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736 results for “habitat distribution”
FIGURES 2–5 in A new Helluodes Westwood species from Western Ghats with notes on habitat, distribution and phylogenetic relationships of genera Helluodes Westwood and Physocrotaphus Parry of the tribe Physocrotaphini Chaudoir (Insecta: Coleoptera: Carabidae: Anthiinae)
FIGURES 2–5. Mentum (ventral view): 2 Helluodes devagiriensis n.sp.; 3 Physocrotaphus ceylonicus; 4 Pogonoglossus giganteus; 5 Schuelea drumonti. Scale bar = 1 mm.
FIGURE 1. A in A new Helluodes Westwood species from Western Ghats with notes on habitat, distribution and phylogenetic relationships of genera Helluodes Westwood and Physocrotaphus Parry of the tribe Physocrotaphini Chaudoir (Insecta: Coleoptera: Carabidae: Anthiinae)
FIGURE 1. A. Distribution pattern of Physocrotaphini in the Indo-Pacific region (numbers in parenthesis indicate the number of Pogonoglossus species recorded from each region); B. Localities of Physocrotaphini in the Western Ghats-Sri Lanka global hot spot of biodiversity.
FIGURES 19–22 in A new Helluodes Westwood species from Western Ghats with notes on habitat, distribution and phylogenetic relationships of genera Helluodes Westwood and Physocrotaphus Parry of the tribe Physocrotaphini Chaudoir (Insecta: Coleoptera: Carabidae: Anthiinae)
FIGURES 19–22. Male and female genitalia (dorsal and lateral view): 19–20 Helluodes devagiriensis n.sp.; 21–22 Physocrotaphus ceylonicus. Scale bar = 1 mm.
FIGURES 6–14 in A new Helluodes Westwood species from Western Ghats with notes on habitat, distribution and phylogenetic relationships of genera Helluodes Westwood and Physocrotaphus Parry of the tribe Physocrotaphini Chaudoir (Insecta: Coleoptera: Carabidae: Anthiinae)
FIGURES 6–14. Labrum, maxillary palpi and pronotum: 6–8 Helluodes devagiriensis n.sp.; 9–11 Helluodes taprobanae; 12–14 Helluodes westwoodi. Not scaled.
FIGURES 15–18 in A new Helluodes Westwood species from Western Ghats with notes on habitat, distribution and phylogenetic relationships of genera Helluodes Westwood and Physocrotaphus Parry of the tribe Physocrotaphini Chaudoir (Insecta: Coleoptera: Carabidae: Anthiinae)
FIGURES 15–18. Median depression and cluster of filamentous setae on 2nd and 3rd sternites of male: 15 Physocrotaphus ceylonicus; 16 Pogonoglossus giganteus; 17 Helluodes devagiriensis n.sp.; 18 2nd and 3rd sternites of female Helluodes devagiriensis n.sp. Not scaled.
Figure 2 in Habitat characterization and potential distribution of Tylototriton vietnamensis in northern Vietnam
Figure 2. Potential distribution of Tylototriton vietnamensis in northern Vietnam based on bioclimatic variables and suitable vegetation cover with detail of Tay Yen Tu Mountain. Higher MaxEnt values suggest higher habitat suitability. Protected areas based on IUCN criteria are represented: dark grey indicates suitable habitat and light grey indicates unsuitable habitat for T. vietnamensis. Known occurrences for the species are marked with a circle and the respective province is named.
Figure 1 in Habitat characterization and potential distribution of Tylototriton vietnamensis in northern Vietnam
Figure 1. Map of Vietnam (A) illustrating in detail the surveyed ponds (n = 22) on Tay Yen Tu Mountain, in Bac Giang and Quang Ninh provinces (B). Black circles: presence and white circles: absence of Tylototriton vietnamensis. Typical habitat of the species: Khe Cam 1 pond in Tay Yen Tu Nature Reserve, Son Dong District, Bac Giang Province (C). Photograph by MB.
Figure 8 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 8. Differences in food preference for the two Ligia species [Ligia occidentalis (LO): F (4,53.45) = 15.918, p = 0.0001; Ligia pallasii (LP): F (4,53,45) = 15.928, p = 0.0004] as shown for mean dry weight consumed for each food type (error bars are ± 1 SE). Changes in weight of the different food types without isopods (none: F (4,22.15) = 0.699, p = 0.601) show minimal changes in weight possibly because of microbial activity. Values of p are based on analysis of variance. Letters above bars indicate significant differences among means (Post hoc Tukey tests).
