docs: editor coverage — version-2 B-trees, shrinking, dense attributes, reuse

CHANGELOG (Unreleased): the new FileEditor operations, space reuse, and
the two reader fixes (implicit index grid, object-header continuation
chains). known-issues: the editor's remaining refusals (skipped heap
blocks, heaps with filters or child indirect blocks, freeing a heap
block, implicit-index insertions, ...) and the append-waste sizes before
and after reuse (measure_append_waste, tank 2026-09-26; file sizes are
deterministic). range-reads design: status note on the reader changes.
README and CLAUDE.md: what the editor covers and how to test it.

Co-Authored-By: Claude Opus 5.5 (1M context) <[email protected]>
This commit is contained in:
osobh
2026-09-26 17:13:31 -05:00
co-authored by Claude Opus 5.5
parent 955fdb660d
commit 0aca0eb724
5 changed files with 124 additions and 32 deletions
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## Unreleased
### In-place editing: version-2 B-tree indexes, shrinking, dense attributes (2026-09-26)
- **`FileEditor` adds, moves and resizes chunks of datasets with two or
more unlimited dimensions** (version-2 B-tree chunk index, record types
10/11), as libhdf5's `H5B2` code does: `H5B2_update`'s insert-or-modify,
the preemptive split/redistribute loop, `split1`/`split_root` (depth
growth), `redistribute2/3`, and removal with `merge2/3`, root collapse
and the internal-record swap; node pointer widths and cumulative record
counts per depth; a missing index is created from the layout message's
parameters. After the same growth libhdf5's and the editor's trees are
node for node the same (tested through a depth increase).
- **`FileEditor::resize` shrinks** along any dimension (h5py's
`Dataset.resize` to a smaller shape), as `H5D__chunk_prune_by_extent`
does, visiting the same chunks in the same order: chunks wholly outside
the new extent leave the index (version-1 B-tree removal with libhdf5's
sibling key and link fix-ups and empty-root case, version-2 B-tree
removal, Fixed/Extensible Array elements reset; an implicit index keeps
its chunks, as in libhdf5) and their space is freed; the part of a
partial edge chunk outside the extent is overwritten with the fill value,
so it reads as fill after a later growth. Growth under early allocation
now allocates and fills the new chunks (`H5D__chunk_allocate`), which an
implicit index needs. Shrinking was `Error::Unsupported`.
- **`FileEditor::set_attr` handles dense attribute storage and creation
order**: objects that track (and index) attribute creation order; the
move to dense storage when an object reaches its compact limit (or an
attribute is too large for a header message), as `H5O__attr_create`
does it (new fractal heap, name index, creation-order index when
indexed, compact attributes moved over in header order); objects
already in dense storage (h5py- or clawhdf5-written): insertion,
same-size rewrites in place, other replacements by removal and
insertion. The heap is changed as `H5HF` changes it — best-fit free
sections from its free-space manager (kept as libhdf5 keeps `FSHD`/
`FSSE`), new direct blocks through the root indirect block (created,
doubled), huge objects through the huge-object B-tree (deleted with the
last huge object), removed objects' space merged back — with libhdf5's
statistics: after the same attribute workload the heap, its free space
and both index B-trees equal libhdf5's. Attributes are encoded as libhdf5
encodes them for a file h5py opens `r+` (message version 1, 3 for
non-ASCII names; simple dataspaces with their maximum dimensions).
Still refused: see `docs/known-issues.md`.
- **Freed space is reused within an editing session.** A `FileEditor`
reuses (best fit, zeroed) what its earlier edits freed — moved filtered
chunks, pruned chunks, merged B-tree nodes, replaced heap blocks — never
what the current edit frees, and writes reused blocks with the new space
before any existing byte changes. `FileEditor::reusable_bytes`. The
append workload of `measure_append_waste` leaks less (sizes in
`docs/known-issues.md`).
- **Reader: implicit chunk indexes below their maximum shape.** libhdf5
places an implicit index's chunks by their position in the *maximum*
chunk grid; the reader used the current grid and returned other chunks'
values from the second chunk row on (h5py early allocation with a fixed
`maxshape` larger than the shape).
`chunked_read::generate_implicit_chunks_in_grid` takes the maximum.
- **Reader: object headers with long continuation chains.** A version-1
header whose continuation chunks chain more than 32 deep (a header that
gains a chunk per attribute added when full, as libhdf5 and the editor
grow it) was refused with `NestingDepthExceeded`; version-2 headers
stopped at 256 chunks. Chunks are now followed without recursion, in the
same order; a chunk address seen twice (a cycle) or more than 65 536
chunks are refused.
