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.
2,595
datasets available to search
ShareScore release 0.9.0
Dataset results
2,595 results for “Fish species”
Tropical range extending herbivorous fishes gain foraging benefits by shoaling with native temperate species
<p>Data1.csv contains the data to analyze the abundance of fish herbivore individuals as a function of the species and the type of shoal. </p> <p>Data2.xlsx contains the data to analyze the foraging activity of the herbivorous fish found in our study. We explored the relationship between bite rates per fish min-1 and the species, shoal type and shoal size. </p> <p>Data3.xlslx contains the data to analyze the shoaling configurations based on species origin. </p> <p>Minguito-Frutos_etal.R contains the R reproducible code to run all the analyses carried out in this study. </p> <p>Species_coocurrence_based_associations.R contains the reproducible R code to run the analyses to explore the strength of mixed-species associations between herbivorous fish. </p> <p>-------------------------------------------------------------------------------------------------------------------------------------------</p> <p>Data1.csv, Data2.xlsx, Data3.xlslx, and Minguito-Frutos_etal.R contains the data and code used before submitting this work. </p> <p>-------------------------------------------------------------------------------------------------------------------------------------------<br><br>Minguito_Frutos_etal2025_SR_Rscript, Data_Rev_SR, and Data2_Rev_SR contain the data and code derived from the last submission to Scientific Reports. In this latest version, we modified our analyses of fish foraging activity that now evaluate: (i) the frequency and size of mixed-species shoals based on the origin of the species examined (using data in Data2_Rev_SR), (ii) the strength of pair-wise associations between native and range-expanding species (using Species_coocurrence_based_associations.R), and (iii) how the foraging activity of native and range-extending fishes was shaped by the composition and size of the shoals (using data in Data_Rev_SR). </p>
Fig. 5. Alabes scotti. Holotype, CSIRO H.3776-01, 48 in Five New Fish Species of the Genus Alabes (Gobiesocidae: Cheilobranchinae)
Fig. 5. Alabes scotti. Holotype, CSIRO H.3776-01, 48 mm SL, Disaster Bay, New South Wales (CSIRO photograph).
Fig. 2 in Five New Fish Species of the Genus Alabes (Gobiesocidae: Cheilobranchinae)
Fig. 2. Alabes elongata. Holotype, male, WAM P.28296-003, 86 mm SL, Recherche Archipelago, Western Australia.
Fig. 1. Alabes obtusirostris. Holotype, CSIRO H.4462-01, 46 in Five New Fish Species of the Genus Alabes (Gobiesocidae: Cheilobranchinae)
Fig. 1. Alabes obtusirostris. Holotype, CSIRO H.4462-01, 46 mm SL, Lakes Entrance, Victoria (drawn by S. Morrison).
Fig. 1 in Crossocheilus Elegans, A New Species Of Fish From Northern Borneo (Teleostei: Cyprinidae)
Fig. 1. Crossocheilus elegans, holotype, ZRC 51184, 78.2 mm SL (dorsal, lateral and ventral views); Sabah: Danum Valley, Kinabatangan drainage.
Fig. 5 in Brevibora Cheeya, A New Species Of Cyprinid Fish From Malay Peninsula And Sumatra
Fig. 5: Map of Sumatra and Malay Peninsula showing the distribution of Brevibora cheeya (square; hollow symbol denotes the type locality) and B. dorsiocellata from comparative material (triangle; hollow symbol denotes the type locality).
Fig. 4 in Brevibora Cheeya, A New Species Of Cyprinid Fish From Malay Peninsula And Sumatra
Fig. 4: Brevibora cheeya. ZRC 39158, 11.4 mm SL; Indonesia: Jambi Province: Berbak Nature reserve, Sungai Air Hitam Dalam.
Fig. 3 in Brevibora Cheeya, A New Species Of Cyprinid Fish From Malay Peninsula And Sumatra
Fig. 3: Brevibora cheeya. ZRC 51965, holotype, 26.6 mm SL; Malaysia: Terengganu, Rantau Abang, 56 km to Kuala Terengganu.
