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Titlebook: Advanced Intelligent Computing Technology and Applications; 20th International C De-Shuang Huang,Wei Chen,Yijie Pan Conference proceedings

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發(fā)表于 2025-3-21 16:17:14 | 只看該作者 |倒序瀏覽 |閱讀模式
期刊全稱Advanced Intelligent Computing Technology and Applications
期刊簡稱20th International C
影響因子2023De-Shuang Huang,Wei Chen,Yijie Pan
視頻videohttp://file.papertrans.cn/168/167162/167162.mp4
學科分類Lecture Notes in Computer Science
圖書封面Titlebook: Advanced Intelligent Computing Technology and Applications; 20th International C De-Shuang Huang,Wei Chen,Yijie Pan Conference proceedings
影響因子.This 13-volume set LNCS 14862-14874 constitutes - in conjunction with the 6-volume set LNAI 14875-14880 and the two-volume set LNBI 14881-14882 - the refereed proceedings of the 20th International Conference on Intelligent Computing, ICIC 2024, held in Tianjin, China, during August 5-8, 2024...The total of 863 regular papers were carefully reviewed and selected from 2189 submissions...This year, the conference concentrated mainly on the theories and methodologies as well as the emerging applications of intelligent computing. Its aim was to unify the picture of contemporary intelligent computing techniques as an integral concept that highlights the trends in advanced computational intelligence and bridges theoretical research with applications. Therefore, the theme for this conference was "Advanced Intelligent Computing Technology and Applications". Papers that focused on this theme were solicited, addressing theories, methodologies, and applications in science and technology...?.
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書目名稱Advanced Intelligent Computing Technology and Applications影響因子(影響力)




書目名稱Advanced Intelligent Computing Technology and Applications影響因子(影響力)學科排名




書目名稱Advanced Intelligent Computing Technology and Applications網絡公開度




書目名稱Advanced Intelligent Computing Technology and Applications網絡公開度學科排名




書目名稱Advanced Intelligent Computing Technology and Applications被引頻次




書目名稱Advanced Intelligent Computing Technology and Applications被引頻次學科排名




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書目名稱Advanced Intelligent Computing Technology and Applications年度引用學科排名




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MAPNet: A Multi-scale Attention Pooling Network for Ultrasound Medical Image Segmentationnt autonomous feature extraction capability and good feature representation ability. Traditional convolutional neural networks usually use standard convolutional layers to extract features. However, in medical image segmentation, a pixel may correspond to multiple different scale structures, such as
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MOD-YOLO: Improved YOLOv5 Based on Multi-softmax and Omni-Dimensional Dynamic Convolution for Multi- of bridge defect categories often occurs simultaneously, it is difficult for target detection methods targeting a single label to achieve accurate bridge defect detection. This paper proposes a bridge defect detection scheme YOLOv5 based on multi-softmax and omni-dimensional dynamic convolution (MO
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發(fā)表于 2025-3-22 11:26:27 | 只看該作者
Color Image Steganography Based on Two-Channel Preprocessing and U-Net Networkrocess where secret information may be stolen. With the increasing application of the U-Net network, a novel image steganography technique based on the U-Net structure is designed. The special two-channel preprocessing network is designed to fuse image features, and the SENet attention mechanism has
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發(fā)表于 2025-3-22 16:32:47 | 只看該作者
Application of a Hybrid Particle Image Velocimetry Method Based on Window Function in the Field of Te initial velocity field generated based on cross-correlation algorithm in mixed particle image velocimetry methods. This can result in inaccurate offset images generated, leading to errors in generating the final fine velocity field using optical flow method. This article adds a window function to
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Refinement Correction Network for Scene Text Detectionliability of text detection. To this end, existing models primarily employ deep convolutional networks to extract semantic information from images. However, the multiple convolutions and downsampling operations in network lead to varying degrees of defects in shallow and deep features. To address th
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發(fā)表于 2025-3-23 06:34:03 | 只看該作者
Unsupervised Extremely Low-Light Image Enhancement with a Laplacian Pyramid Network. To overcome these two problems, we propose an unsupervised Extremely Low-light image enhancement via a Laplacian Pyramid Network (ELLPN). Concretely, concerning the first quandary, we propose to enforce semantic content and style constraints in the low-frequency components of the image’s Laplacian
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