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An FPGA Based Coprocessor for the Classification of Tissue Patterns in Prostatic Cancer

机译:基于FPGA的前列腺癌组织类型分类协处理器

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This paper discusses the suitability of reconfigurable computing to speedup medical image classification problems. As an example of the speedup offered by reconfigurable logic, a multispectral computer vision system for automatic diagnosis of prostatic cancer is implemented. Different parallel architectures for various steps in automatic diagnosis are proposed and implemented in Field Programmable Gate Arrays (FPGAs). The first step of the algorithm is to compute Grey Level Cooccurrence Matrix (GLCM). The second step involves the normalisation of GLCM. The third step of the algorithm is to compute texture features from the normalised GLCM. The last step is concerned with image classification using linear discriminant analysis (LDA). Finally, the performance of the proposed system is assessed and compared against a microprocessor based solution. The results obtained clearly show that the proposed solution compares favorably.
机译:本文讨论了可重构计算对加速医学图像分类问题的适用性。作为可重构逻辑提供的加速的一个示例,实现了一种用于自动诊断前列腺癌的多光谱计算机视觉系统。在现场可编程门阵列(FPGA)中提出并实现了用于自动诊断中各个步骤的不同并行体系结构。该算法的第一步是计算灰度共生矩阵(GLCM)。第二步涉及GLCM的标准化。该算法的第三步是从归一化的GLCM计算纹理特征。最后一步涉及使用线性判别分析(LDA)进行图像分类。最后,对所提出系统的性能进行评估,并与基于微处理器的解决方案进行比较。所获得的结果清楚地表明,所提出的解决方案具有可比性。

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