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Detection and Counting of Mango Fruits in Occluded Condition Using Image Analysis

机译:用图像分析检测和计数闭塞条件下的芒果水果

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In Agriculture, fruit farmers would be very helpful if they can monitor and estimate the yield before harvesting the fruits so that they can optimize and use the materials required more efficiently such as water consumption, fertilizers, and other agricultural chemical substances for every different location. This study proposed a method for detecting and counting the number of mangos in occluded conditions by evaluating the color filter and identifying the specific characteristics of fruit such as the homogeneity of fruit surface. This study fully made use of the information extracted from the created blobs after conducting histogram filtering such as blob weighting, evaluating the blob gradient topography and performing a hierarchical clustering. This method had a lower efficiency cost and did not need to determine the number of clusters to be searched. The function of this method was also improved by providing the information of the position and the number of fruits in the result images. This information could be used to make a precise detection. The images used in this experiment were 150 mango images divided into 30 training images and 120 testing images. The results of the experiments showed this method was able to detect mango, precision and false rates up to: 97.53%, 99.28%, and 0.72%, respectively. In general, the result of this study presented the total number of fruit detected by system of 646 images as the True Positive conditions from the total of 705 fruits, with an overall ratio of Recall, Precision, False rate of 91.63%; 97.88%, 2.12% respectively.
机译:在农业中,如果他们可以在收获果实之前监测和估计产量,水果农民将非常有用,以便他们可以优化和使用所需的材料,例如耗水,肥料和其他各种农业化学物质所需的材料。该研究提出了一种通过评估滤色器并鉴定诸如果实表面的均匀性等果实的具体特征来检测和计数闭塞条件中的尸体中的数量的方法。本研究完全利用从创建的BLOB中提取的信息在进行直方图滤波之后,例如BLOB加权,评估BLOB梯度地形和执行分层聚类。该方法具有较低的效率成本,并且不需要确定要搜索的集群的数量。还通过提供结果图像中的位置和果实数量的信息来提高该方法的功能。该信息可用于进行精确检测。本实验中使用的图像为150芒果图像,分为30个训练图像和120测试图像。实验结果表明,该方法能够检测芒果,精度和假率,分别为:97.53%,99.28%和0.72%。一般来说,本研究的结果介绍了646个图像的系统检测到的果实总数,作为真正的阳性条件,从总共705个果实,召回,精度,假速率为91.63%; 97.88%,2.12%。

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