- Tests: `crates/clawhdf5-tools/tests/edit_coverage_interop.rs` (h5py
`earliest`/`v110`/`latest` and clawhdf5-written files; structure
comparisons with libhdf5 for version-2 B-trees, shrink on every index,
and dense attribute heaps); the random-operation property test in
`edit_interop.rs` now shrinks, grows two unlimited dimensions and moves
attributes to dense storage (`CLAWHDF5_EDIT_SEED` for other seeds).
### Name lookups through the name index (2026-09-26)
- **Finding one link or attribute by name reads the name index, not every
entry.** In a dense group (links in a fractal heap) the v2 B-tree name
@@ -237,7 +303,8 @@
before any existing byte changes, then the metadata that links it in,
then a second sync. There is no journal: a crash during the second
phase can leave the file inconsistent (as with libhdf5 without SWMR).
Freed space is not reused (see `docs/known-issues.md`).
Freed space is not reused (see `docs/known-issues.md`; since reused
within an editing session, above).
- Tests: `crates/clawhdf5-tools/tests/edit_interop.rs` (h5py `earliest`,
`v114` and `latest` files and clawhdf5 files; after every round h5py
reads the expected values, h5dump and `h5rs check --data` accept the
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`MemorySource` for this bookkeeping is inferred from the caller-supplied
`source_channel` string (a heuristic, not an authenticated trust boundary).
- In-place modification: `clawhdf5::FileEditor` (`crates/clawhdf5/src/edit/`)
overwrites values, grows chunked datasets and sets attributes in existing
files (h5py- or clawhdf5-written) without rewriting them; anything it
cannot do safely is `Error::Unsupported` before any write (limits in
overwrites values, grows and shrinks chunked datasets (every chunk index,
version-2 B-trees included) and sets attributes (compact and dense
storage) in existing files (h5py- or clawhdf5-written) without rewriting
them, changing indexes and heaps as libhdf5 does (index shapes and heap
bookkeeping are compared with libhdf5's in the tests); space an edit
frees is reused by later edits of the same editor. Anything it cannot do
safely is `Error::Unsupported` before any write (limits in
`docs/known-issues.md`). Test changes with
`cargo test -p clawhdf5-tools --test edit_interop` (h5py, h5dump,
`h5rs check`).
`cargo test -p clawhdf5-tools --test edit_interop --test
edit_coverage_interop` (h5py, h5dump, `h5rs check`, structure comparisons
with libhdf5; libhdf5 sources for the algorithms are at
github.com/HDFGroup/hdf5, tag `hdf5_1_14_6`).
- GPU-accelerated vector distance computation (`clawhdf5-gpu`, wgpu); HDF5 I/O itself is CPU-only
- Browser: `clawhdf5-wasm` (wasm-bindgen, read-only, file held in memory;
no Zstd/SZIP since they link C) and the `examples/wasm-viewer/` page.
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@@ -444,9 +444,13 @@ ed.resize("x", &[1100])?; // h5py: ds.resize((1100,))
let sel = Selection::Hyperslab { start: vec![1000], stride: vec![1], count: vec![100], block: vec![1] };
ed.write_values("x", &sel, &[0.5f64; 100])?; // ds[1000:1100] = 0.5
ed.set_attr("x", "units", &AttrValue::String("m/s".into()))?;
ed.resize("x", &[900])?; // shrinking prunes chunks, like h5py
```
Each call changes the file in place (no rewrite) and syncs it. What it
Each call changes the file in place (no rewrite) and syncs it. Any chunk
index (version-2 B-trees for several unlimited dimensions included) and
attributes in compact or dense storage are handled as libhdf5 handles
them; space an edit frees is reused by later edits of the same editor. What it
cannot change safely is refused before anything is written; see
[known issues](docs/known-issues.md) for the limits.
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Status: proposal, 2026-09-26; the plan for Phase 3's largest architectural
change. Progress: M1, first part (the `Storage` trait and the metadata
parsers listed in `CHANGELOG.md` under "Range reads, milestone M1") is done;
group B-tree v2 lookups, dense groups and the facade are not converted yet. Every count below was
group B-tree v2 lookups, dense groups and the facade are not converted yet.
Later the same day (branch `feat/p3-editor-coverage`) two reader fixes touched
converted code without changing the plan: object-header continuation chunks
are followed without recursion (still one bounded `read_at` per chunk), and
implicit chunk indexes are addressed over the maximum chunk grid (in
`chunked_read`, an M2 module). The in-place editor (`FileEditor`) keeps
working on the whole file in memory; it is not part of this design. Every count below was
taken on `tank` on 2026-09-26 at commit `de2a53f`, with the commands given
next to it. No timing numbers appear here on purpose: the machine was shared
with other build jobs when this was written.
