Description
This model removes ‘stop words’ from text. Stop words are words so common that they can be removed without significantly altering the meaning of a text. Removing stop words is useful when one wants to deal with only the most semantically important words in a text, and ignore words that are rarely semantically relevant, such as articles and prepositions.
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How to use
...
stop_words = StopWordsCleaner.pretrained("stopwords_sk", "sk") \
.setInputCols(["token"]) \
.setOutputCol("cleanTokens")
nlp_pipeline = Pipeline(stages=[document_assembler, tokenizer, stop_words])
light_pipeline = LightPipeline(nlp_pipeline.fit(spark.createDataFrame([['']]).toDF("text")))
results = light_pipeline.fullAnnotate("Okrem toho, že je kráľom severu, je John Snow anglickým lekárom a lídrom vo vývoji anestézie a lekárskej hygieny.")
...
val stopWords = StopWordsCleaner.pretrained("stopwords_sk", "sk")
.setInputCols(Array("token"))
.setOutputCol("cleanTokens")
val pipeline = new Pipeline().setStages(Array(document_assembler, tokenizer, stopWords))
val data = Seq("Okrem toho, že je kráľom severu, je John Snow anglickým lekárom a lídrom vo vývoji anestézie a lekárskej hygieny.").toDF("text")
val result = pipeline.fit(data).transform(data)
import nlu
text = ["""Okrem toho, že je kráľom severu, je John Snow anglickým lekárom a lídrom vo vývoji anestézie a lekárskej hygieny."""]
stopword_df = nlu.load('sk.stopwords').predict(text)
stopword_df[['cleanTokens']]
Results
[Row(annotatorType='token', begin=0, end=4, result='Okrem', metadata={'sentence': '0'}),
Row(annotatorType='token', begin=10, end=10, result=',', metadata={'sentence': '0'}),
Row(annotatorType='token', begin=15, end=16, result='je', metadata={'sentence': '0'}),
Row(annotatorType='token', begin=18, end=23, result='kráľom', metadata={'sentence': '0'}),
Row(annotatorType='token', begin=25, end=30, result='severu', metadata={'sentence': '0'}),
...]
Model Information
Model Name: | stopwords_sk |
Type: | stopwords |
Compatibility: | Spark NLP 2.5.4+ |
Edition: | Official |
Input Labels: | [token] |
Output Labels: | [cleanTokens] |
Language: | sk |
Case sensitive: | false |
License: | Open Source |
Data Source
The model is imported from https://github.com/WorldBrain/remove-stopwords