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Color-based object segmentation method using artificial neural network

机译:基于颜色的人工神经网络目标分割方法

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This paper presents a color-based technique for object segmentation in colored digital images. Principally, we make use of some color spaces to segment pixels as either objects of interest or non-objects using artificial neural networks (ANN). This study clearly shows how a novel method for fusion of the existing color spaces produces better results in practice than individual color spaces. The segmented objects include lips, faces, hands, fingers and tree leaves. Using several databases to represent these problems, the ANN was trained on the color of the pixel and its surrounding 8 neighbors to be an object or non-object; in the test mode the trained set was used to segment the 9 pixels in the test image into object or non-object. The feature vector was used for training and testing results from the fusion of different types of color information that came from different color models of the targeted pixel. Several experiments were conducted on different databases and objects to evaluate the proposed method; significant results were recorded, showing the power of expressiveness of color and some texture information to deal with the object segmentation problem. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文提出了一种基于颜色的彩色数字图像中的对象分割技术。原则上,我们利用人工神经网络(ANN)利用一些颜色空间将像素分割为感兴趣的对象或非对象。这项研究清楚地表明,与单独的色彩空间相比,一种用于融合现有色彩空间的新颖方法在实践中如何产生更好的结果。分割的对象包括嘴唇,脸,手,手指和树叶。通过使用多个数据库来表示这些问题,对ANN进行了像素及其周围8个邻居的颜色训练,使其成为对象或非对象。在测试模式下,训练好的集合用于将测试图像中的9个像素分割为对象或非对象。特征向量用于训练和测试来自目标像素不同颜色模型的不同类型颜色信息融合的结果。在不同的数据库和对象上进行了几次实验,以评估该方法。记录了显着的结果,显示了颜色表现力和一些纹理信息处理对象分割问题的能力。 (C)2016 Elsevier B.V.保留所有权利。

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