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Figure 2 in Unraveling distributional patterns and life-history traits of a deep-water shrimp Plesionika edwardsii (Decapoda, Pandalidae) under unexploited virgin conditions: a benchmark for fisheries management
Figure 2. Seasonal predicted mean catch per unit effort (CPUE, g trap-1) by depth stratum for males, non-ovigerous and ovigerous females of Plesionika edwardsii in the Azorean region for the period 1999–2000. Light-colored symbols represent raw data. Detailed parameter estimates are in Tab. S4.
Figure 7 in Unraveling distributional patterns and life-history traits of a deep-water shrimp Plesionika edwardsii (Decapoda, Pandalidae) under unexploited virgin conditions: a benchmark for fisheries management
Figure 7. Size at which 50 % of the shrimps are mature (L 50) estimated for Plesionika edwardsii in the Azorean region fitting a logistic curve to the proportion of ovigerous females. Logistic curve was estimated combining all data obtained during the period 1999–2000.
Figure 4 in Unraveling distributional patterns and life-history traits of a deep-water shrimp Plesionika edwardsii (Decapoda, Pandalidae) under unexploited virgin conditions: a benchmark for fisheries management
Figure 4. Seasonal predicted mean cephalothorax length (CL) by depth stratum for males, non-ovigerous and ovigerous females of Plesionika edwardsii in the Azorean region for the period 1999–2000. Light-colored symbols represent raw data. Detailed parameter estimates are in Tab. S4.
Figure 1 in Unraveling distributional patterns and life-history traits of a deep-water shrimp Plesionika edwardsii (Decapoda, Pandalidae) under unexploited virgin conditions: a benchmark for fisheries management
Figure 1. Sampling areas of Plesionika edwardsii in the mid-North Atlantic Ocean, Azorean region (ICES Subdivision 10a2) between 1999 and 2000. Orange dots represent each site sampled by a trap.
Figure 6 in Unraveling distributional patterns and life-history traits of a deep-water shrimp Plesionika edwardsii (Decapoda, Pandalidae) under unexploited virgin conditions: a benchmark for fisheries management
Figure 6. Sex ratio of Plesionika edwardsii by size class in the Azorean region during the period 1999–2000.
Figure 3 in Unraveling distributional patterns and life-history traits of a deep-water shrimp Plesionika edwardsii (Decapoda, Pandalidae) under unexploited virgin conditions: a benchmark for fisheries management
Figure 3. Size frequency distribution of males, non-ovigerous and ovigerous females Plesionika edwardsii in the Azorean region during the period 1999-2000.
Figure 3 in Cladocera (Crustacea, Branchiopoda) species of Bahia State, Brazil: a critical update on species descriptions, distributions, and new records
Figure 3. Rarefaction and extrapolation curve using the Hill number (q = 0 species richness) of the Cladocera fauna observed in Bahia State, Brazil (N = 17). Confidence interval of 95 % was obtained by bootstrap method and represented by the shaded area for the fitted curve.
