Computer-Vision-Based Product Quality Inspection and Novel Counting System

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Publicado en:Applied System Innovation vol. 7, no. 6 (2024), p. 127
Autor principal: Lee, Changhyun
Otros Autores: Kim, Yunsik, Kim, Hunkee
Publicado:
MDPI AG
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Acceso en línea:Citation/Abstract
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022 |a 2571-5577 
024 7 |a 10.3390/asi7060127  |2 doi 
035 |a 3149504329 
045 2 |b d20240101  |b d20241231 
100 1 |a Lee, Changhyun 
245 1 |a Computer-Vision-Based Product Quality Inspection and Novel Counting System 
260 |b MDPI AG  |c 2024 
513 |a Journal Article 
520 3 |a In this study, we aimed to enhance the accuracy of product quality inspection and counting in the manufacturing process by integrating image processing and human body detection algorithms. We employed the SIFT algorithm combined with traditional image comparison metrics such as SSIM, PSNR, and MSE to develop a defect detection system that is robust against variations in rotation and scale. Additionally, the YOLOv8 Pose algorithm was used to detect and correct errors in product counting caused by human interference on the load cell in real time. By applying the image differencing technique, we accurately calculated the unit weight of products and determined their total count. In our experiments conducted on products weighing over 1 kg, we achieved a high accuracy of 99.268%. The integration of our algorithms with the load-cell-based counting system demonstrates reliable real-time quality inspection and automated counting in manufacturing environments. 
653 |a Accuracy 
653 |a Load cells 
653 |a Deep learning 
653 |a Defects 
653 |a Productivity 
653 |a Quality control 
653 |a Computer vision 
653 |a Automation 
653 |a Manufacturing 
653 |a Product image 
653 |a Image processing 
653 |a Data compression 
653 |a Efficiency 
653 |a Cameras 
653 |a Inspection 
653 |a Neural networks 
653 |a Algorithms 
653 |a Data collection 
653 |a Rotating bodies 
653 |a Image quality 
653 |a Real time 
653 |a Counting 
653 |a Cost control 
653 |a Inventory management 
653 |a Human error 
653 |a Inventory 
700 1 |a Kim, Yunsik 
700 1 |a Kim, Hunkee 
773 0 |t Applied System Innovation  |g vol. 7, no. 6 (2024), p. 127 
786 0 |d ProQuest  |t Advanced Technologies & Aerospace Database 
856 4 1 |3 Citation/Abstract  |u https://www.proquest.com/docview/3149504329/abstract/embedded/7BTGNMKEMPT1V9Z2?source=fedsrch 
856 4 0 |3 Full Text + Graphics  |u https://www.proquest.com/docview/3149504329/fulltextwithgraphics/embedded/7BTGNMKEMPT1V9Z2?source=fedsrch 
856 4 0 |3 Full Text - PDF  |u https://www.proquest.com/docview/3149504329/fulltextPDF/embedded/7BTGNMKEMPT1V9Z2?source=fedsrch