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SeaWiFS technical report series. Volume 24: SeaWiFS technical report series cumulative index, volumes 1-23

Stanford B. Hooker and Elaine R. Firestone · 1995

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NASA Technical Memorandum SeaWiFS Technical Report /' 104566, Vol. 24 Series Stanford B. Hooker and Elaine R. Firestone, Editors Volume 24, SeaWiFS Technical Report Series Cumulative Index: Volumes 1-23 Elaine R. Firestone and Stanford B. Hooker June 1995 (NASA-TM-lO6566-Vol-24) SeaWiFS N95-32122 TECHNICAL REPORT SeaWiFS TECHNICAL CUMULATIVE INDEX, SERIES. VOLUME 24: REPORT SERIES VOLUMES 1-23 Unclas (NASA. Goddard Space Flight Center) 40 p G3/48 0062509

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NASA Technical Memorandum 104566, Vol. 24 SeaWiFS Technical Report Series Stanford B. Hooker, Editor Goddard Space Flight Center Greenbelt, Maryland Elaine R. Firestone, Technical Editor General Sciences Corporation Laurel, Maryland Volume 24, SeaWiFS Technical Report Series Cumulative Index: Volumes 1-23 Elaine R. Firestone General Sciences Corporation Laurel, Maryland Stanford B. Hooker NASA Goddard Space Flight Center Greenbelt, Maryland National Aeronautics and Space Administration Goddard Space Flight Center Greenbelt, Maryland 20771 1995

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This publication is available from the NASA Center for AeroSpace Information, 800 Elkridge Landing Road, Linthicum Heights, MD 21090-2934, (301) 621-0390.

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E.R. Firestone and S.B. Hooker ABSTRACT The Sea-viewing Wide Field-of-view Sensor (SeaWiFS) is the follow-on ocean color instrument to the Coastal Zone Color Scanner (CZCS), which ceased operations in 1986, after an eight-year mission. SeaWiFS is expected to be launched in 1995, on the SeaStar satellite, being built by Orbital Sciences Corporation (OSC). The SeaWiFS Project at the National Aeronautics and Space Administration's (NASA) Goddard Space Flight Center (GSFC), has undertaken the responsibility of documenting all aspects of this mission, which is critical to the ocean color and marine science communities. This documentation, entitled the SeaWiFS Technical Report Series, is in the form of NASA Technical Memorandum Number 104566. All reports published are volumes within the series. This particular volume serves as a reference, or guidebook, to the previous 23 volumes and consists of 6 sections including: an errata, an addendum (summaries of various SeaWiFS Working Group Biooptical Algorithm and Protocols Subgroups Workshops, and other auxiliary information), an index to key words and phrases, a list of all references cited, and lists of acronyms and symbols used. It is the editors' intention to publish a cumulative index of this type after every five volumes in the series. Each index covers the topics published in all previous editions, that is, each new index will include all of the information contained in the preceeding indices. 1. INTRODUCTION This is the fourth in a series of indices, published as a separate volume in the Sea-viewing Wide Field-of-view (SeaWiFS) Technical Report Series, and covers information found in the first 23 volumes of the series. The Report Series is written under the National Aeronautics and Space Administration's (NASA) Technical Memorandum (TM) Number 104566. The volume numbers, authors, and titles are as follows: Vol. 1: S.B. Hooker, W.E. Esaias, G.C. Feldman, W.W. Gregg, and C.R. McClain, An Overview of Sea WiFS and Ocean Color. Vol. 2: W.W. Gregg, Analysis of Orbit Selection for SeaWiFS: Ascending vs. Descending Node. Vol. 3: C.R. McClain, W.E. Esaias, W. Barnes, B. Guenther, D. Endres, S.B. Hooker, B.G. Mitchell, and R. Barnes, SCaWiFS Calibration and Validation Plan. Vol. 4: C.R. McClain, E. Yeh, and G. Fu, An Analysis of GAC Sampling Algorithms: A Case Study. Vol. 5: J.L. Mueller and R.W. Austin, Ocean Optics Protocols for Sea WiFS Validation. Vol. 6: E.R. Firestone and S.B. Hooker, SeaWiFS Technical Report Series Cumulative Index: Volumes 1-5. Vol. 7: M. Darzi, Cloud Screening for Polar Orbiting Visible and IR Satellite Sensors. Vol. 8: S.B. Hooker, W.E. Esaias, and L.A. Rexrode, Proceedings of the First Sea WiFS Science Team Meeting. Vol. 9: W.W. Gregg, F. Chen, A. Mezaache, J. Chen, and J. Whiting, The Simulated Sea- WiFS Data Set. Vol. 10: R.H. Woodward, R.A. Barnes, W.E. Esaias, W.L. Barnes, A.T. Mecherikunnel, Modeling of the SCaWiFS Solar and Lunar Observations. Vol. 11: F.S. Patt, C.M. Hoisington, W.W. Gregg, and P.L. Coronado, Analysis of Selected Orbit Propagation Models. Vol. 12: E.R. Firestone and S.B. Hooker, SeaWiFS Technical Report Series Cumulative Index: Volumes 1-11. Vol. 13: C.R. McClain, J.C. Comiso, R.S. Fraser, J.K. Firestone, B.D. Schieber, E-n. Yeh, K.R. Arrigo, and C.W. Sullivan, Case Studies for Sea- WiFS Calibration and Validation, Part 1. Vol. 14: J.L. Mueller, The First Sea WiFS Intercalibration Round-Robin Experiment, SIRREX-1, July 1992. Vol. 15: W.W. Gregg, F.S. Patt, and R.H. Woodward, The Simulated Sea WiFS Data Set, Version 2. Vol. 16: Mueller, J.L., B.C. Johnson, C.L. Cromer, J.W. Cooper, J.T. McLean, S.B. Hooker, and T.L. Westphal, The Second SeaWiFS Intercalibration Round-Robin Experiment, SIR- REX-2, June 1993. Vol. 17: Abbott, M.R., O.B. Brown, H.R. Gordon, K.L. Carder, R.E. Evans, F.E. Muller-Karger, and W.E. Esaias, Ocean Color in the 21st Century: A Strategy for a 20-Year Time Series.

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SeaWiFS Technical Report Series Cumulative Index: Volumes 1-23 Vol.18:Firestone,E.R.,andS.B.Hooker,SeaWiFS Technical Report Series Summary Index: Volumes 1-17. Vol. 19:McClain, C.R., R.S. Fraser, J.T. McLean, M. Darzi, J.K. Firestone, F.S. Patt, B.D. Schiebet, R.H. Woodward, E-n. Yeh, S. Mattoo, S.F. Biggar, P.N. Slater, K.J. Thome, A.W. Holmes, R.A. Barnes, and K.J. Voss, Case Studies for SeaWiFS Calibration and Validation, Part 2. Vol.20: Hooker, S.B., C.R. McClain, J.K. Firestone, T.L. Westphal, E,-n. Yeh, and Y. Ge, The Sea- WiFS Bio-Optical Archive and Storage System (SeaBASS), Part 1. Vol. 21: Acker, J.G., The Heritage of SeaWiFS: A Retrospective on the CZCS NIMBUS Experiment Team (NET) Program. Vol. 22: Barnes, R.A., W.L. Barnes, W.E. Esaias, and C.R. McClain, Prelaunch Acceptance Report for the Sea WiFS Radiometer. Vol. 23: Barnes, R.A., A.W. Holmes, W.L. Barnes, W.E. Esaias, C.R. McClain, and T. Svitek, Sea WiFS Prelaunch Radiometric Calibration and Spectral Characterization. This volume within the series serves as a reference, or of ble 1. guidebook, to the aforementioned volumes. It consists the four main sections included with the first two indices published, Volumes 6 and 12, in the series: a cumulative index to key words and phrases, a glossary of acronyms, a list of symbols used, and a bibliography of all references cited in the series. In addition, as in Volumes 12 and 18, keyword, Vol. # ch. #. Figures or tables that provide particularly important summary information are also indicated as separate entries in the page field. In this case, the figure or table number is given with the page number on which it appears. 2. ERRATA 1. In Volume 23, Table 19, the headers entitled Radiance and Counts should be switched. 3. ADDENDA This section presents a summary of the Fifth SeaWIFS Bio-optical Algorithm and Optical Protocols Workshop (BAOPW-5) held on 21 February 1995 at the Rosenstiel School of Marine and Atmospheric Sciences in Miami, Florida; submitted by C. McClain. The primary workshop objectives were to: 1) finalize the initial operational SeaWiFS pigment, K(490), and chlorophyll a algorithms; 2) review the field programs and bio-optical data sets; and 3) discuss proposed changes in standard data products. The team members and invited guests are listed in Ta- Table 1. Team members and invited guests to the BAOPW-5, held 21 February, 1995 at the Rosenstiel School of Marine and Atmospheric Sciences (RS- MAS) in Miami, Florida. The subgroup memberships are as listed in Hooker et al. (1993). Attendees errata and addenda sections have been added to address is- are identified with a checkmaxk (4"). sues and needed corrections that have come to the editors' attention since the volumes were first published. The nomenclature of the index is a familiar one, in the sense that it is a sequence of alphabetical entries, but it utilizes a unique format since multiple volumes are involved. Unless indicated otherwise, the index entries refer to some aspect of the SeaWiFS instrument or project, for example, of D. Clark 4" A. Morel the mission overview index entry refers to an overview a G. Cota 4" J. Mueller 4" the SeaWiFS mission. An index entry is composed of keyword or phrase followed by an entry field that directs of R. Doerffer 4" Karger the reader to the possible locations where a discussion the keyword can be found. The entry field is normally fol- H. Gordon 4" R. Smith made up of a volume identifier shown in bold face, in F. Hoge 4" C. Trees 4" lowed by a pages identifier, which is always enclosed parentheses: keyword, volume(pages). If an entry is the subject of an entire volume, the volume field is shown in slanted type without a page field: keyword, Vol. #. Team Present Team Present Members Members J. Aiken O. Kopelevich (G. Moore) 4" M. Lewis 4" W. Balch 4" C. McClain 4" K. Carder 4" G. Mitchell 4" C. Davis 4" F. Muller- 4" W. Esaias 4" D. Siegel 4" S. Hooker 4" C. Yentsch D. Kamykowski J. Yoder 4" M. Kishino 4" R. Zaneveld 4" Other Attendees R. Arnone S. Gallegos J. Campbell S. Hawes An entry can also be the subject of a complete chapter, as R. Evans in Volumes 13 and 19 (to name a few). In this instance, both the volume number and chapter number appear without a page field: 2 N. Maynard R. Frouin 3. Morrow H. b'hkushima

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E.R. Firestone and S.B. Hooker 3.1 BAOPW°5 1. Introduction (C. McClain): A. Workshop Objectives and Agenda B. Review of Action Items from the November Workshop C. SeaStar/SeaWiFS Update 2. Data Set Development for Algorithm Evaluation (J. Campbell): At the last bio-optical algorithm workshop in November, it was agreed that investigators would submit data for the verification of certain components of the operational chlorophyll algorithm, as well as evaluate the final chlorophyll retrievals. Campbell agreed to be the point of contact for the data submissions and will provide a status report. She gave a brief summary of what she personally has received [others have sent data directly to the SeaWiFS Bio-Optical Archive and Storage System (SeaBASS)]. She received data from A. Bricaud, C. Yentsch, and M. Kishino. She will provide these data to the SeaWiFS Project after some editing 6. Final Results from the First Data Analysis Round- Robin (DARR-1) (D. Siegel): Siegel reviewed the results of the first data analysis round-robin, which had not changed since the November meeting. For Case- 1 water, all the methods worked equally well below 600 nm, but diverged in the near-infrared. Turbid water cases were not considered. The summary document has also been submitted to the SeaWiFS Project for publication in the series. 7. Second Data Analysis Round-Robin (DARR-2) Planning (D. Siegel): Two topics of interest were discussed, turbid water and the extrapolation of values to the surface from observations at discrete levels only as is the case for moorings and drifters. C. Davis volunteered to hold a workshop to discuss measurement protocols for Case-2 waters, but thought it was premature to hold a data analysis round-robin. D. Clark volunteered to host DARR-2 to evaluate the analysis issue associated with moorings and drifters. The dates for these events will not be scheduled until the SeaWiFS launch schedule is clarified in April. and reformatting. Also, permission is being sought to 8. 18-Month Time Series of MER-2040/2041 Calibration release Bricaud's data to the SeaBASS archive. 3. Operational Chlorophyll a Algorithm (K. Carder): Only minor modifications have been made to the algorithm since the November 1994 meeting. Preliminary analyses of Arabian Sea data and results from airborne oceanographic lidar (AOL) data obtained from the Mid- Atlantic Bight compare well with the algorithm. Initial analyses of California Cooperative Fisheries Institute (CalCoFI) data, by G. Mitchell, indicate that the algorithm underestimates chlorophyll by a factor of 2-5. Mitchell's analysis, however, was based on the ratios of subsurface upwelling radiance to subsurface downwelling irradiance and not remote sensing reflectances. D. Siegel made a recommendation that should improve the chlorophyll retrieval at low concentrations and will provide the details to Carder later. (G. Mitchell): The time series of the Scripps Photobiology Group's MER-2040/2041 instrument calibration for 18 months was presented. During this time, radiometric calibrations at Biospherical Instruments, Inc. (BSI) and the San Diego State University (SDSU) Center for Hydro-Optics and Remote Sensing (CHORS) have been completed with both integrating spheres and reflectance plaques at each facility (total of three separate spheres and three separate plaques). Immersion coefficients have been determined as well. The CHORS and BSI calibrations are in good agreement for most wavelengths. The calibrations are particularly consistent over the past three calibrations, the UV bands being a notable exception. These results are tangible evidence that the calibration round-robins are helping to improve the reliability, consistency, and traceability of the ocean color community's instrument calibrations. 4. CZCS Pigment Algorithm (G. Moore): At the Novem- 9. Protocol for Determining Algorithm Accuracy (J. ber workshop, C. Moore presented a draft document for the bio-optics group to review and made a recommendation on a radiance ratio algorithm. The group suggested that the algorithm should include a band ratio in the green. Moore has incorporated this suggestion and others and has submitted a revised version of the document to the SeaWiFS Project for publication in the Sea WiFS Technical Report Series. 5. K(490) Algorithm (J. Mueller): The results of Muellet's analysis of the effect of the 5 nm shift in the 555 nm SeaWiFS band from the 550 nm CZCS band indicates 10. Band-to-Band Correlation Analysis (J. Mueller): The the effect is small and that no change in the prelaunch algorithm [the Austin-Petzold CZCS K(490) algorithm] is required. The analysis was based on 44 optical profiles provided by C. Trees, D. Siegel, and G. Mitchell. Campbell): In reporting the accuracy of a model or algorithm, it is important to distinguish between systematic errors and random errors. A statement such as "This algorithm is accurate to within 30%," is very ambiguous. It says nothing about whether errors are random or systematic, and whether the range is I a or 3 _r. A protocol is presented here for determining the accuracy of an algorithm, and for testing and reporting both systematic and random errors. Campbell distributed a document describing the protocol and analysis based on the CZCS NET algorithm data set. issue of instrumental band center wavelength differences was discussed at the May 1994 workshop (Firestone and Hooker 1995) and remains unresolved. Muellet has performed further empirical orthogonal function 3

