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Fast Unicode transliteration (including CJK), slugification, and text normalization — Rust-powered Python library

Project description

translit

Documentation License: MIT

Unicode text infrastructure for Python: transliteration, normalization, and safety analysis, powered by Rust.

Documentation | GitHub | PyPI

Features

  • Transliteration: Unicode → ASCII for Latin, Cyrillic, Greek, CJK (Chinese pinyin, Korean romanization, Japanese kana), and 37 language-specific profiles
  • Slugification: URL-safe slugs with python-slugify parameter compatibility
  • Filename sanitization: Cross-platform safe filenames with NFC normalization, path traversal protection, and Windows reserved name handling
  • Text normalization: NFC/NFD/NFKC/NFKD, confusable homoglyph detection (TR39), full Unicode case folding (1,557 CaseFolding.txt mappings via PHF), whitespace collapse
  • Precompiled pipelines: security_clean, ml_normalize, catalog_key, display_clean for common workflows
  • Grapheme clusters: Correct user-perceived character counting, splitting, and truncation
  • Hostname safety: Mixed-script and homoglyph attack detection
  • Encoding detection: Auto-detect and decode byte sequences to UTF-8 (chardetng)

All text processing is implemented in Rust with O(1) PHF lookups and exposed to Python via PyO3.

Installation

pip install translit-rs

The package installs as translit-rs on PyPI but imports as translit:

import translit  # not translit_rs

Requires Python 3.9+. Wheels are available for Linux, macOS, and Windows.

Quick start

from translit import transliterate, slugify, sanitize_filename

# Latin/Cyrillic/Greek
transliterate("café")          # → "cafe"
transliterate("Москва")        # → "Moskva"
transliterate("Ünïcödé")       # → "Unicode"

# Chinese (Hanzi → Pinyin)
transliterate("北京市")         # → "bei jing shi"
slugify("北京烤鸭")            # → "bei-jing-kao-ya"

# Korean (Hangul → Revised Romanization)
transliterate("서울")           # → "seo ul"
slugify("대한민국")            # → "dae-han-min-gug"

# Japanese (Hiragana/Katakana → Hepburn)
transliterate("ひらがな")       # → "hiragana"
transliterate("カタカナ")       # → "katakana"

# Language-specific transliteration
transliterate("Ärger", lang="de")  # → "Aerger"
transliterate("Київ", lang="uk")   # → "Kyiv"

# Slugification
slugify("Hello World!")            # → "hello-world"
slugify("café au lait")           # → "cafe-au-lait"

# Filename sanitization
sanitize_filename("my file<>.txt")         # → "my_file.txt"
sanitize_filename("CON.txt")               # → "_CON.txt"
sanitize_filename("../../etc/passwd")      # → ".etc_passwd"

CJK transliteration

Chinese characters are mapped to toneless pinyin from the Unicode Unihan kMandarin field, covering the full CJK Unified Ideographs block (U+4E00–U+9FFF, 20,924 characters). Korean Hangul syllables are algorithmically decomposed into jamo and romanized using the Revised Romanization standard (all 11,172 precomposed syllables). Japanese hiragana and katakana use Modified Hepburn; kanji fall back to Chinese pinyin readings.

This is context-free, character-by-character transliteration, the same approach as Unidecode. See docs/limitations.md for details on polyphony, phonological rules, and other trade-offs.

Precompiled pipelines

from translit import security_clean, ml_normalize, catalog_key

# Security: NFKC → confusables → strip bidi → collapse whitespace
security_clean("ℝ𝕖𝕒𝕝 𝕥𝕖𝕩𝕥")  # → "Real text"

# ML/NLP: NFKC → emoji→text → transliterate → strip accents → fold case
ml_normalize("Café ☕ Ünïcödé")  # → "cafe hot beverage unicode"

# Library catalog: NFKC → confusables → transliterate → strip accents → fold case
catalog_key("Москва", lang="ru")  # → "moskva"

Text builder

from translit import Text

result = (
    Text("Ünïcödé Café ☕")
    .normalize("NFKC")
    .transliterate()
    .strip_accents()
    .fold_case()
    .value
)
# → "unicode cafe hot beverage"

Package structure

The API is organized into domain-specific namespaces. All functions are also available at the top level for convenience.

