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Stroma classification for neuroblastoma on graphics processors

机译:图形处理器上神经母细胞瘤的基质分类

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摘要

Neuroblastoma is one of the most common childhood cancers. We are developing an image analysis system to assist pathologists in their prognosis. Since this system operates on relatively large-scale images and requires sophisticated algorithms, computerised analysis takes a long time to execute. In this paper, we propose a novel approach to benefit from high memory bandwidth and strong floating-point capabilities of graphics processing units. The proposed approach achieves a promising classification accuracy of 99.4% and an execution performance with a gain factor up to 45 times compared to hand-optimised C++ code running on the CPU.
机译:神经母细胞瘤是最常见的儿童期癌症之一。我们正在开发一种图像分析系统,以帮助病理学家进行预后。由于此系统在相对较大的图像上运行,并且需要复杂的算法,因此计算机分析需要很长时间才能执行。在本文中,我们提出了一种新颖的方法来利用图形处理单元的高内存带宽和强大的浮点功能。与在CPU上手动优化的C ++代码相比,该方法可实现99.4%的分类精度,并具有高达45倍的增益系数的执行性能。

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