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193 results for “subterranean habitat”
Figure 4 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 4 NMS ordination diagram of collembolan communities at five scree sites collected by two sampling methods; the variance explained by the x and y axes is 55% and 20%, respectively, Abbreviations: s – soil samples, t – subterranean traps, life forms: green – epigeonts, blue – hemiedaphobionts, red – euedaphobionts, (for site abbreviations, see the "Material and methods" section, for species abbreviations see the Appendices 1–5).
Figure 3 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 3 Rarefaction (solid line) and extrapolation (dotted line) of soil collembolan species richness from soil samples (SS) and sampling using subterranean traps (ST). Reference samples are indicated by solid circles, (for site abbreviations, see the "Material and methods" section).
Figure 2 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 2 Percentage share of Collembola species numbers and dominance recorded by two techniques at five study sites A species numbers (in columns) associated with the sampling method B relative abundance of species (numbers in columns indicate number of specimens), Abbreviations: SS – exclusively in soil samples, ST – exclusively in subterranean traps, both–shared by both methods (for site abbreviations, see the "Material and methods" section).
Figure 1 from: Jureková N, Raschmanová N, Miklisová D, Kováč Ľ (2021) A comparison of collecting methods in relation to the diversity of Collembola in scree habitats. Subterranean Biology 40: 1-26. https://doi.org/10.3897/subtbiol.40.69808
Figure 1 A Location of the study sites B red ellipse – site with subterranean traps at a scree slope, Abbreviations: A – site near Ardovská jaskyňa Cave (Photo: N. Raschmanová), S – site near Silická ľadnica Ice Cave (Photo: N. Raschmanová), B – site at Borinský kras Karst (Photo: A. Mock), ZA – site at the base of the scree gully in Zádielska tiesňava Valley (Photo: P. Ľuptáčik), ZB – site at the upper part of the scree gully in Zádielska tiesňava Valley (Photo: P. Ľuptáčik) C sampling methods, Abbreviations: SS – soil sampling (Photo: Ľ. Kováč), ST – sampling using subterranean traps (Photo: P. Ľuptáčik).
Figure 5 from: Latella L, Di Russo C, Rampini M, Cobolli M (2014) Measurements of the diet in two species of Troglophilus Krauss, 1879 cave crickets from Italian subterranean habitats (Orthoptera, Rhaphidophoridae). Subterranean Biology 13: 45-54. https://doi.org/10.3897/subtbiol.13.6719
Figure 5 - Comparison of the autumnal diet between female and male sub-samples of Troglophilus andreinii. Grey: green vegetables; light grey: fibres; black: arthropod remains.
Figure 4 from: Latella L, Di Russo C, Rampini M, Cobolli M (2014) Measurements of the diet in two species of Troglophilus Krauss, 1879 cave crickets from Italian subterranean habitats (Orthoptera, Rhaphidophoridae). Subterranean Biology 13: 45-54. https://doi.org/10.3897/subtbiol.13.6719
Figure 4 - Overlap analysis of food resource exploitation conducted in individuals of different age (young instars, nymphs and adults). The dendrograms were performed using euclidean distances based on the Morisita-Horn index matrices. (a: Troglophilus cavicola, b: Troglophilus andreinii).
Figure 3 from: Latella L, Di Russo C, Rampini M, Cobolli M (2014) Measurements of the diet in two species of Troglophilus Krauss, 1879 cave crickets from Italian subterranean habitats (Orthoptera, Rhaphidophoridae). Subterranean Biology 13: 45-54. https://doi.org/10.3897/subtbiol.13.6719
Figure 3 - Comparison of the diet among age sub-samples (Young instars, Nymphs and Adults) of Troglophilus cavicola and Troglophilus andreinii. Grey: green vegetables; light grey: fibres; black: arthropod remains.
Figure 2 from: Latella L, Di Russo C, Rampini M, Cobolli M (2014) Measurements of the diet in two species of Troglophilus Krauss, 1879 cave crickets from Italian subterranean habitats (Orthoptera, Rhaphidophoridae). Subterranean Biology 13: 45-54. https://doi.org/10.3897/subtbiol.13.6719
Figure 2 - Comparison of seasonal niche breadth in Troglophilus cavicola and Troglophilus andreinii populations
Figure 2 from: Rosa G, Penado A (2013) Rana iberica (Boulenger, 1879) goes underground: subterranean habitat usage and new insights on natural history. Subterranean Biology 11: 15-29. https://doi.org/10.3897/subtbiol.11.5170
Figure 2 - Polar coordinates representing the activity cycle and breeding period of Rana iberica in two different sites (inside the drainage gallery in Sazes and the whole area of Planalto Superior) in Serra da Estrela; Portugal. Dark brown areas: post-metamorphic phase; beige areas: larval phase; green areas: adults in breeding activity.
Figure 1 from: Rosa G, Penado A (2013) Rana iberica (Boulenger, 1879) goes underground: subterranean habitat usage and new insights on natural history. Subterranean Biology 11: 15-29. https://doi.org/10.3897/subtbiol.11.5170
Figure 1 - Serra da Estrela Natural Park and hypogean habitat used by individuals of Rana iberica: A entrance of the underground spring B Schistostega pennata covering walls and floor of the drainage gallery C horizontal tunnel of drainage gallery. Photo A by Madeira M, B by Rosa GM, C by Laurentino T.
