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Szymon Woźniak
commited on
Commit
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b802e46
1
Parent(s):
25586d7
add description to dataset statistics page
Browse files
pages/1_Language_Statistics.py
CHANGED
@@ -14,7 +14,7 @@ st.set_page_config(page_title="Language Statistics", page_icon="📈")
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st.markdown("# Language Statistics")
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st.write("""\
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The table below shows the per-language statistics of the MMS corpus.
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You can use the **'Add filters'**
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Column descriptions:
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- **Language**: Language name,
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st.markdown("# Language Statistics")
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st.write("""\
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The table below shows the per-language statistics of the MMS corpus.
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You can use the **'Add filters'** checkbox to filter the table by any of the columns.
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Column descriptions:
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- **Language**: Language name,
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pages/{2_Dataset_Statistics.py → 2_Dataset_Statistics_&_citation_export.py}
RENAMED
@@ -7,6 +7,8 @@ from filter_dataframe import filter_dataframe
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def get_language_stats_df():
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return pd.read_parquet("data/datasets_stats.parquet")
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_MMS_CITATION = """\
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@misc{augustyniak2023massively,
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title={Massively Multilingual Corpus of Sentiment Datasets and Multi-faceted Sentiment Classification Benchmark},
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@@ -30,9 +32,26 @@ def export_citations(df: pd.DataFrame):
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return f"% MMS corpus citation\n{_MMS_CITATION}\n{CITATION_SEPARATOR}{dataset_citations_joined}"
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st.set_page_config(page_title=
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df = get_language_stats_df()
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def get_language_stats_df():
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return pd.read_parquet("data/datasets_stats.parquet")
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TITLE = "Dataset statistics & citation export"
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_MMS_CITATION = """\
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@misc{augustyniak2023massively,
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title={Massively Multilingual Corpus of Sentiment Datasets and Multi-faceted Sentiment Classification Benchmark},
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return f"% MMS corpus citation\n{_MMS_CITATION}\n{CITATION_SEPARATOR}{dataset_citations_joined}"
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st.set_page_config(page_title=TITLE, page_icon="📈")
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st.markdown(f"# {TITLE}")
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st.write("""\
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The table below shows the per-language statistics of the MMS corpus.
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You can use the **'Add filters'** checkbox to filter the table by any of the columns.
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You can also use the 'Export citations' button to export the citations for the datasets in the filtered table.
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Column descriptions:
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- **original_dataset**: Original dataset name as used in the MMS corpus,
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- **language**: 2-letter language code,
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- **domain**: Domain of the dataset,
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- **mean_chars**: The average number of characters in a single example,
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- **mean_words**: The average number of words in a single example,
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- **examples_sum**: The total number of examples in the dataset,
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- **NEG**: Number of examples with negative sentiment,
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- **NEU**: Number of examples with neutral sentiment,
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- **POS**: Number of examples with positive sentiment,
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- **paper**: Link to the paper in which the dataset was originally published,
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- **citation**: Citation for the dataset,""")
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df = get_language_stats_df()
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