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PreCNet: Next-Frame Video Prediction Based on Predictive Coding

delete2024-08-01
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OA
AI
Z
Zdeněk Straka
T
Tomáš Svoboda
M
Matej Hoffmann *
DOI:10.1109/TNNLS.2023.3240857delete
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Abstract

Abstract

En 中文
Predictive coding, currently a highly influential theory in neuroscience, has not been widely adopted in machine learning yet. In this work, we transform the seminal model of Rao and Ballard (1999) into a modern deep learning framework while remaining maximally faithful to the original schema. The resulting network we propose (PreCNet) is tested on a widely used next frame video prediction benchmark, which consists of images from an urban environment recorded from a car-mounted camera, and achieves state-of-the-art performance. Performance on all measures (MSE, PSNR, SSIM) was further improved when a larger training set (2M images from BDD100k), pointing to the limitations of the KITTI training set. This work demonstrates that an architecture carefully based in a neuroscience model, without being explicitly tailored to the task at hand, can exhibit exceptional performance.
Keywords:
Deep neural networks
next-frame video prediction
predictive coding
self-supervised learning

Journal

IEEE Transactions on Neural Networks and Learning Systems cover
IEEE Transactions on Neural Networks and Learning Systems
IF:
8.9
Papers:
7.6K
Citations:
7.2W

Organization

C
czech technical university prague
Scholars:
6.6K
Papers: 5.3K
Citations: 3
Cited Papers

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