, De plus, les reconstructions des jets stationnaires en utilisant moins de 36 visées ont été analysées en ne considérant qu'un seul jeu de données. Par exemple, avec 6 visées équiréparties

, Or, d'autres données ont été enregistrées et nous pouvons nous demander si une reconstruction en utilisant

, Enfin, les mesures effectuées dans la soufflerie S20 de l'Institut Saint-Louis n'ont pas été re

J. Brevet, F. Desse, and . Olchewsky, Interféromètre holographique numérique à deux faisceaux de référence pour analyser un milieu transparent, 2017.

J. Publications, F. Desse, and . Olchewsky, Digital holographic interferometry for analysing high-density gradients in fluid mechanics, Holographic Materials and Optical Systems, chapter 13, 2017.

J. Desse, P. Picart, and F. Olchewsky, Quantitative phase imaging in flows with high resolution holographic diffraction grating, Opt. Express, vol.23, issue.18, pp.23726-23737, 2015.
DOI : 10.1364/oe.23.023726

URL : https://hal.archives-ouvertes.fr/hal-01232405

F. Olchewsky, Z. Essaïdi, J. Desse, F. Nicolas, F. Champagnat et al., Reconstruction of 3d flows by digital holographic interferometry and differential interferometry, Journal of Visualization
DOI : 10.1364/dh.2017.th2a.3

H. Xia, S. Montresor, R. Guo, J. Li, F. Olchewsky et al., Robust processing of phase dislocations based on combined unwrapping and inpainting approaches, Opt. Lett, vol.42, issue.2, pp.322-325, 2017.
DOI : 10.1364/ol.42.000322

URL : https://hal.archives-ouvertes.fr/hal-01445617

F. Communications, J. Olchewsky, and . Desse, Applications originales de l'holographie numérique en mécanique des fluides, Congrès Francophone des Techniques Laser, 2016.

F. Olchewsky, J. Desse, and P. Picart, Réseau de diffraction pour holographie sans référence, CMOI-FLUVISU 2016, 2015.

F. Olchewsky, J. Desse, F. Nicolas, F. Champagnat, A. Plyer et al., 3d reconstruction of helium jet by multidirectional polarized white light differential interferometry, International Symposium on Flow Visualisation, 2016.

F. Olchewsky, J. Desse, and P. Picart, Off-axis digital holography spatial carrier frequency filtering, In Imaging and Applied Optics, pp.1-4, 2016.
DOI : 10.1364/dh.2016.dw1h.4

F. Olchewsky, Z. Essaïdi, J. Desse, F. Nicolas, F. Champagnat et al., Reconstruction de jets 3d par tomographie holographique numérique multidirectionnelle, vol.4, 2016.

F. Olchewsky, Z. Essaïdi, J. Desse, F. Nicolas, F. Champagnat et al., Comparaison de l'holographie numérique et de la strioscopie interférentielle utilisées pour la reconstruction des champs 3d de jets d'air et d'hélium, Congrès Francophone de Mécanique, 2017.

F. Olchewsky, Z. Essaïdi, J. Desse, F. Nicolas, F. Champagnat et al., Comparaison du champ 3d de masse volumique par holographie numérique et interférométrie à prisme de wollaston, CMOI-FLUVISU 2017, 2017.

F. Olchewsky, Z. Essaïdi, J. Desse, F. Nicolas, F. Champagnat et al., 3d gas density reconstruction using two optical techniques. comparison experiments and cfd simulation, ODAS, 2017.

F. Olchewsky, Z. Essaïdi, J. Desse, F. Nicolas, F. Champagnat et al., 3d gas density reconstruction by digital holographic interferometry, Digital Holography and ThreeDimensional Imaging, pp.2-3, 2017.
DOI : 10.1364/dh.2017.th2a.3

B. Bibliographie, I. Atcheson, W. Ihrke, A. Heidrich, D. Tevs et al., Timeresolved 3d capture of non-stationary gas flows, ACM Trans. Graph, vol.27, issue.5, pp.1-132, 2008.

D. Barada, T. Ochiai, T. Fukuda, S. Kawata, K. Kuroda et al., Dual-channel polarization holography : a technique for recording two complex amplitude components of a vector wave, Optics letters, vol.37, issue.21, pp.4528-4530, 2012.

