GenVP: Generating Visual Puzzles with Contrastive Hierarchical VAEs
Kalliopi Basioti, Pritish Sahu, Tony Qingze Liu, Zihao Xu, Hao Wang, Vladimir Pavlovic
摘要
Raven's Progressive Matrices (RPMs) is an established benchmark to examine the ability to perform high-level abstract visual reasoning (AVR). Despite the current success of algorithms that solve this task, humans can generalize beyond a given puzzle and create new puzzles given a set of rules, whereas machines remain locked in solving a fixed puzzle from a curated choice list. We propose Generative Visual Puzzles (GenVP), a framework to model the entire RPM generation process, a substantially more challenging task. Our model's capability spans from generating multiple solutions for one specific problem prompt to creating complete new puzzles out of the desired set of rules. Experiments on five different datasets indicate that GenVP achieves state-of-the-art (SOTA) performance both in puzzle-solving accuracy and out-of-distribution (OOD) generalization in 22 OOD scenarios. Compared to SOTA generative approaches, which struggle to solve RPMs when the feasible solution space increases, GenVP efficiently generalizes to these challenging setups. Moreover, our model demonstrates the ability to produce a wide range of complete RPMs given a set of abstract rules by effectively capturing the relationships between abstract rules and visual object properties.
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它引用的顶会 Paper11
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- Stratified Rule-Aware Network for Abstract Visual ReasoningSheng Hu, Yuqing Ma, Xianglong Liu, Yanlu Wei 等AAAI 2021 · 被引用 126 次
- Effective Abstract Reasoning with Dual-Contrast NetworkTao Zhuo, Mohan S. KankanhalliICLR 2021 · 被引用 48 次
- Generating Correct Answers for Progressive Matrices Intelligence TestsNiv Pekar, Yaniv Benny, Lior WolfNeurIPS 2020 · 被引用 17 次
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