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SeaWiFS Technical Report Series Cumulative Index: Volumes 1-23 (EOF) analyses on the NET data from D. Clark. The analysis showed that in order to obtain a meaningful result, the radiances had to be extrapolated to a common depth, e.g., the surface. For the irradiance fields, the variance was contained in the first few EOFs, but for upweUing radiance, a large number were required. His conclusion was that the data was too noisy for this analysis and that more recent data from higher quality spectrometers should be used. Such data exists from a number of sources and he will pursue this work further. 11. Field Program Reports: The intent of these reports is not to present results, but activities. Updates should review recent and future cruise plans, numbers of stations, data collected, status of analysis and data delivery to the SeaWiFS Project, etc. Each presentation should be no longer than 15 minutes. A. Bermuda Bio-Optical Time Series (D. Siegel): The bio-optical data collection will continue until at least December 1995. After that time, Siegel is unclear how the time-series will be supported. It appears unlikely, at this time, that the National Science Foundation (NSF) will support the program in fiscal year (FY) 1996 and he is not optimistic about NSF support in FY97. B. CalCoFI Bio-Optical Data Set (G. Mitchell): Mitchell has cruises planned in April, July, and October 1995. During each cruise, about 70 bio-optical stations will be taken. C. Navy Field Program Update (C. Davis): The Navy, NASA, and NSF will support a total of eight cruises with optics in the Arabian Sea. During the last cruise, much of the time was spent towing an instrument array. Nonetheless, 20 bio-optical stations were collected. Their bio-optical measurement suite included radiometer profiles, remote sensing reflectance measurements, and Q measurements. D. United Kingdom Field Program Update (G. Moore): The British have a fair number of cruises scheduled for 1995 and 1996. Of particular interest is the Antarctic Survey's transects of the Atlantic during May and September of each year. These cruises have many berths available and will stop daily for bio-optical casts (2 hours maximum station time). The Falkland Islands would be the point of departure for the September leg and the point of embarkation for the May leg. E. Japanese Field Program Update (M. Kishino): The Japanese have an impressive manifest of bio-optical cruises scheduled in the Pacific (from the Bering Sea to Antarctica) during 1995 and 1996. (The manifest is too long to recite here.) The Yamato Bank Optical Mooring (YBOM) will be deployed during April-July 1996 [Ocean Color Temperature Sensor (OCTS) check-out] and again in September 1996 after refurbishment. YBOM will be in a year-long cycle whereby it will be in the water for nine months, and then out of the water for three months, for refurbishment. F. German Field Program Update (R. Doerffer): The Germans will be in the Arabian Sea during July and will collect in-water bio_optical and remote sensing reflectance data. Doerffer described the Picasso Program proposal to put four optical platforms in place. Picasso participants include the Joint Research Center (JRC) and the British. The platform sites are the northern Adriatic, Baltic, and North Seas. 12. Proposed Scheme for Variable Quality Level-3 Products (R. Evans): Evans described his proposal for incorporating variable quality data into the level-3 products. The scheme allows for level-2 data, which is deemed less accurate or reliable, to be binned when no higher quality data is available for a particular binning cell. The scheme can be applied in either space or time binning. Before the scheme can be accepted, the Science Working Group (SWG) must approve it. The bio-optics group voice general support for the concept. A more detailed description will be circulated to the SWG for comment. 13. Proposed Revisions in the Level-3 Products (C. Mc- Clain): The present set of quality masks and flags used as exclusion criteria in the level-3 binning process are defined so as to yield high quality pigment and K(490) level-3 products; all other parameters binned in the level-3 product are subject to the same criteria. At the present time, there is only one level-3 product containing several binned quantities. As a result, the level-3 product eliminates useful information on some quantities of interest, e.g., coccolithophore blooms and high aerosol radiances. Defining additional level-3 products, using exclusion criteria appropriate to each product while eliminating parameters of limited utility from the present level-3 product, would extend the applications for SeaWiFS, but not substantially increase the number of data granules or volumes submitted to the Goddard Space Flight Center (GSFC) Distributed Active Archive Center (DAAC). Examples of this might be a pigment product, a coccolithophore product, or an aerosol product. The bio-optics group endorsed the idea of smaller, but more numerous level-3 products and McClain will circulate a strawman to the SWG for comment. 3.1.1 Action Items The following are the action items, and people responsible for them, that arose from the meeting.

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E.R.FirestoneandS.B.Hooker 1. J. Campbellwill submittheBricaudandMorel absorptiondataandtheYentschpigmentdata to theSeaWiFSProjectforinclusionintheSea- BASSdatabase. 2. K. Carderwill submitthe datasetheis using forthe chlorophyllalgorithm. 3. D. Clarkwill organizeandhostDARR-2. 4. C. Daviswill organizeandhosta workshopon turbid Case-2 data collection and analysis. 5. D. Siegel will work with K. Carder on a modification to the chlorophyll a algorithm to improve estimates at low values. 6. J. MueUer will pursue higher quality spectral data for the EOF analysis. Possible sources of this are D. Clark and C. Davis. 7. C. McClain and R. Evans will draft strawmen proposals for revisions in the level-3 products. These will be circulated together for comment by the SWG. 5

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SeaWiFS Technical Report Series Cumulative Index: Volumes 1-23 CUMULATIVE INDEX Unless indicated otherwise, the index entries that follow refer to some aspect of the SeaWiFS instrument or project. For example, the mission overview index entry refers to an overview of the SeaWiFS mission. A absorption study: pressure and oxygen, 13(ch. 3). absorption correction, 13(19-20). acceptance report: prelaunch, see SeaWiFS instrument. •addenda, 12(3-8); 18(3-22). Advanced Very High Resolution Radiometer, see AVHRR. aerosol models, 8(17). airborne spectral radiometry, 5(7-8). aircraft calibration technique, 3(Fig. 19 p. 27). algorithms, 1(3, 17); 4(2). atmospheric correction, 1(19); 3(1-2, Fig. 4 p.5, 16, 23, 27-28, 31, 32-34); 8(4, Table 1 p. 14, 17, Table 4 p.21); 13(1, 4, 9, 27); 17(16); 18(11-12); 21(19-20), bio-optical, Vol. 5; 12(3-5); 20(ch. 3). data, 9(1); 12(3-4). database development, 3(28). derived products, 3(27-28); 13(1). development, 1(5); 3(23, 27-35, Fig. 22 p. 33); 5(Table 4 p. 11); s(4, 10). field studies, 3(30-32, Fig. 22 p. 33, 34-35). input values, 13(Table 16 p. 44). linearity and stability, 5(12). optical measurements, Vol. 5. pigment, 3(28, 29); 8(24); 13(1, 12); 18(3, 4, 14). validation of, 1(3); 8(16, Table 4 p. 21). see also bio-optical, algorithm. see also GAC. see also Protocols Workshop. along-track, 3(38). see also propagation model. ancillary: data climatologies, 13(2, ch. 7, and Plates 16-18). data sets, 8(7); 15(7); 19(ch. 6, ch. 7). measurements, 5(8, 9, 20, 27-28, 30, 33). see also data, ancillary. animation: meteorological data sets, 13(41-42). ozone data sets, 13(41-42). ascending node, Vol. 2. computation methods, 2(1-2). tilt strategy, 2(Table 1 p. 2). atmospheric conditions, 9(6-7). atmospheric contributions, 9(4-6). atmospheric correction, 1(3, 5, 7); 3(1, 2, Fig. 4 p. 5, 8, 13, 23, 24, 27, 28-29, 31, 32-34); 4(1); 5(1, 3, 6, 7, 10, 13); 8(4, 6, 7, 26-27, 30-31, 36-37, 42); 14(1); 17(6, 16); 18(13); 19(ch. 1, Fig. 1 p. 11); 21(19-20). subgroup, 18(11-12). atmospheric correction cont. see also algorithms, atmospheric correction. atmospheric measurements, 5(2, 28-29). at-satellite radiances, 15(7 13, Table 10 p. 11). AVHRR: deriving vegetation index, 7(2). GAC data, 7(3-4). LAC data, 7(2-4). LDTNLR test, 7(4). nighttime IR data, 7(5). thermal IR channels, 7(1). azimuth: angles at equinox, 2(2, 10, 16). angles at solstice, 2(Fig. 5 p. 7, 10, 16). satellite angle, 13(46). solar angle, 2(2, 16); 7(1); 13(Table 11 p. 29, 46). spacecraft angle, 2(2, Fig. 6 p. 8, 16); 13(Table 11 p. 29). relative angle, 2(2, Fig. 7 p. 9, 10, Fig. 10 p. 13, 16). -Bbaselines, 8(6-13). algorithms, 8(6-7). ancillary data, 8(7). data archive and delivery, 8(9-10). data for bio-optical algorithms, 8(10). data for vicarious calibration, 8(10-11). data processing and software, 8(8-9). data products, 8(12-13). data quality and acceptance, 8(7-8). detector failure contingency, 8(11). equator crossing contingency, 8(12). ground station support, 8(11). in situ data policy, 8(13). launch slip contingency, 8(11). level-2 masks and flags, 18(Table 9 p. 18). level-2 products, 18(Table 7 p. 17). level-3 binned products, 18(Table 8 p. 17). level-3 binning, 8(8, 16). loss of tilt contingency, 8(11). navigation accuracy contingency, 8(11). optical protocols, 8(12). orbit contingency, 8(12). orbital altitude contingency, 8(11). power limitation contingency, 8(11). products, 3(27-28); 5(1). real-time data access, 8(12). recommendations, 8(13-19). revised product list, 18(16-18). see also data. basin-scale processes, 1(4, 6-7). biogeochemical, 1(2, 19); 8(1). properties, 5(6-7). see also Science Team Meeting, Abstracts. bio-optical: algorithm working group members, 8(Table 1 p. 14); 12(Table 1 p. 3, 3); 18(Table 1 p. 3, Table 5 p. 12, Table 6 p. 14).

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E.R.FirestoneandS.B.Hooker bio-opticalcont. calibration cont. AlgorithmWorkshop,12(3-5,6-8);18(3-7,12-16,10). see also sphere. algorithms,1(19);3( 1-2,6, 8, 11-12,13,16,23, 28-29, calibration and validation, 1(3, 8, 14, 18-22); Vol. 3; 17(3, 5-6, Fig. 20 p. 29, 29, 30-31, 32, Fig. 22 p. 33, 34); 4(3); Vol. 5; 8(6, 10); 13(27). data 12(Table 2 p. 4). data set, 3(8, 13, 16, 29, 30); 18(4, Table 2 p. 5). data system 20(ch. 2). see also algorithm. see also algorithm development. bio-optics, 1(3, 5, 7, 19); 8(10). algorithm, 13(1, ch. 1, 27). bright target recovery, 15(Fig. 8 p. 15). Brouwer-Lyddane model, 11(2-5, 11, 15-16, Figs. 5-8 pp. 8-9, Fig. 13 p. 12); 15(2-3). see also models. buoy: see MOBY. see optical buoy. see optical mooring. CDF, 13(35, Table 14 p. 36); 19(c_b. 5). 10-14, 15). baselines, 3(17); 8(3). case studies, Vol. 13; Vol. 19. cruises, 17(15-17). field deployment, 8(17, Table 2 p. 18, Table 4 p. 20); 18(Fig. 1 p.6). on board, 3(21-23). post-launch, 3(23-27). prelaunch program, 3(17-21). program milestones, 3(Fig. 12 p. 14). program schematic, 3(Fig. 11 p. 14). team (CVT), 13(1). see also baselines. see also calibration. see also CVT. see also initialization. see also round-robin. -C- characterization: calibration, 5(2); 10(Tables 1-2 p. 4, Fig. 3 p. 6, Fig. 20 p. 23, Fig. 21 p. 24); VoL 14; Vol. 16. background on, 10(2-3). equations, 23(8-14, 18). experiment, 19(Fig. 14 p. 29; Table 16 p. 30; Figs. 15-17 pp. 31-32). initialization, 5(4-6). in situ instruments, 14(2). lunar, 1(11, 18); 3(Fig. 15 p. 22); 10(1-3, 7, 10, Table 3 p. 10, chlorophyll concentration, 1(4-5, 15); 3(27, 34); 4(2); 7(1); Fig. 9 p. 11, Figs. 12-15 pp. 14-17, Fig. 16 p. 20, Fig. 19 p.22, Table 4-5 p. 19, 25); 15(Fig. 2 p.5, Table 5 p.7, Figs. 22-23 pp. 34-35). climatology generation, 13(40-41). onboard, 3(21); 5(2-3); 10(1-2). cloud detection, 7(1, 5). pigment, 5(24). preflight solar-based, 19(ch. 3). quality control, 10(25). cloud screening, Vol. 7. round-robin, 8(4, 17, Table 4 p. 21); Vo]. 14; Vol. 16; 18(3, 9, 13-14, 15). sensor, 1(11); 5(2-3); 17(2, 3). solar, 1(11, 18); 3(24); 10(1-7, Fig. 2 p.5, Fig. 4 p.6, Figs. 5- 8 pp. 8-9, Figs. 10-11 pp. 12-13, 18); 15(Fig. 3 p. 6, Table 5 p. 7, Fig. 20 p. 32). solar diffuser, 10(3-5, 7); 23(10). spectral, 5(24). COADS: sphere test, 14(Fig. B2 p. 48, Table B2 p. 49). subgroup meeting, 18(11). collector cosine response, 5(18-19). immersion factors, 5(19-20). pressure effects, 5(21). radiance field-of-view, 5(18). radiometric, 5(15-17). spectral bandpass, 5(15). temperature, 5(20-21). temporal response, 5(17). 8(14, 24, 30, 36); 9(1, 3, 9); 14(1); 15(7); 17(2, 5); 19 (Fig. 7 p. 17, Fig. 11 p.20). MODIS, 7(1). see also MODIS-N. determining thresholds, 7(2-3). direct thresholds, 7(1-4). evaluating methods, 7(5-6). more complex methods, 7(4-5). spatial coherence, 7(3-4). see also AVHRR GAC data. data, 13(Plates 16-18). time series, 13(36-40). sun photometers, 5(24). Coastal Zone Color Scanner, see CZCS. system test, 14(Fig. B1 p. 48). command: trend analysis, 10(25). vicarious,5(2-4); 8(10-11). schedules, 15(3-7, Table 3 p. 4, Table 4 p. 6). sequence, 15(Tables 7-8 p. 11). working group members, 8(Table I p.14). commercial applications, 1(7). see also calibration and validation. Common Data Format, see CDF. see also round-robin. Comprehensive Ocean-Atmosphere Data Set, see COADS. see also SeaStar. contingencies: see also SIRREX. detector failure, 8(11). 7

