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Enhancing TIR image resolution via Interacting Sequential Bayesian Estimation

机译:通过交互顺序贝叶斯估计提高TIR图像分辨率

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The continuous time monitoring of the radiometric surface temperature by means of high spatial resolution images is desirable in agricoltural applications, such as irrigation management. Since the requirement of high spatial and temporal resolutions can hardly be met by a single sensor, we resort to a fusion strategy of data from multiple sensors. Specifically we consider the Interacting Sequential Bayesian Estimation strategy, as it is able to deal with the sudden changes observed in the temperature dynamics. The method has been validated on SEVIRI TIR real data, properly spatially degraded in order to mimic sensors with different characteristics.
机译:在诸如灌溉管理的农业应用中,需要借助高空间分辨率图像对辐射表面温度进行连续时间监视。由于单个传感器几乎无法满足对高空间和时间分辨率的要求,因此我们诉诸于融合来自多个传感器的数据的策略。具体而言,我们考虑了交互顺序贝叶斯估计策略,因为它能够处理在温度动态变化中观察到的突然变化。该方法已在SEVIRI TIR真实数据上进行了验证,并在空间上进行了适当降级,以模拟具有不同特征的传感器。

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