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Underwater Image Enhancement Based on Multi-scale Adversarial Network
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作者 ZENG Jun-yang SI Zhan-jun 《印刷与数字媒体技术研究》 CAS 北大核心 2024年第5期70-77,共8页
In this study,an underwater image enhancement method based on multi-scale adversarial network was proposed to solve the problem of detail blur and color distortion in underwater images.Firstly,the local features of ea... In this study,an underwater image enhancement method based on multi-scale adversarial network was proposed to solve the problem of detail blur and color distortion in underwater images.Firstly,the local features of each layer were enhanced into the global features by the proposed residual dense block,which ensured that the generated images retain more details.Secondly,a multi-scale structure was adopted to extract multi-scale semantic features of the original images.Finally,the features obtained from the dual channels were fused by an adaptive fusion module to further optimize the features.The discriminant network adopted the structure of the Markov discriminator.In addition,by constructing mean square error,structural similarity,and perceived color loss function,the generated image is consistent with the reference image in structure,color,and content.The experimental results showed that the enhanced underwater image deblurring effect of the proposed algorithm was good and the problem of underwater image color bias was effectively improved.In both subjective and objective evaluation indexes,the experimental results of the proposed algorithm are better than those of the comparison algorithm. 展开更多
关键词 Underwater image enhancement Generative adversarial network Multi-scale feature extraction Residual dense block
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基于PACGAN与差分星座轨迹图的辐射源个体识别 被引量:8
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作者 牛伟宇 许华 +2 位作者 刘英辉 秦博伟 史蕴豪 《信号处理》 CSCD 北大核心 2021年第8期1559-1567,共9页
深度学习解决个体识别的一个突出问题是难以获得足够样本对网络进行训练,针对该问题,提出了一种基于PACGAN(Pooling Auxiliary Classifier Generative Adversarial Network)的辐射源个体识别算法。该算法针对输入信号的差分星座轨迹图... 深度学习解决个体识别的一个突出问题是难以获得足够样本对网络进行训练,针对该问题,提出了一种基于PACGAN(Pooling Auxiliary Classifier Generative Adversarial Network)的辐射源个体识别算法。该算法针对输入信号的差分星座轨迹图进行处理,并对辅助分类生成式对抗网(ACGAN)进行了适应性改进。在判别器网络中引入池化操作,增强其在多分类任务中的特征提取能力;针对样本图像特征大量边缘分布的情况,添加零填充层以增强其边缘特征提取能力,增大卷积层感受野以提取全局性特征。通过对五种ZigBee设备的实验,结果表明本文提出算法在小样本条件下相较于其他方法具有更高的准确性。 展开更多
关键词 个体识别 差分星座图轨迹图 生成式对抗网 池化操作
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Gait recognition based on Wasserstein generating adversarial image inpainting network 被引量:4
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作者 XIA Li-min WANG Hao GUO Wei-ting 《Journal of Central South University》 SCIE EI CAS CSCD 2019年第10期2759-2770,共12页
Aiming at the problem of small area human occlusion in gait recognition,a method based on generating adversarial image inpainting network was proposed which can generate a context consistent image for gait occlusion a... Aiming at the problem of small area human occlusion in gait recognition,a method based on generating adversarial image inpainting network was proposed which can generate a context consistent image for gait occlusion area.In order to reduce the effect of noise on feature extraction,the stacked automatic encoder with robustness was used.In order to improve the ability of gait classification,the sparse coding was used to express and classify the gait features.Experiments results showed the effectiveness of the proposed method in comparison with other state-of-the-art methods on the public databases CASIA-B and TUM-GAID for gait recognition. 展开更多
关键词 gait recognition image inpainting generating adversarial network stacking automatic encoder
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