J. M. Bioucas-dias and G. Valadao, Phase unwrapping via graph cuts, IEEE Transactions on Image processing, vol.16, issue.3, pp.698-709, 2007.
DOI : 10.1007/11492429_44

URL : http://repositorio.ual.pt/bitstream/11144/3718/3/Phase.pdf

M. M. Biss, G. S. Settles, M. E. Staymates, and S. R. Sanderson, Differential schliereninterferometry with a simple adjustable wollaston-like prism, Applied optics, vol.47, issue.3, pp.328-335, 2008.
DOI : 10.1364/ao.47.000328

M. Born and E. Wolf, Principles of Optics : Electromagnetic Theory of Propagation, Interference and Diffaction of Light, 1959.

G. M. Carlomagno, Schlieren interferometry in the mass diffusion of a two-dimensional jet, Experiments in fluids, vol.3, issue.3, pp.137-141, 1985.

S. Coëtmellec, D. Lebrun, and C. Özkul, Application of the two-dimensional fractional-order fourier transformation to particle field digital holography, J. Opt. Soc. Am. A, vol.19, issue.8, pp.1537-1546, 2002.

S. Dalziel, G. O. Hughes, and B. R. Sutherland, Whole-field density measurements by 'synthetic schlieren', Experiments in Fluids, vol.28, issue.4, pp.322-335, 2000.
DOI : 10.1007/s003480050391

R. Dändliker, R. Thalmann, and J. Willemin, Fringe interpolation by two-reference-beam holographic interferometry : reducing sensitivity to hologram misalignment, Optics Communications, vol.42, issue.5, pp.301-306, 1982.

P. J. De-groot, Holography : Just a fancy word for interferometry ?, Imaging and Applied Optics, pp.3-4, 2016.

L. Bibliographie, D. Denis, E. Lorenz, C. Thiébaut, D. Fournier et al., Inline hologram reconstruction with sparsity constraints, Opt. Lett, vol.34, issue.22, pp.3475-3477, 2009.

J. Desse, Recording and processing of interferograms by spectral characterization of the interferometric setup, Experiments in Fluids, vol.23, issue.4, pp.265-271, 1997.

J. M. Desse and J. C. Pegneaux, Direct Measurement of the Density Field Using High Speed Differential Interferometry, pp.368-372, 1992.
DOI : 10.1007/978-3-642-84824-7_64

J. Desse and P. Picart, Stochastic digital holography for visualizing inside strongly refracting transparent objects, Appl. Opt, vol.54, issue.1, pp.1-8, 2015.
DOI : 10.1364/ao.54.0000a1

URL : https://hal.archives-ouvertes.fr/hal-01082855

J. Desse, F. Albe, and J. Tribillon, Real-time color holographic interferometry, Applied optics, vol.41, issue.25, pp.5326-5333, 2002.
DOI : 10.1364/ao.41.005326

J. Desse, P. Picart, and P. Tankam, Digital color holography applied to fluid and structural mechanics, Optics and Lasers in Engineering, vol.50, issue.1, pp.18-28, 2012.
DOI : 10.1016/j.optlaseng.2011.06.018

R. Dole?ek, V. Kopeck`kopeck`y, P. Psota, and V. Lédl, Digital holographic setup for measurement of asymmetric temperature field and tomographic reconstruction, EPJ Web of Conferences, vol.48, p.3, 2013.

R. Dole?ek, P. Psota, V. Lédl, T. Vít, J. Václavík et al., Kopeck`y. General temperature field measurement by digital holography, Applied optics, vol.52, issue.1, pp.319-325, 2013.

R. Dolecek, P. Psota, V. Lédl, and T. Vít, Heat and mass transfer measurement using method of digital holographic tomography, Proceedings of the SPIE, vol.10151, p.151, 2016.

D. Donnarumma, A. Brodoline, D. Alexandre, and M. Gross, 4d holographic microscopy of zebrafish larvae microcirculation, Opt. Express, vol.24, issue.23, pp.26887-26900, 2016.
DOI : 10.1364/oe.24.026887

URL : https://hal.archives-ouvertes.fr/hal-01363227

R. Erbeck and W. Merzkirch, Speckle photographic measurement of turbulence in an air stream with fluctuating temperature, Experiments in Fluids, vol.6, issue.2, pp.89-93, 2004.

Z. Essaïdi, F. O. Leopold, F. Jagusinski, D. Klatt, P. Picart et al., Comparaison d'algorithmes de dépliement de phase dans le cas de forts gradients d'indice de réfraction, CMOI-FLUVISU 2017, 2017.

N. Fomin, E. Lavinskaya, and K. Takayama, Limited projections laser speckle tomography of complex flows, Optics and lasers in engineering, vol.44, issue.3, pp.335-349, 2006.

