Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
860
datasets available to search
ShareScore release 0.9.0
Dataset results
860 results for “distribution ecology”
Figure 1. Map showing 6 in Distribution and ecology of Ostracoda (Crustacea) from troughs in Turkey
Figure 1. Map showing 6 provinces (Bolu, Ordu, Erzincan, Kahramanmaraş, Gaziantep, Van) with 105 sampling sites.
Figure 1 in Climatic preferences and distribution of 6 evolutionary lineages of Typhlops vermicularis Merrem, 1820 in Turkey using ecological niche modeling
Figure 1. Important mountain chains of Anatolia and ecological niche modeling of T. vermicularis in Turkey under current climatic conditions.
Figure 3 in Climatic preferences and distribution of 6 evolutionary lineages of Typhlops vermicularis Merrem, 1820 in Turkey using ecological niche modeling
Figure 3. Predicted models of lineages G, H, and I according to Last Interglacial (LIG) and Last Glacial Maximum (LGM; CCSM and MIROC) (4, 4A, 4B, 4C for lineage G; 5, 5A, 5B, 5C for lineage H; 6, 6A, 6B, 6C for lineage I).
Figure 3. A in New data on distribution, ecology, and taxonomy of Turkish Nitidulidae (Coleoptera)
Figure 3. A 'sand-dunes'-like landscape, ca. 2 km S of Bozca (Nevşehir Province), where Xerogethes osellai (Audisio & Jelínek, 2000) was found.
Figure 2 in Climatic preferences and distribution of 6 evolutionary lineages of Typhlops vermicularis Merrem, 1820 in Turkey using ecological niche modeling
Figure 2. Predicted models of lineages B, C, and E according to Last Interglacial (LIG) and Last Glacial Maximum (LGM; CCSM and MIROC) (1, 1A, 1B, 1C for lineage B; 2, 2A, 2B, 2C for lineage C; 3, 3A, 3B, 3C for lineage E).
Figures 1 and 2 in New data on distribution, ecology, and taxonomy of Turkish Nitidulidae (Coleoptera)
Figures 1 and 2. Ovipositors of Xerogethes kraatzii (Reitter, 1871) (Figure 1) and of X. osellai Audisio & Jelínek, 2000 (Figure 2); female specimens of both species collected ca. 2 km S of Bozca (Turkey, Nevşehir Province).
Figure 4 in Broad-scale ecological distribution of dominant macrozoobenthic taxa of the northern Cilician shelf, eastern Mediterranean Sea: crustaceans*
Figure 4. Abundance distribution of dominant species in each crustacean assemblage identified by CCA. Circle diameter is proportional to the abundance. The largest circle corresponds to the maximum abundance (see Appendix on the journal's website for the maximum abundance observed) of each species.
Figure 1 in Broad-scale ecological distribution of dominant macrozoobenthic taxa of the northern Cilician shelf, eastern Mediterranean Sea: crustaceans*
Figure 1. Study area and Turkish part of the Cilician Basin (transects: M: Mersin, I: İskenderun, A: Anamur) and location of the sampling stations (depth code: 1: 10 m, 2: 25 m, 3: 50 m, 4: 75 m, 5: 100 m, 6: 150 m, and 7: 200 m) visited in November 2005, March 2006, July 2006, and January 2007.
Figure. Distribution of the recent localities of Lumbricus terrestris on the Balkan Peninsula (plus marks indicate other Balkan countries where L. terrestris also lives). in On the presence of Lumbricus terrestris Linnaeus 1758 (Oligochaeta, Lumbricidae) on the Balkan Peninsula: some aspects of ecology and distribution
Figure. Distribution of the recent localities of Lumbricus terrestris on the Balkan Peninsula (plus marks indicate other Balkan countries where L. terrestris also lives).
Figure 7 in Ecological conditions of Javan langur (Trachypithecus auratus É. Geoffroy Saint-Hilaire, 1812) in Sokokembang Forest (Central Java, Indonesia) through distribution and food preferences
Figure 7. (a) Javan langur males monitoring their group; (b) langur cubs feeding activities in in Sokokembang forest. Photos by Y.M. Putra.
Figure 6 in Ecological conditions of Javan langur (Trachypithecus auratus É. Geoffroy Saint-Hilaire, 1812) in Sokokembang Forest (Central Java, Indonesia) through distribution and food preferences
Figure 6. (a) Vertical Crown space of tree usage patterns (yellow color indicates the space used for feeding activities, red color space not used), (b) Percentage of vertical crown space of tree usage.
