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.
822
datasets available to search
ShareScore release 0.9.0
Dataset results
822 results for “systematic position”
Figure 1 from: Makarov KV, Matalin AV (2021) The preimaginal stages of Galerita ruficollis Dejean, 1825 and the position of the tribe Galeritini in the classification of ground beetles (Coleoptera, Carabidae). In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 527-561. https://doi.org/10.3897/zookeys.1044.63085
Figure 1 Mud cells of G. ruficollis: A–C mud cells on different substrates D egg in a mud cell E, F mud cells and remains of the chorion after larval hatching. Not to scale.
Figure 3 from: Makarov KV, Matalin AV (2021) The preimaginal stages of Galerita ruficollis Dejean, 1825 and the position of the tribe Galeritini in the classification of ground beetles (Coleoptera, Carabidae). In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 527-561. https://doi.org/10.3897/zookeys.1044.63085
Figure 3 First instar larva of G. ruficollis after hatching A immediately after hatching B two hours after hatching. Not to scale.
Figure 2 from: Makarov KV, Matalin AV (2021) The preimaginal stages of Galerita ruficollis Dejean, 1825 and the position of the tribe Galeritini in the classification of ground beetles (Coleoptera, Carabidae). In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 527-561. https://doi.org/10.3897/zookeys.1044.63085
Figure 2 Eggs of G. ruficollis at different stages of the development: A immediately after oviposition B two days after oviposition, stage of the germ band C four days after oviposition, the appearance of eye spots and the beginning of leg differentiation D six days after oviposition, formation of the tracheal system E eight days after oviposition, full formation of legs and appendages F–H chaetotaxy developed after 9–10 days I larva just before hatching. Not to scale.
Supplementary material 1 from: Gowande GG, Bhosale HS, Phansalkar PU, Sawant M, Mirza ZA (2021) On the systematics and the phylogenetic position of the poorly known, montane dragon-lizard species Pseudocalotes austeniana (Annandale, 1908) (Squamata, Agamidae, Draconinae). Evolutionary Systematics 5(1): 141-150. https://doi.org/10.3897/evolsyst.5.67137
A list of species, their corresponding sequences and accession numbers used in this study
Supplementary material 2 from: Gowande GG, Bhosale HS, Phansalkar PU, Sawant M, Mirza ZA (2021) On the systematics and the phylogenetic position of the poorly known, montane dragon-lizard species Pseudocalotes austeniana (Annandale, 1908) (Squamata, Agamidae, Draconinae). Evolutionary Systematics 5(1): 141-150. https://doi.org/10.3897/evolsyst.5.67137
Figure S1
FIGS 1, 2 in The water mite Rutripalpus limicola Sokolow, 1934: new data on morphology and biology, and considerations on the systematic position of the monotypic family Rutripalpidae (Acari, Hydrachnidia)
FIGS 1, 2. Rutripalpus limicola male, idiosoma. (1) Ventral view; (2) dorsal view. Bar 5 100 mm.
FIGS 34, 35 in The water mite Rutripalpus limicola Sokolow, 1934: new data on morphology and biology, and considerations on the systematic position of the monotypic family Rutripalpidae (Acari, Hydrachnidia)
FIGS 34, 35. Rutripalpus limicola larva. (34) Chelicera; (35) palp, lateral view. Bar 5 50 mm.
Fig. 73 in Postcranial Osteology Of Azendohsaurus Madagaskarensis (?Middle To Upper Triassic, Isalo Group, Madagascar) And Its Systematic Position Among Stem Archosaur Reptiles
Fig. 73. The relationships of the major clades of early archosauromorphs found in the analyses of this study.
Fig. 60 in Postcranial Osteology Of Azendohsaurus Madagaskarensis (?Middle To Upper Triassic, Isalo Group, Madagascar) And Its Systematic Position Among Stem Archosaur Reptiles
Fig. 60. Left femur of Azendohsaurus madagaskarensis (FMNH PR 2799) in (A) proximal, (B) dorsal, (C) anterodorsal, (D) posteroventral, (E) ventral and (F) distal views. Scale 5 1 cm. Arrows indicate anterior direction. Abbreviations: ctf, crista tibiofibularis; fco, fibular condyle; it, internal trochanter; tco, tibial condyle.
