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Figure 5 in The postcranial anatomy of two Middle Devonian lungfishes (Osteichthyes, Dipnoi) from Mt. Howitt, Victoria, Australia
Figure 5. Barwickia downunda, features of postcranial skeleton: a, MV P181784; b, interpretive drawing of same.
Figure 2 in The postcranial anatomy of two Middle Devonian lungfishes (Osteichthyes, Dipnoi) from Mt. Howitt, Victoria, Australia
Figure 2. Howidipterus donnae: a, photograph of MV P181792; b, interpretive drawing of MV P198045; c, MV P198042, sketch interpretation of large specimen, slightly disarticulated.
Figure 7 in The postcranial anatomy of two Middle Devonian lungfishes (Osteichthyes, Dipnoi) from Mt. Howitt, Victoria, Australia
Figure 7. Barwickia downunda: a, photograph and b, interpretive drawing of MV P181868, details of anterior vertebral elements.
Рис. 8–13. ΔанΑшафты Южного УраΛа (8–11) и Русской равнины (12–13). 8 – разнотравная степь у поΑножия горы ВербΛюжка, местообитание Cionus rossicus; 9 – ксерофитные Λуга в пойме реки УраΛ вбΛизи горы ВербΛюжка, местообитание Cionus rossicus; 10 – южные степи в районе КзыΛаΑырского карстового поΛя, местообитание Cionus gebleri; 11 – степи низкогорий Южного УраΛа бΛиз с. КиΑрясово, местообитание Smicronyx albopictus; 12 – КаменноброΑские меΛовые горы на юго-запаΑе ПривоΛжской возвышенности, местообитание Mecinus janthiniformis, Smicronyx robustus и S. albopictus; 13 – меΛовой останец КобыΛья ГоΛова в прироΑном парке «Àонской», местообитание Mecinus janthiniformis. Figs 8–13. Landscapes of the Southern Urals (8–11) and the Russian Plain (12–13). 8 – forb steppe at the down of Verblyuzhka Mt., habitat of Cionus rossicus; 9 – xerophytic meadows in the floodplain of the Ural River near Verblyuzhka Mt., habitat of Cionus rossicus; 10 – southern steppes in the Kzyladyr karst area, habitat of Cionus gebleri; 11 – steppes of the low mountains of the Southern Urals near Kidryasovo village, habitat of Smicronyx albopictus; 12 – Kamennobrodsky chalk mountains in the southwest of the Volga Upland, habitat of Mecinus janthiniformis, Smicronyx robustus, and S. albopictus; 13 – Cretaceous outlier Kobyl'ya Golova in the Donskoy Nature Park, habitat of Mecinus janthiniformis. in Interesting records of weevils (Coleoptera: Curculionidae: Curculioninae) in the steppe zone of the European part of Russia and the Urals
Рис. 8–13. ΔанΑшафты Южного УраΛа (8–11) и Русской равнины (12–13). 8 – разнотравная степь у поΑножия горы ВербΛюжка, местообитание Cionus rossicus; 9 – ксерофитные Λуга в пойме реки УраΛ вбΛизи горы ВербΛюжка, местообитание Cionus rossicus; 10 – южные степи в районе КзыΛаΑырского карстового поΛя, местообитание Cionus gebleri; 11 – степи низкогорий Южного УраΛа бΛиз с. КиΑрясово, местообитание Smicronyx albopictus; 12 – КаменноброΑские меΛовые горы на юго-запаΑе ПривоΛжской возвышенности, местообитание Mecinus janthiniformis, Smicronyx robustus и S. albopictus; 13 – меΛовой останец КобыΛья ГоΛова в прироΑном парке «Àонской», местообитание Mecinus janthiniformis. Figs 8–13. Landscapes of the Southern Urals (8–11) and the Russian Plain (12–13). 8 – forb steppe at the down of Verblyuzhka Mt., habitat of Cionus rossicus; 9 – xerophytic meadows in the floodplain of the Ural River near Verblyuzhka Mt., habitat of Cionus rossicus; 10 – southern steppes in the Kzyladyr karst area, habitat of Cionus gebleri; 11 – steppes of the low mountains of the Southern Urals near Kidryasovo village, habitat of Smicronyx albopictus; 12 – Kamennobrodsky chalk mountains in the southwest of the Volga Upland, habitat of Mecinus janthiniformis, Smicronyx robustus, and S. albopictus; 13 – Cretaceous outlier Kobyl'ya Golova in the Donskoy Nature Park, habitat of Mecinus janthiniformis.
