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通过一维肌肉-骨骼系统传输的超声波的小波分解。

Wavelet decomposition of transmitted ultrasound wave through a 1-D muscle-bone system.

机构信息

Mathematics Department, United States Naval Academy, Annapolis, MD 21402, USA.

出版信息

J Biomech. 2011 Jan 11;44(2):352-8. doi: 10.1016/j.jbiomech.2010.10.030. Epub 2010 Nov 18.

Abstract

In the attempt for using ultrasound as a diagnostic device for osteoporosis, several authors have described the result of the in vitro experiment in which ultrasound is passed through a cancellous bone specimen placed in a water tank. However, in the in vivo setting, a patient's cancellous bone is surrounded by cortical and muscle layers. This paper considers in the one-dimensional case (1) what effect the cortical bone segments surrounding the cancellous segment would have on the received signal and (2) what the received signal would be when a source and receiver are placed on opposite sides of a structure consisting of a cancellous segment surrounded by cortical and muscle layers. Mathematically this is accomplished by representing the received signal as a sum of wavelets which go through different reflection-transmission histories at the muscle-cortical bone and cortical-cancellous bone interfaces. The muscle and cortical bone are modeled as elastic materials and the cancellous bone as a poroelastic material described by the Biot-Johnson-Koplik-Dashen model. The approach presented here permits the assessment of which possible paths of transmission and reflection through the cortical-cancellous or muscle-cortical-cancellous complex will result in significant contributions to the received waveform. This piece of information can be useful for solving the inverse problem of non-destructive assessment of material properties of bone. Our methodology can be generalized to three-dimensional parallelly layered structure by first applying Fourier transform in the directions perpendicular to the transverse direction.

摘要

在尝试将超声用作骨质疏松症的诊断设备时,有几位作者描述了将超声通过置于水箱中的松质骨标本进行体外实验的结果。然而,在体内环境中,患者的松质骨被皮质骨和肌肉层包围。本文考虑了一维情况(1)皮质骨段对接收信号的影响,以及(2)当源和接收器放置在由皮质和肌肉层包围的松质段组成的结构的相对侧时,接收信号是什么。在数学上,通过将接收信号表示为穿过肌肉-皮质骨和皮质-松质骨界面的不同反射-透射历史的小波之和来实现这一点。肌肉和皮质骨被建模为弹性材料,松质骨被 Biot-Johnson-Koplik-Dashen 模型描述为多孔弹性材料。这里提出的方法可以评估通过皮质-松质或肌肉-皮质-松质复合体的哪些可能的传输和反射路径将导致对接收波形的显著贡献。这些信息对于解决骨材料特性的无损评估的逆问题可能是有用的。我们的方法可以通过首先在垂直于横向的方向上应用傅里叶变换,推广到三维平行分层结构。

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