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46 results for “Central Apennines”
Output tomographic models for "The attenuation and scattering signature of fluids and tectonic interactions in Central-Southern Apennine."
<p>Output ASCII file for the seismic attenuation tomography in Central-Southern Apennines. The output format is the one from MuRAT software (De Siena et al., 2014). Q and Peak-Delay models in 1.5 Hz, 3 Hz and 6 Hz frequencies are reported as specificated by the files name. The output points of a grid with coordinates available in WGS84 degrees ("Degrees" suffix) or already projected in kilometric UTM coordinates ("UTM" suffix).</p> <p>All other information can be found in the main and supplementary text.</p>
Role of fluid on earthquake occurrence: Example of the 2019 Ridgecrest and the 1997, 2009 and 2016 Central Apennines sequences
<p>This repository contains files needed to reproduce the b-value times series and stress change modeling related to the Central Apennines and Ridgecrest earthquake sequences (paper under revision, preprint available at <a href="https://doi.org/10.31223/X5MH1J">https://doi.org/10.31223/X5MH1J</a>). </p>
CI23: a 3D radially anisotropic velocity model of Central Apennines lithosphere
<p>We retrieve the 3D radially anisotropic model of Central Apennines lithosphere implementing Full-Waveform Inversion (FWI). </p> <p>The model has the following parameterization: VPH, VPV, VSH, VSV. It resolves P- and S-waves velocities in the period range 8 - 50s (0.02 - 0.125 Hz). For each point in the mesh (LAT1: 40.0°, LAT2: 45.0°, LON1: 11.0°, LON2: 16.0°), the model returns velocity values in units of m/s.</p> <p>The CI_23 model is available in multiple formats:</p> <ul> <li> <p>A <code>.vtk</code> version is hosted on Zenodo</p> </li> <li> <p>An <code>.h5</code> version can be accessed via Google Drive <a href="https://drive.google.com/drive/folders/18mHH6WRGOTJIaBGB8wn3FcrqYBMwVJyZ?usp=drive_link" target="_blank" rel="noopener">here</a></p> </li> <li> <p>A version interpolated onto a structured grid (in <code>.netCDF</code> format) is available through <a href="https://doi.org/10.17611/dp/emc.2025.ci23stallone.1" target="_blank" rel="noopener">IRIS-EMC </a></p> </li> </ul> <p> </p>
Fig. 92. Turritus Westerlund, 1883 inhabiting the central Apennines. A in Cochlostoma Jan, 1830 revised: an overview of the subgenus Turritus Westerlund, 1883 and its species (Caenogastropoda, Cochlostomatidae)
Fig. 92. Turritus Westerlund, 1883 inhabiting the central Apennines. A. Cochlostoma (T.) mariannae Nordsieck, 2011, 1- Vado di Sole, I (EZ-1084). B. C. (T.) hallgassi sp. nov., topotypical specimen, 1- Monte Petrella, I (EZ-1075). C. C. (T.) crosseanum (Paulucci, 1879), 3- Via Salaria, I (EZ-0002). D. C. (T.) cassiniacum (Saint-Simon in Paulucci, 1878), 15- Monte Gennaro, I (EZ-0021). E. NFS064, 1- Rio Fuggio, I (EZ-0022).
Vulnerability tools - Central Apennines (Italy)
<p><span>The MOVING project has developed accessible <strong>tools </strong>designed to assess susceptibility and vulnerability within the region, ready to be used by both experts and the general audience. This document synthesises crucial information for the Central Apennines Region, particularly focusing on the Participatory Vulnerability Matrix and the Spatial Vulnerability Map. Furthermore, it includes <strong>supplementary maps and figures </strong>detailing various aspects such as the delineation of Reference Landscape, distribution of land systems, areas affected by wildfires, susceptibility to floods across different return periods, severity of forest disturbances, rainfall erosivity, and more.</span></p>
FIGURE 6. Shaded coloured 3D in Elongated theropod tracks from the Cretaceous Apenninic Carbonate Platform of southern Latium (central Italy
FIGURE 6. Shaded coloured 3D photogrammetric model of footprint F1 and F2 with relative section (S4) passing through the metatarsal impression and digit III.
FIGURE 5. Shaded coloured 3D in Elongated theropod tracks from the Cretaceous Apenninic Carbonate Platform of southern Latium (central Italy
FIGURE 5. Shaded coloured 3D photogrammetric model of footprint F3 and relative sections (S1, S2, S3).
FIGURE 2 in Elongated theropod tracks from the Cretaceous Apenninic Carbonate Platform of southern Latium (central Italy
FIGURE 2. Thin sections of the trampled block. 1, Nezzazata isabellae; 2, Cuneolina sliteri; 3, Aligned spathic calcite crystals suggesting emersive condition of the surface during trampling. Scale bar equals 0,5 mm (1 and 2) and 1,5 mm (3).
FIGURE 1 in Elongated theropod tracks from the Cretaceous Apenninic Carbonate Platform of southern Latium (central Italy
FIGURE 1. Map of provenance (black footprint) and present location of the track-bearing block (Lido di Porto Canale-Riomartino, grey spot).
FIGURE 4. 1, Shaded grey 3D in Elongated theropod tracks from the Cretaceous Apenninic Carbonate Platform of southern Latium (central Italy
FIGURE 4. 1, Shaded grey 3D photogrammetric model of the track-bearing block; 2, Shaded coloured 3D photogrammetric model.
