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Figures 19-22 from: Massa B, Heller K-G, Warchałowska-Śliwa E, Moulin N (2018) The tropical African genus Morgenia (Orthoptera, Tettigoniidae, Phaneropterinae) with emphasis on the spur at the mid tibia. Deutsche Entomologische Zeitschrift 65(2): 161-175. https://doi.org/10.3897/dez.65.26693
Figures 19-22 Stridulatory file of the left tegmen in the male of Morgeniarubricornis(19), M.hamuligera(20), M.plurimaculata sp. n. (21) and M.lehmannorum sp. n. (22).
Figures 1-4 from: Massa B, Heller K-G, Warchałowska-Śliwa E, Moulin N (2018) The tropical African genus Morgenia (Orthoptera, Tettigoniidae, Phaneropterinae) with emphasis on the spur at the mid tibia. Deutsche Entomologische Zeitschrift 65(2): 161-175. https://doi.org/10.3897/dez.65.26693
Figures 1-4 Habitus of the male of Morgeniahamuligera (1), M.rubricornis (2), M.plurimaculata sp. n. (3) and M.lehmannorum sp. n. (4) (left side for the first three species, right side for the fourth species).
Figures 27-34 from: Massa B, Heller K-G, Warchałowska-Śliwa E, Moulin N (2018) The tropical African genus Morgenia (Orthoptera, Tettigoniidae, Phaneropterinae) with emphasis on the spur at the mid tibia. Deutsche Entomologische Zeitschrift 65(2): 161-175. https://doi.org/10.3897/dez.65.26693
Figures 27-34 Mid tibia showing the inner spur in the male of Morgeniahamuligera(27), M.rubricornis(28), M.plurimaculata sp. n. (29), M.lehmannorum sp. n. (30), M.angustipinnata sp. n. (31), M.spathulifera(32), M.melica(33) and M.modulata(34).
Figure 52 from: Massa B, Heller K-G, Warchałowska-Śliwa E, Moulin N (2018) The tropical African genus Morgenia (Orthoptera, Tettigoniidae, Phaneropterinae) with emphasis on the spur at the mid tibia. Deutsche Entomologische Zeitschrift 65(2): 161-175. https://doi.org/10.3897/dez.65.26693
Figure 52 Sonogram of a syllable (A) and power spectra of song elements (B; see markings in A) in the calling song of Morgenialehmannorum sp. n. (different colours mark the different sound elements; red: impulse, orange: pulse-like sound).
Figure 53 from: Massa B, Heller K-G, Warchałowska-Śliwa E, Moulin N (2018) The tropical African genus Morgenia (Orthoptera, Tettigoniidae, Phaneropterinae) with emphasis on the spur at the mid tibia. Deutsche Entomologische Zeitschrift 65(2): 161-175. https://doi.org/10.3897/dez.65.26693
Figure 53 Chromosomes of Morgenialehmannorum sp. n.; C-banded mitotic metaphase (A) and diakinesis (B) as well as silver nitrate staining of diakinesis (C) of male complement. Arrows indicate secondary construction region in the largest arm of biarmed chromosome (b) which correspond to the presence of one active NOR (c). An asterisk indicates biarmed medium and small pairs. X, sex chromosome. Scale bars = 10 µm.
Figure 1 from: Lambert H, Fortin G, Labbé R, Labrecque J, Bérubé JA, Landry J, Ilyukhin E, Margaritescu S, Moncalvo J-M, Lamoureux Y (2018) Validation of two Amanita species from eastern North America: A. rhacopus sp. nov. and A. variicolor sp. nov. MycoKeys 38: 47-57. https://doi.org/10.3897/mycokeys.38.27041
Figure 1 Amanitarhacopus. a–c Basidiomes a CMMF002171(holotype), photograph by Yves Lamoureux b CMMF009640, photograph by Jacqueline Labrecque c HL016, photograph by Herman Lambert d–h Drawings of typical microscopic structures by Guy Fortin d Basidiospores e Basidia f Acrophysalides g Universal veil. h. Caulocystides. Scale bar: 3 cm (a, b), 10 µm (d, e), 20 µm (f–h).
Figure 2 from: Lambert H, Fortin G, Labbé R, Labrecque J, Bérubé JA, Landry J, Ilyukhin E, Margaritescu S, Moncalvo J-M, Lamoureux Y (2018) Validation of two Amanita species from eastern North America: A. rhacopus sp. nov. and A. variicolor sp. nov. MycoKeys 38: 47-57. https://doi.org/10.3897/mycokeys.38.27041
Figure 2 Amanitavariicolor. a, b Basidiomes a CMMF003787 (holotype), photograph by Yves Lamoureux b HL0257, photograph by Herman Lambert c–g Drawings of typical microscopic structures by Guy Fortin c Basidiospores d Basidia e Acrophysalides. f. universal veil g Caulocystides. Scale bar: 1 cm (a), 10 µm (c, d), 20 µm (e–g).
