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首页> 外文期刊>Journal of Theoretical and Applied Information Technology >SUPERVISED CLASSIFICATION AND IMPROVED FILTERING METHOD FOR SHORELINE DETECTION
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SUPERVISED CLASSIFICATION AND IMPROVED FILTERING METHOD FOR SHORELINE DETECTION

机译:岸线检测的监督分类和改进滤波方法

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Shoreline monitoring is important to overcome the problems in the measurement of the shoreline. Recently, many researchers have directed attention to methods of predicting shoreline changes by the use of multispectral images. However, the images being captured tend to have several problems due to the weather. Therefore, identification of multi class features which includes vegetation and shoreline using multispectral satellite image is one of the challenges encountered in the detection of shoreline. An efficient framework using the near infrared histogram equalisation and improved filtering method is proposed to enhance the detection of the shoreline in Tanjung Piai, Malaysia, by using SPOT-5 images. Sub-pixel edge detection and the Wallis filter are used to compute the edge location with the subpixel accuracy and reduce the noise. Then, the image undergoes image classification process by using Support Vector Machine. The proposed method performed more effectively and reliable in preserving the missing line of the shoreline edge in the SPOT-5 images.
机译:海岸线监测对于克服海岸线测量中的问题非常重要。最近,许多研究人员将注意力转向了通过使用多光谱图像来预测海岸线变化的方法。然而,由于天气原因,被捕获的图像倾向于具有几个问题。因此,使用多光谱卫星图像识别包括植被和海岸线在内的多类特征是在海岸线检测中遇到的挑战之一。提出了一种利用近红外直方图均衡化和改进的滤波方法的有效框架,以通过使用SPOT-5图像来增强对马来西亚丹戎披艾的海岸线的检测。亚像素边缘检测和Wallis滤波器用于以亚像素精度计算边缘位置并减少噪声。然后,使用支持向量机对图像进行图像分类处理。所提出的方法在保留SPOT-5图像中海岸线边缘的缺失线方面更有效,更可靠。

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