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			118 lines
		
	
	
		
			3.6 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
			
		
		
	
	
			118 lines
		
	
	
		
			3.6 KiB
		
	
	
	
		
			Python
		
	
	
	
	
	
import string
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from argostranslate import translate
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from libretranslate.detect import Detector, UnknownLanguage
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__languages = None
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def load_languages():
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    global __languages
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    if __languages is None or len(__languages) == 0:
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        __languages = translate.get_installed_languages()
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    return __languages
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def detect_languages(text):
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    # detect batch processing
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    if isinstance(text, list):
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        is_batch = True
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    else:
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        is_batch = False
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        text = [text]
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    # get the candidates
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    candidates = []
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    for t in text:
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        try:
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            d = Detector(t).languages
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            for i in range(len(d)):
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                d[i].text_length = len(t)
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            candidates.extend(d)
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        except UnknownLanguage:
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            pass
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    # total read bytes of the provided text
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    text_length_total = sum(c.text_length for c in candidates)
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    # Load language codes
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    languages = load_languages()
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    lang_codes = [l.code for l in languages]
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    # only use candidates that are supported by argostranslate
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    candidate_langs = list(
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        filter(lambda l: l.text_length != 0 and l.code in lang_codes, candidates)
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    )
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    # this happens if no language could be detected
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    if not candidate_langs:
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        # use language "en" by default but with zero confidence
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        return [{"confidence": 0.0, "language": "en"}]
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    # for multiple occurrences of the same language (can happen on batch detection)
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    # calculate the average confidence for each language
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    if is_batch:
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        temp_average_list = []
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        for lang_code in lang_codes:
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            # get all candidates for a specific language
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            lc = list(filter(lambda l: l.code == lang_code, candidate_langs))
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            if len(lc) > 1:
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                # if more than one is present, calculate the average confidence
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                lang = lc[0]
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                lang.confidence = sum(l.confidence for l in lc) / len(lc)
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                lang.text_length = sum(l.text_length for l in lc)
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                temp_average_list.append(lang)
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            elif lc:
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                # otherwise just add it to the temporary list
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                temp_average_list.append(lc[0])
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        if temp_average_list:
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            # replace the list
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            candidate_langs = temp_average_list
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    # sort the candidates descending based on the detected confidence
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    candidate_langs.sort(
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        key=lambda l: (l.confidence * l.text_length) / text_length_total, reverse=True
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    )
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    return [{"confidence": l.confidence, "language": l.code} for l in candidate_langs]
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def improve_translation_formatting(source, translation, improve_punctuation=True):
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    source = source.strip()
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    if not len(source):
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        return ""
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    if not len(translation):
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        return source
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    if improve_punctuation:
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        source_last_char = source[len(source) - 1]
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        translation_last_char = translation[len(translation) - 1]
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        punctuation_chars = ['!', '?', '.', ',', ';']
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        if source_last_char in punctuation_chars:
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            if translation_last_char != source_last_char:
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                if translation_last_char in punctuation_chars:
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                    translation = translation[:-1]
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                translation += source_last_char
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        elif translation_last_char in punctuation_chars:
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            translation = translation[:-1]
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    if source.islower():
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        return translation.lower()
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    if source.isupper():
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        return translation.upper()
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    if source[0].islower():
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        return translation[0].lower() + translation[1:]
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    if source[0].isupper():
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        return translation[0].upper() + translation[1:]
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    return translation
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