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3,507 results for “Species identification”
Figures 8-9 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 8-9 - Lymantor coryli, adult. 8 dorsal aspect 9 lateral aspect.
Figures 1-2 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 1-2 - Hypoborus ficus, adult. 1 dorsal aspect 2 lateral aspect.
Figures 3–4 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 3–4. Hypothenemus eruditus, adult. 3 lateral aspect 4 dorsal aspect.
Figures 10-11 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 10-11 - Taphrorychus ramicola, adult. 10 dorsal aspect 11 lateral aspect.
Figures 5-7 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 5-7 - Antennal club. 5 Hypothenemus eruditus 6 Lymantor coryli 7 Xylosandrus germanus.
Figures 12–13 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 12–13. Taphrorychus hirtellus, adult. 12 dorsal aspect 13 lateral aspect.
Figures 26-27 from: Tuncer C, Knizek M, Hulcr J (2017) Scolytinae (Coleoptera, Curculionidae) in hazelnut orchards of Turkey: clarification of species and identification key. ZooKeys 710: 65-76. https://doi.org/10.3897/zookeys.710.15047
Figures 26-27 - Xyleborus xylographus, female. 23 dorsal aspect 24 lateral aspect.
Figure 1 from: Dorado-Roncancio J, Gaviria S, Bernal-De La Torre L, Ahrens MJ (2019) A new species of Bestiolina (Crustacea, Copepoda, Calanoida, Paracalanidae) from coastal waters of the Colombian Pacific, including a worldwide key for the identification of the species. ZooKeys 846: 1-18. https://doi.org/10.3897/zookeys.846.31497
Figure 1 Sampling locations (modified from Dorado Roncancio 2018).
Figures 1-2 from: Balkenohl M (2017) Trilophidius gemmatus sp. n., a new species from Bhutan, with an updated identification key to the Asian species (Coleoptera, Carabidae, Scaritinae). Alpine Entomology 1: 51-56. https://doi.org/10.3897/alpento.1.17351
Figures 1-2 - Trilophidius gemmatus sp. n., holotype, male, dorsal view. 1 Habitus. 2 Head.
Figure 5 from: Balkenohl M (2017) Trilophidius gemmatus sp. n., a new species from Bhutan, with an updated identification key to the Asian species (Coleoptera, Carabidae, Scaritinae). Alpine Entomology 1: 51-56. https://doi.org/10.3897/alpento.1.17351
Figure 5 - Trilophidius gemmatus sp. n., female coxostyli, paratype, dorsolateral view.
Figure 1 from: Li Y, Li H, Motokawa M, Wu Y, Harada M, Sun H, Mo X, Wang J, Li Y (2019) A revision of the geographical distributions of the shrews Crocidura tanakae and C. attenuata based on genetic species identification in the mainland of China. ZooKeys 869: 147-160. https://doi.org/10.3897/zookeys.869.33858
Figure 1 Distributions of Crocidura attenuata and C. tanakae by the IUCN.
Figure 1 in A new epigean pseudoscorpion species (Pseudoscorpiones: Neobisiidae) from northeast of Iran, with an identification key to the species of the family Neobisiidae from Iran
Figure 1. Distribution map of the genus Roncus in Iran.
