基于不变矩的异常红细胞识别特征分析

D. Das, M. Ghosh, C. Chakraborty, Mallika Pal, A. Maity
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引用次数: 26

摘要

红细胞形态识别在地中海贫血和贫血的显微图像检测中非常重要。本研究旨在开发一种计算机辅助形状识别器,用于识别泪滴、棘细胞、卵泡细胞等异常形状。在这里,这种识别是使用胡矩和其他几何特征,然后是灰度阈值和标记控制的分水岭分割。对这些特征进行了统计评估,表明它们在区分上述异常形状和正常形状方面具有重要意义。结果发现,六个基于矩的特征是显著的。
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Invariant moment based feature analysis for abnormal erythrocyte recognition
Erythrocyte shape recognition is very important in the detection of thalassemia and anemia using microscopic images. This study aims to develop a computer aided shape recognizer for the recognition of abnormal shapes viz., tear drop, echinocyte, eliptocyte. Here such recognition is done using Hu's moments and other geometric features followed by gray level thresholding and marker controlled watershed segmentation. These features are statistically evaluated to show their significant in discriminating the mentioned abnormal and normal shapes. In the result, it is found that six moment based features are significant.
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