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The dataset generation failed because of a cast error
Error code:   DatasetGenerationCastError
Exception:    DatasetGenerationCastError
Message:      An error occurred while generating the dataset

All the data files must have the same columns, but at some point there are 108 new columns ({'drug1_cluster_birch_13', 'drug2_cluster_agglomerative_13', 'drug2_cluster_birch_14', 'drug1_cluster_agglomerative_16', 'drug2_cluster_kmeans_19', 'drug2_cluster_birch_17', 'drug1_cluster_agglomerative_6', 'drug1_cluster_kmeans_17', 'drug1_cluster_kmeans_18', 'drug1_cluster_kmeans_20', 'drug2_cluster_kmeans_14', 'drug2_cluster_birch_5', 'drug2_cluster_agglomerative_17', 'drug1_cluster_agglomerative_11', 'drug2_cluster_birch_18', 'drug1_cluster_birch_8', 'drug2_cluster_agglomerative_7', 'drug1_cluster_agglomerative_15', 'drug1_cluster_birch_20', 'Frequency', 'drug1_cluster_agglomerative_20', 'drug2_cluster_kmeans_8', 'drug1_cluster_birch_18', 'drug1_cluster_agglomerative_12', 'drug2_cluster_agglomerative_20', 'drug2_cluster_agglomerative_18', 'drug2_cluster_kmeans_9', 'drug1_cluster_birch_9', 'drug2_cluster_agglomerative_10', 'drug2_cluster_agglomerative_15', 'drug1_cluster_kmeans_9', 'drug2_cluster_birch_9', 'drug1_cluster_agglomerative_18', 'drug1_cluster_kmeans_13', 'drug1_cluster_agglomerative_5', 'drug2_cluster_birch_16', 'drug2', 'drug2_cluster_kmeans_13', 'drug1_cluster_agglomerative_14', 'drug1_cluster_kmeans_8', 'drug2_cluster_kmeans_16', 'output', 'drug2_cluster_birch_10', 'split', 'drug1_cluster_birch_10', 'drug2_cluster_birch_13', 'drug1_cluster_agglomerative_7', 'drug1_cluster_agglomerative_17', 'drug2_cluster_kmeans_17', 'drug1_cluster_kmeans_19', 'drug1_cluster_birch_5', 'drug2_cluster_kmeans_20', 'drug1_cluster_birch_6', 'drug2_cluster_kmeans_6', 'drug1_cluster_kmeans_10', 'drug2_cluster_agglomerative_9', 'drug1_cluster_kmeans_6', 'drug2_cluster_kmeans_10', 'drug2_cluster_birch_12', 'drug1_cluster_kmeans_7', 'drug1_cluster_birch_14', 'drug1_cluster_birch_17', 'drug2_cluster_kmeans_5', 'drug2_cluster_birch_11', 'drug1_smiles', 'drug1_cluster_birch_15', 'drug2_cluster_agglomerative_12', 'drug1', 'drug1_cluster_kmeans_15', 'drug1_cluster_birch_12', 'drug2_cluster_agglomerative_11', 'drug1_cluster_agglomerative_19', 'drug2_cluster_birch_20', 'drug1_cluster_kmeans_12', 'drug1_cluster_birch_19', 'drug1_cluster_kmeans_11', 