VisCode: Embedding Information in Visualization Images using Encoder-Decoder Network

September 07, 2020 Β· Declared Dead Β· πŸ› IEEE Transactions on Visualization and Computer Graphics

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Authors Peiying Zhang, Chenhui Li, Changbo Wang arXiv ID 2009.03817 Category cs.CV: Computer Vision Cross-listed cs.HC Citations 50 Venue IEEE Transactions on Visualization and Computer Graphics Last Checked 5 months ago
Abstract
We present an approach called VisCode for embedding information into visualization images. This technology can implicitly embed data information specified by the user into a visualization while ensuring that the encoded visualization image is not distorted. The VisCode framework is based on a deep neural network. We propose to use visualization images and QR codes data as training data and design a robust deep encoder-decoder network. The designed model considers the salient features of visualization images to reduce the explicit visual loss caused by encoding. To further support large-scale encoding and decoding, we consider the characteristics of information visualization and propose a saliency-based QR code layout algorithm. We present a variety of practical applications of VisCode in the context of information visualization and conduct a comprehensive evaluation of the perceptual quality of encoding, decoding success rate, anti-attack capability, time performance, etc. The evaluation results demonstrate the effectiveness of VisCode.
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