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zenodo40/100

Рис. 2. Haliotis (Nordotis) discus Reeve, 1846: Японское море, СевернаЯ КореЯ (пров. Хамгён-пукто), ЁмбудЖин, плЯЖ, длина 61.0 мм, ЗоомуЗей ДВФУ № 38669/Ga-8541. Fig. 2. Haliotis (Nordotis) discus Reeve, 1846: Sea of Japan, North Korea (North Hamgyong Province), Yombunjin, beach, length 61.0 mm, ZMFU no. 38669/Ga-8541. in On the bivalve molluscan fauna of North Hamgyong Province (North Korea)

Рис. 2. Haliotis (Nordotis) discus Reeve, 1846: Японское море, СевернаЯ КореЯ (пров. Хамгён-пукто), ЁмбудЖин, плЯЖ, длина 61.0 мм, ЗоомуЗей ДВФУ № 38669/Ga-8541. Fig. 2. Haliotis (Nordotis) discus Reeve, 1846: Sea of Japan, North Korea (North Hamgyong Province), Yombunjin, beach, length 61.0 mm, ZMFU no. 38669/Ga-8541.

opencc-by-4.0Dec 2014View details →
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Bibliometric and spatially georeferenced datasets of beach research in Mexico from 1993 to 2023

<p><span>These datasets resulted from a systematic review of published investigations on Mexican sandy beaches from 1993 to 2023. The literature search was performed on late December 2023 using three bibliographic repositories: Scopus, Web of Science and Redalyc. In the first dataset all records were standardized following the format of the Scopus database, including the following bibliographic metrics: authors, title, publication year, source, citations, authors' affiliations, and keywords. </span></p> <p><span>The second dataset includes the georeferenced beach location according to information provided in the articles listed in the first dataset. On this regard, the dataset includes the following fields: citation of the literature source; name of the beach as provided in the literature sources; latitude and longitude in grades, minutes and seconds using the geodetic datum WGS84; the research theme; and the research subtheme.</span></p>

opencc-by-4.0May 2024View details →
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Рис. 7. Удельный вес ЭкЗемплЯров глицимериса (%, от обЩего числа раковин и створок) со следами периостракума на иЗученном участке. Fig. 7. Proportions of the Glycymeris yessoensis specimens with traces of periostracum (of the total number of shells and valves) on the beach studied. in Shell destruction of the bivalve mollusk Glycymeris yessoensis on a beach in Possjet Bay (the Sea of Japan)

Рис. 7. Удельный вес ЭкЗемплЯров глицимериса (%, от обЩего числа раковин и створок) со следами периостракума на иЗученном участке. Fig. 7. Proportions of the Glycymeris yessoensis specimens with traces of periostracum (of the total number of shells and valves) on the beach studied.

opencc-by-4.0Dec 2020View details →
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Рис. 1. Раковина хоккайдского глицимериса Glycymeris yessoensis (Sowerby III, 1889) снаруЖи и иЗнутри. Японское море, Зал. Посьета, береговые выбросы, длина раковины 38.5 мм, ЗоомуЗей ДВФУ № 10034/Bv-493. in Shell destruction of the bivalve mollusk Glycymeris yessoensis on a beach in Possjet Bay (the Sea of Japan)

Рис. 1. Раковина хоккайдского глицимериса Glycymeris yessoensis (Sowerby III, 1889) снаруЖи и иЗнутри. Японское море, Зал. Посьета, береговые выбросы, длина раковины 38.5 мм, ЗоомуЗей ДВФУ № 10034/Bv-493.

opencc-by-4.0Dec 2020View details →
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Рис. 6. Удельный вес ЭкЗемплЯров глицимериса (%, от обЩего числа раковин и створок) с механическими повреЖдениЯми на иЗученном участке. Fig. 6. Proportions of the Glycymeris yessoensis specimens with mechanical damage (of the total number of shells and valves) on the beach studied. in Shell destruction of the bivalve mollusk Glycymeris yessoensis on a beach in Possjet Bay (the Sea of Japan)

Рис. 6. Удельный вес ЭкЗемплЯров глицимериса (%, от обЩего числа раковин и створок) с механическими повреЖдениЯми на иЗученном участке. Fig. 6. Proportions of the Glycymeris yessoensis specimens with mechanical damage (of the total number of shells and valves) on the beach studied.

opencc-by-4.0Dec 2020View details →
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Fig. 2. A in Shell destruction of the bivalve mollusk Glycymeris yessoensis on a beach in Possjet Bay (the Sea of Japan)

