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基于輪廓分析的雙串疊貼葡萄目標識別方法
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國家自然科學基金項目(31571568)、廣東省科技計劃項目(2015A020209111,、2015A020209120,、2014A020208091)、廣東省工程中心建設項目(2014B090904056)和廣州市科技計劃項目(201510010140)


Recognition Method for Two Overlaping and Adjacent Grape Clusters Based on Image Contour Analysis
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    摘要:

    為準確定位疊貼情況下的葡萄目標,,提出了一種基于輪廓分析的雙串疊貼葡萄目標識別方法,。首先提取最能突顯夏黑葡萄的HSV顏色空間中的H分量,通過改進K-means聚類方法對葡萄圖像進行分割,,運用形態(tài)學去噪等處理獲取葡萄圖像區(qū)域,,再提取該區(qū)域邊緣輪廓和左右輪廓的類圓中心。然后以該中心點為原點建立基于輪廓分析的疊貼葡萄串分界線幾何求解與計算模型,,分別在逆時針方向45°~135°和225°~315°區(qū)域內沿葡萄輪廓搜索距離原點最近的點,,進而確立兩疊貼葡萄輪廓拐點及其分界線,最終實現對疊貼葡萄目標的分別提取,。對從果園采集的27幅雙串疊貼葡萄圖像進行試驗,,結果顯示:24幅圖像中的疊貼葡萄串被正確識別和提取,成功率達88.89%,,目標像素區(qū)域的識別精準度為87.63%~96.12%,,算法處理時間在0.59~0.68s之間。將算法移植到自主研制的機器人上進行視覺定位試驗,,結果表明所提方法可很好地用于兩疊貼葡萄目標的識別與定位,。

    Abstract:

    The recognition and location of overlapping or adjacent grape clusters in vineyard is one of the difficulties of grape picking robot vision system. In order to locate the grape clusters accurately, a method for targets detection and extraction in two overlapping and adjacent grape clusters was proposed based on image contour analysis. Firstly, the H color component images that can well distinguish the summer black grape clusters from the background were extracted from the HSV color space, the grape clusters in the extracted images were segmented by using the improved K-means clustering method, and subsequently the noises in the segmented images were eliminated by using morphological operations. Secondly, the edges of grape clusters were extracted, and the midpoint of the line crossed the extreme points on the left and right edge of grape clusters was calculated out. Thirdly, midpoint was taken as the original point, and a geometry calculation model for solving the dividing line between two grape clusters was built after analyzing the contour characteristics. The two intersection points of the adjacent grape clusters’edges were computed by using the minimum distance constraint between the original point and the specified edges. Finally, the dividing line of two grape clusters was obtained by connecting the two intersection points, and the two grape clusters were extracted separately. To verify the robust of the proposed method, totally 27 vineyard images with two overlapping and adjacent grape clusters were tested, and the results showed that the grape clusters in 24 images were correctly identified and extracted. The success rate reached up to 88.89%, and the accuracy of the extracted pixel region was from 87.63% to 96.12%. The elapsed time of the developed algorithm was 0.59 ~ 0.68s. Moreover, the developed algorithm was transplanted to the selfdeveloped harvesting robot, and the running results showed that the proposed method could be used to localize two overlapping and adjacent grape clusters.

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羅陸鋒,鄒湘軍,王成琳,陳雄,楊自尚,司徒偉明.基于輪廓分析的雙串疊貼葡萄目標識別方法[J].農業(yè)機械學報,2017,48(6):15-22. LUO Lufeng, ZOU Xiangjun, WANG Chenglin, CHEN Xiong, YANG Zishang, SITU Weiming. Recognition Method for Two Overlaping and Adjacent Grape Clusters Based on Image Contour Analysis[J]. Transactions of the Chinese Society for Agricultural Machinery,2017,48(6):15-22.

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  • 收稿日期:2016-10-12
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  • 在線發(fā)布日期: 2016-11-09
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