2020
DOI: 10.48550/arxiv.2004.01426
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Disassembling Object Representations without Labels

Abstract: In this paper, we study a new representation-learning task, which we termed as disassembling object representations. Given an image featuring multiple objects, the goal of disassembling is to acquire a latent representation, of which each part corresponds to one category of objects. Disassembling thus finds its application in a wide domain such as image editing and few-or zero-shot learning, as it enables category-specific modularity in the learned representations. To this end, we propose an unsupervised appro… Show more

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