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1,019 results for “Assignment”
Linked collectors and determiners for: Type specimens and names assigned to Coprophanaeus (Megaphanaeus) d'Olsoufieff, 1924, the largest New World dung beetles (Coleoptera: Scarabaeidae: Phanaeini).
Natural history specimen data linked to collectors and determiners held within, "Type specimens and names assigned to Coprophanaeus (Megaphanaeus) d'Olsoufieff, 1924, the largest New World dung beetles (Coleoptera: Scarabaeidae: Phanaeini)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/cb7585af-33bc-4b5e-a748-cbba9d080a34">https://bionomia.net/dataset/cb7585af-33bc-4b5e-a748-cbba9d080a34</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/cb7585af-33bc-4b5e-a748-cbba9d080a34">https://gbif.org/dataset/cb7585af-33bc-4b5e-a748-cbba9d080a34</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: Oriental macropterous leaf-mimic pygmy grasshoppers-genera Oxyphyllum and Paraphyllum (Orthoptera: Tetrigidae) and their taxonomic assignment.
Natural history specimen data linked to collectors and determiners held within, "Oriental macropterous leaf-mimic pygmy grasshoppers-genera Oxyphyllum and Paraphyllum (Orthoptera: Tetrigidae) and their taxonomic assignment". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/c09c8f15-cfb2-42c9-861b-fc823ba28ae4">https://bionomia.net/dataset/c09c8f15-cfb2-42c9-861b-fc823ba28ae4</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/c09c8f15-cfb2-42c9-861b-fc823ba28ae4">https://gbif.org/dataset/c09c8f15-cfb2-42c9-861b-fc823ba28ae4</a>. Formatted as a Frictionless Data package.
Data from: Dispersal in a house sparrow metapopulation: an integrative case study of genetic assignment calibrated with ecological data and pedigree information
<p class="western">Dispersal has a crucial role determining eco-evolutionary dynamics through both gene flow and population size regulation. However, to study dispersal and its consequences, one must distinguish immigrants from residents. Dispersers can be identified using telemetry, capture-mark-recapture (CMR) methods, or genetic assignment methods. All of these methods have disadvantages, such as, high costs and substantial field efforts needed for telemetry and CMR surveys, and adequate genetic distance required in genetic assignment. In this study, we used genome-wide 200K Single Nucleotide Polymorphism data and two different genetic assignment approaches (GSI_SIM, Bayesian framework; BONE, network-based estimation) to identify the dispersers in a house sparrow (<i>Passer domesticus</i>) metapopulation sampled over 16 years. Our results showed higher assignment accuracy with BONE. Hence, we proceeded to diagnose potential sources of errors in the assignment results from the BONE method due to variation in levels of inter-population genetic differentiation, intra-population genetic variation and sample size. We show that assignment accuracy is high even at low levels of genetic differentiation and that it increases with the proportion of a population that has been sampled. Finally, we highlight that dispersal studies integrating both ecological and genetic data provide robust assessments of the dispersal patterns in natural populations.</p>
Figure 3 in Redescription of Leydigia parva Daday, 1905 and assignment to Parvalona gen. nov. (Cladocera: Anomopoda: Chydoridae)
Figure 3. Parvalona parva (Daday, 1905), limbs of parthenogenetic female from temporary pool at Mandacaru, Lençóis Maranhenses dune field, Maranhao, Brazil, collected 16 August 1996 by K. Van Damme and D. Van Damme. (A) Endite 3 of limb I; (B) limb I; (C) limb II. (D) limb III; (E, F) exopod III; (G, H) inner portion of limb III in anterior and posterior view; (I) limb IV; (J, K) inner portion of limb IV; (L) limb V; (M) inner portion of limb V. Scale bars: 0.1 mm.
Figure 2 in Redescription of Leydigia parva Daday, 1905 and assignment to Parvalona gen. nov. (Cladocera: Anomopoda: Chydoridae)
Figure 2. Parvalona parva (Daday, 1905), parthenogenetic female from unknown locality in Paraguay, lectotype (C, G, I, K) and temporary pool at Mandacaru, Lençóis Maranhenses dune field, Maranhao, Brazil, collected 16 August 1996 by K. Van Damme and D. Van Damme (A, B, D–F, H, J, L–O). (A, B) Labrum; (C–E) head pores; (F, G) postero-ventral portion of valve; (H, I) antenna I; (J, K) antenna II; (L) exopod of antenna II; (M) mandible; (N, O) limb I in inner and outer view; (P) inner portion of limb I. Scale bars: 0.1 mm.
