls damon_set_attrs() with &damon_attrs
|
|
* that this field is set. In the case, damon_set_attrs() just keep
|
|
* it.
|
|
*/
|
|
unsigned long aggr_samples;
|
|
};
|
|
|
|
/**
|
|
* struct damon_ctx - Represents a context for each monitoring. This is the
|
|
* main interface that allows users to set the attributes and get the results
|
|
* of the monitoring.
|
|
*
|
|
* @attrs: Monitoring attributes for accuracy/overhead control.
|
|
*
|
|
* For each monitoring context, one kernel thread for the monitoring, namely
|
|
* kdamond, is created. The pid of kdamond can be retrieved using
|
|
* damon_kdamond_pid().
|
|
*
|
|
* Once started, kdamond runs until explicitly required to be terminated or
|
|
* every monitoring target is invalid. The validity of the targets is checked
|
|
* via the &damon_operations.target_valid of @ops. The termination can also be
|
|
* explicitly requested by calling damon_stop(). To know if a kdamond is
|
|
* running, damon_is_running() can be used.
|
|
*
|
|
* While the kdamond is running, all accesses to &struct damon_ctx from a
|
|
* thread other than the kdamond should be made using safe DAMON APIs,
|
|
* including damon_call() and damos_walk().
|
|
*
|
|
* @ops: Set of monitoring operations for given use cases.
|
|
* @probes: Head of probes (&damon_probe) list.
|
|
* @addr_unit: Scale factor for core to ops address conversion.
|
|
* @min_region_sz: Minimum region size.
|
|
* @pause: Pause kdamond main loop.
|
|
* @adaptive_targets: Head of monitoring targets (&damon_target) list.
|
|
* @schemes: Head of schemes (&damos) list.
|
|
* @rnd_state: Per-ctx PRNG state for damon_rand().
|
|
*/
|
|
struct damon_ctx {
|
|
struct damon_attrs attrs;
|
|
|
|
/* private: internal use only */
|
|
/* number of sample intervals that passed since this context started */
|
|
unsigned long passed_sample_intervals;
|
|
/*
|
|
* number of sample intervals that should be passed before next
|
|
* aggregation
|
|
*/
|
|
unsigned long next_aggregation_sis;
|
|
/*
|
|
* number of sample intervals that should be passed before next ops
|
|
* update
|
|
*/
|
|
unsigned long next_ops_update_sis;
|
|
/*
|
|
* number of sample intervals that should be passed before next
|
|
* intervals tuning
|
|
*/
|
|
unsigned long next_intervals_tune_sis;
|
|
/* for waiting until the execution of the kdamond_fn is started */
|
|
struct completion kdamond_started;
|
|
/* for scheme quotas prioritization */
|
|
unsigned long *regions_score_histogram;
|
|
|
|
/* lists of &struct damon_call_control */
|
|
struct list_head call_controls;
|
|
bool call_controls_obsolete;
|
|
struct mutex call_controls_lock;
|
|
|
|
struct damos_walk_control *walk_control;
|
|
bool walk_control_obsolete;
|
|
struct mutex walk_control_lock;
|
|
|
|
/*
|
|
* indicate if this may be corrupted. Currentonly this is set only for
|
|
* damon_commit_ctx() failure.
