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首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >Modified Lyzenga's Method for Estimating Generalized Coefficients of Satellite-Based Predictor of Shallow Water Depth
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Modified Lyzenga's Method for Estimating Generalized Coefficients of Satellite-Based Predictor of Shallow Water Depth

机译:基于修正的Lyzenga方法估算基于卫星的浅水深度预报器的广义系数

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The multispectral method for the remote sensing of water depth proposed by Lyzenga has been widely applied to shallow-water bathymetry by researchers. The predictor of water depth used in this method is a linear function of image-derived variables for each visible band. The coefficients of the predictor are estimated by using a number of pixels with known depth as training data; this depth information is usually obtained by performing in situ depth measurements. Theoretically, if an appropriate set of coefficients is chosen, the predictor can be insensitive to some variations in the optical properties of the bottom material and water. However, it is sensitive to variations in atmospheric and water surface transmittance and sun and satellite elevations. Consequently, a single set of coefficients cannot always be applied to multiple images. In this letter, we propose a simple method to estimate a general set of coefficients for Lyzenga's predictor that is relatively less affected by the aforementioned factors. We derive and utilize the theoretical fact that these factors affect only the intercept (constant term) of the predictor function. We demonstrate the effectiveness of the proposed method using WorldView-2 images of coral reefs. The proposed method will enable the application of a single set of coefficients (except for the intercept) to a broad range of images. This will significantly reduce the number of pixels with known depth required for the prediction of an image and thereby improve the feasibility of remote sensing of water depth.
机译:Lyzenga提出的多光谱遥感水深方法已被研究人员广泛应用于浅水测深中。此方法中使用的水深预测值是每个可见带的图像变量的线性函数。通过使用许多深度已知的像素作为训练数据来估算预测变量的系数;通常通过执行原位深度测量来获得该深度信息。从理论上讲,如果选择了一组合适的系数,则预测变量可能对底部材料和水的光学特性的某些变化不敏感。但是,它对大气和水面透射率以及太阳和卫星高度的变化很敏感。因此,单套系数不能总是应用于多个图像。在这封信中,我们提出了一种简单的方法来估算Lyzenga预测变量的一般系数集,该系数集受上述因素的影响相对较小。我们得出并利用了以下理论事实:这些因素仅影响预测函数的截距(常数项)。我们使用WorldView-2珊瑚礁展示了该方法的有效性。所提出的方法将使得能够将单组系数(截距除外)应用于宽范围的图像。这将大大减少预测图像所需的已知深度的像素数量,从而提高遥感水深的可行性。

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