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.
2,359
datasets available to search
ShareScore release 0.9.0
Dataset results
2,359 results for “Southwest”
Figure 1 in Comparative floristic diversity of Southwest Primorye and neighboring areas of the Russian Far East
Figure 1. Geographical location of Southwest Primorye, structured in administrative units, and floristic regionalization of the southern part of the Russian Far East (RFE). 1 - national boundary of the Russian Federation; 2 - boundaries of administrative units; 3 boundaries of floristic districts; 4 boundaries of floristic subdistricts; 5 - boundary of Amur River basin (watershed line); 6 - boundaries of Southwest Primorye. Floristic districts: Okh. - Okhotsk (with subdistricts: C - central, S - southern), Ald. - Aldan, Nyuk. - Nyukzha, Daur. - Dauria, N. Sakh. - North-Sakhalin, U.Z. - Upper-Zeya, L.Z. - Low-Zeya, Bur. - Bureya, Amg. - Amgun, Uss. - Ussuri (with subdistricts: N - northern, C - central, S - southern), S. Sakh. - South Sakhalin. Floristic regionalization is given according to edition "Vascular plants of Soviet Far East" (Kharkevich, 1985-1996; Kharkevich and Tzvelev, 2003).
Figure 1 in Rotifers of southwest Iran: a faunistic and biogeographical study
Figure 1. Geographical location of the Khuzestan province, southwest of Iran. Hexagonal marks indicate the sampling sites.
Figure 2 in Rotifers of southwest Iran: a faunistic and biogeographical study
Figure 2. Photomicrographs of some of the rotifer species found in Khuzestan: a) Colurella sanoamuangae (lateral view); b) Colurella sanoamuangae (ventral view); c) Lecane inconspicua; d) Brachionus cf. rotundiformis (ventral view); e) Brachionus cf. rotundiformis (dorsal view).
Figures 1–4 in A new species of Athripsodes from the southwest of the Iberian Peninsula (Trichoptera, Leptoceridae)
Figures 1–4. Athripsodes alentexanus sp. nov., male genitalia. 1- Lateral view; 2- phallus, lateral view; 3- ventral view; 4- dorsal view.
Figures 5–7 in A new species of Athripsodes from the southwest of the Iberian Peninsula (Trichoptera, Leptoceridae)
Figures 5–7. Athripsodes spp., male genitalia, lateral view. 5- A. braueri, specimen from Lampaza (Orense, Spain); 6- A. taounate, specimen from Benamahoma (Cádiz, Spain); 7- A. alentexanus sp. nov., paratype from Montenegro (Alentejo, Portugal).
Figure 4 in Microsatellite based genetic diversity of Mediterranean fruit fly (Ceratitis capitata, Diptera: Tephritidae) populations from Southwest Turkey
Figure 4. ΔK distribution along with different values of clusters (K) for 7 populations depending on Evanno's method (Evanno et al. 2005) using Structure Harvester application.
Figure 2 in Microsatellite based genetic diversity of Mediterranean fruit fly (Ceratitis capitata, Diptera: Tephritidae) populations from Southwest Turkey
Figure 2. Unrooted Neighboor-Joinning (NJ) tree of 7 C. capitata populations using 8 polymorphic microsatellite markers.
Figures 1–4 in Himalaea batanga, a new species from Southwest China (Lepidoptera: Noctuidae: Amphipyrinae: Psaphidini)
Figures 1–4. Himalaea spp.: adults (1, 2) and male genitalia (3, 4). Depositories of the specimens and slides: 1 and 3 in AFM; 2 and 4 in HNHM (photo by B. Tóth).
Figures 5–6 in Himalaea batanga, a new species from Southwest China (Lepidoptera: Noctuidae: Amphipyrinae: Psaphidini)
Figures 5–6. China, western Sichuan, 25 km N of Batang, 3100m, N30°12.049' E099°14.078', the type locality (5) and the habitat (6) of Himalaea batanga sp. n. (photos by A. Saldaitis).
Fig. 3 in Activity patterns of frugivorous phyllostomid bats in an urban fragment in southwest Amazonia, Brazil
Fig. 3. Number of captures of the four most abundant species, according to the rainfall in the ParQue Zoobotânico, Rio Branco, state of Acre, northern Brazil.
Fig. 2 in Activity patterns of frugivorous phyllostomid bats in an urban fragment in southwest Amazonia, Brazil
Fig. 2. Number of captures of the four most abundant species throughout the night period, according to hours after sunset, in the ParQue Zoobotânico, Rio Branco, state of Acre, northern Brazil.
