| Article ID | Journal | Published Year | Pages | File Type | 
|---|---|---|---|---|
| 7928005 | Optics Communications | 2016 | 7 Pages | 
Abstract
												Several techniques have been used with Shack-Hartmann wavefront sensors to determine the local wave-front gradient across each lenslet. While the centroid error of Shack-Hartmann wavefront sensor is relatively large since the skylight background and the detector noise. In this paper, we introduce a new method based on sparse representation to extract the target signal from the background and the noise. First, an over complete dictionary of the spot signal is constructed based on two-dimensional Gaussian model. Then the Shack-Hartmann image is divided into sub blocks. The corresponding coefficients of each block is computed in the over complete dictionary. Since the coefficients of the noise and the target are large different, then extract the target by setting a threshold to the coefficients. Experimental results show that the target can be well extracted and the deviation, RMS and PV of the centroid are all smaller than the method of subtracting threshold.
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											Authors
												Yanyan Zhang, Wentao Xu, Suting Chen, Junxiang Ge, Fayu Wan, 
											