Fig. 81 in Postcranial Osteology Of Azendohsaurus Madagaskarensis (?Middle To Upper Triassic, Isalo Group, Madagascar) And Its Systematic Position Among Stem Archosaur Reptiles
Fig. 81. Reconstruction of the left hand of Trilophosaurus buettneri from specimens TMM 31025-140 and TMM 31025-141.a., articulates with; pi, pisiform; in, intermedium; lce, lateral centrale; mce, medial centrale; ra, radiale; u, ulna; ul, ulnare; 1, distal carpal 1; 2, distal carpal 2; 3, distal carpal 3; 4, distal carpal 4; I, digit I; II, digit II; III, digit III; IV, digit IV; V, digit V.
Fig. 78 in Postcranial Osteology Of Azendohsaurus Madagaskarensis (?Middle To Upper Triassic, Isalo Group, Madagascar) And Its Systematic Position Among Stem Archosaur Reptiles
Fig. 78 Left ulnare of Trilophosaurus buettneri (TMM 31025-140) in (A) proximal, (B) preaxial (lateral), (C) dorsal, and (D) distal views. Scale bar 5 1 cm. Abbreviations: a., articulates with; fo, foramen; lce, lateral centrale; pin, proximal articulation with the intermedium; u, ulna; 4, distal carpal 4.
Fig. 26 in Postcranial Osteology Of Azendohsaurus Madagaskarensis (?Middle To Upper Triassic, Isalo Group, Madagascar) And Its Systematic Position Among Stem Archosaur Reptiles
Fig. 26. Caudal vertebrae of Azendohsaurus madagaskarensis. Articulated middle caudal vertebrae (UA 7-15-99-600) in (A) left lateral view. Articulated middle caudal vertebrae (FMNH PR 2778) in (B) lateral (reversed) and (C) ventral views. An isolated distal caudal vertebra (FMNH PR 2772) in (D) left lateral, (E) dorsal, and (F) ventral views. Scales 5 1 cm. Arrows indicate anterior direction. Abbreviations: a., articulates with; ch, chevron; ns, neural spine; poz, postzygapophysis; prz, prezygapophyses; tp, transverse process.
Figure 3 in Brittle stars (Echinodermata: Ophiuroidea) from La Réunion and the systematic position of Ophiocanops Koehler, 1922
Figure 3. Renetheo felli. SEM images of a paratype and an isolated vertebra. A, ventral aspect, note the position of the oral shields, including the madreporite; B, ventro-lateral view of an interradius, note the absence of genital slits; C, arm piece, dorsal view, note the line of granules and the crossed dorsal spines; D, vertebra, lateral view; E, vertebra, proximal aspect, partly obscured by glue; F, vertebra, distal aspect. Abbreviations: AS, adoral shield; Gr, granules; LAP, lateral arm plate; M, madreporite; OS, oral shield. Scale bars in millimetres.
FIGURE 3. Kamopanorpa spp., hindwing venation. A, PIN 5386 in New species of Kamopanorpa Martynov from the Permian of South Siberia with comments on the systematic position of Microptysmatidae (Protomeropina = Permotrichoptera)
FIGURE 3. Kamopanorpa spp., hindwing venation. A, PIN 5386/2. B, PIN 5386/10.
Figure 9 from: Mey W (2011) On the systematic position of Baltimartyria Skalski, 1995 and description of a new species from Baltic amber (Lepidoptera, Micropterigidae). ZooKeys 130: 331-342. https://doi.org/10.3897/zookeys.130.1480
Figure 9 - Male holotype of Baltimartyria rasnitsyni sp. n. Right hand side position, scale bar 1 mm.
Figures 3-8 from: Mey W (2011) On the systematic position of Baltimartyria Skalski, 1995 and description of a new species from Baltic amber (Lepidoptera, Micropterigidae). ZooKeys 130: 331-342. https://doi.org/10.3897/zookeys.130.1480
Figures 3-8 - Baltimartyria rasnitsyni sp. n. 3 head, lateral view 4 flagellomeres from mid-antenna, enlarged 5 foreleg, enlarged 6 tibia of foreleg with epiphysis from different view 7 legs 8 tip of abdomen and genitalia, ventrolateral view.
