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Model for partitioning the non-phytoplankton absorption coefficient of seawater in the ultraviolet and visible spectral range into the contributions of non-algal particulate and dissolved organic matter. Appl Opt. 2024 Jun 01; 63(16):4252-4270.
Kehrli MD, Stramski D, Reynolds RA, Joshi ID. PMID: 38856601.
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Estimation of chromophoric dissolved organic matter and non-algal particulate absorption coefficients of seawater in the ultraviolet by extrapolation from the visible spectral region. Opt Express. 2023 May 22; 31(11):17450-17479.
Kehrli MD, Stramski D, Reynolds RA, Joshi ID. PMID: 37381479.
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Characterization of suspended particulate matter in contrasting coastal marine environments with angle-resolved polarized light scattering measurements. Appl Opt. 2021 Dec 20; 60(36):11161-11179.
Koestner D, Stramski D, Reynolds RA. PMID: 35201105.
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Variability in Oceanic Particle Size Distributions and Estimation of Size Class Contributions Using a Non-parametric Approach. J Geophys Res Oceans. 2021 Dec; 126(12):e2021JC017946.
Reynolds RA, Stramski D. PMID: 35859706; PMCID: PMC9285521.
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3
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Polarized light scattering measurements as a means to characterize particle size and composition of natural assemblages of marine particles: erratum. Appl Opt. 2021 Jan 10; 60(2):380-382.
Koestner D, Stramski D, Reynolds RA. PMID: 33448962.
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Polarized light scattering measurements as a means to characterize particle size and composition of natural assemblages of marine particles: publisher's note. Appl Opt. 2020 Oct 10; 59(29):9233.
Koestner D, Stramski D, Reynolds RA. PMID: 33104635.
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Polarized light scattering measurements as a means to characterize particle size and composition of natural assemblages of marine particles. Appl Opt. 2020 Sep 20; 59(27):8314-8334.
Koestner D, Stramski D, Reynolds RA. PMID: 32976418.
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1 Fields:
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Evaluation of Particle Size Distribution Metrics to Estimate the Relative Contributions of Different Size Fractions Based on Measurements in Arctic Waters. J Geophys Res Oceans. 2020 Jun; 125(6):e2020JC016218.
Runyan H, Reynolds RA, Stramski D. PMID: 32728506; PMCID: PMC7380321.
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2
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A global compilation of in situ aquatic high spectral resolution inherent and apparent optical property data for remote sensing applications. Earth Syst Sci Data. 2020 May 19; 12(2):1123-1139.
Casey KA, Rousseaux CS, Gregg WW, Boss E, Chase AP, Craig SE, Mouw CB, Reynolds RA, Stramski D, Ackleson SG, Bricaud A, Schaeffer B, Lewis MR, Maritorena S. PMID: 36419961; PMCID: PMC9680849.
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1
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Optical characterization of marine phytoplankton assemblages within surface waters of the western Arctic Ocean. Limnol Oceanogr. 2019 Nov; 64(6):2478-2496.
Reynolds RA, Stramski D. PMID: 31894158; PMCID: PMC6919934.
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PubMed Mentions:
10
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Model for separating the contributions of non-algal particles and colored dissolved organic matter to light absorption by seawater. Appl Opt. 2019 May 10; 58(14):3790-3806.
Stramski D, Li L, Reynolds RA. PMID: 31158192.
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Light scattering by pure water and seawater: the depolarization ratio and its variation with salinity. Appl Opt. 2019 Feb 01; 58(4):991-1004.
Zhang X, Stramski D, Reynolds RA, Blocker ER. PMID: 30874148.
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3 Fields:
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An overview of approaches and challenges for retrieving marine inherent optical properties from ocean color remote sensing. Prog Oceanogr. 2018 Jan; 160:186-212.
Werdell PJ, McKinna LIW, Boss E, Ackleson SG, Craig SE, Gregg WW, Lee Z, Maritorena S, Roesler CS, Rousseaux CS, Stramski D, Sullivan JM, Twardowski MS, Tzortziou M, Zhang X. PMID: 30573929; PMCID: PMC6296493.
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PubMed Mentions:
21
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Effects of inelastic radiative processes on the determination of water-leaving spectral radiance from extrapolation of underwater near-surface measurements. Appl Opt. 2016 Sep 01; 55(25):7050-67.
Li L, Stramski D, Reynolds RA. PMID: 27607282.
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4 Fields:
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Correction of pathlength amplification in the filter-pad technique for measurements of particulate absorption coefficient in the visible spectral region. Appl Opt. 2015 Aug 01; 54(22):6763-82.
Stramski D, Reynolds RA, Kaczmarek S, Uitz J, Zheng G. PMID: 26368092.
