f36b095ce2
Formalize the two-phase MPHF indexing architecture and update Phase 6 to use `evidence.bin` for direct kmer extraction. Simplify the evidence and unitig storage layouts to flat packed formats enabling O(1) random access. Introduce aggregation traits (`ColumnWeights`, `CountPartials`, `BitPartials`) to support additive distance metric decomposition across partitions. Narrow the documented scope from metagenomic to individual genome datasets, and replace speculative open questions with concrete implementation specifications.
271 lines
9.1 KiB
Markdown
271 lines
9.1 KiB
Markdown
# PersistentBitVec and PersistentBitMatrix
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## Purpose
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`PersistentBitVec` stores a dense bit vector (presence/absence per slot) backed by a single mmap'd file. It is the binary counterpart of `PersistentCompactIntVec` and shares the same lifecycle pattern (builder → close → reader). All bulk operations work on u64 words rather than bytes, giving 8× fewer iterations and enabling the compiler to emit POPCNT and SIMD instructions.
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Typical use: converting k-mer count vectors to presence/absence vectors (with optional threshold), then computing set-theoretic distances (Jaccard) or edit distances (Hamming) between samples.
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`PersistentBitMatrix` wraps multiple `PersistentBitVec` columns in a directory, exposing a column-major binary matrix with row-access API. A single-column bit matrix is a vector at the API level.
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---
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## PersistentBitVec — single-column file
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### File format
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Single `.pbiv` file.
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```
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offset 0:
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magic: [u8; 4] = b"PBIV"
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_pad: [u8; 4] = 0 alignment padding
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n: u64 number of bits
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offset 16:
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data: [u64; ⌈n/64⌉] bit words, LSB-first, zero-padded
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```
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**Header is 16 bytes**, so data starts at an offset divisible by 8. Since `mmap` returns page-aligned memory (≥ 4096-byte aligned), the data slice is u64-aligned, enabling a zero-copy `&[u8] → &[u64]` reinterpretation.
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**Bit layout**: bit `i` is in `data[i >> 6]` at bit position `i & 63` (LSB-first). Bits `[n, ⌈n/64⌉×64)` are **always zero** (padding). This invariant is maintained by all write operations and must be restored by `not()` after flipping.
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**Total file size**: `16 + ⌈n/64⌉ × 8` bytes.
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### Lifecycle
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#### Builder (`PersistentBitVecBuilder`)
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```rust
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struct PersistentBitVecBuilder {
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mmap: MmapMut,
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n: usize,
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}
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```
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The file and mmap are created immediately at construction. The header is written once at `new()` or copied from the source at `build_from*()`. `close()` is a single flush — there is no tail to append, unlike `PersistentCompactIntVec`.
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**`new(n: usize, path: &Path) -> io::Result<Self>`**
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Creates the file, writes the header, zero-extends to `16 + ⌈n/64⌉×8` bytes, mmaps immediately. All bits default to 0.
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**`build_from(source: &PersistentBitVec, path: &Path) -> io::Result<Self>`**
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OS-level file copy (no per-bit iteration), then mmap. Initialisation cost: O(file_size).
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**`build_from_counts(source: &PersistentCompactIntVec, threshold: u32, path: &Path) -> io::Result<Self>`**
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Creates a new file, iterates `source` with its merge-scan iterator (O(n)), and writes bits directly into u64 words:
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```rust
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// bit i = 1 iff source[i] >= threshold
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words[slot >> 6] |= 1u64 << (slot & 63);
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```
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Handles overflow values (≥ 255) transparently — the count iterator returns the true u32 value regardless.
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**`build_from_presence(source: &PersistentCompactIntVec, path: &Path) -> io::Result<Self>`**
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Shorthand for `build_from_counts(source, 1, path)`.
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**Bit-level access**
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```rust
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fn get(&self, slot: usize) -> bool
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fn set(&mut self, slot: usize, value: bool)
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```
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Byte-level mmap access: `mmap[16 + slot/8]`, bit `slot % 8`. O(1).
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**Word-level bulk operations**
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All operate on `⌈n/64⌉` u64 words. O(n/64) per call.
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```rust
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builder.and(&other); // self[i] &= other[i] for all i
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builder.or(&other); // self[i] |= other[i]
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builder.xor(&other); // self[i] ^= other[i]
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builder.not(); // self[i] = !self[i], then re-zero padding bits
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```
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`and`/`or`/`xor` read `other`'s word slice directly (no allocation). `not()` flips all words then masks the last word's padding bits to restore the invariant.
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**`close(self) -> io::Result<()>`**
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Flushes the mmap. The header was written at construction and is never rewritten. O(1) in Rust code.
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#### Reader (`PersistentBitVec`)
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```rust
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struct PersistentBitVec {
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mmap: Mmap,
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n: usize,
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path: PathBuf,
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}
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```
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**`open(path: &Path) -> io::Result<Self>`**
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Mmaps the file, validates magic, reads `n` from bytes `[8..16]`. O(1).
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**`get(slot: usize) -> bool`**
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Byte-level read from `mmap[16 + slot/8]`. O(1).
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**`iter() -> BitIter<'_>`**
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Sequential scan, byte by byte, yielding `bool` values in slot order. Implements `ExactSizeIterator`. O(n).
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**Aggregates**
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```rust
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fn count_ones(&self) -> u64 // popcount over all words; padding bits are 0
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fn count_zeros(&self) -> u64 // n - count_ones()
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```
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`count_ones` iterates `⌈n/64⌉` words and calls `u64::count_ones()` (maps to `POPCNT`). O(n/64).
