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kevy_alloc/
snapshot.rs

1//! Turning a heap into a [`Stats`] snapshot.
2//!
3//! Split out of `heap.rs` for the file-size rule, and the seam is a real
4//! one: everything here reads, nothing allocates, and it runs on an INFO
5//! call rather than per operation. Only `live` and `rounding` have to be
6//! maintained as allocations happen — they depend on the size a caller
7//! asked for, which nothing else records. The rest is derived by walking
8//! the segments when someone asks.
9
10use crate::class;
11use crate::class::SPAN_BYTES;
12use crate::heap::Heap;
13use crate::segment::{FIRST_DATA_SPAN, NO_CLASS, SEGMENT_BYTES, SPANS_PER_SEGMENT};
14use crate::stats::Stats;
15
16impl Heap {
17    /// Where every mapped byte is (`bench/V5-ACCOUNTING-CONTRACT.md` §1).
18    ///
19    /// Walks the segments rather than maintaining seven counters on the
20    /// hot path: only `live` and `rounding` depend on the requested size
21    /// and must be tracked as allocations happen. Stats are read on INFO,
22    /// not per operation.
23    #[must_use]
24    pub fn snapshot(&self) -> Stats {
25        let mut st =
26            Stats { live: self.live_bytes, rounding: self.rounding_bytes, ..Stats::default() };
27        let mut seg = self.segments;
28        while !seg.is_null() {
29            // SAFETY: live header from our own list.
30            let s = unsafe { &*seg };
31            st.mapped += SEGMENT_BYTES as u64;
32            st.segment_overhead += SPAN_BYTES as u64;
33            // Slots freed by another thread are still inside this
34            // heap's `live`/`rounding` totals, because that thread could
35            // not reach across to adjust them. Move the amount over here
36            // so every byte is counted exactly once.
37            let parked = s.foreign_bytes.load(core::sync::atomic::Ordering::Relaxed) as u64;
38            let parked_live = s.foreign_live.load(core::sync::atomic::Ordering::Relaxed) as u64;
39            st.cache += parked;
40            st.live -= parked_live;
41            st.rounding -= parked - parked_live;
42            for ix in FIRST_DATA_SPAN..SPANS_PER_SEGMENT {
43                add_span(&mut st, &s.spans[ix]);
44                if s.spans[ix].class != NO_CLASS {
45                    st.spans_assigned += 1;
46                }
47            }
48            seg = s.next;
49        }
50        // Claimed-word bits the heap holds locally: span-side they
51        // count as live (they pin pages exactly as live slots do), but
52        // no caller holds them — they are resident, allocatable bytes,
53        // which is the definition of `span_free`.
54        st.span_free += self.claims_unused_bytes();
55        st
56    }
57}
58
59/// Fold one span's bytes into a snapshot.
60fn add_span(st: &mut Stats, meta: &crate::segment::SpanMeta) {
61    if meta.class == NO_CLASS {
62        st.hysteresis += SPAN_BYTES as u64;
63        return;
64    }
65    let slot = class::size_of(meta.class as usize) as u64;
66    // live + rounding are already counted from the requested sizes; the
67    // slots themselves are exactly live * slot, so only the free parts
68    // are classified here. A free slot below the high-water mark is
69    // `returned` when every page it overlaps has been discarded
70    // (mapped, not resident) and `span_free` otherwise (touched,
71    // resident). Everything at or above the mark — including the tail
72    // no slot covers — was never touched: `virgin`.
73    for i in 0..u32::from(meta.high_water) {
74        if meta.is_live(i) {
75            continue;
76        }
77        let (pa, pb) = crate::pagemap::pages_of_slot(i, slot as usize);
78        let all_gone = (pa..=pb).all(|p| meta.discarded & (1u16 << p) != 0);
79        if all_gone {
80            st.returned += slot;
81        } else {
82            st.span_free += slot;
83        }
84    }
85    st.virgin += SPAN_BYTES as u64 - u64::from(meta.high_water) * slot;
86}