Fig. 2. A map of Possjet Bay with indication of Cape Shelekha and the area studied with sample's numbers (A).

opencc-by-4.0Dec 2020View details →
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CoastSeg: Beach transects and beachface slope database v2.0

<h2><strong>CoastSeg: Beach transects and beachface slope database v2.0</strong></h2> <p>Coastal shoreline-normal transects, to support shoreline extraction from satellite imagery, and tidal correction of CoastSeg-derived shoreline time-series and other shoreline data, as well as miscellaneous&nbsp; analyses of coastal shoreline data.</p> <p>&nbsp;</p> <p>These data work with the software package CoastSeg https://github.com/SatelliteShorelines/CoastSeg. More details are available on the project's website https://satelliteshorelines.github.io/CoastSeg/</p> <p>These transecst are not comprehensive in coverage, representing the best available data known to us at this time, and are provided to the user as a courtesy, but each user has the option (and is encouraged) to develop and use their own transects.</p> <h3><strong>Transects data</strong></h3> <p>1. id: unique ID code</p> <p>2. slope: beach face slope, for tidal correction of transect-based data<br>3. distance: distance in degrees between slope datum location and transect location<br>4. feature_x: transect location x<br>5. feature_y: transect location y<br>6. nearest_x: nearest slope location x<br>7. nearest_y: nearest slope location y</p> <p>Note that beach slopes are not available for every transect location. A value of NULL is used in those (relatively rare) locations.</p> <p>Beach face slope and transect data have been derived from:</p> <p>1. Doran, K.S., Long, J.W., Birchler, J.J., Brenner, O.T., Hardy, M.W., Morgan, K.L.M, Stockdon, H.F., and Torres, M.L., 2017, Lidar-derived beach morphology (dune crest, dune toe, and shoreline) for U.S. sandy coastlines (ver. 4.0, October 2020): U.S. Geological Survey data release,&nbsp;<a href="https://doi.org/10.5066/F7GF0S0Z">https://doi.org/10.5066/F7GF0S0Z</a>.</p> <p>2. Kilian Vos. (2023). Time-series of shoreline change along the Pacific Rim (v1.4) [Data set]. Zenodo. https://doi.org/10.5281/zenodo.7758183</p> <p>3. Andrew Short. (2022). Sediment size dataset for Australia [Data set]. In Australian Coastal Systems (0.1, p. XXV, 1241). Springer Cham. https://doi.org/10.5281/zenodo.7127186</p> <p>4. Vos, Kilian, Wen, Deng, Harley, Mitchell D., Turner, Ian L., &amp; Splinter, Kristen D. (2022). Beach-face slope dataset for Australia (Version 2) [Data set]. Zenodo. https://doi.org/10.5281/zenodo.7272538</p> <p>5. Gibbs, A.E., Ohman, K.A., Coppersmith, R., and Richmond, B.M., 2017, National Assessment of Shoreline Change: A GIS compilation of updated vector shorelines and associated shoreline change data for the north coast of Alaska, U.S. Canadian border to Icy Cape: U.S. Geological Survey data release, <a href="https://doi.org/10.5066/F72Z13N1">https://doi.org/10.5066/F72Z13N1</a>.</p> <p>6. Himmelstoss, E.A., Kratzmann, M., Hapke, C., Thieler, E.R., and List, J., 2010, The National Assessment of Shoreline Change: A GIS Compilation of Vector Shorelines and Associated Shoreline Change Data for the New England and Mid-Atlantic Coasts: U.S. Geological Survey Open-File Report 2010-1119, available at <a href="https://pubs.usgs.gov/of/2010/1119/">https://pubs.usgs.gov/of/2010/1119/</a>.</p> <p>7. Snyder, A.G., and Gibbs, A.E., 2019, National assessment of shoreline change: A GIS compilation of updated vector shorelines and associated shoreline change data for the north coast of Alaska, Icy Cape to Cape Prince of Wales: U.S. Geological Survey data release, <a href="https://doi.org/10.5066/P9H1S1PV">https://doi.org/10.5066/P9H1S1PV</a></p> <p>8. Romine, B.M., Fletcher, C.H., Genz, A.S., Barbee, M.M., Dyer, Matthew, Anderson, T.R., Lim, S.C., Vitousek, Sean, Bochicchio, Christopher, and Richmond, B.M., 2012, National Assessment of Shoreline Change:&nbsp; A GIS compilation of vector shorelines and associated shoreline change data for the sandy shorelines of Kauai, Oahu, and Maui, Hawaii: U.S. Geological Survey Open-File Report 2011-1009, available online at <a href="https://pubs.usgs.gov/of/2011/1009/">https://pubs.usgs.gov/of/2011/1009/</a>.</p> <p>9. Gibbs, A.E., Jones, B.M., and Richmond, B.M., 2020, A GIS compilation of vector shorelines and coastal bluff edge positions, and associated rate-of-change data for Barter Island, Alaska: U.S. Geological Survey data release, https://doi.org/10.5066/P9CRBC5I.</p> <p>10. Sturdivant, E.J., Zeigler, S.L., Gutierrez, B.T., and Weber, K.M., 2019, Barrier island geomorphology and shorebird habitat metrics&ndash;Sixteen sites on the U.S. Atlantic Coast, 2013&ndash;2014: U.S. Geological Survey data release, https://doi.org/10.5066/P9V7F6UX.</p> <p>&nbsp;</p> <p>Additional contributions:</p> <p>1. Sean Vitousek, USGS</p> <p>&nbsp;</p> <h3>Bounding boxes</h3> <p>These supporting files are the bounding boxes of vector datasets used by the program to attribute transects data</p> <ol> <li>shorelines_bounding_boxes.csv</li> <li>transects_bounding_boxes.csv</li> <li>usa_shorelines_bounding_boxes.geojson</li> <li>world_reference_shorelines_bboxes.geojson</li> </ol> <p>Reference shoreline data is from Sayre et al. (2018)</p> <p>&nbsp;</p> <div>Sayre, R., Noble, S., Hamann, S., Smith, R., Wright, D., Breyer, S., Butler, K., Van Graafeiland, K., Frye, C., Karagulle, D. and Hopkins, D., 2019. A new 30 meter resolution global shoreline vector and associated global islands database for the development of standardized ecological coastal units. <em>Journal of Operational Oceanography</em>, <em>12</em>(sup2), pp.S47-S56.</div>

