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.
2,772
datasets available to search
ShareScore release 0.7.1
Dataset results
2,772 results for “Amphibia”
Fig. 3 in Identification and morphological description of tadpoles of the horned frog (Amphibia: Anura: Megophryidae) Pelobatrachus stejenegeri from the southern Philippines
Fig. 3. Dorsal view of live (A) and preserved (B) tadpole of Pelobatrachus stejnegeri showing its oral disc. Scale bar = 15 mm.
Fig. 6 in Identification and morphological description of tadpoles of the horned frog (Amphibia: Anura: Megophryidae) Pelobatrachus stejenegeri from the southern Philippines
Fig. 6. Preserved tadpole of Pelobatrachus stejnegeri. A, dorsal view; B, ventral view; C, lateral view. Scale bar = 12 mm.
Fig. 7 in Identification and morphological description of tadpoles of the horned frog (Amphibia: Anura: Megophryidae) Pelobatrachus stejenegeri from the southern Philippines
Fig. 7. Tadpole of Pelobatrachus stejnegeri observed at night attaching to wood debris in its habitat.
Fig. 5 in Identification and morphological description of tadpoles of the horned frog (Amphibia: Anura: Megophryidae) Pelobatrachus stejenegeri from the southern Philippines
Fig. 5. Live tadpole of Pelobatrachus stejnegeri. A, dorsal view; B, ventral view; C, lateral view. Scale bar = 12 mm.
Figure 3 in First record of Sphaerotheca magadha Prasad et al., 2019 (Amphibia: Anura: Dicroglossidae) From West Bengal, India
Figure 3. Typical habitat of Sphaerotheca magadha from Durgapur, Paschim Bardhaman district, West Bengal.
Figure 1 in Description of Nanorana conaensis (Fei and Huang, 1981) (Amphibia: Anura: Dicroglossidae) reported from Arunachal Pradesh, India
Figure 1. Maximum Likelihood (ML) tree for the species of Nanorana based on 570 bp of mitochondrial 16S rRNA (*represents the bootstrap values above 50%).
Figure 4 in A new species of Sphaerotheca Gunther, 1859 (Amphibia: Anura: Dicroglossidae) from the agro ecosystems of Chota Nagpur Plateau, India
Figure 4. Multivariate Principal Component Analysis for six species of Sphaerotheca (data from Padhye et al., (2017) and) with Sphaerotheca magadha sp. nov. (14 morphometric characters marked as * in Table 1 transformed to their ratio to SVL).
Figure 1 in A new species of Sphaerotheca Gunther, 1859 (Amphibia: Anura: Dicroglossidae) from the agro ecosystems of Chota Nagpur Plateau, India
Figure 1. Maximum Likelihood (ML) tree for the species of Sphaerotheca based on 6518 bp of mitochondrial (16S, 12S, COI and Cytb) and nuclear genes (BDNF, CXCR4, NCX1, RAG1, RAG2, Rhod and Tyro).
Figure 2 in A new species of Sphaerotheca Gunther, 1859 (Amphibia: Anura: Dicroglossidae) from the agro ecosystems of Chota Nagpur Plateau, India
Figure 2. Holotype ofSphaerotheca magadha sp. nov. (a) dorsal view; (b) ventral view; (c) ventral view of right hand; (d) ventral view of right foot; (e) arrow showing tarsal tubercle.
Figure 2 in First record of Sphaerotheca magadha Prasad et al., 2019 (Amphibia: Anura: Dicroglossidae) From West Bengal, India
Figure 2. (A) Specimen of Sphaerotheca magadha in life collected from Durgapur, Paschim Bardhaman; (B) Male showing the two external vocal sacs; (C) Ventral view of the specimen (ZSI A14500) collected from Durgapur; (D) Ventral view of the foot with the arrow showing the inner metatarsal tubercle; (E) Ventral view of the hand.
