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.
41
datasets available to search
ShareScore release 0.9.0
Dataset results
41 results for “Chelipeds”
FIGURE 9. Leviapseudes segonzaci. Female DBUA0002010.01a. A, cheliped. B, pereopod1. C, pereopod 2. D, pereopod 3. E, pereopod 4 in The Apseudomorpha (Crustacea: Tanaidacea) of the Gulf of Cadiz and Horseshoe Continental Rise (NE Atlantic): A taxonomic review with new records, species, and ecological data
FIGURE 9. Leviapseudes segonzaci. Female DBUA0002010.01a. A, cheliped. B, pereopod1. C, pereopod 2. D, pereopod 3. E, pereopod 4.
FIGURE 25. Paraleptognathia fastuosa ZMH K40629 a. Cheliped. Scale bar 0.25 in A revision of the genus Paraleptognathia Kudinova-Pasternak, 1981 (Crustacea: Tanaidacea) and description of four new species
FIGURE 25. Paraleptognathia fastuosa ZMH K40629 a. Cheliped. Scale bar 0.25 mm. b. Maxillula, c. Epignath, d. Mandibles, e. Labrum, f. Labium, g. Maxilla, h. Maxilliped. Scale bar 0.1 mm.
FIGURE 17. Paraleptoganthia multiserrata ZMUC CRU 7430 a. Cheliped. ZMB 27518 b. Mandibles, c. Maxillula, d. Maxilla, e. Epignath, f. Labium, g. Labrum, h. Maxilliped. Scale bar 0.25 in A revision of the genus Paraleptognathia Kudinova-Pasternak, 1981 (Crustacea: Tanaidacea) and description of four new species
FIGURE 17. Paraleptoganthia multiserrata ZMUC CRU 7430 a. Cheliped. ZMB 27518 b. Mandibles, c. Maxillula, d. Maxilla, e. Epignath, f. Labium, g. Labrum, h. Maxilliped. Scale bar 0.25 mm for a,d,e,f,g. Scale bar 0.1 mm for b,c,h.
FIGURE 14. Paraleptognathia longiremis ZMH K40542 a. Cheliped, b. Antennule, c. Antenna, d. Uropod, e. Pleopod, f. Pereopod 1, g. Pereopod 2, h. Pereopod 3, i. Pereopod 4, j. Pereopod 5, k. Pereopd 6. Scale bar 0.25 in A revision of the genus Paraleptognathia Kudinova-Pasternak, 1981 (Crustacea: Tanaidacea) and description of four new species
FIGURE 14. Paraleptognathia longiremis ZMH K40542 a. Cheliped, b. Antennule, c. Antenna, d. Uropod, e. Pleopod, f. Pereopod 1, g. Pereopod 2, h. Pereopod 3, i. Pereopod 4, j. Pereopod 5, k. Pereopd 6. Scale bar 0.25 mm.
FIGURE 8. Synalpheus peruvianus. A, minor cheliped. B, second pereopod. C, third pereopod. D, second pleopod. E in Redescriptions and taxonomic notes on species of the Synalpheus townsendi Coutière, 1909 complex (Decapoda: Caridea: Alpheidae)
FIGURE 8. Synalpheus peruvianus. A, minor cheliped. B, second pereopod. C, third pereopod. D, second pleopod. E, telson and uropods.
FIGURE 7. Typhlotanais pereosetulosa, female. Holotype. A, cheliped. B, pereopod 1. C, pereopod 2. D, pereopod 3. E, Pereopod 4. F, pereopod 5. G, pereopod 6. Scale bar 0.1 in The tanaidacean assemblage from the Central Pacific Manganese Nodule Province. II. The genera Stenotanais and Typhlotanais (Crustacea)
FIGURE 7. Typhlotanais pereosetulosa, female. Holotype. A, cheliped. B, pereopod 1. C, pereopod 2. D, pereopod 3. E, Pereopod 4. F, pereopod 5. G, pereopod 6. Scale bar 0.1 mm.
FIGURE 4. Typhlotanais froufesae, female. Holotype. A, cheliped. B, pereopod 1. C, pereopod 2. D, pereopod 3.E, Pereopod 4. F, pereopod 5. G, pereopod 6. Scale bar 0.1 in The tanaidacean assemblage from the Central Pacific Manganese Nodule Province. II. The genera Stenotanais and Typhlotanais (Crustacea)
FIGURE 4. Typhlotanais froufesae, female. Holotype. A, cheliped. B, pereopod 1. C, pereopod 2. D, pereopod 3.E, Pereopod 4. F, pereopod 5. G, pereopod 6. Scale bar 0.1 mm.
FIGURE 2. Stenotanais arenasi, male. Holotype. A, cheliped. B, pereopod 1. C, pereopod 2. D, pereopod 3.E, Pereopod 4. F, pereopod 5. G, pereopod 6. Scale bar 0.1 in The tanaidacean assemblage from the Central Pacific Manganese Nodule Province. II. The genera Stenotanais and Typhlotanais (Crustacea)
FIGURE 2. Stenotanais arenasi, male. Holotype. A, cheliped. B, pereopod 1. C, pereopod 2. D, pereopod 3.E, Pereopod 4. F, pereopod 5. G, pereopod 6. Scale bar 0.1 mm.
Figure 9 in A new species of Nesotanais (Crustacea, Tanaidacea) from Japan, with a key to species and a note on male chelipeds
Figure 9. Nesotanais rugula Bamber, Bird & Angsupanich, 2003. Allotype, male (NHM 2001.6687). A right cheliped, outer view B same, inner view C left cheliped, anterodorsal view of chela D right cheliped, anterodorsal view (slightly different angle from C). Scale bars equal 0.1 mm.
Figure 7 in A new species of Nesotanais (Crustacea, Tanaidacea) from Japan, with a key to species and a note on male chelipeds
Figure 7. Nesotanais ryukyuensis sp. n. A–E, G–Ì allotype, ovigerous female (ZIHU-3823) F paratype, non-ovigerous female (ZIHU-3824). A right antennule B left antenna C labrum D left mandible E right mandible F labium G left maxillule gļ same, endite H maxillipeds, right palp not shown I epignath Ì right cheliped, outer view jļ same, inner view of chela. Scale bars equal 0.1 mm.
Figure 8 in A new species of Nesotanais (Crustacea, Tanaidacea) from Japan, with a key to species and a note on male chelipeds
Figure 8. Nesotanais ryukyuensis sp. n. A–F, H, I allotype, ovigerous female (ZIHU-3823) G paratype, nonovigerous female (ZIHU-3824). A right pereopod 1 B right pereopod 2 C right pereopod 3 D right pereopod 4 E right pereopod 5 F right pereopod 6 G right pereopod 1 H right pleopod 1, most ornaments of setae not shown hļ same, endopod, most ornaments of setae not shown I left uropod. Scale bar equals 0.1 mm.
Figure 9 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 9 - Fecundity in Cinetorhynchus species A and B. The log10 number of embryos per brood are plotted against log10 female size (carapace length, mm).
Figure 2 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 2 - Photographs of living Cinetorhynchus species from Coconut Island, Hawaii. A Cinetorhynchus sp. B male with subchelate first chelipeds (pereopod 1) B Cinetorhynchus sp. B male with cheliped intermediate between chelate and subchelate C Cinetorhynchus sp. A male with subchelate chelipeds D Cinetorhynchus sp. B female E Cinetorhynchus sp. A female. C1 cheliped 1; C2 cheliped 2; M3 third maxilliped. Scale bars represent 10 mm.
Figure 8 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 8 - Puncture wounds (unmarked arrows) on the propodi of the major chelipeds of three large Cinetorhynchus males. A Cinetorhynchus sp. A B and C Cinetorhynchus sp. B D Regenerating major cheliped of a male Cinetorhynchus sp. B; only two articles plus a rudimentary cheliped with underdeveloped propodus and dactyl have formed. d dactyl (movable finger); p propodus. Scale bars represent 3 mm.
Figure 5 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 5 - Comparison of third maxillipeds in male and female Cinetorhynchus species. A Maxilliped 3 size (measured as length of terminal article) plotted against body size (carapace length, CL) B Number of corneous spines on the terminal article of maxilliped 3 plotted against body size (CL). In B number of observations is the same as A, except for Cinetorhynchus sp. B males (n=45) and Cinetorhynchus sp. B females (n=13) because spinous portions of the terminal article of some individuals were damaged.
Figure 7 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 7 - Variation in the major chela and chela finger shape with increasing size in males of Cinetorhynchus species B. A female 11.3 mm CL B male 9.4 mm CL C male 10.1 mm CL D male 10.6 mm CL E male 11.4 mm CL. cs corneous (black) seta(e); d dactyl (movable finger); p propodus; pf propodal finger. Unlabeled arrows in D and E show lack of the black corneous setae seen in A–C. Scale bars represent 10 mm.
Figure 6 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 6 - Ontogeny of major chela (pereopod 1) structure from a typical chela to a subchela in Cinetorhynchus species A and B. The length of the propodal finger relative to propodal length (cheliped size) is plotted as the measure of chela structure. With growth, the relative propodal (fixed) finger length decreases in larger males but not in females as male first chelipeds change from chelate to subchelate (see Figure 7). A Cinetorhynchus sp. A B Cinetorhynchus sp. B.
Figure 4 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 4 - Variation of cheliped size in Cinetorhynchus species. Cheliped size (measured as propodal length) is plotted against body size (CL) in male and females. A Cinetorhynchus sp. A B Cinetorhynchus sp. B.
Figure 3 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 3 - Sexual dimorphism in Cinetorhynchus sp. B. A Large male (10.8 mm CL) B Female (8.9 mm CL). Scale bars in A and B represent 10 mm C Distal end of chela 1 of a female (11.2 mm CL) showing blackened corneous setae on chela fingers; scale bar represents 0.5 mm D Illustration of tip of chela 1, Rhynchocinetes albatrossae (from Chace 1997, no scale given), showing form of blackened corneous setae (similar to those shown in Figure 3C) typical of chelipeds 1 and 2 of rhynchocinetids except in large males (e.g., as in this study). C1 cheliped 1; cs corneous setae; dactyl (movable finger); M3 third maxilliped; p propodus; pf propodal (fixed) finger.
Figure 10 from: Bauer RT, Okuno J, Thiel M (2014) Inferences on mating and sexual systems of two Pacific Cinetorhynchus shrimps (Decapoda, Rhynchocinetidae) based on sexual dimorphism in body size and cheliped weaponry. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 187-209. https://doi.org/10.3897/zookeys.457.6512
Figure 10 - Variation in female breeding dress characters with increasing size in females in Cinetorhynchus sp. A and Cinetorhynchus sp. B. compared with the same structures in males. A Height of the second abdominal pleuron B Width of the basipod flange of the second pleopod.
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.