'drug2_cluster_agglomerative_5', 'drug2_cluster_agglomerative_14', 'drug2_cluster_birch_7', 'drug2_cluster_kmeans_7', 'drug2_cluster_agglomerative_16', 'drug2_cluster_birch_8', 'drug1_cluster_birch_11', 'drug1_cluster_kmeans_16', 'drug2_cluster_kmeans_11', 'drug1_cluster_agglomerative_8', 'drug1_selfies', 'drug1_cluster_birch_7', 'drug1_cluster_agglomerative_10', 'drug2_cluster_birch_19', 'drug2_cluster_agglomerative_6', 'drug1_cluster_agglomerative_9', 'drug1_cluster_agglomerative_13', 'drug1_cluster_kmeans_14', 'drug2_cluster_birch_15', 'drug2_selfies', 'drug2_smiles', 'drug2_cluster_kmeans_18', 'drug1_description', 'drug2_cluster_kmeans_15', 'drug2_cluster_agglomerative_8', 'drug2_description', 'drug1_cluster_birch_16', 'drug1_cluster_kmeans_5', 'drug2_cluster_kmeans_12', 'drug2_cluster_birch_6', 'drug2_cluster_agglomerative_19', 'id'}) and 101 missing columns ({'cluster_kmeans_13', 'PC_41', 'cluster_kmeans_12', 'cluster_agglomerative_9', 'cluster_agglomerative_10', 'cluster_birch_9', 'cluster_agglomerative_12', 'cluster_agglomerative_5', 'PC_34', 'cluster_kmeans_17', 'PC_2', 'PC_5', 'PC_38', 'cluster_kmeans_11', 'cluster_birch_13', 'PC_39', 'cluster_birch_19', 'PC_6', 'PC_23', 'TSNE2', 'TSNE1', 'PC_36', 'cluster_agglomerative_7', 'cluster_kmeans_9', 'PC_33', 'cluster_agglomerative_13', 'PC_21', 'cluster_birch_14', 'cluster_kmeans_14', 'cluster_agglomerative_17', 'PC_13', 'PC_42', 'cluster_agglomerative_19', 'PC_1', 'cluster_birch_7', 'PC_31', 'PC_4', 'cluster_birch_10', 'PC_24', 'PC_35', 'PC_45', 'PC_3', 'PC_10', 'PC_15', 'cluster_birch_8', 'cluster_birch_11', 'cluster_agglomerative_15', 'cluster_kmeans_10', 'PC_11', 'PC_27', 'PC_28', 'cluster_birch_17', 'PC_8', 'cluster_birch_18', 'cluster_agglomerative_11', 'PC_40', 'PC_32', 'cluster_kmeans_19', 'PC_26', 'cluster_birch_20', 'cluster_agglomerative_20', 'cluster_agglomerative_14', 'cluster_birch_16', 'PC_18', 'cluster_kmeans_5', 'cluster_birch_5', 'cluster_kmeans_15', 'PC_49', 'PC_12', 'cluster_agglomerative_18', 'PC_46', 'PC_44', 'PC_50', 'PC_29', 'PC_14', 'PC_20', 'PC_30', 'PC_37', 'cluster_kmeans_20', 'PC_22', 'cluster_kmeans_16', 'cluster_agglomerative_8', 'PC_25', 'PC_19', 'cluster_birch_6', 'cluster_kmeans_18', 'cluster_birch_12', 'PC_17', 'cluster_birch_15', 'drug', 'PC_7', 'PC_43', 'cluster_agglomerative_16', 'PC_47', 'cluster_agglomerative_6', 'cluster_kmeans_7', 'cluster_kmeans_8', 'PC_48', 'PC_16', 'PC_9', 'cluster_kmeans_6'}).