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6 Fields:
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Deep-sea low-light radiometer system. Opt Express. 2014 Dec 01; 22(24):30074-91.
Haag JM, Roberts PL, Papen GC, Jaffe JS, Li L, Stramski D. PMID: 25606937.
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Translation:
Animals
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Shedding light on the sea: André Morel's legacy to optical oceanography. Ann Rev Mar Sci. 2014; 6:1-21.
Antoine D, Babin M, Berthon JF, Bricaud A, Gentili B, Loisel H, Maritorena S, Stramski D. PMID: 24015899.
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1 Fields:
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Modeling the effects of near-surface plumes of suspended particulate matter on remote-sensing reflectance of coastal waters. Appl Opt. 2013 Jan 20; 52(3):359-74.
Yang Q, Stramski D, He MX. PMID: 23338181.
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1 Fields:
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Determination of the volume scattering function of aqueous particle suspensions with a laboratory multi-angle light scattering instrument. Appl Opt. 2012 Jun 10; 51(17):3853-73.
Babin M, Stramski D, Reynolds RA, Wright VM, Leymarie E. PMID: 22695665.
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Modeling of wave-induced irradiance fluctuations at near-surface depths in the ocean: a comparison with measurements. Appl Opt. 2010 Feb 20; 49(6):1041-53.
You Y, Stramski D, Darecki M, Kattawar GW. PMID: 20174174.
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3 Fields:
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Small-scale effects of underwater bubble clouds on ocean reflectance: 3-D modeling results. Opt Express. 2009 Jul 06; 17(14):11747-52.
Piskozub J, Stramski D, Terrill E, Melville WK. PMID: 19582089.
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1 Fields:
Translation:
PHPublic Health
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Effects of a nonuniform vertical profile of chlorophyll concentration on remote-sensing reflectance of the ocean. Appl Opt. 2005 Mar 20; 44(9):1735-47.
Stramska M, Stramski D. PMID: 15813278.
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3 Fields:
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Influence of forward and multiple light scatter on the measurement of beam attenuation in highly scattering marine environments. Appl Opt. 2004 Aug 20; 43(24):4723-31.
Piskozub J, Stramski D, Terrill E, Melville WK. PMID: 15352398.
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Modeling the optical properties of mineral particles suspended in seawater and their influence on ocean reflectance and chlorophyll estimation from remote sensing algorithms. Appl Opt. 2004 Jun 10; 43(17):3489-503.
Wozniak SB, Stramski D. PMID: 15219032.
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7 Fields:
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PHPublic Health
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Estimation of scattering error in spectrophotometric measurements of light absorption by aquatic particles from three-dimensional radiative transfer simulations. Appl Opt. 2003 Jun 20; 42(18):3634-46.
Stramski D, Piskozub J. PMID: 12833969.
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5 Fields:
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Modeling the inherent optical properties of the ocean based on the detailed composition of the planktonic community. Appl Opt. 2001 Jun 20; 40(18):2929-45.
Stramski D, Bricaud A, Morel A. PMID: 18357311.
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18 Fields:
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Comparison of the ocean inherent optical properties obtained from measurements and inverse modeling. Appl Opt. 2001 May 20; 40(15):2384-97.
Loisel H, Stramski D, Mitchell BG, Fell F, Fournier-Sicre V, Lemasle B, Babin M. PMID: 18357247.
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1 Fields:
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Estimation of the inherent optical properties of natural waters from the irradiance attenuation coefficient and reflectance in the presence of Raman scattering. Appl Opt. 2000 Jun 20; 39(18):3001-11.
Loisel H, Stramski D. PMID: 18345226.
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4 Fields:
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Comparison of near-forward light scattering on oceanic turbulence and particles. Appl Opt. 1998 Jul 20; 37(21):4669-77.
Bogucki DJ, Domaradzki JA, Stramski D, Zaneveld JR. PMID: 18285924.
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Photometric immersion refractometry: a method for determining the refractive index of marine microbial particles from beam attenuation. Appl Opt. 1997 Jun 20; 36(18):4214-25.
Jonasz M, Fournier G, Stramski D. PMID: 18253449.
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Application of dynamic light scattering to the study of small marine particles: errata. Appl Opt. 1995 Jan 20; 34(3):571.
Stramski D, Sedlák M. PMID: 20963152.
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Application of dynamic light scattering to the study of small marine particles. Appl Opt. 1994 Jul 20; 33(21):4825-34.
Stramski D, Sedlák M. PMID: 20935859.
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2 Fields:
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Modeling the light attenuation and scattering by spherical phytoplanktonic cells: a retrieval of the bulk refractive index. Appl Opt. 1988 Oct 01; 27(19):3954-6.
Stramski D, Morel A, Bricaud A. PMID: 20539496.
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1 Fields: