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Image Compression and Reconstruction Based on Quantum Network

Xun Ji, Qin Liu, Shan Huang, Andi Chen, Shengjun Wu

2024 IEEE International Parallel and Distributed Processing Symposium Workshops (IPDPSW)(2024)

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Abstract
Quantum network is an emerging type of network structure that leverages the principles of quantum mechanics to transmit and process information. Compared with classical data reconstruction algorithms, quantum networks make image reconstruction more efficient and accurate. They can also process more complex image information using fewer bits and faster parallel computing capabilities. Therefore, this paper will discuss image reconstruction methods based on our quantum network and explore their potential applications in image processing. We will introduce the basic structure of the quantum network, the process of image compression and reconstruction, and the specific parameter training method. Through this study, we can achieve a classical image reconstruction accuracy of 97.57%. Our quantum network design will introduce novel ideas and methods for image reconstruction in the future.
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Key words
image compression and reconstruction,quantum network,parameter training
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