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Рис. 3. Самка; правый берег р. Анюй, окрестности корΑона «ТаΛый», 11.08.2021. 09:50. Фото А. В. Готванского Fig. 3. A female; right bank of the river Anyui, vicinity of the Taly ranger station, 11.08.2021. 09:50. Photo by A. V. Gotvansky in New data on the distribution of sika deer Cervus nippon Temminck, 1838 in the Lower Amur Region
Рис. 3. Самка; правый берег р. Анюй, окрестности корΑона «ТаΛый», 11.08.2021. 09:50. Фото А. В. Готванского Fig. 3. A female; right bank of the river Anyui, vicinity of the Taly ranger station, 11.08.2021. 09:50. Photo by A. V. Gotvansky
Рис. 5. Пятнистый оΛень неоΑнократно снят фотоΛовушками в бассейнах рек Обор и Àурмин. 15.10.2020. 14.49. Фото А. С. БатаΛова Fig. 5. Sika deer repeatedly photographed by camera traps in the basins of the rivers Obor and Durmin; 15.10.2020. 14:49. Photo by A. S. Batalova in New data on the distribution of sika deer Cervus nippon Temminck, 1838 in the Lower Amur Region
Рис. 5. Пятнистый оΛень неоΑнократно снят фотоΛовушками в бассейнах рек Обор и Àурмин. 15.10.2020. 14.49. Фото А. С. БатаΛова Fig. 5. Sika deer repeatedly photographed by camera traps in the basins of the rivers Obor and Durmin; 15.10.2020. 14:49. Photo by A. S. Batalova
Рис. 1. Самец пятнистого оΛеня на берегу р. Анюй; 01.06.2017. 19:44. Фото В. В. Пронкевича Fig. 1. A male of a spotted deer on the bank of the river Anyui; 06.01.2017. 19:44. Photo by V. V. Pronkevich in New data on the distribution of sika deer Cervus nippon Temminck, 1838 in the Lower Amur Region
Рис. 1. Самец пятнистого оΛеня на берегу р. Анюй; 01.06.2017. 19:44. Фото В. В. Пронкевича Fig. 1. A male of a spotted deer on the bank of the river Anyui; 06.01.2017. 19:44. Photo by V. V. Pronkevich
Рис. 4. Гистограммы распреΔеΛения гнезΔ из разных попуΛяций по биотопам (по Δоминирующему растению): 1 — крапива; 2 — вейник; 3 — поΛынь; 4 — поΛынь с разнотравьем; 5 — тростник; 6 — оΛьха и ΛеспеΔеца; 7 — спирея; 8 — разнотравье Fig. 4. Histograms of the nest distribution from different populations by biotopes (by the dominant plant): 1 — nettle; 2 — reed grass; 3 — wormwood; 4 — wormwood with herbs; 5 — reed; 6 — alder and lespedets; 7 — spirea; 8 — herbs in in the Ussuri region
Рис. 4. Гистограммы распреΔеΛения гнезΔ из разных попуΛяций по биотопам (по Δоминирующему растению): 1 — крапива; 2 — вейник; 3 — поΛынь; 4 — поΛынь с разнотравьем; 5 — тростник; 6 — оΛьха и ΛеспеΔеца; 7 — спирея; 8 — разнотравье Fig. 4. Histograms of the nest distribution from different populations by biotopes (by the dominant plant): 1 — nettle; 2 — reed grass; 3 — wormwood; 4 — wormwood with herbs; 5 — reed; 6 — alder and lespedets; 7 — spirea; 8 — herbs
species according to Broadley (1994). These may well be the result of continuing confusion over the placement of Keta. Given the localities known from Lunda Norte, it seems likely that the species occurs in other northern regions of Angola. MAP 363. Distribution of Scaphiophis albopunctatus in Angola. in Diversity and Distribution of the Amphibians and Terrestrial Reptiles of Angola Atlas of Historical and Bibliographic Records (1840-2017)
species according to Broadley (1994). These may well be the result of continuing confusion over the placement of Keta. Given the localities known from Lunda Norte, it seems likely that the species occurs in other northern regions of Angola. MAP 363. Distribution of Scaphiophis albopunctatus in Angola.
