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.
756
datasets available to search
ShareScore release 0.9.0
Dataset results
756 results for “cave spider”
Figure 1 from: Bernardi LFO, Sperandei VF, Audino LD, Sena CH, Alves JA (2020) Notes on the predation of an assassin bug by a spider in a Neotropical cave. Subterranean Biology 33: 17-22. https://doi.org/10.3897/subtbiol.33.48292
Figure 1 Adult specimens of Zelurus diasi (left) and Enoploctenus cyclotorax (right) observed in the study area.
Figure 3 from: Bernardi LFO, Sperandei VF, Audino LD, Sena CH, Alves JA (2020) Notes on the predation of an assassin bug by a spider in a Neotropical cave. Subterranean Biology 33: 17-22. https://doi.org/10.3897/subtbiol.33.48292
Figure 3 Intraguild predation between female Enoploctenus cyclotorax and adult Zelurus diasi observed during the study.
Figure 9 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 9 Phylogenetic relationship among Nesticus latiscapus (= red), N. kosodensis stat. nov. (= green), and other closely-related species from the same geographic area (=black) inferred from ML analysis of COI partial sequence. Branch lengths are scaled in relation to the number of substitutions per site. Numbers at nodes denote maximum likelihood bootstrap support.
Figure 8 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 8 Type material of the species discussed in this work. Nesticus kosodensis stat. nov.: a palp of the holotype, ventral view b epigyne of the paratype, ventral view; N. latiscapus: c palp of the holotype, ventral view d epigyne of the paratype, ventral view. Scale bars: 0.2 mm.
Figure 5 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 5 Male palp of N. latiscapus from Saiko Bat Cave. a Ventral view b dorsal view c ventro-retrolateral view d retrolateral view e ventro-prolateral view. Scale bars: 0.2 mm.
Figure 4 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 4 Female genitalia of N. kosodensis stat. nov. from Odaki area. a, c Epigyne, ventral view b, d vulva, dorsal view. Scale bars: 0.2 mm.
Figure 3 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 3 Male palp of N. kosodensis stat. nov. (illustrated): a ventral view b dorsal view c ventro-retrolateral view d retrolateral view e ventro-prolateral view. Scale bars: 0.2 mm.
Figure 2 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 2 Male palp of N. kosodensis stat. nov. from Odaki area: a ventral view b dorsal view c ventro-retrolateral view d retrolateral view e ventro-prolateral view. Scale bars: 0.2 mm.
Figure 10 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 10 Distribution of Nesticus kosodensis stat. nov. (green dots) and N. latiscapus (red dots) in Japan. Stars show the type localities of the species.
Figure 1 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 1 Habitus of Nesticus kosodensis stat. nov. and N. latiscapus. a, bN. kosodensis stat. nov. adult male c ditto, adult female dN. latiscapus, adult male e ditto, adult female. Scale bars: 1 mm.
Figure 7 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 7 Female genitalia of N. latiscapus from Saiko Bat Cave. a, c Epigyne, ventral view b, d vulva, dorsal view. Scale bars: 0.2 mm.
Figure 6 from: Suzuki Y, Ballarin F (2020) Nesticus kosodensis Yaginuma, 1972 bona species. Molecular and morphological separation from N. latiscapus Yaginuma, 1972 with notes on cave scaffold-web spiders subspecies in Japan (Araneae, Nesticidae). Subterranean Biology 35: 79-96. https://doi.org/10.3897/subtbiol.35.53933
Figure 6 Male palp of N. latiscapus (illustrated). a Ventral view b dorsal view c ventro-retrolateral view d retrolateral view e ventro-prolateral view. Scale bars: 0.2 mm.
Figure 5 in Aspects of the activity rhythm and population size of troglophilic mygalomorph spiders (Trechona sp., Dipluridae) in a quartzite cave in Minas Gerais, Brazil
Figure 5. Percentage of Trechona sp. spiders (mean of 10 observations) found active in the twilight zone during dawn and dusk. The hours in the graph corresponds to actual time, without daylight saving time (DST) correction.
Figure 3 in Aspects of the activity rhythm and population size of troglophilic mygalomorph spiders (Trechona sp., Dipluridae) in a quartzite cave in Minas Gerais, Brazil
Figure 3. Percentage of Trechona sp. spiders (mean of 10 observations) found active in the entrance zone during dawn and dusk. The hours in the graph corresponds to actual time, without daylight saving time (DST) correction.
Figure 4 in Aspects of the activity rhythm and population size of troglophilic mygalomorph spiders (Trechona sp., Dipluridae) in a quartzite cave in Minas Gerais, Brazil
Figure 4. Percentage of Trechona sp. spiders (mean of 10 observations) found active in the dark zone during dawn and dusk. The hours in the graph corresponds to actual time, without daylight saving time (DST) correction.
Figure 2 in Aspects of the activity rhythm and population size of troglophilic mygalomorph spiders (Trechona sp., Dipluridae) in a quartzite cave in Minas Gerais, Brazil
Figure 2. Trechona sp. (A) Spider on sheet-web; (B) individual of Trechona sp. at the entrance of the tubular retreat, under a stone; (C) individual of Trechona sp. female; (D) spider positioned on the sheet-web close to tubular retreat.
Figure 1 in Aspects of the activity rhythm and population size of troglophilic mygalomorph spiders (Trechona sp., Dipluridae) in a quartzite cave in Minas Gerais, Brazil
Figure 1. Monte Cristo cave, general view of the entrance zone, arrow showing the access to twilight zone.
FIGURE 26 in Caves as a key habitat for rare and endemic species of the west coast of North America: a taxonomic revision of the spider genus Oaphantes (Araneae Linyphiidae)
FIGURE 26. Male Oaphantes prometheus in Paradise Cave. Photograph by J. Krejca.
Data from: Cave Stedocys spitting spiders illuminate the history of the Himalayas and Southeast Asia
Stedocys spitting spiders (Araneae: Scytodidae) inhabit subterranean environments and have poor dispersal abilities. The Cenozoic Indian–Eurasian collision affected the regional biota of this genus, which occurs in parts of Indochina. Phylogeographical pattern of Stedocys based on multigene DNA sequence datasets reveals how tectonic history drove four biological splits. The first split dates to the late Paleocene–Eocene and involves the Truong Son Mountain Range and Mekong River. The other splits associate with the Eocene–Oligocene transition, including the Tonkin (Beibu) Gulf, the Ma River, and the Red River. These events indicate four early uplifts of the Himalayas and Tibetan Plateau. Our results cannot reject the hypothesis that uplifting of the Himalayas and Tibetan Plateau region due to crustal thickening and the lateral extrusion of Indochina occurred synchronously during the Paleocene–Oligocene transition in reaction to the Indian–Eurasian collision. Species of Stedocys cluster into groups I and II. Their evolution involves one dispersal and four vicariance events, which formed the following five Indochinese clades: Hainan clade (I-1); western Yunnan and central Laos clade (I-2); central Vietnam clade (I-3); northern Vietnam and southwestern China clade (I-4); and Thailand clade (II-1). The lateral extrusion of Indochina is the driver of these events. The drifting of Hainan Island to its present location owes to its southeastern movement from continental Vietnam and Guangxi, China around the Eocene–Oligocene boundary. This biogeographical pattern highlights the significant role geography plays in shaping evolutionary history in southeastern Asia. It also illuminates the how the timing of geological events drives the distributions of species.
FIGURE 12 in New cave-dwelling huntsman spider species of the genus Sinopoda (Araneae: Sparassidae) from southern China
FIGURE 12. Collection localities of nine new Sinopoda species, described in this paper.
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.