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Superresolution applied to optical data storage systems

机译:超分辨率应用于光学数据存储系统

摘要

This dissertation investigates superresolution applications in optical data storage systems. The performance of standard and superresolving magneto-optic data storage system are quantified by scalar diffraction modeling and experiments. Classical resolution measures are reviewed. Background on superresolution definitions and their conceptual development in scanning optical microscopes, optical data storage, and image processing is presented. Figures of merit for quantifying the performance of the systems are reviewed, such as system transfer function, two-point response, focused spot size, and signal-to-noise ratio. The description of the scalar diffraction modeling used to simulate an optical data storage system is reviewed. Operation of the magneto-optic data storage system and tradeoffs of superresolving techniques are discussed. The signal and noise spatial distribution in the pupil of an optical data storage system are shown to be different. For a particular spatial frequency bandwidth, the signal and noise are concentrated in different regions of the pupil. This understanding allows the use of optical filters that partially equalize the system transfer function and increase the signal-to-noise ratio. The main superresolution techniques investigated are those that increase the transmission of the higher spatial frequencies, or equalize the system transfer function, without changing the system cutoff frequency. The optical methods used to achieve superresolution are amplitude and phase filters placed in strategic system locations. One location influences the properties of the focused spot such as the irradiance distribution and width of the central core. Another location does not change the focused spot at all, but does change the signal and noise properties of the system. Electronic filtering techniques are also used to increase the transmission of the high spatial frequencies. The amplitude and phase filter sensitivities to aberration are also investigated. Optical properties of a new laser diode are investigated. The new laser diode has potential superresolving properties that are inherent to the device. Potential application of this device in an optical data storage device is presented. Another method of increasing the transmission of higher spatial frequencies within the system bandwidth and beyond the system cutoff frequency is to use adaptive optical systems. Adaptive systems for optical data storage are also discussed.
机译:本文研究了超分辨率在光学数据存储系统中的应用。通过标量衍射建模和实验,对标准和超分辨磁光数据存储系统的性能进行了量化。古典分辨率的措施进行了审查。介绍了超分辨率定义及其在扫描光学显微镜,光学数据存储和图像处理中的概念发展的背景。回顾了量化系统性能的优值,例如系统传递函数,两点响应,聚焦光斑大小和信噪比。回顾了用于模拟光学数据存储系统的标量衍射模型的描述。讨论了磁光数据存储系统的操作和超分辨技术的权衡。光学数据存储系统的光瞳中的信号和噪声空间分布显示为不同。对于特定的空间频率带宽,信号和噪声集中在瞳孔的不同区域。这种理解允许使用滤光器,该滤光器可以部分均衡系统的传递函数并增加信噪比。研究的主要超分辨率技术是那些在不改变系统截止频率的情况下增加较高空间频率的传输或使系统传递函数相等的技术。用于实现超分辨率的光学方法是在战略系统位置放置振幅和相位滤波器。一个位置会影响聚焦点的属性,例如辐照度分布和中心核心的宽度。另一个位置根本不会改变聚焦点,但是会改变系统的信号和噪声属性。电子滤波技术也用于增加高空间频率的传输。还研究了振幅和相位滤波器对像差的敏感性。研究了新型激光二极管的光学特性。新的激光二极管具有该器件固有的潜在超分辨性能。介绍了该设备在光学数据存储设备中的潜在应用。增加系统带宽内和系统截止频率以外的更高空间频率的传输的另一种方法是使用自适应光学系统。还讨论了用于光学数据存储的自适应系统。

著录项

  • 作者

    Walker Edwin Parker;

  • 作者单位
  • 年度 1999
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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