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The effectiveness of combining the likelihood maps of different filters in improving detection of calcification objects

机译:组合不同过滤器的似然图对改进钙化对象检测的有效性

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Breast cancer is the most prevalent form of cancer diagnosed in women. Mammograms offer the best option in detecting the disease early, which allows early treatment and by implication, a favorable prognosis. This study looks to combine the Wavelet, Median, Gaussian and a Finite Impulse Response filters for the task of detecting Malignant and Benign calcifications, which are among the primary indicators of breast cancer in digital Mammograms. These filters individually detect calcifications to varying degrees of success, but also create artifacts especially along the boundaries of curvilinear structures. They are combined in a way that improves overall detection, while diminishing their individual side effects. An Entropy-based thresholding technique is finally used to segment the calcifications from the background. Experimental results show that the proposed model achieves a 100% detection rate, which shows the effectiveness of combining the likelihood maps from various filters in detecting calcification objects.
机译:乳腺癌是女性中最常见的癌症。乳房X线照片可提供早期发现疾病的最佳选择,从而可以及早治疗,并暗示良好的预后。这项研究旨在将小波,中值,高斯和有限冲激响应滤波器相结合,以检测恶性和良性钙化,这是数字乳腺X线照片中乳腺癌的主要指标之一。这些过滤器分别检测钙化程度不同的成功程度,但也会产生伪像,尤其是沿着曲线结构的边界。它们以改善整体检测的方式结合在一起,同时减少了其各自的副作用。最终,基于熵的阈值技术被用于从背景中分割钙化。实验结果表明,该模型达到了100%的检测率,显示了结合各种过滤器的似然图来检测钙化对象的有效性。

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