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751 results for “geology”

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zenodo28/100

Fig. 1 in Phylogeny and Geological History of the Cynipoid Wasps (Hymenoptera: Cynipoidea)

Fig. 1. Photomicrograph of holotype female of Protimaspis costalis Kinsey (ROM) in Canadian amber from Cedar Lake.

opencc-by-4.0Sep 2007View details →
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Text-fig. 16. Carnivorans from Gaverdovsky and Volchaya Balka, Late Miocene, North Caucasus. a–c – Promephitis maeotica, p4, dex, GIN-1144-302, a – labial, b – lingual, c – occlusal view; d–e –?Procyonidae gen., occlusal view; d – dP3, sin, GIN-1143-401, e – dP4, sin, GIN-1144-301. in Late Miocene (Early Turolian) Vertebrate Faunas And Associated Biotic Record Of The Northern Caucasus: Geology, Taxonomy, Palaeoenvironment, Biochronology

Text-fig. 16. Carnivorans from Gaverdovsky and Volchaya Balka, Late Miocene, North Caucasus. a–c – Promephitis maeotica, p4, dex, GIN-1144-302, a – labial, b – lingual, c – occlusal view; d–e –?Procyonidae gen., occlusal view; d – dP3, sin, GIN-1143-401, e – dP4, sin, GIN-1144-301.

opencc-by-4.0Dec 2017View details →
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FIG. 8 in A new specimen of the ornithischian dinosaur Haya griva, cross-Gobi geologic correlation, and the age of the Zos Canyon beds

FIG. 8. Dorsal view of the dorsal vertebrae showing the latticelike ossified tendons in IGM 100/3181. Anterior is to the right.

opencc-by-4.0Feb 2016View details →
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Engineering Geology

<p>video</p>

opencc-by-4.0Oct 2021View details →
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Figure 4 from: Baker E, Johnson K, Young J (2011) The future of the past in the present: biodiversity informatics and geological time. ZooKeys 150: 397-405. https://doi.org/10.3897/zookeys.150.2350

Figure 4 - An example Sample record from IPAEG showing user-linked/edited age ranges (above) and calculated union and intersection dates (below).

opencc-by-4.0Nov 2011View details →
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Figure 6 from: Osikowski A, Georgiev D, Hofman S, Falniowski A (2015) Does the genetic structure of spring snail Bythinella (Caenogastropoda, Truncatelloidea) in Bulgaria reflect geological history? ZooKeys 518: 67-86. https://doi.org/10.3897/zookeys.518.10035

Figure 6 - The maximum-likelihood phylogram for the ITS-1 gene. Haplotypes obtained in present work are shown in bold. The COI clades are also shown.

opencc-by-4.0Aug 2015View details →
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Figure 5 from: Osikowski A, Georgiev D, Hofman S, Falniowski A (2015) Does the genetic structure of spring snail Bythinella (Caenogastropoda, Truncatelloidea) in Bulgaria reflect geological history? ZooKeys 518: 67-86. https://doi.org/10.3897/zookeys.518.10035

Figure 5 - The median-joining haplotype network of COI haplotypes for clades I, II and III. Sequences from Falniowski et al. 2009a and Falniowski et al. 2012 are also included. Arrows and the letter C indicate cave haplotypes.

opencc-by-4.0Aug 2015View details →
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Figure 2 from: Osikowski A, Georgiev D, Hofman S, Falniowski A (2015) Does the genetic structure of spring snail Bythinella (Caenogastropoda, Truncatelloidea) in Bulgaria reflect geological history? ZooKeys 518: 67-86. https://doi.org/10.3897/zookeys.518.10035

Figure 2 - Shells of Bythinella. A locality B1 B–C locality B7 D–F locality B5 G–Q locality B10; bar equals 1 mm.

opencc-by-4.0Aug 2015View details →
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Figure 1 from: Osikowski A, Georgiev D, Hofman S, Falniowski A (2015) Does the genetic structure of spring snail Bythinella (Caenogastropoda, Truncatelloidea) in Bulgaria reflect geological history? ZooKeys 518: 67-86. https://doi.org/10.3897/zookeys.518.10035

Figure 1 - Sampling sites used in the present study (red dots) and in phylogenetic analyses (blue dots: Falniowski et al. 2009a; green dots: Falniowski et al 2012). Compare with Table 1. The dotted line indicates an area that was searched but where no Bythinella sites were found.

opencc-by-4.0Aug 2015View details →
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Figure 3 from: Osikowski A, Georgiev D, Hofman S, Falniowski A (2015) Does the genetic structure of spring snail Bythinella (Caenogastropoda, Truncatelloidea) in Bulgaria reflect geological history? ZooKeys 518: 67-86. https://doi.org/10.3897/zookeys.518.10035

Figure 3 - The maximum-likelihood phylogram for COI gene. Haplotypes obtained in present work are indicated in bold. Arrows and the letter C indicate cave haplotypes.

opencc-by-4.0Aug 2015View details →
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Climate and geology overwrite land use effects on soil organic nitrogen cycling on a continental scale