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**Distance methods**
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Both operate word by word. O(n/64).
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| Method | Formula | Notes |
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|---|---|---|
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| `jaccard_dist(&other) -> f64` | `1 − \|A∩B\| / \|A∪B\|` | `(a&b).count_ones()`, `(a\|b).count_ones()` per word |
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| `hamming_dist(&other) -> u64` | number of differing bits | `(a^b).count_ones()` per word |
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Edge case (both all-zero → union = 0): `jaccard_dist` returns 0.0.
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### Implementation notes
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#### u64 word view
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The unsafe cast from `&[u8]` to `&[u64]` is sound because:
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1. `mmap` base is page-aligned (≥ 4096-byte boundary).
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2. Data offset = 16, and `16 % 8 == 0` → the data pointer is 8-byte aligned.
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3. Data length = `⌈n/64⌉ × 8` bytes — always a multiple of 8.
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This gives zero-copy word-level access with no intermediate allocation.
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#### Padding invariant
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Writing `not()` without masking the last word would corrupt `count_ones()`, `hamming_dist()`, and `jaccard_dist()`. The mask applied after flipping is `(1u64 << (n % 64)) - 1` (no-op if `n % 64 == 0`). All other operations (`and`, `or`, `xor`) preserve existing zero padding since they can only clear or preserve bits already set by `not()`.
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### Complexity
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| Operation | Time | Notes |
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| `new` / `open` | O(1) | mmap setup + header parse |
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| `get` / `set` (builder or reader) | O(1) | byte-level mmap |
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| `iter()` | O(n) | byte-by-byte scan |
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| `count_ones` / `count_zeros` | O(n/64) | POPCNT per u64 word |
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| `and` / `or` / `xor` / `not` | O(n/64) | word-level bitwise ops |
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| `jaccard_dist` / `hamming_dist` | O(n/64) | word AND/OR/XOR + POPCNT |
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| `build_from` | O(file_size) | OS copy |
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| `build_from_counts` / `build_from_presence` | O(n) | count iter + word fill |
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| `close` | O(1) | flush only |
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---
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## PersistentBitMatrix — column-major directory
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### Design
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A directory containing `meta.json` and N column files `col_000000.pbiv`, `col_000001.pbiv`, …, each a `PersistentBitVec`. Used for presence/absence matrices: one column per genome, one bit per MPHF slot.
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```
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presence/
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meta.json {"n": <n_slots>, "n_cols": <G>}
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col_000000.pbiv genome 0
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col_000001.pbiv genome 1
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...
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```
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Column-major layout makes per-genome set operations (Jaccard, Hamming, AND/OR) cache-friendly — each genome is a contiguous file. Row access (which genomes contain a given kmer) requires one O(1) read per column.
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### Builder (`PersistentBitMatrixBuilder`)
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```rust
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struct PersistentBitMatrixBuilder {
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dir: PathBuf,
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n: usize,
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n_cols: usize,
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}
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```
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**`new(n: usize, dir: &Path) -> io::Result<Self>`**
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Creates the directory (including parents).
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**`add_col(&mut self) -> io::Result<PersistentBitVecBuilder>`**
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Creates `col_NNNNNN.pbiv` for the next column and returns its builder. The caller fills the column and calls `builder.close()` before calling `add_col` again.
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**`close(self) -> io::Result<()>`**
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Writes `meta.json` with the final `n` and `n_cols`.
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### Reader (`PersistentBitMatrix`)
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```rust
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struct PersistentBitMatrix {
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cols: Vec<PersistentBitVec>,
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n: usize,
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}
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```
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**`open(dir: &Path) -> io::Result<Self>`**
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Reads `meta.json`, opens all `col_NNNNNN.pbiv` files.
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**`row(slot: usize) -> Box<[bool]>`**
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Returns the presence vector: `[col_0[slot], col_1[slot], …, col_{G-1}[slot]]`. One byte read per column. O(G).
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**`col(c: usize) -> &PersistentBitVec`**
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Direct access to a single column for column-oriented operations.
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### LayerData implementation
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```rust
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impl LayerData for PersistentBitMatrix {
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type Item = Box<[bool]>;
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fn open(layer_dir: &Path) -> OLMResult<Self> { /* opens layer_dir/presence/ */ }
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fn read(&self, slot: usize) -> Box<[bool]> { self.row(slot) }
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}
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```
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---
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## Aggregation traits — `obicompactvec::traits`
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`PersistentBitMatrix` implements two aggregation traits used by `LayeredStore<S>` for cross-layer and cross-partition distance computations.
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### ColumnWeights
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```rust
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impl ColumnWeights for PersistentBitMatrix {
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fn col_weights(&self) -> Array1<u64> // = self.count_ones()
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}
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```
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`col_weights()[c]` = number of set bits in column `c` across all slots.
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### BitPartials
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```rust
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impl BitPartials for PersistentBitMatrix {
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// Self-contained partials (additive across layers)
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fn partial_jaccard(&self) -> (Array2<u64>, Array2<u64>) // (inter, union)
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fn partial_hamming(&self) -> Array2<u64> // differing bits
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// Provided finalisations
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fn jaccard_dist_matrix(&self) -> Array2<f64>
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fn hamming_dist_matrix(&self) -> Array2<u64>
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}
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```
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`partial_jaccard` returns `(inter, union)` as a pair because `union` is not reconstructible from per-column `count_ones()` — it depends on both columns simultaneously. Both components are additively decomposable across `(partition, layer)` pairs; the final `jaccard_dist_matrix()` is computed from their element-wise sums.
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