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Graph-Based Social Relation Reasoning

About

Human beings are fundamentally sociable -- that we generally organize our social lives in terms of relations with other people. Understanding social relations from an image has great potential for intelligent systems such as social chatbots and personal assistants. In this paper, we propose a simpler, faster, and more accurate method named graph relational reasoning network (GR2N) for social relation recognition. Different from existing methods which process all social relations on an image independently, our method considers the paradigm of jointly inferring the relations by constructing a social relation graph. Furthermore, the proposed GR2N constructs several virtual relation graphs to explicitly grasp the strong logical constraints among different types of social relations. Experimental results illustrate that our method generates a reasonable and consistent social relation graph and improves the performance in both accuracy and efficiency.

Wanhua Li, Yueqi Duan, Jiwen Lu, Jianjiang Feng, Jie Zhou• 2020

Related benchmarks

TaskDatasetResultRank
Social Relationship RecognitionPIPA-Relation
Accuracy64.3
16
Relation RecognitionPISC Fine
Friend Recall60.8
13
Relation RecognitionPISC Coarse
Intimate Recall81.6
11
Social Relation RecognitionPIPA (test)
Accuracy64.3
10
Fine Social Relation RecognitionPISC (test)
Acc (Friends)60.8
7
Social Domain RecognitionPIPA
Accuracy0.723
5
Coarse Social Relation RecognitionPISC (test)
Intimate Acc81.6
5
Social Relation RecognitionPISC
Accuracy0.647
5
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