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基于SwinTransformer的聯(lián)合信源信道編碼算法

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中圖分類號(hào):TN911.22;TP391.4 文獻(xiàn)標(biāo)識(shí)碼:A 文章編號(hào):2096-4706(2025)07-0001-04

Abstract: JointSource-Channel Coding (JSCC),asa keyresearch direction in semantic communication,has achieved preliminary research results. However, with the increasing resolution of images,traditional JSCC algorithms based on Convolutional Neural Network(CNN)exhibitlimitations inextractingimagesemanticfeatures.Toadressthisissue,this paper proposes a JSCCalgorithm based on Swin Transformer.The algorithm firstlyutilizesa Multi-Scale Large Kemel Attention(MLKA)mechanismtoinitiallcapture thelocal informationand long-rangedependenciesofimages.Subsequently SwinTransformer is employed to further hierarchically extract image semantic features and perform adaptiverate coding. Experimentalresultsdemonstrate that,underthechannelmodelsofAditiveWhite GausianNoise (AWGN)andRayleighthe proposedalgorithmoutperformstraditionalalgorithmsin termsofPeak Signal-to-NoiseRatio (PSNR)andMulti-Scale Structural Similarity Index Measure (MS-SSIM).

Keywords: Joint Source-Channel Coding; Swin Transformer; Multi-Scale Large-Kernel Attention

0 引言

隨著信息技術(shù)的飛速發(fā)展,通信系統(tǒng)的性能要求日益提高。(剩余6464字)

目錄
monitor