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GPU-based stochastic-gradient optimization for non-rigid medical image registration in time-critical applications

机译:基于GPU的随机梯度优化技术,用于时间紧迫的应用中的非刚性医学图像配准

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摘要

Currently, non-rigid image registration algorithms are too computationally intensive to use in time-critical applications. Existing implementations that focus on speed typically address this by either parallelization on GPU-hardware, or by introducing methodically novel techniques into CPU-oriented algorithms. Stochastic gradient descent (SGD) optimization and variations thereof have proven to drastically reduce the computational burden for CPU-based image registration, but have not been successfully applied in GPU hardware due to its stochastic nature. This paper proposes 1) NiftyRegSGD, a SGD optimization for the GPU-based image registration tool NiftyReg, 2) random chunk sampler, a new random sampling strategy that better utilizes the memory bandwidth of GPU hardware. Experiments have been performed on 3D lung CT data of 19 patients, which compared NiftyRegSGD (with and without random chunk sampler) with CPU-based elastix Fast Adaptive SGD (FASGD) and NiftyReg. The registration runtime was 21.5s, 4.4s and 2.8s for elastix-FASGD, NiftyRegSGD without, and NiftyRegSGD with random chunk sampling, respectively, while similar accuracy was obtained.
机译:当前,非刚性图像配准算法的计算量太大,以致于在时间紧迫的应用中无法使用。现有的注重速度的实现通常通过在GPU硬件上并行化或将有条理的新技术引入面向CPU的算法来解决此问题。随机梯度下降(SGD)优化及其变体已被证明可以大大减少基于CPU的图像配准的计算负担,但由于其随机性,尚未成功应用于GPU硬件。本文提出1)NiftyRegSGD,这是针对基于GPU的图像配准工具NiftyReg的SGD优化; 2)随机块采样器,这是​​一种新的随机采样策略,可以更好地利用GPU硬件的内存带宽。已经对19位患者的3D肺部CT数据进行了实验,将NiftyRegSGD(带有和不带有随机块采样器)与基于CPU的elastix快速自适应SGD(FASGD)和NiftyReg进行了比较。对于elastix-FASGD,不带NiftyRegSGD和带随机块采样的NiftyRegSGD,注册运行时间分别为21.5s,4.4s和2.8s,同时获得了相似的准确性。

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