26 December 2018 surface ruptures along the eastern flank of Mt. Etna
<p>This dataset includes two shape files with ground breaks observed on Mt. Etna after the 26 December 2018 earthquake and aseismic creep event, in particular:</p> <ul> <li>the surface faulting, along the Fleri, Fiandaca, Aci Catena and Aci Platani faults;</li> <li>the ground breaks related to slope instabilities;</li> </ul> <p>The shape files have a database with informations on: strike, length (m), heave (i.e., horizontal displacement in cm), throw (i.e., vertical displacement in cm), strike-slip (cm), net slip displacement (cm), kinematics, slip trend and plunge from certain piercing points.</p> <p>The dataset is an updated and an upgrade of the one associated with the paper: <em>"Fault rupture and aseismic creep accompanying the December 26, 2018, Mw 4.9 Fleri earthquake (Mt. Etna, Italy): Factors affecting the surface faulting in a volcano-tectonic environment" </em>by G. Tringali, Bella, D., Livio F., Ferrario M. F., Groppelli G., Blumetti A.M., Di Manna P., Vittori T., Guerrieri L., Porfido S., Boso D., Pettinato R., Paradiso G., Michetti A.M. (<a href="https://doi.org/10.1016/j.quaint.2021.12.019">https://doi.org/10.1016/j.quaint.2021.12.019</a>).</p>
An Evaluation of a Multi-target Stool DNA (Mt-sDNA) Test, Cologuard, for CRC Screening in Individuals Aged 45-49 and at Average Risk for Development of Colorectal Cancer: Act Now
ClinicalTrials.gov study NCT03728348. IPD Sharing: YES. Countries: 1. Publications: 1.
Ndege Zetu: A dataset to compare bird species monitoring approaches in the Mt Kenya ecosystem
Open the record for dataset details and reuse information.
Mt Eden 1940
Mt Eden / Maungawhau, volcanic cone and Maori hillfort, Auckland, New Zealand. Aerial photos from retrolens.nz. The crater hasn't modelled right, its deeper than that. My 3D scene generated with photogrammetry software 3DF Zephyr v4.351 processing 6 images Source: Objaverse 1.0 / Sketchfab
OGD triggered Zn2+ rises and Ca2+ deregulation events in CA1 and CA3 hippocampal pyramidal neurons of MT-III and ZnT3 knockout mice.
<p>The posted data provide the control characterization of the oxygen glucose deprivation (OGD) triggered occurrences of cytosolic Zn<sup>2+</sup> rises and terminal Ca<sup>2+</sup> deregulation events in individual CA1 and CA3 pyramidal neurons in acute hippocampal slices of the MT-III knockout mice ( <strong>004649 - 129S7-Mt3<sup>tm1Rpa</sup>/J</strong>, Jackson Laboratory) and ZnT3 knockout mice ( <strong>005064 -</strong> <strong>B6;129-Slc30a3<sup>tm1Rpa</sup>/J</strong>, Jackson Laboratory).</p>
Figure 1. - Sample sites of Palaemoncarteri, Palaemonivonicus and Palaemonyuna sp. n. c1–Bragança, Pará; c2–Santa Maria do Pará, Pará; c3–National Forest of Amapá, Amapá; c4–Belém, Pará; i1–Solimões River, near Manaus, Amazonas; i2–Xingu River, Altamira, Pará; i3 and i4–Itacoatiara, Amazonas; AC-Acre; AM-Amazonas; AP-Amapá; MS-Mato Grosso do Sul; MT-Mato Grosso; PA-Pará and RO-Rondônia.
