语义通信下的图像恢复

Trinh Van Chien, L. Phong, Dao Xuan Phuc, Tien-Hoa Nguyen
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引用次数: 2

摘要

语义通信的出现是对香农定理的突破,它通过传递和接收语义信息,而不是不考虑其内容的数据位或符号。本文提出了一种两阶段重构方法来提高系统的性能。在第一阶段,首先利用信道知识从接收到的噪声数据中解码图像信息。解码后的图像通过后滤波和图像统计增强。利用不同的度量来评估我们所考虑的模型的图像恢复质量。利用自然图像得到的数值结果验证了所提出的两阶段重建方法比传统的解码数据有更好的改进。此外,基于各自标准评估系统性能的不同度量可能相互冲突。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Image Restoration under Semantic Communications
Semantic communication has emerged as the break-through beyond the Shannon theorem by transmitting and receiving semantic information instead of data bits or symbols regardless of its content. This paper proposes a two-stage reconstruction process to boost the system's performance. In the first phase, the image information is first decoded from the noisy received data by exploiting the channel knowledge. The decoded image is enhanced by a post-filter and image statistics. Different metrics are exploited to evaluate the image restoration quality of our considered model. Numerical results are obtained using natural images that verify the superior improvements of the proposed two-stage reconstruction process over the traditional decoded data. Moreover, the different metrics assessing the system performance based on their criteria can be conflicted with each other.
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