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Tumor Classification on Mammographies Based on BPNN and Sobel Filter

机译:基于BPNN和Sobel滤波的乳腺肿瘤分类

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摘要

Breast cancer is a very common disease and the cause of death of many people. It has been proven that prevention decreases the death rate, but the costs of diagnosis and image processing are very high when applied to all the population with potential risk. This paper studies an existent computer aided diagnosis method using neural network and improves its detection success rate from 60% to 73%. This improvement is achieved due to the use of image and statistical operators over concentric regions around the tumor boundaries.
机译:乳腺癌是一种非常常见的疾病,也是许多人死亡的原因。已经证明预防可以降低死亡率,但是将其应用于所有具有潜在风险的人群时,诊断和图像处理的成本非常高。本文研究了一种现有的利用神经网络的计算机辅助诊断方法,并将其检测成功率从60%提高到73%。由于在肿瘤边界周围的同心区域上使用了图像和统计算子,因此实现了这一改进。

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    University of Buenos Aires, School of Engineering, Intelligent Systems Laboratory Paseo Colon 850, (C1063ACV) Buenos Aires, Argentina;

    University of Buenos Aires, School of Engineering, Intelligent Systems Laboratory Paseo Colon 850, (C1063ACV) Buenos Aires, Argentina University of La Plata, Computer Science School. PhD Program Calles 50 y 120, (B1900) La Plata, Buenos Aires. Argentina;

    University of La Plata, Computer Science School. PhD Program Calles 50 y 120, (B1900) La Plata, Buenos Aires. Argentina;

    University of Buenos Aires, School of Engineering, Intelligent Systems Laboratory Paseo Colon 850, (C1063ACV) Buenos Aires, Argentina University of La Plata, Computer Science School. PhD Program Calles 50 y 120, (B1900) La Plata, Buenos Aires, Argentina;

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  • 正文语种 eng
  • 中图分类 计算技术、计算机技术;
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