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Assessment of hotspots using sparse autoencoder in industrial zones

机译:在工业区中使用稀疏自动编码器评估热点

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Remote sensing satellite systems can be used to detect industrial zones by means of thermal infrared bands. There are several satellite systems loaded with thermal infrared sensors such as Landsat and Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER). In this study, ASTER thermal infrared data were converted to land surface temperature (LST) in order to determine hotspots caused by industrial zones. High LST values surrounded by low LST values are called hotspots here. These hotspots can be determined by applying different methodologies. One of these methods of sparse autoencoder can be used to indicate hotspots using different sizes of hidden layers. The principle of sparse autoencoder depends on unlabeled data in unsupervised learning. It does not need any information about labeled data as in supervised learning. The autoencoder reproduces its output with the same dimensions as the input image by managing the size of the hidden layer. The reconstruction of the image depends on the minimization of a cost function. The size of the hidden layer sets the fitting degree of the function for the reproduced image. A low-order reproduced image is the main target for hotspot detection. In this study, the difference between the original image and the reproduced image was analyzed for hotspot detection. Sparse autoencoder was successfully applied to ASTER thermal band 10 for hotspot detection in 7 pre-defined sites of a region known for steel industry for the two different days.
机译:遥感卫星系统可用于通过红外热波段探测工业区。有几个装有热红外传感器的卫星系统,例如Landsat和先进的星载热发射和反射辐射计(ASTER)。在这项研究中,ASTER热红外数据被转换为地表温度(LST),以确定由工业区引起的热点。高LST值和低LST值包围在此处称为热点。可以通过应用不同的方法来确定这些热点。稀疏自动编码器的这些方法之一可用于使用不同大小的隐藏层来指示热点。稀疏自动编码器的原理取决于无监督学习中未标记的数据。它不需要像监督学习中那样的任何有关标签数据的信息。自动编码器通过管理隐藏层的大小,以与输入图像相同的尺寸来再现其输出。图像的重建取决于成本函数的最小化。隐藏层的大小设置了用于再现图像的功能的适合度。低阶复制图像是热点检测的主要目标。在这项研究中,分析了原始图像和复制图像之间的差异以进行热点检测。稀疏自动编码器已成功应用于ASTER热能带10,用于在两个不同的日子里在一个以钢铁工业闻名的地区的7个预定义地点进行热点检测。

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