Single-pixel imaging by means of Fourier spectrum acquisition
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Summary
Direct, high-quality single-pixel imaging in the presence of noisy environmental illumination is demonstrated by acquiring their Fourier spectrum by using phase-shifting sinusoid structured illumination for the spectrum acquisition.
- Type
- article
- Published
- 2015-02-04
- Cited by
- 659
- References
- 17
- Access
- Open access
- OpenAlex
- https://openalex.org/W2059479071
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:205334989
Keywords
Computer science, Computer vision, Pixel, Artificial intelligence, Noise (video)
References
- Multibeam interferometric illumination as the primary source of resolution in optical microscopy
- Differential ghost imaging.
- Compressive light transport sensing
- 3D Computational Imaging with Single-Pixel Detectors
- DMD-based LED-illumination Super-resolution and optical sectioning microscopy
- Fast full-color computational imaging with single-pixel detectors.
- Compressive Dual Photography
- "Two-Photon" coincidence imaging with a classical source.
- Compressive ghost imaging
- Flexible 3-D shape measurement using projector defocusing.
- Optical imaging by means of two-photon quantum entanglement.
- Single-pixel imaging via compressive sampling
- Surpassing the lateral resolution limit by a factor of two using structured illumination microscopy
- Normalized ghost imaging
- Dual photography
- PRINCIPLES OF OPTICS
- Computational ghost imaging
- Normalized ghost imaging
Cited by
- Motionless volumetric photoacoustic microscopy with spatially invariant resolution
- Computational ghost imaging with designed low spatial frequency masks.
- Broadband high-resolution terahertz single-pixel imaging.
- Fourier computational ghost imaging using spectral sparsity and conjugation priors
- Noninvasive, near-field terahertz imaging of hidden objects using a single-pixel detector
- Hyperspectral Computational Ghost Imaging via Temporal Multiplexing
- Edge detection based on gradient ghost imaging.
- Multispectral imaging using a single bucket detector
- High-resolution computational ghost diffraction with shaped incoherent sources and its applicability in coherent diffraction imaging
- Coloured computational imaging with single-pixel detectors based on a 2D discrete cosine transform
- Miniature Compressive Ultra-spectral Imaging System Utilizing a Single Liquid Crystal Phase Retarder
- Single-pixel Broadcast Imaging
- Hyperspectral Compressive Single-Pixel Imager for Fluorescence Lifetime Sensing
- Compressive adaptive ghost imaging via sharing mechanism and fellow relationship.
- Improving the signal-to-noise ratio of single-pixel imaging using digital microscanning.
- Three-dimensional single-pixel imaging with far fewer measurements than effective image pixels.
- Efficient single pixel imaging in Fourier space
- Computational imaging with a balanced detector
- Study on the algorithm of computational ghost imaging based on discrete fourier transform measurement matrix
- Adaptive Basis Scan by Wavelet Prediction for Single-Pixel Imaging
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