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Method and apparatus for compressive acquisition and recovery of dynamic imagery

机译:动态图像压缩采集与恢复的方法及装置

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摘要

A new framework for video compressed sensing models the evolution of the image frames of a video sequence as a linear dynamical system (LDS). This reduces the video recovery problem to first estimating the model parameters of the LDS from compressive measurements, from which the image frames are then reconstructed. We exploit the low-dimensional dynamic parameters (state sequence) and high-dimensional static parameters (observation matrix) of the LDS to devise a novel compressive measurement strategy that measures only the dynamic part of the scene at each instant and accumulates measurements over time to estimate the static parameters. This enables us to lower the compressive measurement rate considerably yet obtain video recovery at a high frame rate that is in fact inversely proportional to the length of the video sequence. This property makes our framework well-suited for high-speed video capture and other applications. We validate our approach with a range of experiments including classification experiments that highlight the purposive nature of our framework.
机译:视频压缩感测的新框架将视频序列的图像帧的演化建模为线性动力学系统(LDS)。这将视频恢复问题减少到首先从压缩测量中估算LDS的模型参数,然后从中重建图像帧。我们利用LDS的低维动态参数(状态序列)和高维静态参数(观测矩阵)来设计一种新颖的压缩测量策略,该策略仅在每个瞬间测量场景的动态部分,并随时间累积测量值,直到估计静态参数。这使我们能够显着降低压缩测量速率,但仍能以高帧速率获得视频恢复,而实际上却与视频序列的长度成反比。此属性使我们的框架非常适合高速视频捕获和其他应用程序。我们通过一系列实验来验证我们的方法,包括分类实验,这些实验突出了我们框架的目的性。

著录项

  • 作者

    Baraniuk Richard G.;

  • 作者单位
  • 年度 2011
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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