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Convert dataset to Parquet

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Convert dataset to Parquet.

README.md CHANGED
@@ -22,7 +22,42 @@ task_ids:
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  - multiple-choice-qa
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  - topic-classification
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  pretty_name: LexGLUE
 
 
 
 
 
 
 
 
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  dataset_info:
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  - config_name: ecthr_a
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  features:
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  - name: text
@@ -43,16 +78,16 @@ dataset_info:
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  '9': P1-1
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  splits:
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  - name: train
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- num_bytes: 89637461
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  num_examples: 9000
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  - name: test
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- num_bytes: 11884180
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  num_examples: 1000
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  - name: validation
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- num_bytes: 10985180
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  num_examples: 1000
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- download_size: 32852475
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- dataset_size: 112506821
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  - config_name: ecthr_b
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  features:
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  - name: text
@@ -203,39 +238,6 @@ dataset_info:
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  num_examples: 5000
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  download_size: 125413277
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  dataset_size: 492053875
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- - config_name: scotus
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- features:
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- - name: text
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- dtype: string
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- - name: label
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- dtype:
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- class_label:
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- names:
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- '0': '1'
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- '1': '2'
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- '2': '3'
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- '3': '4'
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- '4': '5'
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- '5': '6'
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- '6': '7'
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- '7': '8'
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- '8': '9'
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- '9': '10'
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- '10': '11'
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- '11': '12'
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- '12': '13'
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- splits:
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- - name: train
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- num_bytes: 178959320
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- num_examples: 5000
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- - name: test
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- num_bytes: 76213283
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- num_examples: 1400
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- - name: validation
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- num_bytes: 75600247
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- num_examples: 1400
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- download_size: 104763335
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- dataset_size: 330772850
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  - config_name: ledgar
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  features:
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  - name: text
@@ -356,6 +358,39 @@ dataset_info:
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  num_examples: 10000
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  download_size: 16255623
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  dataset_size: 57347492
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  - config_name: unfair_tos
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  features:
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  - name: text
@@ -384,41 +419,15 @@ dataset_info:
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  num_examples: 2275
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  download_size: 511342
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  dataset_size: 1797016
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- - config_name: case_hold
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- features:
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- - name: context
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- dtype: string
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- - name: endings
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- sequence: string
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- - name: label
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- dtype:
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- names:
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- '0': '0'
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- '1': '1'
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- splits:
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- - name: train
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- num_bytes: 74781766
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- num_examples: 45000
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- - name: test
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- num_bytes: 5989964
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- num_examples: 3600
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- - name: validation
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- num_bytes: 6474615
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- num_examples: 3900
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- download_size: 30422703
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- dataset_size: 87246345
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- config_names:
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- - case_hold
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- - ecthr_a
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- - ecthr_b
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- - eurlex
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- - ledgar
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- - scotus
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- - unfair_tos
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  ---
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  # Dataset Card for "LexGLUE"
 
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  - multiple-choice-qa
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  - topic-classification
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  pretty_name: LexGLUE
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+ config_names:
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+ - case_hold
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+ - ecthr_a
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+ - ecthr_b
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+ - eurlex
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+ - ledgar
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+ - scotus
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+ - unfair_tos
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  dataset_info:
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+ - config_name: case_hold
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+ features:
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+ - name: context
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+ dtype: string
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+ - name: endings
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+ sequence: string
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+ - name: label
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+ dtype:
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+ class_label:
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+ names:
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+ '0': '0'
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+ '1': '1'
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+ '2': '2'
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+ '3': '3'
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+ '4': '4'
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+ splits:
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+ - name: train
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+ num_bytes: 74781766
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+ num_examples: 45000
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+ - name: test
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+ num_bytes: 5989964
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+ num_examples: 3600
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+ - name: validation
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+ num_bytes: 6474615
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+ num_examples: 3900
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+ download_size: 30422703
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+ dataset_size: 87246345
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  - config_name: ecthr_a
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  features:
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  - name: text
 
