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Enhanced accuracy of breast cancer detection in digital mammograms using wavelet analysis

机译:使用小波分析增强了数字乳房X线照片中乳腺癌检测的准确性

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About every minute a woman dies out of breast cancer, worldwide. The need for early detection cannot be overstated. Towards this, mammography is a boon for both early detection and screening of breast cancer tumors. It is an imaging system that uses low dose x-rays for examining the breasts, by the electrons reflected from the tissues. The use of screening mammography is associated with the detection of breast cancer at an earlier stage and smaller size, resulting in a reduction in mortality. This study was aimed at enhancing the current accuracy (diagnostic) of digital mammograms using industry standard simulation software tool, MATLAB and the MIAS dataset. The technique involves identification of tumor cells to segment them in terms of different stages of the disease. We consider the process of object detection, recognition and classification of mammograms with the aim of differentiating between normal and abnormal (benign or cancerous) cells. It is reported that dense breasts can make traditional mammograms more difficult to interpret. Although newer digital mammography techniques claim for better detection in dense breast tissues, the availability of such expensive digital mammograms is not widespread. This problem can be minimized by analyzing different breast structures (mammograms) using the MATLAB numerical analysis software for image processing applications. The results indicated up to 91% accuracy, compared to 70% at present. Our proposed solution has proved to be an effective way of detecting breast cancer early in different types of breast tissues.
机译:关于每分钟的一分钟,一个女人在全球乳腺癌中死亡。早期检测的需要不能夸大。为此,乳房X线照相术是一种乳腺癌肿瘤早期检测和筛选的遗址。它是一种使用从组织反射的电子使用低剂量X射线来检查乳房的成像系统。使用筛选乳房X线照相术与在较早阶段的乳腺癌和较小尺寸的检测相关,导致死亡率降低。本研究旨在使用行业标准仿真软件工具,MATLAB和MIS数据集提高数字乳房X线图的当前准确性(诊断)。该技术涉及鉴定肿瘤细胞以在疾病的不同阶段对它们进行分割。我们考虑对象检测,识别和分类的过程,目的是区分正常和异常(良性或癌症)细胞。据报道,密集的乳房可以使传统的乳房X线照片更难以解释。虽然较新的数字乳房X线摄影技术索赔用于更好地检测致密乳房组织,但这种昂贵的数字乳房X线照片的可用性并不普遍。通过使用MATLAB数值分析软件进行图像处理应用来分析不同的乳房结构(乳房X光),可以最小化该问题。结果表明,精度高达91%,目前为70%。我们所提出的解决方案已被证明是在不同类型的乳腺组织中早期检测乳腺癌的有效方法。

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