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Estimation of Aboveground Biomass from Satellite Data Using Quaternion-Based Texture Analysis of Multi Chromatic Images

机译:基于四元数的多色图像质构分析从卫星数据中估算地上生物量

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In recent years, first approaches using quaternion numbers to handle and model multi chromatic images in a holistic manner were introduced. By defining quaternion Fourier transform, multidimensional data such as color images can be efficiently and easily process. On the other hand, multi chromatic satellite data appear as a primary source for measuring past trends and monitoring changes in forest carbon stocks. Thus, the processing of these data represents a fundamental challenge. In this work, inspired by the quaternion Fourier transforms, we propose a texture-color descriptor to extract relevant information from multi chromatic satellite images. We also propose a quaternion-based texture model, named FOTO++, to address the aboveground biomass estimation issue. Our proposed model begins by removing noises in the multi chromatic data while preserving the edges of canopies. After that, color texture indices are extracted using discrete form of Quaternion Fourier Transform and finally support vector regression method is used to derive biomass estimation from texture indices. Our texture features are modeled by a vector composed by the radial spectrum coming from the amplitude of quaternion Fourier Transform. We conduct several experiments in order the study the sensitivity of our model to acquisition parameters. We also assess its performances both on synthetic images and on real multi chromatic images of Cameroonian forest. The results provided support that our model is more robust to acquisition parameters than the classical Fourier Texture Ordination model and it is more accurate for aboveground biomass estimates. We stress that similar methodology could be used with quaternion wavelets. These results highlight the potential of quaternion-based approach to study multi chromatic images.
机译:近年来,引入了使用四元数以整体方式处理和建模多色图像的第一种方法。通过定义四元数傅里叶变换,可以高效,轻松地处理诸如彩色图像之类的多维数据。另一方面,多色卫星数据似乎是测量过去趋势和监测森林碳储量变化的主要来源。因此,这些数据的处理代表了一项基本挑战。在这项工作中,受四元数傅里叶变换的启发,我们提出了一种纹理颜色描述符,以从多色卫星图像中提取相关信息。我们还提出了一个基于四元数的纹理模型,称为FOTO ++,以解决地上生物量估算问题。我们提出的模型从消除多色数据中的噪声开始,同时保留了顶篷的边缘。之后,使用四元数傅立叶变换的离散形式提取颜色纹理指数,最后使用支持向量回归方法从纹理指数中得出生物量估计值。我们的纹理特征由一个矢量建模,该矢量由来自四元数傅立叶变换幅度的径向光谱组成。为了进行模型对采集参数的敏感性研究,我们进行了几次实验。我们还将在喀麦隆森林的合成图像和真实多色图像上评估其性能。结果提供了支持,我们的模型比经典的傅里叶纹理排序模型对采集参数更鲁棒,并且对地上生物量估计更准确。我们强调,类似的方法可以用于四元数子波。这些结果突出了基于四元数的方法研究多色图像的潜力。

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