N. A. Fomin and E. F. Nogotov, Statistical analysis of turbulence by single-exposure speckle photography, Optical Science, Engineering and Instrumentation'97, pp.370-381, 1997.
DOI : 10.1117/12.279747

R. T. Frankot and R. Chellappa, A method for enforcing integrability in shape from shading algorithms, IEEE Transactions on pattern analysis and machine intelligence, vol.10, issue.4, pp.439-451, 1988.
DOI : 10.1109/34.3909

D. Gabor, A new microscopic principle, Nature, vol.161, issue.4098, pp.777-778, 1948.

I. Galametz, Visualisation et mesure de masse volumique dans un mélange gazeux en tube à choc, 1994.

D. C. Ghiglia and M. D. Pritt, Two-dimensional phase unwrapping : theory, algorithms, and software, vol.4, 1998.

M. J. Golay, Point arrays having compact, nonredundant autocorrelations, JOSA, vol.61, issue.2, pp.272-273, 1971.
DOI : 10.1364/josa.61.000272

E. Goldhahn and J. Seume, The background oriented schlieren technique : sensitivity, accuracy, resolution and application to a three-dimensional density field, Experiments in Fluids, vol.43, issue.23, pp.241-249, 2007.
DOI : 10.1007/s00348-007-0331-1

R. M. Goldstein, H. A. Zebker, and C. L. Werner, Satellite radar interferometry : Twodimensional phase unwrapping. Radio science, vol.23, pp.713-720, 1988.
DOI : 10.1029/rs023i004p00713

G. Gontier, Contribution à l'étude de l'interférométrie différentielle à biprisme de Wollaston, Number 338. Publications scientifiques et techniques du Ministère de l'air, 1957.

M. Hargather, Background-oriented schlieren diagnostics for large-scale explosive testing, Shock Waves, vol.23, issue.5, pp.529-536, 2013.
DOI : 10.1007/s00193-013-0446-7

C. Herman and E. Kang, Experimental visualization of temperature fields and study of heat transfer enhancement in oscillatory flow in a grooved channel, Heat and Mass Transfer, vol.37, issue.1, pp.87-99, 2001.

M. A. Herráez, D. R. Burton, M. J. Lalor, and M. A. Gdeisat, Fast two-dimensional phaseunwrapping algorithm based on sorting by reliability following a noncontinuous path, Applied Optics, vol.41, issue.35, pp.7437-7444, 2002.

H. P. Hiriyannaiah, X-ray computed tomography for medical imaging, IEEE Signal Processing Magazine, vol.14, issue.2, pp.42-59, 1997.

M. M. Hossain and C. Shakher, Temperature measurement in laminar free convective flow using digital holography, Applied optics, vol.48, issue.10, pp.1869-1877, 2009.
DOI : 10.1364/ao.48.001869

A. Bibliographie, M. Khmaladze, C. Kim, and . Lo, Phase imaging of cells by simultaneous dual-wavelength reflection digital holography, Optics express, vol.16, issue.15, pp.10900-10911, 2008.

A. Khmaladze, A. Restrepo-martínez, M. Kim, R. Castañeda, and A. Blandón, Simultaneous dual-wavelength reflection digital holography applied to the study of the porous coal samples, Applied optics, vol.47, issue.17, pp.3203-3210, 2008.

D. Khodadad, E. Amer, P. Gren, E. Melander, E. Hällstig et al., Single-shot dualpolarization holography : measurement of the polarization state of a magnetic sample, VI International Conference on Speckle Metrology, p.96601, 2015.

D. Khodadad, P. Bergström, E. Hällstig, and M. Sjödahl, Fast and robust automatic calibration for single-shot dual-wavelength digital holography based on speckle displacements, Applied optics, vol.54, issue.16, pp.5003-5010, 2015.
DOI : 10.1364/ao.54.005003

*. Ko and K. Kihm, An extended algebraic reconstruction technique (art) for density-gradient projections : laser speckle photographic tomography, experiments in fluids, vol.27, issue.6, pp.542-550, 1999.

J. Kühn, T. Colomb, F. Montfort, F. Charrière, Y. Emery et al., Real-time dual-wavelength digital holographic microscopy with a single hologram acquisition, Optics Express, vol.15, issue.12, pp.7231-7242, 2007.

F. Leopold, The application of the colored background oriented schlieren technique (cbos) to free-flight and in-flight measurements, Instrumentation in Aerospace Simulation Facilities, 2007. ICIASF 2007. 22nd International Congress on, pp.1-10, 2007.

F. Leopold, M. Ota, D. Klatt, and K. Maeno, Reconstruction of the unsteady supersonic flow around a spike using the colored background oriented schlieren technique, 2013.

