2022
DOI: 10.1609/aaai.v36i6.20568
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Multiscale Generative Models: Improving Performance of a Generative Model Using Feedback from Other Dependent Generative Models

Abstract: Realistic fine-grained multi-agent simulation of real-world complex systems is crucial for many downstream tasks such as reinforcement learning. Recent work has used generative models (GANs in particular) for providing high-fidelity simulation of real-world systems. However, such generative models are often monolithic and miss out on modeling the interaction in multi-agent systems. In this work, we take a first step towards building multiple interacting generative models (GANs) that reflects the interaction in… Show more

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