Open Access
| Issue |
J. Eur. Opt. Society-Rapid Publ.
Volume 22, Number 1, 2026
Recent Advances on Optics and Photonics 2026
|
|
|---|---|---|
| Article Number | 15 | |
| Number of page(s) | 7 | |
| DOI | https://doi.org/10.1051/jeos/2026006 | |
| Published online | 05 March 2026 | |
- Ulrich M, Steger C, A camera model for cameras with hypercentric lenses and some example applications, Mach. Vision Appl. 30, 1013–1028. [Google Scholar]
- Schnars U, Falldorf C, Watson J, Jüptner W, Computational wavefield sensing, in Digital holography and wavefront sensing: principles, techniques and applications (2015), pp. 141–184. [Google Scholar]
- Ozcan A, McLeod E, Lensless imaging and sensing, Ann Rev. Biomed. Eng. 18, 77–102 (2016). [Google Scholar]
- Boominathan V, Robinson JT, Waller L, Veeraraghavan A, Recent advances in lensless imaging, Optica 9, 1–16 (2022). [CrossRef] [PubMed] [Google Scholar]
- Falldorf C, Müller AF, Pazos BG-C, Bich JA, Bergmann RB, Current progress in lensless holographic microscopy, 3D Imag. Visual. Display (SPIE, 2025) 13465, 19–26 (2025). [Google Scholar]
- Moon I, Javidi B, Volumetric three-dimensional recognition of biological microorganisms using multivariate statistical method and digital holography, J. Biomed. Opt. 11, 064004–064004 (2006). [Google Scholar]
- Kim J, Go T, Lee SJ, Volumetric monitoring of airborne particulate matter concentration using smartphone-based digital holographic microscopy and deep learning, J. Hazard. Mater. 418, 126351 (2021). [Google Scholar]
- Pazos BG-C, Falldorf C, Bergmann RB, Lensless sideways imaging with digital holography for in-line process monitoring in additive manufacturing, in Multimodal Sensing and Artificial Intelligence for Sustainable Future 13570, 196–202 (2025). [Google Scholar]
- Colomb T, et al., (2010) Extended depth-of-focus by digital holographic microscopy, Opt. Lett. 35, 1840–1842. [Google Scholar]
- Pedrini G, Schedin S, Tiziani HJ, Aberration compensation in digital holographic reconstruction of microscopic objects, J. Modern Opt. 48, 1035–1041 (2001). [Google Scholar]
- Gao P, Yuan C, Resolution enhancement of digital holographic microscopy via synthetic aperture: a review, Light Adv. Manuf. 3, 105–120 (2022). [Google Scholar]
- Falldorf C, Luepke SH-V, Von Kopylow C, Bergmann RB, Reduction of speckle noise in multiwavelength contouring, Appl. Opt. 51, 8211–8215 (2012). [Google Scholar]
- Bianco V, et al., Quasi noise-free digital holography, Light Sci. Appl. 5, e16142 (2016). [Google Scholar]
- Schnars U, Falldorf C, Parallax limitations in digital holography: a phase space approach, Light Adv. Manuf. 3, 400–407 (2022). [Google Scholar]
- Min J, et al., Simple and fast spectral domain algorithm for quantitative phase imaging of living cells with digital holographic microscopy, Opt. Lett. 42, 227–230 (2017). [Google Scholar]
- Wu Y, Ozcan A, Lensless digital holographic microscopy and its applications in biomedicine and environmental monitoring, Methods 136, 4–16 (2018). [Google Scholar]
- Kumar M, et al., Single-shot common-path off-axis digital holography: applications in bioimaging and optical metrology, Appl. Opt. 60, A195–A204 (2020). [Google Scholar]
- Osten W, Ferraro P, Optical Inspection of Microsystems , Second Edition, (CRC Press, 2019), pp. 405–484. [Google Scholar]
- Fratz M, Seyler T, Bertz A, Carl D, Digital holography in production: an overview, Light Adv. Manuf 2, 283–295 (2021). [Google Scholar]
- Falldorf C, Thiemicke F, Müller AF, Agour M, Bergmann RB, Flash-profilometry: fullfield lensless acquisition of spectral holograms for coherence scanning profilometry, Opt. Expr. 31, 27494–27507 (2023). [Google Scholar]
- Kim S, Jeon J, Kim Y, Sugita N, Mitsuishi M, Design and assessment of phase-shifting algorithms in optical interferometer, Int. J. Precis. Eng. Man-GT 10, 611–634 (2023). [Google Scholar]
- Hack E, Burke J, Invited review article: measurement uncertainty of linear phase-stepping algorithms, Rev. Sci. Instrum. 82, 061101 (2011). [Google Scholar]
- Guo C-S, Zhang L, Wang H-T, Liao J, Zhu Y, Phase-shifting error and its elimination in phase-shifting digital holography, Opt. Lett. 27, 1687–1689 (2002). [NASA ADS] [CrossRef] [Google Scholar]
- Carré P, Installation et utilisation du comparateur photoélectrique et in terférentiel du Bureau International des Poids et Mesures, Metrologia 2, 13 (1966). [Google Scholar]
- Müller AF, Bergmann RB, Falldorf C, High resolution lensless microscopy based on Fresnel propagation, Opt. Eng. 63, 111805 (2024). [Google Scholar]
- Bianco V, et al. Strategies for reducing speckle noise in digital holography. Light Sci. Appl. 7, 48 (2018). [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.
