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feat: add MinHash Jaccard similarity estimator #14973
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,75 @@ | ||
| """MinHash signatures for estimating Jaccard similarity. | ||
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| MinHash uses the minimum value produced by several independent hash functions | ||
| to turn a set into a compact signature. The fraction of equal positions in two | ||
| signatures is an unbiased estimator of their Jaccard similarity. | ||
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| References: | ||
| https://en.wikipedia.org/wiki/MinHash | ||
| https://www.cs.princeton.edu/courses/archive/spring13/cos598C/broder.pdf | ||
| """ | ||
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| from __future__ import annotations | ||
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| import hashlib | ||
| from collections.abc import Iterable, Sequence | ||
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| def _token_hash(token: str, seed: int, permutation: int) -> int: | ||
|
There was a problem hiding this comment. Choose a reason for hiding this commentThe reason will be displayed to describe this comment to others. Learn more. As there is no test file in this pull request nor any test function or class in the file |
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| """Return a deterministic 64-bit hash for one token and permutation.""" | ||
| payload = f"{seed}:{permutation}:{token}".encode() | ||
| return int.from_bytes(hashlib.blake2b(payload, digest_size=8).digest(), "big") | ||
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| def min_hash( | ||
| tokens: Iterable[str], num_perm: int = 128, seed: int = 0 | ||
| ) -> tuple[int, ...]: | ||
| """Build a MinHash signature for an iterable of tokens. | ||
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| ``tokens`` is treated as a set: repeated tokens do not affect the | ||
| signature. ``num_perm`` controls the accuracy/size trade-off. | ||
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| >>> first = min_hash({"a", "b", "c"}, num_perm=64) | ||
| >>> second = min_hash({"a", "b", "d"}, num_perm=64) | ||
| >>> len(first) == len(second) == 64 | ||
| True | ||
| >>> 0.0 <= estimated_jaccard(first, second) <= 1.0 | ||
| True | ||
| >>> min_hash({"a", "b"}, num_perm=8) == min_hash({"a", "b"}, num_perm=8) | ||
| True | ||
| """ | ||
| if num_perm <= 0: | ||
| raise ValueError("num_perm must be positive") | ||
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| unique_tokens = set(tokens) | ||
| if not unique_tokens: | ||
| raise ValueError("tokens must contain at least one item") | ||
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| return tuple( | ||
| min(_token_hash(token, seed, permutation) for token in unique_tokens) | ||
| for permutation in range(num_perm) | ||
| ) | ||
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| def estimated_jaccard(first: Sequence[int], second: Sequence[int]) -> float: | ||
| """Estimate Jaccard similarity from two MinHash signatures. | ||
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| >>> estimated_jaccard((1, 2, 3), (1, 4, 3)) | ||
| 0.6666666666666666 | ||
| >>> estimated_jaccard((1, 2), (1,)) | ||
| Traceback (most recent call last): | ||
| ... | ||
| ValueError: signatures must have the same length | ||
| """ | ||
| if len(first) != len(second): | ||
| raise ValueError("signatures must have the same length") | ||
| if not first: | ||
| raise ValueError("signatures must not be empty") | ||
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| return sum(left == right for left, right in zip(first, second)) / len(first) | ||
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| if __name__ == "__main__": | ||
| import doctest | ||
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| doctest.testmod() | ||
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As there is no test file in this pull request nor any test function or class in the file
machine_learning/min_hash.py, please provide doctest for the function_token_hash