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87 results for “Apulia”
FIG. 6 in Equids from the late Middle Pleistocene to Early Holocene of the Apulia Peninsula (southern Italy): reassessment of their taxonomy and biochronology
FIG. 6. — Protocone index of the upper teeth of Equus species from the late Middle Pleistocene to Early Holocene sites of the Apulia. Abbreviations: see Table 1.
FIGURE 8. Molfetta dinosaur tracks, photogrammetry derived 3D in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 8. Molfetta dinosaur tracks, photogrammetry derived 3D models and interpretations; 1-2, DEM and contour line map of a theropod footprint (contour lines have an interval of 0.2 cm); 4-5, DEM and contour line map of an ornitischian footprint; 3 and 6, interpretative outline drawings of the studied tracks.
FIGURE 7 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 7. Orthophotomosaic of the Molfetta tracksite produced by the aerial survey performed with the hexacopter.
FIGURE 6 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 6. Comparison of the products generated for the sector including the "L-shaped trace". 1, orthophoto raster map; 2, hillshade raster map; 3, slope raster map; 4, contour lines vector map.
FIGURE 4 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 4. Comparison of the results obtained on a sample area. 1, orthophoto; 2, DEM; 3, slope raster map produced by the quadcopter at flight height of 30 m; 4, orthophoto; 5, DEM; 6, slope raster map produced by the quadcopter at a flight height of 10 m; 7, orthophoto; 8, DEM; 9, slope raster map produced by the hexacopter at a flight height of 15 m.
FIGURE 3 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 3. The UAVs (Unmanned Aerial Vehicles) used for aerial survey of the tracksite. 1, quadcopter SZ DJI Phantom 4; 2, hexacopter Tarot FY680 Pro.
FIGURE 5 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 5. Comparison of the products generated for one of the most trampled sector. 1, orthophoto raster map; 2, hillshade raster map; 3, slope raster map; 4, contour lines vector map.
FIGURE 1 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 1. Locality map showing the San Leonardo quarry tracksite, Apulia, southern Italy. Image obtained using Google Earth Pro.
Figure 3. - Alliumgarganicum Brullo, Pavone, Salmeri & Terrasi at a site NNW of Manfredonia (Apulia). Photograph by E.V. Perrino.
Figure 3. - Alliumgarganicum Brullo, Pavone, Salmeri & Terrasi at a site NNW of Manfredonia (Apulia). Photograph by E.V. Perrino.
Sediment flow Connectivity Index (SfCI) data in Apulia region (Italy)
<p><span>This dataset includes Sediment flow Connectivity Index (SfCI) data for Apulia region (Italy). The data are separated into folders: input data, graphs, index maps and product maps. The approach applied to build the geodatabase is based on the step-by-step processing of SfCI (Zingaro et al., 2019). The product maps of the geodatabase represent sediment mobility and connectivity maps of Apulia region, implemented also in a WebGIS platform.</span></p>
FIGURE 2 in The use of aerial and close-range photogrammetry in the study of dinosaur tracksites: Lower Cretaceous (upper Aptian/lower Albian) Molfetta ichnosite (Apulia, southern Italy)
FIGURE 2. Molfetta tracksite - Map of the trampled surface.
FIGURE 4 in Steinernema apuliae sp. n. (Rhabditida: Steinernematidae): a new entomopathogenic nematode from southern Italy
FIGURE 4. RFLP profiles for (A) Steinernema apuliae sp. n., (B) S. arenarium and (C) S. glaseri. M molecular weight markers (band sizes shown in base pairs); Sf, the ITS region from S. feltiae (UK site 76) digested with Alu I; lanes 1 to 17 the ITS region for each isolate digested with the following restriction enzymes; 1, Alu I; 2, BstO I; 3, Dde I; 4, EcoR I; 5, Hae III; 6, Hha I; 7, Hind III; 8, Hinf I; 9, Hpa II; 10, Kpn I; 11, Pst I; 12, Pvu II; 13, Rsa I; 14, Sal I; 15, Sau3A I; 16, Sau96 I; 17, Xba I.