|
|
*/
|
|
bool maybe_corrupted;
|
|
|
|
/* Working thread of the given DAMON context */
|
|
struct task_struct *kdamond;
|
|
/* Protects @kdamond field access */
|
|
struct mutex kdamond_lock;
|
|
|
|
/* public: */
|
|
struct damon_operations ops;
|
|
struct list_head probes;
|
|
unsigned long addr_unit;
|
|
unsigned long min_region_sz;
|
|
bool pause;
|
|
|
|
struct list_head adaptive_targets;
|
|
struct list_head schemes;
|
|
|
|
struct rnd_state rnd_state;
|
|
};
|
|
|
|
/* Get a random number in [@l, @r) using @ctx's lockless PRNG. */
|
|
static inline unsigned long damon_rand(struct damon_ctx *ctx,
|
|
unsigned long l, unsigned long r)
|
|
{
|
|
unsigned long span = r - l;
|
|
u64 rnd;
|
|
|
|
if (span <= U32_MAX) {
|
|
rnd = prandom_u32_state(&ctx->rnd_state);
|
|
return l + (unsigned long)((rnd * span) >> 32);
|
|
}
|
|
rnd = ((u64)prandom_u32_state(&ctx->rnd_state) << 32) |
|
|
prandom_u32_state(&ctx->rnd_state);
|
|
return l + mul_u64_u64_shr(rnd, span, 64);
|
|
}
|
|
|
|
static inline struct damon_region *damon_next_region(struct damon_region *r)
|
|
{
|
|
return container_of(r->list.next, struct damon_region, list);
|
|
}
|
|
|
|
static inline struct damon_region *damon_prev_region(struct damon_region *r)
|
|
{
|
|
return container_of(r->list.prev, struct damon_region, list);
|
|
}
|
|
|
|
static inline struct damon_region *damon_last_region(struct damon_target *t)
|
|
{
|
|
return list_last_entry(&t->regions_list, struct damon_region, list);
|
|
}
|
|
|
|
static inline struct damon_region *damon_first_region(struct damon_target *t)
|
|
{
|
|
return list_first_entry(&t->regions_list, struct damon_region, list);
|
|
}
|
|
|
|
static inline unsigned long damon_sz_region(struct damon_region *r)
|
|
{
|
|
return r->ar.end - r->ar.start;
|
|
}
|
|
|
|
#define damon_for_each_filter(f, p) \
|
|
list_for_each_entry(f, &(p)->filters, list)
|
|
|
|
#define damon_for_each_filter_safe(f, next, p) \
|
|
list_for_each_entry_safe(f, next, &(p)->filters, list)
|
|
|
|
#define damon_for_each_probe(p, ctx) \
|
|
list_for_each_entry(p, &(ctx)->probes, list)
|
|
|
|
#define damon_for_each_probe_safe(p, next, ctx) \
|
|
list_for_each_entry_safe(p, next, &(ctx)->probes, list)
|
|
|
|
#define damon_for_each_region(r, t) \
|
|
list_for_each_entry(r, &(t)->regions_list, list)
|
|
|
|
#define damon_for_each_region_from(r, t) \
|
|
list_for_each_entry_from(r, &(t)->regions_list, list)
|
|
|
|
#define damon_for_each_region_safe(r, next, t) \
|
|
list_for_each_entry_safe(r, next, &(t)->regions_list, list)
|
|
|
|
#define damon_for_each_target(t, ctx) \
|
|
list_for_each_entry(t, &(ctx)->adaptive_targets, list)
|
|
|
|
#define damon_for_each_target_safe(t, next, ctx) \
|
|
list_for_each_entry_safe(t, next, &(ctx)->adaptive_targets, list)
|
|
|
|
#define damon_for_each_scheme(s, ctx) \
|
|
list_for_each_entry(s, &(ctx)->schemes, list)
|
|
|
|
#define damon_for_each_scheme_safe(s, next, ctx) \
|
|
list_for_each_entry_safe(s, next, &(ctx)->schemes, list)
|
|
|
|
#define damos_for_each_quota_goal(goal, quota) \
|
|
list_for_each_entry(goal, &(quota)->goals, list)
|
|
|
|
#define damos_for_each_quota_goal_safe(goal, next, quota) \
|
|
list_for_each_entry_safe(goal, next, &(quota)->goals, list)
|
|
|
|
#define damos_for_each_core_filter(f, scheme) \
|
|
list_for_each_entry(f, &(scheme)->core_filters, list)
|
|
|
|
#define damos_for_each_core_filter_safe(f, next, scheme) \
|
|
list_for_each_entry_safe(f, next, &(scheme)->core_filters, list)
|
|
|
|
#define damos_for_each_ops_filter(f, scheme) \
|
|
list_for_each_entry(f, &(scheme)->ops_filters, list)
|
|
|
|
#define damos_for_each_ops_filter_safe(f, next, scheme) \
|
|
list_for_each_entry_safe(f, next, &(scheme)->ops_filters, list)
|
|
|
|
#ifdef CONFIG_DAMON
|
|
|
|
struct damon_filter *damon_new_filter(enum damon_filter_type type,