Figure 1 in Redescription of Leydigia parva Daday, 1905 and assignment to Parvalona gen. nov. (Cladocera: Anomopoda: Chydoridae)
Figure 1. Parvalona parva (Daday, 1905), parthenogenetic females from unknown locality in Paraguay (A, D, E) and temporary pool at Mandacaru, Lençóis Maranhenses dune field, Maranhao, Brazil, collected 16 August 1996 by K. Van Damme and D. Van Damme (B, C, F, G). (A) Lectotype; (B, C) two other females; (D) postabdomen of lectotype; (E) postabdomen of paralectotype; (F, G) postabdomens of other females. Scale bars: 0.1 mm.
Figs 59‒62 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 59‒62. Orthocladius (Pogonocladius) consobrinus (Holmgren, 1869) (= Orthocladius crassicornis Goetghebuer, 1937). 59 ‒ head, 60 ‒ inferior volsella, 61 ‒ inferior volsella of lectotype of P. consobrinus from NHRM; 62 ‒ gonostylus.
Figs 47‒52 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 47‒52. Hydrobaenus corax (Kieffer, 1924). 47 ‒ pulvilli, 48 ‒ hypopygium, 49 ‒ anal point, 50 ‒ virga, 51 ‒ inferior volsella, 52 ‒ gonostylus.
Figs 37‒40 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 37‒40. Orthocladius (Orthocladius) timoni Goetghebuer & Timon-David, 1939. 37 ‒ anal point, 38 ‒ inferior volsella, 39 ‒ virga and superior volsella, 40 ‒ hypopygium.
Figs 20‒23 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 20‒23. Orthocladius (Euorthocladius) tolleti (Goetghebuer, 1944). 20 ‒ anal point, 21 ‒ virga, 22 ‒ inferior volsella, 23 ‒ gonostylus.
Figs 13‒19 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 13‒19. Lapposmittia succinea (Goetghebuer, 1942). 13 ‒ wing, 14 ‒ pulvilli, 15 ‒ virga, 16 ‒ superior volsella, 17 ‒ anal point, 18 ‒ inferior volsella, 19 ‒ gonostylus.
Figs 53‒58 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 53‒58. Orthocladius (Orthocladius) rhyacobius Kieffer, 1911. 53 ‒ antenna, 54 ‒ thorax, 55 ‒ palps, 56 ‒ hypopygium, 57 ‒ inferior volsella, 58 ‒ virga and superior volsella.
Figs 7‒12 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 7‒12. Georthocladius scaturiginis (Goetghebuer, 1940). 7 ‒ claws and pulvilli, 8 ‒ thorax, 9 ‒ wing points, 10 ‒ anal point, 11 ‒ inferior volsella, 12 ‒ gonostylus.
Figs 1‒6 in Revision of type and non-type material assigned to the genus Orthocladius by Goetghebuer (1940-1950), deposited in the Royal Belgian Institute of Natural Sciences (Diptera: Chironomidae)
Figs 1‒6. Georthocladius collarti (Goetghebuer, 1941). 1 ‒ hypopygium, 2 ‒ antenna, 3 ‒ wing, 4 ‒ pulvilli, 5 ‒ acrostichals, 6 ‒ TaI PIII.
Figs. 1–4 in Copelatus sibelaemontis sp. nov. (Coleoptera: Dytiscidae) from the Moluccas with generic assignment based on morphology and DNA sequence data
Figs. 1–4. Copelatus sibelaemontis sp. nov. 1 – habitus; 2 – median lobe in ventral view; 3 – the same in lateral view; 4 – lateral lobe (paramere).