Fig. 1 in Activity patterns of frugivorous phyllostomid bats in an urban fragment in southwest Amazonia, Brazil
Fig. 1. Location of the forest fragment (ParQue Zoobotânico) in the urban area of Rio Branco, Acre, southwestern Amazonia, Brazil.
Figure 1 in Potential Grey Reef Shark (Carcharhinus amblyrhynchos) Nursery on Seamounts Southwest of Guam
Figure 1. Location of Marianas sea mounts examined from most Northerly to Southerly respectively: Galvez Bank, Baby Bank, and Santa Rosa Reef in relation to Guam. Depths indicated are in meters. Red bars indicate locations of transects conducted in March 2018, blue bars, March 2019. Inset: Relative abundance of sighted C. amblyrhynchos per kilometer of transect for each bank (bars) and approximate surface area of each bank above the 40-meter depth contour (line). Depths using WGS84 chart datum from the NOAA nautical charts.
Fig. 1. A in A new basal actinopterygian fish from the Anisian (Middle Triassic) of Luoping, Yunnan Province, Southwest China
Fig. 1. A. Lithological sequence of the Daaozi Section showing detail of Member II, with bed numbers, fossiliferous beds are shaded red. B. Location map (modified from Zhang et al. 2009). C. A photograph of fossiliferous beds 33–44.
Fig. 5 in A new basal actinopterygian fish from the Anisian (Middle Triassic) of Luoping, Yunnan Province, Southwest China
Fig. 5. Cladograms showing the phylogenetic position of Luoxiongichthys, as a basal neopterygian, and possible halecomorph, based on the data matrix from Gardiner et al. (1996). A. The strict consensus of two most parsimonious trees. B. Consensus phylogeny, showing how most nodes collapse when only the bootstrap values (1000 replicates) over 50% are shown. Other nodes, including that linking Luoxiongichthys to Halecomorphi, are not robust.
Fig. 4 in A new basal actinopterygian fish from the Anisian (Middle Triassic) of Luoping, Yunnan Province, Southwest China
Fig. 4. Scales of the basal actinopterygian fish Luoxiongichthys hyperdorsalis gen. et sp. nov., Guanling Formation, Anisian, Middle Triassic; Daaozi Quarry, Luoping, Yunnan Province, Southwest China. Scales in the dorsal region: inner (A) surface. Scales in the Ventral region: outer (B) and inner (C) surface. Large fulcrum scale from in front of the dorsal fin (E) and anal fin (D). Rhombic scale from the caudal peduncle (F). Scale bars 1 mm.
Fig. 3 in A new basal actinopterygian fish from the Anisian (Middle Triassic) of Luoping, Yunnan Province, Southwest China
Fig. 3. Skull of the basal actinopterygian fish Luoxiongichthys hyperdorsalis gen. et sp. nov., Guanling Formation, Anisian, Middle Triassic; Daaozi Quarry, Luoping, Yunnan Province, Southwest China. A. LPV−10625 in dorso−lateral view. B. LPV−10120 in dorsal view.
Fig. 2 in A new basal actinopterygian fish from the Anisian (Middle Triassic) of Luoping, Yunnan Province, Southwest China
Fig. 2. Holotype of the basal actinopterygian fish Luoxiongichthys hyperdorsalis gen. et sp. nov., LPV−10144, Guanling Formation, Anisian, Middle Triassic; Daaozi Quarry, Luoping, Yunnan Province, Southwest China; in lateral view (A), interpretive drawing (B).
Fig. 7 in A new basal actinopterygian fish from the Anisian (Middle Triassic) of Luoping, Yunnan Province, Southwest China
Fig. 7. Reconstruction of the basal actinopterygian fish Luoxiongichthys hyperdorsalis gen. et sp. nov., Guanling Formation, Anisian, Middle Triassic; Daaozi Quarry, Luoping, Yunnan Province, Southwest China; in lateral view.
Fig. 2 in A phylogenetically unresolved apicomplexan (APXSc) causing swirl lesions in the Tehuelche scallop, Aequipecten tehuelchus, from the Southwest Atlantic coast
Fig. 2. Intra- and extracellular forms of APXSc within the Tehuelche scallop. (A–B) H&E stained section (A) and ISH (B) showing APXSc forms within the stomach epithelium (Ep), suggestion that infections are via the gastrointestinal tract. (C–D) H&E stained section (C) and ISH (D) showing APXSc in the connective tissue adjacent to the gastrointestinal tract. Many of the parasite forms are found inside hemocytes with the host nuclei marginalized (white arrowheads) whilst other forms are still free (black arrowheads) in the connective tissue. Sl = Stomach lumen; Ct = connective tissue; Bm = basement membrane.
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.