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An SA-GA-BP neural network-based color correction algorithm for TCM tongue images

机译:基于SA-GA-BP神经网络的中医舌像色彩校正算法

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摘要

Tongue inspection is an essential part in the four diagnostic methods in traditional Chinese medicine (TCM). Subject to the variation in conditions such as the imperfection of capturing environment, illumination and imaging devices, the captured tongue images usually contain certain color distortion compared to the actual tongue images, and such distortion has negative impact on the diagnosis from doctors. Therefore, this paper proposes a simulated annealing (SA)-genetic algorithm (GA)-back propagation (BP) neural network-based color correction algorithm for TCM tongue images. The main contributions of this paper include two aspects: First, not all of the color samples from the whole color gamut are used to train the color correction model, only a number of colors that are similar to those of the tongue body, tongue coating and skin are selected from the entire color sample set and used for the color correction, which will greatly reduce the computational complexity of training process and improve the correction accuracy. Second, to further improve the correction accuracy, SA-GA-BP neural network algorithm is utilized in training process to establish the color mapping model, with the captured samples of such color checkers under the capturing environment taken as the input data and the standard color data as output. As to the problem that the color correction models obtained by using the SA-GA-BP neural network method is not unique, the optimal color mapping model is selected based on the principle of minimizing the average color difference between the output values of test samples and standard colors. Experimental results demonstrate that the performance of color correction obtained by the proposed algorithm is superior to that based on the whole color gamut color correction algorithm, while the training time is as 6.7% low as that of the whole color gamut color correction algorithm.
机译:舌头检查是中医四种诊断方法中必不可少的部分。受到诸如捕获环境,照明和成像设备的缺陷之类的条件的变化的影响,与实际舌图像相比,捕获的舌图像通常包含某些颜色失真,并且这种失真对医生的诊断具有负面影响。因此,本文提出了一种基于模拟退火(SA)-遗传算法(GA)-反向传播(BP)神经网络的中医舌图像色彩校正算法。本文的主要贡献包括两个方面:首先,并非全部色域中的所有颜色样本都用于训练颜色校正模型,只有一些与舌体,舌苔和从整个颜色样本集中选择皮肤并将其用于颜色校正,这将大大降低训练过程的计算复杂度并提高校正精度。其次,为进一步提高校正精度,在训练过程中采用SA-GA-BP神经网络算法建立颜色映射模型,以捕获环境下此类颜色检查器的捕获样本作为输入数据和标准颜色。数据作为输出。对于使用SA-GA-BP神经网络方法获得的色彩校正模型不唯一的问题,基于最小化测试样本输出值与输出值之间的平均色差的原理,选择最佳色彩映射模型。标准颜色。实验结果表明,该算法获得的色彩校正性能优于基于全色域色彩校正算法的颜色校正算法,其训练时间比基于全色域色彩校正算法的训练时间低6.7%。

著录项

  • 来源
    《Neurocomputing》 |2014年第25期|111-116|共6页
  • 作者单位

    Signal & Information Processing Laboratory, Beijing University of Technology, Beijing, China;

    Signal & Information Processing Laboratory, Beijing University of Technology, Beijing, China;

    School of Information Technologies, University of Sydney, Sydney, NSW, Australia;

    Signal & Information Processing Laboratory, Beijing University of Technology, Beijing, China;

    Signal & Information Processing Laboratory, Beijing University of Technology, Beijing, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    SA-GA-BP neural network; Color correction; TCM tongue image;

    机译:SA-GA-BP神经网络;色彩校正;中医舌象;

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