<p><strong>Abstract.</strong> Soil fertility and plant productivity are globally constrained by N availability. Proteins are the largest N reservoir in soils and the cleavage of proteins into small peptides and amino acids has been shown to be the rate limiting step in the terrestrial N cycle. However, we are still lacking a profound understanding of the environmental controls of this process. Here we show that integrated effects of climate and soil geochemistry drive protein cleavage across large scales. We measured gross protein depolymerization rates in mineral and organic soils sampled across a 4000-km-long European transect covering a wide range of climates, geologies and land uses. Based on structural equation models we identified that soil organic N cycling was strongly controlled by substrate availability, e.g. by soil protein content. Soil geochemistry was a secondary predictor, by controlling protein stabilization mechanisms and protein availability. Precipitation was identified as the main climatic control on protein depolymerization, by affecting soil weathering and soil organic matter accumulation. In contrast, land use was a poor predictor of protein depolymerization. Our results highlight the need to consider geology and precipitation effects on soil geochemistry when estimating and predicting soil N cycling at large scales.</p>

opencc-by-4.0Feb 2022View details →
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Supplementary material 1 from: Gavrilov VM, Golubeva TB, Bushuev AV (2023) Metabolic rate, sleep duration, and body temperature in evolution of mammals and birds: the influence of geological time of principal groups divergence. ZooKeys 1148: 1-27. https://doi.org/10.3897/zookeys.1148.93458

Mammalian Basal metabolic rate (BMR) dafrom Genoud et al. (2017)

opencc-zeroFeb 2023View details →
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Supplementary material 2 from: Gavrilov VM, Golubeva TB, Bushuev AV (2023) Metabolic rate, sleep duration, and body temperature in evolution of mammals and birds: the influence of geological time of principal groups divergence. ZooKeys 1148: 1-27. https://doi.org/10.3897/zookeys.1148.93458

Aves BMR

opencc-zeroFeb 2023View details →
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Supplementary material 3 from: Gavrilov VM, Golubeva TB, Bushuev AV (2023) Metabolic rate, sleep duration, and body temperature in evolution of mammals and birds: the influence of geological time of principal groups divergence. ZooKeys 1148: 1-27. https://doi.org/10.3897/zookeys.1148.93458

Sleep duration for endothermic species (by review Cambell &amp; Tobler, 1984) and others

opencc-zeroFeb 2023View details →
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Geologic history of the south circumpolar region (SCR) of the Moon (Supplementary material)

<p>Supplementary material of publication (Krasilnikov et al., 2023):</p> <ul> <li>SP_Geological_Map_v1.3.rar - ArcGIS project contain results of geological mapping of South Circumpolar Region</li> </ul> <p>&nbsp;</p> <ul> <li>Fig 13a. High-resolution geologic map.</li> <li>Fig 13b. High-resolution geologic map, description of map units.</li> <li>Fig. 2S. High-resolution map units divided by age: (a) Copernican, Eratosthenian and undifferentiated ages; (b) Imbrian period; (c) Nectarian period; (d) pre-Nectarian period.</li> <li>Fig. 3S. Process of geologic map creation.</li> </ul> <p>In the new version (v.1.3), minor geological map corrections were made.<br> Version corrections:<br> &nbsp;&nbsp; &nbsp;- Correction of Ilp2 layer color (now it is 28, 153, 246 RGB).<br> &nbsp;&nbsp; &nbsp;- Correction of the line width of linear objects.<br> &nbsp;&nbsp; &nbsp;- Maped about 582 km of lobate scarps based on the data from Mishra and Kumar, (2022)* and mapping at 1:300000 scale.</p>

opencc-by-4.0Mar 2023View details →
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Fig. 1 in The geological setting and palaeoenvironmental and palaeoecological reconstructions of the Upper Permian insect beds at Belmont, New South Wales, Australia

Fig. 1. (A) Outline map of Australia; (B) Outline map of New South Wales; (C) Map of Lake Macquarie area. The study area is enclosed in the rectangle.

opencc-by-4.0Apr 2007View details →
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Fig. 8 in The geological setting and palaeoenvironmental and palaeoecological reconstructions of the Upper Permian insect beds at Belmont, New South Wales, Australia

Fig. 8. Analysis of insect orders by number and percentage of individual insects (not total specimen numbers), Belmont insect beds, based upon new Beattie collection (2002–2004).

opencc-by-4.0Apr 2007View details →
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FIG. 7 in Bryophyte colonization on the monuments of Champaner Pavagadh - UNESCO World Heritage Site and its association with geological substrates

FIG. 7. — Estimation of Calcium concentration (ppm) of Hyophila involuta (Hook.) Jaeg. and Asterella wallichiana (Lehm. &amp; Lindenb.) Grolle: red circles, clusters showing Hyophila involuta; green circles, clusters showing Asterella wallichiana.

opencc-zeroAug 2023View details →
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FIG. 8 in Bryophyte colonization on the monuments of Champaner Pavagadh - UNESCO World Heritage Site and its association with geological substrates

FIG. 8. — Pictorial representation of the steps involved in colonization and deterioration of the substrate by bryophytes: A, wall structure with rough surface; B, settled dust and humus to capture spores; C, covered by protonema; D, growth of mature gametophyte; E, penetration of rhizoids; F, enlargement of cracks deteriorating the wall structure.

opencc-zeroAug 2023View details →
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FIG. 3 in Bryophyte colonization on the monuments of Champaner Pavagadh - UNESCO World Heritage Site and its association with geological substrates

FIG. 3. — Colonizing mosses and hornworts on the selected monuments of Champaner Pavagadh: A, Hyophila involuta (Hook.) Jaeg.; B, Hydrogonium arcuatum (Griff.) Wijk. &amp; Marg.; C, Semibarbula orientalis (Web.) Wijk &amp; Marg.; D, Fissidens flaccidus Mitt.; E, Anomobryum auratum (Mitt.) Jaeg.; F, Gymnostomiella vernicosa (Hook.) Fleisch.; G, Anthoceros bharadwajii Udar &amp; A.K.Asthana; H, A. subtillis St. Scale bars: 10 mm.

opencc-zeroAug 2023View details →

ScienceDex guides

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record