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549 results for “terrestrial isopods”
Figure 5 from: (2014) Description of two new species and redescription of one species of agnarid terrestrial isopods (Oniscidea, Agnaridae) from western Iran. ZooKeys 440: 45-56. https://doi.org/10.3897/zookeys.440.7407
Figure 5 - Protracheoniscus darevskii Borutzky, 1975, male. A pleopod endopodite 1 B–D pleopod exopodite 1 E pleopod 2 F pleopod exopodite 3 G pleopod exopodite 4 H pleopod exopodite 5. Scale = 0.1 mm.
Figure 3 from: (2014) Description of two new species and redescription of one species of agnarid terrestrial isopods (Oniscidea, Agnaridae) from western Iran. ZooKeys 440: 45-56. https://doi.org/10.3897/zookeys.440.7407
Figure 3 - Mongoloniscus persicus sp. n., male, paratype. A pleopod endopodite 1 B pleopod exopodite 1 C pleopod 2 D pleopod exopodite 3 E pleopod exopodite 4 F pleopod exopodite 5. Scale = 0.1 mm.
Figure 2 from: (2014) Description of two new species and redescription of one species of agnarid terrestrial isopods (Oniscidea, Agnaridae) from western Iran. ZooKeys 440: 45-56. https://doi.org/10.3897/zookeys.440.7407
Figure 2 - Mongoloniscus persicus sp. n., male, paratype. A body outline indicating the position of noduli laterales B cephalon and first pereonite C telson and uropods D antenna E pereopod 1 F pereopod 7. Scale = A–B 1 mm; C–G 0.5 mm.
Figure 1 from: (2014) Description of two new species and redescription of one species of agnarid terrestrial isopods (Oniscidea, Agnaridae) from western Iran. ZooKeys 440: 45-56. https://doi.org/10.3897/zookeys.440.7407
Figure 1 - Map of Iran indicating the sampling localities of Mongoloniscus persicus sp. n. (in black), Protracheoniscus ehsani sp. n. (in blue) and Protracheoniscus darevskii (in red).
Figure 4 from: (2014) Description of two new species and redescription of one species of agnarid terrestrial isopods (Oniscidea, Agnaridae) from western Iran. ZooKeys 440: 45-56. https://doi.org/10.3897/zookeys.440.7407
Figure 4 - Protracheoniscus darevskii Borutzky, 1975, male. A body outline indicating the position of noduli laterales B cephalon and first pereonite C telson and uropods D antenna E pereopod 1 F pereopod 7 G pereopod 7 ischium. Scale = A–C 1 mm; D–G 0.5 mm.
Figure 6 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 6 - GNU Image Manipulation Program. A Portion of the "Export Image" window, showing the "Select File Type" menu with the settings for a TIFF image B "Export Image as TIFF" window, with the settings for LZW compression.
Figure 2 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 2 - GNU Image Manipulation Program. A Preferences window, with the "Window Management" settings B "Import from PDF" window appears after a PDF file has been opened with the File > Open command of menu C New Layer window with the Layer Fill Type option set on "White" D Tool Options window of Brush Tool with the brush No. 2. Hardness 075, used in the present drawing method E Tool Options window (Brush Tool) with the brush size set on 5 pixels (5.00).
Figure 1 from: Hornung E, Szlavecz, K Dombos M (2015) Demography of some non-native isopods (Crustacea, Isopoda, Oniscidea) in a Mid-Atlantic forest, USA. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 127–143. https://doi.org/10.3897/zookeys.515.9403
Figure 1 - Temporal changes in activity-density of Cylisticus convexus (A) and Trachelipus rathkii (B) and soil physical characteristics in an urban forest in Baltimore. Mean numbers of individuals captured daily per trap (Cylisticus convexus: open circles, Trachelipus rathkii: asterix) ± SE are shown. Dotted line: mean daily soil temperature at 10 cm; dashed line: smoothed soil temperature; open triangles: volumetric soil moisture content.
Figure 2 from: Dixie B, White H, Hassall M (2015) Effects of microclimate on behavioural and life history traits of terrestrial isopods: implications for responses to climate change. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 145–157. https://doi.org/10.3897/zookeys.515.9399
Figure 2 - Responses of relative growth rates to temperature and relative humidity. Responses to differences in temperature by a) Oniscus asellus, (F1, 36 = 0.905, P = 0.348) and. b) by Porcellio dilatatus, (F1, 36 = 5.112, P = 0.030); to differences in relative humidity of c) Oniscus asellus, (F1, 36 = 17.125, P < 0.001) and d) Porcellio dilatatus, (F1, 36 = 84.326, P < 0.001). Asterisks denote differences signficance at P < 0.05.
Figure 3 from: Dixie B, White H, Hassall M (2015) Effects of microclimate on behavioural and life history traits of terrestrial isopods: implications for responses to climate change. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 145–157. https://doi.org/10.3897/zookeys.515.9399
Figure 3 - Response of mortality to temperature and relative humidity. Responses to temperature by a) Oniscus asellus, (U = 3097.0, P = 0.640. and b) by Porcellio dilatatus, (U = 2254.5, P = 0.016) and to relative humidity by c) Oniscus asellus (U = 1851.5, P < 0.001) and d) by Porcellio dilatatus (U = 2277.5 P < 0.001). Asterisks denote differences signficance at P < 0.05.