Namespace Purpose Key functions
translit Core transforms transliterate, slugify, Text, TextPipeline
translit.normalization Unicode normalization normalize, strip_accents, fold_case, collapse_whitespace
translit.security Safety analysis is_confusable, is_mixed_script, is_safe_hostname, security_clean
translit.files Filename handling sanitize_filename
translit.codec Byte decoding decode_to_utf8, detect_encoding
# Namespace imports
from translit.security import is_confusable, security_clean
from translit.codec import decode_to_utf8
from translit.normalization import fold_case

# Top-level imports also work
from translit import is_confusable, security_clean, decode_to_utf8, fold_case

Script policies

Transliteration applies different policies depending on the script. This table documents what each script does and which standard it follows.

Script Policy Standard / Source Example
Latin (accented) Accent stripping Unicode NFKD decomposition ée
Cyrillic Phonetic romanization ISO 9:1995 (scholarly, via strict_iso9=True) or GOST-based (default) МоскваMoskva
Greek Transliteration BGN/PCGN romanization ΑθήναAthena
Chinese (Hanzi) Romanization Unihan kMandarin (toneless pinyin) 北京bei jing
Korean (Hangul) Romanization Revised Romanization of Korean 서울seo ul
Japanese (Kana) Romanization Modified Hepburn ひらがなhiragana
Japanese (Kanji) Romanization Falls back to Chinese pinyin readings 東京dong jing
Arabic Transliteration Buckwalter-derived مرحباmrhba
Devanagari Transliteration IAST-derived नमस्तेnamaste
Georgian Transliteration National romanization თბილისიtbilisi
Armenian Transliteration BGN/PCGN ԵրևանErevan

All transliteration is context-free and character-by-character, the same approach as AnyAscii/Unidecode. No linguistic analysis, polyphony handling, or phonological rules. See docs/limitations.md for trade-offs.

Language-specific profiles (e.g., lang="de") apply sparse overrides on top of the default table. For example, German maps üue instead of the default u.

Language profiles

37 built-in language profiles with ISO 9:1995 scholarly Cyrillic support:

from translit import list_langs, transliterate

print(list_langs())
# ['ar', 'bg', 'ca', 'cs', 'cy', 'da', 'de', 'el', 'es', 'et',
#  'fi', 'fr', 'ga', 'hr', 'hu', 'is', 'it', 'ja', 'ko', 'lt',
#  'lv', 'mt', 'nl', 'no', 'pl', 'pt', 'ro', 'ru', 'sk', 'sl',
#  'sq', 'sr', 'sv', 'tr', 'uk', 'vi', 'zh']

# ISO 9:1995 scholarly transliteration
transliterate("Юрий", strict_iso9=True)  # → "Jurij"

Performance

translit is compiled Rust with O(1) compile-time perfect hash tables — no regex, no per-character Python iteration, no runtime data loading.

Operation Throughput vs. legacy
Transliterate (Latin) 693M chars/sec 58× faster than Unidecode
Transliterate (Cyrillic) 196M chars/sec 27× faster than Unidecode
Slugify 1.12M slugs/sec 10–24× faster than python-slugify
Batch transliterate (100 strings) 2.7× faster than loop

See docs/performance.md for full benchmark methodology and results.

Drop-in replacement

translit provides compatibility aliases for painless migration from existing libraries:

from translit import unidecode, casefold, remove_accents

unidecode("café")        # → "cafe"       (alias for transliterate)
casefold("Straße")       # → "strasse"    (alias for fold_case)
remove_accents("café")   # → "cafe"       (alias for strip_accents)

sanitize_filename() also accepts replacement_text and max_len kwargs for pathvalidate compatibility, and is_confusable() accepts greedy for confusable_homoglyphs compatibility. See migration guides for details.

Documentation

Guides by role:

Architecture

Rust core with compile-time PHF (perfect hash function) tables for O(1) per-character lookup. Exposed to Python via PyO3 with the stable ABI (abi3-py39). The Chinese pinyin table contains 20,924 entries from the Unicode Unihan database; Korean romanization is purely algorithmic (jamo decomposition, ~100 lines of Rust).

License

MIT

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