Fig. 2 in Brevibora Cheeya, A New Species Of Cyprinid Fish From Malay Peninsula And Sumatra
Fig. 2: Points used in measurements of rasborins species. 1, Standard length (SL): A-N, from tip of upper jaw to end of hypural plate. 2, Total length (SL): A-H, from tip of upper jaw to tip of upper caudal-fin lobe. 3, Head length: A-E, from tip of upper jaw to posterior edge of opercle. 4, Head depth: at level of posterior margin of orbit (D). 5, Orbital diameter: B-D, between horizontal margins of osseous orbit. 6, Snout length: A-B, from tip of upper jaw to anterior margin of osseous orbit. 7, Interorbital width: distance between upper margins (C) of each osseous orbit. 8, Predorsal length: A-F, from tip of upper jaw to dorsal-fin origin. 9, Preanal length: A-K: from tip of upper jaw to anal-fin origin. 10, Prepectoral length: A-I, from tip of upper jaw to pectoral-fin origin. 11, Prepelvic length: A-J, from tip of upper jaw to pelvicfin origin. 12, Dorsal hypural length: F-N, from anterior edge of dorsal-fin insertion to end of hypural plate. 13, Body depth: at level of dorsal fin origin (F). 14, Caudal peduncle length: L-N, from end of anal-fin base to end of hypural plate. 15, Caudal peduncle depth: narrowest part of caudal peduncle (G-M).
Fig. 1 in Brevibora Cheeya, A New Species Of Cyprinid Fish From Malay Peninsula And Sumatra
Fig. 1: Brevibora dorsiocellata. ZRC 42313, 22.7 mm SL; Indonesia: Sumatra: Jambi: Sungai Alai: 19.5 km to Muara Tebo from Muara Bungo.
Fig. 3 in A new species of black water fighting fish from Singkep Island (Teleostei: Osphronemidae)
Fig. 3. Schematic diagrams of throat pattern of the Betta waseri group in chronological order of discovery: a, B. waseri, b, B. hipposideros, c, B. tomi, d, B. spilotogena, e, B. chloropharynx, f, B. renata, g, B. pi, h, B. pardalotos, i, B. omega, and j, B. andrei.
Fig. 1. Betta andrei, ZRC 64279, 50.7 in A new species of black water fighting fish from Singkep Island (Teleostei: Osphronemidae)
Fig. 1. Betta andrei, ZRC 64279, 50.7 mm SL: topmost – live fish; second from top – freshly preserved fish with white background; third from top – freshly preserved fish with black background; bottom – radiograph.
Figure 13 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 13. Scanning electron micrographs of Chondracanthus kabatai sp. n. from Zenopsis conchifer Lowe. A. Genito-abdomen ventral view (arrow). B–D. Male attached to genito-abdomen of female. (m- male)
Figure 12 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 12. Scanning electron micrographs of Chondracanthus kabatai sp. n., non-type female from Zenopsis conchifer Lowe. A, B. Cephalic appendages. C, D. Mandible. E. Maxilla. F. Maxilliped.
Figure 10 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 10. Chondracanthus kabatai sp. n., non-type female from Zenopsis conchifer Lowe. A. Antennule. B. Antennule apex. C, D. Antenna. E, F. Mandible. G. Maxillule. H, I. Maxilla. J. Maxilliped. K. Leg 1. L. Leg 2. M. Ventral view of genito-abdomen. N. Caudal ramus.
Figure 11 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 11. Scanning electron micrographs of Chondracanthus kabatai sp. n., non-type female from Zenopsis conchifer Lowe. A. Head ventral view showing antennule and antenna. B, C. Antenna. D. Antennule.
Figure 9 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 9. Chondracanthus kabatai sp. n. from Zenopsis conchifer Lowe. A, B. Holotype, female, dorsal and ventral view. C. Paratype, female (ZSI/WGRC/IR/INV/11732), dorsal view, D. Paratype, female (ZSI/WGRC/IR/INV/11729), dorso-lateral view.
Figure 6 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 6. Acanthochondria krishnai sp. n., non-type male from Uranoscopus guttatus Cuvier. A. Habitus lateral view. B. Antennule. C. Antenna. D. Mandible. E. Maxillule. F. Maxilla. G. Maxilliped. H. Leg 1. I. Leg 2. J. Lateral view of genito-abdomen. K. Ventral view of genito-abdomen.
Figure 7. A, B in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 7. A, B. Site of attachment of Chondracanthus kabatai sp. n. (arrows) on its host fish Zenopsis conchifer Lowe.
Figure 5 in New species of Acanthochondria Oakley, 1930 and Chondracanthus Delaroche, 1811 (Copepoda: Cyclopoida: Chondracanthidae) parasitizing marine fishes from Indian waters
Figure 5. Acanthochondria krishnai sp. n., non-type male from Uranoscopus guttatus Cuvier. A. Habitus lateral view. B. Antennule. C. Antenna.
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.