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author:

Wu, Sichao (Wu, Sichao.) [1] | Huang, Xiaoyu (Huang, Xiaoyu.) [2] | Xiong, Yiqi (Xiong, Yiqi.) [3] | Wu, Shengzhen (Wu, Shengzhen.) [4] | Li, Enlong (Li, Enlong.) [5] | Pan, Chen (Pan, Chen.) [6]

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Abstract:

To resolve the problems of deep convolutional neural network models with many parameters and high memory resource consumption, a lightweight network-based algorithm for building detection of Minnan folk light synthetic aperture radar (SAR) images is proposed. Firstly, based on the rotating target detection algorithm R-centernet, the Ghost ResNet network is constructed to reduce the number of model parameters by replacing the traditional convolution in the backbone network with Ghost convolution. Secondly, a channel attention module integrating width and height information is proposed to enhance the network’s ability to accurately locate salient regions in folk light images. Content-aware reassembly of features (CARAFE) up-sampling is used to replace the deconvolution module in the network to fully incorporate feature map information during up-sampling to improve target detection. Finally, the constructed dataset of rotated and annotated light and shadow SAR images is trained and tested using the improved R-centernet algorithm. The experimental results show that the improved algorithm improves the accuracy by 3.8%, the recall by 1.2% and the detection speed by 12 frames/second compared with the original R-centernet algorithm. © 2023 by the authors.

Keyword:

Animation Convolution Convolutional neural networks Deconvolution Deep neural networks Image enhancement Object detection Object recognition Parameter estimation Signal detection Signal sampling Synthetic aperture radar

Community:

  • [ 1 ] [Wu, Sichao]Xiamen Academy of Arts and Design, Fuzhou University, Xiamen; 361000, China
  • [ 2 ] [Huang, Xiaoyu]Xiamen Academy of Arts and Design, Fuzhou University, Xiamen; 361000, China
  • [ 3 ] [Xiong, Yiqi]School of Business, Guangdong Polytechnic of Science and Technology, Zhuhai; 519000, China
  • [ 4 ] [Wu, Shengzhen]College of Arts and Design, Jimei University, Xiamen; 361000, China
  • [ 5 ] [Li, Enlong]Faculty of International Tourism Management, City University of Macau, 999078, China
  • [ 6 ] [Pan, Chen]Architecture and Civil Engineering Institute, Guangdong University of Petrochemical Technology, Maoming; 525000, China
  • [ 7 ] [Pan, Chen]Urban Planning and Design, Faculty of Innovation and Design, City University of Macau, 999078, China

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Buildings

Year: 2023

Issue: 6

Volume: 13

3 . 1

JCR@2023

3 . 1 0 0

JCR@2023

JCR Journal Grade:2

CAS Journal Grade:3

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ESI Highly Cited Papers on the List: 0 Unfold All

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30 Days PV: 0

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