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Safety helmet wearing detection algorithm based on improved YOLOv5
Jin ZHANG, Peiqi QU, Cheng SUN, Meng LUO
Journal of Computer Applications    2022, 42 (4): 1292-1300.   DOI: 10.11772/j.issn.1001-9081.2021071246
Abstract1084)   HTML51)    PDF (7633KB)(510)       Save

Aiming at the problems of strong interference and low detection precision of the existing safety helmet wearing detection, an algorithm of safety helmet detection based on improved YOLOv5 (You Only Look Once version 5) model was proposed. Firstly, for the problem of different sizes of safety helmets, the K-Means++ algorithm was used to redesign the size of the anchor box and match it to the corresponding feature layer. Secondly, the multi-spectral channel attention module was embedded in the feature extraction network to ensure that the network was able to learn the weight of each channel autonomously and enhance the information dissemination between the features, thereby strengthening the network ability to distinguish foreground and background. Finally, images of different sizes were input randomly during the training iteration process to enhance the generalization ability of the algorithm. Experimental results show as follows: on the self-built safety helmet wearing detection dataset, the proposed algorithm has the mean Average Precision (mAP) reached 96.0%, the the Average Precision (AP) of workers wearing safety helmet reached 96.7%, and AP of workers without safety helmet reached 95.2%. Compared with the YOLOv5 algorithm, the proposed algorithm has the mAP of helmet safety-wearing detection increased by 3.4 percentage points, and it meets the accuracy requirement of helmet safety-wearing detection in construction scenarios.

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Research on the generic function conformance testing of network management interfaces
WANG Zhi-li,MENG Luo-ming
Journal of Computer Applications    2005, 25 (04): 906-909.   DOI: 10.3724/SP.J.1087.2005.0906
Abstract1030)      PDF (206KB)(879)       Save
Based on the analysis of the current definition method of network management interfaces, and the current status of function conformance testing of TMN interfaces, the concept of the abstract function conformance test flow was introduced. The translation from the technology-neutral abstract test flow to the technology-specific executable function testing scripts and the working procedures of the whole method were described, and the functions of some of the involved main components were also depicted and analyzed in detail. In addition, the repository of the function conformance test flow was described and an example of the related application was provided, and some of the testing policies and their application scenarios were also listed.
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