Fig. 1 in The ecology, distribution, status, threats, and conservation of the Common Water Monitor (Varanus salvator) in the Dhaleswari River of Assam, India
Fig. 1. (A) Map of India, highlighting Assam. (B) Map of Assam, highlighting Hailakandi district. (C) Map of Hailakandi district showing the two rivers, Dhaleswari River and Katakhal River, with distribution of the Common Water Monitor (Varanus salvator). Dots represent sighting locations during the present survey; current distribution in the Dhaleswari River is shown in green. Further downstream, despite no present records, occurrence in the past (1970s–1980s) was reported by several interviewees (shown in yellow). No reports on present occurrence in the Katakhal River (shown in red) could be found. Map by A.S. Choudhury.
Fig. 2 in The ecology, distribution, status, threats, and conservation of the Common Water Monitor (Varanus salvator) in the Dhaleswari River of Assam, India
Fig. 2. Photographs relevant to the habitat and threats of the Common Water Monitor (Varanus salvator) in the Dhaleswari River, Assam, India. (A) Research team interacting with the locals at Rongpur 5, Hailakandi. (B) Habitat of the Common Water Monitor in the Dhaleswari River, showing bushes and other features on the banks. (C) The sandy bank of the Katakhal River, prone to erosion and landslides, is the habitat not preferred by the Common Water Monitor. (D) The sluice gate at the mouth of Dhaleswari River at Shahabad, which prevents water flow into it and diverts the water to the Katakhal River. (E) Encroachment and conversion of the Dhaleswari River into fisheries by the locals building dikes at Rongpur 2. Photos by A.S. Choudhury.
Fig. 3. A in The ecology, distribution, status, threats, and conservation of the Common Water Monitor (Varanus salvator) in the Dhaleswari River of Assam, India
Fig. 3. A Common Water Monitor (Varanus salvator) killed for venturing into a human habitation at Rongpur 6, Hailakandi. It was subsequently buried. Photo by R.A. Barbhuiya.
Fig. 3 in Palaeobiology, ecology, and distribution of stromatoporoid faunas in biostromes of the mid-Ludlow of Gotland, Sweden
Fig. 3. Terminology used for describing stromatoporoids (from Kershaw 1998). A. Outline and general growth forms. B. Growth patterns describing surface edges, internal arrangement of lamina and its combinations. Abbreviations: B, basal diameter; V, vertical height.
Fig. 1. A in Palaeobiology, ecology, and distribution of stromatoporoid faunas in biostromes of the mid-Ludlow of Gotland, Sweden
Fig. 1. A. Map showing the location of Gotland and the current topostratigraphy (after Hede 1960 and Jeppsson 2005). B. Detailed map of the investigated area with location names in italics.
Fig. 2 in Palaeobiology, ecology, and distribution of stromatoporoid faunas in biostromes of the mid-Ludlow of Gotland, Sweden
Fig. 2. Photographs of the three previously undescribed stromatoporoid biostromes. A, B. Kuppen middle biostrome (loc. Kuppen 3). C, D. The Fakle biostrome (loc. Fakle 1). E, F. The Sjaustrehammar biostrome (E, loc. Sjaustrehammar 3; F, loc. Sjaustrehammar 4).
Fig. 4 in Palaeobiology, ecology, and distribution of stromatoporoid faunas in biostromes of the mid-Ludlow of Gotland, Sweden
Fig. 4. Diagrams (V/B versus B) showing growth−strategies of different stromatoporoid species from the three biostromes Kuppen Middle Biostrome, Fakle Biostrome and Sjaustrehammarn Biostrome. Abbreviations: B, basal diameter; V, vertical height.
Figure 4 in Distribution of Mimosa diplotricha in eastern and southern Africa and its socio- ecological impacts in northern Malawi
Figure 4: Mimosa diplotricha invasions in southern Tanzania (top row), northern Malawi (middle row), and western Ethiopia (bottom row).
Figure 3 in Distribution of Mimosa diplotricha in eastern and southern Africa and its socio- ecological impacts in northern Malawi
Figure 3: Map showing the location of Malawi in Africa (inset) and Karonga District in Malawi where the socio-economic surveys were undertaken.
ScienceDex guides
Understand access before you commit
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.