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	* Use isort with Black profile * isort all the things * Fix import cycles as a result of import sorting * Add DOCBIN_ALL_ATTRS type definition * Add isort to requirements * Remove isort from build dependencies check * Typo
		
			
				
	
	
		
			87 lines
		
	
	
		
			3.5 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			87 lines
		
	
	
		
			3.5 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
from typing import Dict, List, Tuple
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from ...pipeline import Lemmatizer
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from ...tokens import Token
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class PolishLemmatizer(Lemmatizer):
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    # This lemmatizer implements lookup lemmatization based on the Morfeusz
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    # dictionary (morfeusz.sgjp.pl/en) by Institute of Computer Science PAS.
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    # It utilizes some prefix based improvements for verb and adjectives
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    # lemmatization, as well as case-sensitive lemmatization for nouns.
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    @classmethod
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    def get_lookups_config(cls, mode: str) -> Tuple[List[str], List[str]]:
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        if mode == "pos_lookup":
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            # fmt: off
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            required = [
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                "lemma_lookup_adj", "lemma_lookup_adp", "lemma_lookup_adv",
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                "lemma_lookup_aux", "lemma_lookup_noun", "lemma_lookup_num",
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                "lemma_lookup_part", "lemma_lookup_pron", "lemma_lookup_verb"
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            ]
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            # fmt: on
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            return (required, [])
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        else:
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            return super().get_lookups_config(mode)
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    def pos_lookup_lemmatize(self, token: Token) -> List[str]:
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        string = token.text
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        univ_pos = token.pos_
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        morphology = token.morph.to_dict()
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        lookup_pos = univ_pos.lower()
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        if univ_pos == "PROPN":
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            lookup_pos = "noun"
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        lookup_table = self.lookups.get_table("lemma_lookup_" + lookup_pos, {})
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        if univ_pos == "NOUN":
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            return self.lemmatize_noun(string, morphology, lookup_table)
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        if univ_pos != "PROPN":
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            string = string.lower()
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        if univ_pos == "ADJ":
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            return self.lemmatize_adj(string, morphology, lookup_table)
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        elif univ_pos == "VERB":
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            return self.lemmatize_verb(string, morphology, lookup_table)
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        return [lookup_table.get(string, string.lower())]
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    def lemmatize_adj(
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        self, string: str, morphology: dict, lookup_table: Dict[str, str]
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    ) -> List[str]:
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        # this method utilizes different procedures for adjectives
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        # with 'nie' and 'naj' prefixes
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        if string[:3] == "nie":
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            search_string = string[3:]
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            if search_string[:3] == "naj":
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                naj_search_string = search_string[3:]
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                if naj_search_string in lookup_table:
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                    return [lookup_table[naj_search_string]]
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            if search_string in lookup_table:
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                return [lookup_table[search_string]]
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        if string[:3] == "naj":
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            naj_search_string = string[3:]
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            if naj_search_string in lookup_table:
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                return [lookup_table[naj_search_string]]
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        return [lookup_table.get(string, string)]
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    def lemmatize_verb(
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        self, string: str, morphology: dict, lookup_table: Dict[str, str]
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    ) -> List[str]:
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        # this method utilizes a different procedure for verbs
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        # with 'nie' prefix
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        if string[:3] == "nie":
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            search_string = string[3:]
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            if search_string in lookup_table:
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                return [lookup_table[search_string]]
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        return [lookup_table.get(string, string)]
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    def lemmatize_noun(
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        self, string: str, morphology: dict, lookup_table: Dict[str, str]
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    ) -> List[str]:
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        # this method is case-sensitive, in order to work
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        # for incorrectly tagged proper names
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        if string != string.lower():
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            if string.lower() in lookup_table:
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                return [lookup_table[string.lower()]]
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            elif string in lookup_table:
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                return [lookup_table[string]]
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            return [string.lower()]
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        return [lookup_table.get(string, string)]
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