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  '9': P1-1
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  splits:
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  - name: train
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+ num_bytes: 89637449
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  num_examples: 9000
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  - name: test
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+ num_bytes: 11884168
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  num_examples: 1000
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  - name: validation
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+ num_bytes: 10985168
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  num_examples: 1000
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+ download_size: 53352586
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+ dataset_size: 112506785
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  - config_name: ecthr_b
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  features:
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  - name: text
 
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  num_examples: 5000
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  download_size: 125413277
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  dataset_size: 492053875
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  - config_name: ledgar
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  features:
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  - name: text
 
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  num_examples: 10000
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  download_size: 16255623
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  dataset_size: 57347492
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+ - config_name: scotus
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+ features:
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+ - name: text
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+ dtype: string
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+ - name: label
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+ dtype:
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+ class_label:
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+ names:
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+ '0': '1'
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+ '1': '2'
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+ '2': '3'
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+ '3': '4'
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+ '4': '5'
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+ '5': '6'
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+ '6': '7'
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+ '7': '8'
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+ '8': '9'
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+ '9': '10'
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+ '10': '11'
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+ '11': '12'
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+ '12': '13'
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+ splits:
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+ - name: train
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+ num_bytes: 178959320
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+ num_examples: 5000
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+ - name: test
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+ num_bytes: 76213283
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+ num_examples: 1400
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+ - name: validation
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+ download_size: 104763335
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+ dataset_size: 330772850
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  - config_name: unfair_tos
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  features:
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  - name: text
 
