首页> 外文会议>European Signal Processing Conference(EUSIPCO 2005); 20050904-08; Antalya(TK) >THRESHOLDING-BASED SEGMENTATION AND APPLE GRADING BY MACHINE VISION
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THRESHOLDING-BASED SEGMENTATION AND APPLE GRADING BY MACHINE VISION

机译:基于阈值的分割和机器视觉的苹果分级

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In this paper, a computer vision based system is introduced to automatically grade apple fruits. Segmentation of defected skin is done by three global thresholding techniques (Otsu, isodata and entropy). Stem-end/calyx regions falsely classified as defect are removed. Segmentations were visually best with isodata technique applied on 750nm filter image. Statistical features are extracted from the segmented areas and then fruit is graded by a supervised classifier. Linear discriminant, nearest neighbor, fuzzy nearest neighbor, adaboost and support vector machines classifiers are tested for fruit grading, where the latter outperformed others with 89 % recognition.
机译:本文介绍了一种基于计算机视觉的系统,可对苹果果实进行自动分级。缺陷皮肤的分割通过三种全局阈值技术(Otsu,isodata和熵)完成。删除错误分类为缺陷的茎端/花萼区域。在750nm滤光片图像上使用isodata技术进行视觉分割效果最佳。从分割区域中提取统计特征,然后由监督分类器对水果进行分级。对线性判别,最近邻,模糊最近邻,aboaboost和支持向量机分类器进行了水果分级测试,其中后者以89%的识别率胜过其他。

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