Identification data for discrimination between species from genus Apis
<p>The data in dw.xml file can be used for identification of 9 species from genus <em>Apis</em>:<em> A. andreniformis, A. cerana, A. dorsata, A. florea, A. koschevnikovi, A. laboriosa, A. mellifera, A. nigrocincta, A. nuluensis</em>. The discrimination is based on 19 landmarks of a forewing. The data were obtained from:</p> <p>Bustamante, T., Fuchs, S., Grünewald, B., & Ellis, J. D. (2021). A geometric morphometric method and web application for identifying honey bee species (<em>Apis</em> spp.) using only forewings. Apidologie, 52(3), 697-706. https://doi.org/10.1007/s13592-021-00857-7</p> <p>Please cite Bustamante et al. (2021) if you find this data useful. </p> <p>The landmark order was change to be compatible with IdentiFly. Position of landmarks 7 and 14 differs from Ruttner (1988) and configuration used in IdentiFly. </p> <p>The dw.xml file can be used in IdentiFly software http://drawwing.org/identifly or in R package IdentiFlyR https://github.com/DrawWing/IdentiFlyR. </p> <p> </p>
Data from: DNA barcoding gap: reliable species identification over morphological and geographical scales
The philosophical basis, and utility of DNA barcoding has been a subject of numerous debates. While most literature embraces it, some studies continue to question its use in dipterans, butterflies, and marine gastropods. Here, we explore the utility of DNA barcoding in identifying spider species that vary in taxonomic affiliation, morphological diagnosibility and geographic distribution. Our first test searched for a "barcoding gap" by comparing intra- and interspecific means, medians and overlap in more than 75,000 computed Kimura 2 parameter (K2P) genetic distances in three families. Our second test compared K2P distances of congeneric species with high versus low morphological distinctness in 20 genera of 11 families. Our third test explored the effect of enlarging geographical sampling area at a continental scale on genetic variability in DNA barcodes within 20 species of nine families. Our results generally point towards a high utility of DNA barcodes in identifying spider species. However, the size of the barcoding gap strongly depends on taxonomic groups and practices. It is becoming critical to define the barcoding gap statistically more consistently, and to document its variation over taxonomic scales. Our results support models of independent patterns of morphological and molecular evolution by showing that DNA barcodes are effective in species identification regardless of their morphological diagnosibility. We also show that DNA barcodes represent an effective tool for identifying spider species over geographic scales, yet their variation contains useful biogeographic information.
Figure 6 from: Zhao Y, Li Y, Li M, Liu Z (2021) Two new species of Semidalis Enderlein, 1905 (Neuroptera, Coniopterygidae) from China, with an identification key to Chinese species. ZooKeys 1055: 43-54. https://doi.org/10.3897/zookeys.1055.63192
Figure 6 Semidalis tibetana sp. nov., male habitus, lateral view. Scale bar: 1 mm.
Figure 4 from: Zhao Y, Li Y, Li M, Liu Z (2021) Two new species of Semidalis Enderlein, 1905 (Neuroptera, Coniopterygidae) from China, with an identification key to Chinese species. ZooKeys 1055: 43-54. https://doi.org/10.3897/zookeys.1055.63192
Figure 4 Semidalis procurva sp. nov., male habitus, lateral view. Scale bar: 1 mm.
Figure 2 from: Zhao Y, Li Y, Li M, Liu Z (2021) Two new species of Semidalis Enderlein, 1905 (Neuroptera, Coniopterygidae) from China, with an identification key to Chinese species. ZooKeys 1055: 43-54. https://doi.org/10.3897/zookeys.1055.63192
Figure 2 Semidalis decipiens (Roepke, 1916), male habitus, lateral view. Scale bar: 1 mm.
Figure 1 from: Zhao Y, Li Y, Li M, Liu Z (2021) Two new species of Semidalis Enderlein, 1905 (Neuroptera, Coniopterygidae) from China, with an identification key to Chinese species. ZooKeys 1055: 43-54. https://doi.org/10.3897/zookeys.1055.63192
Figure 1 Distribution of Semidalis species in China.
Figure 1 from: Smit J, Reijnen B, Stokvis F (2013) Half of the European fruit fly species barcoded (Diptera, Tephritidae); a feasibility test for molecular identification. ZooKeys 365: 279-305. https://doi.org/10.3897/zookeys.365.5819
Figure 1 - Primer positions within the COI region.
Figure 86 from: Perbiche-Neves G, Boxshall GA, Previattelli D, Nogueira MG, da Rocha CEF (2015) Identification guide to some Diaptomid species (Crustacea, Copepoda, Calanoida, Diaptomidae) of "de la Plata" River Basin (South America). ZooKeys 497: 1-111. https://doi.org/10.3897/zookeys.497.8091
Figure 86 - "Diaptomus" curvatus female. A Posterior pedigers and GS B P5.
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.