opencc-by-4.0May 2024View details →
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Fig. 6 in Longshore currents on a meso-tidal beach of Goa, India - Measurements and improved formulae

Fig. 6 — Comparison of estimated longshore current velocity using modified equations with the measured current at C1

opencc-by-4.0Nov 2022View details →
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Fig. 3 in Longshore currents on a meso-tidal beach of Goa, India - Measurements and improved formulae

Fig. 3 — Alongshore varying significant wave height and mean wave period observed at surfzone of Candolim vs off Goa

opencc-by-4.0Nov 2022View details →
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Dataset: Turtle Beach Corporation (HEAR) Stock Performance

This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.

opencc-zeroJun 2024View details →
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Roy Tsuda, Jeanine Olsen and Jim Marsh (Wytze Stam back center) lunching and reminiscing at The Hau Tree, Kaimana Beach, Hawaii in 2011. in Tribute to Roy Toshio Tsuda (1939 - 2020)

Roy Tsuda, Jeanine Olsen and Jim Marsh (Wytze Stam back center) lunching and reminiscing at The Hau Tree, Kaimana Beach, Hawaii in 2011.

opencc-by-4.0Oct 2023View details →
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FIGURE 7 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 7. Feeding strategies and progressive growth of the Dotilla pellet structures. Note four types of feeding modes: sector (of a circle) feeding mode covering growth (top to bottom) of the pellet structures arranged in four columns (1-4) corresponding to four different types of pellet designs (homogeneous pellet spread, radial, concentric and concentric-radial); radially diverging feeding mode covering growth (top to bottom) of the radial and asteroid pellet designs (column 5); concentric feeding mode covering growth (top to bottom) of the concentric pellet designs (column 6) and combined concentric-radial feeding mode covering growth (top to bottom) of the concentric-radial pellet design (column 7). Note development of different designs under sector (of a circle) feeding mode within feeding sectors having similar shape and size (column 1- 4 top structures). Also note a pellet design may originate in different feeding modes, but with subtle differences. The lower half of the figure incorporates schematic representation of the growth stages (I - Initial, M - Middle, F - Final from top to bottom) of all the above pellet designs with time and progressive feeding activity under different feeding modes (columns 1-7 are extended from upper to lower half of the figure to maintain analogy). Also note for each schematic structure (not to scale) presented, there is a physical (natural) analogue recorded from the field. Also visualize the growth of structural complexities, acquisition of described barrier elements and SI index along each column from top to bottom in both the natural and schematic presentations.