Fig. 7. A–C in The generic affinities of the Indo-West Pacific species assigned to Rochinia A. Milne-Edwards, 1875 (Crustacea: Brachyura: Majoidea: Epialtidae)
Fig. 7. A–C, Siderochinia kagoshimensis (Rathbun, 1932) new combination, holotype male (11.2 × 6.8 mm) (USNM 48253), Japan; D–F, S. aglaos, new species, holotype male (10.7 × 6.9 mm) (ZRC 2016.0549), South China Sea (after Lee et al., 2017: fig. 10D–F). A, D, overall dorsal view; B, E, overall ventral view; C, F, lateral view of carapace.
Fig. 2. Overall ventral view. A in The generic affinities of the Indo-West Pacific species assigned to Rochinia A. Milne-Edwards, 1875 (Crustacea: Brachyura: Majoidea: Epialtidae)
Fig. 2. Overall ventral view. A, Samadinia longispina Ng & Richer de Forges, 2013, holotype male (25.3 × 17.9 mm) (MNHN-IU-2011-4190), Polynesia; B, S. suluensis (Griffin & Tranter, 1986) new combination, holotype male (7.8 × 5.0 mm) (RMNH De:103.921), Bougainville Strait; C, S. granulosa (Ng & Richer de Forges, 2013) new combination, paratype male (6.5 × 4.6 mm) (MNHN-IU-2011-2944b), Papua New Guinea; D, S. debilis (Rathbun, 1932) new combination, holotype female (10.8 × 7.0 mm) (USNM49572), Japan.
Fig. 1. Overall dorsal view. A in The generic affinities of the Indo-West Pacific species assigned to Rochinia A. Milne-Edwards, 1875 (Crustacea: Brachyura: Majoidea: Epialtidae)
Fig. 1. Overall dorsal view. A, Samadinia longispina Ng & Richer de Forges, 2013, holotype male (25.3 × 17.9 mm) (MNHN-IU-2011-4190), Polynesia; B, S. suluensis (Griffin & Tranter, 1986) new combination, holotype male (7.8 × 5.0 mm) (RMNH De:103.921), Bougainville Strait; C, S. granulosa (Ng & Richer de Forges, 2013) new combination, holotype female (9.2 × 6.9 mm) (MNHN-IU-2011-2944a), Papua New Guinea; D, S. debilis (Rathbun, 1932) new combination, holotype female (10.8 × 7.0 mm) (USNM49572), Japan; E, S. debilis (Rathbun, 1932) new combination, male (28.9 × 21.0 mm) (SMF 49905), Japan.
Fig. 6. A–C in The generic affinities of the Indo-West Pacific species assigned to Rochinia A. Milne-Edwards, 1875 (Crustacea: Brachyura: Majoidea: Epialtidae)
Fig. 6. A–C, Oxypleurodon fultoni (Grant, 1905) new combination, holotype male (8.2 × 5.1 mm) (AM G.5427), Australia; D–F, Pugettia vesicularis (Rathbun, 1907) new combination, holotype male (14.6 × 10.6 mm) (USNM32860), Galapagos. A, D, overall dorsal view; B, E, overall ventral view; C, F, lateral view of carapace.
Fig. 9. Left G1 and G2. A, B in The generic affinities of the Indo-West Pacific species assigned to Rochinia A. Milne-Edwards, 1875 (Crustacea: Brachyura: Majoidea: Epialtidae)
Fig. 9. Left G1 and G2. A, B, Laubierinia globulifera (Wood-Mason, in Wood-Mason & Alcock, 1891) new combination, male (9.2 × 6.0 mm) (AM P.34652), Indonesia; C, D, Oxypleurodon fultoni (Grant, 1905) new combination, holotype male (8.2 × 5.1 mm) (AM G.5427), Australia; E, F, Pugettia vesicularis (Rathbun, 1907) new combination, holotype male (14.6 × 10.6 mm) (USNM32860), Galapagos; G–J, Siderochinia kagoshimensis (Rathbun, 1932) new combination, holotype male (11.2 × 6.8 mm) (USNM 48253), Japan (after Lee et al., 2017: fig. 11E, F); K, L, S. aglaos, new species, holotype male (10.7 × 6.9 mm) (ZRC 2016.0549), South China Sea (after Lee et al., 2017: fig. 11G–J). A, C, E, G, K, ventral view; B, D, F, H, L, dorsal view; I, ventral view of G2; J, dorsal view of G2. Scale bar = 1 mm.
ScienceDex guides
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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.