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  • 标题:A Survey on Small Object Detection Based on Deep Learning
  • 本地全文:下载
  • 作者:Avarnita Chauhan ; Sapna Choudhary
  • 期刊名称:International Journal of Advances in Engineering and Management
  • 电子版ISSN:2395-5252
  • 出版年度:2022
  • 卷号:4
  • 期号:2
  • 页码:315-319
  • DOI:10.35629/5252-0402132135
  • 语种:English
  • 出版社:IJAEM JOURNAL
  • 摘要:With the improving of the intelligent driving awareness, object detection as an important part of intelligent driving, has now become a research hotspot in the world. In recent years, convolutional neural network (CNN) has attracted more and more attention in the field of computer vision. CNN has made a series of important breakthroughs in the field of object detection. This paper introduces the object detection method based on deep learning. This paper mainly introduces the detection algorithm based on regional suggestion and regression, and analyses the advantages and disadvantages of the detection algorithm. Then, the disadvantages of these detection methods in detecting small objects and the difficulties in detecting small objects are analysed. On this basis, the public data sets and evaluation criteria related to small object detection are introduced.
  • 关键词:Detection of moving objects;tracking of moving objects;behavior understanding;Neural Network;Caffe model;CNN
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