opencc-by-4.0Jul 2024View details →
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FIGURE 8. A in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 8. A: Ex situ preservation (aided by wind action) of Dotilla pellets as pellet-filled burrow tubes in the supratidal flat during low tide situation. B: Ex situ preservation of Dotilla pellets (aided by wind action) in ripple troughs during low tide situation. C: Schematic profile section of the studied beach showing positions of the Dotilla pellet spread and burrow zone, spread of Ocypode burrows, mutual dispositions of different geomorphic units (dune, supratidal, upper - middle intertidal flats) relative to land - sea positions and High and Low Tide Levels (HTL and LTL). Note gradual spreading of the Dotilla pellet and burrow zone towards sea with gradual lowering of substrate water levels (WLs) during tidal recession of sea. D-E: Possible stratigraphic development of the coastal sedimentary units (1-3) and contained burrow zones and other associated features in transgressive (E) and regressive (D) situations. Note the possible position of preserved Dotilla pellets and burrows between Unit 1 and 2 under transgressiveregressive sea conditions. Features are schematic and not to scale.

opencc-by-4.0Jul 2024View details →
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FIGURE 4 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 4. Concentric - radial pellet design (Figures 3 A, C, E, G, I, K, M, O, Q, S, U and W) produced by the crab Dotilla in the upper intertidal flat of the Bakkhali beach, Bay of Bengal coast, Eastern India. Figures 3 B, D, F, H, J, L, N, P, R, T, V and Xl represent the corresponding line tracings made for measurement of Attack Index (AI) and Safety Index (SI). Figures Q and W represent conjugate concentric - radial structures made by several individuals and possesses shared concentric rows of pellets (Scrp) and very high Combined Safety index (CSI) of 97.23% and 98.33% respectively. Note the majority of the structures are made by young and adults and rarely by juveniles (example Figure 4 E, G). Also note that pellet design at the earlier stage of development has lower safety index (SI) than those in the advanced or final stage of development (SI 70.57% for Figure C vs. 100% for Figure 4 O and S). Note that structures with closed burrow opening have SI value 100% (Figure 4 G and M). Compare size of the feeding territories between A, M, O (larger for the adults) vs E (smaller for the juvenile). Scale bar equals 1 cm.

opencc-by-4.0Jul 2024View details →
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FIGURE 6 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 6. Other pellet structures produced by the crab Dotilla on the upper intertidal flat of the Bakkhali beach, Bay of Bengal coast of Eastern India. (A) Petaloid pellet design produced by petal shaped radial rows of pellets and conjugate petals formed around burrow opening. (B) The line tracing corresponding to A shows SI value 100% as the burrow mouth is closed. (C) Leaf-shaped pellet design and (D) its corresponding line tracing shows very poor SI value (13.89%). (E) Asteroid pellet design contains several radiating runways that are well enclosed within the pellet spread areas and (F) its corresponding line tracing shows 100% SI value. (G, J and K) Different stages of formation of pellet mat design in pellet – microzone 1 wherein entire surface is covered by dense population of pellets leaving no space for the predators to sneak into burrow opening (SI = 100%). Note high population density and small size of the pellet designs. (H) Mossy pellet design formed by the crab community. Several burrow openings and corresponding runways are partially to fully covered by pellet spread zones. (I) Line tracing shows variable SI values of the individual structures (marked here by red, yellow and green circles having SI values &lt;70%, 70% - 90% and&gt; 90% respectively) averaged at 85% for the community structure. Arrows indicate possible entry routes of predators into the burrows. (L and M) Concentric radial and concentric pellet structures formed on rippled surface. (N) At times, pellets are formed selectively along the ripple troughs. (O) Beach profile showing extends of lower, middle and upper intertidal flats, besides mudground, supratidal flat and coastal dunes. Note smaller size of the structures (G, H, J, K) due to increased population density and predation pressure.

opencc-by-4.0Jul 2024View details →
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FIGURE 2 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 2. Radial pellet structures (A, C, E, G, I and K) produced by the crab Dotilla in the upper intertidal beach of Bakkhali, Eastern India. Corresponding line tracings (B, D, F, H, J and L) are made to calculate Safety Index (SI) and Attack Index (AI). Structures represented by figures I and K suggest early stage of development of radial pellet design and possess lower Safety Index (SI = 61.53% and 46.41%, respectively) compared to other structures (A, C, E and G) that represent later stage of development of radial design and possess very high Safety Index (SI ranging from 100% to 94.74%). Figure GLeft represents a juvenile structure and the rest are produced by young and adult Dotilla. Note larger size of feeding areas made by adults (A, E, K) compared to that of juvenile (GLeft). A represents a more advanced feeding stage (over larger area) than I (over smaller area). Scale bar equals 1 cm.