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SeaWiFS Technical Report Series contingencies cont. equator crossing, 8(12). launch slip, 8(11). loss of tilt, 8(11). navigation accuracy, 8(11). orbit, 8(12). orbital altitude, 8(11). power limitation, 8 (11 ). correction study: pressure and oxygen, 13(ch. 4). cross-track, see propagation model. cross-track scan, see SeaWiFS instrument. cumulative: index, 6(1-3); 12(9-13); 18(23-28). CVT, 13(1). CZCS, 1(1, 5, 6-7, 19); 3(1). algorithms, 3(1-11, 23); 13(ch. 1); 19(ch. 1). application of data, 9(7-9). calibration and validation, 17(10-11). channels, 7(1, 5). data collection, 3(6, Fig. 5 p. 5, 21, 30), 7(1). global sampling, 3(Fig. 9 p. 10). level-2 products, 4(1). level-2 processing parameters, 4(Table 2 p. 2). modeling compared to SeaWiFS, 3(Fig. 4 p. 5). orbit, 3(2). orbital characteristics, 9(Table 2 p. 3). overlapping scenes study, 13(ch. 5). parameters and characteristics, l(Table 2 p. 5), 3(Table 1 p. 1). pigment algorithm, 13(Tables 12-13 p. 31). pigment concentration, 1(5-6); 3(1-2, 8, 27); 13(1, 2, ch. 1, Figs. 1-5 pp. 5-8, 9, Figs. 8-9 p. 11, 15, Figs. 14-16 pp. 17- 18, 22, Figs. 18-19 p. 26, Fig. 20 p. 28, Table 10 p. 29, ch. 6, Table 18 p. 45, and Plates: 1-14, and 19-20); 17(6-7). quality control, 3(Fig. 7 p. 8, Fig. 8 p. 9, 32, 35). ringing mask comparison, 13(2, ch. 8, and Plate 19). sensor, 1(5); 3(8). sensor degradation, 3(23). time of launch, 2(1). vicarious calibration, 3(Fig. 6 p. 7, 11, 23, 24-27); 5(3-4). see also bio-optical, algorithms. see also NET. -Ddark level, see SeaWiFS instrument. data: access of, 8(12); 17(17). acquisition, 19(21-22). ancillary, 3(24, 35); 5(3); 7(5); 8(7); 13(2, Fig. 23 p.36); 19(ch. 6, ch. 7). archive and delivery, 5(2); 8(9-10). collection, 3(24); 8(4). distribution, 1(16); 8(2, 4, 16, 17). format, 3(32); 8(43-44); 12(5); 15(16-20, Fig. 9 p. 17); 19 (ch.5). interpolation, 13(22). 8 Cumulative Index: Volumes 1-23 data cont. management, 1(3, 11-18); 3(32). policy, 3(37-38); 8(13, Table 4 p. 21, 41-42). processing, 1(3, Fig. 2 p. 4, 11-16, Fig. 10 p. 20, 22); 3(13, 32); 7(5); 8(4, 8-9); 13(16, 21, 35); 17(3); 20(17-18). products, 4(20); 8(8, 12-13, 15-17, Table 4 pp. 20-21, 42-43); 1_(2), quality and acceptance, 8(7-8). requirements, 5(4-6). standard format, 19(ch. 5). subsampling, 4(1). system, 17(3-4, 12-14); 20(ch. 2). using SEAPAK with, 4(1-2). data sets, 1(3); 5(3-4, 6, 8, 14, 33, 34, 35); 8(23, 33); Vol. 9; Vol. 15; 17(2, 5). animation of, 13(41-42). atmospheric conditions, 9(6-7). atmospheric contributions, 9(4-6). availability of, 9(9-13); 15(40). code for simulating, 9(13-15). currently held, 20(Table 2 p. 10). external, 15(Table 9 p. 11). gridded wind, 19(ch. 8). meteorological, 13(35, Table 14 p. 36); 19(43, 47). meteorological animation, 13(41-42). methods for simulating, 9(2 7). normalized water-leaving radiances, 9(2-3). orbit model, 9(3-4). ozone, 13(35, Fig. 31 p. 42); 19(43, 47). ozone animation, 13(41-42). simulated total radiances, 9(Figs. 2-4 pp. 10-12). start and stop times, 9(Table 6 p. 9). ten-bit words and data structures, 9(7). viewing and solar geometries, 9(4-6). see also bio-optical. see also SIRREX. see also storage. descending node, Vol. 2. see also ascending node. detector failure contingency, see contingencies. -E- EOS-Color, 17(3, 9-10, 11, 13-17). EOSDIS, 17(3, 13, 17). equator crossing time, 2(10, 16); 9(Tables 6-7 p. 9). contingency, 8(12). equinox: see azimuth. see sun glint. see zenith. errata, 12(2); 18(2.-3). -Ffield deployment, see calibration and validation. field-of-view, see SeaWiFS instrument. field program, 18(5, 15).

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E.R.FirestoneandS.B.Hooker fieldprogramcont. computing network, 3(Fig. 21 p. 31). instrumentation, 3(34-35). filter radiometer, 14(Table B9 p. 56). flags, 18(4-5). algorithm, 8(3, 4, 17). level-2, 18(Table 9 p. 18). level-2 processing, 8(7); 12(4, Table 3 p. 4). format: conventions, 20(4-5). standard data, 8(15); 19(ch. 5). -G- GAC, 1(3, 16); 15(4); 17(5, 12). algorithms, Vol. 4. AVHRR data, 7(3). data, 15(2, 21-27, Figs. 11-14 pp. 22-25, and Plates 1-2). generation mechanisms, 4(Table 1 p. 1). generation methods, Vol. 4. resohttion, 4(Plates 1-8). sampling techniques, Vol. 4. see also AVHRR. geometry, 2(1). derived parameters, 2(1). solar, 2(1, 10, 16). sun glint, 2(1). viewing, 2(1, 10, 16). see also azimuth. see also zenith. glint correction, 3(23); 8(17); 19(ch./, Fig. 1 p. 11). see also sun glint. global area coverage, see GAC. global-scale processes, 1(6-7). glossary: cumulative, 6(3-5); 12(14-17); 18(29 33). ground coverage, 2(2, Fig. 1 p. 3). ground station support, 8(11). ground systems and support, 1(14-15). -H- Hierarchical Data Format, see HDF. HDF, 8(7, 8, 9, 10, 11, 15); 13(ch. 7); 19(ch. 5). HRPT: data, 1(14, 19); 8(8-9, 19); 15(2, 4, 27, Figs. 24-27 pp. 36-39, and Plates 4-6). policies, 8(17, Table 4 p. 20). -Iindex, Vol. 6; Vol. 12; Vol. 18. infrared radiometers, 7(1). initialization, 5(4-6, Table 1 p. 5). sampling, 5(31-32). intercalibration, Vol. 14; Vol. 16. data archive 14(56-57, Tables C1 and C2 p. 57). sources, 14(Table 1 p. 4). -J, Kjoint commercial aspects, 1(8). -L- LAC, 1(3). data, 1(8, 11); 15(2, 4, 27, Figs. 16-19 pp. 28-31, and Plate a). lamps, Vol. 14; Vol. 16. apparent drift, 14(Fig. 6 p. 13). calibration setup, 14(Fig. B7 p. 53). GSFC reference, 14(Table 3 p. 12). irradiance, 14(Fig. B4 p. 50, Table B5 p. 52, Fig. B8 p. 53, Table B7 p. 55). operating currents, 14(Table 8 p. 28). standards, 16(3-23). see also calibration. see also spectral irradiance. see also spectral radiance. see also sphere. see also transfer. look-up tables, 8(4); 19(5-9). lunar observations, Vol. 10. hmar reflectance, 3(23); 10(2-3, 7-25); 19(ch. 2); 23(9). M_ marine optical buoy: see MOBY. see optical buoy. mask, 18(4-5). algorithm, 8(3, 4, 17). level-2, 18(Table 9 p. 18). level-2 processing, 3(6); 8(7); 12(4, Table 3 p. 4). Miami edge, 13(29). see also sun glint. measurement protocols, 5(26-33). meeting agenda, see Science Team Meeting. mesoseale processes, 1(6). Miami edge mask, 13(29). mission: operations, 1(14-18); 11(1-2, 15). overlap, 1'/'(12). overview, Vol. 1; 8(1). MOBY, 1(3); 8(3, 4). review attendees, 18(Table 4 p. 10). review summary, 18(9-11). system schematic, 3(Fig. 17 p. 25). see also optical buoy. see also optical mooring. modeling, 10(1, 10, 18, 25). models: aerosol, 19(5-7, Tables 1-2 p. 6, Fig. 6 p. 17). chlorophyll concentration, 19(Fig. 7 p. 17, Fig. 11 p. 20). orbital prediction, 1 (17). see also Brouwer-Lyddane models. see also modeling. see also perturbation models.

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SeaWiFSTechnicalReportSeriesCumulativeIndex:Volumes1-23 modelscont. see also propagation models. MODIS or MODIS-N, 1(19); 17(3, 5, 6-7, 8, 11, 13-15). instrument characteristics, 3(Table 4 p. 12). presentations, 8(3-5). modulation transfer function, see SeaWiFS instrument, MTF. -Nnavigation, 8(11); 9(4); 11(2); 15(3). of pixels, 9(4). NET, 3(2, Figs. 1-3 pp.2-4, 23, 27, 28, 29-30); 8(16); 12(4); Vol. 21. areas of responsibility, 21(2-3). atmospheric correction algorithm, 21(19-20). chronology of events, 21(3-11). pigment algorithm, 3(Fig. 3 p. 3, Fig. 20 p. 29). research methods, 21(11, 16, 19). sea-truth program, 21(11, Fig. 1 p. 12, Tables 2-6 pp. 13-14, Figs. 2-6 pp. 15-18). team members, 21(Table 1 p. 3). netCDF, 19(ch. 5). NIMBUS Experiment Team, see NET. normalized water-leaving radiances, 1(15); 3(2, 6, 24, 28-29, 37-38); 4(1-3, 20); 5(1, 3-4, 6, 8, 13, 31-32, 37-38); 8(16, 42); 9(2-3). non-research uses, 1(7-8). -0 ocean color, 1(1-4, 8, 10); 8(1-3, 22-43); 13(1, ch. 4); Vo]. 17. future missions, 3(Fig. 10 p. 12). requirements, 1(2). see also algorithm development. ocean optics protocols, Vol. 5; 8(12, 14-15, Table 4 p. 20). see also Protocols Workshop. OCTS, 1(2); 3(11); 17(4, 10, 13, 17). instrument characteristics, 3(Table 3 p. 11). operational applications, 1(7-8). optical buoy, 3(Fig. 17 p. 25). drifting, 5(9, 31). mooring, 3(Fig. 18 p. 26); 5(8, 30-31). see also MOBY. optical instruments, Vol. 5; 10(Figs. 17-19 pp. 21-22). optical measurements, 5(1). accuracy specifications, 5(9-15). analysis methods, 5(33-39). science comnmnity, role of, 5(3). sensor characterization, 5(15-25, Tables 2-4 pp. 10-11). see also MOBY. see also optical buoy. optical thickness, 8(17); 19(5, 7, Tables 3-4 p. 7, Tables 8-11 p. 10). Rayleigh, 3(34); 9(4-6, Table 4 p. 5); 13(ch. 3, ch. 4). orbit, 3(23). characteristics, 9(Table 2 p. 3). contingency, 8(12). distribution of local time, 2(Fig. 2 p. 4). 10 orbit cont. downlink, 15(4, Table 3 p. 4). parameters, 1(18); 2(2). propagation, 15(3, Table 3 p. 3). see also propagation model. orbital: altitude contingency, 8(11). characteristics, 9(1, Table 3 p. 3); 15(Table lb p. 3). elements, 11(2). overview, Vol. 1. see also index. oxygen absorption band, 13(16, 19, Fig. 17 p. 19). ozone: absorption, 13(9, 21). concentration, 8(7); 9(5); 13(9, Figs. 6-7 p. 10, Figs. 11-12 p. 13, 30, and Plate 15); 16(7, 8). control point value, 13(Tables 7-9 pp. 24-25). correction, 13(ch. 4, and Plates 7-13). data analysis, 13(1, ch. 2). images, 13(Plates 7-13). optical thickness, 13(Fig. 10 p. 12). see also data set, ozone. -pperturbations model: general, 11(2-3). special, 11(2). photodetector measurements, 14(Table A1 p. 47). pigment, 17(7). algorithm, 3(28, 29); 8(24). data, 9(2). database, 20(ch. 3). data sets, 20(18, Table 5 pp. 20-21, 21). concentration, 1(Plates 1-5); 3(1, 2, 6, 8, 13, 23, 27, 28, 31-32, 35); 4(Table 1 p. 1, 2, Table 3 p. 3, Figs. 5-11 pp.6-9, 20, and Plates 1-8); 5(2); 7(1); 8(4, 14, 24, 30, 36, 40); 13(ch. 2, ch. 3); 17(7, II, 15-16). mean, 13(Tables 1-2 p. 8). values, 4(Fig. 26 p. 15, Figs. 31-33 pp. 18-19). see also algorithm, pigment. see also calibration. see also CZCS, pigment concentration. pixel size, 3(Fig. C1 p. 39). Prelaunch Science Working Group, see SPSWG. pressure: surface, see surface pressure. pressure and oxygen: absorption study, 13(ch. 3). correction study, 13(ch. 4, and Plates: 8, 10, and 12). primary productivity, 1(1); 5(7); 8(1, 15, 22-41); 17(8-9). working group members, 8(Table 1 p. 14). proceedings: Science Team Meeting, Vol. 8. see also Science Team Meeting. Project, 1(3); 3(1, 13, 16, 23-24, 32, 34, 38). goals, 1(2-3).

