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基于深度學(xué)習方法的傳送帶缺陷檢測
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江南大學(xué)物聯(lián)網(wǎng)工程學(xué)院物聯(lián)網(wǎng)技術(shù)應用教育部工程研究中心

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國家自然科學(xué)基金項目(面上項目,重點(diǎn)項目,重大項目)


Belt Defect Detection based on Deep Learning Approaches
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    摘要:

    針對傳送帶瑕疵在圖像中所占有的像素相對有限、特征相對微弱且分布不均勻的問(wèn)題,設計了一個(gè)傳送帶缺陷檢測系統,并提出了一種基于高斯混合模型(GMM, gaussian mixture model)的標簽分配策略;利用特征感受野遵循高斯分布的先驗信息進(jìn)行高斯建模,并通過(guò)動(dòng)態(tài)調整機制適應不同尺度的傳送帶缺陷,能夠更有效地提升對微小瑕疵的捕捉能力;使用感受野距離取代交并比來(lái)衡量高斯感受野和真實(shí)標簽的相似度,并通過(guò)二者之間的相似度來(lái)分配樣本,從而有效提高了樣本分配的準確性;使用高斯混合模型并通過(guò)期望最大化(EM, expectation-maximization)算法擬合概率分布,實(shí)現了對特征點(diǎn)的自適應正負樣本分配,能夠有效避免微小瑕疵特征微弱所導致的漏檢問(wèn)題;結果表明,高斯混合模型標簽分配策略對傳送帶缺陷檢測精度的提升十分明顯,相對于基準網(wǎng)絡(luò ),精度提升3.8%。

    Abstract:

    To address the limited pixel coverage, relatively weak features, and uneven distribution of defects in conveyor belt images, a conveyor belt defect detection system is designed, accompanied by a label assignment strategy based on Gaussian Mixture Model. Leveraging the Gaussian distribution prior information following the feature receptive fields, a Gaussian model is constructed to adaptively capture conveyor belt defects of varying scales through dynamic adjustment mechanisms, thereby enhancing the detection capability for minor defects effectively. Replacing the Intersection over Union with receptive field distance, the similarity between Gaussian receptive fields and true labels is measured, facilitating sample allocation based on their similarity, thereby improving the accuracy of sample assignment effectively. Utilizing Gaussian Mixture Model and Expectation-Maximization algorithm for probability distribution fitting, adaptive allocation of positive and negative samples for feature points is achieved, effectively mitigating the issue of missed detections caused by faint features of minor defects. Results demonstrate a significant enhancement in the accuracy of conveyor belt defect detection attributed to the Gaussian Mixture Model label assignment strategy, exhibiting a 3.8% improvement in accuracy compared to the baseline network.

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鐘信,彭力.基于深度學(xué)習方法的傳送帶缺陷檢測計算機測量與控制[J].,2024,32(8):64-71.

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歷史
  • 收稿日期:2024-01-15
  • 最后修改日期:2024-02-23
  • 錄用日期:2024-02-28
  • 在線(xiàn)發(fā)布日期: 2024-09-02
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