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440 results for “171”
Figure 3 from: Bonacci T, Brandmayr P, Zetto Brandmayr T (2011) Predator feeding choice on conspicuous and non-conspicuous carabid beetles: first results. ZooKeys 100: 171-179. https://doi.org/10.3897/zookeys.100.1525
Figure 3 - Interspecific aggregation of Brachinus sclopeta a Anchomenus dorsalis b and individuals of Poecilus cupreus c. Scale bar = 2 mm.
Figure 171 from: Houghton D (2012) Biological diversity of the Minnesota caddisflies (Insecta, Trichoptera). ZooKeys 189: 1-389. https://doi.org/10.3897/zookeys.189.2043
Figure 171 - Triaenodes ignitus A total specimens collected and all known collecting localities (Figure 4) B monthly adult abundance (1980s to present) C habitat preference (1980s to present) (Table 1) D male genital capsule E phallus.
Figures 171-178 from: Henry T (2012) Revision of the Plant Bug Genus Tytthus (Hemiptera, Heteroptera, Miridae, Phylinae). ZooKeys 220: 1-114. https://doi.org/10.3897/zookeys.220.2178
Figures 171-178 - Male genitalia 171–174 Tytthus pubescens 171 left paramere 172 right paramere 173 endosoma 174 phallotheca 175–178 Tytthus pygmaeus 175 left paramere 176 right paramere 177 endosoma 178 phallotheca.
Figure 171 from: Branstetter M (2013) Revision of the Middle American clade of the ant genus Stenamma Westwood (Hymenoptera, Formicidae, Myrmicinae). ZooKeys 295: 1-277. https://doi.org/10.3897/zookeys.295.4905
Figure 171 - Stenamma zelum A Queen (CASENT0622537), profile B Same, face C Same, dorsum D Queen (CASENT0621980), wings.
Figures 171-178 from: Zaifu X, Huayan C, van Achterberg K, He J (2014) A revision of the Chinese Trigonalyidae (Hymenoptera, Trigonalyoidea). ZooKeys 385: 1-207. https://doi.org/10.3897/zookeys.385.6560
Figures 171-178 - Orthogonalys clypeata sp. n., holotype, female. 171 Antenna 172 fore wing 173 head lateral 174 mesosoma dorsal 175 mesosoma lateral 176 metasoma dorsal 177 metasoma lateral 178 metasoma ventral.
Figure 171 from: Fernandez-Triana J, Whitfield J, Rodriguez J, Smith M, Janzen D, Hajibabaei M, Burns J, Solis A, Brown J, Cardinal S, Goulet H, Hebert P (2014) Review of Apanteles sensu stricto (Hymenoptera, Braconidae, Microgastrinae) from Area de Conservación Guanacaste, northwestern Costa Rica, with keys to all described species from Mesoamerica. ZooKeys 383: 1-565. https://doi.org/10.3897/zookeys.383.6418
Figure 171 - Apanteles bernardoespinozai. A Habitus, lateral view B Fore wing C Hypopygium and ovipositor sheats D Posterior half of antenna E Anterior half of antenna F Head, frontal view G Meso- and metasoma, dorsal view.
Figure 2 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 2 - Different phases of the hydrological regime according to hydrological level. Paraná River (black line) and Salado River (gray line). The circles indicate the water level in which the crabs were collected from each river (falling and rising water).
Figure 1 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 1 - Sampling sites (localities): Paraná River (PR1, PR2, PR3, PR4, PR5); Saladillo Stream (SS1, SS2); Salado River (SR1, SR2); Coronda River (CR).
Figure 7 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 7 - Results of the tpsPLS applying the two-block partial least-squares analysis on Zilchiopsis collastinensis when water levels were falling. Paraná River (PR1, PR5); Salado River (SR2); Coronda River (CR).
Figure 4 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 4 - Graphics of Canonical Variate Analyses (CVA) of cephalothorax shapes of Zilchiopsis collastinensis between localities. Ellipses represent the confidence interval at 90%. Paraná River (PR1, PR2 PR3, PR5); Salado River (SR1, SR2); Coronda River (CR). a falling water b rising water.
Figure 3 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 3 - Cephalothorax with configuration of 16 landmarks on Zilchiopsis collastinensis (a) and 14 landmarks on Trichodactylus borellianus (b).
Figure 6 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 6 - Results of the tpsPLS applying the two-block partial least-squares analysis. a Zilchiopsis collastinensis when water levels were rising b Trichodactylus borellianus when water levels were falling. Paraná River (PR1, PR2 PR3, PR4); Saladillo Stream (SS1); Salado River (SR1; SR2); Coronda River (CR).
