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A method of recognition of maritime objects based on FLIR (forward looking infra-red) sensor images using Dynamic Time Warping

机译:基于动态时间规整的基于FLIR(前视红外)传感器图像的海事物体识别方法

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This paper presents a method of recognition of maritime objects based on their images made by infrared sensors (FLIR -forward looking infra-red) using the time series comparison DTW method (DTW - Dynamic Time Warping). The DTW method allows to find the smallest distance between two time series when the run of time one of the series has been deformed (stretched or compressed). In the presented classifier of maritime objects images the DTW method is used to compare the combined horizontal and vertical brightness histograms for a recognized object and pattern objects. The DTW method allows to compare the histograms of objects whose FLIR images were taken at different angles. To determine the silhouette of a maritime object, the Otsu segmentation algorithm is used in this paper. The paper describes the Otsu threshold method, the method of comparing time series DTW and the method of constructing combined histograms of maritime objects silhouettes. The final part of the paper presents the results of research on the developed method of maritime objects classification using a set of FLIR images registered in the Baltic Sea.
机译:本文使用时间序列比较DTW方法(DTW-动态时间规整),提出了一种基于红外传感器(FLIR-前视红外)的海象图像识别方法。当时间序列中的一个时间序列变形(拉伸或压缩)时,DTW方法允许找到两个时间序列之间的最小距离。在提出的海上物体图像分类器中,DTW方法用于比较识别的物体和模式物体的组合水平和垂直亮度直方图。 DTW方法允许比较以不同角度拍摄其FLIR图像的对象的直方图。为了确定海上物体的轮廓,本文使用了Otsu分割算法。本文介绍了Otsu阈值方法,比较时间序列DTW的方法以及构造海上物体轮廓的组合直方图的方法。本文的最后一部分介绍了使用一套在波罗的海注册的FLIR图像开发的海上物体分类方法的研究结果。

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