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Image pre-processing research of coal level in underground coal pocket
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作者 吴冰 高娜 《Journal of Coal Science & Engineering(China)》 2008年第1期162-164,共3页
Mathematical morphology is widely applicated in digital image procesing.Vari- ary morphology construction and algorithm being developed are used in deferent digital image processing.The basic idea of mathematical morp... Mathematical morphology is widely applicated in digital image procesing.Vari- ary morphology construction and algorithm being developed are used in deferent digital image processing.The basic idea of mathematical morphology is to use construction ele- ment measure image morphology for solving understand problem.The article presented advanced cellular neural network that forms mathematical morphological cellular neural network (MMCNN) equation to be suit for mathematical morphology filter.It gave the theo- ries of MMCNN dynamic extent and stable state.It is evidenced that arrived mathematical morphology filter through steady of dynamic process in definite condition. 展开更多
关键词 图象处理 煤矿 地下煤 上煤器
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Case study on the extraction of land cover information from the SAR image of a coal mining area 被引量:11
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作者 HU Zhao-ling LI Hai-quan DU Pei-jun 《Mining Science and Technology》 EI CAS 2009年第6期829-834,共6页
In this study,analyses are conducted on the information features of a construction site,a cornfield and subsidence seeper land in a coal mining area with a synthetic aperture radar (SAR) image of medium resolution. Ba... In this study,analyses are conducted on the information features of a construction site,a cornfield and subsidence seeper land in a coal mining area with a synthetic aperture radar (SAR) image of medium resolution. Based on features of land cover of the coal mining area,on texture feature extraction and a selection method of a gray-level co-occurrence matrix (GLCM) of the SAR image,we propose in this study that the optimum window size for computing the GLCM is an appropriate sized window that can effectively distinguish different types of land cover. Next,a band combination was carried out over the text feature images and the band-filtered SAR image to secure a new multi-band image. After the transformation of the new image with principal component analysis,a classification is conducted selectively on three principal component bands with the most information. Finally,through training and experimenting with the samples,a better three-layered BP neural network was established to classify the SAR image. The results show that,assisted by texture information,the neural network classification improved the accuracy of SAR image classification by 14.6%,compared with a classification by maximum likelihood estimation without texture information. 展开更多
关键词 土地覆盖类型 SAR图像 纹理特征提取 图像信息 煤炭矿区 灰度共生矩阵 图像分类 合成孔径雷达
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概率神经网络在矿井红外监控图像识别中的应用 被引量:12
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作者 孙继平 陈伟 +2 位作者 王福增 唐亮 李郴 《煤炭学报》 EI CAS CSCD 北大核心 2007年第11期1206-1210,共5页
对粉煤图像和块煤图像灰度相关矩阵各统计量的数值进行了极差正规化处理,并分析了其统计量的分布特征.使用概率神经网络对粉煤图像和块煤图像进行了识别仿真.实验结果表明,用灰度相关矩阵各统计量作为粉煤图像和块煤图像的识别特征,成... 对粉煤图像和块煤图像灰度相关矩阵各统计量的数值进行了极差正规化处理,并分析了其统计量的分布特征.使用概率神经网络对粉煤图像和块煤图像进行了识别仿真.实验结果表明,用灰度相关矩阵各统计量作为粉煤图像和块煤图像的识别特征,成功地识别出了粉煤和块煤的图像. 展开更多
关键词 概率神经网络 粉煤图像 块煤图像 灰度相关矩阵
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