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Simulation of medical ultrasound images using linear systems theory.

机译:使用线性系统理论模拟医学超声图像。

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摘要

Medical Ultrasonography provides an accurate real-time assessment of organs and systems without exposing the patient to harmful ionizing radiation. These features and the cost effectiveness of the procedure have made ultrasonography one of the most widely used diagnostic medical imaging modalities. The practice of ultrasound is expanding into diverse areas of clinical medicine, and as a result, there is an increasing demand for education and training in the use of ultrasound.; This project addresses a novel ultrasonographic simulation algorithm that has the ability to generate ultrasonograms from any position and orientation, from either the surface of or inside a virtual body. The algorithm is able to take as inputs the spatial location and ultrasound characteristics of the tissues and in turn produces images similar to true ultrasonograms with a frame rate comparable to real medical ultrasound instruments.; Initially, the trainee determines the location and orientation of the virtual transducer. From the obtained information, the simulator retrieves the necessary anatomic data from a segmented Visible Human dataset to localize the organs and tissues in the image plane. Then, just like real instruments, the ultrasound beams are emitted from the virtual transducer. Waves reflected from interfaces and speckle noise from subwavelength scatterers are calculated based on the linear systems theory, tissue properties, and the physics of ultrasound. In the case of high amplitude reflections, the simulator also processes the reverberations. The results pass through filters for time gain compensation and motion blur. After correcting for brightness and contrast, the image is displayed on a screen as the ultrasonogram of the volume under investigation. The simulator also labels the various structures in order to clarify the images under examination.; Statistical analyses of the images confirmed the similarity between the simulated and the real ultrasonograms. Frequency domain analyses also demonstrated identical frequency patterns between the simulated and real images. Each frame took 186.8 milliseconds on average to generate on a 2.0 GHz Pentium 4 system with 1 GB random access memory, which is comparable to real ultrasound instruments.; This study demonstrates the feasibility of creating simulated ultrasonograms for interactive training and education.
机译:医学超声检查可以对器官和系统进行准确的实时评估,而不会使患者受到有害的电离辐射。这些特征和该程序的成本效益使超声检查成为最广泛使用的诊断医学成像方法之一。超声的实践正在扩展到临床医学的各个领域,结果,对使用超声的教育和培训的需求不断增加。该项目解决了一种新颖的超声仿真算法,该算法具有从虚拟身体的表面或内部从任何位置和方向生成超声图的能力。该算法能够将组织的空间位置和超声特征作为输入,并进而以类似于真实医学超声仪器的帧频产生类似于真实超声图的图像。最初,受训人员确定虚拟传感器的位置和方向。从获得的信息中,模拟器从分段的“可见人类”数据集中检索必要的解剖数据,以在图像平面中定位器官和组织。然后,就像真实的仪器一样,超声波束从虚拟换能器发出。根据线性系统理论,组织特性和超声物理,计算从界面反射的波和来自亚波长散射体的斑点噪声。在高振幅反射的情况下,模拟器还会处理混响。结果通过用于时间增益补偿和运动模糊的滤波器。校正亮度和对比度后,图像以被检查体积的超声图显示在屏幕上。模拟器还标记了各种结构,以阐明检查中的图像。图像的统计分析证实了模拟和真实超声图之间的相似性。频域分析还显示了模拟图像与真实图像之间相同的频率模式。每一帧平均花费186.8毫秒,以在带有1 GB随机存取存储器的2.0 GHz Pentium 4系统上生成,这与真实的超声仪器相当。这项研究证明了为交互式培训和教育创建模拟超声检查图的可行性。

著录项

  • 作者

    Imani, Farzin.;

  • 作者单位

    University of Colorado Health Sciences Center.;

  • 授予单位 University of Colorado Health Sciences Center.;
  • 学科 Engineering Biomedical.; Health Sciences Radiology.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 54 p.
  • 总页数 54
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;预防医学、卫生学;
  • 关键词

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