lambada.py 1.68 KB
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from lm_eval.base import Dataset, rf, mean
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from lm_eval.utils import sh
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import json
import requests
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import math
from best_download import download_file
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class LAMBADA(Dataset):
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    def download(self):
        sh("mkdir -p data/lambada")
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        download_file(
            "https://storage.googleapis.com/gpt-2/data/lambada_test.jsonl", 
            "data/lambada/lambada_test.jsonl", 
            "4aa8d02cd17c719165fc8a7887fddd641f43fcafa4b1c806ca8abc31fabdb226"
        )
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    def has_training_docs(self):
        return False

    def has_validation_docs(self):
        return False

    def has_test_docs(self):
        return True

    def training_docs(self):
        pass

    def validation_docs(self):
        pass

    def test_docs(self):
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        with open("data/lambada/lambada_test.jsonl") as fh:
            for line in fh:
                yield json.loads(line)

    def doc_to_text(self, doc):
        return doc['text'].rsplit(' ', 1)[0]
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    def doc_to_target(self, doc):
        return " " + doc['text'].rsplit(' ', 1)[1]
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    def fewshot_description(self):
        # TODO: figure out description
        return ""
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    def construct_requests(self, doc, ctx):
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        ll, is_greedy = rf.loglikelihood(doc, self.doc_to_target(doc))
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        return ll, is_greedy
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    def process_results(self, doc, results):
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        ll, is_greedy = results
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        return {
            'perplexity': math.exp(-ll),
            'accuracy': int(is_greedy)
        }
        
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    def aggregation(self):
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        return {
            'perplexity': mean,
            'accuracy': mean
        }
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    def higher_is_better(self):
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        return {
            'perplexity': False,
            'accuracy': True
        }