et al. 2016a:57); "Rio Curoca in the Pediva Hot Springs area" [-16.28359, 12.56106] (Ceríaco et al. 2016a:32); "Namibe Regional-naNatural Park" [-15.77386, 12.33306] (Ceríaco et al. 2016a:32). Taxonomic and distributional notes: None. MAP 222. Distribution of Trachylepis hoeschi in Angola. in Diversity and Distribution of the Amphibians and Terrestrial Reptiles of Angola Atlas of Historical and Bibliographic Records (1840-2017)
et al. 2016a:57); "Rio Curoca in the Pediva Hot Springs area" [-16.28359, 12.56106] (Ceríaco et al. 2016a:32); "Namibe Regional-naNatural Park" [-15.77386, 12.33306] (Ceríaco et al. 2016a:32). Taxonomic and distributional notes: None. MAP 222. Distribution of Trachylepis hoeschi in Angola.
Distribution of invalid children due to forms of diseases in Russian regions
<p>It is a dataset, which shows distribution of invalid children due to forms of diseases in Russian regions. Data is focused on children under 18 years old.</p>
Figure 1 in Tritrophic relations and spatial distribution of fruit flies (Diptera: Tephritidae) in the Cerrado and Caatinga regions in Piauí, Brazil
Figure 1 Inventory area on fruit flies, showing the distribution of sampling points and the main characteristic environments of the region in the municipality of Bom Jesus-PI, July 2018 to May 2019.
Figure 2 in Tritrophic relations and spatial distribution of fruit flies (Diptera: Tephritidae) in the Cerrado and Caatinga regions in Piauí, Brazil
Figure 2 (A) Spatial distribution of fruit plants, (B) fruit flies (Diptera: Tephritidae), (C) parasitoids Hymenoptera and (D) tritrophic relationship in sampling of native and exotic fruits (municipality of Bom Jesus -PI, July 2018 to May 2019).
Figure 2 in Preliminary study on distribution, diversity, and ecological characteristics of nonmarine Ostracoda (Crustacea) from the Erzincan region (Turkey)
Figure 2. SEM photographs of species: a) Cypria sywulae Meisch, 2000; b) Herpetocypris chevreuxi (Sars, 1896); c) Ilyocypris inermis Kaufmann, 1900; d) Limnocythere inopinata (Baird, 1843); e) Eucypris lilljeborgi (G. W. Müller, 1900); f) Prionocypris zenkeri (Chyzer & Toth, 1858); g) Dolerocypris fasciata (O. F. Müller, 1776); h) Potamocypris similis G. W. Müller, 1912. Scale bars = 100 µm.
Figure 3 in Preliminary study on distribution, diversity, and ecological characteristics of nonmarine Ostracoda (Crustacea) from the Erzincan region (Turkey)
Figure 3. Three clustering groups of UPGMA analysis for the 15 most common species based on binary data (presence and absence). Two species (HC and EL) were located separately. Abbreviations are listed in the Appendix.
Figure 2 in Nucleolar organizer region distribution in Nannospalax ehrenbergi (Nehring, 1898) (Rodentia: Spalacidae) from Iraq
Figure 2. Ag-NOR stained metaphase plate of Nannospalax ehrenbergi (arrows indicate NOR-bearing chromosomes).
Figure 1 in Nucleolar organizer region distribution in Nannospalax ehrenbergi (Nehring, 1898) (Rodentia: Spalacidae) from Iraq
Figure 1. Conventionally stained karyotype of Nannospalax ehrenbergi in Mosul province (Al-Jurn), Iraq (male).
Fig. 1 in Anthropozoonotic significance, risk factors and spatial distribution of Giardia spp. infections in quenda (Isoodon obesulus) in the greater Perth region, Western Australia
Fig. 1. Geographical distribution of Giardia spp. infection in Perth quenda. Quenda were mapped using the GPS position of the location at which they were trapped. GPS points are jittered, and icons for uninfected quenda are 50% transparent, to improve visualisation of the relative distribution of Giardia spp. infection. By Kulldorff's spatial scan statistic, the circle in the north-west region represents a cluster of relatively decreased Giardia spp. infection risk in Perth quenda (OR of infection <0.001, compared to quenda trapped elsewhere in Perth; p <0.001).