Figure 4 from: Seltmann K, Lafia S, Paul D, James S, Bloom D, Rios N, Ellis S, Farrell U, Utrup J, Yost M, Davis E, Emery R, Motz G, Kimmig J, Shirey V, Sandall E, Park D, Tyrrell C, Thackurdeen R, Collins M, O'Leary V, Prestridge H, Evelyn C, Nyberg B (2018) Georeferencing for Research Use (GRU): An integrated geospatial training paradigm for biocollections researchers and data providers. Research Ideas and Outcomes 4: e32449. https://doi.org/10.3897/rio.4.e32449
Figure 4 Initial expertise (color of the bar) vs final confidence (y-axis) after the GRU workshop for participants responding to final survey. Example for how to interpret this graphic: the blue color bar at the top indicates that before the workshop roughly 50% of respondents said their knowledge of GEOLocate was "neither high nor low" but after the workshop these same respondents selected "much higher" for their knowledge of GEOLocate.
Figure 3 from: Seltmann K, Lafia S, Paul D, James S, Bloom D, Rios N, Ellis S, Farrell U, Utrup J, Yost M, Davis E, Emery R, Motz G, Kimmig J, Shirey V, Sandall E, Park D, Tyrrell C, Thackurdeen R, Collins M, O'Leary V, Prestridge H, Evelyn C, Nyberg B (2018) Georeferencing for Research Use (GRU): An integrated geospatial training paradigm for biocollections researchers and data providers. Research Ideas and Outcomes 4: e32449. https://doi.org/10.3897/rio.4.e32449
Figure 3 An illustrative example of the two methods of uncertainty capture when georeferencing specimens. Method A, or polygon, creates a shape around the river (in blue). Method B, or point-radius, creates a circle of uncertainty around the origin. The illustration is based on output from GeoLocate software (Rios 2018) for both polygon and point-radius.
Figure 2 from: Seltmann K, Lafia S, Paul D, James S, Bloom D, Rios N, Ellis S, Farrell U, Utrup J, Yost M, Davis E, Emery R, Motz G, Kimmig J, Shirey V, Sandall E, Park D, Tyrrell C, Thackurdeen R, Collins M, O'Leary V, Prestridge H, Evelyn C, Nyberg B (2018) Georeferencing for Research Use (GRU): An integrated geospatial training paradigm for biocollections researchers and data providers. Research Ideas and Outcomes 4: e32449. https://doi.org/10.3897/rio.4.e32449
Figure 2 This specimen record is an example from the University of California Collection Network Symbiota Portal. The large image is an edit of the record to include a medium size version of the image for easier viewing in this article. The portal software is open source and it is freely available for reuse through the Symbiota GitHub repository. The image is an example of a specimen record that includes an image of the specimen with label data. The image is contributed by the UCSB Invertebrate Zoology Collection at the Cheadle Center for Biodiversity and Ecological Restoration. The usage rights for the image is Creative Commons 0 (public domain).
Figure 1 from: Seltmann K, Lafia S, Paul D, James S, Bloom D, Rios N, Ellis S, Farrell U, Utrup J, Yost M, Davis E, Emery R, Motz G, Kimmig J, Shirey V, Sandall E, Park D, Tyrrell C, Thackurdeen R, Collins M, O'Leary V, Prestridge H, Evelyn C, Nyberg B (2018) Georeferencing for Research Use (GRU): An integrated geospatial training paradigm for biocollections researchers and data providers. Research Ideas and Outcomes 4: e32449. https://doi.org/10.3897/rio.4.e32449
Figure 1 Map created using SimpleMappr (Shorthouse 2010) that illustrates geolocated specimens for Genus=Cicindela in California as found on iDigBio.
Supplementary material 2 from: Wiemers M, Balletto E, Dincă V, Fric ZF, Lamas G, Lukhtanov V, Munguira ML, van Swaay CAM, Vila R, Vliegenthart A, Wahlberg N, Verovnik R (2018) An updated checklist of the European Butterflies (Lepidoptera, Papilionoidea). ZooKeys 811: 9-45. https://doi.org/10.3897/zookeys.811.28712
: Data type: occurrence
Supplementary material 1 from: Wiemers M, Balletto E, Dincă V, Fric ZF, Lamas G, Lukhtanov V, Munguira ML, van Swaay CAM, Vila R, Vliegenthart A, Wahlberg N, Verovnik R (2018) An updated checklist of the European Butterflies (Lepidoptera, Papilionoidea). ZooKeys 811: 9-45. https://doi.org/10.3897/zookeys.811.28712
: Data type: occurrence
Figure 2 from: Wiemers M, Balletto E, Dincă V, Fric ZF, Lamas G, Lukhtanov V, Munguira ML, van Swaay CAM, Vila R, Vliegenthart A, Wahlberg N, Verovnik R (2018) An updated checklist of the European Butterflies (Lepidoptera, Papilionoidea). ZooKeys 811: 9-45. https://doi.org/10.3897/zookeys.811.28712
Figure 2 Cumulative number of described European butterfly species per year according to current taxonomy.
