FPGA-accelerated 3D reconstruction using compressive sensing

Jianwen Chen, J. Cong, Ming Yan, Yi Zou
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引用次数: 24

Abstract

The radiation dose associated with computerized tomography (CT) is significant. Optimization-based iterative reconstruction approaches, e.g., compressive sensing provide ways to reduce the radiation exposure, without sacrificing image quality. However, the computational requirement such algorithms is much higher than that of the conventional Filtered Back Projection (FBP) reconstruction algorithm. This paper describes an FPGA implementation of one important iterative kernel called EM, which is the major computation kernel of a recent EM+TV reconstruction algorithm. We show that a hybrid approach (CPU+GPU+FPGA) can deliver a better performance and energy efficiency than GPU-only solutions, providing 13X boost of throughput than a dual-core CPU implementation.
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基于压缩感知的fpga加速三维重建
与计算机断层扫描(CT)相关的辐射剂量是显著的。基于优化的迭代重建方法,例如压缩感知,提供了在不牺牲图像质量的情况下减少辐射暴露的方法。然而,该算法的计算量远远高于传统的滤波后投影(FBP)重建算法。本文介绍了一种重要的迭代核EM的FPGA实现,EM是EM+TV重构算法的主要计算核。我们展示了混合方法(CPU+GPU+FPGA)可以提供比仅GPU解决方案更好的性能和能源效率,提供比双核CPU实现提高13倍的吞吐量。
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FPGA '22: The 2022 ACM/SIGDA International Symposium on Field-Programmable Gate Arrays, Virtual Event, USA, 27 February 2022 - 1 March 2022 HBM Connect: High-Performance HLS Interconnect for FPGA HBM. AutoBridge: Coupling Coarse-Grained Floorplanning and Pipelining for High-Frequency HLS Design on Multi-Die FPGAs. FPGA '21: The 2021 ACM/SIGDA International Symposium on Field Programmable Gate Arrays, Virtual Event, USA, February 28 - March 2, 2021 FPGA '20: The 2020 ACM/SIGDA International Symposium on Field-Programmable Gate Arrays, Seaside, CA, USA, February 23-25, 2020
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