This happened while the csv dataset builder was generating data using

hf://datasets/liupf/KAR4DDI/deepddie/few_k_b_a_5_20/k_b_a_5_20_few_226.csv (at revision a4f0c3fd420a2338f6b3f72a682389fa99d5cb5f)

Please either edit the data files to have matching columns, or separate them into different configurations (see docs at https://hf.co/docs/hub/datasets-manual-configuration#multiple-configurations)
Traceback:    Traceback (most recent call last):
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 2011, in _prepare_split_single
                  writer.write_table(table)
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/arrow_writer.py", line 585, in write_table
                  pa_table = table_cast(pa_table, self._schema)
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/table.py", line 2302, in table_cast
                  return cast_table_to_schema(table, schema)
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/table.py", line 2256, in cast_table_to_schema
                  raise CastError(
              datasets.table.CastError: Couldn't cast
              id: int64
              drug1: string
              drug2: string
              output: int64
              drug1_smiles: string
              drug2_smiles: string
              Frequency: string
              drug1_cluster_kmeans_5: int64
              drug1_cluster_kmeans_6: int64
              drug1_cluster_kmeans_7: int64
              drug1_cluster_kmeans_8: int64
              drug1_cluster_kmeans_9: int64
              drug1_cluster_kmeans_10: int64
              drug1_cluster_kmeans_11: int64
              drug1_cluster_kmeans_12: int64
              drug1_cluster_kmeans_13: int64
              drug1_cluster_kmeans_14: int64
              drug1_cluster_kmeans_15: int64
              drug1_cluster_kmeans_16: int64
              drug1_cluster_kmeans_17: int64
              drug1_cluster_kmeans_18: int64
              drug1_cluster_kmeans_19: int64
              drug1_cluster_kmeans_20: int64
              drug1_cluster_birch_5: int64
              drug1_cluster_birch_6: int64
              drug1_cluster_birch_7: int64
              drug1_cluster_birch_8: int64
              drug1_cluster_birch_9: int64
              drug1_cluster_birch_10: int64
              drug1_cluster_birch_11: int64
              drug1_cluster_birch_12: int64
              drug1_cluster_birch_13: int64
              drug1_cluster_birch_14: int64
              drug1_cluster_birch_15: int64
              drug1_cluster_birch_16: int64
              drug1_cluster_birch_17: int64
              drug1_cluster_birch_18: int64
              drug1_cluster_birch_19: int64
              drug1_cluster_birch_20: int64
              drug1_cluster_agglomerative_5: int64
              drug1_cluster_agglomerative_6: int64
              drug1_cluster_agglomerative_7: int64
              drug1_cluster_agglomerative_8: int64
              drug1_cluster_agglomerative_9: int64
              drug1_cluster_agglomerative_10: int64
              drug1_cluster_agglomerative_11: int64
              drug1_cluster_agglomerative_12: int64
              drug1_cluster_agglomerative_13: int64
              drug1_cluster_agglomerative_14: int64
              drug1_cluster_agglomerative_15: int64
              drug1_clu
              ...
              ster_kmeans_14: int64
              drug2_cluster_kmeans_15: int64
              drug2_cluster_kmeans_16: int64
              drug2_cluster_kmeans_17: int64
              drug2_cluster_kmeans_18: int64
              drug2_cluster_kmeans_19: int64
              drug2_cluster_kmeans_20: int64
              drug2_cluster_birch_5: int64
              drug2_cluster_birch_6: int64
              drug2_cluster_birch_7: int64
              drug2_cluster_birch_8: int64
              drug2_cluster_birch_9: int64
              drug2_cluster_birch_10: int64
              drug2_cluster_birch_11: int64
              drug2_cluster_birch_12: int64
              drug2_cluster_birch_13: int64
              drug2_cluster_birch_14: int64
              drug2_cluster_birch_15: int64
              drug2_cluster_birch_16: int64
              drug2_cluster_birch_17: int64
              drug2_cluster_birch_18: int64
              drug2_cluster_birch_19: int64