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E.R.FirestoneandS.B.Hooker Projectcont. objectives, 1(3). organization and personnel, l(Table 4 p. 22); 3(Fig. 13 p. 15). presentations, 8(3-5). responsibilities, 12(3-4). schematic, l(Fig. 8 p. 12, Fig. 9 p. 13). structure, 3(13-16). propagation model: along-track, 11(5, Figs. 1-8 pp. 6-9, Fig. 11 p. 11, Figs. 12-14 pp. 12-13, Fig. 16 p. 14). cross-track, 11(5, Fig. 9 p. 10, Fig. 15 p. 13, Fig. 17 p. 14). orbit, VoL 11. radial, 11(4, 5, Fig. 10 p. 10). Protocols Workshop, (ocean optics), 12(3, 5-8). attendees addresses, 12(6-8). Subgroup Workshop, 18(3, 7-9, 12-13, 14-16). team members and guests, 12(Table 1 p. 3); 18(Table 1 p. 3, Table 3 p. 7, Table 5 p. 12, Table 6 p. 14); 18(19-22). see also ocean optics. -Qquality control, 3(29-30, 35-36); 10(Fig. 20 p. 23): 12(5). flags, 12(3-4). level-1 screening, 3(35). level-2 product screening, 3(35-36). level-2 quality control, 3(35); 8(4). level-3 product screening, 3(36). masks, 12(4). see also bio-optical algorithm workshop. -Rradial, see propagation model. radiance measurements, 14(Table 9 pp. 29-30, Table 10 p. 31, Fig. 15 p. 32, Table 11 pp. 33-35, 44); 18(Table 6-7 pp. 37- 44); 19(Figs. 2-6 pp. 14-15, 23). calibration factors, 16(Fig. 18 p. 46). output, 14(Table 12-14 pp. 38-41). see also spectral irradiance. see also spectral radiance. radiometer, see SeaWiFS instrument. radiometric calibration, Vol. 23. see also SeaWiFS instrument. radiometric profiles, 5(33-39). radiometric specifications, 3(36-37, Table A1 p. 36); 8(4). references: cumulative, 6(5-9); 12(21-28); 18(38-46). CZCS data, 21(23-41). reflectance: gradients, 10(2-3); 10(Tables 6-7 p. 8, 8). plaque, 5(15--17); 14(5, 31, 41); 16(111). research: applications, 1(3-5). cruises, 3(30-32). round-robin, Vol. 14; Vol. 16. calibration, 8(4, 17, Table 4 p. 21); 12(4). protocols working group, 8(Table 1 p. 14); 18(Table 3 p. 7). see also calibration, round-robin. s satellite remote sensing, 7(1). saturation radiances, 3(Tables A2 through A4 pp. 36-37); 15 (Table 11 p. 13); 19(Table 5 p. 8). SBRC database, see SIRREX, SBRC database. scale, 1Iol. 14. see also transfer. scanning characteristics, 9(1). science mission goals, 3(12-13). Science Team Meeting, Vol. 8. abstracts, 8(22-41). agenda, 8(5-6). attendees, 8(51-59). executive committee, 8(22). invited presentations, 8(1-3). questionnaire, 8(19-22, 44-51). SeaBASS, 1/ol. 20. file architecture, 20(ch. i). SEAPAK, 4(1-2, 20). SeaStar, 1(1, 3, 8); 2(1-2); 3(21); 10(3,7). launch sequence, l(Fig. 4 p. 9). operational system, l(Fig. 6 p. 10). orbital simulation parameters, 2(Table 1 p.2); ll(Table 1 p. 1). pitch rate, 10(7). satellite, 1(Fig. 5 p. 9). spacecraft description, 1(8-10). SeaWiFS instrument, 1(1, 5-6, 8, 10-11); 4(1); 5(6, 9-14); 8(7-8, 17). absolute accuracy, 22(19-20). acceptance report, prelaunch, Vol. 22. acceptance testing, 8(4, 13-14, Table 4 p. 20). band co-registration, 22(10-11, Fig. 5 p. 12, Tables 12-13 p. 12). band edge wavelengths, 23(51, Table 13 p. 52). band tolerances, 22(7-8, Tables 5-7 p. 9). bandwidths, 1(Table 1 p. 1, Fig. 2 p. 2, 11). bilinear gains, 23(2, 4, Fig. 4 p. 5, Tables 1-4 p. 6, 6-7, Fig. 5 p. 8, 18). calibration and characterization, 3(Fig. 14 p. 18); 8(4). calibration constants, 23(17-18, Table 9 p. 19). calibration equations, 23(8-14, 18). characteristics, 2(Table 1 p. 2); 3(Table 2 p. 11, 13). cross-track scan, 22(4, Figs. 3-4 p. 6, 7). dark level, 22(7). description of, 1(10-11); 23(2, Figs. 1-3 pp. 3-4). dynamic range, 22(14, Tables 16-18 p. 17). field-of-view, 1(11); 5(1, 10, 12-18, 20-24, 28-29, 31, 38); 22(2, Fig. 1 p. 3, 4, Fig. 2 p. 5, Table 3 p. 4). fore-and-aft pointing, 22(7, Table 4 p. 7). gains, 22(18, Table 21 p. 19); 23(14-17). in-flight data, 22(29). launch time, 2(1). major milestones, 3(Table 7 p. 21); 22(Table 1 p. 2). mirror sides, 23(7-8, Table 5 p. 9). monitoring of, 1(18). 11

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SeaWiFSTechnicalReportSeriesCumulativeIndex:Volumes1-23 SeaWiFSinstrumentcont. SIRREX-2 cont. MTF, 22(14, Tables 19-20 pp. 18-19). operations schedules, 1(17-18). equipment and tests, 16(Table A1 p. 117). participants, 16(Table A1 p. 117). out-of-band response, 22(8, Tables 8-II pp. 10-11); 23(51, SIRREX-3, 18(9, 13, 16). Table 14 p. 53). solar diffuser, 3(11, 13, 21, 23, 24, 38); 5(2, 17, 19, 22); 8(13, pointing knowledge, 22(24, 28). polarization, 22(12-14, Table 15 p. 13, Figs. 6-7 pp. 15--16). 36); Vol. 10; 15(7, Table 8 p. 11, 27, Figs. 20-21 pp. 32-33); 17(13); 19(26-32, Figs. 11-12 p. 28); 23(9-10). radiometrie calibration, VoI. 23. solar irradiance measurements, 3(Fig. 16 p. 22). scanner, 1(11, Fig. 7 p. 14). solar observations, Vo]. 10. sensitivities, 1(5, Fig. 3 p. 6); 5(Table 4 p. 11, 14); 22(11-12, Table 14 p. 13). solstice: spectral bands, 1(11); 9(1, Table 1 p. 2). spectral characterization, Vol. 23. spectral differences, 22(8, 10). spectral response, 23(21-43). spectral bands, 1(1-2); 5(Table 2 p. 10, 17); 9(1, Table 1 p. 2); stability and repeatability, 22(28-29). see also calibration. see azimuth. see sun glint. see zenith. 15(Table lap. 2). stray light response, 23(2, 13). spectral characterization, Vol. 23. system level response, 23(43-51). see also SeaWiFS instrument. telemetry parameters, 3(Table 8 p. 23). spectral differences, see SeaWiFS instrument. temperature factors, 23(18-21). spectral irradiance, 5(13, 16, 25-27); 8(25); 14(Figs. 2-5 pp. 8testing and design, 22(1-2). test plan summary, 3(Table 6 pp. 19-20). transient response, 22(18-19, Tables 22-23 p. 20). vicarious calibration, 5(3 4, 33). see also optical instruments. 11, Figs. 7-14 pp. 20-27, Fig. 18 p. 43); 16(Figs. 2-5 pp. 6- 9, Tables 1-5 pp. 10-23, Figs. 6-16 pp. 25-35); 19(7). and radiance measurements, 3(2); 5(13, 16, 21-23 25 27). calibration geometry, 14(Fig. B3 p. 50). see also lamps. see also solar diffuser. spectral radiance, 5(21-23, 25-27); 8(25); 14(Figs. 16-17 sensor: spectral reflectance, 5(37, 38); 8(27, 29 30, 35, 49); 16(2-3, calibration, 5(2-3). characterization, 5(15 25); 9(Table 2 p. 3); 15(13). CZCS, see CZCS. monitoring, 1(18). operations schedules, 1(17). ringing, 4(2). ringing mask, 13(2, 27, and Plate 19). saturation response, 15(13, 27-39). SeaWiFS, see SeaWiFS instrument. tilt, 15(Fig. 1 p. 5). see also characterization. see also CZCS, ring mask comparison. see also SeaWiFS instrument. spectral response, 23(21-43). see also solar diffuser. sphere, Vol. 14. ship shadow avoidaJlce, 5(25-26). shunt, 16(111-116). tests, 14(41-42). SIRREX: database, 20(ch. 4). SBRC database, 20(ch. 5). see also SIRREX-1. see also SIRREX-2. pp. 36-37, 45-47, Fig. A2 p.46, 47, 52, 55-56); 19(ch. 4). Table 20 pp. 112-113, Fig. 31 p. 114); 19(ch. 2). BSI sphere, 16(62, Fig. 22 p. 73, Table 14 pp. 79-81). CHORS sphere, 16(62, Figs. 23-27 pp. 74-78, Tables 15-16 pp. 82-90). calibration, 14(Fig. A1 p. 46). GSFC sphere, 16(36, Fig. 17 p. 45, Figs. 19-20 pp. 47-48, Tables 8-10 pp. 49-61, Fig. 21 p. 63, Tables 11-13 pp. 64-72, 118-119, Figs. C1 and C2 p. 119). NOAA sphere, 16(81, Table 19 pp. 106-109, Fig, 30 p. 110). UCSB sphere, 16(62, 81, Table 17 pp. 91-95, Fig. 28 p. 96). WFF sphere, 16(81, Table 18 pp. 97-103, Fig. 29 p. 104). see also sphere sources. calibration setup, 14(Fig. B5 p. 51, Fig. B9 p. 54). integrating, 5(15); 14(28-31, 45); 16(2); 19(ch. 4); 23(13). measurements, 14(Table B8 p. 55). radiances, 14(Table B3 p. 49, Fig. B6 p. 51, Table B4 p. 52, Table B6 p. 52). source comparisons, 14(42-44). sources, 16(23-111); 19(25, 33). see also spectral reflectance. SIRREX-1, Vol. 14; 18(9). SPSWG, 1(1); 3(Table 5 p, 16, 27-28). attendees, 14(57-58). stability tests, 14(42). equipment and tests, 14(Table B1 p. 49). standard data format, see format, standard data. participants, 14(Table 1 p. 4). storage: validation process, 14(Fig. 1 p. 3). SIRREX-2, Vol. 16; 18(9). data sets, 19(Table 19 p. 44, Figs. 19-20 pp. 44-45, Table 20 p. 48); 20(Table 1 p. 9). attendees, 16(116-118). stray light response, 15(Fig. 7 p. 14); 23(2, 13). 12