Figure 1. - Sample sites of Palaemoncarteri, Palaemonivonicus and Palaemonyuna sp. n. c1–Bragança, Pará; c2–Santa Maria do Pará, Pará; c3–National Forest of Amapá, Amapá; c4–Belém, Pará; i1–Solimões River, near Manaus, Amazonas; i2–Xingu River, Altamira, Pará; i3 and i4–Itacoatiara, Amazonas; AC-Acre; AM-Amazonas; AP-Amapá; MS-Mato Grosso do Sul; MT-Mato Grosso; PA-Pará and RO-Rondônia.
Dataset for: "Gas buffering of magma chamber contraction during persistent explosive activity at Mt. Etna volcano"
<p>Data used for generating the figures in the paper "Gas buffering of magma chamber contraction during persistent explosive activity at Mt. Etna volcano", accepted for publication in Nature Communications Earth & Environment.</p>
DEM generated from ASTER L1A v.3 stereo imagery acquired over Mt. Rainier on July 31st, 2017 using Ames Stereo Pipeline
<p>This DEM was generated using ASTER L1A dataset was procured from <a href="https://www.earthdata.nasa.gov/">NASA EarthData portal</a> through the stereo processing example in <a href="https://github.com/uw-cryo/asp_tutorials/tree/master">asp_tutorials</a>.</p><ul><li>We intend to use this DEM during the co-registration tutorial.</li></ul><p> </p>
Mt Wellington 1940
Mt Wellington / Maungarei - volcanic cone and Maori hillfort. Auckland, New Zealand. Aerial photos from retrolens.nz . My 3D asset generated with photogrammetry software 3DF Zephyr v4.353 processing 6 images Source: Objaverse 1.0 / Sketchfab
Buffilo Bill's grave on Lookout MT Golden, CO.
This is the grave of[ William Frederick "Buffalo Bill" Cody](https://en.wikipedia.org/wiki/Buffalo_Bill) and his wife [Louisa Maud Frederici](https://en.wikipedia.org/wiki/Louisa_Frederici). No external editing in any 3d program. Created in RealityCapture by Capturing Reality from 153 images in 01h:15m:34s. Source: Objaverse 1.0 / Sketchfab
Mt Richmond and McLennan Hills volcanoes 2 1940
Mt Richmond or Otahuhu, and McLennan Hills, volcanic scoria cones and Maori hillforts, in 1940 before McLennan Hills was quarried away. Otahuhu is named after Maori chief Tahuhu who founded a settlement there in the 14th century. The local scoria cones were used as defendable hillforts, had fertile soil for growing crops and were next to a canoe portage route across the narrowest part of the Auckland isthmus. Auckland, New Zealand. Aerial photos from retrolens.nz . This version covers a wider area, showing both coastlines. My 3D model from photos generated with photogrammetry software 3DF Zephyr v4.351 processing 5 images Source: Objaverse 1.0 / Sketchfab
Jabal Maqla, Arabian al-Lawz Range — Mt. Sinai?
Jabal Maqla in the al-Lawz Mountain Range, Saudi Arabia. Many have proposed this or nearby Jabal al-lawz to be the true location of Mount Sinai as described in the Bible's book of Exodus. There are a number of locations surrounding it which have also been tenatively identified with the location, including a possible golden calf altar, cave of Elijah, Altar of Moses, and 12 pillars representing the 12 tribes of Israel. Proper archaeological work is needed to better understand this location and weigh in on the proposed theories. Source: Objaverse 1.0 / Sketchfab
Mt Fuji
This is a 3D model of Mt. Fuji in Japan I made using jthatch.com (http://jthatch.com/Terrain2STL/). This site allows you to go anywhere in the globe and create a 3D model of the environment which is downloaded as a STL file. I edited it a bit in Autodesk Meshmixer and voilà. Source: Objaverse 1.0 / Sketchfab
Map of Mt. Kosciusko & surrounding districts
The Map of Mt. Kosciusko is an experiment in combining accurate height data with a historical map, while also exploring the history and significance of the region. It is inspired by a model developed by <a href="https://sketchfab.com/3d-models/new-york-phoenicia-quadrangle-ff012503e2a7412f88268f0a1afef08e" target="_blank">Thomas Flynn</a>. The original historical map is available through the <a href="https://nla.gov.au/nla.obj-234012997/view" target="_blank">National Library of Australia</a>. Source: Objaverse 1.0 / Sketchfab
Distribution, response to human disturbance, habitat preferences, and acoustic communication of tree hyraxes of Mt. Kilimanjaro, Tanzania
