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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >Kalman-Based Real-Time Functional Decomposition for the Spectral Calibration in Swept Source Optical Coherence Tomography
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Kalman-Based Real-Time Functional Decomposition for the Spectral Calibration in Swept Source Optical Coherence Tomography

机译:基于Kalman的扫描源光学相干断层扫描中的光谱校准的实时功能分解

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摘要

This paper presents a real-time functional decomposition adaptive algorithm for the optimal sampling of the interferometric signal in Swept-Source Optical Coherence Tomography imaging systems, which completely eliminates the input signal dependent nonlinearities that are problematic in current state-of-the-art OCT realizations that use interpolation and resampling. The proposed adaptive calibration algorithm uses the Kalman approach to estimate the wavenumber index parameter k from the Mach-Zender Interferometer signal which is then applied to an adaptive level crossing sampler to generate a sampling clock that k-linearizes the data on real-time during the sampling process. Such a system implements an artifact-free realization of the technology removing the need for classical interpolation and resampling. The new real-time linearization scheme has the additional capability of increasing the imaging acquisition speed by 10X while providing robustness to noise, properties that are demonstrated through mathematical analysis and simulation results throughout the paper.
机译:本文提出了一种实时功能分解自适应算法,用于扫描源光学相干断层摄影系统中的干涉信号的最佳采样,这完全消除了当前最先进的OCT中存在问题的输入信号依赖性非线性使用插值和重采样的实现。所提出的自适应校准算法使用卡尔曼方法来估计来自马赫纺织干涉仪信号的波数索引参数k,然后将波浪管道参数k应用于自适应级联采样器,以生成k-lixearize在实时数据的采样时钟抽样过程。这种系统实现了无需仿制古典插值和重采样的技术的无伪影实现。新的实时线性化方案具有将成像采集速度提高10倍的额外能力,同时为噪声提供稳健性,通过综述通过数学分析和仿真结果证明的特性。

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