opencc-by-4.0Jul 2024View details →
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FIGURE 1 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 1. Different ichnozones and geomorphic features developed in the Bakkhali (21° 33' 50" N and 88° 15' 49" E) beach of the Bay of Bengal coast, Eastern India (re-mapped in 2015 by the author and modified after De, 2019, 2000). Note field photographs of the pellet making bubbler crabs Dotilla spp. and their burrow casts.

opencc-by-4.0Jul 2024View details →
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FIGURE 5 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 5. Plan outlays for the radial, concentric and concentric-radial pellet designs produced by the bubbler crab Dotilla have been drawn from the corresponding line tracings (as referenced in each case) to highlight how structural elements are constructed to enhance burrow protection. For radial designs dense radial rows of pellets (Rrp), curved rings of pellets (Crp), pellet walls (Pw) and turned around pellet rows (Rta) are increasingly added to the structure to increase the Safety Index (SI) by closing or cutting off the probable routes of entry of the predators into the burrow openings. Note plan outlays A to D depicting gradual increase in SI values from 46.41% to 100%. Plan outlays (F. H, J, L, N and P) corresponding to the concentric pellet designs show that addition of concentrically oriented curved rings of pellets (Crp) and formation of clockwise and anticlockwise closures of the pellet rings (Cpr marked by red lines) are two basic measures taken by the crabs to enhance SI (compare the plan outlays from E to J where SI values have improved from 68.39% to 98.06%). Note that for concentric-radial designs, as displayed by the plan outlays (R, T, V and X), all the above measures, besides formation of outgoing radial pellet rows from curved rings of pellets (Crp) that act as innumerable barriers for the predators to sneak through spaces between curved rings of pellets, are taken to improve SI values (compare 70.57% for Q to 100% for W).

opencc-by-4.0Jul 2024View details →
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FIGURE 3 in Ethological interpretation of making the pellet designs by the bubbler crab Dotilla on the modern intertidal beaches: A study from the Bay of Bengal coast, Eastern India

FIGURE 3. Concentric pellet design (A, C, E, G, I, K, M, O, Q, S, U and W) produced by the crab Dotilla in the upper intertidal flat of the Bakkhali beach, Bay of Bengal, Eastern India. Figures B, D, F, H. J. L, N P, R, T, V and X represent the corresponding line tracings drawn for measurement of Attack Index (AI) and Safety Index (SI). Note formation of both clockwise and anticlockwise closures of pellet rings (Cpr), pellet walls (Pw), surface foraged (Sf), open and closed burrow openings (Obo and Cbo respectively) and curved rings of pellets (Crp). Figures L, R Left and Middle, VTop and Q correspond to concentric designs at early to middle stages of formation and possess relatively lower SI values (67.39%, 88.34%, 87.23%, 72.51% and 84.73% respectively) than the other nearly fully developed structures (SI varying between 98.06% for d to 91.04% for j). Compare size of the feeding territory between Figure I (larger for the adult) and U (smaller for the juvenile). Note SI attains 100% value for pellet designs having closed burrow opening (Cbo). Arrow heads in line tracing Figures point to possible entry routes of predators or enemies of Dotilla. Scale bar equals 1 cm.

opencc-by-4.0Jul 2024View details →
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Figure S1 in Capelin beach spawning diaries: an analysis of 30 years of citizen science data from the island of Newfoundland, Canada

Figure S1. – Histograms of permutation test statistics testing the null hypothesis that the timing of first day of spawning was random amongst the three NAFO divisions (3KLPs). A) First day of spawning in Div. 3Ps was significantly earlier than in Div. 3L (two-tailed permutation test statistic: p = 0.0005) and B) Div. 3K (two-tailed permutation test statistic: p = 0.0005). C) There was no significant difference in first spawning day between Div. 3L and Div. 3K (two-tailed permutation test statistic: p = 0.588). The vertical line in each panel is the original test statistic.

opencc-by-4.0Dec 2022View details →

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Last verified 2026-04-30Open record

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International Brain Laboratory public data

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behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
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Last verified 2026-04-29Open record