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  num_examples: 2275
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  download_size: 511342
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  dataset_size: 1797016
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+ configs:
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+ - config_name: ecthr_a
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+ data_files:
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+ - split: train
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+ path: ecthr_a/train-*
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+ - split: test
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+ path: ecthr_a/test-*
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+ - split: validation
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+ path: ecthr_a/validation-*
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ---
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  # Dataset Card for "LexGLUE"
dataset_infos.json CHANGED
@@ -1 +1,706 @@
1
- {"ecthr_a": {"description": "The European Court of Human Rights (ECtHR) hears allegations that a state has\nbreached human rights provisions of the European Convention of Human Rights (ECHR).\nFor each case, the dataset provides a list of factual paragraphs (facts) from the case description.\nEach case is mapped to articles of the ECHR that were violated (if any).", "citation": "@inproceedings{chalkidis-etal-2021-paragraph,\n title = \"Paragraph-level Rationale Extraction through Regularization: A case study on {E}uropean Court of Human Rights Cases\",\n author = \"Chalkidis, Ilias and\n Fergadiotis, Manos and\n Tsarapatsanis, Dimitrios and\n Aletras, Nikolaos and\n Androutsopoulos, Ion and\n Malakasiotis, Prodromos\",\n booktitle = \"Proceedings of the 2021 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies\",\n month = jun,\n year = \"2021\",\n address = \"Online\",\n publisher = \"Association for Computational Linguistics\",\n url = \"https://aclanthology.org/2021.naacl-main.22\",\n doi = \"10.18653/v1/2021.naacl-main.22\",\n pages = \"226--241\",\n}\n}\n@article{chalkidis-etal-2021-lexglue,\n title={{LexGLUE}: A Benchmark Dataset for Legal Language Understanding in English},\n author={Chalkidis, Ilias and\n Jana, Abhik and\n Hartung, Dirk and\n Bommarito, Michael and\n Androutsopoulos, Ion and\n Katz, Daniel Martin and\n Aletras, Nikolaos},\n year={2021},\n eprint={2110.00976},\n archivePrefix={arXiv},\n primaryClass={cs.CL},\n note = {arXiv: 2110.00976},\n}", "homepage": "https://archive.org/details/ECtHR-NAACL2021", "license": "", "features": {"text": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "labels": {"feature": {"num_classes": 10, "names": ["2", "3", "5", "6", "8", "9", "10", "11", "14", "P1-1"], "id": null, "_type": "ClassLabel"}, "length": -1, "id": null, "_type": "Sequence"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "lex_glue", "config_name": "ecthr_a", "version": {"version_str": "1.0.0", "description": "", "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 89637461, "num_examples": 9000, "dataset_name": "lex_glue"}, "test": {"name": "test", "num_bytes": 11884180, "num_examples": 1000, "dataset_name": "lex_glue"}, "validation": {"name": "validation", "num_bytes": 10985180, "num_examples": 1000, "dataset_name": "lex_glue"}}, "download_checksums": {"https://zenodo.org/record/5532997/files/ecthr.tar.gz": {"num_bytes": 32852475, "checksum": "461c1f6016af3a7ac0bd115c1f9ff65031258bfec39e570fec74a16d8946398e"}}, "download_size": 32852475, "post_processing_size": null, "dataset_size": 112506821, "size_in_bytes": 145359296}, "ecthr_b": {"description": "The European Court of Human Rights (ECtHR) hears allegations that a state has\nbreached human rights provisions of the European Convention of Human Rights (ECHR).\nFor each case, the dataset provides a list of factual paragraphs (facts) from the case description.\nEach case is mapped to articles of ECHR that were allegedly violated (considered by the court).", "citation": "@inproceedings{chalkidis-etal-2021-paragraph,\n title = \"Paragraph-level Rationale Extraction through Regularization: A case study on {E}uropean Court of Human Rights Cases\",\n author = \"Chalkidis, Ilias\n and Fergadiotis, Manos\n and Tsarapatsanis, Dimitrios\n and Aletras, Nikolaos\n and Androutsopoulos, Ion\n and Malakasiotis, Prodromos\",\n booktitle = \"Proceedings of the 2021 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies\",\n year = \"2021\",\n address = \"Online\",\n url = \"https://aclanthology.org/2021.naacl-main.22\",\n}\n}\n@article{chalkidis-etal-2021-lexglue,\n title={{LexGLUE}: A Benchmark Dataset for Legal Language Understanding in English},\n author={Chalkidis, Ilias and\n Jana, Abhik and\n Hartung, Dirk and\n Bommarito, Michael and\n Androutsopoulos, Ion and\n Katz, Daniel Martin and\n Aletras, Nikolaos},\n year={2021},\n eprint={2110.00976},\n archivePrefix={arXiv},\n primaryClass={cs.CL},\n note = {arXiv: 2110.00976},\n}", "homepage": "https://archive.org/details/ECtHR-NAACL2021", "license": "", "features": {"text": {"feature": {"dtype": "string", "id": null, "_type": "Value"}, "length": -1, "id": null, "_type": "Sequence"}, "labels": {"feature": {"num_classes": 