|
|
bool matching, bool allow);
|
|
void damon_add_filter(struct damon_probe *probe, struct damon_filter *f);
|
|
void damon_destroy_filter(struct damon_filter *f);
|
|
|
|
struct damon_probe *damon_new_probe(void);
|
|
void damon_add_probe(struct damon_ctx *ctx, struct damon_probe *probe);
|
|
|
|
struct damon_region *damon_new_region(unsigned long start, unsigned long end);
|
|
|
|
int damon_set_regions(struct damon_target *t, struct damon_addr_range *ranges,
|
|
unsigned int nr_ranges, unsigned long min_region_sz);
|
|
void damon_update_region_access_rate(struct damon_region *r, bool accessed,
|
|
struct damon_attrs *attrs);
|
|
|
|
struct damos_filter *damos_new_filter(enum damos_filter_type type,
|
|
bool matching, bool allow);
|
|
void damos_add_filter(struct damos *s, struct damos_filter *f);
|
|
bool damos_filter_for_ops(enum damos_filter_type type);
|
|
void damos_destroy_filter(struct damos_filter *f);
|
|
|
|
struct damos_quota_goal *damos_new_quota_goal(
|
|
enum damos_quota_goal_metric metric,
|
|
unsigned long target_value);
|
|
void damos_add_quota_goal(struct damos_quota *q, struct damos_quota_goal *g);
|
|
void damos_destroy_quota_goal(struct damos_quota_goal *goal);
|
|
|
|
struct damos *damon_new_scheme(struct damos_access_pattern *pattern,
|
|
enum damos_action action,
|
|
unsigned long apply_interval_us,
|
|
struct damos_quota *quota,
|
|
struct damos_watermarks *wmarks,
|
|
int target_nid);
|
|
void damon_add_scheme(struct damon_ctx *ctx, struct damos *s);
|
|
void damon_destroy_scheme(struct damos *s);
|
|
int damos_commit_quota_goals(struct damos_quota *dst, struct damos_quota *src);
|
|
|
|
struct damon_target *damon_new_target(void);
|
|
void damon_add_target(struct damon_ctx *ctx, struct damon_target *t);
|
|
bool damon_targets_empty(struct damon_ctx *ctx);
|
|
void damon_free_target(struct damon_target *t);
|
|
void damon_destroy_target(struct damon_target *t, struct damon_ctx *ctx);
|
|
unsigned int damon_nr_regions(struct damon_target *t);
|
|
|
|
struct damon_ctx *damon_new_ctx(void);
|
|
void damon_destroy_ctx(struct damon_ctx *ctx);
|
|
int damon_set_attrs(struct damon_ctx *ctx, struct damon_attrs *attrs);
|
|
void damon_set_schemes(struct damon_ctx *ctx,
|
|
struct damos **schemes, ssize_t nr_schemes);
|
|
int damon_commit_ctx(struct damon_ctx *old_ctx, struct damon_ctx *new_ctx);
|
|
int damon_nr_running_ctxs(void);
|
|
bool damon_is_registered_ops(enum damon_ops_id id);
|
|
int damon_register_ops(struct damon_operations *ops);
|
|
int damon_select_ops(struct damon_ctx *ctx, enum damon_ops_id id);
|
|
|
|
static inline bool damon_target_has_pid(const struct damon_ctx *ctx)
|
|
{
|
|
return ctx->ops.id == DAMON_OPS_VADDR || ctx->ops.id == DAMON_OPS_FVADDR;
|
|
}
|
|
|
|
static inline unsigned int damon_max_nr_accesses(const struct damon_attrs *attrs)
|
|
{
|
|
unsigned long sample_interval;
|
|
unsigned long max_nr_accesses;
|
|
|
|
sample_interval = attrs->sample_interval ? : 1;
|
|
max_nr_accesses = min(attrs->aggr_interval / sample_interval,
|
|
(unsigned long)UINT_MAX);
|
|
return max_nr_accesses ? : 1;
|
|
}
|
|
|
|
|
|
bool damon_initialized(void);
|
|
int damon_start(struct damon_ctx **ctxs, int nr_ctxs, bool exclusive);
|
|
int damon_stop(struct damon_ctx **ctxs, int nr_ctxs);
|
|
bool damon_is_running(struct damon_ctx *ctx);
|
|
int damon_kdamond_pid(struct damon_ctx *ctx);
|
|
|
|
int damon_call(struct damon_ctx *ctx, struct damon_call_control *control);
|
|
int damos_walk(struct damon_ctx *ctx, struct damos_walk_control *control);
|
|
|
|
int damon_set_region_system_rams_default(struct damon_target *t,
|
|
unsigned long *start, unsigned long *end,
|
|
unsigned long addr_unit,
|
|
unsigned long min_region_sz);
|
|
|
|
#endif /* CONFIG_DAMON */
|
|
|
|
#endif /* _DAMON_H */
|