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Papers/A Re-evaluation of Knowledge Graph Completion Methods

A Re-evaluation of Knowledge Graph Completion Methods

Zhiqing Sun, Shikhar Vashishth, Soumya Sanyal, Partha Talukdar, Yiming Yang

2019-11-10ACL 2020 6Knowledge GraphsKnowledge Graph CompletionLink Prediction
PaperPDFCode(official)Code

Abstract

Knowledge Graph Completion (KGC) aims at automatically predicting missing links for large-scale knowledge graphs. A vast number of state-of-the-art KGC techniques have got published at top conferences in several research fields, including data mining, machine learning, and natural language processing. However, we notice that several recent papers report very high performance, which largely outperforms previous state-of-the-art methods. In this paper, we find that this can be attributed to the inappropriate evaluation protocol used by them and propose a simple evaluation protocol to address this problem. The proposed protocol is robust to handle bias in the model, which can substantially affect the final results. We conduct extensive experiments and report the performance of several existing methods using our protocol. The reproducible code has been made publicly available

Results

TaskDatasetMetricValueModel
Link PredictionFB15k-237Hits@100.421ConvKB (Corrected)
Link PredictionFB15k-237MR309ConvKB (Corrected)
Link PredictionFB15k-237MRR0.309ConvKB (Corrected)
Link PredictionFB15k-237Hits@100.331KBAT (Corrected)
Link PredictionFB15k-237MR270KBAT (Corrected)
Link PredictionFB15k-237MRR0.157KBAT (Corrected)
Link PredictionFB15k-237Hits@100.057CapsE (Corrected)
Link PredictionFB15k-237MR446CapsE (Corrected)
Link PredictionFB15k-237MRR0.032CapsE (Corrected)

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