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结合多特征融合与残差空洞卷积的小目标检测 被引量:2
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作者 尹群杰 杨文柱 +1 位作者 冉梦影 宋姝洁 《计算机工程与设计》 北大核心 2022年第9期2622-2630,共9页
针对目标检测任务中小目标所占像素较少、特征不易提取而导致的小目标漏检问题,提出一种结合多特征融合与残差空洞卷积的小目标检测算法。以单阶段目标检测算法SSD为模型基础,建立多层特征融合模块,分别对浅层特征图和后两层特征图进行... 针对目标检测任务中小目标所占像素较少、特征不易提取而导致的小目标漏检问题,提出一种结合多特征融合与残差空洞卷积的小目标检测算法。以单阶段目标检测算法SSD为模型基础,建立多层特征融合模块,分别对浅层特征图和后两层特征图进行通道拼接,以深层特征来强化浅层特征,丰富浅层特征的语义信息;建立多分支残差空洞卷积模块,结合残差操作并利用不同扩张率的空洞卷积提取多尺度特征信息,增强特征表示能力,不丢失特征图的原始分辨率;利用更新后的特征来完成小目标检测。在VOC2007数据集上通过实例验证了所提算法的检测精度比SSD提高1.4%,该算法可行有效。 展开更多
关键词 单阶段目标检测 小目标检测 多层特征融合 多分支残差空洞卷积 多尺度特征信息
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MF~2ResU-Net:a multi-feature fusion deep learning architecture for retinal blood vessel segmentation
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作者 CUI Zhenchao SONG Shujie QI Jing 《Digital Chinese Medicine》 2022年第4期406-418,共13页
Objective For computer-aided Chinese medical diagnosis and aiming at the problem of insufficient segmentation,a novel multi-level method based on the multi-scale fusion residual neural network(MF2ResU-Net)model is pro... Objective For computer-aided Chinese medical diagnosis and aiming at the problem of insufficient segmentation,a novel multi-level method based on the multi-scale fusion residual neural network(MF2ResU-Net)model is proposed.Methods To obtain refined features of retinal blood vessels,three cascade connected UNet networks are employed.To deal with the problem of difference between the parts of encoder and decoder,in MF2ResU-Net,shortcut connections are used to combine the encoder and decoder layers in the blocks.To refine the feature of segmentation,atrous spatial pyramid pooling(ASPP)is embedded to achieve multi-scale features for the final segmentation networks.Results The MF2ResU-Net was superior to the existing methods on the criteria of sensitivity(Sen),specificity(Spe),accuracy(ACC),and area under curve(AUC),the values of which are 0.8013 and 0.8102,0.9842 and 0.9809,0.9700 and 0.9776,and 0.9797 and 0.9837,respectively for DRIVE and CHASE DB1.The results of experiments demonstrated the effectiveness and robustness of the model in the segmentation of complex curvature and small blood vessels.Conclusion Based on residual connections and multi-feature fusion,the proposed method can obtain accurate segmentation of retinal blood vessels by refining the segmentation features,which can provide another diagnosis method for computer-aided Chinese medical diagnosis. 展开更多
关键词 Medical image processing Atrous space pyramid pooling(ASPP) Residual neural network Multi-level model Retinal vessels segmentation
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