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230 results for “species presence”
Figure 64 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 64: Comparison of pedipalp patella trichobothrial counts for "Euscorpius carpathicus" complex species. Horizontal bar: minimum, maximum, corrected minimum/maximum (mean-SD and mean+SD), and mean; n = number of samples, cv = coefficient of variability (SD/mean). eb = external basal, eba = external basal-a, em = external median, et = external terminal.
Figures 48-56 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 48-56: Euscorpius koschewnikowi, Mt. Athos, Greece. 48. Carapace, female (lectotype). 49. Chela, male. 50. Chela, female. 51. Telson, lateral view, male. 52. Telson, ventral view, male. 53. Telson, lateral view, female. 54. Telson, ventral view, female. 55. Metasomal segment V, ventral view, female. 56. Pedipalp patella, dorsal view, female.
Figure 58 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 58: Diagrammatic trichobothrial patterns of external aspect of pedipalp patella (partial) showing fundamental series configurations found in the "Euscorpius carpathicus" complex: the ebeba-em = "4-4-4", "4-4-3" and "5-7-4" configurations. em = external median, eba = external basal-a, and eb = external basal.
Figure 35 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 35: Statistical data for pedipalp patella trichobothrial counts of Euscorpius tergestinus. See Fig. 12 for definition of terms.
Figures 23-24 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 23-24: 23. Euscorpius hadzii Caporiacco, male, Prokletije Mountains, Albania. 24. Euscorpius tergestinus (C.L. Koch), female, Strunjan, Slovenia.
Figure 22 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 22: Statistical data for pedipalp patella trichobothrial counts of Euscorpius balearicus. See Fig. 12 for definition of terms.
Figures 3-11 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 3-11: Euscorpius carpathicus, Mehadija, Romania. 3. Carapace, male. 4. Chela, male. 5. Chela, female. 6. Telson, lateral view, male. 7. Telson, ventral view, male. 8. Telson, lateral view, female. 9. Telson, ventral view, female. 10. Metasomal segment V, ventral view, male. 11. Pedipalp patella, dorsal view, female.
Figures 59-63 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 59-63: Idealized trichobothrial patterns of external aspect of pedipalp patella. 59. Euscorpius balearicus. 60. E. tergestinus. 61. E. koschewnikowi. 62. E. carpathicus. 63. E. hadzii. et = external terminal, est = external subterminal, em = external median, esb = external suprabasal, eba = external basal-a, and eb = external basal; V = ventral.
Figure 46 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 46: Statistical data for pedipalp patella trichobothrial counts of Euscorpius hadzii. See Fig. 12 for definition of terms.
Figures 25-33 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 25-33: Euscorpius tergestinus, Osp, Slovenia. 25. Carapace, male. 26. Chela, male. 27. Chela, female. 28. Telson, lateral view, male. 29. Telson, ventral view, male. 30. Telson, lateral view, female. 31. Telson, ventral view, female. 32. Metasomal segment V, ventral view, male. 33. Pedipalp patella, dorsal view, female.
Figure 45 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 45: Diagrammatic trichobothrial patterns of external aspect of pedipalp patella (partial) showing variability in position and number of trichobothria for Euscorpius hadzii. Numbers found in each series is situated right of each diagram. em = external median, eba = external basal-a, and eb = external basal.
Figures 36-44 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 36-44: Euscorpius hadzii, Prokletije Mountains, Albania. 36. Carapace, male. 37. Chela, male. 38. Chela, female. 39. Telson, lateral view, male. 40. Telson, ventral view, male. 41. Telson, lateral view, female. 42. Telson, ventral view, female. 43. Metasomal segment V, ventral view, male. 44. Pedipalp patella, dorsal view, female.
Figure 34 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figure 34: Statistical distribution of pedipalp patella ventral and external et trichobothrial series of Euscorpius tergestinus broken down into Caporiacco's subspecies from a western (southeastern France) to eastern (northern Italy and Slovenia) to southern (Croatia) direction. Note: the Trieste, Italy area is the type locality of E. tergestinus and the Slovenia/Croatia area populations were originally declared by Caporiacco as E. c. tergestinus as contrasted with his other subspecies. et = external terminal. See Fig. 12 for definitions of other terms.