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E.R.FirestoneandS.B.Hooker summary,see index. sun glint, 1(18); 2(1, 10, 14); 3(6, 34); 9(2, 4-5, 6, 7, 9); 15(3, 4, 21, 27). at equinox, 2(10). at solstice, 2(10, 16). flag sensitivity study, 13(ch. 9, and Plate 20). radiance distribution, 2(Fig. 8 p. 11, Fig. 11 p. 14). surface pressure, 8(4, 7); 13(Table 3 p. 16, Fig. 13 p. 17, 19-22, Tables 4-6 pp. 23-24, and Plates: 6-7, and 17). surface wind products, 19(ch. 8). symbols: cumulative, 6(5); 12(18-20); 18(34-37). -T, Utelemetry, 1(10, 14); 8(11); 9(1, 2, 7, Fig. 1 p. 8, 9); 10(1, Figs. 20--21 pp. 23-24, 25); 15(2, 13-20, Figs. 9-10 pp. 17- 18, Tables 12-13 pp. 19-20, Table 14 p. 21). transfer, Vol. 14. irradiance scale, 14(Table 2 pp.6-7, Tables 4-7 pp. 14-19, 28). -Vvalidation, 19(9-20). algorithm, 8(16). product, 8(10, 16). sampling, 5(2, 31-33). see also algorithms. validation cont. see also calibration. see also calibration and validation. viewing and solar geometries, 9(4-6); 13(3, 46). visible radiometers, 7(1). see also AVHRR. see also CZCS. see also MODIS. see also SeaWiFS instrument. voltmeter, 16(111-116). tests, 14(41-42). -W, X, Ywind: see surface wind products. see data sets, gridded wind. zenith, 2(10). angles at equinox, 2(2, 16). angles at solstice, 2(10, 16). satellite angle, 13(15, 19, 46). solar angle, 2(2, Fig. 3 p. 5, 10, Fig. 9 p. 12, Fig. 12 p. 15, Table 3 p. 16, 16); 3(2, 8, 23); 7(1, 4); 9(Table 6 p. 9); 13(Table 11 p. 29, 46). spacecraft angle, 2(2, Fig. 4 p. 6, 10, 16); 13(Table 11 p. 29). 13

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SeaWiFS Technical Report Series Cumulative Index: Volumes 1-23 GLOSSARY A A/D Analog-to-Digital; also written as: AD A&M (Texas) Agriculture and Mechanics (University) AC Alternating Current ACCAntarctic Circumpolar Current ACRIMActive Cavity Radiometer Irradiance Monitor ACSAttitude Control System ADCAnalog-to-Digital Converter ADEOSAdvanced Earth Observation Satellite (Japan) AE ]_ngstr6m Exponent ALSCATALPHA and Scattering Meter (Note: the symbol a corresponds to c(A), the beam attenuation coefficient, in present usage). AM-1 Not an acronym, used to designate the morning platform of EOS. AMCAngular Momentum Compensation AOCIAirborne Ocean Color Imager AOLAirborne Oceanographic Lidar AOPApparent Optical Property AOS/LOSAcquisition of Signal/Loss of Signal APL Applied Physics Laboratory ARGOSNot an acronym, but the name given to the data collection and location system on the NOAA Operational Satellites. ARI Accelerated Research Initiative ASCII American Standard Code for Information Interchange ASI Italian Space Agency ASR Absolute Spectral Response AT Along-Track AU Astronomical Unit AVHRR Advanced Very High Resolution Radiometer AVIRIS Advanced Visible and Infrared Imaging Spectrometer AXBT Airborne Expendable Bathythermograph -B- BAOPW-1 First Bio-optical Algorithm and Optical Protocols Workshop BAOPW-2 Second Bio-optical Algorithm and Optical Protocols Workshop BAOPW-3 Third Bio-optical Algorithm and Optical Protocols Workshop BAOPW-4 Fourth Bio-optical Algorithm and Optical Protocols Workshop BAOPW-5 Fifth Bio-optical Algorithm and Optical Protocols Workshop BAS British Antarctic Survey BATS Bermuda Atlantic Time-Series Station BBOP Bermuda Bio-Optical Profiler BBR Band-to-Band Registration BCRS Dutch Remote Sensing Board BEP Benguela Ecology Programme BER Bit Error Rate BMFT Minister for Research and Technology (Germany) BOFS British Ocean Flux Study BOMS Bio-Optical Moored Systems bpi bits per inch BRDF Bidirectional Reflectance Distribution Function BSI Biospherical Instruments, Incorporated 14 BSIXR BSI's Transfer Radiometer BTR Bright Target Recovery BUV Backscatter Ultraviolet Spectrometer BWI Baltimore-Washington International (airport) -C- CalCoFI California Cooperative Fisheries Institute Cal/Val Calibration and Validation CALVAL Calibration and Validation Case- 1 Water whose reflectance is determined solely by absorption. Case-2 Water whose reflectance is significantly influenced by scattering. CCD Charge Coupled Device CCPO Center for Coastal Physical Oceanography (Old Dominion University) CDF (NASA) Common Data Format CDOM Colored Dissolved Organic Material CD-ROM Compact Disk-Read Only Memory CDR Critial Design Review CEC Commission of the European Communities Committee on Environment and Natural Re- CENR sources CHORS Center for Hydro-Optics and Remote Sensing (San Diego State University) CICESE Centro de Investigac_dn C_ent(fica y de Educac_6n Superwr de Ensenada (Mexico) CIRES Cooperative Institute for Research in Environmental Sciences COADS Comprehensive Ocean-Atmosphere Data Set COOP Coastal Ocean Optics Program COTS Commercial Off-The-Shelf (software) CPR Continuous Plankton Recorder cpu Central Processing Unit CRM Contrast Reduction Meter CRN Italian Research Council CRSEO Center for Remote Sensing and Environmental Optics (University of California at Santa Barbara) Calibrated Radiance Tapes; or Cathode Ray CRT Tube. CZCS Radiation and Temperature Tape CRTT Commonwealth Scientific and Industrial Re- CSIRO search Organization (of Australia) Computer Sciences Corporation CSC Computer Systems Laboratory CSL Cross-Track CT Conductivity, Temperature, and Depth CTD Calibration and Validation Team CVT Continuous Wave CW Clear Water Radiance CWR Coastal Zone Color Scanner CZCS -D- DAAC Distributed Active Archive Center DAO Data Assimilation Office DARR-1 First Data Analysis Round-Robin DARR-2 Second Data Analysis Round-Robin DAT Digital Audio Tape DC Direct Current DCF Data Capture Facility DCOM Dissolved Colored Organic Material DCP Data Collection Platform

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E.R.FirestoneandS.B.Hooker DECDigitalEquipmentCorporation DMSdimethyl sulfide DOCDissolved Organic Carbon DoDDepartment of Defense DOMDissolved Organic Matter DOSDisk Operating System DSPNot an acronym, but an image display and analysis package developed at RSMAS University of Miami. DUDobson Units DXWNot an acronym, but a lamp designator. -E- E-mail Electronic Mail EAFB Edwards Air Force Base ECEF Earth-Centered Earth-Fixed ECMWF European Centre for Medium Range Weather Forecasts ECT Equator Crossing Time EDT Eastern Daylight Time EEZ Exclusive Economic Zone ENSO El Nifio Southern Oscillation ENVISAT Environmental Satellite EOF Empirical Orthogonal Function EOS Earth Observing System EOSAT Earth Observation Satellite Company EOSDIS EOS Data Information System EPA Environmental Protection Agency EP-TOMS Earth Probe-Total Ozone Mapping Spectroradiometer EqPac Equatorial Pacific (Process Study) ER-2 Earth Resources-2 ERBE Earth Radiation Budget Experiment ERBS Earth Radiation Budget Sensor ERL (NOAA) Environmental Research Laboratories ERS Earth Resources Satellite ESA European Space Agency EST Eastern Standard Time EURASEP European Association of Scientists in Environmental Pollution EUVE Extreme Ultraviolet Explorer -F- FASCAL Fast Calibration (Facility) FDDI Fiber Data Distribution Interface FEL Not an acronym, but a lamp designator. FGGE First GARP Global Experiment FLUPAC (Geochemical) Fluxes in the Pacific (Ocean) FNOC Fleet Numerical Oceanography Center FORTRAN Formula Translation (computer language) FOV Field-of-View FPA Focal Point Assembly FRD Federal Republic of Deutschland (Germany) FTP File Transfer Protocol FWHM Fhll-Width at Half-Maximum FY Fiscal Year -G- GAC Global Area Coverage, coarse resolution satellite data with a nominal ground resolution at nadir of approximately 4 km. GARP Global Atmospheric Research Program GASM General Angle Scattering Meter GF/F Not an acronym; a specific type of glass fiber filter manufactured by Whatman GIN Greenland, Iceland, and Norwegian Seas GISS Goddard Institute for Space Studies GLI Global Imager GLOBEC Global Ocean Ecosystems dynamics GMT Greenwich Mean Time GOES Geostationary Operational Environmental Satellite GOFS Global Ocean Flux Study GOMEX Gulf of Mexico Experiment GP Global Processing (algorithm) GPM General Perturbations Model GPS Global Positioning System GRGS Groupe de Recherche de Geodesie Spatial GRIB Gridded Binary GRIDTOMS Gridded TOMS (data set) GSFC Goddard Space Flight Center GSO Graduate School of Oceanography (University of Rhode Island) G/T System Gain/Total System Noise Temperature GUI Graphical User Interface -H- HDF Hierarchical Data Format HEI Hoffman Engineering, Incorporated HeNe Helium-Neon HHCRM Hand-Held Contrast Reduction Meter HIRIS High Resolution Imaging Spectrometer HN (Polaroid) Not an acronym; a linear sheet polarizer used to check the polarization sensitivity of bands 7 and 8. HOTS Hawaiian Optical Time Series HP Hewlett Packard HPGL Hewlett Packard Graphics Language HPLC High Performance Liquid Chromatography HQ Headquarters HR (Polaroid) Not an acronym; a linear sheet polarizer used to check the polarization sensitivity of bands 1-6. HRPT High Resolution Picture Transmission HST Hawaii Standard Time HYDRA Hydrographic Data Reduction and Analysis I I/O Input/Output IAPSO International Association for the Physical Sciences of the Ocean IAU International Astrophysical Union IBM International Business Machines ICD Interface Control Document ICES International Council on Exploration of the Seas IDL Interactive Data Language IFOV Instantaneous Field-of-View IMS Information Management System IOP Inherent Optical Property IP Internet Protocol IPD Image Processing Division IR Infrared ISCCP International Satellite Cloud Climatology Project ISIC Integrating Sphere Irradiance Collector ISTP International Solar Terrestrial Program IUCRM Inter-Union Commission on Radio Meteorology IUE International Ultraviolet Explorer 15

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SeaWiFS T_,chnicai- Report- Series Cuinulative Index: Volumes i 23 J JAM JYACC Application Manager JAREJapanese Antarctic Research Expedition JGOFSJoint Global Ocean Flux Study JHUJohns Hopkins University JOI Joint Oceanographic Institute JPL Jet Propulsion Laboratory JRCJoint Research Center -K,L- NAVSPASUR Naval Space Surface Surveillance L&N Leeds & Northrup LACLocal Area Coverage, fine resolution satellite data with a nominal ground resolution at nadir of approximately 1 km. LANDSATLand Resources Satellite LDEOLamont-Doherty Earth Observatory (Columbia University) LDGOLaJnon-Doherty Geological Observatory (Columbia University) LDTNLRLocal Dynamic Threshold Nonlinear Raleigh Level-0Raw data. Level-1 Calibrated radiances. Level-2Derived products. Level-3 Gridded and averaged derived products. I,MCELaboratoire de Modelisation du climat et de l'Environment (France) LOCLocal Time LODYCLaboratoire d'Ocdanographie et de Dynamique du climat (Prance) LOICZLand Ocean Interaction in the Coastal Zone LPCMLaboratoire de Physique et Chimie Marines (France) LRERLong-Range Ecological Research LSBLeast Significant Bits LSFLine Spread Punction M- MAREXMarine Resources Experiment Program MARS Multispectral Airborne Radiometer System MASSSMulti-Agency Ship-Scheduling for SeaWiFS MBARIMonterey Bay Aquarium Research Institute MEMMaximum Entropy Method MERMarine Environmental Radiometer MERISMedium Resolution Imaging Spectrometer METEOSATMeteorological Satellite MF Major Frame inF Minor Frame MIPSMillions of Instructions Per Second MIT Massachusetts Institute of Technology MIZ Marginal Ice Zone MLE Maximum Likelihood Estimator MLMLMoss Landing Marine Laboratory (San Jose State University) MO Magneto-Optical MOBYMarine Optical Buoy' MOCEMarine Optical Characterization Experiment MODARCHMODIS Document Archive MODISModerate Resolution Imaging Spectroradiometer MODIS-NNadir-viewing MODIS instrument MODIS-TTilted MODIS instrument to minimize sun glint MOSMarine Optical Spectroradiometer MOUMemorandum of Understanding MSBMost Significant Bits MS/DOS MicroSoft/Disk Operating System MTF Modulation Transfer Function 16 -N- NABE North Atlantic Bloom Experiment NAS National Academy of Science NASA National Aeronautics and Space Administration NASCOM NASA Communications NASDA National Space Development Agency (Japan) NASIC NASA Aircraft/Satellite Instrument Calibration NCAR National Center for Atmospheric Research NCCOSC Navy Command, Control, and Ocean Surveillance Center NCDC (NOAA) National Climatic Data Center NASA Climate Data System NCDS NCSA National Center for Supercmnputing Applications North Carolina State University NCSU NDBC National Data Buoy Center NDVI Normalized Difference Vegetation Index NEdL Noise Equivalent Differential Spectral Radiance NEAT Noise Equivalent Delta Temperature NE6L Noise Equivalent delta Radiance NER Noise Equivalent Radiance NERC Natural Environment Research Council NESDIS National Environmental Satellite Data Information Service NESS National Environmental Satellite Service NET NIMBUS Experiment Temn netCDF (NASA) Network Common Data Format NFS Network File System NGDC National Geophysical Data Center NIMBUS Not an acronym, but a series of NASA experimental weather satellites containing a wide variety of atmosphere, ice, and ocean sensors. NIST National Institute of Standards and Technology NMC National Meteorological Center National Marine Fisheries Service NMFS National Oceanic and Atmospheric Adminis- NOAA tration NOARL Naval Oceanographic and Atmospheric Research Laboratory NODC National Oceanographic Data Center NORAD North American Air Defense (Command) NOPS NIMBUS Observation Processing System NOS National Ocean Service NRA NASA Research Announcement NRaD Naval Research and Development NRIFSF National Research Institute of Far Seas Fisheries (Japan) NRL Naval Research Laboratory NRT Near-Real Time NSCAT NASA Scatterometer NSF National Science Foundation NSSDC National Space Science Data Center -O- OAM Optically Active Materials OCDM Ocean Color Data Mission OCEAN Ocean Colour European Archive Network OCS Ocean Color Scanner OCTS Ocean Color Temperature Sensor (Japan)