              drug2_cluster_birch_20: int64
              drug2_cluster_agglomerative_5: int64
              drug2_cluster_agglomerative_6: int64
              drug2_cluster_agglomerative_7: int64
              drug2_cluster_agglomerative_8: int64
              drug2_cluster_agglomerative_9: int64
              drug2_cluster_agglomerative_10: int64
              drug2_cluster_agglomerative_11: int64
              drug2_cluster_agglomerative_12: int64
              drug2_cluster_agglomerative_13: int64
              drug2_cluster_agglomerative_14: int64
              drug2_cluster_agglomerative_15: int64
              drug2_cluster_agglomerative_16: int64
              drug2_cluster_agglomerative_17: int64
              drug2_cluster_agglomerative_18: int64
              drug2_cluster_agglomerative_19: int64
              drug2_cluster_agglomerative_20: int64
              drug1_selfies: string
              drug2_selfies: string
              split: string
              drug1_description: string
              drug2_description: string
              -- schema metadata --
              pandas: '{"index_columns": [{"kind": "range", "name": null, "start": 0, "' + 15741
              to
              {'drug': Value(dtype='string', id=None), 'PC_1': Value(dtype='float64', id=None), 'PC_2': Value(dtype='float64', id=None), 'PC_3': Value(dtype='float64', id=None), 'PC_4': Value(dtype='float64', id=None), 'PC_5': Value(dtype='float64', id=None), 'PC_6': Value(dtype='float64', id=None), 'PC_7': Value(dtype='float64', id=None), 'PC_8': Value(dtype='float64', id=None), 'PC_9': Value(dtype='float64', id=None), 'PC_10': Value(dtype='float64', id=None), 'PC_11': Value(dtype='float64', id=None), 'PC_12': Value(dtype='float64', id=None), 'PC_13': Value(dtype='float64', id=None), 'PC_14': Value(dtype='float64', id=None), 'PC_15': Value(dtype='float64', id=None), 'PC_16': Value(dtype='float64', id=None), 'PC_17': Value(dtype='float64', id=None), 'PC_18': Value(dtype='float64', id=None), 'PC_19': Value(dtype='float64', id=None), 'PC_20': Value(dtype='float64', id=None), 'PC_21': Value(dtype='float64', id=None), 'PC_22': Value(dtype='float64', id=None), 'PC_23': Value(dtype='float64', id=None), 'PC_24': Value(dtype='float64', id=None), 'PC_25': Value(dtype='float64', id=None), 'PC_26': Value(dtype='float64', id=None), 'PC_27': Value(dtype='float64', id=None), 'PC_28': Value(dtype='float64', id=None), 'PC_29': Value(dtype='float64', id=None), 'PC_30': Value(dtype='float64', id=None), 'PC_31': Value(dtype='float64', id=None), 'PC_32': Value(dtype='float64', id=None), 'PC_33': Value(dtype='float64', id=None), 'PC_34': Value(dtype='float64', id=None), 'PC_35': Value(dtype='float64', id=None)
              ...
               'cluster_birch_10': Value(dtype='int64', id=None), 'cluster_birch_11': Value(dtype='int64', id=None), 'cluster_birch_12': Value(dtype='int64', id=None), 'cluster_birch_13': Value(dtype='int64', id=None), 'cluster_birch_14': Value(dtype='int64', id=None), 'cluster_birch_15': Value(dtype='int64', id=None), 'cluster_birch_16': Value(dtype='int64', id=None), 'cluster_birch_17': Value(dtype='int64', id=None), 'cluster_birch_18': Value(dtype='int64', id=None), 'cluster_birch_19': Value(dtype='int64', id=None), 'cluster_birch_20': Value(dtype='int64', id=None), 'cluster_agglomerative_5': Value(dtype='int64', id=None), 'cluster_agglomerative_6': Value(dtype='int64', id=None), 'cluster_agglomerative_7': Value(dtype='int64', id=None), 'cluster_agglomerative_8': Value(dtype='int64', id=None), 'cluster_agglomerative_9': Value(dtype='int64', id=None), 'cluster_agglomerative_10': Value(dtype='int64', id=None), 'cluster_agglomerative_11': Value(dtype='int64', id=None), 'cluster_agglomerative_12': Value(dtype='int64', id=None), 'cluster_agglomerative_13': Value(dtype='int64', id=None), 'cluster_agglomerative_14': Value(dtype='int64', id=None), 'cluster_agglomerative_15': Value(dtype='int64', id=None), 'cluster_agglomerative_16': Value(dtype='int64', id=None), 'cluster_agglomerative_17': Value(dtype='int64', id=None), 'cluster_agglomerative_18': Value(dtype='int64', id=None), 'cluster_agglomerative_19': Value(dtype='int64', id=None), 'cluster_agglomerative_20': Value(dtype='int64', id=None)}
              because column names don't match
              