FIGURE 3. 1 in Elongated theropod tracks from the Cretaceous Apenninic Carbonate Platform of southern Latium (central Italy
FIGURE 3. 1, The track-bearing block; 2, Close-up of the studied footprints; 3, Orthophoto of the trampled block; 4, Interpretative field drawing (scale bar equals 10 cm); F1, F2 and F3 indicate the three theropod tracks discussed in the text; A-D indicate poorly preserved traces, possibly produced by the trackmaker of F1, F2, and F3.
Robotic Monitoring of Forests: a Dataset from the EU habitat 9210* in the Tuscan Apennines (Central Italy)
<p>Data collected between the 27th and the 28th of April 2022, in Chiusi Della Verna, Arezzo 52010 (AR), Italy, inside the Natura 2000 SAC IT5180101. The data has been acquired mainly by the legged robot ANYmal C guided by a team of both roboticists and plant scientists. </p><p>The dataset contains four different sets of data: </p><p>1) species data - photos of four indicator species of the habitat 9210 (3 typical species and 1 early warning species).</p><p>2) mapping data - three dimensional point clouds of the habitat environment.</p><p>3) autonomous monitoring mission data - photos and videos taken by the robot during the surveys, robot status, and external videos of the autonomous mission.</p><p>4) teleoperated monitoring mission data - photos and videos taken by the robot during the surveys, robot status, and external videos of the teleoperated mission.</p><p>Researchers from a variety of disciplines can benefit from using this dataset because of its multidisciplinary scope. On the one hand, robotic engineers could, for instance, benchmark the performance of the robots and test or validate their own methods using the point clouds and the information about the robot state. On the other hand, botanists could evaluate the accuracy of this data as well as the habitat's conditions using the plant videos and images that the robot captured, or computer scientists could test their AI algorithms for identifying and classifying different species using these data.</p>
WRF-Noah/Alpine3D simulations for 2018-2021 snow seasons in Italian Central Apennines
<p>This dataset contains the results of two numerical simulations over Italian Central Apennines at 3 km resolution for the three snow seasons 2018/19, 2019/20 and 2020/21. The file wrf-noah_2018-2021.nc contains the WRF-Noah model output, while the file wrf-alpine3d_2018-2021.nc contains the WRF-Alpine3D model output.</p>
Subspecies and Distribution. M. m. marmota Linnaeus, 1758 — Alps in Germany, Austria, Switzerland, France, and Italy. M. m. latirostris Kratochvil, 1961 — High Tatra Mts of Slovakia and Poland. Nominate subspecies reintroduced to Romania (Carpathian Mts) and Slovenia (Julian Alps), and introduced into the Black Forest (Germany), the Massif Central, Jura, and Vosgues (France), the Pyrenees (France, Spain, and Andorra), E Austria, Apennine Mts (Italy), N Serbia, Montenegro. in Sciuridae
Subspecies and Distribution. M. m. marmota Linnaeus, 1758 — Alps in Germany, Austria, Switzerland, France, and Italy. M. m. latirostris Kratochvil, 1961 — High Tatra Mts of Slovakia and Poland. Nominate subspecies reintroduced to Romania (Carpathian Mts) and Slovenia (Julian Alps), and introduced into the Black Forest (Germany), the Massif Central, Jura, and Vosgues (France), the Pyrenees (France, Spain, and Andorra), E Austria, Apennine Mts (Italy), N Serbia, Montenegro.
FIGURE 6. A. Oxytropis ocrensis. B in A new species of Oxytropis (Fabaceae) from Central Apennines (Italy)
FIGURE 6. A. Oxytropis ocrensis. B. Inflorescence and leaf of O. ocrensis. C. O. ocrensis in the locus classicus.
FIGURE 3 in A new species of Oxytropis (Fabaceae) from Central Apennines (Italy)
FIGURE 3. Principal Component Analysis of flower features. O. ocrensis green and rhombus symbol; O. xerophila red and round symbol; O. halleri blue and square symbol; O. korabensis purple and triangle symbol.
FIGURE 1. Box plot for leaf and stem variables with p-value less than 0.0001 in A new species of Oxytropis (Fabaceae) from Central Apennines (Italy)
FIGURE 1. Box plot for leaf and stem variables with p-value less than 0.0001 in Kruskal-Wallis test. O.o.: Oxytropis ocrensis, O.h.: O. halleri, O.k.: O. korabensis; O.x.: O. xerophila.
FIGURE 4 in A new species of Oxytropis (Fabaceae) from Central Apennines (Italy)
FIGURE 4. Graph of Discriminant Analysis with representation of the first two factors. O. ocrensis green and rhombus symbol; O. xerophila red and round symbol; O. halleri blue and square symbol; O. korabensis purple and triangle symbol.
FIGURE 2. Box plot for leaf and stem variables with p-value less than 0.0001 in A new species of Oxytropis (Fabaceae) from Central Apennines (Italy)
FIGURE 2. Box plot for leaf and stem variables with p-value less than 0.0001 in Kruskal-Wallis test. O.o.: Oxytropis ocrensis, O.h.: O. halleri, O.k.: O. korabensis; O.x.: O. xerophila.
Figure 2 from: Conti F, Di Martino L, Bartolucci F (2020) Poa magellensis (Poaceae), a new species from Central Apennine (Italy). PhytoKeys 144: 113-124. https://doi.org/10.3897/phytokeys.144.49971
Figure 2 Poa magellensis F.Conti & Bartolucci, sp. nov. A habit B spikelet without glumes C palea D glumes E ligules.
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International Brain Laboratory public data
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OpenNeuro
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