基于统计特征提取的乳房x线照片早期癌症检测

M. Vidhya, N. Sangeetha, M. N. Vimalkumar, K. Helenprabha
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引用次数: 8

摘要

乳腺癌是妇女死亡的主要原因之一。乳房x光检查是早期发现乳腺癌最有效的方法。在某些情况下,放射科医生很难在乳房x光片上发现典型的诊断征象,如肿块和微钙化,因为图像通常是半透明的,对比度很低。本文提出了一种基于滤波和多级小波分解的数字乳房x线图像噪声抑制和增强方法,以早期检测到的肿瘤图像为参考。通过均值、方差、标准差、熵和绝对偏差均值提取增强乳房x线图像的特征,并将这些值作为参考值。对待测乳房x线图像进行滤波、多层小波增强等处理,并计算统计值。最后通过比较参考值和检测值对肿瘤进行检测,并计算出检出率。因此,这种方法提供了更好的准确性,因为即使在癌症的初始阶段也可以检测到。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Early stage detection of cancer in mammogram using statistical feature extraction
Breast cancer is one of the leading causes of mortality among women. Mammogram is the most effective method for early detection of breast cancer. In some cases, it is difficult for radiologists to detect the typical diagnostic signs such as masses and micro calcifications on the mammograms because the images are usually translucent and have low contrast. In our proposed method a filtering and multilevel wavelet decomposition method for noise suppression and enhancement in digital mammographic images is done by taking cancer detected image at initial stage as reference. The features extracted by mean, variance, standard deviation, entropy and mean of absolute deviation is calculated for the enhanced mammographic image and these values are taken as reference values. The mammographic image which is under test is taken and the process such as filtering, multilevel wavelet enhancement is done and the statistical values are calculated. Finally the process of detecting cancer is done by comparing the reference values and test values and the detection rate is calculated. Thus this method gives a better accuracy because even in the initial stage the cancer can be detected.
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