FIGURE 2. A in Steinernema apuliae sp. n. (Rhabditida: Steinernematidae): a new entomopathogenic nematode from southern Italy
FIGURE 2. A, SEM second generation male of S. apuliae sp. n, dorsal view of posterior region of male and 2 pairs of adcloacal papillae (a and b), 3 pairs of papillae near tail tip; B, second generation male, Nomarski LM, esophagus and excretory pore; C, second generation male, Nomarski LM, mail tale with spicules and gubernaculum.
FIGURE 3. A in Steinernema apuliae sp. n. (Rhabditida: Steinernematidae): a new entomopathogenic nematode from southern Italy
FIGURE 3. A, SEM of first generation female of S. apuliae sp. n., head with 6 labial and 4 cephalic papillae; B, first generation female, Nomarski LM, tail with apical papillae or protuberance; C, SEM of first generation female, tail with apical papillae or protuberances; D, SEM of first generation female, lateral view of tail with conicallike tip and apical papilla or protuberance; E, second generation female, Nomarski LM, asymmetrical vulva; F, SEM of second generation female, asymmetrical vulva; G, SEM of second generation female, ventral view of tail with an apical protuberance; H, SEM of infective juvenile, lateral field with 8 identical ridges; I, infective juvenile, Nomarski LM, esophageal portion with excretory pore and hemizonid; L, infective juvenile, Nomarski LM, tail with hyaline portion.
FIGURE 2 in New species of the genus Archimonocelis Meixner, 1938 (Proseriata, Archimonocelididae) from southern Apulia (Italy)
FIGURE 2. Reconstruction (based on holotypes) of the sclerotized apparatus of A. cygnicollis sp. n. (A) and A. parastaresoi sp. n. (B). Scale = 50 µm.
FIGURE 4 in New species of the genus Archimonocelis Meixner, 1938 (Proseriata, Archimonocelididae) from southern Apulia (Italy)
FIGURE 4. Archimonocelis parastaresoi sp. n. A: sclerotized apparatus (holotype); B, C: details of copulatory structures and accessory spines; D: metaphasic plate from spermatogonia. Archimonocelis carmelitana Martens & Curini- Galletti, 1993, E: sclerotized apparatus from a karyological slide, showing companion spines (arrow). Scale = A–C: 25 µm; D: 10 µm; E: 50 µm.
FIGURE 1 in New species of the genus Archimonocelis Meixner, 1938 (Proseriata, Archimonocelididae) from southern Apulia (Italy)
FIGURE 1. Archimonocelis scopulicola sp. n. A: general organisation of a live animal; B: recostruction of the sclerotized apparatus (based on the holotype); C: genital organs in the living animal. Scale = 25 µm.
FIGURE 3 in New species of the genus Archimonocelis Meixner, 1938 (Proseriata, Archimonocelididae) from southern Apulia (Italy)
FIGURE 3. Archimonocelis scopulicola sp. n. A, B: sclerotized apparatus (A: paratype; B: holotype); C: metaphasic plate from spermatogonia. Archimonocelis cygnicollis sp. n. D: sclerotized apparatus, holotype; E: detail of stylet, paratype; F: bivalents from male spermatocytes. Scale = A, B, E: 10 µm; C, F: 5 µm; D: 20 µm.
FIGURE 4 in New species of the genus Parotoplana Meixner, 1938 (Proseriata, Otoplanidae) from southern Apulia (Italy)
FIGURE 4. Parotoplana terpsichore sp. n. A, General organisation of a live animal. Scale = 300 µm. B, Sclerotized apparatus.
FIGURE 7 in New species of the genus Parotoplana Meixner, 1938 (Proseriata, Otoplanidae) from southern Apulia (Italy)
FIGURE 7. Parotoplana jondelii sp. n. A, Sclerotized apparatus (holotype). Scale = 30 µm. B, Bursal spines (holotype). Scale = 30 µm. Parotoplana sp. A. C, Sclerotized apparatus (CZM 57). Scale = 30 µm. Parotoplana terpsichore sp. n. D, Sclerotized apparatus (holotype). Scale = 30 µm. Parotoplana sp. B. E, Sclerotized apparatus (CZM 58). Scale = 30 µm.
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