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179 results for “Xenarthra”

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FIG. 1 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 1. The Yavarí-Ucayali interfluve (shaded) in relation to surrounding geographical features of western Amazonia.

opencc-by-4.0Oct 2017View details →
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FIG. 14 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 14. Adult skulls of five sympatric felid species, illustrating taxonomic differences in size and shape: Puma concolor (A, AMNH 73221), Pu. yagouaroundi (B, AMNH 215137), Leopardus wiedii (C, AMNH 74428), L. pardalis (D, MUSM 13150), Panthera onca (E, AMNH 98683). All illustrated specimens are from western South America, but only MUSM 13150 is from the Yavarí-Ucayali interfluve. Old adult male skulls of Pa. onca and L. pardalis can be substantially larger and proportionately wider than the young adults illustrated here.

opencc-by-4.0Oct 2017View details →
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FIG. 2 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 2. Faunal inventory sites and collecting localities within the Yavarí-Ucayali interfluve (see appendix 2 for geographic coordinates and other information). Inset: Faunal inventory sites in or near the Tamshiyacu- Tahuayo watersheds (EBQB = Estación Biológica Quebrada Blanco).

opencc-by-4.0Oct 2017View details →
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FIG. 10 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 10. Collecting localities of specimens of Bradypus variegatus examined for this report. See appendix 3 for geographic coordinates.

opencc-by-4.0Oct 2017View details →
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FIG. 17 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 17. Tapir trap, ready for action near Estirón, 2017 (photo by D.W.F.). A flexible pole (a) is tightly lashed to a tree with an epiphyte-stem binding (b); a sharp bamboo blade (c, partially sheathed with palm leaflets) is firmly attached to the other end, which is bent away from the tree and held in place by a camouflaged trigger mechanism (d). The trigger mechanism (close-up in figure 18) is released by a trip-wire (e).

opencc-by-4.0Oct 2017View details →
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FIG. 16 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 16. Adult skulls of four sympatric procyonid species, illustrating taxonomic differences in size and shape: Potos flavus (A, AMNH 268249), Bassaricyon alleni (B, AMNH 98709), Nasua nasua (C, AMNH 76642), Procyon cancrivorus (D, AMNH 94247). All illustrated crania are from western South America, but only AMNH 268249 is from the Yavarí-Ucayali interfluve.

opencc-by-4.0Oct 2017View details →
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FIG. 22 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 22. Red brocket trussed for carrying (photo by Steven Romanoff; upper Quebrada Chobayacu, ca. 1975). Here the tumpline is made from stems of the ayaşh epiphyte (Heteropsis spp. [Araceae]), a less desirable material for this purpose than the inner bark of the tote tree (see. fig. 19).

opencc-by-4.0Oct 2017View details →
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FIG. 20 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 20. Use of the tumpline for carrying white-lipped peccary carcass (photo by D.W.F.; Estirón, 2013).

opencc-by-4.0Oct 2017View details →
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FIG. 9 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 9. Dorsal views of mandibles of Bradypus variegatus infuscatus (A, AMNH 76497) and B. v. variegatus (B, AMNH 95105).

opencc-by-4.0Oct 2017View details →
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FIG. 13 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 13. Ventral views of adult skulls of Atelocynus microtis (A, AMNH 98639) and Speothos venaticus (B, AMNH 98560). Note the absence of M2 in Speothos.

opencc-by-4.0Oct 2017View details →
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FIG. 5. Matses woman butchering a in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 5. Matses woman butchering a long-nosed armadillo (Dasypus sp.) on the upper Quebrada Chobayacu, ca. 1975 (photo by Steven Romanoff).

opencc-by-4.0Oct 2017View details →
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FIG. 8 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 8. Lateral views of skulls and mandibles of Bradypus variegatus infuscatus (A, AMNH 76497) and B. v. variegatus (B, AMNH 95105).

opencc-by-4.0Oct 2017View details →
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FIG. 6 in Mammalian Diversity And Matses Ethnomammalogy In Amazonian Peru Part 2: Xenarthra, Carnivora, Perissodactyla, Artiodactyla, And Sirenia

FIG. 6. Cut-away diagram illustrating how Dasypus pastasae is captured by Matses hunters (see text for explanation).

opencc-by-4.0Oct 2017View details →
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Figure 8 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 8. Skull of Glossotherium chapadmalense, type specimen (MACN 8675) in lateral (A) and ventral (B) views.

opencc-by-4.0Apr 2009View details →
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Figure 4 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 4. Skull outlines in lateral view. Paramylodon (B) exhibits a more flattened dorsal surface, whereas Glossotherium (A) has a more domed appearance and smaller temporal fossa.

opencc-by-4.0Apr 2009View details →
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Figure 6 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 6. Mandible outlines in occlusal view of Glossotherium (A) and Paramylodon (B), exhibiting the differences in the predental spout.

opencc-by-4.0Apr 2009View details →
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Figure 5 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 5. Skull outlines in ventral view for Glossotherium (A) and Paramylodon (B), showing the greater anterior tooth-row divergence and inflated pterygoids sinuses in Glossotherium.

opencc-by-4.0Apr 2009View details →
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Figure 3 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 3. Skull outlines in dorsal view of Glossotherium (A) and Paramylodon (B). Anterior, Lacrimal, Postorbital process and Posterior are the points where skull width was measured. Dashed lines represent the relative constriction of the muzzle between the anterior and postorbital regions.

opencc-by-4.0Apr 2009View details →
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Figure 2 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 2. Principal components analysis (PCA) results for the analysis of the skulls (A) and mandibles (B), where Z = Glossotherium and + = Paramylodon.

opencc-by-4.0Apr 2009View details →
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Figure 1 in Reassessment of the cranial characters of Glossotherium and Paramylodon (Mammalia: Xenarthra: Mylodontidae)

Figure 1. Correlation of the Pliocene–Holocene land mammal ages for North and South America. Figure produced with TS-Creator (http://www.stratigraphy.org).

opencc-by-4.0Apr 2009View details →

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Allen Brain Atlas

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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.

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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.

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OpenNeuro

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Last verified 2026-04-29Open record