Absorption coefficients by coloured detrital and dissolved organic matter from a global surface water in-situ collection at the first eight bands of and matched to the Ocean Land Colour Imager (OLCI)

DOI

This data set of absorption coefficients by coloured detrital and dissolved organic matter at the first eight Ocean Land Colour Imager (OLCI) bands (centred at 400 nm 412.5 nm, 442.5 nm, 490 nm, 510 nm, 560 nm, 620 nm, 665 nm, abbreviated as aCDM(400), aCDM(412), aCDM(443), aCDM(490), aCDM(510), aCDM(560), aCDM(620), and aCDM(665)) consists of different data sets gathered together in situ from measurements collected in open, coastal, and inland szrface waters spread around the globe and covering the time from first data delivery by OLCI on S3A in May 2016 until November 2022 which were matched to Ocean Land Colour Imager on Sentinel-3A and -3B and used in the paper by Bracher et al. (2025). We only used coincident hyperspectral absorption coefficients by non-algal particulates and coloured dissolved organic matter derived from measurements on discrete water samples to ensure a similar method procedure followed and a similar uncertainty. These coincident measurements were summed up to calculate aCDM(λ). The collection includes the matched OLCI aCDOM products and the publicly available data and newly collected, measured and analysed data sets from the Phytooptics group at the Alfred Wegener Institute Helmholtz Centre for Polar and Marine Research (AWI, PI: Astrid Bracher) and Hellenic Centre for Marine Research (HCMR, PI: Andrew C. Banks). The data collection was matched that in situ data points had to fall within the 3x3 OLCI FR pixel box and a time window of + 12 hours which followed established community protocols (IOCCG 2018) and particularly EUMETSAT's OLCI matchup protocol (EUMETSAT 2022). Firstly, a pre-processing for quality control and a conversion of the considered in situ data to a common format following Valente et al. (2022) was performed. We flagged and disregarded the following data from the final quality-controlled data set which had (1) unrealistic or missing date or geographic coordinate fields, (2) poor quality (e.g., original flags) or method of observation that did not meet the criteria for the dataset (e.g., not defined in the community protocols (IOCCG 2018, 2019a, 2019b), and (3) spuriously high or low data. For the last item, the following limits were imposed: [0.0001–10] m−1 for aCDM(443). OLCI pixels were discarded when flagged with the recommended flags in (EUMETSAT 2022), and the remaining matchups were only considered valid if more than 50% of satellite pixels were available at remote sensing reflectance centred at band 560 nm (Rrs(560), e.g., 5 out of 9 for the 3x3 criterion) per an in situ data point, and a coefficient of variation <0.2. Dedicated matchup software developed by EUMETSAT was used to ensure that the validation process followed the established guidelines, ThoMaS (the Tool to generate Matchups of OC products with S3 OLCI https://gitlab.eumetsat.int/eumetlab/oceans/ocean-science-studies/ThoMaS). The aCDM(λ) data provided in hyperspectral resolution (1nm, 2nm or around 3.3 nm resolution) were transformed to the nominal OLCI bands by averaging over the specific bandwidth, following Zibordi et al. (2023). The OLCI matchup data, based on their associated RRS data at the first eight OLCI bands, were assigned to the specific optical water classes (OWCs) according to the Mélin & Vantrepotte (2015) classification. This contains 17 OWCs which range from very turbid to (OWC 1) oligotrophic to very clear waters (OWC 17). The OWC is also delivered for each matchup point (if the assignment fails the field contains "NaN". We provide also for OLCI the standard deviation of the OLCI matchup data to a in situ data point within the 3x3 pixels. For the in situ data we provide the estimate of the uncertainty for each matchup point further described in Bracher et al. (2025).