Fig 1 in Effect of traffic noise on Scinax nasicus advertisement call (Amphibia, Anura)
Fig 1. Noise backgrounds and Scinax nasicus (Cope, 1862) call parameters at reference (Site A) and noisy environments (Site B). Amplitude (oscillograms A1, B1) and frequency (spectrograms A2, B2) of the environments. Amplitude (oscillograms A3, B3) and frequency (spectrograms A4, B4) of the advertisement frog's call.
Fig 2 in Effect of traffic noise on Scinax nasicus advertisement call (Amphibia, Anura)
Fig 2. Non-metric multidimensional scaling (NMDS) ordination of call variables of Scinax nasicus (Cope, 1862) adult males in natural (filled circles, Site A) and noisy environments (empty circles, Site B) Sites. The minimum frequency and duration as well as the displayed note pulse of the frogs call were different between the Sites in the first dimension.
Figure 1. USNM 320729 in A new genus and species of rhinatrematid caecilian (Amphibia: Gymnophiona: Rhinatrematidae) from Ecuador
Figure 1. USNM 320729, holotype of AmAZOPs AmAZOPs sp. nov. with head end (top), whole body (middle) and tail end (bottom). Scale bar gradations in mm. Photo by Harry Taylor (Natural History Museum, London).
Figure 3 in A new genus and species of rhinatrematid caecilian (Amphibia: Gymnophiona: Rhinatrematidae) from Ecuador
Figure 3. CT scan of skull USNM 320729, holotype of AmAZOPs AmAZOPs sp. nov. in dorsal (top), right lateral (middle) and ventral (bottom) views. c = occipital condyle; cf = carotid foramen; ch = choana (internal nostril); cp = canalis primordialis; f = frontal; fm = foramen magnum; m = maxillopalatine; n = nasal; o = os basale; p = parietal; pa = pseudangular; pc = processus condyloides; pd = pseudodentary; pi = processus internus; pm = premaxilla; pt = pterygoid; q = quadrate; r = retroarticular process of the pseudoangular; s = stapes; sc = sagittal crest; sm = septomaxilla; sn = squamosal nothch; sq = squamosal; t = foramen for tentacular ducts; v = vomer.
Figure 4 in A new genus and species of rhinatrematid caecilian (Amphibia: Gymnophiona: Rhinatrematidae) from Ecuador
Figure 4. CT scan of tail end of USNM 320729, holotype of AmAZOPs AmAZOPs sp. nov. revealing vertebrae (lef), scales (right) and relationship between scales (green) and vertebrae (orange), in dorsal (top) lateral (middle) and ventral (bottom) views. C = centrum; ha = haemal arch; hs = hyposphene; na = neural arch; ps = parasphene; pz = prezygapophysis; r = rib. Dotted circle highlights the scale free region surrounding the vent.
Fig. 9 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 9. The structure of four species' anuran amphibian's sucker at the first stage of development (view from below).
Fig. 6 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 6. Stages characterizing the beginning of metamorphosis: 23 — resorption of the fin's cloacal piece; 24 — front limbs are seen through the skin.
Fig. 5 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 5. Stages defined according to the development of fingers and hind limb joints: 14 — the leg is in the shape of a shovel; 15 — embryos of two fingers; 16 — embryos of three fingers; 17 — embryos of four fingers; 18 — embryos of five fingers; 19 — embryos of three fingers are segregated; 20 — embryos of five fingers
Fig. 4 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 4. Stages defined according to limb bud's length and diameter correlation: 9–l <1/2d; 10–l ≥ 1/2d; 11–l ≥ 1d; 12– l ≥ 11/2d; 13–l = 2d.
Fig. 3 in Eight Species Of Anuran Amphibians (Amphibia, Anura) Found In Ukraine: Comparative Morphology And Classification Of Larval Development Stages
Fig. 3. Stages of operculum's development: 6 — operculum touches the belly skin or accretes it, gills can be seen from both sides; 7 — operculum completely covers gills from one (right) side; 8 — external gills are completely covered by operculum.
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.