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E.R.FirestoneandS.B.Hooker ODASOcean Data Acquisition System ODEXOptical Dynamics Experiment ODUOld Dominion University OFFIOptical Free-Fall Instrument OI Original Irradiance OLIPACOligotrophy in the Pacific (Ocean) OMEXOcean Marine Exchange ONROffice of Naval Research OPTOzone Processing Team OSOperating System OSCOrbital Sciences Corporation OSFIOptical Surface Floating Instrument OSSAOffice of Space Science and Applications OSUOregon State University -p- PARPhotosynthetically Available Radiation PC (IBM) Personal Computer PDRPreliminary Design Review PDT Pacific Daylight Time PFFProgrammable Frame Formatter PI Principal Investigator PIKE Phased Illuminated Knife Edge PM-1 Not an acronym, used to designate the afternoon. PMEL Pacific Marine Environmental Laboratory PML Plymouth Marine Laboratory POC Particulate Organic Carbon POLDER Polarization Detecting Environmental Radiometer (France) or Polarization and Directionality of the Earth's Reflectances (depending on usage). PON Particulate Organic Nitrogen PR Photo Research PRIME Plankton Reactivity in the Marine Environment PST Pacific Standard Time PSU Practical Salinity Units PTFE Polytetrafluoroethylene PUR Photosynthetically Usable Radiation -Q- QC Quality Control QED Quantum Efficient Device R- R&A Research and Applications R&D Research and Development R/V Research Vessel RACER Research on Antarctic Coastal Ecosystem Rates RDBMS Relational Database Management System RDF Radio Direction Finder RF Radio Frequency RFP Request for Proposals RISC Reduced Instruction Set Computer rms root mean squared ROSIS Remote Sensing Imaging Spectrometer, also known as the Reflective Optics System Imaging Spectrometer (Germany) RR Round-Robin RSMAS Rosenstiel School for Marine and Atmospheric Sciences (University of Miami) RSS Remote Sensing Systems (Inc.) RTOP Research and Technology Operation Plan -Ss/c Spacecraft S/N Serial Number SAC Satellite Applications Centre SARSAT Search and Rescue Satellite SBRC (Hughes) Santa Barbara Research Center SBUV Solar Backscatter Ultraviolet Radiometer SBUV-2 Solar Backscatter Ultraviolet Radiometer-2 SCADP SeaWiFS Calibration and Acceptance Data Package SCOR Scientific Committee on Oceanographic Research SDPS SeaWiFS Data Processing System SDS Scientific Data Set SDSU San Diego State University SeaBASS SeaWiFS Bio-Optical Archive and Storage System SEAPAK Not an acronym, but an image display and analysis package developed at GSFC. SeaSCOPE SeaWiFS Study of Climate, Ocean Productivity, and Environmental Change SeaWiFS Sea-viewing Wide Field-of-view Sensor SES Shelf Edge Study SGI Silicon Graphics, Incorporated SI Syst_me International d ' Unit_s or International System of Units SIG Special Interest Group SIO Scripps Institution of Oceanography SIO/MPL Scripps Institution of Oceanography/Marine Physical Laboratory SIRREX SeaWiFS Intercalibration Round-Robin Experiment SIRREX-1 The First SIRREX (July 1992) SIRREX-2 The Second SIRREX (June 1993) SIRREX-3 The Third SIRREX (September 1994) SIS Spherical Integrating Source SISSR Submerged In Situ Spectral Radiometer SJSU San Jose State University SMM Solar Maximum Mission SNR Signal-to-Noise Ratio SO Southern Ocean (algorithm) SOC Simulation Operations Center SOGS SeaStar Operations Ground Subsystem SOH State of Health SOW Statement of Work SPM Suspended Particulate Material or Special Perturbations Model (depending on usage). SPO SeaWiFS Project Office SPOT Satellite Pour l'Observation de la Terre (France) SPSWG SeaWiFS Prelaunch Science Working Group SQL Sequential Query Language SRC Satellite Receiving Station (NERC) SRT Sigma Research Technology, Incorporated SSM/I Special Sensor for Microwave/Imaging SST Sea Surface Temperature or SeaWiFS Science Team (depending on usage). ST Science Team STM Science Team Member SUN Sun Microsystems SWAP Sylter Wattenmeer Austausch-prozesse SWG Science Working Group SXR SeaWiFS Transfer Radiometer 17

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SeaWiFS Technical Report Series -T- T-STemperature-Salinity TAETransportable Applications Executive TAOThermal Array for the Ocean or more recently, Tropical Atmosphere-Ocean TBD To Be Determined TBUSNot an acronym, but a NOAA orbit prediction TDI Time-Delay and Integration TDRSSTracking and Data Relay Satellite System TIROSTelevision Infrared Observation Satellite TLM Telemetry TM Technical Memorandum TOATop of the Atmosphere TOGATropical Ocean Global Atmosphere program TOMSTotal Ozone Mapping Spectrometer TOPEXTopography Experiment TOVSTIROS Operational Vertical Sounder TRMMTropical Rainfall Measuring Mission TSMTotal Suspended Material TV Thermal Vacuum -U- UA University of Arizona UARSUpper Atmosphere Research Satellite UAXRUniversity of Arizona's Transfer Radiometer UCARUniversity Consortium for Atmospheric Research UCMBOUniversity of California Marine Bio-Optics UCSBUniversity of California at Santa Barbara UCSDUniversity of California at San Diego UH University of ttawaii UIM/X User Interface Management/X-Windows UM University of Miami UNESCO United Nations Educational, Scientific, and Cultural Organizations UNIX Not an acronym, a computer operating system. UPS Uninterruptable Power System 18 Cumulative Index: Volumes 1-23 URI University of Rhode Island USC University of Southern California USF University of South Florida UTM Universal Transverse Mercator (projection) UV Ultraviolet UVB Ultraviolet-B UWG User Working Group -V V0 Version 0 Vl Version 1 VAX Virtual Address Extension VCS Version Control Software VDC Volts Direct Current VHF Very High Frequency VI Virtual Instrument VISLAB Visibility Laboratory (Scripps Institution of Oceanography) VISNIR Visible and Near Infrared VMS Virtual Memory System VSF Volume Scattering Function -W- WFF Wallops Flight Facility WHOI Woods Hole Oceanographic Institute WMO World Meteorological Organization • t WOCE World Ocean Circulation Experiment WORM Write-Once Read-Many (times) WVS World Vector Shoreline -X- XDR External Data Representation -Y, Z- YBONI Yamato Bank Optical Mooring

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E.R. Firestone and S.B. Hooker SYMBOLS A a The semi-major axis of the Earth's orbit, a formulation constant, a constant equal to 0.983, a constant equal to -20/tanh(2) or an exponential value in the expression relating the radiance of scattered light to wavelength (depending on usage), a(z,) Spectral absorption coefficient, a Oxygen absorption coefficient. aox Coefficient for oxygen absorption. aoz Coefficient for ozone absorption. wv Coefficient for water vapor absorption. A0 Coefficient for the linear term in the scan modulation correction equation. Ad The detector aperture. Af The foam reflectance. A, The intersection area. A(k) Absorptivity. A(A) Coefficient for calculating bb(A). -Bb Formulation coefficient or a constant equal to 1/3 (depending on usage). b(z, A) Total scattering coefficient, b(O,z, o) Volume scattering coefficient. bdz, ) Spectral back, scattering coefficient. Spectral backscattering coefficient for phytoplankton. b(A) Total Raman scattering coefficient. b() Total scattering coefficient for pure seawater. bl(k) Input data for polarization calculations for SeaWiFS band 1. bT(k) Input data for polarization calculations for SeaWiFS band 7. B Excess target radiance. Bo Coefficient for the power term in the scan modulation correction equation. B(A) Coefficient for calculating bb(A), -Cc(z, x) Spectral beam attenuation coefficient. c( z , 660) Red beam attenuation (at 660 nm). [chl. a]/K Concentration of chlorophyll a over K, the diffuse attenuation coefficient. C Chlorophyll a pigment, or just pigment concentration. C1 Measured value for the flight diffuser on a given scan line, in counts. C13 Pigment concentration derived using CZCS bands 1 and 3. C2 Measured value of the flight diffuser for the scan line immediately sequential to the first scan line used to measure the flight diffuser, i.e., Sa, in counts. C23 Pigment concentration derived using CZCS bands 2 and 3. Cdark Instrument dark restore value, in counts. C_,,t Average total extinction cross-section of a particle. CF The calibration factor. Gout Instrument output, in counts. C_ef Reference chlorophyll value (0.5). Ctemp Temperature sensor output, in counts, represented by an 8-bit digital word in the SeaStar telemetry. [C+P] Pigment concentration defined as mg chlorophyll a plus phaeopigments m -3. -Dd The distance between source and detector apertures. d_ Distance from the ith observation point to the point of interest. dj Distance from the jth observation point to the point of interest. d(I(A)) An increment in detector current. dA An increment in wavelength. ds Detector configuration datum. D Sequential day of the year. /_ Orbit position difference vector. D_t Along-track position difference. Oct Cross-track position difference. D_d Radial position difference. DC Digital count (value) or direct current (depending on usage). DClo Digital counts at 10-bit digitization. The digital counts measured unshadowed. DC ..... DCscat The digital counts due to scattered sunlight. DCToA The digital counts measured at the top of the atmosphere. -Ee Orbit eccentricity of the Earth. E(A) Spectral irradiance. Ea (A) Irradiance in air. Ebeg Beginning irradiance value. Ecal Calibration source irradiance. Ed Incident downwelling irradiance. Ed(O-, A) Incident spectral irradiance. Ea(z, A) Downwelled spectral irradiance. Eend Ending irradiance value. E_s(A) Measured radiance. E_f(A) Reference radiance. Es(A) Surface irradiance. Erem Percentage of energy removed from a wavelength band. Esky(A) Spectral sky irradiance distribution. Spectral sun irradiance distribution. E.(z,) Upwelled spectral irradiance. E(z,) Irradiance in water. -F- The fraction of the surface covered by foam. f fi Filter number, i=0-11. f-ratio The ratio of new to total production. _ P Arithmetic average. A mean conversion factor. F(A) F(A) Calibration factor. F(A) A conversion factor to convert PR714 readings to the GSFC sphere radiance scale. F(A) Average of calibration factors. Extraterrestrial irradiance corrected for Earth-sun F0 distance. F0 The scalar value of the solar spectral irradiance at the top of the atmosphere, multiplied by a columnar matrix of the four Stokes parameters (1/2, 1/2, 0, 0). F0 Mean solar irradiance. F Extraterrestrial irradiance corrected for the atmosphere. F0(A) Mean extraterrestrial spectral irradiance. "Fo(A) Mean extraterrestrial irradiance. 19

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SeaWiFSTechnicalReportSeriesCumulativeIndex:Volumes1-23 Fa Forward scattering probability of the aerosol. Fa The total flux incident on the surface if it did not reflect light. F_ The total flux incident on the surface, corrected for surface reflection. F_ The scalar value of the total flux incident on the surface, corrected for surface reflection, multiplied by a columnar matrix of the four Stokes parameters. F, A correction factor. -Ggl A constant equal to 0.82. g2 A constant equal to -0.55. gs Gain selection datum. G Gain factor. G1 Gain setting 1. G2 Gain setting 2. G3 Gain setting 3. G4 Gain setting 4. R,(A,)/h_(670) = (670/)Q "T2r(670)/T2(Ai). G¢ Gravitational constant of the Earth (398,600.5 km 3 8--2). eTt Gain factor at gain setting n. -Hh(k) Residual values without the calculated sinusoidal response. HGMT GMT in hours. HM The measured moon irradiance. H_ Altitude of the spacecraft (for SeaStar 705 kin). I i Inclination angle or interval index (depending oil usage). i' Inclination angle minus 90 °, I Rayleigh intensity. I0 Surface downweUing irradianee. 11 Radiant intensity after traversing through an absorbing medium. 12 Reflected radiant energy received by the satellite sensor. Imp× Recorded maximum instrument output in response to linearly polarized light. lmin Recorded minimum instrument output in response to linearly polarized light. I(A) Detector current. ICS Current from the current source diode. J j Interval index. J2 The J2 gravity field term (0.0010863). J3 The J3 gravity field term (-0.0000254). J4 The J4 gravity field term (-0.0000161). J5 The J5 gravity field term. -Kk Wavenumber of light (l/A). k_ Beginning wavenumber, k2 Ending wavenumber. kc(A) Spectral fit coefficient weighted over the SeaWiFS bands; k'c(A ) also used. K(z, £) Diffuse attenuation coefficient. 20 K(490) Diffuse attenuation coefficient of seawater measured at 490 nm. K0(A) Diffuse attenuation coefficient at z = 0. K1 Primary instrument sensitivity factor. K2 Gain factor. K3 Temperature dependence of detector output. K4 Scan modulation correction factor. K5 Spacecraft analog to digital conversion factor. K6 Analog-to-digital offset in spacecraft conversion. K7 Current from the diode at 20°C. Kd :,) Attenuation coefficients for pbytoplankton. K_(:) Attenuation coefficient downwelled irradiance. Kg(A) Attenuation coefficients for Gelbstoff. KL(z, ) Attenuation coefficient upwelled radiance. K(A) Attenuation coefficients for pure seawater. L L(A) Spectral radiance. L(Am) The radiance of a calibration sphere at the nominal peak wavelength of a filter. L(z, O,¢) Submerged upwelled radiance distribution. Lo The radiance of the atmosphere. L Aerosol radiance. L_(A) Cloud radiance threshold. Lcal Calibration source radiance. L_ A matrix of the four Stokes parameters for radiance incident on the surface. Lcloud Maximum radiance from reflected light off of clouds. L_(A) Sun glint radiance. L,(A) Spectral radiance for run number i, or radiance, where i may represent any of the following: m for measured; LU for look-up table; 0 for light scattered by the atmosphere; sfc for reflection from the sea surface; and w for water-leaving radiance. LLU The radiance calculated for the look-up tables. Lm The radiance of the ocean-atmosphere system measured at a satellite. LM The radiance of the moon. Lmax Maximum saturation radiance. Lnadlr Measured radiance at nadir. LNESA) Noise equivalent radiance. L_(A) Rayleigh radiance. L_o(A) Rayleigh radiance at standard atmospheric pressure, P0. L,(2) Subsurface water radiance. Lsa Lo + L_fc. L_( :) Saturation radiance for the sensor. L_can Measured radiance at any pixel in a scan. Lsfc The radiance of the light reflected from the sea surface. isf¢ The columnar matrix of the four Stokes parameters (L,l, Lu,2, Lu,3, Lu,4). L.j,y(A) Spectral sky radiance distribution. Lt(A) Total radiance at the sensor. Ltypica[ Expected radiance from the ocean measured on orbit. Lu(z,A) Upwelled spectral radiance. Lup The columnar matrix of light leaving the surface containing the values L_pA , L_p,2, Lup,3, and Lup,4. Lup,i The l_hDTRhl_ radiance parameters (for i = 1, 4). Lw The waterqeaving radiance of light scattered from beneath the surface and penetrating it. Lw(443) Water-leaving radiance at 443 nm.