Figure 6 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 6 - Figure 6. CCA for environmental variables and biotic data of 11 sampling sites from São Domingos karst area and surroundings, central Brazil (ORP= redox potential; T = temperature; OD= concentration of O2; DO = oxygen saturation and cond=conductivity). Red abbreviations represent the taxa: Rot = Rotifera; An = Anuraeopsis sp.; Br.f = Brachionus falcatus; Br= Brachionus sp.; Col = Collotheca sp.; Con = Conochilus sp.; Fil = Filinia sp.; Gas = Gastropus sp.; Kel= Kellicotia bostoniensis; K.ct= Keratella cochelaris tecta; K.co = Keratella cochelaris; Le c= Lecanidae; L.sp = Lecane sp.; L.mo = Lecane monostyla sp.; Plo = Ploimida; Sin = Synchaeta sp.; Tes = Testudinella sp.; Tri = Trichocerca sp.; Bde = Bdelloidea; Cy= Cyclopoida; Cal = Calanoida; Har = Harpacticoida; Bos = Bosmina; Cla = Cladocera; Per = Peridinium sp.; Ins = Insecta; Chi = Chironomidae; Cha = Chaoboridae; Sim = Simuliidae; Nem = Nematoda; A.cos = Arcella costata. X words represent the sampling sites (described at Table 1): X1=AngD01; X2=AngD02; X3=BAraD; X4=BAraP; X5=AngEk; X6=SBerEk; X7=BezS; X8=PalmEp; X9=BAraEp; X10=AngEp and X11=SDEp.
Figure 5 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 5 - Figure 5. Similarity Cluster Analysis (Sorensen, single linkage) for 16 sampling sites from São Domingos karst area and surroundings, Goiás state, central Brazil. Abbreviations are described in Table 1.
Figure 5 from: Rosa G, Penado A (2013) Rana iberica (Boulenger, 1879) goes underground: subterranean habitat usage and new insights on natural history. Subterranean Biology 11: 15-29. https://doi.org/10.3897/subtbiol.11.5170
Figure 5 - Rana iberica tadpoles feeding on lost clutch: A fresh egg mass of Rana iberica laid (mostly) above water surface (11 March, 2012) B group of tadpoles feeding on the dead eggs (29 April, 2012) C, D and E close ups of tadpole feasting on the eggs. Photos by Rosa GM.
Figure 4 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 4 - Figure 4. Number of taxa recorded in 16 sampling sites. Total taxa for epigean (21) and subterranean habitats (30).
Figure 2 from: Silva M, Rezende R, Lopes Ferreira R (2013) Detritus processing in lentic cave habitats in the neotropics. Subterranean Biology 11: 3-14. https://doi.org/10.3897/subtbiol.11.5107
Figure 2 - Remaining weight of plant disks exposed to processing in the 9 mm2 litterbag mesh size in the lentic habitats of Brega and Santuário caves. Mean, Box: Mean±SE, Whisker: Mean±SD.
Figure 3 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 3 - Figure 3. Subterranean river (A São Bernardo Cave) and drips (in blue) formed by infiltration water (B Angélica Cave – AngD01). Photography: a, Adriano Gambarini; b, Maria Elina Bichuette.
Figure 1 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 1 - Horizons in karst: 1 soil 2 karst terrain 3 limestone outcrop; 4 epikarst 5 aquifer in epikarst 6 drips 7 doline 8 cave 9 and 10 subterranean river at the base level 11 resurgence 12 epigean river A epikarstic zone B vadose zone C phreatic or saturated zone. (Ilustration: Pedro Pereira Rizzato).
Figure 2 from: Simões L, Ferreira T, Bichuette M (2013) Aquatic biota of different karst habitats in epigean and subterranean systems of Central Brazil – visibility versus relevance of taxa. Subterranean Biology 11: 55-74. https://doi.org/10.3897/subtbiol.11.5981
Figure 2 - Study area map with details of subterranean cave systems and epigean rivers at São Domingos karst area and surroundings, Goiás state, central Brazil. In dark gray – limits of Terra Ronca State Park (TeRSP). A São Domingos river B Angélica Cave C Bezerra Cave D São Mateus Cave E Buraco das Araras Cave F Terra Ronca I Cave (sinkhole of Lapa river) G Palmeiras river H São Bernardo Cave I Revolucionários Cave (this cave is located outside the limits of Terra Ronca State Park).
Figure 1 from: Latella L, Di Russo C, Rampini M, Cobolli M (2014) Measurements of the diet in two species of Troglophilus Krauss, 1879 cave crickets from Italian subterranean habitats (Orthoptera, Rhaphidophoridae). Subterranean Biology 13: 45-54. https://doi.org/10.3897/subtbiol.13.6719
Figure 1 - Seasonal comparison of food resource exploitation among cumulate samples of Troglophilus cavicola and Troglophilus andreinii. Grey: green vegetables; light grey: fibres; black: arthropod remains.
Figure 1 from: Silva M, Rezende R, Lopes Ferreira R (2013) Detritus processing in lentic cave habitats in the neotropics. Subterranean Biology 11: 3-14. https://doi.org/10.3897/subtbiol.11.5107
Figure 1 - Remaining weight of plant disks exposed to processing in the 0.04 mm2 litterbag mesh size in the lentic habitats of Brega and Santuário caves. Mean, Box: Mean±SE, Whisker: Mean±SD
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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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.