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Multichannel Decoded Local Binary Patterns for Content-Based Image Retrieval

机译:用于基于内容的图像检索的多通道解码本地二进制模式

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摘要

Local binary pattern (LBP) is widely adopted for efficient image feature description and simplicity. To describe the color images, it is required to combine the LBPs from each channel of the image. The traditional way of binary combination is to simply concatenate the LBPs from each channel, but it increases the dimensionality of the pattern. In order to cope with this problem, this paper proposes a novel method for image description with multichannel decoded LBPs. We introduce adder- and decoder-based two schemas for the combination of the LBPs from more than one channel. Image retrieval experiments are performed to observe the effectiveness of the proposed approaches and compared with the existing ways of multichannel techniques. The experiments are performed over 12 benchmark natural scene and color texture image databases, such as Corel-1k, MIT-VisTex, USPTex, Colored Brodatz, and so on. It is observed that the introduced multichannel adder- and decoder-based LBPs significantly improve the retrieval performance over each database and outperform the other multichannel-based approaches in terms of the average retrieval precision and average retrieval rate.
机译:局部二进制模式(LBP)被广泛采用,以实现有效的图像特征描述和简化。为了描述彩色图像,需要组合来自图像每个通道的LBP。传统的二进制组合方式是简单地将每个通道的LBP连接起来,但这会增加图案的维数。为了解决这个问题,本文提出了一种多通道解码LBP的图像描述新方法。我们介绍了基于加法器和解码器的两种模式,用于组合来自多个通道的LBP。进行图像检索实验以观察所提出的方法的有效性,并与现有的多通道技术方法进行比较。实验是在12个基准自然场景和色彩纹理图像数据库上执行的,例如Corel-1k,MIT-VisTex,USPTex,Colored Brodatz等。可以看出,引入的基于多通道加法器和解码器的LBP在平均检索精度和平均检索率方面,显着提高了每个数据库的检索性能,并优于其他基于多通道的方法。

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