`parallel` joins the agent's default features, so the HNSW bulk build uses the thread pool: cold index build at 10K records 1152 -> ~380 ms in a same-moment A/B (the graph is identical either way). Nothing else on the measured paths changes — ingest, checkpoint, open and steady-state query times are the same with the feature on or off. Adds rayon to the default dependency set; opt out with `--no-default-features --features float16,hnsw`. Harness: `--e2e-only` runs the end-to-end section without the index benchmarks. Note for anyone comparing numbers: this machine's absolute timings drifted ~1.5x over a long session, so only same-moment A/B runs are comparable. Co-Authored-By: Claude Fable 5.1 <[email protected]>
68 lines
2.6 KiB
TOML
68 lines
2.6 KiB
TOML
[package]
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name = "clawhdf5-agent"
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version = "2.4.0"
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edition = "2024"
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description = "HDF5-backed persistent memory store for on-device AI agents"
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license = "MIT"
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repository = "https://git.redclaw.dev/quantumclaw/clawhdf5"
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readme = "README.md"
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keywords = ["agent", "memory", "hdf5", "vector-search", "embedding"]
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categories = ["database", "science", "algorithms"]
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[dependencies]
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clawhdf5-format = { path = "../clawhdf5-format", version = "2.4.0", features = ["parallel", "fast-checksum"] }
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clawhdf5 = { path = "../clawhdf5", version = "2.4.0" }
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clawhdf5-io = { path = "../clawhdf5-io", version = "2.4.0", features = ["mmap"] }
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clawhdf5-accel = { path = "../clawhdf5-accel", version = "2.4.0" }
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clawhdf5-ann = { path = "../clawhdf5-ann", version = "2.4.0", optional = true }
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clawhdf5-gpu = { path = "../clawhdf5-gpu", version = "2.4.0", optional = true, default-features = false }
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serde = { workspace = true }
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byteorder = "1"
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half = { workspace = true, optional = true }
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rayon = { version = "1", optional = true }
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matrixmultiply = { version = "0.3", optional = true }
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cblas-sys = { version = "0.1", optional = true }
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tokio = { version = "1", features = ["rt", "sync", "macros", "time"], optional = true }
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[target.'cfg(target_os = "macos")'.dependencies]
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accelerate-src = { version = "0.3", optional = true }
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[target.'cfg(not(target_os = "macos"))'.dependencies]
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openblas-src = { version = "0.10", optional = true, features = ["cblas"] }
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[dev-dependencies]
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tempfile = { workspace = true }
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criterion = { workspace = true }
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rayon = "1"
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tokio = { version = "1", features = ["rt-multi-thread", "sync", "macros"] }
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[[bench]]
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name = "bench"
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harness = false
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[[bench]]
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name = "memory_bench"
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harness = false
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[features]
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default = ["float16", "hnsw", "parallel"]
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float16 = ["half"]
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# Rayon-parallel brute-force search strategies, and a parallel bulk build of
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# the HNSW index (same graph, several times faster on a multi-core machine).
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parallel = ["rayon", "clawhdf5-ann?/parallel"]
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# Compress embeddings with Zstd instead of deflate when
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# `MemoryConfig::compression` is on. Off by default: it links libzstd (C).
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zstd = ["clawhdf5/zstd"]
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# HNSW approximate-nearest-neighbour acceleration for the vector stage of
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# hybrid_search. On by default; the index is rebuilt from the cache on demand
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# and stays self-consistent with the persisted memory store. Disable with
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# `--no-default-features` (plus re-enabling other defaults) to force the exact
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# linear cosine scan.
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hnsw = ["clawhdf5-ann"]
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agent = []
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gpu = ["clawhdf5-gpu/gpu-wgpu"]
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fast-math = ["matrixmultiply"]
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accelerate = ["accelerate-src", "cblas-sys"]
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openblas = ["openblas-src", "cblas-sys"]
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async = ["tokio"]
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