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131 lines
4.0 KiB
Python
131 lines
4.0 KiB
Python
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from opencompass.openicl.icl_prompt_template import PromptTemplate
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from opencompass.openicl.icl_retriever import FixKRetriever
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from opencompass.openicl.icl_inferencer import GenInferencer
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from opencompass.openicl.icl_evaluator import AccwithDetailsEvaluator
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from opencompass.datasets import MMLUDataset
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from opencompass.utils.text_postprocessors import first_option_postprocess
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from opencompass.utils.model_postprocessors import xfinder_postprocess
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# None of the mmlu dataset in huggingface is correctly parsed, so we use our own dataset reader
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# Please download the dataset from https://people.eecs.berkeley.edu/~hendrycks/data.tar
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mmlu_reader_cfg = dict(
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input_columns=['input', 'A', 'B', 'C', 'D'],
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output_column='target',
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train_split='dev')
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mmlu_all_sets = [
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'college_biology',
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'college_chemistry',
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'college_computer_science',
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'college_mathematics',
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'college_physics',
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'electrical_engineering',
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'astronomy',
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'anatomy',
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'abstract_algebra',
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'machine_learning',
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'clinical_knowledge',
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'global_facts',
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'management',
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'nutrition',
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'marketing',
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'professional_accounting',
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'high_school_geography',
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'international_law',
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'moral_scenarios',
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'computer_security',
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'high_school_microeconomics',
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'professional_law',
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'medical_genetics',
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'professional_psychology',
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'jurisprudence',
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'world_religions',
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'philosophy',
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'virology',
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'high_school_chemistry',
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'public_relations',
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'high_school_macroeconomics',
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'human_sexuality',
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'elementary_mathematics',
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'high_school_physics',
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'high_school_computer_science',
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'high_school_european_history',
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'business_ethics',
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'moral_disputes',
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'high_school_statistics',
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'miscellaneous',
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'formal_logic',
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'high_school_government_and_politics',
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'prehistory',
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'security_studies',
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'high_school_biology',
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'logical_fallacies',
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'high_school_world_history',
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'professional_medicine',
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'high_school_mathematics',
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'college_medicine',
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'high_school_us_history',
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'sociology',
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'econometrics',
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'high_school_psychology',
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'human_aging',
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'us_foreign_policy',
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'conceptual_physics',
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]
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mmlu_datasets = []
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for _name in mmlu_all_sets:
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_hint = f'There is a single choice question about {_name.replace("_", " ")}. Answer the question by replying A, B, C or D.'
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mmlu_infer_cfg = dict(
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ice_template=dict(
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type=PromptTemplate,
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template=dict(round=[
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dict(
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role='HUMAN',
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prompt=
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f'{_hint}\nQuestion: {{input}}\nA. {{A}}\nB. {{B}}\nC. {{C}}\nD. {{D}}\nAnswer: '
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),
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dict(role='BOT', prompt='{target}\n')
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]),
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),
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prompt_template=dict(
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type=PromptTemplate,
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template=dict(
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begin='</E>',
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round=[
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dict(
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role='HUMAN',
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prompt=f'{_hint}\nQuestion: {{input}}\nA. {{A}}\nB. {{B}}\nC. {{C}}\nD. {{D}}\nAnswer: '
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),
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],
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),
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ice_token='</E>',
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),
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retriever=dict(type=FixKRetriever, fix_id_list=[0, 1, 2, 3, 4]),
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inferencer=dict(type=GenInferencer),
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)
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mmlu_eval_cfg = dict(
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evaluator=dict(type=AccwithDetailsEvaluator),
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pred_postprocessor=dict(type=first_option_postprocess, options='ABCD'),
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model_postprocessor=dict(
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type=xfinder_postprocess,
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question_type='alphabet_option',
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xfinder_model_name='xFinder-qwen1505',
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xfiner_api_url='http://0.0.0.0:23333/v1,http://0.0.0.0:23334/v1')
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)
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mmlu_datasets.append(
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dict(
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abbr=f'lukaemon_mmlu_{_name}',
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type=MMLUDataset,
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path='opencompass/mmlu',
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name=_name,
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reader_cfg=mmlu_reader_cfg,
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infer_cfg=mmlu_infer_cfg,
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eval_cfg=mmlu_eval_cfg,
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))
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del _name, _hint
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