Figures 7-10 from: Sabbatini Peverieri G, Talamas E, Bon MC, Marianelli L, Bernardinelli I, Malossini G, Benvenuto L, Roversi PF, Hoelmer K (2018) Two Asian egg parasitoids of Halyomorpha halys (Stål) (Hemiptera, Pentatomidae) emerge in northern Italy: Trissolcus mitsukurii (Ashmead) and Trissolcus japonicus (Ashmead) (Hymenoptera, Scelionidae). Journal of Hymenoptera Research 67: 37-53. https://doi.org/10.3897/jhr.67.30883
Figures 7-10 Trissolcusjaponicus7 female (FSCA 00033063), head, mesosoma, metasoma, ventrolateral view 8 female (FSCA 00033063), head, mesosoma, metasoma, dorsolateral view 9 female (FSCA 00033063) head, anterior view 10 male (FSCA 00033095), habitus, lateral view. Scale bars in millimeters.
Figure 11 from: Sabbatini Peverieri G, Talamas E, Bon MC, Marianelli L, Bernardinelli I, Malossini G, Benvenuto L, Roversi PF, Hoelmer K (2018) Two Asian egg parasitoids of Halyomorpha halys (Stål) (Hemiptera, Pentatomidae) emerge in northern Italy: Trissolcus mitsukurii (Ashmead) and Trissolcus japonicus (Ashmead) (Hymenoptera, Scelionidae). Journal of Hymenoptera Research 67: 37-53. https://doi.org/10.3897/jhr.67.30883
Figure 11 COI haplotype network of the Trissolcusmitsukurii analyzed in this study. Each circle corresponds to one haplotype; circle size gives the proportion of individuals belonging to the haplotype. The color inside each circle represents the geographical origin. Numbers correspond to the haplotype numbers. Hatch marks symbolize the number of mutations between haplotypes.
Figures 4-6 from: Sabbatini Peverieri G, Talamas E, Bon MC, Marianelli L, Bernardinelli I, Malossini G, Benvenuto L, Roversi PF, Hoelmer K (2018) Two Asian egg parasitoids of Halyomorpha halys (Stål) (Hemiptera, Pentatomidae) emerge in northern Italy: Trissolcus mitsukurii (Ashmead) and Trissolcus japonicus (Ashmead) (Hymenoptera, Scelionidae). Journal of Hymenoptera Research 67: 37-53. https://doi.org/10.3897/jhr.67.30883
Figures 4-6 Trissolcusmitsukurii, female (FSCA 00033025) 4 head, anterior view 5 habitus, lateral view 6 head, mesosoma, metasoma, dorsolateral view. Scale bars in millimeters.
Figures 2-3 from: Sabbatini Peverieri G, Talamas E, Bon MC, Marianelli L, Bernardinelli I, Malossini G, Benvenuto L, Roversi PF, Hoelmer K (2018) Two Asian egg parasitoids of Halyomorpha halys (Stål) (Hemiptera, Pentatomidae) emerge in northern Italy: Trissolcus mitsukurii (Ashmead) and Trissolcus japonicus (Ashmead) (Hymenoptera, Scelionidae). Journal of Hymenoptera Research 67: 37-53. https://doi.org/10.3897/jhr.67.30883
Figures 2-3 Trissolcusmitsukurii, female (FSCA 00033025) 2 head, mesosoma, metasoma, lateral view 3 head, mesosoma, metasoma, anterolateral view. Scale bars in millimeters.
Figure 12 from: Sabbatini Peverieri G, Talamas E, Bon MC, Marianelli L, Bernardinelli I, Malossini G, Benvenuto L, Roversi PF, Hoelmer K (2018) Two Asian egg parasitoids of Halyomorpha halys (Stål) (Hemiptera, Pentatomidae) emerge in northern Italy: Trissolcus mitsukurii (Ashmead) and Trissolcus japonicus (Ashmead) (Hymenoptera, Scelionidae). Journal of Hymenoptera Research 67: 37-53. https://doi.org/10.3897/jhr.67.30883
Figure 12 COI haplotype network of the Trissolcusjaponicus analyzed in this study. Each circle corresponds to one haplotype; circle size gives the proportion of individuals belonging to the haplotype. The color inside each circle represents the geographical origin. Numbers correspond to the haplotype numbers. Hatch marks symbolise the number of mutations between haplotypes.
Figure 4 from: Drazen JC, Smith CR, Gjerde K, Au W, Black J, Carter G, Clark M, Durden JM, Dutrieux P, Goetze E, Haddock S, Hatta M, Hauton C, Hill P, Koslow J, Leitner AB, Measures C, Pacini A, Parrish F, Peacock T, Perelman J, Sutton T, Taymans C, Tunnicliffe V, Watling L, Yamamoto H, Young E, Ziegler AF (2019) Report of the workshop Evaluating the nature of midwater mining plumes and their potential effects on midwater ecosystems. Research Ideas and Outcomes 5: e33527. https://doi.org/10.3897/rio.5.e33527
Figure 4 The mesopelagic ecoregions or biogeographic provinces of the world's oceans proposed by Sutton et al. (2017), available under a CC BY 4.0 license. The numbers are simply for reference, and relate to the geographical names referenced in the paper and in the workshop discussion below. Areas with depths less than 200 m shaded in black.
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.