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E.R.FirestoneandS.B,Hooker Lw(520) Water-leaving radiance at 520 nm. Lw (550) Water-leaving radiance at 550 nm. Lw(670) Water-leaving radiance at 670 nm. L_ The scalar value of the water-leaving radiance multiplied by a columnar matrix of the four Stokes parameters. LWN (,k) Normalized water-leaving radiance. L& Measured radiance for mirror side 1. LS2 Measured radiance for mirror side 2. -M m Index of refraction. AI Path length through the atmosphere. ]tl'_ The corrected mean orbit anomaly of the Earth, which is a function of date, and refers to an imaginary moon in a circular orbit. Mo_ Path length for ozone transmittance. -Nn The index of refraction, the mean orbital motion in revolutions per day, or the gain setting (depending on usage). n(A) An exponent conceptually similar to the/ngstr6m exponent. () Index of refraction of water. N The total number of something. ND The compensation factor for a 4 log neutral density filter. N Total number density. N, Total number density of either the first or second aerosol model when i = 1 or 2, respectively. -0- OPxV. -ppa A factor to account for the probability of scattering to the spacecraft for three different paths from the SUN. po/(4) Aerosol albedo of the scattering phase function. P_ The probability of seeing sun glitter in the direction 0, q_ given the sun in position 0o, o as a function of wind speed (W). P Nodal period, phaeopigment concentration or local surface pressure (depending oil usage). Orbit position vector. P(O+) Phase function for forward scattering. P(O-) Phase function for backward scattering. Po Standard atmospheric pressure (1,013.25 rob). & Probability of scattering to the spacecraft. P PR714 raw radiance. P_ Phaeopigment concentration. PF Polarization factor. Pxl Pixel number, i.e., the numerical designation of a pixel in a scan line. -Qq Water transmittance factor. Q(,k) L_(0-, A) to E_(0-, A) relation factor (theoretically equal to r). -Rr Water-air reflectance for totally diffuse irradiance. rl The radius of circle one or source aperture (depending on usage). r2 The radius of circle two or detector aperture (depending on usage). ri The geometric mean radii of either the first or second aerosol model when i = 1 or 2, respectively. R Reflectance. R The reflection matrix. R 2 The square of the linear correlation coefficient. n(0-,) Irradiance reflectance just below the sea surface. B1 Multiplier for mirror side 1. R2 Multiplier for mirror side 2. R_ Aerosol reflectance. Ro/(qT2_). R_ Mean Earth radius (6,378.137 km). RE Effective resistance for the thermistor-resistor pair. /%(z, ) Spectral reflectance. R Rayleigh reflectance. Rrs Remote sensing reflectance. R_ Subsurface reflectance. Rt Total reflectance at the sensor. & (Rt - R_)/(qT2_). RT Resistance of the thermistor. B_ Sunspot number. -Ss The reflectance of the atmosphere for isotropic radiance incident at its base. s(A) Slope for the range ff 1,023. S Solar constant. Si Initial detector signal. S, Detector signal with gain. S(X) L=(X)/Lo(670). -T,Ut Time variable or the transmission of L_fc through the atmosphere (depending on usage). t' The transmission of Lw through the atmosphere. t(k) Spectral transmission as a function of wavenumber. t(,k) Diffuse transmittance of the atmosphere. to The sum of the direct and diffuse transmission of sunlight through the atmosphere. tl First observation time. t2 Second observation time. to Initial time. t_ Aerosol transmittance after absorption. t_ Aerosol transmittance after scattering. ta Direct component of transmittance after absorption by the gaseous components of the atmosphere, scattering and absorption by aerosols, and scattering by Rayleigh. t_ Time difference in hours between present position and most recent equator crossing. tEc Equator crossing time. to, Transmittance after absorption by ozone. t,. Transmittance after Rayleigh scattering. t, Diffuse component of transmittance after absorption by the gaseous components of the atmosphere, scattering and absorption by aerosols, and scattering by Rayleigh. tw_ Transmittance after absorption by water vapor. 21

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SeaWiFSTechnicalReportSeriesCumulativeIndex:Volumes1-23 T Tilt position. T(A) The transmittance along the slant path to the sun. T0() Transmittance through the surface. T(X,O) Total transmittance (direct plus diffuse) from the ocean through the atmosphere to the spacecraft along the path determined by the spacecraft zenith ALw(670) The error in the water-leaving radiance for the red angle 0. T2r Two-way diffuse transmittance for Rayleigh attenuation. T0(A,O0)Total downward transmittance of irradiance. T Equation of time. Zox Transmittance of oxygen (O2). To=Transmittance of ozone (03). Ts(A) Transmittance through the surface. r_() Transmittance through a water path. T, Transmittance of water vapor (H20). -V- 17 Orbit velocity vector. V,(tj) The ith spatial location at observation time t3. VM The radiance detector voltage while viewing the moon, Vs The irradiance detector voltage while viewing the sun, VT Focal plane temperature sensor voltage output. -W- W Wind speed. Wa Direct irradiance divided by the total irradiance at the surface. Wo Diffuse irradiance divided by the total irradiance. -Xx Abscissa or longitudinal coordinate, or the pixel number within a scan line (depending on usage). X ECEF x component of orbit position. )( ECEF X component of orbit velocity. -yy Ordinate or meridional coordinate. Y ECEF y component of orbit position. ECEF Y component of orbit velocity. -Z- Z ECEF z component of orbit position. 2 ECEF Z component of orbit velocity. - GREEK - a Percent albedo, tilt angle, formulation coefficient (intercept), the power constant in the ngstrSm formulation, or the exponential value in the expression relating the extinction coefficient to wavelength (depending on usage). ga(O +, ) Spectral mean cosine for downwelling radiance at A formulation coeflicent (slope) or a constant in the Angstr6m formulation (depending on usage). The extinction coefficient of either the first or second aerosol model when i = 1 or 2, respectively. a(z, ,,0) Spectral volume scattering function. The ngstr6m exponent. () The ratio of the aerosol optical thickness at wavelength A to the aerosol optical thickness at 670 nm. 22 6 The great circle distance from o(t0) to s(t - t0), the departure of each individual conversion factor from the mean, a relative difference, or the absorption coefficient (depending on usage). Ak Equivalent bandwidth. channel. ApCO2 Partial pressure difference of CO2 between air and sea water, z_P The difference in successive pixels or the pressure deviation from standard pressure, Po (depending on usage). At Time difference. AT(A) The error in transmittance. The error (in radians) in the knowledge of/9,. AA An interval in wavelength. Ap=(A) The error in the water-leaving reflectance for the red channel. A(:) The absolute error in spectral optical depth. AT The error in the aerosol optical thickness. A The longitude difference from the sub-satellite point to the pixel. A_v_ Longitude difference. Bearing from the sub-satellite point to the pixel along the direction of motion of the satellite. a Spacecraft zenith angle, spacecraft pitch, or polar angle of the line-of-sight at a spacecraft (depending on usage). Pitch rate. 0o Polar angle of the direct sunlight. 01 The intersection angle of circle one. 02 The intersection angle of circle two. 0o Solar zenith angle. 0n The zenith angle of the vector normal to the surface vector for which glint will be observed. ON The angle with respect to nadir that the sea surface slopes to produce a reflection angle to the spacecraft. Scan angle of sensor or the solar zenith angle (depending on usage). o" Scan angle of sensor adjusted for tilt. An integration constant: _ = AaTrr_ (r_ +r_ + d 2)- 1 A Wavelength of light. Ai Starting wavelength. A2 Ending wavelength. A_ Nominal center wavelength. Mean value or cosine of the satellite zenith angle (depending on usage). _o Cosine of the solar zenith angle. the sea surface. lao The reciprocal of the effective optical length to the top of the atmosphere, along the line of sight to the sun. v3 The jth temporal weighting factor. _EM The distance between the Earth and the moon.

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E.R. Firestone and S.B. Hooker The Fresnel reflectivity, the weighted direct plus dif- "Fro Rayleigh optical thickness weighted by the SeaWiFS fuse reflectance, or the average reflectance of the sea (depending on usage). p(e) Fresnel reflectance for viewing geometry. p(eo) FYesnel reflectance for solar geometry. pc,_ Reflectance of clouds and ice. P_ Sea surface reflectance for direct irradiance at normal incidence for a flat sea. Pi The reflectance of the sea of either the first or second aerosol model when i = 1 or 2, respectively. p,() The reflectance where i may represent any of the following: m for measured; LU for look-up table; o for light scattered by the atmosphere; sfc for reflection from the sea surface; and w for water-leaving radiance. PN Reflectance for diffuse irradiance. O" One standard deviation of a set of data values. o.2 The mean square surface slope distribution. () The spectral optical depth. a = ((logr - logri)2). r(z, _X)Spectral optical depth. Ta Aerosol optical thickness. fox Oxygen optical thickness at 750 nm. "to= The optical thickness of ozone. Tr Rayleigh optical thickness (due to scattering by the standard molecular atmosphere). Pressure corrected Rayleigh optical thickness. fro Rayleigh optical thickness at standard atmospheric pressure, P0. spectral response. Spectral solar atmospheric transmission. Twv The absorption optical thickness of water vapor. ¢ Azimuth angle of the line-of-sight at a spacecraft. ¢o Azimuth angle of the direct sunlight. (I) Spacecraft azimuth angle or roll (depending on usage). Roll rate. (I)D The detector solid angle. (I)M The solid angle subtended by the moon at the measuring instrument. o Solar azimuth angle. Pixel latitude or yaw (depending on usage). Yaw rate. qJd Solar declination latitude. '(t) Sub-satellite latitude as a function of time. w Longitude variable or the surface reflection angle (depending on usage). w0 Old longitude value. Wa Single scattering albedo of the aerosol. we Equator crossing longitude. wi Spatial weighting factor. ws Longitude variable. ft Solar hour angle or the amount of ozone in Dobson units (depending on usage). 23