The data used for "Exploring how differences in dust particle size distribution and complex refractive indices affect dust direct radiative fluxes using the CAS-FGOALS-SPRINTARS global climate model"
<p>These data are used for " Exploring how differences in dust particle size distribution (PSD) and complex refractive indices (CRI) affect direct radiative effect (DRE) using the CAS-FGOALS-SPRINTARS global climate model ". </p> <p>(1) AS83+OPAC: The control experiment, dust PSD is the original AS83, and the generic CRI is from OPAC. </p> <p>(2) BFT22+OPAC: Same as the control experiment, but the PSD is updated to use BFT22.</p> <p>(3) BFT22+DB: Same as the experiment BFT22+OPAC, but the generic OPAC CRI is replaced by nine regionally dependent DB CRIs.</p> <p>(4) BFT22+DB strong abs: Same as the experiment BFT22+DB, but the generic CRI consists of 10% percentile real and 90% percentile imaginary parts and no regional dependencies.</p> <p>(5) BFT22+DB weak abs: Same as the experiment BFT22+DB, but the generic CRI consists of 90% percentile real and 10% percentile imaginary parts and no regional dependencies.</p> <p>All experiments mentioned above are run for 5 years (2010-2014). The annual average simulation results are stored here.</p> <p><strong>Note:</strong> AS83 represents the dust PSD scheme from d'Almeida and Schütz. (1983). BFT22 represents the new dust PSD developed by Meng et al. (2022) based on the improved brittle fragmentation theory. OPAC: the Optical Properties for Aerosols and Clouds dataset, DB: the CRIs from Di Biagio et al. (2017, 2019).</p> <p><strong>References</strong></p> <p>d'Almeida, G. A., & Schütz, L. (1983). Number, Mass and Volume Distributions of Mineral Aerosol and Soils of the Sahara. <em>Journal of Applied Meteorology and Climatology</em>,<em> 22</em>(2), 233-243. https://doi.org/https://doi.org/10.1175/1520-0450(1983)022<0233:NMAVDO>2.0.CO;2</p> <p>Di Biagio, C., Formenti, P., Balkanski, Y., Caponi, L., Cazaunau, M., Pangui, E., et al. (2019). Complex refractive indices and single-scattering albedo of global dust aerosols in the shortwave spectrum and relationship to size and iron content. <em>Atmospheric Chemistry and Physics</em>,<em> 19</em>(24), 15503-15531. https://doi.org/10.5194/acp-19-15503-2019</p> <p>Di Biagio, C., Formenti, P., Balkanski, Y., Caponi, L., Cazaunau, M., Pangui, E., et al. (2017). Global scale variability of the mineral dust long-wave refractive index: a new dataset of in situ measurements for climate modeling and remote sensing. <em>Atmospheric Chemistry and Physics</em>,<em> 17</em>(3), 1901-1929. https://doi.org/10.5194/acp-17-1901-2017</p> <p>Meng, J., Huang, Y., Leung, D. M., Li, L., Adebiyi, A. A., Ryder, C. L., et al. (2022). Improved Parameterization for the Size Distribution of Emitted Dust Aerosols Reduces Model Underestimation of Super Coarse Dust. Geophysical Research Letters, 49(8), e2021GL097287, https://doi.org/https://doi.org/10.1029/2021GL097287</p>
Figure 3 in Distribution and roosting ecology of the lesser mouse-tailed bat, Rhinopoma hardwickii Gray, 1831 (Chiroptera: Rhinopomatidae)
Figure 3. Map shows the distribution of lesser mouse-tailed bat, Rhinopoma hardwickii. The locations of roost sites were abbreviated and shown in the map: 1) AGC – Agra, 2) SFA – Sangam Fort (Allahabad), 3) NTB – Neelkanth Temple Kalinjar (Banda), 4) BAC – Banda, 5) PKC – Purani kotwali (Chitrakoot), 6) AFE – Awagdh Fort (Etah), 7) FBC – Faizabad, 8) FPC – Fatehpur, 9) EPF – Edalpur (Firozabad), 10) JFJ– Jaunpur Fort (Jaunpur), 11) BMJ – Bukhara, Mauranipur (Jhansi), 12) JHC – Jhansi, 13) LPC – Lalitpur, 14) TFL – Talbahte Fort (Lalitpur), 15) KKL – Kakori (Lucknow), 16) TTM– Tirthankar Temple (Mahowa), 17) MFM – Mirzapur Fort (Mirzapur), 18) KBP – Khusaroo bagh, 19) RBC – Raebareli, 20) SPC – Sultanpur, 21) UNC – Unnao.
Figure 2 in New distributional records of Megachile Latreille, 1802 (Apoidea: Megachilidae) from Indian States
Figure 2. Megachile species from India. (f) M. hera ♂ (dorsal view); (g.i) M. vera ♀ (dorsal view); (g.ii) M. vera ♀ (lateral view); (h) M. gathela ♀ (dorsal view); (i) M. lanata ♂ (dorsal view); (j) M. lanata ♀ (dorsal view).
