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Visual saliency in video compression and transmission.

机译:视频压缩和传输中的视觉显着性。

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摘要

This dissertation explores the concept of visual saliency---a measure of propensity for drawing visual attention---and presents various novel methods for utilization of visual saliency in video compression and transmission. Specifically, a computationally-efficient method for visual saliency estimation in digital images and videos is developed, which approximates one of the most well-known visual saliency models. In the context of video compression, a saliency-aware video coding method is proposed within a region-of-interest (ROI) video coding paradigm. The proposed video coding method attempts to reduce attention-grabbing coding artifacts and keep viewers' attention in areas where the quality is highest. The method allows visual saliency to increase in high quality parts of the frame, and allows saliency to reduce in non-ROI parts. Using this approach, the proposed method is able to achieve the same subjective quality as competing state-of-the-art methods at a lower bit rate. In the context of video transmission, a novel saliency-cognizant error concealment method is presented for ROI-based video streaming in which regions with higher visual saliency are protected more heavily than low saliency regions. In the proposed error concealment method, a low-saliency prior is added to the error concealment process as a regularization term, which serves two purposes. First, it provides additional side information for the decoder to identify the correct replacement blocks for concealment. Second, in the event that a perfectly matched block cannot be unambiguously identified, the low-saliency prior reduces viewers' visual attention on the loss-stricken regions, resulting in higher overall subjective quality. During the course of this research, an eye-tracking dataset for several standard video sequences was created and made publicly available. This dataset can be utilized to test saliency models for video and evaluate various perceptually-motivated algorithms for video processing and video quality assessment.
机译:本文探讨了视觉显着性的概念-一种衡量视觉注意力倾向的方法-并提出了在视频压缩和传输中利用视觉显着性的各种新方法。具体而言,开发了一种计算效率高的数字图像和视频中视觉显着性估算方法,该方法近似了最著名的视觉显着性模型之一。在视频压缩的情况下,在关注区域(ROI)视频编码范例中提出了一种显着性的视频编码方法。提出的视频编码方法试图减少吸引注意力的编码伪像,并在质量最高的区域保持观众的注意力。该方法允许视觉显着性在框架的高质量部分中增加,并且允许显着性在非ROI部分中减小。使用这种方法,所提出的方法能够以较低的比特率实现与竞争的最新技术相同的主观质量。在视频传输的背景下,针对基于ROI的视频流,提出了一种新的显着性识别错误隐藏方法,其中具有较高视觉显着性的区域比具有低显着性的区域受到的保护更大。在提出的错误隐藏方法中,将低显着性先验作为正则化项添加到错误隐藏过程中,这有两个目的。首先,它为解码器提供了额外的辅助信息,以标识正确的替换块以进行隐藏。其次,在无法明确识别出完美匹配的区块的情况下,低显着性先验会减少观看者对遭受损失的区域的视觉注意力,从而提高总体主观质量。在这项研究过程中,创建了多个标准视频序列的眼动追踪数据集并公开提供给大家。该数据集可用于测试视频的显着性模型,并评估用于视频处理和视频质量评估的各种感知动机算法。

著录项

  • 作者

    Hadizadeh, Hadi.;

  • 作者单位

    Simon Fraser University (Canada).;

  • 授予单位 Simon Fraser University (Canada).;
  • 学科 Engineering Computer.;Computer Science.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 能源与动力工程;
  • 关键词

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