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The application of Compressive Sensing technique on a stationary surveillance camera system

机译:压缩传感技术在固定式监控摄像头系统中的应用

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Compressive Sensing (CS) is a recently emerged signal processing method. It shows that when a signal is sparse in a certain basis, it can be recovered from a small number of random measurements made on it. In this work, we investigate the possibility of utilizing CS to sample the video stream acquired by a fixed surveillance camera in order to reduce the amount of data transmitted. For every 15 continuous video frames, we select the first frame in the video stream as the reference frame. Then for each following frame, we compute the difference between this frame and its preceding frame, resulting in a difference frame, which can be represented by a small number of measurement samples. By only transmitting these samples, we greatly reduce the amount of transmitted data. The original video stream can still be effectively recovered. In our simulations, SPGL1 method is used to recover the original frame. Two different methods, random measurement and 2D Fourier transform, are used to make the measurements. In our simulations, the Peak Signal-to-Noise Ratio (PSNR) ranges from 28.0dB to 50.9dB, depending on the measurement method and number of measurement used, indicating good recovery quality. Besides a good compression rate, the CS technique has the properties of being robust to noise and easily encrypted which all make CS technique a good candidate for signal processing in communication.
机译:压缩感测(CS)是最近出现的信号处理方法。它表明,当信号在一定基础上稀疏时,可以从对它进行的少量随机测量中恢复出来。在这项工作中,我们研究了利用CS采样固定监视摄像机采集的视频流的可能性,以减少传输的数据量。对于每15个连续视频帧,我们选择视频流中的第一帧作为参考帧。然后,对于每个下一个帧,我们计算该帧与其前一帧之间的差,从而得到一个差帧,该差帧可以由少量的测量样本表示。通过仅传输这些样本,我们大大减少了传输的数据量。原始视频流仍然可以有效地恢复。在我们的仿真中,使用SPGL1方法恢复原始帧。使用两种不同的方法进行随机测量和2D傅里叶变换。在我们的仿真中,峰值信噪比(PSNR)的范围从28.0dB到50.9dB,具体取决于测量方法和使用的测量次数,表明恢复质量良好。除了良好的压缩率外,CS技术还具有抗噪声和易于加密的特性,所有这些使CS技术成为通信中信号处理的理想选择。

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