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SeaWiFSTechnicalReportSeriesCumulative Index: Volumes 1-23 REFERENCES A Abbott, M.R., and P.M. Zion, 1985: Satelhte observations of phytoplankton variability during an upwelling event. Cont. Shelf Res., 4, 661-680. , and D.B. Chelton, 1991: Advances in passive remote sensing of the ocean. U. S. National Report to the International Union o] Geodesy and Geophysics 1987-1990, Contributions in Oceanography, Am. Geophys. Union, Washington, DC, 571-589. Abel, P., G.R. Smith, R.H. Levin, and H. Jacobowitz, 1988: Results from aircraft measurements over White Sands, New Mexico, to calibrate the visible channels of spacecraft instruments. SPIE, 924_ 208-214. , B. Guenther, R. Gatimore, and J. Cooper, 1993: Calibration results for NOAA-11 AVHRR channels 1 and 2 from congruent aircraft observations. J. Atmos. and Ocean. Technol., 10, 493-508. Ahmad, Z., and R.S. Fraser, 1982: An iterative radiative transfer code for ocean-atmosphere systems. J. Atmos. Sci., 39, 656-665. 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E.R.FirestoneandS.B.Hooker , A.W.Holmes,W.L.Barnes,W.E.Esaias,andC.R.Mc- Bruegge, C.J., V.G. Duval, N.L. Chrien, and D.J. Diner, 1993: Clain,1994b:TheSeaWiFSPrelaunchRadiometericCali- Calibration plans for the Multi-angle Imaging SpectrorabrationandSpectralCharacterization. NASA Tech. Memo. 104566, Vol. 23, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 55 pp. Berger, W.H., 1989: Productivity of the Ocean: Present and Past. V.S. Smetacek and G. Wefer, Eds., John Wiley & Sons, 471 pp. Berk, A., L.S. Bernstein, and D.C. Robertson, 1989: MOD- TRAN: A moderate resolution model for LOWTRAN 7. GL-TR-89-0122, Geophysics Laboratory, Air Force Systems Command, 38 pp. Bernstein, R.L., 1982: Sea surface temperature estimation using the NOAA-6 satellite Advanced Very High Resolution Radiometer. J. Geophys. Res., 87, 9,455-9,465. Biggar, S.F., D.I. Gellman, and P.N. Slater, 1990: Improved evaluation of optical depth components from Langley plot data. 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Prieur, 1981: Absorption by dissolved organic matter of the sea (yellow substance) in the UV and visible domains. Limnol. Oceanogr., 26, 43- 53. , and --, 1987: Atmospheric corrections and interpretation of marine radiances in CZCS imagery: use of a reflectance model. Oceanol. Acta, 7, 33-50. Brock, J.C., C.R. McClain, M.E. Luther, and W.W. Hay, 1991: The phytoplankton bloom in the northwest Arabian Sea during the southwest monsoon of 1979. J. Geophys. Res., 96, 20,623-20,642. --, and --, 1992: Interannual variability in phytoplankton blooms observed in the northwestern Arabian Sea during the southwest monsoon. J. Geophys. Res., 97, 733-750. Brouwer, D., 1959: Solution of the problem of artificial satellite theory without drag. Astron. J., 64(1274), 378-397. Brown, C.W., and J.A. Yoder, 1994: Coccolithophorid blooms in the global ocean. J. Geophys. Res,, 99(C4), 7,467- 7,482. Brown, O.B., and R.H. Evans, 1985: Calibration of Advanced Very High Resolution Radiometer infrared observations. J. Geophys. Res., 90, 11,667-11,677. diometer (MISR). Metrologia, 30(4), 213-221. Bruening, R.J., 1987: Spectral irradiance scales based on filtered absolute silicon photodetectors. Appl. Opt., 26_ 1,051-1,057. Burlov-Vasiljev, K.A., E.A. Gurtovenko, and Y.B. Matvejev, 1992: The Solar Radiation Between 310-680 nm. Proceedings of the Workshop on the Solar Electromagnetic Radiation Study ]or Solar Cycle 22, R.E. Donnelly, Ed., U.S. DOC NOAA Environmental Research Laboratory, Boulder, Colorado, 49-53. -C- Campbell, J.W., and J.E. O'Reilly, 1988: Role of satellites in estimating primary productivity on the northwest Atlantic continental shelf. Cont. Shelf Res., 8, 179-204. Capellari, J.O., C.E. Velez, and A.J. Fuchs, 1976: Mathematical Theory of the Goddard Trajectory Determination System. GSFC X-582-76-77, NASA Goddard Space Flight Center, Greenbelt, Maryland, 596 pp. Caraux, D., and R.W. 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E.R.FirestoneandS.B.Hooker THESEAWIFSTECHNICALREPORTSERIES Vol. 1 Hooker, S.B., W.E. Esaias, G.C. Feldman, W.W. Gregg, and C.R. McClain, 1992: An Overview of SeaWiFS and Ocean Color. NASA Tech. Memo. 104566, Vol. 1, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 24 pp., plus color plates. Vol. 2 Gregg, W.W., 1992: Analysis of Orbit Selection for SeaWiFS: Ascending vs. Descending Node. NASA Tech. Memo. 104566, Vol. 2, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 16 pp. Vol. 3 McClain, C.R., W.E. Esaias, W. Barnes, B. Guenther, D. Endres, S. Hooker, G. Mitchell, and R. Barnes, 1992: Calibration and Validation Plan for SeaWiFS. NASA Tech. Memo. 104566, Vol. 3, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 41 pp. Vol. 4 McClain, C.R., E. Yeh, and G. Fu, 1992: An Analysis of GAC Sampling Algorithms: A Case Study. NASA Tech. Memo. 104566, Vol. 4, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 22 pp., plus color plates. Vol. 5 Mueller, J.L., and R.W. Austin, 1992: Ocean Optics Protocols. NASA Tech. Memo. 104566, Vol. 5, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 43pp. Vol. 6 Firestone, E.R., and S.B. Hooker, 1992: SeaWiFS Technical Report Series Summary Index: Volumes 1-5. NASA Tech. Memo. 104566, Vol. 6, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 9 pp. Vol. 7 Darzi, M., 1992: Cloud Screening for Polar Orbiting Visible and IR Satellite Sensors. NASA Tech. Memo. 104566, Vol. 7, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 7 pp. Vol. 8 Hooker, S.B., W.E. Esaias, and L.A. Rexrode, 1993: Proceedings of the First SeaWiFS Science Team Meeting. NASA Tech. Memo. 104566, Vol. 8, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 61 pp. Vol. 9 Gregg, W.W., F.C. Chen, A.L. Mezaache, J.D. Chen, J.A. Whiting, 1993: The Simulated SeaWiFS Data Set, Version 1. NASA Tech. Memo. 10.4566, Vol. 9, S.B. Hooker and E.R. Firestone, and A.W. Indest, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 17pp. Vol. 10 Woodward, R.H., R.A. Barnes, C.R. McClain, W.E. Esaias, W.L. Barnes, and A.T. Mecherikunnel, 1993: Modeling of the SeaWiFS Solar and Lunar Observations. NASA Tech. Memo. 104566, Vol. 10, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 26 pp. !/ol. 11 Patt, F.S., C.M. Hoisington, W.W. Gregg, and P.L. Coronado, 1993: Analysis of Selected Orbit Propagation Models for the SeaWiFS Mission. NASA Tech. Memo. 104566, Vol. 11, S.B. Hooker, E.R. Firestone, and A.W. Indest, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 16 pp. Vol. 12 Firestone, E.R., and S.B. Hooker, 1993: SeaWiFS Technical Report Series Summary Index: Volumes 1-11. NASA Tech. Memo. 104566, Vol. 12, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 28 pp. Vol. 13 McClaln, C.R., K.R. Arrigo, J. Comiso, R. Fraser, M. Darzi, J.K. Firestone, B. Schieber, E-n. Yeh, and C.W. Sullivan, 1994: Case Studies for SeaWiFS Calibration and Validation, Part 1. NASA Tech. Memo. 104566, Vol. 13, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 52pp., plus color plates. Vol. 14 Mueller, J.L., 1993: The First SeaWiFS Intercalibration Round- Robin Experiment, SIRREX-1, July 1992. NASA Tech. Memo. 104566, Vol. 14, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 60 pp. Vol. 15 Gregg, W.W., F.S. Patt, R.H. _Voodward, 1994: The Simulated SeaWiFS Data Set, Version 2. NASA Tech. Memo. 104566, Vol. 15, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 42pp., plus color plates. Vol. 16 Mueller, J.L., B.C. Johnson, C.L. Cromer, J.W. Cooper, J.T. McLean, S.B. Hooker, and T.L. Westphal, 1994: The Second SeaWiFS Intercalibration Round-Robin Experiment, SIRREX-2, June 1993. NASA Tech. Memo. 104566, Vol. 16, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 121 pp. Vol. 17 Abbott, M.R., O.B. Brown, H.R. Gordon, KL. Carder, R.E. Evans, F.E. Muller-Karger, and W.E. Esaias, 1994: Ocean color in the 21st century: a strategy for a 20-year time series. NASA Tech. Memo. 104566, Vol. 17, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 20pp. Vol. 18 Firestone, E.R., and S.B. Hooker, 1995: SeaWiFS Technical Report Series Summary Index: Volumes 1-17. NASA Tech. Memo. 104566, Vol. 18, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 46 pages. 35

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SeaWiFSTechnicalReportSeriesCumulativeIndex:Volumes1-23 Vol. 19 McClain, C.R., R.S. __aser, J.T. McLean, M. Darz], J.K. Firestone, F.S. Part, B.D. Schieber, R.H. Woodward, E-n. Yeh, S. Mattoo, S.F. Biggar, P.N. Slater, K.J. Thome, A.W. Holmes, R.A. Barnes, and K.J. Voss, 1994: Case Studies for SeaWiFS Calibration and Validation, Part 2. NASA Tech. Memo. 104566, Vol. 19, S.B. Hooker, E.R. Firestone, and J.G. Acker, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 73 pp. Vol. 20 Hooker, S.B., C.R. McClain, J.K. Firestone, T.L. Westphal, E-n. Yeh, and Y. Ge, 1994: The SeaW_FS Bio-Optical Archive and Storage System (SeaBASS), Part 1. NASA Tech. Memo. 104566, Vol. 20, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 40pp. Vol. 21 Acker, J.G., 1994: The Heritage of SeaWiFS: A Retrospective on the CZCS NIMBUS Experiment Team (NET) Program. NASA Tech. Memo. 104566, Vol. 21, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 43pp. 36 Vol. 22 Barnes, R.A., W.L. Barnes, W.E. Esa_as, and C.R. McClain, 1994: Prelaunch Acceptance Report for the SeaWiFS Radiometer. NASA Tech. Memo. 104566, Vol. 22, S.B. Hooker, E.R. Firestone, and J.G. Acker, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 32 pp. Vol. 23 Barnes, R.A., A.W. Holmes, W.L. Barnes, W.E. Esaias, C.R. McClain, and T. Svitek, 1994: SeaWiFS Prelaunch Radiometric Calibration and Spectral Characterization. NASA Tech. Memo. 104566, Vol. 23, S.B. Hooker, E.R. Firestone, and J.G. Acker, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 55 pp. Vol. 24 Firestone, E.R., and S.B. Hooker, 1995: SeaWiFS Technical Report Series Summary Index: Volumes 1-23. NASA Tech. Memo. 104566, Vol. 24, S.B. Hooker and E.R. Firestone, Eds., NASA Goddard Space Flight Center, Greenbelt, Maryland, 36 pp.

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REPORT DOCUMENTATION PAGE OMeNoozo4-olee I Form Approved Public reporting burden for this collection of infon"nalion is estimated to average 1 hour per response, including fhe time for reviewing instructions, searching existing data sources, gathering and maintaining the data needed, and completing and reviewing the collection of information. Send comments regarding this burden estimate or any other aspect o_ this collection of information, including suggestions for reducing this burden, to Washington Headquarters Services, Directorate for Information Operations and Reports, 1215 Jefferson Davis Highway, Suite 1204, Arlin_lton, VA 22202-4302, and to the Office of Manacdement and Budc=_et, Paperwork Reduction Proiect 10704-01881, Washington, DC 20503. 1. AGENCY USE ONLY (Leave blank) 2. REPORT DATE June 1995 4. TITLE AND SUBTITLE SeaWiFS Technical Report Series Volume 24-SeaWiFS Technical Report Series Cumulative 6. AUTHOR(S) Elaine R. Firestone and Stanford B. Hooker Series Editors: Stanford B. Hooker and Elaine R. Firestone 7. PERFORMING ORGANIZATION NAME(S) AND ADDRESS(ES) Laboratory for Hydrospheric Processes Goddard Space Flight Center Greenbelt, Maryland 20771 13. REPORT TYPE AND DATES COVERED ] Technical Memorandum 5. FUNDING NUMBERS Index: Volumes 1-23 Code 970.2 8. PERFORMING ORGANIZATION REPORT NUMBER 95B00092 NAME(S) AND ADDRESS(ES) 10. SPONSORING/MONITORING 9. SPONSORING/MONITORING AGENCY National Aeronautics and Space Administration Washington, D.C. 20546-0001 11. SUPPLEMENTARY NOTES Elaine R. Firestone: General Sciences Corporation, Laurel, 12a. DISTRIBUTION/AVAILABILITY STATEMENT Unclassified-Unlimited Subject Category 48 AGENCY REPORT NUMBER TM-104566, Vol. 24 Maryland 12b. DISTRIBUTION CODE Report is available from the Center for AeroSpace Information (CASI), 800 Elkridge Landing Road, Linthicum Heights, MD 21090; (301)621-0390 13. ABSTRACT (Maximum 200 words) The Sea-viewing Wide Field-of-view Sensor (SeaWiFS) is the follow-on ocean color instrument to the Coastal Zone Color Scanner (CZCS), which ceased operations in 1986, after an eight-year mission. SeaWiFS is expected to be launched in 1995, on the SeaStar satellite, being built by Orbital Sciences Corporation (OSC). The SeaWiFS Project at the National Aeronautics and Space Administration's (NASA) Goddard Space Flight Center (GSFC), has undertaken the responsibility of documenting all aspects of this mission, which is critical to the ocean color and marine science communities. This documentation, entitled the SeaWiFS Technical Report Series, is in the form of NASA Technical Memorandum Number 104566. All reports published are volumes within the series. This particular volume serves as a reference, or guidebook, to the previous 23 volumes and consists of 6 sections including: an errata, an addendum (summaries of various SeaWiFS Working Group Bio-optical Algorithm and Protocols Subgroups Workshops, and other auxiliary information), an index to key words and phrases, a list of all references cited, and lists of acronyms and symbols used. It is the editors' intention to publish a cumulative index of this type after every five volumes in the series. Each index covers the topics published in all previous editions, that is, each new index will include all of the information contained in the preceeding indices. 14. SUBJECT TERMS SeaWiFS, Oceanography, Cumulative, Index, Summary, 15. NUMBER OF PAGES 36 Overvieu,, Errata, Addendum, Glossary, Symbols, References, Bio-optical, Algorithm Workshop, Protocols Subgroup 16. PRICE CODE Workshop 17. SECURITY CLASSIFICATION 18. SECURITY CLASSIRCATION OF REPORT OF THIS PAGE Unclassified Unclassified NSN 7540-01-280-5500 19. SECURITY CLASSIFICATION 20. LIMITATION OF ABSTRACT OF ABSTRACT Unclassified Unlimited Standard Form 298 (Rev. 2-89)

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Original page 42 of SeaWiFS technical report series. Volume 24: SeaWiFS technical report series cumulative index, volumes 1-23