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13 results for “ungulate diets”

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zenodo40/100

FIGURE 11 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 11. Body mass of caballine Equidae (Equus ferus and E. mosbachensis) in Middle and Late Pleistocene localities from Britain and Germany. For explanation of graph, see Figure 6.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 10 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 10. Body mass of bovine Bovidae (Bison priscus and Bos primigenius) from Middle and Late Pleistocene localities of Britain and Germany. For explanation of graph, see Figure 6.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 8 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 8. Body mass of Rhinocerotidae from Pleistocene localities of Britain and Germany. For explanation of graph, see Figure 6.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 9 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 9. Linear regressions of body mass (kg) of Bovidae and Equus ferus/mosbachensis from localities with pollen records, and minimum, maximum and mean NAP % in the pollen records of the localities. Each point represents an individual specimen. Numbers of specimens per each locality are given in brackets after the locality names.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 7 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 7. Body mass of Megacerini, Rangifer tarandus and Alcini in Middle and Pleistocene localities from Britain and Germany. For explanation of graph, see Figure 6.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 3 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 3. Linear regressions of mean mesowear values of deer (Cervidae) from localities with pollen records, and minimum, maximum and mean NAP % in the pollen records of the localities. Numbers of specimens per locality are given in brackets after the locality names. For Megacerini, the samples from Grays Thurrock and Ireland are Megaloceros giganteus; those from Boxgrove, West Runton and Voigstedt combine Praemegaceros verticornis, P. dawkinsi and Megaloceros savini. For Dama the specimens from Boxgrove are D. cf. roberti; others are D. dama.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 6 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 6. Body mass of Cervus elaphus, Dama spp. and Capreolus capreolus in Middle and Late Pleistocene localities from Britain and Germany. The localities are arranged from oldest (right) to youngest (left) estimated age. The middle line in the diamonds marks the mean body mass and the upper and lower lines mark the 95% confidence limits of the mean. Diamonds that do not overlap at the 95% lines indicate statistically significant difference between populations. The central line in the figures indicates the combined mean body mass of all the populations. The individual body mass estimates of each specimen are shown as data points. Sample sizes are given in brackets for each locality.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 5 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 5. Linear regressions of body mass (kg) of deer (Cervidae) from localities with pollen records, and minimum, maximum and mean NAP % in the pollen records of the localities. Each point represents an individual specimen. Numbers of specimens per locality are given in brackets after the locality names.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 2 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 2. Linear regressions of mean mesowear values of the ungulates in the local palaeocommunities and NAP % in the pollen records of the localities with (1.1.) minimum NAP %, (1.2.) maximum NAP % and (1.3.) mean NAP %.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 1 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 1. The localities included in this study from England and Ireland (1.1) and from Germany (1.2). The maps (1.1) and (1.2) are not to the same scale.

opencc-by-4.0Sep 2016View details →
zenodo40/100

FIGURE 4 in Patterns of diet and body mass of large ungulates from the Pleistocene of Western Europe, and their relation to vegetation

FIGURE 4. Linear regressions of mean mesowear values of Bovidae, Equus ferus and Rhinocerotidae from localities with pollen records, and minimum, maximum and mean NAP % in the pollen records of the localities. Numbers of specimens per locality are given in brackets after the locality names. Bison from Mauer is B. schoetensacki; from other localities, B. priscus.

opencc-by-4.0Sep 2016View details →
dryad32/100

Data from: Metabarcoding reveals diet diversity in an ungulate community in Thailand

<p>Asian dry forests contain diverse and abundant large herbivore communities whose diet breadth is largely unstudied. We examined the diet composition of eight ungulate species in a dry tropical forest using metabarcoding to determine if the diet separation of the diverse community was structured and if and obvious attributes (i.e. body size, phylogeny or ecology) can explain the structure. We collected fecal samples from the ungulates in Huai Kha Khaeng Wildlife Sanctuary in the western forest complex of Thailand. The fecal collections occurred around a Large Forest Tree Plot (ForestGeo) where all woody species were codified within a genetic barcode library and used in this study. This DNA library was supplemented with samples from forb and grass species known to be consumed by ungulates in the region. Of 333 plant species tested, at least 92 were found within the fecal samples of the ungulates tested. Over half of the identified species were not previously identified by experts as forage species. All ungulate species showed a strong consumption of grasses and forbs. The pattern of forage consumption by these species did not consistently cluster according to obvious paradigms of body size or taxonomy, with significant differences found in diet selection of two similar-sized bovids (guar and banteng), and with the diet of sambar being more similar to bovids than to the other deer species in the community. We conclude Asian ungulate communities do differentiate in their forage consumption  and that metabarcoding techniques should allow for testing of diet shifts in response to seasonal rains and fires which dominate the phenology of Asian dry forests.  </p>

opencc-zeroOct 2019View details →
dryad32/100

Data from: Metabarcoding reveals diet diversity in an ungulate community in Thailand

Open the record for dataset details and reuse information.

publicOct 2019View details →

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