Efficient Adaptation of Neural Network Filter for Video Compression
July 28, 2020 Β· Declared Dead Β· π ACM Multimedia
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Authors
Yat-Hong Lam, Alireza Zare, Francesco Cricri, Jani Lainema, Miska Hannuksela
arXiv ID
2007.14267
Category
eess.IV: Image & Video Processing
Cross-listed
cs.CV,
cs.LG,
cs.MM
Citations
31
Venue
ACM Multimedia
Last Checked
3 months ago
Abstract
We present an efficient finetuning methodology for neural-network filters which are applied as a postprocessing artifact-removal step in video coding pipelines. The fine-tuning is performed at encoder side to adapt the neural network to the specific content that is being encoded. In order to maximize the PSNR gain and minimize the bitrate overhead, we propose to finetune only the convolutional layers' biases. The proposed method achieves convergence much faster than conventional finetuning approaches, making it suitable for practical applications. The weight-update can be included into the video bitstream generated by the existing video codecs. We show that our method achieves up to 9.7% average BD-rate gain when compared to the state-of-art Versatile Video Coding (VVC) standard codec on 7 test sequences.
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