10, "names": ["2", "3", "5", "6", "8", "9", "10", "11", "14", "P1-1"], "id": null, "_type": "ClassLabel"}, "length": -1, "id": null, "_type": "Sequence"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "lex_glue", "config_name": "ecthr_b", "version": {"version_str": "1.0.0", "description": "", "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 89657661, "num_examples": 9000, "dataset_name": "lex_glue"}, "test": {"name": "test", "num_bytes": 11886940, "num_examples": 1000, "dataset_name": "lex_glue"}, "validation": {"name": "validation", "num_bytes": 10987828, "num_examples": 1000, "dataset_name": "lex_glue"}}, "download_checksums": {"https://zenodo.org/record/5532997/files/ecthr.tar.gz": {"num_bytes": 32852475, "checksum": "461c1f6016af3a7ac0bd115c1f9ff65031258bfec39e570fec74a16d8946398e"}}, "download_size": 32852475, "post_processing_size": null, "dataset_size": 112532429, "size_in_bytes": 145384904}, "eurlex": {"description": "European Union (EU) legislation is published in EUR-Lex portal.\nAll EU laws are annotated by EU's Publications Office with multiple concepts from the EuroVoc thesaurus,\na multilingual thesaurus maintained by the Publications Office.\nThe current version of EuroVoc contains more than 7k concepts referring to various activities\nof the EU and its Member States (e.g., economics, health-care, trade).\nGiven a document, the task is to predict its EuroVoc labels (concepts).", "citation": "@inproceedings{chalkidis-etal-2021-multieurlex,\n author = {Chalkidis, Ilias and\n Fergadiotis, Manos and\n Androutsopoulos, Ion},\n title = {MultiEURLEX -- A multi-lingual and multi-label legal document\n classification dataset for zero-shot cross-lingual transfer},\n booktitle = {Proceedings of the 2021 Conference on Empirical Methods\n in Natural Language Processing},\n year = {2021},\n location = {Punta Cana, Dominican Republic},\n}\n}\n@article{chalkidis-etal-2021-lexglue,\n title={{LexGLUE}: A Benchmark Dataset for Legal Language Understanding in English},\n author={Chalkidis, Ilias and\n Jana, Abhik and\n Hartung, Dirk and\n Bommarito, Michael and\n Androutsopoulos, Ion and\n Katz, Daniel Martin and\n Aletras, Nikolaos},\n year={2021},\n eprint={2110.00976},\n archivePrefix={arXiv},\n primaryClass={cs.CL},\n note = {arXiv: 2110.00976},\n}", "homepage": "https://zenodo.org/record/5363165#.YVJOAi8RqaA", "license": "", "features": {"text": {"dtype": "string", "id": null, "_type": "Value"}, "labels": {"feature": {"num_classes": 100, "names": ["100163", "100168", "100169", "100170", "100171", "100172", "100173", "100174", "100175", "100176", "100177", "100179", "100180", "100183", "100184", "100185", "100186", "100187", "100189", "100190", "100191", "100192", "100193", "100194", "100195", "100196", "100197", "100198", "100199", "100200", "100201", "100202", "100204", "100205", "100206", "100207", "100212", "100214", "100215", "100220", "100221", "100222", "100223", "100224", "100226", "100227", "100229", "100230", "100231", "100232", "100233", "100234", "100235", "100237", "100238", "100239", "100240", "100241", "100242", "100243", "100244", "100245", "100246", "100247", "100248", "100249", "100250", "100252", "100253", "100254", "100255", "100256", "100257", "100258", "100259", "100260", "100261", "100262", "100263", "100264", "100265", "100266", "100268", "100269", "100270", "100271", "100272", "100273", "100274", "100275", "100276", "100277", "100278", "100279", "100280", "100281", "100282", "100283", "100284", "100285"], "id": null, "_type": "ClassLabel"}, "length": -1, "id": null, "_type": "Sequence"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "lex_glue", "config_name": "eurlex", "version": {"version_str": "1.0.0", "description": "", "major": 1, "minor": 0, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 390770289, "num_examples": 55000, "dataset_name": "lex_glue"}, "test": {"name": "test", "num_bytes": 59739102, "num_examples": 5000, "dataset_name": "lex_glue"}, "validation": {"name": "validation", "num_bytes": 41544484, "num_examples": 5000, "dataset_name": "lex_glue"}}, "download_checksums": {"https://zenodo.org/record/5532997/files/eurlex.tar.gz": {"num_bytes": 125413277, "checksum": "82376ff55c3812632d8a21ad0d7e515e2e7ec6431ca7673a454cdd41a3a7bf46"}}, "download_size": 125413277, "post_processing_size": null, "dataset_size": 492053875, "size_in_bytes": 617467152}, "scotus": {"description": "The US Supreme Court (SCOTUS) is the highest federal court in the United States of America\nand generally hears only the most controversial or otherwise complex cases which have not\nbeen sufficiently well solved by lower courts. This is a single-label multi-class classification\ntask, where given a document (court opinion), the task is to predict the relevant issue areas.\nThe 14 issue areas cluster 278 issues whose focus is on the subject matter of the controversy (dispute).", "citation": "@misc{spaeth2020,\n author = {Harold J. Spaeth and Lee Epstein and Andrew D. Martin, Jeffrey A. Segal\n and Theodore J. Ruger and Sara C. 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