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基于数字信号处理器的光学断层扫描动态成像系统。

Digital-signal-processor-based dynamic imaging system for optical tomography.

作者信息

Lasker Joseph M, Masciotti James M, Schoenecker Matthew, Schmitz Christoph H, Hielscher Andreas H

机构信息

Department of Biomedical Engineering, Columbia University, 351 Engineering Terrace MC8904, New York, NY 10027, USA.

出版信息

Rev Sci Instrum. 2007 Aug;78(8):083706. doi: 10.1063/1.2769577.

Abstract

In this article, we introduce a dynamic optical tomography system that is, unlike currently available analog instrumentation, based on digital data acquisition and filtering techniques. At the core of this continuous wave instrument is a digital signal processor (DSP) that collects, collates, processes, and filters the digitized data set. The processor is also responsible for managing system timing and the imaging routines which can acquire real-time data at rates as high as 150 Hz. Many of the synchronously timed processes are controlled by a complex programmable logic device that is also used in conjunction with the DSP to orchestrate data flow. The operation of the system is implemented through a comprehensive graphical user interface designed with LABVIEW software which integrates automated calibration, data acquisition, data organization, and signal postprocessing. Performance analysis demonstrates very low system noise (approximately 1 pW rms noise equivalent power), excellent signal precision (<0.04%-0.2%) and long term system stability (<1% over 40 min). A large dynamic range (approximately 190 dB) accommodates a wide scope of measurement geometries and tissue types. First experiments on tissue phantoms show that dynamic behavior is accurately captured and spatial location can be correctly tracked using this system.

摘要

在本文中,我们介绍了一种动态光学层析成像系统,该系统与目前可用的模拟仪器不同,它基于数字数据采集和滤波技术。这种连续波仪器的核心是一个数字信号处理器(DSP),它收集、整理、处理和过滤数字化数据集。该处理器还负责管理系统定时以及成像程序,这些程序能够以高达150Hz的速率采集实时数据。许多同步定时过程由一个复杂的可编程逻辑器件控制,该器件也与DSP配合使用以协调数据流。系统的操作通过使用LABVIEW软件设计的综合图形用户界面来实现,该界面集成了自动校准、数据采集、数据组织和信号后处理。性能分析表明系统噪声非常低(约1 pW rms噪声等效功率),信号精度极佳(<0.04%-0.2%),并且系统具有长期稳定性(40分钟内<1%)。较大的动态范围(约190 dB)可适应广泛的测量几何形状和组织类型。对组织模型的首次实验表明,使用该系统可以准确捕捉动态行为并正确跟踪空间位置。

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