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@@ -26,40 +26,49 @@ libhdf5 modify them.
## In-place modification (`FileEditor`) limits
**Status:** open (documented 2026-09-26). `clawhdf5::FileEditor` refuses,
with `Error::Unsupported` and without writing anything:
- new, moved or resized chunks in a **version-2 B-tree** chunk index (what
libhdf5 uses for two or more unlimited dimensions) — existing unfiltered
chunks, and filtered ones that re-encode to the same size and filter
mask, are
overwritten in place; `resize` works — and new chunks in an **implicit**
index (it has all of its chunks from the start);
- **shrinking** a dataset;
**Status:** open (documented 2026-09-26, updated the same day when
version-2 B-tree chunk indexes, shrinking, dense attributes and space
reuse were added). `clawhdf5::FileEditor` refuses, with
`Error::Unsupported` and without writing anything:
- new chunks in an **implicit** index (it has all of its chunks from the
start; they are written in place, and allocated/filled on growth under
early allocation as libhdf5 does);
- variable-length and reference data;
- chunks through a filter this build cannot encode (scale-offset, N-Bit,
SZIP, or a plugin filter it lacks), even an optional one: libhdf5 skips
an optional filter only when its own build lacks it, which none does for
these;
- attributes of an object in **dense storage**, past its compact limit (8
by default) or with tracked **creation order**;
- attributes in dense storage when the heap cannot take them the way
libhdf5 would: an attribute that needs a heap block larger than the next
one (libhdf5 skips blocks and records them as free space — in practice an
attribute of roughly 1 to 4 KiB going into a young heap), a heap with I/O
filters or child indirect blocks (more than about 512 KiB of attributes),
free space the heap tracks outside direct blocks, replacing the last
attribute left in a heap block by one of another size (libhdf5 frees the
block), directly addressed huge objects; and shared attribute messages;
- version-1 object headers asked for an attribute larger than a header
message (they have no dense storage);
- partial edge chunks stored unfiltered (`H5Pset_chunk_opts`), external
raw data files, virtual datasets;
- files with a metadata cache image, paged or persistent free-space
management, a driver info block, or version-3 consistency flags set.
**Space is never reused.** There is no free-space manager: the old bytes of
a filtered chunk that grows and has to move, and of an attribute that is
replaced by a larger one, are leaked (`h5repack` reclaims them). A chunk
that is the last thing in the file grows in place instead, which covers the
usual append. Measured 2026-09-26 on tank with
`cargo test --release -p clawhdf5-tools --test edit_interop -- --ignored
--nocapture measure_append_waste` (file sizes are deterministic): 1000
appends of 100 `f8` values to a 1-D dataset with 1024-element chunks give
810 504 bytes unfiltered, as libhdf5's file, and 307 210 bytes with gzip
(libhdf5: 306 058; `h5repack`: 306 104); 2000 appends of 10 values with
4096-element gzip chunks give 119 684 bytes against libhdf5's 50 292
(`h5repack`: 49 930), because the chunk being appended to is followed by
new index blocks and moves each time it grows.
**Space is reused only within one editor.** Space an edit frees (a filtered
chunk that moves, chunks a shrink removes, B-tree nodes merged away, a
heap's replaced blocks) is reused by later edits of the same `FileEditor`;
what is left when it is dropped is leaked, as libhdf5 leaks it without a
persistent free-space manager (`h5repack` reclaims it). A chunk that is the
last thing in the file grows in place, which covers the usual append.
Measured 2026-09-26 on tank with `cargo test -p clawhdf5-tools --test
edit_interop -- --ignored --nocapture measure_append_waste` (one editor for
the whole workload; file sizes are deterministic): 1000 appends of 100 `f8`
values to a 1-D dataset with 1024-element chunks give 810 504 bytes
unfiltered, as libhdf5's file, and 306 780 bytes with gzip (307 210 before
reuse; libhdf5: 306 058; `h5repack`: 306 104); 2000 appends of 10 values
with 4096-element gzip chunks give 79 829 bytes (119 684 before reuse)
against libhdf5's 50 292 (`h5repack`: 49 930): the chunk being appended to
is followed by new index blocks and moves each time it grows, and the
space it leaves is too small for its next, larger version.
**No journal.** A crash while an edit patches existing structures can leave
the file inconsistent; see the `FileEditor` documentation.