新型多路复用器使阵列医学成像系统的多模块成像具有可调的高空间分辨率和预定显示带宽。

P Sharma, A H Titus, B Qu, Y Huang, W Wang, A Kuhls-Gilcrist, A N Cartwright, D R Bednarek, S Rudin
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引用次数: 3

摘要

我们描述了一种定制的多模块多路复用集成电路(MMMIC),它使基于成像模块的离散电子倍增电荷耦合器件(EMCCD)的组合能够改善医学成像系统。非常希望有灵活的成像系统,在特定的感兴趣区域(ROI)和足够大的视野(FOV)上提供高空间分辨率,以涵盖临床感兴趣的区域。此外,这样的系统应该是动态的,即应该能够保持一个指定的采集带宽,而不管成像视场的大小。MMMIC通过以下方式实现了这些目标:1)对成像模块阵列的输出进行多路复用,以实现更大的视场;2)支持多种分帧模式,以实现可调的高空间分辨率;3)支持在阵列中选择模块子集,以在预定的显示带宽下实现ROI成像。MMMIC设计还允许连接多个MMMIC来控制更大的阵列。原型MMMIC是通过MOSIS (www.mosis.org)在ON-SEMI 0.5μm CMOS工艺中设计和制造的。它有三个12位输入、一个12位输出、三个输入启用位和一个输出启用位,因此一个MMMIC可以控制来自三个离散成像仪阵列的输出。MMMIC的模块化设计使四个相同的芯片以两级顺序排列连接,可以读取3×3单个成像模块的集合。第一阶段包括三个MMMIC(每个MMMIC连接到三个单独的成像模块),第二阶段是一个MMMIC,其12位输出随后通过CameraLink接口发送到系统计算机。MMMIC原型已成功通过两个基于emccd的探测器的数字输出进行测试,该探测器将用于x射线成像阵列探测器系统。最后,我们展示了MMMIC如何用于扩展成像系统,以包括任何任意(M×N)成像模块阵列,从而实现大视场以及ROI成像和可调的高空间分辨率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Novel Multiplexer to Enable Multiple-Module Imaging with Adjustable High Spatial Resolution and Predetermined Display Bandwidth for Array Medical Imaging Systems.

We describe a custom multiple-module multiplexer integrated circuit (MMMIC) that enables the combination of discrete Electron multiplying charge coupled devices (EMCCD) based imaging modules to improve medical imaging systems. It is highly desirable to have flexible imaging systems that provide high spatial resolution over a specific region of interest (ROI) and a field of view (FOV) large enough to encompass areas of clinical interest. Also, such systems should be dynamic, i.e. should be able to maintain a specified acquisition bandwidth irrespective of the size of the imaged FOV. The MMMIC achieves these goals by 1) multiplexing the outputs of an array of imaging modules to enable a larger FOV, 2) enabling a number of binning modes for adjustable high spatial resolution, and 3) enabling selection of a subset of modules in the array to achieve ROI imaging at a predetermined display bandwidth. The MMMIC design also allows multiple MMMICs to be connected to control larger arrays. The prototype MMMIC was designed and fabricated in the ON-SEMI 0.5μm CMOS process through MOSIS (www.mosis.org). It has three 12-bit inputs, a single 12-bit output, three input enable bits, and one output enable, so that one MMMIC can control the output from three discrete imager arrays. The modular design of the MMMIC enables four identical chips, connected in a two-stage sequential arrangement, to readout a 3×3 collection of individual imaging modules. The first stage comprises three MMMICs (each connected to three of the individual imaging module), and the second stage is a single MMMIC whose 12-bit output is then sent via a CameraLink interface to the system computer. The prototype MMMIC was successfully tested using digital outputs from two EMCCD-based detectors to be used in an x-ray imaging array detector system.Finally, we show how the MMMIC can be used to extend an imaging system to include any arbitrary (M×N) array of imaging modules enabling a large FOV along with ROI imaging and adjustable high spatial resolution.

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