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Effects of reconstruction filter and input parameter variability on object detectability in CT imaging.

机译:重建滤波器和输入参数变异性对CT成像中物体可检测性的影响。

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摘要

The purpose of this work is to investigate and quantify the effects of technical parameter variability and reconstruction algorithm on image quality and object detectability. To accomplish this, metrics of both noise and signal to noise ratio (SNR) are explored and then applied in object detection tasks using a computer aided diagnosis (CAD) system.;The noise power spectrum (NPS) is investigated as a noise metric in that it describes both the magnitude of noise and the spatial characteristics of noise that are introduced by the reconstruction algorithm. The NPS was found to be much more robust than the conventional standard deviation metric. The noise equivalent quanta (NEQ) is also studied as a tool for comparing effects of acquisition parameters (esp. mAs) on noise and, as NEQ is not influenced by reconstruction filter or other post-processing, its utility for comparison across different techniques and manufacturers is demonstrated.;The Ideal Bayesian Observer (IBO) and Non-Prewhitening Matched Filter (NPWMF) are investigated as SNR metrics under a variety of acquisition and reconstruction conditions. The signal and noise processes of image formation were studied individually, which allowed for analysis of their separate effects on the overall SNR. The SNR metrics were found to characterize the influence of reconstruction filter and technical parameter variability with high sensitivity.;To correlate the above SNR metrics with detection, signal images were combined with noise images and passed to a CAD system. A simulated lung nodule detection task was performed on a series of objects of increasing contrast. The average minimum contrast detected and corresponding IBO and NPWMF SNR values were recorded over 100 trials for each reconstruction filter and technical parameter condition studied. Among the trends discovered, it was found that detectability scales with SNR as mAs is varied. Furthermore, the CAD system appears to under-perform when sharp algorithms are used.;Conclusion. Robust noise metrics and SNR metrics were explored and applied under a variety of detections tasks. The results offer insight into both potential improvements for CAD, as well as for improving protocol design.
机译:这项工作的目的是调查和量化技术参数可变性和重建算法对图像质量和对象可检测性的影响。为此,探索了噪声和信噪比(SNR)的度量,然后使用计算机辅助诊断(CAD)系统将其应用于目标检测任务。;噪声功率谱(NPS)作为噪声度量进行了研究。它描述了噪声的大小和重构算法引入的噪声的空间特征。人们发现NPS比常规的标准偏差度量标准更健壮。还研究了噪声等效量(NEQ)作为比较采集参数(特别是mAs)对噪声的影响的工具,并且由于NEQ不受重构滤波器或其他后处理的影响,因此它可用于跨不同技术进行比较。在各种采集和重构条件下,将理想贝叶斯观测器(IBO)和非预白化匹配滤波器(NPWMF)作为SNR指标进行了研究。分别研究了图像形成的信号和噪声过程,从而可以分析它们对整体SNR的不同影响。发现SNR度量可以高灵敏度地表征重构滤波器和技术参数可变性的影响。为了将上述SNR度量与检测相关联,将信号图像与噪声图像进行组合并传递到CAD系统。对一系列对比度不断提高的物体执行了模拟的肺结节检测任务。对于每个重建滤波器和研究的技术参数条件,在100个试验中记录了检测到的平均最小对比度以及相应的IBO和NPWMF SNR值。在发现的趋势中,发现随着mAs的变化,SNR的可检测性范围也有所不同。此外,使用尖锐的算法时,CAD系统的性能似乎不佳。探索了鲁棒的噪声指标和SNR指标,并将其应用于各种检测任务。结果为深入了解CAD的潜在改进以及改进协议设计提供了见识。

著录项

  • 作者

    Boedeker, Kirsten L.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Physics Radiation.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 227 p.
  • 总页数 227
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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