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Adaptive Super Resolution For One-Shot Talking-Head Generation

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arxiv 2403.15944 v1 pith:G34IJXFV submitted 2024-03-23 cs.CV cs.AIeess.IV

Adaptive Super Resolution For One-Shot Talking-Head Generation

classification cs.CV cs.AIeess.IV
keywords videogenerationimagetalking-headmethodsone-shotsourceadaptive
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The one-shot talking-head generation learns to synthesize a talking-head video with one source portrait image under the driving of same or different identity video. Usually these methods require plane-based pixel transformations via Jacobin matrices or facial image warps for novel poses generation. The constraints of using a single image source and pixel displacements often compromise the clarity of the synthesized images. Some methods try to improve the quality of synthesized videos by introducing additional super-resolution modules, but this will undoubtedly increase computational consumption and destroy the original data distribution. In this work, we propose an adaptive high-quality talking-head video generation method, which synthesizes high-resolution video without additional pre-trained modules. Specifically, inspired by existing super-resolution methods, we down-sample the one-shot source image, and then adaptively reconstruct high-frequency details via an encoder-decoder module, resulting in enhanced video clarity. Our method consistently improves the quality of generated videos through a straightforward yet effective strategy, substantiated by quantitative and qualitative evaluations. The code and demo video are available on: \url{https://github.com/Songluchuan/AdaSR-TalkingHead/}.

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