The different data compilations are described as follows:- Bracher22: This collection contains hyperspectral absorption coefficients by non-algal particulates and coloured dissolved organic matter data published in Pangaea from AWI (Liu et al. 2019, Bracher and Liu 2021, Bracher et al. 2021a, 2021b, 2021c, 2021d, 2021e, 2021f, 2024) matching the S3A and S3B mission time and considered for coupled model evaluation in Alvarez et al. (2022). This data set encompasses data from four Atlantic expeditions (2016-2019: PS103, PS107, PS113, PS121) covering polar, temperate, tropical and shelf seas. - Castagna22: This collection from Castagna et al. (2022) contains spectral absorption data (matching all absorption products validated in this exercise) published in Pangaea which have been measured from water samples of many campaigns in 2017-2019 in Belgian waters.- Röttgers23: From the Röttgers et al. (2023) large IOP data compilation measured during campaigns in the German Bight and adjacent regions from 2008-2021, we selected the data from S3 mission lifetime. This data set encompasses hyperspectral aph(λ) from two RV Heincke North Sea campaigns (HE488 and HE517 in late spring 2017 and late summer 2018, respectively).- SEABASS: From the hyperspectral aph(λ) data submissions to SeaBASS (https://seabass.gsfc.nasa.gov/, download 28 September 2023) we used all data overlapping S3A and S3B missions. This published data comprises mainly US waters (campaigns: CARBON_ESTUARIES, PLUMES_AND_BLOOMS, SFMBON) and the US ArcticCC expedition in the Northern Bering Sea in 2022.. - AODN: Here we included new IOP data submissions to the Australian Open Access to Ocean Data portal (AODN, https://portal.aodn.org.au/, download 19 July 2023), not provided in Valente et al. (2022) or Lehmann et al. (2023) and matching the S3A and S3B OLCI lifetime. AODN-1 contains hyperspectral aph(λ) data from the CSIRO (Commonwealth Scientific and Industrial Research) Hydrochemistry Facility Integrated Marine Observing System (IMOS, https://research.csiro.au/hydrochemistry/projects/integrated-marine-observing-system-imos/). They contain data from several expeditions in Australian waters (at Torres Strait in 2016, at the mouth of the Fitzroy River in 2017, and at the Coral Sea and Queensland Shelf in 2016 (IN2016) and 2020 (IN2020) and from the Lucinda Jetty Coastal Observatory (https://researchdata.edu.au/imos-srs-satellite-observatory-ljco/476837). - Banks-new: These are hyperspectral aCDM(λ) data from the under-sampled oligotrophic Eastern Mediterranean. These were collected by HCMR (PI: A. Banks) and the Joint Research Centre (JRC) on a joint optics cruise (HCMR-JRC OPTICS) in April to May 2022. This data set is not included in Zibordi et al. (2023), but follows the same measurement procedure.- Bracher-new: AWI (PI: A. Bracher) has conducted recently (January 2020 until November 2022) four more large expeditions spread over the temperate and polar Atlantic Ocean (MSM93, PS126, PS131 and PS133-1) and three weekly campaigns at Germany's largest inland water, Lake Constance (BS-1, BS-3, BS-4) where about 800 valid measurements for hyperspectral aph(λ) have been collected. The measurement protocol is the same as described in Liu et al. (2018).

Identifier
DOI https://doi.org/10.1594/PANGAEA.983161
Related Identifier IsSupplementTo https://www.frontiersin.org/journals/remote-sensing/articles/10.3389/frsen.2025.1545664/abstract
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Related Identifier References https://doi.org/10.1594/PANGAEA.907419
Related Identifier References https://doi.org/10.1029/2022MS003126
Related Identifier References https://doi.org/10.25607/OBP-458
Related Identifier References https://doi.org/10.1109/TGRS.2021.3136243
Related Identifier References https://doi.org/10.1364/OE.26.00A678
Related Identifier References https://doi.org/10.1016/j.rse.2015.01.023
Related Identifier References https://doi.org/10.25607/OBP-119
Related Identifier References https://doi.org/10.5194/essd-14-5737-2022
Related Identifier References https://doi.org/10.1109/LGRS.2023.3298686
Metadata Access https://ws.pangaea.de/oai/provider?verb=GetRecord&metadataPrefix=datacite4&identifier=oai:pangaea.de:doi:10.1594/PANGAEA.983161
Provenance
Creator Bracher, Astrid ORCID logo; Soppa, Mariana A ORCID logo; Banks, Andrew C; Xi, Hongyan ORCID logo; Chaikalis, Spyros; Röttgers, Rüdiger ORCID logo
Publisher PANGAEA
Publication Year 2025
Funding Reference European Organisation for the Exploitation of Meteorological Satellites https://doi.org/10.13039/501100010560 Crossref Funder ID EUM/CO/23/4600002753/DD Provision of S3 OLCI Ocean Colour product improvements (OCIMP); Federal Ministry of Education and Research https://doi.org/10.13039/501100002347 Crossref Funder ID FKZ 50EE1915 Monitoring the Phytoplankton Functional Types by Synergistic Exploitation of Multi- and Hyperspectral Satellite Observations (TypSynSat); Federal Ministry of Education and Research https://doi.org/10.13039/501100002347 Crossref Funder ID FKZ 50EE1923 Environmental Mapping and Analysis Program (EnMAP CalVal); German Research Foundation https://doi.org/10.13039/501100001659 Crossref Funder ID 268020496 https://gepris.dfg.de/gepris/projekt/268020496 TRR 172: ArctiC Amplification: Climate Relevant Atmospheric and SurfaCe Processes, and Feedback Mechanisms
Rights Creative Commons Attribution 4.0 International; https://creativecommons.org/licenses/by/4.0/
OpenAccess true
Representation
Resource Type Dataset
Format text/tab-separated-values
Size 28165 data points
Discipline Earth System Research
Spatial Coverage (-162.483W, -71.153S, 154.059E, 80.754N); North Sea; Atlantic; Atlantic Ocean; South Atlantic Ocean
Temporal Coverage Begin 2016-05-10T05:55:00Z
Temporal Coverage End 2023-04-14T20:52:00Z