Figure 1 in Spatial distribution and dietary niche breadth of the leopard Panthera pardus (Carnivora: Felidae) in the northeastern Himalayan region of Pakistan
Figure 1. Distribution of the leopard (Panthera pardus) in and around Pir Lasura National Park, northeastern Himalayan region, Pakistan, as indicated by various direct and indirect signs of the species.
Figure 1 in C-Heterochromatin and nucleolus organizer region distribution of Myotis emarginatus (Chiroptera: Vespertilionidae) from Turkey
Figure 1. Collection sites of Myotis emarginatus in Dubnisa Cave from Kırklareli (1); in old church from Karaisalı, Adana (2); and in Black Cave from Yozgat (3) in Turkey.
Figure 3 in Occlusal surface variations in genetically-identified specimens of the genus Apodemus (Mammalia: Rodentia) distributed in the Northern Anatolia region and three Turkish islands: Gökçeada, Marmara Island, and Bozcaada
Figure 3. The variations observed in the left upper teeth and their locations. D1: Presence of a bis structure immediately adjacent to the t2 cusp in UM1, D2: Presence of the t12 cusp in UM1, D3: Presence of a spur structure extending posteriorly from the t3 cusp in UM1 but not merging with the t5 cusp, D4: Existence of a bridge between the t1 cusp and t5 cusp in UM1, D5: Connection through a bridge between the t4 cusp and t7 cusp in UM1, D6: Structural swelling and island-like condition of the t7 cusp in UM1, D7: Structural line-like condition of the t7 cusp in UM1, D8: Structural swelling and island-like condition of the t7 cusp in UM2, D9: Line-like structural condition of t7 in UM2, D10: Presence or absence of the t12 cusp in UM2, D11: Presence of a bridge-like structure between the t1 cusp and t5 cusp in UM2, D12: Presence of a bridge between the t4 cusp and t7 cusp in UM2, D13: Existence of a bridge structure between the t1 cusp and t5 cusp in UM3, D14: Presence of a connection between the t6 cusp and t8 cusp in UM3.
Figure 4 in Occlusal surface variations in genetically-identified specimens of the genus Apodemus (Mammalia: Rodentia) distributed in the Northern Anatolia region and three Turkish islands: Gökçeada, Marmara Island, and Bozcaada
Figure 4. The intra- and interspecies schematic diagram of left lower dental variations. Diagram A: refers to the island population of A. sylvaticus, while B: refers to the mainland population of A. sylvaticus. Numbers represent species; 1: A. flavicollis, 2: A. witherbyi, 3: A. sylvaticus, 4: A. uralensis, 5: A. mystacinus. Lowercase letters have been selected as variation characteristics; a: number of cingula in LM1, b: tma in LM1, c: central distoconid in LM1, d: aneroconid complex in LM1, e: number of cingula in LM2, f: central distoconid in LM2.
Figure 1 in Occlusal surface variations in genetically-identified specimens of the genus Apodemus (Mammalia: Rodentia) distributed in the Northern Anatolia region and three Turkish islands: Gökçeada, Marmara Island, and Bozcaada
Figure 1. Map of the locations where the samples were collected and main locations (modified from Çolak et al., 2013) A: The Dardanelles, B: The Bosphorus, C: Kızılırmak, D: Melet River, E: Çoruh River, a: Marmara Adası, b: Gökçeada, c: Bozcaada, 1-Ardahan, 2-Artvin, 3-Rize, 4-Trabzon, 5-Giresun, 6-Ordu, 7-Tokat, 8-Samsun, 9-Sinop, 10-Çorum, 11-Kastamonu, 12-Zonguldak, 13-Bolu, 14-Düzce, 15-Kocaeli, 16-İstanbul, 17-Bursa, 18-Tekirdağ, 19-Kırklareli, 20-Balıkesir, 21-Edirne, 22-Çanakkale.
Fig. 2 in New records and distribution extension of the rare glassfrog Hyalinobatrachium chirripoi (Anura: Centrolenidae) throughout the Chocó-Magdalena region in Colombia
Fig. 2. Dorsal (a) and ventral (b) view of live specimen from Chocó-Darien (ANDES-A-3738). Dorsal view (c) of specimen collected in Madgalena basin (MHUA-A-6650). Details of hand webbing of specimens collected in Chocó-Darien (d) and Madgalena basin (e).
ScienceDex guides
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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.