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Design and performance assessment of correlationudfilters for the detection of objects in high clutterudthermal imagery

机译:相关性的设计和性能评估 ud用于检测高杂波中物体的滤波器 ud热图像

摘要

The research reported in this thesis has examined means of enhancing the performance of the Optimal Trade-off Maximum Average Correlation Height (OT-MACH) filter for target detection in Forward Looking Infra-Red (FLIR) imagery acquired from a helicopter and border security FLIR camera in northern Kuwait. The data acquired with these FLIR sensors allows real-world evaluation of the comparative performance of the various filters that have been developed in the thesis. The results obtained have been quantified using well known performance measures such as Peak to Side-lobe Ratio (PSR) and Total Detection Error (TDE). The initial focus was to study the effect of modifying the OT-MACH parameters on the correlation metrics. A new optimisation technique has been presented, which computes statistically the filter alpha parameter associated with controlling the response of the filter to clutter noise. A further modification of the OT-MACH filter performance using the Difference of Gaussian bandpass filter (named the D-MACH filter) as a pre-processing stage has been described. The D-MACH has been applied to several test images containing single and multiple targets in the scene. Enhanced performance of the modified filter is demonstrated with improved metrics being obtained with less false side peaks in the correlation plane, especially when multiple targets are present in the test images.ududA further pre-processing technique was investigated using the Rayleigh distribution as a pre-processing filter (named the R-MACH filter). The R-MACH filter has been appliedudto multiple target types with tests conducted across various image data sets. The filter demonstrated an improvement over the Difference of Gaussian filter in terms of 6 reducing the number of parameters needing to be tuned whilst producing further enhanced correlation plane metrics.ududFinally, recommendations for future work has been made to improve the use of the OT-MACH filter in target detection and identification. A novel training image representation is proposed for further investigation, which will minimise the computational intensity of using the MACH filter for unconstrained object recognition.
机译:本文报道的研究已经研究了增强从直升机和边界安全FLIR获取的前视红外(FLIR)图像中用于目标检测的最佳折衷最大平均相关高度(OT-MACH)滤波器的性能的方法。相机在科威特北部。用这些FLIR传感器获取的数据可以对本文中开发的各种滤波器的比较性能进行实际评估。使用众所周知的性能指标(例如峰旁瓣比(PSR)和总检测误差(TDE))对获得的结果进行了量化。最初的重点是研究修改OT-MACH参数对相关度量的影响。提出了一种新的优化技术,该技术可以统计地计算与控制滤波器对杂波噪声的响应相关的滤波器alpha参数。已经描述了使用高斯差带通滤波器(称为D-MACH滤波器)作为预处理阶段对OT-MACH滤波器性能的进一步修改。 D-MACH已应用于场景中包含单个和多个目标的多个测试图像。改进后的滤波器的性能得到了提高,在相关平面中出现了较少的误边峰,从而获得了改进的指标,特别是当测试图像中存在多个目标时。 ud ud使用瑞利分布作为预处理过滤器(称为R-MACH过滤器)。 R-MACH滤镜已应用于多种目标类型,并在各种图像数据集上进行了测试。该滤波器展示了对高斯滤波器的改进,减少了6个参数,需要调整的参数数量却产生了进一步增强的相关平面度量。 ud ud最后,针对未来工作提出了一些建议,以改进对高斯滤波器的使用。 OT-MACH过滤器用于目标检测和识别。提出了一种新颖的训练图像表示以供进一步研究,这将最小化使用MACH滤波器进行无约束对象识别的计算强度。

著录项

  • 作者

    Alkandri Ahmad;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
  • 中图分类

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