Figures 13-21 in Morphology analysis supports presence of more than one species in the "Euscorpius carpathicus" complex (Scorpiones: Euscorpiidae)
Figures 13-21: Euscorpius balearicus, Mallorca, Balearic Islands, Spain. Female, Puerto Alcudia, male, Soller. 13. Carapace, male. 14. Chela, male. 15. Chela, female. 16. Telson, lateral view, male. 17. Telson, ventral view, male. 18. Telson, lateral view, female. 19. Telson, ventral view, female. 20. Metasomal segment V, ventral view, male. 21. Pedipalp patella, dorsal view, female.
Murgia Alta: Ailantus altissima invasive species presence map (2012)
<p>An Ailanthus altissima invasive species presence map in "Murgia Alta" PA, for 2012, obtained by a two stage algorithm [1]. The first stage considers the deciduous vegetation layer obtained by a multiclass knowledge-based classification of 4 multi-seasonal VHR Worldview-2 images. In the second stage an SVM classifier was used to detect, in a two-classes problem, the Ailanthus invasive species within the deciduous layer vegetation boundaries overimposed on 2 VHR Worldview-2 images. The Worldview-2 images were dated May 19<sup>th</sup>, 2011, October 10<sup>th</sup>, 2011, January 22th, 2012 and July 6<sup>th</sup>, 2012. The October and July images were considered in the second stage.</p> <p>The map was produced at 2 meters spatial resolution and projected in WGS84/UTM33N.</p> <p>The map has binary values where value 1 indicates Ailanthus altissima pixels whereas value 0 indicates No Ailanthus altissima.</p> <p>The Overall Accuracy (OA) of the map was: OA=97.96%±0.14%.</p> <p>[1] C. Tarantino, F. Casella, M. Adamo, R. Lucas, C. Beierkuhnlein, P. Blonda. (2018). “Ailanthus altissima mapping from multi-temporal very high resolution satellite images”, ISPRS <em>Journal of Photogrammetry and Remote Sensing</em>, 147, 90-103, <a href="https://doi.org/10.1016/j.isprsjprs.2018.11.013">https://doi.org/10.1016/j.isprsjprs.2018.11.013</a></p>
Text-fig. 4. Occurrence of P3 in maxillae from Deninger bears and cave bears, data after Table 1 (presence = P3 or alveoli observed, absence = no P3 developed, broken = caudal part of maxilla broken). in Anterior Premolar Variability In Pleistocene Cave And Brown Bears And Its Significance In Species Determination
Text-fig. 4. Occurrence of P3 in maxillae from Deninger bears and cave bears, data after Table 1 (presence = P3 or alveoli observed, absence = no P3 developed, broken = caudal part of maxilla broken).
Text-fig. 2. Occurrence of P3 in maxillae from brown bears, data after Table 1 (presence = P3 or alveoli observed, absence = no P3 developed, broken = caudal part of maxilla broken). in Anterior Premolar Variability In Pleistocene Cave And Brown Bears And Its Significance In Species Determination
Text-fig. 2. Occurrence of P3 in maxillae from brown bears, data after Table 1 (presence = P3 or alveoli observed, absence = no P3 developed, broken = caudal part of maxilla broken).
Text-fig. 8. Occurrence of p3 in mandibles from Deninger bears, data after Table 3 (presence = p3 or alveoli observed, absence = no p3 developed, broken = diastema fragmented). in Anterior Premolar Variability In Pleistocene Cave And Brown Bears And Its Significance In Species Determination
Text-fig. 8. Occurrence of p3 in mandibles from Deninger bears, data after Table 3 (presence = p3 or alveoli observed, absence = no p3 developed, broken = diastema fragmented).
Text-fig. 6. Occurrence of p3 in mandibles from brown bears, data after Table 3 (presence = p3 or alveoli observed, absence = no p3 developed, broken = diastema fragmented). in Anterior Premolar Variability In Pleistocene Cave And Brown Bears And Its Significance In Species Determination
Text-fig. 6. Occurrence of p3 in mandibles from brown bears, data after Table 3 (presence = p3 or alveoli observed, absence = no p3 developed, broken = diastema fragmented).
Text-fig. 5. Occurrence of p1 in mandibles from brown bears, data after Table 3 (presence = p1 or alveoli observed, absence = no p1 developed, broken = diastema fragmented). in Anterior Premolar Variability In Pleistocene Cave And Brown Bears And Its Significance In Species Determination
Text-fig. 5. Occurrence of p1 in mandibles from brown bears, data after Table 3 (presence = p1 or alveoli observed, absence = no p1 developed, broken = diastema fragmented).
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.