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An Introduction To Compressive Sampling

Emmanuel J. Candès; Michael B. Wakin · IEEE Signal Processing Magazine · 2008

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Conventional approaches to sampling signals or images follow Shannon's theorem: the sampling rate must be at least twice the maximum frequency present in the signal (Nyquist rate). In the field of data conversion, standard analog-to-digital converter (ADC) technology implements the usual quantized Shannon representation - the signal is uniformly sampled at or above the Nyquist rate. This article surveys the theory of compressive sampling, also known as compressed sensing or CS, a novel sensing/sampling paradigm that goes against the common wisdom in data acquisition. CS theory asserts that one can recover certain signals and images from far fewer samples or measurements than traditional methods use.

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APA 7

Candès, E. J. & Wakin, M. B. (2008). An Introduction To Compressive Sampling. https://doi.org/10.1109/msp.2007.914731

MLA

Candès, Emmanuel J, and Michael B. Wakin. "An Introduction To Compressive Sampling." 2008. https://doi.org/10.1109/msp.2007.914731.

Chicago

Candès, Emmanuel J. and Michael B. Wakin. 2008. "An Introduction To Compressive Sampling.". https://doi.org/10.1109/msp.2007.914731.

Harvard

Candès, E. J. and Wakin, M. B. 2008, An Introduction To Compressive Sampling, IEEE Signal Processing Magazine, available at: https://doi.org/10.1109/msp.2007.914731 [Accessed 8 Aug. 2026].

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Title
An Introduction To Compressive Sampling
Author / contributors
Emmanuel J. Candès; Michael B. Wakin
Publisher
IEEE Signal Processing Magazine
Publication year
2008
Language
English

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