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  • title: Neural-Symbolic Entangled Framework for Complex Query Answering
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            Neural-Symbolic Entangled Framework for Complex Query Answering
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            Neural-Symbolic Entangled Framework for Complex Query Answering

            Dez 6, 2022

            Sprecher:innen

            ZX

            Zezhong Xu

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            WZ

            Wen Zhang

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            PY

            Peng Ye

            Sprecher:in · 0 Follower:innen

            Über

            Answering complex queries over knowledge graphs (KG) is an important yet challenging task because of the KG incompleteness issue and cascading errors during reasoning. Recent query embedding (QE) approaches embed the entities and relations in a KG and the first-order logic (FOL) queries into a low dimensional space, making the query can be answered by dense similarity searching. However, previous works mainly concentrate on the target answers, ignoring intermediate entities' usefulness, which is…

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            NeurIPS 2022

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