Figure 3 from: Páll-Gergely B, Asami T (2014) Description of two new Ecuadorian Zilchistrophia Weyrauch, 1960, with the clarification of the systematic position of the genus based on anatomical data (Gastropoda, Stylommatophora, Scolodontidae). ZooKeys 453: 1-17. https://doi.org/10.3897/zookeys.453.8605
Figure 3 - Genital anatomy of a paratype (NHMUK 20020422) of Zilchistrophia hilaryae sp. n. (A–B) (penis partly removed from its tunica), and a paratype (NHMUK 20020421) of Zilchistrophia shiwiarorum sp. n. (C–D). B and C show the epiphallus-vas deferens transition enlarged. Scales represent 1 mm, and refer to A and D.
Figure 2 from: Páll-Gergely B, Asami T (2014) Description of two new Ecuadorian Zilchistrophia Weyrauch, 1960, with the clarification of the systematic position of the genus based on anatomical data (Gastropoda, Stylommatophora, Scolodontidae). ZooKeys 453: 1-17. https://doi.org/10.3897/zookeys.453.8605
Figure 2 - Schematic drawings showing the position of plicae sets in Zilchistrophia hilaryae sp. n. (A–H) and Zilchistrophia shiwiarorum sp. n. (I–M). Adult shells: A–E, I–L; juvenile shells: F–H, M. A NHMUK 20020375.1 (holotype) B NHMUK 20020370 C NHMUK 20020375, paratype1 D NHMUK 20020388 E NHMUK 20020374 F NHMUK 20020375, paratype2 G NHMUK 20020375, paratype3 H NHMUK 20020372 I NHMUK 20020381 J NHMUK 20020378 K NHMUK 20020382 (holotype) L NHMUK 20020380 M NHMUK 20020376.
Figure 6 from: Páll-Gergely B, Asami T (2014) Description of two new Ecuadorian Zilchistrophia Weyrauch, 1960, with the clarification of the systematic position of the genus based on anatomical data (Gastropoda, Stylommatophora, Scolodontidae). ZooKeys 453: 1-17. https://doi.org/10.3897/zookeys.453.8605
Figure 6 - Distribution of Zilchistrophia Weyrauch, 1960 species. Filled circle: Zilchistrophia hilaryae sp. n. and Zilchistrophia shiwiarorum sp. n.; empty circle: Zilchistrophia obvoluta (Haas, 1949); filled square: Zilchistrophia angigyra (Haas, 1949); empty square: Zilchistrophia tridentata Weyrauch, 1960.
Figure 1 from: Páll-Gergely B, Asami T (2014) Description of two new Ecuadorian Zilchistrophia Weyrauch, 1960, with the clarification of the systematic position of the genus based on anatomical data (Gastropoda, Stylommatophora, Scolodontidae). ZooKeys 453: 1-17. https://doi.org/10.3897/zookeys.453.8605
Figure 1 - Shells of Zilchistrophia Weyrauch, 1960 species. A Holotype of Zilchistrophia tridentata Weyrauch, 1960 (SMF 162006; type species of the genus), arrow shows the inflated part of the last whorl B holotype of Zilchistrophia hilaryae sp. n. (NHMUK 20020375.1), arrow shows the non-inflated part of the body whorl C paratype of Zilchistrophia hilaryae sp. n. (subadult shell with the last quarter of whorl removed in order to show palatal plicae) D holotype of Zilchistrophia shiwiarorum sp. n. (NHMUK 20020382) E plicae bearing shell fragment of the anatomically examined specimen of Zilchistrophia hilaryae sp. n. (arrows indicate the plicae) F plicae bearing shell fragment of the anatomically examined specimen of Zilchistrophia shiwiarorum sp. n. (arrows indicate the plicae). The two shell fragments (E and F) are left together with the ethanol-preserved body. Scale represents 5 mm, and refers to A, B and D.
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.