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51 lines
1.8 KiB
Python
51 lines
1.8 KiB
Python
from opencompass.openicl.icl_prompt_template import PromptTemplate
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from opencompass.openicl.icl_retriever import ZeroRetriever
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from opencompass.openicl.icl_inferencer import PPLInferencer
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from opencompass.openicl.icl_evaluator import AccEvaluator
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from opencompass.datasets import AnliDataset
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anli_datasets = []
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for _split in ['R1', 'R2', 'R3']:
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anli_reader_cfg = dict(
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input_columns=["context", "hypothesis"],
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output_column="label",
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)
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anli_infer_cfg = dict(
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prompt_template=dict(
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type=PromptTemplate,
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template={
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"A":
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dict(round=[
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dict(role="HUMAN", prompt="{context}\n{hypothesis}\What is the relation between the two sentences?"),
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dict(role="BOT", prompt="Contradiction"),
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]),
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"B":
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dict(round=[
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dict(role="HUMAN", prompt="{context}\n{hypothesis}\What is the relation between the two sentences?"),
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dict(role="BOT", prompt="Entailment"),
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]),
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"C":
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dict(round=[
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dict(role="HUMAN", prompt="{context}\n{hypothesis}\What is the relation between the two sentences?"),
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dict(role="BOT", prompt="Neutral"),
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]),
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},
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),
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retriever=dict(type=ZeroRetriever),
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inferencer=dict(type=PPLInferencer),
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)
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anli_eval_cfg = dict(evaluator=dict(type=AccEvaluator), )
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anli_datasets.append(
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dict(
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type=AnliDataset,
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abbr=f"anli-{_split}",
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path=f"data/anli/anli_v1.0/{_split}/dev.jsonl",
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reader_cfg=anli_reader_cfg,
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infer_cfg=anli_infer_cfg,
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eval_cfg=anli_eval_cfg,
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)
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)
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