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* add ceval, gsm8k modelscope surpport * update race, mmlu, arc, cmmlu, commonsenseqa, humaneval and unittest * update bbh, flores, obqa, siqa, storycloze, summedits, winogrande, xsum datasets * format file * format file * update dataset format * support ms_dataset * udpate dataset for modelscope support * merge myl_dev and update test_ms_dataset * udpate dataset for modelscope support * update readme * update eval_api_zhipu_v2 * remove unused code * add get_data_path function * update readme * remove tydiqa japanese subset * add ceval, gsm8k modelscope surpport * update race, mmlu, arc, cmmlu, commonsenseqa, humaneval and unittest * update bbh, flores, obqa, siqa, storycloze, summedits, winogrande, xsum datasets * format file * format file * update dataset format * support ms_dataset * udpate dataset for modelscope support * merge myl_dev and update test_ms_dataset * update readme * udpate dataset for modelscope support * update eval_api_zhipu_v2 * remove unused code * add get_data_path function * remove tydiqa japanese subset * update util * remove .DS_Store * fix md format * move util into package * update docs/get_started.md * restore eval_api_zhipu_v2.py, add environment setting * Update dataset * Update * Update * Update * Update --------- Co-authored-by: Yun lin <yunlin@U-Q9X2K4QV-1904.local> Co-authored-by: Yunnglin <mao.looper@qq.com> Co-authored-by: Yun lin <yunlin@laptop.local> Co-authored-by: Yunnglin <maoyl@smail.nju.edu.cn> Co-authored-by: zhangsongyang <zhangsongyang@pjlab.org.cn>
221 lines
7.6 KiB
Python
221 lines
7.6 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, GenInferencer
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from opencompass.openicl.icl_evaluator import AccEvaluator
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from opencompass.datasets import AGIEvalDataset_v2, AGIEvalEvaluator, AGIEvalEvaluator_mcq
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from opencompass.utils.text_postprocessors import first_capital_postprocess_multi
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agieval_single_choice_sets = [
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'gaokao-chinese',
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'gaokao-english',
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'gaokao-geography',
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'gaokao-history',
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'gaokao-biology',
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'gaokao-chemistry',
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'gaokao-mathqa',
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'logiqa-zh',
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'lsat-ar',
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'lsat-lr',
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'lsat-rc',
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'logiqa-en',
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'sat-math',
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'sat-en',
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'sat-en-without-passage',
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'aqua-rat',
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]
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agieval_multiple_choices_sets = [
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'gaokao-physics',
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'jec-qa-kd',
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'jec-qa-ca',
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]
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agieval_cloze_sets = ['gaokao-mathcloze', 'math']
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agieval_chinese_sets = [
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'gaokao-chinese',
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'gaokao-english',
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'gaokao-geography',
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'gaokao-history',
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'gaokao-biology',
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'gaokao-chemistry',
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'gaokao-physics',
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'gaokao-mathqa',
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'logiqa-zh',
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'gaokao-mathcloze',
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'jec-qa-kd',
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'jec-qa-ca',
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]
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agieval_english_sets = [
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'lsat-ar',
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'lsat-lr',
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'lsat-rc',
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'logiqa-en',
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'sat-math',
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'sat-en',
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'sat-en-without-passage',
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'aqua-rat',
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'math',
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]
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agieval_gaokao_sets = [
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'gaokao-chinese',
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'gaokao-english',
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'gaokao-geography',
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'gaokao-history',
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'gaokao-biology',
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'gaokao-chemistry',
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'gaokao-physics',
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'gaokao-mathqa',
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]
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agieval_datasets = []
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for _name in agieval_single_choice_sets:
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if _name in ['lsat-ar', 'lsat-lr', 'lsat-rc', 'aqua-rat']:
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_options = ['A', 'B', 'C', 'D', 'E']
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else:
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_options = ['A', 'B', 'C', 'D']
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if _name in agieval_chinese_sets:
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_hint = '答案是:'
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else:
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_hint = 'The answer is '
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agieval_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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label: dict(round=[
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dict(role='HUMAN', prompt='{question}\n{options}'),
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dict(role='BOT', prompt=f'{_hint}{label}')
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])
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for label in _options
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}),
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retriever=dict(type=ZeroRetriever),
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inferencer=dict(type=PPLInferencer, labels=_options))
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agieval_eval_cfg = dict(evaluator=dict(type=AccEvaluator))
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agieval_datasets.append(
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dict(
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type=AGIEvalDataset_v2,
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path='opencompass/agieval',
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name=_name,
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abbr='agieval-' + _name,
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setting_name='zero-shot',
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reader_cfg=dict(
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input_columns=['question', 'options'] + _options,
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output_column='label'),
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infer_cfg=agieval_infer_cfg.copy(),
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eval_cfg=agieval_eval_cfg.copy()))
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for _name in agieval_multiple_choices_sets:
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if _name in agieval_chinese_sets:
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_hint = '答案是: '
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else:
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_hint = 'The answer is '
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agieval_infer_cfg = dict(
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prompt_template=dict(
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type=PromptTemplate,
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template=dict(round=[
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dict(role='HUMAN', prompt=f'{{question}}\n{{options}}\n{_hint}')
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])),
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retriever=dict(type=ZeroRetriever),
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inferencer=dict(type=GenInferencer, max_out_len=1024))
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agieval_eval_cfg = dict(
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evaluator=dict(type=AGIEvalEvaluator_mcq),
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pred_postprocessor=dict(type=first_capital_postprocess_multi))
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agieval_datasets.append(
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dict(
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type=AGIEvalDataset_v2,
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path='opencompass/agieval',
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name=_name,
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abbr='agieval-' + _name,
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setting_name='zero-shot',
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reader_cfg=dict(
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input_columns=['question', 'options'], output_column='label'),
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infer_cfg=agieval_infer_cfg.copy(),
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eval_cfg=agieval_eval_cfg.copy()))
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for _name in agieval_cloze_sets:
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if _name in agieval_chinese_sets:
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_hint = '答案是:'
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else:
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_hint = 'The answer is '
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agieval_infer_cfg = dict(
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prompt_template=dict(
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type=PromptTemplate,
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template=dict(
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round=[dict(role='HUMAN', prompt=f'{{question}}{_hint}')])),
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retriever=dict(type=ZeroRetriever),
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inferencer=dict(type=GenInferencer, max_out_len=1024))
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agieval_eval_cfg = dict(evaluator=dict(type=AGIEvalEvaluator))
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agieval_datasets.append(
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dict(
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type=AGIEvalDataset_v2,
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path='opencompass/agieval',
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name=_name,
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abbr='agieval-' + _name,
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setting_name='zero-shot',
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reader_cfg=dict(
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input_columns=['question', 'options'], output_column='label'),
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infer_cfg=agieval_infer_cfg.copy(),
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eval_cfg=agieval_eval_cfg.copy()))
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for _item in agieval_datasets:
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_name = _item['name']
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_intro = {
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'gaokao-chinese':
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'以下是一道中国高考语文选择题,请选择正确的答案。',
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'gaokao-english':
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'以下是一道中国高考英语选择题,请选择正确的答案。',
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'gaokao-geography':
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'以下是一道中国高考地理选择题,请选择正确的答案。',
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'gaokao-history':
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'以下是一道中国高考历史选择题,请选择正确的答案。',
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'gaokao-biology':
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'以下是一道中国高考生物选择题,请选择正确的答案。',
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'gaokao-chemistry':
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'以下是一道中国高考化学选择题,请选择正确的答案。',
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'gaokao-physics':
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'以下是一道中国高考物理选择题,请选择正确的答案。',
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'gaokao-mathqa':
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'以下是一道中国高考数学选择题,请选择正确的答案。',
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'logiqa-zh':
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'以下是一道中国公务员考试题,请选择正确的答案。',
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'lsat-ar':
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'The following is a LSAT Analytical Reasoning question. Please select the correct answer.',
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'lsat-lr':
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'The following is a LSAT Logical Reasoning question. Please select the correct answer.',
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'lsat-rc':
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'The following is a LSAT Reading Comprehension question. Please select the correct answer.',
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'logiqa-en':
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'The following is a Logic Reasoning question. Please select the correct answer.',
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'sat-math':
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'The following is a SAT Math question. Please select the correct answer.',
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'sat-en':
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'The following is a SAT English question. Please select the correct answer.',
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'sat-en-without-passage':
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'The following is a SAT English question. Please select the correct answer.',
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'aqua-rat':
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'The following is a AQUA-RAT question. Please select the correct answer.',
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'jec-qa-kd':
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'以下是一道中国司法考试基础知识题,请选择正确的答案。',
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'jec-qa-ca':
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'以下是一道中国司法考试案例分析题,请选择正确的答案。',
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'gaokao-mathcloze':
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'以下是一道中国高考数学填空题,请填入正确的答案。',
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'math':
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'The following is a Math question. Please select the correct answer.',
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}[_name]
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_templates = _item['infer_cfg']['prompt_template']['template']
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if _item['infer_cfg']['inferencer']['type'] == PPLInferencer:
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for _label in _templates:
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_templates[_label]['round'][0][
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'prompt'] = _intro + '\n' + _templates[_label]['round'][0][
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'prompt']
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else:
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_templates['round'][0][
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'prompt'] = _intro + '\n' + _templates['round'][0]['prompt']
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del _item, _intro, _templates, _label, _name, _options, _hint, agieval_infer_cfg, agieval_eval_cfg
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