Figure 1 in New distributional records of Megachile Latreille, 1802 (Apoidea: Megachilidae) from Indian States
Figure 1. Megachile species from India. (a) M. laticeps ♀ (dorsal view); (b) M. disjuncta ♂ (dorsal view); (c) M. fraterna ♀ (dorsal view); (d) M. coelioxysides ♀ (dorsal view); (e.i) M. hera ♀ (dorsal view); (e.ii) M. hera ♀ (lateral view).
Figure 1. Onchidium typhae Buchannan, 1800 in New Distributional Records of Onchidiid Slugs from Coringa Wildlife Sanctuary, Andhra Pradesh
Figure 1. Onchidium typhae Buchannan, 1800; a) crawling animal in the mud, b) animal in the lab showing the long tentacles, c) the hyponotum and foot. Platevindex tigrinus (Stoliczka, 1869); d) animal on the trunk of the large Avicennia plant, e) animal in lab showing the papillae on the notum, f) hyponotum and foot.
Figure 5 in New distributional records of Actiniarian sea anemones from Andaman and Nicobar Islands
Figure 5. Cnidocysts of Diadumene leucolena [a. Spirocyst (G) from tentacle; b. Large basitrich from tentacle; c. Microbasic amastigophores from tentacles; d. Small basitrich from Mesenterial filaments; e. Large basitrich from Mesentrial filaments; f. Microbasic p- mastigophore from Mesentrial filaments; g. Spirocyst (G) from Mesentrial filaments; h. Basitrich from Actinopharynx; i. Spirocysts (G) from Actinopharynx; j. Microbasic amastigophores from Actinopharynx; k. Basitrich from Acontia; l. Microbasic p- mastigophore from Acontia].
Figure 2 in New distributional records of Actiniarian sea anemones from Andaman and Nicobar Islands
Figure 2. Actinodendron arboreum [a. Actinodendron arboreum in sandy bottom; b. Branched tentacle of A. arboreum; c. Acrospheres].
Figure 1 in New distributional records of Actiniarian sea anemones from Andaman and Nicobar Islands
Figure 1. Map showing area in which new records of sea anemones found in Andaman and Nicobar Islands.
Figure 6 in New distributional records of Actiniarian sea anemones from Andaman and Nicobar Islands
Figure 6. Cross section of Diadumene leucolena [a. Middle portion of column showing mesenteries; b. Non-muscular gametogenic region of fertile mesenteries; c. Weak basilar muscles].
Figure 4 in New distributional records of Actiniarian sea anemones from Andaman and Nicobar Islands
Figure 4. Diadumene leucolena [a. Diadumene leucolena in live condition; b. Capitulum and scapus in live condition; c; Specimen in preserved condition; d. Capitulum and scapus in preserved condition; e. Mouth; f. Cinclides].
Figure 3 in New distributional records of Actiniarian sea anemones from Andaman and Nicobar Islands
Figure 3. Cnidocysts of A. arboretum [a. Spirocyst (G) from tentacle; b. Long basitrich from tentacle; c. Basitrich from acrospheres d. Spirocysts from acrospheres; e. Microbasic p- mastigophore from acrospheres; f. Basitrich from column; g. Spirocyst from column].
Early Eocene Global Vegetation Modern Plant Distribution Dataset
<p>Early Eocene Global Vegetation Modern Plant Distribution Dataset </p> <p>Global occurances for early Eocene fossil plant Nearest Living Relatives (NLRs) from the Global Biodiversity Information Facility (GBIF: https://www.gbif.org/), used for palaeocliate reconstruction.</p>
Original data for the paper "Ericaceous dwarf shrubs in drained forested peatlands: distribution, dynamics and key factors in a restoration experiment"
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.