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Design and Implementation of Family Service Robots' Object Recognition Based on Webots

机译:基于Webots的家庭服务机器人目标识别的设计与实现

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This article based on the current robot to achieve the identification of objects exist a number of issues to design. In order to achieve the robots in the family scene to identify specific objects. Thus verifying its feasibility and practicability.Based on SURF algorithm and SVM classifier to extract local features and training, this paper proposes a PCA algorithm and Bag-of-Visual-Word algorithm to reduce the dimensionality and clustering of extracted features to facilitate SVM training while improving recognition accuracy and reducing computation time. At the same time using multi-view and Image Pyramid segmentation method to solve the occlusion and complex background recognition. All experiments were performed using the Webots robotics development platform and the OpenCV library.Experimental results show that the above method can ensure the real-time performance while ensuring the accuracy of recognition. It has a certain feasibility and practical value.
机译:本文基于当前实现机器人识别对象存在的一些问题进行设计。为了实现机器人在家庭场景中识别特定对象。本文基于SURF算法和SVM分类器提取局部特征并进行训练,提出了一种PCA算法和Bug-of-Visual-Word算法,以减少提取特征的维数和聚类,方便SVM训练。提高识别精度并减少计算时间。同时使用多视图和图像金字塔分割方法来解决遮挡和复杂的背景识别。所有实验均使用Webots机器人开发平台和OpenCV库进行。实验结果表明,上述方法在保证识别准确性的同时,可以保证实时性。具有一定的可行性和实用价值。

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