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Motion and Context-Aware Audio-Visual Conditioned Video Prediction

2022-12-09 05:57:46
Yating Xu, Gim Hee Lee

Abstract

Existing state-of-the-art method for audio-visual conditioned video prediction uses the latent codes of the audio-visual frames from a multimodal stochastic network and a frame encoder to predict the next visual frame. However, a direct inference of per-pixel intensity for the next visual frame from the latent codes is extremely challenging because of the high-dimensional image space. To this end, we propose to decouple the audio-visual conditioned video prediction into motion and appearance modeling. The first part is the multimodal motion estimation module that learns motion information as optical flow from the given audio-visual clip. The second part is the context-aware refinement module that uses the predicted optical flow to warp the current visual frame into the next visual frame and refines it base on the given audio-visual context. Experimental results show that our method achieves competitive results on existing benchmarks.

Abstract (translated)

URL

https://arxiv.org/abs/2212.04679

PDF

https://arxiv.org/pdf/2212.04679.pdf


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