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Citrus disease recognition based on weighted scalable vocabulary tree

机译:基于加权可扩展词汇树的柑橘病识别

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摘要

Citrus Huanglongbing (HLB) is a destructive disease in citrus production that causes huge economic damage to citrus producers and related industries in the world. Early and accurate detection of HLB is a critical management step to control the spread of this disease. However, existing HLB detection methods cannot be widely adopted in citrus production due to long-time and high-cost detection period in specific laboratory environments. In view of this, a fast-response and low-cost computer vision technique is investigated for diagnosing HLB in citrus leaves. Specifically, the Gaussian mixture density (GMD) is performed to extract the leaf object from the citrus image, followed by the feature extraction and recognition of the existence of HLB in the leaf based on scalable vocabulary tree. A citrus leaf image dataset is constructed, and the experimental results show that the proposed HLB recognition method with GMD object extraction performs 95-100 % accuracy within 1 s.
机译:柑橘黄龙病(HLB)是柑橘生产中的破坏性疾病,对全世界的柑橘生产商和相关产业造成巨大的经济损失。早期和准确地检测HLB是控制该疾病传播的关键管理步骤。但是,由于在特定实验室环境中的检测时间长且成本高,因此现有的HLB检测方法无法在柑桔生产中广泛采用。有鉴于此,研究了一种快速响应和低成本的计算机视觉技术,用于诊断柑橘叶片中的HLB。具体而言,执行高斯混合密度(GMD)以从柑橘图像中提取叶子对象,然后基于可伸缩词汇树进行特征提取并识别叶子中HLB的存在。建立了柑橘叶片图像数据集,实验结果表明,提出的带有GMD目标提取的HLB识别方法在1 s内可实现95-100%的精度。

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