RUS  ENG
Полная версия
ЖУРНАЛЫ // Компьютерная оптика

Компьютерная оптика, 2023, том 47, выпуск 5, страницы 725–733 (Mi co1173)

Компьютерное моделирование дифракционных изображающих линз с использованием гиперспектральных изображений
С. И. Харитонов, В. А. Фурсов

Список литературы

1. Davis A, Kuhnlenz DF, “Optical design using Fresnel lenses. Basic principles and some practical examples”, Optik und Photonik, 2:4 (2007), 52–55  crossref
2. Thieme J, “Theoretical investigations of imaging properties of zone plates using diffraction theory”, X-Ray Microscopy II, eds. Sayre D, Kirz J, Howells M, Rarback H, Springer-Verlag, Berlin, Heidelberg, 1988, 70–79  crossref
3. Takeuchi A, Uesugi K, Suzuki Y, Tamura S, Kamijo N, “High-resolution X-ray imaging microtomography with Fresnel zone plate optics at SPring-8”, Proc 8th Int Conf X-ray Microscopy IPAP Conf Series, 7 (2005), 360–362
4. Heide F, Rouf M, Hullin MB, Labitzke B, Heidrich W, Kolb A, “High-quality computational imaging through simple lenses”, ACM Trans Graph, 32:5 (2013), 149  crossref
5. Genevet P, Capasso F, Aieta F, Khorasaninejad M, Devlin R, “Recent advances in planar optics: from plasmonic to dielectric metasurfaces”, Optica, 4:1 (2017), 139–152  crossref
6. Computer design of diffractive optics, ed. Soifer VA, Woodhead Publishing Ltd, 2012
7. Kazanskii NL, Khonina SN, Skidanov RV, Morozov A, Kharitonov SI, Volotovskiy SG, “Formation of images using multilevel diffractive lens”, Computer Optics, 38:3 (2014), 425–434  crossref
8. Skidanov RV, Doskolovich LL, Ganchevskaya SV, Blank VA, Podlipnov VV, Kazanskiy NL, “Experiment with a diffractive lens with a fixed focus position at several given wavelengths”, Computer Optics, 44:1 (2020), 22–28  crossref
9. Evdokimova VV, Petrov MV, Klyueva MA, Zybin EY, Kosianchuk VV, Mishchenko IB, Novikov VM, Selvesiuk NI, Ershov EI, Ivliev NA, Skidanov RV, Kazanskiy NL, Nikonorov AV, “Deep learning-based video stream reconstruction in mass-production diffractive optical systems”, Computer Optics, 45:1 (2021), 130–141  crossref
10. Kharitonov S, Fursov V, “Computer simulation of image formation by diffraction lens”, Optical Memory and Neural Networks, 31:1 (2022), S31–S37  crossref  mathscinet
11. Bobrov ST, Greisukh GI, Tyrkevich YuG, Optics of diffractive elements and systems, “Mashinostroenie” Publisher, Leningrad, 1986 (in Russian)
12. Greisukh GI, Bobrov ST, Stepanov SA, Optics of diffractive and gradient-index elements and systems, SPIE Press, Bellingham, 1997
13. Golub MA, Doskolovich LL, Kazanskiy NL, Kharitonov SI, Soifer VA, “Computer generated diffractive multi-focal lens”, J Mod Opt, 39:6 (1992), 1245–1251  crossref
14. Kazanskiy NL, “Modeling diffractive optics elements and devices”, Proc SPIE, 10774 (2018), 107740O  crossref
15. Kazanskiy N, Ivliev N, Podlipnov V, Skidanov R, “An airborne Offner imaging hyperspectrometer with radially-fastened primary elements”, Sensors, 20:12 (2020), 3411  crossref
16. Rastorguev AA, Kharitonov SI, Kazanskiy NL, “Modeling of image formation with a space-borne Offner hyperspectrometer”, Computer Optics, 44:1 (2020), 12–21  crossref
17. Rastorguev AA, Kharitonov SI, Kazanskiy NL, “Numerical simulation of the performance of a spaceborne Offner imaging hyperspectrometer in the wave optics approximation”, Computer Optics, 46:1 (2022), 56–64  crossref


© МИАН, 2025