首页> 外文会议>IEEE International Conference on Acoustics, Speech and Signal Processing;ICASSP 2009 >Inflating compressed samples: A joint source-channel coding approach for noise-resistant compressed sensing
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Inflating compressed samples: A joint source-channel coding approach for noise-resistant compressed sensing

机译:膨胀压缩样本:用于抗噪声压缩感测的联合源通道编码方法

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Recently, a lot of research has been done on compressed sensing, capturing compressible signals using random linear projections to a space of radically lower dimension than the ambient dimension of the signal. The main impetus of this is that the radically dimension-lowering linear projection step can be done totally in analog hardware, in some cases even in constant time, to avoid the bottleneck in sensing and quantization steps where a large number of samples need to be sensed and quantized in short order, mandating the use of a large number of fast expensive sensors and A/D converters. Reconstruction algorithms from these projections have been found that come within distortion levels comparable to the state of the art in lossy compression algorithms. This paper considers a variation on compressed sensing that makes it resistant to spiky noise. This is achieved by an analog real-field error-correction coding step. It results in a small asymptotic overhead in the number of samples, but makes exact reconstruction under spiky measurement noise, one type of which is the salt and pepper noise in imaging devices, possible. Simulations are performed that corroborate our claim and in fact substantially improve reconstruction under unreliable sensing characteristics and are stable even under small perturbations with Gaussian noise.
机译:最近,在压缩感测方面进行了许多研究,使用随机线性投影捕获可压缩信号的空间要比信号的环境尺寸小得多。这样做的主要动力是,在某些情况下,甚至在恒定的时间里,完全可以在模拟硬件中完成大幅降低尺寸的线性投影步骤,从而避免了需要感测大量样本的感测和量化步骤的瓶颈并以短期顺序进行量化,从而要求使用大量快速昂贵的传感器和A / D转换器。已经发现来自这些投影的重建算法处于失真水平内,该失真水平与有损压缩算法中的现有技术水平相当。本文考虑了压缩感测的一种变体,使其可以抵抗尖峰噪声。这是通过模拟实场纠错编码步骤实现的。这样可以减少样本数量的渐近开销,但可以在尖峰的测量噪声下进行精确重建,其中一种可能是成像设备中的盐和胡椒噪声。进行的仿真证实了我们的主张,并且实际上大大改善了在不可靠的传感特性下的重构,并且即使在高斯噪声的小扰动下也很稳定。

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