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Performance-optimized clinical IMRT planning on modern CPUs

机译:在现代CPU上性能优化的临床IMRT计划

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Intensity modulated treatment plan optimization is a computationally expensive task. The feasibility of advanced applications in intensity modulated radiation therapy as every day treatment planning, frequent re-planning for adaptive radiation therapy and large-scale planning research severely depends on the runtime of the plan optimization implementation. Modern computational systems are built as parallel architectures to yield high performance. The use of GPUs, as one class of parallel systems, has become very popular in the field of medical physics. In contrast we utilize the multi-core central processing unit (CPU), which is the heart of every modern computer and does not have to be purchased additionally. In this work we present an ultra-fast, high precision implementation of the inverse plan optimization problem using a quasi-Newton method on pre-calculated dose influence data sets. We redefined the classical optimization algorithm to achieve a minimal runtime and high scalability on CPUs. Using the proposed methods in this work, a total plan optimization process can be carried out in only a few seconds on a low-cost CPU-based desktop computer at clinical resolution and quality. We have shown that our implementation uses the CPU hardware resources efficiently with runtimes comparable to GPU implementations, at lower costs.
机译:强度调节治疗计划的优化是一项计算量巨大的任务。作为日常治疗计划,适应性放射治疗的频繁重新计划以及大规模计划研究的强度调制放射治疗高级应用的可行性,在很大程度上取决于计划优化实施的运行时间。现代计算系统被构建为并行架构以产生高性能。作为并行系统的一类,GPU的使用在医学物理学领域变得非常流行。相比之下,我们利用了多核中央处理器(CPU),它是每台现代计算机的核心,无需额外购买。在这项工作中,我们使用准牛顿法对预先计算的剂量影响数据集提出了超快速,高精度的逆计划优化问题实施方案。我们重新定义了经典的优化算法,以在CPU上实现最小的运行时间和高可伸缩性。使用这项工作中提出的方法,可以在几秒钟内在基于临床分辨率和质量的低成本基于CPU的台式计算机上执行总体计划优化过程。我们已经表明,我们的实现以较低的成本有效地利用了CPU硬件资源,并且运行时可与GPU实现相比。

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