Figure 5 from: Torres MV, Collins PA, Giri F (2014) Morphological variation of freshwater crabs Zilchiopsis collastinensis and Trichodactylus borellianus (Decapoda, Trichodactylidae) among localities from the middle Paraná River basin during different hydrological periods. In: Wehrtmann IS, Bauer RT (Eds) Proceedings of the Summer Meeting of the Crustacean Society and the Latin American Association of Carcinology, Costa Rica, July 2013. ZooKeys 457: 171-186. https://doi.org/10.3897/zookeys.457.6726
Figure 5 - Graphics of Canonical Variate Analyses (CVA) of cephalothorax shapes of Trichodactylus borellianus between localities. Ellipses represent the confidence interval at 90%. Paraná River (PR1, PR2 PR3, PR4); Saladillo Stream (SS1, SS2); Salado River (SR2); Coronda River (CR). a falling water b rising water.
Figures 171-175 from: Reemer M, Stahls G (2013) Generic revision and species classification of the Microdontinae (Diptera, Syrphidae). ZooKeys 288: 1-213. https://doi.org/10.3897/zookeys.288.4095
Figures 171-175 - Figures 171–175. Metadon, male genitalia lateral: 171 Metadon bicoloratus (holotype) 172 Metadon bifasciatus (China, coll. RMNH) 173 Metadon inermis (holotype) 174 Metadon montis (holotype) 175 Metadon punctulatus (holotype).
Figures 171-177 from: Henry TJ (2015) Revision of the Ceratocapsine Renodaeus group: Marinonicoris, Pilophoropsis, Renodaeus, and Zanchisme, with descriptions of four new genera (Heteroptera, Miridae, Orthotylinae). ZooKeys 490: 1-156. https://doi.org/10.3897/zookeys.490.8880
Figures 171-177 - Male genitalia of Ceratocapsidea spp. 171–174: Ceratocapsidea cubana 171 left paramere 172 phallotheca and endosoma 173 right paramere, anterior aspect 174 right paramere, caudal aspect 175–177: Ceratocapsidea dominicanensis 175 left paramere 176 endosoma and phallotheca 177 right paramere, caudal aspect.
Figure 171 from: Neubert E, Bouchet P (2015) The Diplommatinidae of Fiji – a hotspot of Pacific land snail biodiversity (Caenogastropoda, Cyclophoroidea). ZooKeys 487: 1-85. https://doi.org/10.3897/zookeys.487.8463
Figure 171 - Species diversity of Diplommatinidae on the Lau Islands. Moussonia fuscula (Mousson, 1870) 2 Moussonia brodieae sp. n. 3 Moussonia longipalatalis sp. n. 4 Moussonia acuta sp. n. 5 Moussonia minutissima sp. n. 6 Moussonia polita sp. n. 7 Moussonia vitiana (Mousson, 1870).
Figures 171-173 from: van Achterberg K, Talebi A (2014) Review of Gasteruption Latreille (Hymenoptera, Gasteruptiidae) from Iran and Turkey, with the description of 15 new species. ZooKeys 458: 1-187. https://doi.org/10.3897/zookeys.458.8531
Figures 171-173 - Gasteruption freyi (Tournier), male, Czech Republic. 171 mesonotum dorsal 172 basal antennal segments 173 head dorsal.
Figure 4 from: Tuf IH, Drábková L, Šipoš J (2015) Personality affects defensive behaviour of Porcellio scaber (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 159–171. https://doi.org/10.3897/zookeys.515.9429
Figure 4 - Correlations between duration (in seconds) of TI of Porcellio scaber induced by the different treatments: a correlation between duration of TI induced by squeeze and drop b correlation between duration of TI induced by touch and drop c correlation between duration of TI induced by touch and squeeze. Data were transformed by decimal logarithm.
Figure 2 from: Tuf IH, Drábková L, Šipoš J (2015) Personality affects defensive behaviour of Porcellio scaber (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 159–171. https://doi.org/10.3897/zookeys.515.9429
Figure 2 - Tonic immobility of Porcellio scaber induced by different treatments: a probability of inducing TI by the first, the second and the third treatment b probability of inducing TI by different treatments c endurance of TI following the first, the second and the third treatment d endurance of TI following different treatments e sensitivity, i.e. promptness of inducing TI by the first, the second and the third treatment f sensitivity, i.e. promptness of inducing TI by different treatments. (*** p < 0.001; ** p < 0.01; * p ≤ 0.05)
Figure 1 from: Tuf IH, Drábková L, Šipoš J (2015) Personality affects defensive behaviour of Porcellio scaber (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 159–171. https://doi.org/10.3897/zookeys.515.9429
Figure 1 - Design of one experimental set. Dashed arrows symbolise repeated stimuli applied if previous stimulus did not evoke tonic immobility. Experimental sets were applied repeatedly over a three week period; each individual was exposed to five experimental sets with 4 days intervals between.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.