              During handling of the above exception, another exception occurred:
              
              Traceback (most recent call last):
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 1323, in compute_config_parquet_and_info_response
                  parquet_operations = convert_to_parquet(builder)
                File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 938, in convert_to_parquet
                  builder.download_and_prepare(
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 1027, in download_and_prepare
                  self._download_and_prepare(
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 1122, in _download_and_prepare
                  self._prepare_split(split_generator, **prepare_split_kwargs)
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 1882, in _prepare_split
                  for job_id, done, content in self._prepare_split_single(
                File "/src/services/worker/.venv/lib/python3.9/site-packages/datasets/builder.py", line 2013, in _prepare_split_single
                  raise DatasetGenerationCastError.from_cast_error(
              datasets.exceptions.DatasetGenerationCastError: An error occurred while generating the dataset
              
              All the data files must have the same columns, but at some point there are 108 new columns ({'drug1_cluster_birch_13', 'drug2_cluster_agglomerative_13', 'drug2_cluster_birch_14', 'drug1_cluster_agglomerative_16', 'drug2_cluster_kmeans_19', 'drug2_cluster_birch_17', 'drug1_cluster_agglomerative_6', 'drug1_cluster_kmeans_17', 'drug1_cluster_kmeans_18', 'drug1_cluster_kmeans_20', 'drug2_cluster_kmeans_14', 'drug2_cluster_birch_5', 'drug2_cluster_agglomerative_17', 'drug1_cluster_agglomerative_11', 'drug2_cluster_birch_18', 'drug1_cluster_birch_8', 'drug2_cluster_agglomerative_7', 'drug1_cluster_agglomerative_15', 'drug1_cluster_birch_20', 'Frequency', 'drug1_cluster_agglomerative_20', 'drug2_cluster_kmeans_8', 'drug1_cluster_birch_18', 'drug1_cluster_agglomerative_12', 'drug2_cluster_agglomerative_20', 'drug2_cluster_agglomerative_18', 'drug2_cluster_kmeans_9', 'drug1_cluster_birch_9', 'drug2_cluster_agglomerative_10', 'drug2_cluster_agglomerative_15', 'drug1_cluster_kmeans_9', 'drug2_cluster_birch_9', 'drug1_cluster_agglomerative_18', 'drug1_cluster_kmeans_13', 'drug1_cluster_agglomerative_5', 'drug2_cluster_birch_16', 'drug2', 'drug2_cluster_kmeans_13', 'drug1_cluster_agglomerative_14', 'drug1_cluster_kmeans_8', 'drug2_cluster_kmeans_16', 'output', 'drug2_cluster_birch_10', 'split', 'drug1_cluster_birch_10', 'drug2_cluster_birch_13', 'drug1_cluster_agglomerative_7', 'drug1_cluster_agglomerative_17', 'drug2_cluster_kmeans_17', 'drug1_cluster_kmeans_19', 'drug1_cluster_birch_5', 'drug2_cluster_kmeans_20', 'drug1_cluster_birch_6', 'drug2_cluster_kmeans_6', 'drug1_cluster_kmeans_10', 'drug2_cluster_agglomerative_9', 'drug1_cluster_kmeans_6', 