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Real-time dual-mode standard/complex Fourier-domain OCT system using graphics processing unit accelerated 4D signal processing and visualization

机译:实时双模标准/复杂傅立叶域OCT系统,使用图形处理单元加速4D信号处理和可视化

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摘要

We realized a real-time dual-mode standard/complex Fourier-domain optical coherence tomography (FD-OCT) system using graphics processing unit (GPU) accelerated 4D (3D+time) signal processing and visualization. For both standard and complex FD-OCT modes, the signal processing tasks were implemented on a dual-GPUs architecture that included X,-to-k spectral re-sampling, fast Fourier transform (FFT), modified Hilbert transform, logarithmic-scaling, and volume rendering. The maximum A-scan processing speeds achieved are >3,000,000 line/s for the standard 1024-pixel-FD-OCT, and >500,000 line/s for the complex 1024-pixel-FD-OCT. Multiple volume-rendering of the same 3D data set were preformed and displayed with different view angles. The GPU-acceleration technique is highly cost-effective and can be easily integrated into most ultrahigh speed FD-OCT systems to overcome the 3D data processing and visualization bottlenecks.
机译:我们使用图形处理单元(GPU)加速的4D(3D + time)信号处理和可视化,实现了实时双模标准/复杂傅立叶域光学相干层析成像(FD-OCT)系统。对于标准FD-OCT模式和复杂FD-OCT模式,信号处理任务均在双GPU架构上实现,该架构包括X到k的频谱重采样,快速傅里叶变换(FFT),改进的希尔伯特变换,对数缩放,和体积渲染。对于标准的1024像素FD-OCT,实现的最大A扫描处理速度为> 3,000,000线/秒,对于复杂的1024像素FD-OCT,则为> 500,000线/秒。执行相同3D数据集的多个体积渲染,并以不同的视角显示。 GPU加速技术具有很高的成本效益,可以轻松地集成到大多数超高速FD-OCT系统中,以克服3D数据处理和可视化瓶颈。

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