Figure 2 from: Caubet Y, Richard F-J (2015) NEIGHBOUR-IN: Image processing software for spatial analysis of animal grouping. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 173–189. https://doi.org/10.3897/zookeys.515.9390
Figure 2 - Virtual configurations used for software validation. Virtual configurations used to compile the data presented in the Table 1. Part 2.8 is one of the 10 replicates obtained with a random distribution. All other configurations have been designed in order to reach the desired level of aggregation and affinity between groups. The filled and empty shapes represented two virtual groups in the population.
Figure 1 from: Dixie B, White H, Hassall M (2015) Effects of microclimate on behavioural and life history traits of terrestrial isopods: implications for responses to climate change. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 145–157. https://doi.org/10.3897/zookeys.515.9399
Figure 1 - Responses in aggregation index to differences in temperatures and relative humidity: Responses to different temperatures by a) Oniscus asellus, (F 4, 249 = 12.22; P < 0.001) and b) by Porcellio scaber (F4,249 = 3.76; P < 0.001). and to different relative humidies by c) Oniscus asellus, (F 4, 230 = 25.39; P < 0.001) and d) by Porcellio dilatatus (F4,171 = 16.85; P < 0.001). Means sharing the same letter are not significantly different from each other at P < 0.05.
Figure 7 from: Giurginca A, Šustr V, Tajovský K, Giurginca M, Matei I (2015) Spectroscopic parameters of the cuticle and ethanol extracts of the fluorescent cave isopod Mesoniscus graniger (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 111–125. https://doi.org/10.3897/zookeys.515.9395
Figure 7 - FP spectra of the sample of solid phase of Mesoniscus graniger dragani (λex = 380 nm) (Int.- intensity of the peak).
Figure 8 from: Giurginca A, Šustr V, Tajovský K, Giurginca M, Matei I (2015) Spectroscopic parameters of the cuticle and ethanol extracts of the fluorescent cave isopod Mesoniscus graniger (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 111–125. https://doi.org/10.3897/zookeys.515.9395
Figure 8 - FP spectra of the samples of ethanol extracts of Mesoniscus graniger graniger (G) and Mesoniscus graniger dragani (D) samples (λex = 380 nm) (F (a.u.) = fluorescence arbitrary units).
Figure 5 from: Giurginca A, Šustr V, Tajovský K, Giurginca M, Matei I (2015) Spectroscopic parameters of the cuticle and ethanol extracts of the fluorescent cave isopod Mesoniscus graniger (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 111–125. https://doi.org/10.3897/zookeys.515.9395
Figure 5 - UV-VIS-NIR spectra of the ethanol extracts of Mesoniscus graniger graniger (G) and Mesoniscus graniger dragani (D) (Abs = Absorbance units).
Figure 4 from: Giurginca A, Šustr V, Tajovský K, Giurginca M, Matei I (2015) Spectroscopic parameters of the cuticle and ethanol extracts of the fluorescent cave isopod Mesoniscus graniger (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 111–125. https://doi.org/10.3897/zookeys.515.9395
Figure 4 - UV-VIS-NIR spectra of the sample of solid phase of Mesoniscus graniger dragani (% R = percent reflectance).
Figure 5 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 5 - GNU Image Manipulation Program. A "Create a New Image" window with settings for a blank page in international A4 format B Layers window after a trace was pasted into a new image, the "Floating Selection" layer is showed C "Pasted Layer" on the same window after the "Floating Selection" was transformed in a new layer D Portion of the Toolbox window showing the tool icons (explanation in the text).
Figure 1 from: Montesanto G (2015) A fast GNU method to draw accurate scientific illustrations for taxonomy. In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 191–206. https://doi.org/10.3897/zookeys.515.9459
Figure 1 - GNU Image Manipulation Program (GIMP, ver. 2.8.14) on a Mac OS. A Image window B Toolbox window C Tool Options window D Layers window E Foreground (black) and Background colours (white).
Figure 2 from: Giurginca A, Šustr V, Tajovský K, Giurginca M, Matei I (2015) Spectroscopic parameters of the cuticle and ethanol extracts of the fluorescent cave isopod Mesoniscus graniger (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 111–125. https://doi.org/10.3897/zookeys.515.9395
Figure 2 - IR spectra of the samples of solid phase of Mesoniscus graniger graniger (G) and Mesoniscus graniger dragani (D).
Figure 6 from: Giurginca A, Šustr V, Tajovský K, Giurginca M, Matei I (2015) Spectroscopic parameters of the cuticle and ethanol extracts of the fluorescent cave isopod Mesoniscus graniger (Isopoda, Oniscidea). In: Taiti S, Hornung E, Štrus J, Bouchon D (Eds) Trends in Terrestrial Isopod Biology. ZooKeys 515: 111–125. https://doi.org/10.3897/zookeys.515.9395
Figure 6 - FP spectra of the sample of solid phase of Mesoniscus graniger dragani (λex = 265 nm) (Int.- intensity of the peak).
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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
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.