remove model_list
Browse files
app.py
CHANGED
@@ -148,7 +148,7 @@ def compute_coherence_values_base_lda(dictionary, corpus, texts, limit, coherenc
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coherencemodel = CoherenceModel(model=model, texts=texts, dictionary=dictionary, coherence=coherence)
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coherence_values.append(coherencemodel.get_coherence())
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-
return
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def compute_coherence_values2(corpus, dictionary, k, a, b):
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lda_model = gensim.models.ldamodel.LdaModel(corpus=corpus,
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@@ -275,14 +275,13 @@ def full_lda(df):
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training_corpus = corpus_split
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training_corpus.remove(training_corpus[i])
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# print(training_corpus[i])
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-
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corpus=training_corpus,
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texts=df['lemma_tokens'],
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start=2,
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limit=10,
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step=1,
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coherence='c_v')
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-
# print(model_list + str(i))
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# print(coherence_values + str(i))
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for j in range(len(coherence_values)):
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coherence_averages[j] += coherence_values[j]
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coherencemodel = CoherenceModel(model=model, texts=texts, dictionary=dictionary, coherence=coherence)
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coherence_values.append(coherencemodel.get_coherence())
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+
return coherence_values
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def compute_coherence_values2(corpus, dictionary, k, a, b):
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lda_model = gensim.models.ldamodel.LdaModel(corpus=corpus,
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training_corpus = corpus_split
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training_corpus.remove(training_corpus[i])
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# print(training_corpus[i])
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+
coherence_values = compute_coherence_values_base_lda(dictionary=id2word,
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corpus=training_corpus,
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texts=df['lemma_tokens'],
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start=2,
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limit=10,
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step=1,
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coherence='c_v')
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# print(coherence_values + str(i))
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for j in range(len(coherence_values)):
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coherence_averages[j] += coherence_values[j]
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