<p><span>This data consists data from recordings done in Mt. Kilimanjaro. Hourly calls of tree hyraxes have been calculated between 19.00 until 06:00. Dataset also has variables collected by other research groups.</span></p> <p><span>We combined our data of cue count per hour with data to analyse tree hyrax density with explanatory variables to model occupancy of tree hyraxes in Kilimanjaro. Dataset was combined from several research projects conducted within the Kili-Project (Hemp et al. 2018) (Table 1). Variables included forest type, temperature (Appelhans et al. 2015) precipitation (Appelhans et al. 2016). diameter breast height (DBH), leaf density, max vegetation height, and leaf area index (LAI) (Rutten et al., 2015). We also included land use index (LUI) (Peters et al. 2019) to the dataset, which included four different variables (percentage plant biomass removal, agricultural inputs, modification of the vegetation and percentage of agricultural area in the surroundings). </span></p> <p><span>Abstract</span></p> <p><span>Limited knowledge exists of the distribution, habitat selection, behavior and response to human disturbance of many mammalian species from mountains of Africa. This is especially true for nocturnal mammals. We studied acoustically very active tree hyraxes (<em>Dendrohyrax validus validus</em>) from Mt. Kilimanjaro National Park, Tanzania mainly with bioacoustical methods. To gain understanding of the habitat preferences of tree hyraxes we combined bioacoustical data with botanical and meteorological data collected earlier by <span>KiLi Project</span>. According to GLMM analysis, disturbance caused by logging or forest fires significantly reduced tree hyrax calling activity. In Mt. Kilimanjaro, highest density of tree hyraxes was found from 2750 m a.s.l. It seems that extensive hunting in the past and selective logging below elevation 2500 m caused tree hyraxes to move up the mountain. Calls of tree hyraxes in Mt. Kilimanjaro resemble calls emitted by hyraxes in Taita Hills, Kenya; however, there are clear differences in their calling cultures. In Mt. Kilimanjaro tree hyraxes also sing songs, and their acoustic communication is very active and diverse. In most preferred habitats, groups of tree hyraxes may call 4500–5500 times during one night. Calling seem to have elements of turn taking and individual signatures. Future of tree hyraxes in large, 650 km<sup>2</sup>, Mt. Kilimanjaro National Park seems promising and perhaps in the future tree hyraxes will recolonize the whole park area again.</span></p>
Contrasting patterns of fig wasp communities along Mt. Wilhelm, Papua New Guinea
<p>The fig (Moraceae) and pollinating fig wasp (Agaonidae) mutualism is best known as a model system for the study of coevolution in plant-pollinator interactions and its central role in shaping vertebrate communities in tropical forests. Figs also host myriad antagonistic parasitic fig wasps which impose costs on both partners threatening mutualism stability. Spatio-temporal variation in parasitic wasp abundance is a key factor in mitigating these effects. Because fig wasps are temperature sensitive and likely vary in their ability to traverse environmental gradients, we expect community assemblages and abundance of both pollinating and non-pollinating fig wasps to respond to changes along an elevational gradient. In the present study, we compare the fig wasp communities and the abundance of three fig species growing along the slopes of the Mount Wilhelm altitudinal gradient in Papua New Guinea. We quantified wasps from over 100 male fig trees and calculated seed sets for 55 female trees along each of the species' distribution on the transect. Our results show that the abundance of both pollinating and non-pollinating fig wasps follow a mid-elevation peak, consistent with fig species richness found in the same transect. The patterns, however, are different according to the host's species distribution. The seed set remained relatively constant along the gradient for all species with some decrease along higher elevations, potentially affecting connectivity along the gradient. As suggested for insects in general, temperature and habitat diversity appear to play a fundamental role in the species richness and abundance of fig wasps.</p>
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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.
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.
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.