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			96 lines
		
	
	
		
			3.2 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			96 lines
		
	
	
		
			3.2 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
from ..norm_exceptions import BASE_NORMS
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from ...attrs import NORM, LIKE_NUM
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# fmt: off
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_stem_suffixes = [
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    ["ा", "ि", "ी", "ु", "ू", "ृ", "े", "ै", "ो", "ौ"],
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    ["ँ", "ं", "्", "ः"],
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    ["लाई", "ले", "बाट", "को", "मा", "हरू"],
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    ["हरूलाई", "हरूले", "हरूबाट", "हरूको", "हरूमा"],
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    ["इलो", "िलो", "नु", "ाउनु", "ई", "इन", "इन्", "इनन्"],
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    ["एँ", "इँन्", "इस्", "इनस्", "यो", "एन", "यौं", "एनौं", "ए", "एनन्"],
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    ["छु", "छौँ", "छस्", "छौ", "छ", "छन्", "छेस्", "छे", "छ्यौ", "छिन्", "हुन्छ"],
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    ["दै", "दिन", "दिँन", "दैनस्", "दैन", "दैनौँ", "दैनौं", "दैनन्"],
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    ["हुन्न", "न्न", "न्न्स्", "न्नौं", "न्नौ", "न्न्न्", "िई"],
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    ["अ", "ओ", "ऊ", "अरी", "साथ", "वित्तिकै", "पूर्वक"],
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    ["याइ", "ाइ", "बार", "वार", "चाँहि"],
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    ["ने", "ेको", "ेकी", "ेका", "ेर", "दै", "तै", "िकन", "उ", "न", "नन्"]
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]
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# fmt: on
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# reference 1: https://en.wikipedia.org/wiki/Numbers_in_Nepali_language
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# reference 2: https://www.imnepal.com/nepali-numbers/
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_num_words = [
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    "शुन्य",
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    "एक",
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    "दुई",
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    "तीन",
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    "चार",
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    "पाँच",
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    "छ",
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    "सात",
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    "आठ",
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    "नौ",
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    "दश",
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    "एघार",
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    "बाह्र",
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    "तेह्र",
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    "चौध",
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    "पन्ध्र",
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    "सोह्र",
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    "सोह्र",
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    "सत्र",
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    "अठार",
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    "उन्नाइस",
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    "बीस",
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    "तीस",
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    "चालीस",
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    "पचास",
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    "साठी",
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    "सत्तरी",
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    "असी",
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    "नब्बे",
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    "सय",
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    "हजार",
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    "लाख",
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    "करोड",
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    "अर्ब",
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    "खर्ब",
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]
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def norm(string):
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    # normalise base exceptions,  e.g. punctuation or currency symbols
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    if string in BASE_NORMS:
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        return BASE_NORMS[string]
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    # set stem word as norm,  if available,  adapted from:
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    # https://github.com/explosion/spaCy/blob/master/spacy/lang/hi/lex_attrs.py
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    # https://www.researchgate.net/publication/237261579_Structure_of_Nepali_Grammar
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    for suffix_group in reversed(_stem_suffixes):
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        length = len(suffix_group[0])
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        if len(string) <= length:
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            break
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        for suffix in suffix_group:
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            if string.endswith(suffix):
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                return string[:-length]
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    return string
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def like_num(text):
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    if text.startswith(("+", "-", "±", "~")):
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        text = text[1:]
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    text = text.replace(", ", "").replace(".", "")
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    if text.isdigit():
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        return True
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    if text.count("/") == 1:
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        num, denom = text.split("/")
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        if num.isdigit() and denom.isdigit():
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            return True
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    if text.lower() in _num_words:
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        return True
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    return False
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LEX_ATTRS = {NORM: norm, LIKE_NUM: like_num}
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