'drug2_cluster_kmeans_10', 'drug2_cluster_birch_12', 'drug1_cluster_kmeans_7', 'drug1_cluster_birch_14', 'drug1_cluster_birch_17', 'drug2_cluster_kmeans_5', 'drug2_cluster_birch_11', 'drug1_smiles', 'drug1_cluster_birch_15', 'drug2_cluster_agglomerative_12', 'drug1', 'drug1_cluster_kmeans_15', 'drug1_cluster_birch_12', 'drug2_cluster_agglomerative_11', 'drug1_cluster_agglomerative_19', 'drug2_cluster_birch_20', 'drug1_cluster_kmeans_12', 'drug1_cluster_birch_19', 'drug1_cluster_kmeans_11', 'drug2_cluster_agglomerative_5', 'drug2_cluster_agglomerative_14', 'drug2_cluster_birch_7', 'drug2_cluster_kmeans_7', 'drug2_cluster_agglomerative_16', 'drug2_cluster_birch_8', 'drug1_cluster_birch_11', 'drug1_cluster_kmeans_16', 'drug2_cluster_kmeans_11', 'drug1_cluster_agglomerative_8', 'drug1_selfies', 'drug1_cluster_birch_7', 'drug1_cluster_agglomerative_10', 'drug2_cluster_birch_19', 'drug2_cluster_agglomerative_6', 'drug1_cluster_agglomerative_9', 'drug1_cluster_agglomerative_13', 'drug1_cluster_kmeans_14', 'drug2_cluster_birch_15', 'drug2_selfies', 'drug2_smiles', 'drug2_cluster_kmeans_18', 'drug1_description', 'drug2_cluster_kmeans_15', 'drug2_cluster_agglomerative_8', 'drug2_description', 'drug1_cluster_birch_16', 'drug1_cluster_kmeans_5', 'drug2_cluster_kmeans_12', 'drug2_cluster_birch_6', 'drug2_cluster_agglomerative_19', 'id'}) and 101 missing columns ({'cluster_kmeans_13', 'PC_41', 'cluster_kmeans_12', 'cluster_agglomerative_9', 'cluster_agglomerative_10', 'cluster_birch_9', 'cluster_agglomerative_12', 'cluster_agglomerative_5', 'PC_34', 'cluster_kmeans_17', 'PC_2', 'PC_5', 'PC_38', 'cluster_kmeans_11', 'cluster_birch_13', 'PC_39', 'cluster_birch_19', 'PC_6', 'PC_23', 'TSNE2', 'TSNE1', 'PC_36', 'cluster_agglomerative_7', 'cluster_kmeans_9', 'PC_33', 'cluster_agglomerative_13', 'PC_21', 'cluster_birch_14', 'cluster_kmeans_14', 'cluster_agglomerative_17', 'PC_13', 'PC_42', 'cluster_agglomerative_19', 'PC_1', 'cluster_birch_7', 'PC_31', 'PC_4', 'cluster_birch_10', 'PC_24', 'PC_35', 'PC_45', 'PC_3', 'PC_10', 'PC_15', 'cluster_birch_8', 'cluster_birch_11', 'cluster_agglomerative_15', 'cluster_kmeans_10', 'PC_11', 'PC_27', 'PC_28', 'cluster_birch_17', 'PC_8', 'cluster_birch_18', 'cluster_agglomerative_11', 'PC_40', 'PC_32', 'cluster_kmeans_19', 'PC_26', 'cluster_birch_20', 'cluster_agglomerative_20', 'cluster_agglomerative_14', 'cluster_birch_16', 'PC_18', 'cluster_kmeans_5', 'cluster_birch_5', 'cluster_kmeans_15', 'PC_49', 'PC_12', 'cluster_agglomerative_18', 'PC_46', 'PC_44', 'PC_50', 'PC_29', 'PC_14', 'PC_20', 'PC_30', 'PC_37', 'cluster_kmeans_20', 'PC_22', 'cluster_kmeans_16', 'cluster_agglomerative_8', 'PC_25', 'PC_19', 'cluster_birch_6', 'cluster_kmeans_18', 'cluster_birch_12', 'PC_17', 'cluster_birch_15', 'drug', 'PC_7', 'PC_43', 'cluster_agglomerative_16', 'PC_47', 'cluster_agglomerative_6', 'cluster_kmeans_7', 'cluster_kmeans_8', 'PC_48', 'PC_16', 'PC_9', 'cluster_kmeans_6'}).
              
