首页> 外文会议>Conference on Image and Signal Processing for Remote Sensing IX; Sep 9-12, 2003; Barcelona, Spain >On the ARMA Model Based Region Growing Method for Extracting Lake Region in a Remote Sensing Image
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On the ARMA Model Based Region Growing Method for Extracting Lake Region in a Remote Sensing Image

机译:基于ARMA模型的遥感影像湖泊区域提取方法。

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Recently the lake area detection has been a popular topic for time series remote sensing images analysis. The two-dimensional Markov model is one of the efficient mathematical models to describe an image especially when the within-object interpixel correlation varies significantly from object to object. The unsupervised Region Growing is a powerful image segmentation method for use in shape classification and analysis. In this paper, the Region Growing method based on two-dimensional Autoregressive Moving Average (ARMA) model is proposed for lake region detections. Some of the statistical techniques, such as Gaussian distributed white noise error confidence interval, and sample statistics based on mean and variance properties have been used for thresholding during calculations. The linear regression analysis with least mean squares estimation is still of ongoing interest for statistical research and applications especially with the remote sensing images. The LANDSAT 5 database in the area of Italy's Lake Mulargias acquired in July 1996 was used for the computing experiments with satisfactory preliminary results.
机译:最近,湖泊区域检测已成为时间序列遥感图像分析的热门话题。二维马尔可夫模型是描述图像的有效数学模型之一,尤其是当对象内像素间的相关性随对象的不同而显着变化时。无监督区域增长是一种强大的图像分割方法,可用于形状分类和分析。提出了一种基于二维自回归移动平均(ARMA)模型的区域增长方法进行湖泊区域检测。一些统计技术,例如高斯分布的白噪声误差置信区间,以及基于均值和方差属性的样本统计已用于计算期间的阈值处理。具有最小均方估计值的线性回归分析仍在统计研究和应用中,尤其是在遥感图像方面,仍引起人们的持续关注。 1996年7月在意大利Mulargias湖地区获得的LANDSAT 5数据库用于计算实验,取得了令人满意的初步结果。

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