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Real-time Retinex image enhancement: Algorithm and architecture optimizations.

机译:实时Retinex图像增强:算法和体系结构优化。

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摘要

The field of digital image processing encompasses the study of algorithms applied to two-dimensional digital images, such as photographs, or three-dimensional signals, such as digital video. Digital image processing algorithms are generally divided into several distinct branches including image analysis, synthesis, segmentation, compression, restoration, and enhancement. One particular image enhancement algorithm that is rapidly gaining widespread acceptance as a near optimal solution for providing good visual representations of scenes is the Retinex.; The Retinex algorithm performs a non-linear transform that improves the brightness, contrast and sharpness of an image. It simultaneously provides dynamic range compression, color constancy, and color rendition. It has been successfully applied to still imagery---captured from a wide variety of sources including medical radiometry, forensic investigations, and consumer photography. Many potential users require a real-time implementation of the algorithm. However, prior to this research effort, no real-time version of the algorithm had ever been achieved.; In this dissertation, we research and provide solutions to the issues associated with performing real-time Retinex image enhancement. We design, develop, test, and evaluate the algorithm and architecture optimizations that we developed to enable the implementation of the real-time Retinex specifically targeting specialized, embedded digital signal processors (DSPs). This includes optimization and mapping of the algorithm to different DSPs, and configuration of these architectures to support real-time processing.; First, we developed and implemented the single-scale monochrome Retinex on a Texas Instruments TMS320C6711 floating-point DSP and attained 21 frames per second (fps) performance. This design was then transferred to the faster TMS320C6713 floating-point DSP and ran at 28 fps. Then we modified our design for the fixed-point TMS320DM642 DSP and achieved an execution rate of 70 fps. Finally, we migrated this design to the fixed-point TMS320C6416 DSP. After making several additional optimizations and exploiting the enhanced architecture of the TMS320C6416, we achieved 108 fps and 20 fps performance for the single-scale, monochrome Retinex and three-scale, color Retinex, respectively. We also applied a version of our real-time Retinex in an Enhanced Vision System. This provides a general basis for using the algorithm in other applications.
机译:数字图像处理领域涵盖了应用于二维数字图像(例如照片)或三维信号(例如数字视频)的算法的研究。数字图像处理算法通常分为几个不同的分支,包括图像分析,合成,分段,压缩,恢复和增强。 Retinex是一种可以迅速获得广泛认可的特殊图像增强算法,它是一种用于提供场景的良好视觉表示的近乎最佳的解决方案。 Retinex算法执行非线性变换,可改善图像的亮度,对比度和清晰度。它同时提供动态范围压缩,色彩恒定性和色彩再现。它已成功应用于静止图像-从多种来源捕获,包括医学辐射测量,法医调查和消费者摄影。许多潜在用户需要算法的实时实现。但是,在进行这项研究之前,还没有实现该算法的实时版本。在本文中,我们研究并提供了与执行实时Retinex图像增强相关的问题的解决方案。我们设计,开发,测试和评估算法和体系结构优化,这些算法和体系结构优化是我们开发的,以实现专门针对专用嵌入式数字信号处理器(DSP)的实时Retinex的实现。这包括算法的优化和到不同DSP的映射,以及这些架构的配置以支持实时处理。首先,我们在德州仪器(TI)的TMS320C6711浮点DSP上开发并实现了单比例单色Retinex,并获得了每秒21帧(fps)的性能。然后将该设计转移到速度更快的TMS320C6713浮点DSP,并以28 fps的速度运行。然后,我们修改了定点TMS320DM642 DSP的设计,并实现了70 fps的执行速率。最后,我们将此设计迁移到定点TMS320C6416 DSP。在进行了几次其他优化并利用TMS320C6416的增强型体系结构之后,我们分别为单刻度单色Retinex和三刻度彩色Retinex实现了108 fps和20 fps的性能。我们还在增强视觉系统中应用了实时Retinex版本。这为在其他应用程序中使用该算法提供了一般基础。

著录项

  • 作者

    Hines, Glenn Derrick.;

  • 作者单位

    The College of William and Mary.;

  • 授予单位 The College of William and Mary.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 127 p.
  • 总页数 127
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术、计算机技术;
  • 关键词

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