              This happened while the csv dataset builder was generating data using
              
              hf://datasets/liupf/KAR4DDI/deepddie/few_k_b_a_5_20/k_b_a_5_20_few_226.csv (at revision a4f0c3fd420a2338f6b3f72a682389fa99d5cb5f)
              
              Please either edit the data files to have matching columns, or separate them into different configurations (see docs at https://hf.co/docs/hub/datasets-manual-configuration#multiple-configurations)

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drug
string
PC_1
float64
PC_2
float64
PC_3
float64
PC_4
float64
PC_5
float64
PC_6
float64
PC_7
float64
PC_8
float64
PC_9
float64
PC_10
float64
PC_11
float64
PC_12
float64
PC_13
float64
PC_14
float64
PC_15
float64
PC_16
float64
PC_17
float64
PC_18
float64
PC_19
float64
PC_20
float64
PC_21
float64
PC_22
float64
PC_23
float64
PC_24
float64
PC_25
float64
PC_26
float64
PC_27
float64
PC_28
float64
PC_29
float64
PC_30
float64
PC_31
float64
PC_32
float64
PC_33
float64
PC_34
float64
PC_35
float64
PC_36
float64
PC_37
float64
PC_38
float64
PC_39
float64
PC_40
float64
PC_41
float64
PC_42
float64
PC_43
float64
PC_44
float64
PC_45
float64
PC_46
float64
PC_47
float64
PC_48
float64
PC_49
float64
PC_50
float64
TSNE1
float64
TSNE2
float64
cluster_kmeans_5
int64
cluster_kmeans_6
int64
cluster_kmeans_7
int64
cluster_kmeans_8
int64
cluster_kmeans_9
int64
cluster_kmeans_10
int64
cluster_kmeans_11
int64
cluster_kmeans_12
int64
cluster_kmeans_13
int64
cluster_kmeans_14
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DB04824
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DB00258
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DB01299
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DB00804
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DB06410
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DB06704
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DB00346
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DB13985
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DB00366
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DB01168
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End of preview.

Overview

The dataset in this study is a Drug-Drug Interaction Event (DDIE) dataset obtained from DeepDDI 2. It includes detailed information on 2,386 drugs, each represented by a 50-dimensional Principal Components Analysis (PCA) feature vector, and the corresponding SMILES strings. Additionally, drug descriptions from DDInter and DrugBank have been integrated into the dataset.

The DDIE dataset comprises 222,127 drug pairs, enabling the prediction of 113 different DDIE types. Addressing few-shot scenarios is crucial due to the frequent occurrence of rare and poorly documented drug interactions in clinical settings, which present significant challenges.

Data Sample Distribution

The following table shows the distribution of data samples across different interaction frequency categories in the training, validation, and test sets:

Freq Train Valid Test
Common 44,126 44,113 132,110
Few 108 128 298
Rare 43 34 85

This categorization into 'common', 'few', and 'rare' is based on the frequency of DDIE occurrences, which helps address the challenges posed by different frequency categories in real-world scenarios. Additionally, categories with fewer than two samples were removed, and the remaining samples were distributed into training, validation, and test sets at ratios of 2:2:6 to enhance the dataset's quality and reliability.

Knowledge Extraction

In our approach to knowledge extraction, we transform drug features into drug types. These features are then subjected to dimensionality reduction via t-SNE, reducing them to a 2-dimensional space suitable for visualization and clustering. This method is preferred for its effectiveness in preserving the local structure of the data while reducing dimensionality, which facilitates the identification of patterns and relationships inherent in the high-dimensional space.

For clustering the 2-dimensional drug features, we employ several algorithms that require a predefined number of clusters, such as K-means, Birch, and Agglomerative clustering. These techniques are chosen for their appropriateness for quantitative analysis and compatibility with dimensionality reduction techniques like t-SNE.

Data Visualization
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