T. Liu, W. Merzkirch, and K. Oberste-lehn, Optical tomography applied to speckle photographic measurement of asymmetric flows with variable density, Experiments in fluids, vol.7, issue.3, pp.157-163, 1988.

T. Maiman, Stimulated optical radiation in ruby, Nature, vol.187, issue.4736, pp.493-494, 1960.

P. Marquet, B. Rappaz, P. J. Magistretti, E. Cuche, Y. Emery et al., Digital holographic microscopy : a noninvasive contrast imaging technique allowing quantitative visualization of living cells with subwavelength axial accuracy, Opt. Lett, vol.30, issue.5, pp.468-470, 2005.
DOI : 10.1364/ol.30.000468

A. H. Meier and T. Roesgen, Improved background oriented schlieren imaging using laser speckle illumination, Experiments in fluids, vol.54, issue.6, p.1549, 2013.
DOI : 10.1007/s00348-013-1549-8

URL : http://doc.rero.ch/record/321930/files/348_2013_Article_1549.pdf

G. Meier, Computerized background-oriented schlieren, Experiments in Fluids, vol.33, issue.1, pp.181-187, 2002.
DOI : 10.1007/s00348-002-0450-7

W. Merzkirch, Flow Visualization, 1974.

T. Mizukaki, K. Wakabayashi, T. Matsumura, and K. Nakayama, Background-oriented schlieren with natural background for quantitative visualization of open-air explosions, Shock Waves, vol.24, issue.1, pp.69-78, 2014.
DOI : 10.1007/s00193-013-0465-4

F. Nicolas, Instantaneous density fields reconstruction by 3DBOS, application to complex flows in large windtunnel, 2017.

F. Nicolas, V. Todoroff, A. Plyer, G. L. Besnerais, D. Donjat et al., A direct approach for instantaneous 3d density field reconstruction from background-oriented schlieren (bos) measurements, Experiments in fluids, vol.57, issue.1, p.13, 2016.
DOI : 10.1007/s00348-015-2100-x

F. Nicolas, D. Donjat, O. Léon, G. L. Besnerais, F. Champagnat et al., 3d reconstruction of a compressible flow by synchronized multi-camera bos, Experiments in Fluids, vol.58, issue.5, p.46, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01664669

T. Ochiai, D. Barada, T. Fukuda, Y. Hayasaki, K. Kuroda et al., Angular multiplex recording of data pages by dual-channel polarization holography, Optics letters, vol.38, issue.5, pp.748-750, 2013.

S. Ostrach, An analysis of laminar free-convection flow and heat transfer about a flat plate paralled to the direction of the generating body force, 1953.

M. Ota, K. Hamada, H. Kato, and K. Maeno, Computed-tomographic density measurement of supersonic flow field by colored-grid background oriented schlieren (cgbos) technique. Measurement, Science and Technology, vol.22, issue.10, p.104011, 2011.
DOI : 10.1088/0957-0233/22/10/104011

D. Panteli?, L. Bla?i?, S. Savi?-?evi?, and B. Pani?, Holographic detection of a tooth structure deformation after dental filling polymerization, Journal of biomedical optics, vol.12, issue.2, pp.24026-024026, 2007.

Z. Papp and J. Kornis, Digital holography by two reference beams, Proc. Optical Engineering for Sensing and Noanotechnology, SPIE, vol.4416, pp.112-115, 2001.
DOI : 10.1117/12.427026

P. Picart and M. Malek, Système d'imagerie holographique auto-référence, 2014.

P. Picart, J. Leval, D. Mounier, and S. Gougeon, Some opportunities for vibration analysis with time averaging in digital fresnel holography, Appl. Opt, vol.44, issue.3, pp.337-343, 2005.
DOI : 10.1364/ao.44.000337

J. Radon, On the determination of functions from their integral values along certain manifolds, IEEE transactions on medical imaging, vol.5, issue.4, pp.170-176, 1986.

M. , Background-oriented schlieren (bos) techniques, Experiments in Fluids, vol.56, issue.3, p.60, 2015.

M. Raffel, C. Tung, H. Richard, Y. Yu, and G. Meier, Background oriented stereoscopic schlieren (boss) for full scale helicopter vortex characterization, International Symposium on Flow Visualization, vol.2, 2000.

G. Rajshekhar, S. S. Gorthi, and P. Rastogi, Simultaneous measurement of in-plane and outof-plane displacement derivatives using dual-wavelength digital holographic interferometry, Applied optics, vol.50, issue.34, pp.16-21, 2011.

