Design of walnut online weighing system based on support vector regression
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(1. Mechanical and Electrical Engineering College, Shihezi University, Shihezi, Xinjiang 832000, China; 2. Key Laboratory of Northwest Agricultural Equipment, Ministry of Agriculture, Shihezi, Xinjiang 832000, China)

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    Abstract:

    In order to accurately detect walnut weight online, a walnut weight online testing system based on multi-sensor information fusion was designed, which was adopted the method of dynamic compensation and calibration to process signal collected from an acceleration sensor and symmetrical weight sensors and used the algorithm of support vector regression (SRV) to predict the walnut weight. Then, 400 walnuts were used to acquire weight data at speed of 0.02, 0.03 and 0.05 m/s respectively based on this system. Meanwhile the data were trained and verified. The better prediction model of walnut weight was determined as SVR model with linear kernel function, and the best test speed was determined as 0.03 m/s. Finally, 200 walnut samples were tested online at the speed of 0.03 m/s. The results showed that r2 of linear fitting between the walnut weight prediction and their actual weight was 0.85, and the average absolute error of linear fitting was 1.67 g. The results indicated that the system can accurately online test walnut weight.

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金作徽,翟志强,张若宇,等.基于支持向量回归的核桃在线称重系统[J].食品与机械英文版,2018,34(7):90-92,126.

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History
  • Received:December 07,2017
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  • Online: March 17,2023
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