Figure 6 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 6. Results of mesocosm experiments show that all treatments containing Ligia showed a significant decrease in dry weight of algal biomass compared with a control (none). The reduction in algal biofilm caused by Ligia pallasii (LP) treatment was significantly lower than that by either the Ligia occidentalis (LO) treatment or the combination of the two species (LO+LP). Letters above bars indicate significant differences among means (Post hoc Tukey tests).
Figure 5 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 5. Temperature records at Mussel Point cave (A) and Bodega Harbor (B) represented as mean temperature per month (average) and the monthly average of the daily maximum (max) and minimum (min) temperatures.
Figure 4 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 4. Monthly survey of Ligia pallasii at Mussel Point from March 2007 to December 2010. Overall abundance is represented as mean number of individuals per square metre and is composed of numbers from five different size classes (see key).
Figure 3 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 3. Monthly survey of Ligia occidentalis at Bodega Harbor from March 2007 to December 2010. Overall abundance is represented as mean number of individuals per square metre and is composed of numbers from four different size classes (see key).
Figure 2 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 2. Relative abundance of Ligia occidentalis (LO) and Ligia pallasii (LP) along the surveyed coastline (x axis left to right represents latitudinal coordinates of sampling sites from south to north). LO showed slight but not significant decline in abundance towards the northern range of the distribution Spearman's ρ – 0.0863, p <|ρ| = 0.3680. LP showed a small but significant decline towards the southern range limit (positive correlation with increasing latitude Spearman's ρ 0.5499, p <|ρ| = 0.0001. Lines within sites mark area of range overlap (solid line range limit of species in plot, dashed line range limit of other Ligia species).
Figure 1 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 1. Ligia occidentalis (A) and Ligia pallasii (B, C) can be distinguished by the distance between the eyes and the shape of the caudal peduncle of the uropod. Sexual dimorphism is only present in L. pallasii (B, female; C, male). All scale bars represent 10 mm. Photos: J. Sones.
Figure 7 in Distribution, habitat and food preferences of sympatric high intertidal isopod species Ligia occidentalis and Ligia pallasii (Ligiidae: Oniscidea)
Figure 7. Feeding preferences (mean rank ± 1 SE) of Ligia pallasii and Ligia occidentalis for different species of algal wrack (Nereocystis, Costaria, Ulva, Mazaella and Fucus); n = 20 (L. pallasii), 19 (L. occidentalis). Different letters indicate significant differences in rank of pairwise comparisons after Bonferoni corrections.
Figure 4 in Habitat factors determining the distribution of the Caucasian Agama, Laudakia caucasia, (Squamata: Agamidae) in the Sorkh-e-Hesar National Park, Tehran province, Iran
Figure 4. The graphs show: A) average % of total plant coverage, B) average % of rocky cover, C) average % of bare soil surface, D) average % of plant coverage between 0–25 cm height and E) average of plant richness in plots where Laudakia caucasia was present or absent.
Figure 1 in Habitat factors determining the distribution of the Caucasian Agama, Laudakia caucasia, (Squamata: Agamidae) in the Sorkh-e-Hesar National Park, Tehran province, Iran
Figure 1. Map of Sorkh-e-Hesar National Park with the grid system and seven different types of vegetation cover (Artemisia sieberi, Acanthophyllum microcephalum, Amygdalus lycioides, Ajuga sp., Astragalus sp., Scabiosa sp., Dendrobium sp., Gundelia tournefortii, Stachys byzantina, Stipa sp.) according to the project of Boom-Abad Advisor Engineering (2001–2002).
Figure 1 in Introduction, distribution and habitats of the invasive spider Badumna longinqua (L. Koch, 1867) (Araneae: Desidae) in Uruguay, with notes on its world dispersion
Figure 1. Some synantropic sites where Badumna longinqua was found in Uruguay. (A) on a fire escape on the eighth floor of a building; (B) in a household electrical system; (C) in a window frame inside a house; (D) in a wall crevice.
Figure 3 in Introduction, distribution and habitats of the invasive spider Badumna longinqua (L. Koch, 1867) (Araneae: Desidae) in Uruguay, with notes on its world dispersion
Figure 3. Records of Badumna longinqua in Uruguay. Black circles indicate known records until nineteenth decade of the twentieth century. White circles indicate records from 2000 to 2010.
Figure 2 in Introduction, distribution and habitats of the invasive spider Badumna longinqua (L. Koch, 1867) (Araneae: Desidae) in Uruguay, with notes on its world dispersion
Figure 2. Eucalyptus plantation occupied by Badumna longinqua in Uruguay. (A) General view of the plantation; (B) view of the barks pending from the trunk where the spider frequently built its web; (C) female and web of Badumna longinqua inside an Eucalyptus bark.
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)
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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.