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SRLGRN: Semantic Role Labeling Graph Reasoning Network

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arxiv 2010.03604 v2 pith:HPQEICXZ submitted 2020-10-07 cs.CL

classification cs.CL
keywords graphreasoningsemanticargumentedgeslabelingnetworknodes
verification ladder T0 review T1 audit T2 compute T3 formal
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This work deals with the challenge of learning and reasoning over multi-hop question answering (QA). We propose a graph reasoning network based on the semantic structure of the sentences to learn cross paragraph reasoning paths and find the supporting facts and the answer jointly. The proposed graph is a heterogeneous document-level graph that contains nodes of type sentence (question, title, and other sentences), and semantic role labeling sub-graphs per sentence that contain arguments as nodes and predicates as edges. Incorporating the argument types, the argument phrases, and the semantics of the edges originated from SRL predicates into the graph encoder helps in finding and also the explainability of the reasoning paths. Our proposed approach shows competitive performance on the HotpotQA distractor setting benchmark compared to the recent state-of-the-art models.

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  1. Multimodal Multihop Source Retrieval for Web Question Answering

    cs.CL 2025-01 reject novelty 4.0 of 10

    A lightweight GraphSAGE model with star-graph connections outperforms a pairwise VLP transformer on image query source retrieval in WebQA, but underperforms it overall.

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