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Spectral Estimation of Munsell Color Charts Using a Multi-Channel Imaging System

机译:使用多通道成像系统的孟塞尔色卡的光谱估计

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A practical way to capture images and estimate their spectral reflectance was proposed. For the image acquisition, a four-channel digital camera was used. Then the reflectance is represented as a linear combination of several basis vectors by singular value decomposition (SVD). After that, a neural network is trained so that it is able to approximate the relationship between the camera responses and the coefficients of basis vectors accurately. In the end the spectral reflectance of standard Munsell color patch (Matte) was estimated on the neural network and basis vectors. Results show that the reflectance of standard Munsell color patch (Matte) can be reconstructed successfully with mean of RMS which is 0.0234. Compared with linear approximation method, reconstruction of standard Munsell color patch (Matte)using this approach reduces the reconstruction error by 67%. Therefore we conclude that this approach has advantages of higher accuracy, easy implementation and adaptation, thus can be used in many applications.
机译:提出了一种捕获图像并估计其光谱反射率的实用方法。对于图像采集,使用了四通道数码相机。然后,通过奇异值分解(SVD)将反射率表示为多个基本矢量的线性组合。此后,对神经网络进行训练,使其能够准确地估计摄像机响应与基本矢量系数之间的关系。最后,在神经网络和基向量上估计标准Munsell色块(Matte)的光谱反射率。结果表明,标准的孟塞尔色标(Matte)的反射率可以成功地重建,均方根(RMS)为0.0234。与线性逼近方法相比,使用此方法重建标准Munsell色块(Matte)可使重建误差降低67%。因此,我们得出结论,该方法具有较高的准确性,易于实现和适应的优点,因此可以在许多应用中使用。

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