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3,067 results for “distributional records”
Fig. 4 in Distribution range expansion of Salamandra infraimmaculata Martens, 1885 (Caudata: Salamandridae) in Anatolia, Turkey, with a new locality record
Fig. 4. The marginal response curves of S. infraimmaculata to (A) Minimum Temperature of Coldest Month (Bio6), (B) Mean Temperature of Wettest Quarter (Bio8), and (C) Precipitation of Warmest Quarter (Bio18). The red lines and blue shading respectively show the mean responses of the 30 replicate MaxEnt runs and the mean plus/minus one standard deviation.
Figure 1 Micromegistus bakerion Scarites subterraneus.a in New records of Micromegistus bakeri, Trägårdh 1948 (Acari: Mesostigmata: Parantennulidae), a mite symbiotic on carabid beetles, and notes on the species' distribution and host specificity
Figure 1 Micromegistus bakerion Scarites subterraneus.a – Dorsal and ventral view of infested S. subterraneus. b – The anterior ventral side of M. bakeriinfestedS. subterraneus. c – Adult and larvalM. bakeri.
Figure 3 in New records of Micromegistus bakeri, Trägårdh 1948 (Acari: Mesostigmata: Parantennulidae), a mite symbiotic on carabid beetles, and notes on the species' distribution and host specificity
Figure 3 Distribution map of Micromegistus bakeriand Scarites spp. in North America. The star indicates the location of the specimens collected in the present study. Squares indicate localities ofM. bakeridocumented in the literature (Trägårdh 1948; Nickel and Elzinga 1970; McDaniel and Bolen
Figure 2 in New records of Micromegistus bakeri, Trägårdh 1948 (Acari: Mesostigmata: Parantennulidae), a mite symbiotic on carabid beetles, and notes on the species' distribution and host specificity
Figure 2 Examples of photographic records of mites (putatively identified as M. bakeri) on Scarites spp., available on the citizen science websites BugGuide and iNaturalist. Note how only one or no mites are visible in the dorsal images, while one to many are visible in the lateral and ventral images. 2a – by lazarus via iNaturalist, used under a CC BY 4.0 license. 2b–2c by Bert Harris and Breanna Couey, respectively, via iNaturalist, used under CC BY-NC 4.0 licenses.
Fig. 1 in The longhorned beetles (Coleoptera: Cerambycidae) of Tennessee: distribution of species, seasonal adult activity, and new state records
Fig. 1. Longhorned beetle species tallied within each of the 95 Tennessee counties from collection records compiled for 230 species. Collection distribution is presented across ecoregions occurring within the western, middle, and eastern Grand Divisions of Tennessee (bold black lines). Across the Grand Divisions, county names presented in pale gray text are those from which no longhorned beetle species were collected or reported. Species tallies presented do not include county records reported in Jamerson (1973) that could not be substantiated with a specimen. Roman numerals (west to east) designate the ecoregions of Tennessee, where I corresponds with the Mississippi Alluvial Plain (ecoregion 73), II are the Mississippi Valley Loess Plains (ecoregion 74), III are the Southeastern Plains (ecoregion 65), IV is the Interior Plateau (ecoregion 71), V are the Southwestern Appalachians (ecoregion 68), VI are the Central Appalachians (ecoregion 69), VII are Ridges and Valleys (ecoregion 67), and VIII are the Blue Ridge Mountains (ecoregion 66) (afer Griffith et al. 1997). Full descriptions of the Tennessee ecoregions are available at: https://www.epa.gov/eco-research/ecoregion-download-files-state-region-3.
Figure 4 in Distribution of Pinyon Jay Gymnorhinus cyanocephalus in Chihuahua, Mexico: new records and environmental characterisation
Figure 4. GAM regression showing relationship between environmental suitability index (ESI) against elevation (m).
Figure 2 in Distribution of Pinyon Jay Gymnorhinus cyanocephalus in Chihuahua, Mexico: new records and environmental characterisation
Figure 2. Sampling bias file generated using the Gaussian kernel density of sampling localities tool (spatially rarefied records as input).
Figure 1 in Distribution of Pinyon Jay Gymnorhinus cyanocephalus in Chihuahua, Mexico: new records and environmental characterisation
Figure 1. Cluster analysis showing correlation between bioclimatic and topographic layers supported by AU (approximately unbiased) P-value (left) and bootstrap values (right).
Figure 3 in Distribution of Pinyon Jay Gymnorhinus cyanocephalus in Chihuahua, Mexico: new records and environmental characterisation
Figure 3. Tenfold cross-validation MaxEnt 'year-round' distribution model in a scale of maximum–minimum values showing the potential distribution for Pinyon Jay Gymnorhinus cyanocephalus in our study area and plotting the spatially rarefied records and the new Chihuahuan record.
Fig. 7 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 7: Lepidonotus clava from Greece. HCMR_Nag_ EL_01_2008_0185. A. Anterior end, dorsal view. B. Midbody elytron. C. Midbody elytrophorous parapodium. D. Midbody neurochaetae. HCMR_Nag_EL_01_2008_0194: E. Detail of midbody neurocheatae tips. Photos by G. Chatzigeorgiou.
Fig. 1 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 1: A. Validated Mediterranean locations for Lepidonotus tenuisetosus (white spot: Gulf of Tunis) and Lepidonotus carinulatus (red spot: Alborán Sea; green spot: Peninsula of Sinai). B. Location of Radès area (white spot) in the Gulf of Tunis. D. Collecting site and method at Radès area. A–C: photos from Google Earth (images: © 2020 Landsat/Copernicus, TerraMetrics, Maxar Technologies; data: SIO, NOAA, U. S. Navy, NGA, GEBCO); D: photo by Marwa Chaibi.
Fig. 4 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 4: Lepidonotus tenuisetosus. A. Notochaetae from chaetiger 15. B. Tip of notochaeta. C. Neurochaetae from first chaetiger. D. Neurochaetae from chaetiger 15.
Fig. 8 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 8: Size relationships in Lepidonotus tenuisetosus. A. Body width without parapodia (WoP) vs. body length. B. Body width with parapodia (WP) vs. body length.
Fig. 6 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 6: Lepidonotus sp., NHMR PMR-17630, Croatia: A. Anterior end, dorsal view. B. Parapodia 7 and 8, right side. C. Neurochaetae from parapodium 8 (right side). D. Neurochaetae from parapodium 8 (left side). E. Neurochaetae from parapodium 9 (right side).
Fig. 5 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 5: Lepidonotus tenuisetosus, redrawn from Wehe (2006): A. Cephalic region, dorsal view. B. Second right elytron. C. Macrotubercles. D. Fringing papillae. E. Neurochaetae. Lepidonotus carinulatus, redrawn from Barnich & Fiege (2003): F. Cephalic region, dorsal view. G. Third right elytron. H. Lateral margin showing macrotubercles, digitiform papillae and fringing papillae. I. Neurochaetae. Lepidonotus carinulatus, redrawn from Wehe (2006): J. Cephalic region, dorsal view. K. Second right elytron. L. Macrotubercle. M. Carinate microtubercles and pigmentation. N. Digitiform papillae. O. Fringing papillae. P. Upper neurochaetae. Q. Lower neurochaetae.
Fig. 2 in First record of Lepidonotus tenuisetosus (Annelida: Polynoidae) from Tunisia with distributional notes Abstract
Fig. 2: Lepidonotus tenuisetosus. A. Whole body, dorsal view. B. Whole body, ventral view. C. Anterior region (without elytra), dorsal view. D. Anterior region (pharynx everted), dorsal view. E. Anterior region (pharynx everted), ventral view. F. Anterior region (pharynx everted), lateral view. G. Second elytra. H. Tenth elytron. I. Detail of fringing papillae from the tenth elytron. J. Detail of macrotubercles from the tenth elytron. K. Detail of microtubercles from tenth elytron.
Figure 2 in Indotyphlops braminus (Daudin, 1803): distribution and oldest record of collection dates in Oceania, with report of a newly established population in French Polynesia (Tahiti Island, Society Archipelago)
Figure 2. Anterior ventral area of Indotyphlops braminus MNHN-RA 2015.0057 showing the whitish gular coloration. Picture: I. Ineich.
Figure 1 in Indotyphlops braminus (Daudin, 1803): distribution and oldest record of collection dates in Oceania, with report of a newly established population in French Polynesia (Tahiti Island, Society Archipelago)
Figure 1. Two introduced specimens of Indotyphlops braminus from Tahiti Island in French Polynesia. MNHN-RA 2015.0058 above and MNHN-RA 2015.0057 below. Scale bar: 1cm. Picture: I. Ineich.
Fig. 6. Olonia spp., distribution maps. A in Revision of the Eurybrachidae XVIII. The Australian genus Olonia Stål, 1862: Four new species, new records and biological data (Hemiptera: Fulgoromorpha)
Fig. 6. Olonia spp., distribution maps. A. Olonia albomarginata sp. nov., O. guillaumei Constant, 2018, O. lindae sp. nov. and O. rubicunda (Walker, 1851). B. Olonia aschei sp. nov., O. jackiei sp. nov. and O. picea Kirkaldy, 1906.
Fig. 6 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan IX
Fig. 6.ɹPericlista erythrogramma, final feeding-instar larva, 19. V. 2011 (A, C), P. shiritakensis, final feedinginstar larva, 12. V. 2019 (B, D) and mature larva, 15. V. 2019 (E). Photographed in Nakagawa by S. Ibuki.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.