SuperGLUE_CB_ppl_0143fe.py 1.83 KB
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from opencompass.openicl.icl_prompt_template import PromptTemplate
from opencompass.openicl.icl_retriever import ZeroRetriever
from opencompass.openicl.icl_inferencer import PPLInferencer
from opencompass.openicl.icl_evaluator import AccEvaluator
from opencompass.datasets import HFDataset

CB_reader_cfg = dict(
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    input_columns=['premise', 'hypothesis'],
    output_column='label',
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)

CB_infer_cfg = dict(
    prompt_template=dict(
        type=PromptTemplate,
        template={
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            'contradiction':
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            dict(round=[
                dict(
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                    role='HUMAN',
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                    prompt=
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                    '{premise}\n{hypothesis}\nWhat is the relation between the two sentences?'
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                ),
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                dict(role='BOT', prompt='Contradiction'),
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            ]),
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            'entailment':
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            dict(round=[
                dict(
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                    role='HUMAN',
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                    prompt=
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                    '{premise}\n{hypothesis}\nWhat is the relation between the two sentences?'
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                ),
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                dict(role='BOT', prompt='Entailment'),
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            ]),
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            'neutral':
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            dict(round=[
                dict(
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                    role='HUMAN',
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                    prompt=
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                    '{premise}\n{hypothesis}\nWhat is the relation between the two sentences?'
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                ),
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                dict(role='BOT', prompt='Neutral'),
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            ]),
        },
    ),
    retriever=dict(type=ZeroRetriever),
    inferencer=dict(type=PPLInferencer),
)

CB_eval_cfg = dict(evaluator=dict(type=AccEvaluator), )

CB_datasets = [
    dict(
        type=HFDataset,
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        abbr='CB',
        path='json',
        split='train',
        data_files='./data/SuperGLUE/CB/val.jsonl',
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        reader_cfg=CB_reader_cfg,
        infer_cfg=CB_infer_cfg,
        eval_cfg=CB_eval_cfg,
    )
]