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SADE: Android spectral reflectance estimator application using Wiener estimation to estimate sambiloto leaf's age

机译:SADE:Android光谱反射率估算器应用程序,使用Wiener估算来估算三叶草的年龄

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This research proposes an Android application to estimate sambiloto (Andrographis paniculata) leaf's age from its estimated spectral reflectance using Wiener estimation. Sambiloto is one of Indonesia's popular medicinal plant. In order to use quality plants, a quality control method, such as lab tests, must be conducted. These lab tests require the destruction of leaf samples. One promising alternative is by using image processing using Wiener estimation. Wiener estimation is a conventional method to estimate high-dimensional data from low-dimensional data, for example in this case, three-channel image (RGB) to spectral reflectance. We can quantify the sambiloto leaf's quality through its spectral data in the form of its age. This research also proposes an improvement in dataset acquisition for the Wiener estimation. In the experiment we used datasets consisting of 97 standard colors, 15 samboloto leaves, and their combination. The results shows that the 15 sambiloto leaves dataset and second polynomial order gives the best reconstructed spectral reflectance. The RMSE and GFC of this dataset are 3.57 and 0.99, which is better than several previous researches. We use Probabilistic Neural Network for classifying the leaf's age from its reconstructed spectral reflectance. The accuracy for the age identification using PNN is 65%.
机译:这项研究提出了一个Android应用程序,该应用程序可以使用维纳(Wiener)估计从估计的光谱反射率中估计出印度卷心菜的叶子的年龄。 Sambiloto是印度尼西亚最受欢迎的药用植物之一。为了使用高质量的工厂,必须执行质量控制方法,例如实验室测试。这些实验室测试需要销毁叶子样本。一种有前途的替代方法是通过使用使用维纳估计的图像处理。维纳估计是从低维数据(例如在这种情况下为三通道图像(RGB)到光谱反射率)中估计高维数据的常规方法。我们可以通过其年龄形式的光谱数据来量化三叉戟叶片的质量。这项研究还提出了用于Wiener估计的数据集获取方面的改进。在实验中,我们使用了由97种标准颜色,15幅samboloto叶子及其组合组成的数据集。结果表明,15片叶子的Sambiloto数据集和二阶多项式给出了最佳的重构光谱反射率。该数据集的RMSE和GFC分别为3.57和0.99,这比以前的一些研究要好。我们使用概率神经网络根据其重构的光谱反射率对叶子的年龄进行分类。使用PNN进行年龄识别的准确性为65%。

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