N. Ramesh and W. Merzkirch, Combined convective and radiative heat transfer in side-vented open cavities, International journal of heat and fluid flow, vol.22, issue.2, pp.180-187, 2001.
DOI : 10.1016/s0142-727x(00)00080-1

H. Richard and M. Raffel, Principle and applications of the background oriented schlieren (bos) method, Measurement Science and Technology, vol.12, issue.9, p.1576, 2001.
DOI : 10.1088/0957-0233/12/9/325

O. Rodriguez, J. Desse, and J. Pruvost, Interaction between a supersonic hot jet and a coaxial supersonic flow, Aerospace science and technology, vol.1, issue.6, pp.369-379, 1997.
DOI : 10.1016/s1270-9638(97)90011-0

M. Saxild-hansen, Air tools-a matlab package for algebraic iterative reconstruction techniques, 2010.

N. T. Shaked, Using cell micro-manipulation for holographic imaging of the 3-d refractive index profiles of cells in suspension, In Imaging and Applied Optics, pp.4-7, 2016.

G. Smeets, Laser interferometer for high sensitivity measurements on transient phase objects, IEEE transactions on Aerospace and Electronic Systems, issue.2, pp.186-190, 1972.
DOI : 10.1109/taes.1972.309488

P. Smigielski, A. Hirth, and C. Thery, The application of holography to sonic boom investigations, IEEE Transactions on Aerospace and Electronic Systems, AES, vol.8, issue.6, pp.751-756, 1972.
DOI : 10.1109/taes.1972.309605

R. Snyder and L. Hesselink, Measurement of mixing fluid flows with optical tomography, Optics letters, vol.13, issue.2, pp.87-89, 1988.
DOI : 10.1364/ol.13.000087

W. Sun, J. Zhao, J. Di, Q. Wang, and L. Wang, Real-time visualization of karman vortex street in water flow field by using digital holography, Optics express, vol.17, issue.22, pp.20342-20348, 2009.

J. Surget, Holography set-up with two reference sources, vol.5, pp.201-217, 1974.
DOI : 10.1088/0335-7368/5/4/301

J. Surget and S. G. Duvant, Multipass holographic interferometry for low-density gas flow analysis, 19th Intl Congress on High-Speed Photography and Photonics, pp.65-72, 1991.

J. Surget, J. Delery, and J. Lacharme, Holographic interferometry applied to the metrology of gaseous flows, vol.136, pp.192-201, 1978.
DOI : 10.1117/12.956158

T. Tahara, A. Maeda, Y. Awatsuji, K. Nishio, S. Ura et al., Parallel phase-shifting dual-illumination phase unwrapping, Optical Review, vol.19, issue.6, pp.366-370, 2012.
DOI : 10.1007/s10043-012-0059-x

K. Takayama, Application of holographic interferometry to shock wave research, 1983 International Techincal Conference/Europe, pp.174-180, 1983.
DOI : 10.1117/12.935372

B. H. Timmerman, Holographic interferometric tomography for unsteady compressible flows, 1997.
DOI : 10.1117/12.221533

V. Todoroff, Mesure d'un champ de masse volumique par Background Oriented Schlieren 3d. Etude d'un dispositif expérimental et des méthodes de traitement pour la résolution du problème inverse, 2013.
URL : https://hal.archives-ouvertes.fr/tel-01020975

S. Velghe, J. Primot, N. Guérineau, M. Cohen, and B. Wattellier, Wave-front reconstruction from multidirectional phase derivatives generated by multilateral shearing interferometers, Optics letters, vol.30, issue.3, pp.245-247, 2005.
DOI : 10.1364/ol.30.000245

L. Venkatakrishnan and G. Meier, Density measurements using the background oriented schlieren technique, Experiments in Fluids, vol.37, issue.2, pp.237-247, 2004.
DOI : 10.1007/s00348-004-0807-1

URL : http://nal-ir.nal.res.in/718/1/MyBOSPaper.pdf

C. S. Vikram, Holographic recording of moving objects, vol.3, p.305, 1972.
DOI : 10.1088/0029-4780/3/6/302

M. Wang, K. Wang, W. Zhang, M. Zheng, and J. Wu, Noise suppression with double image spectrum extraction and hadamard calculation in digital holography, Optics Communications, vol.353, pp.6-9, 2015.
DOI : 10.1016/j.optcom.2015.05.007

J. Zhao, J. Di, B. Wu, J. Wang, Q. Wang et al., Visual and dynamic measurement of temperature fields by use of digital holographic interferometry, Optical Measurement Systems for Industrial Inspection VIII, vol.8788, 2013.