About DCS-AMP
DCS-AMP is a Bayesian message passing algorithm that solves the dynamic compressed sensing (DCS) problem, in which a time-varying vector of noisy measurements, y(t), is acquired from a time-varying sparse signal vector, x(t), through the linear measurement process
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Benefits of DCS-AMP:
- DCS-AMP works really quickly, especially in high-dimensions!
- Performs soft estimation and support detection
- Model parameters learned automatically from data
- Performs near theoretical bounds for many problems
- Support for implicit matrix operators, e.g., FFTs
DCS-AMP has been implemented in MATLAB, and has been shown to work extremely quickly, requiring only simple matrix-vector products to perform its computations. Click here to try it out.