A Key for the Microhistological Determination of Plant Fragments Consumed by Carpathian Forest Cervids
暂无分享,去创建一个
[1] M. Hussain,et al. Feeding habits and habitat use of barking deer (Muntiacus vaginalis) in Himalayan foothills, Pakistan , 2021, PloS one.
[2] J. Nielsen,et al. Diet of the European bison (Bison bonasus) in a forest habitat estimated by DNA barcoding , 2020 .
[3] Navinder J. Singh,et al. Fifty years of European ungulate dietary studies: a synthesis , 2020 .
[4] F. Meloni,et al. Effects of Twenty Years of Ungulate Browsing on Forest Regeneration at Paneveggio Reserve, Italy , 2020, Forests.
[5] J. Millspaugh,et al. Diet Composition and Selection of Recently Reintroduced Elk in Missouri , 2018, The American Midland Naturalist.
[6] P. Barboza,et al. Assessment of Animal-Based Methods Used for Estimating and Monitoring Rangeland Herbivore Diet Composition ☆ , 2018, Rangeland Ecology and Management.
[7] E. Merrill,et al. Why do migrants move downhill? The effects of increasing predation and density on red deer altitudinal migration in temperate Carpathian forests , 2018, Mammal Research.
[8] P. Smolko,et al. Seasonal dynamics of forage for red deer in temperate forests: importance of the habitat properties, stand development stage and overstorey dynamics , 2018, Wildlife Biology.
[9] A. Jaroszewska,et al. The nutritional value of leaves of selected berry species , 2017 .
[10] F. Riga,et al. Diet composition of the Italian roe deer (Capreolus capreolus italicus) (Mammalia: Cervidae) from two protected areas , 2017 .
[11] Afifullah Khan,et al. Photographic key for the microhistological identification of some plants of Indian Trans-Himalaya. , 2015 .
[12] P. Smolko,et al. Home range and migration patterns of male red deer Cervus elaphus in Western Carpathians , 2014, European Journal of Wildlife Research.
[13] C. Ferrari,et al. Unexpected consequences of reintroductions: competition between reintroduced red deer and Apennine chamois , 2014 .
[14] A. Loison,et al. Intra- and Interspecific Differences in Diet Quality and Composition in a Large Herbivore Community , 2014, PloS one.
[15] M. Gawlak,et al. Foliar indumentum in central‐European Rubus species (Rosaceae) and its contribution to the systematics of the group , 2014 .
[16] K. Green,et al. Diet selection by European hares (Lepus europaeus) in the alpine zone of the Snowy Mountains, Australia , 2013, European Journal of Wildlife Research.
[17] S. Aulagnier,et al. A typical browser, the roe deer, may consume substantial quantities of grasses in open landscapes , 2013, European Journal of Wildlife Research.
[18] C. Azorit,et al. Seasonal and specific diet variations in sympatric red and fallow deer of southern Spain: a preliminary approach to feeding behaviour , 2012 .
[19] J. Borkowski,et al. Autumn-winter diet overlap of fallow, red, and roe deer in forest ecosystems, Southern Poland , 2012, Central European Journal of Biology.
[20] M. Heurich,et al. Feeding patterns of red deer Cervus elaphus along an altitudinal gradient in the Bohemian Forest: effect of habitat and season , 2010 .
[21] Bettina Rahfeld. Mikroskopischer Farbatlas pflanzlicher Drogen , 2009 .
[22] S. Creel,et al. A Review of Environmental Factors Affecting Elk Winter Diets , 2007 .
[23] J. A. Alves,et al. The wild rabbit ( Oryctolagus cuniculus L.) diet on a sand dune area in central Portugal: a contribution towards management , 2006 .
[24] P. White,et al. Modelling the cost of roe deer browsing damage to forestry , 2004 .
[25] M. Schütz,et al. Spatial variation of summer diet of red deer Cervus elaphus in the eastern Swiss Alps , 2004, Wildlife Biology.
[26] Professor Dr. Leonid Baskin,et al. Ecology of Ungulates , 2003, Springer Berlin Heidelberg.
[27] S. Carriére. Photographic Key for the Microhistological Identification of some Arctic Vascular Plants , 2002 .
[28] K. Katona,et al. Diet estimation by faeces analysis: sampling optimisation for the European hare , 2002 .
[29] H. Verheyden-Tixier,et al. Variations of diet composition of Red Deer (Cervus elaphus L.) in Europe , 2001 .
[30] M. Homolka,et al. Native red deer and introduced chamois: Foraging habits and competition in a subalpine meadow-spruce forest area , 2001 .
[31] J. Vincent,et al. Variations saisonaières du régime alimentaire du chevreuil (Capreolus capreolus) selon le sexe en milieu forestier à forte densité (forêt domaniale de Dourdan) , 2001 .
[32] J. Latham,et al. Comparative feeding ecology of red (Cervus elaphus) and roe deer (Capreolus capreolus) in Scottish plantation forests , 1999 .
[33] R. Bóo,et al. A key to identify perennial grasses in central Argentina based on microhistological characteristics , 1998 .
[34] I. Hahn,et al. Seasonal diet of rabbits and their browsing effect on juniper in Bugac Juniper Forest (Hungary) , 1998 .
[35] N. Hobbs. Modification of Ecosystems by Ungulates , 1996 .
[36] B. P. Jackson,et al. Atlas of Microscopy of Medicinal Plants Culinary Herbs and Spices , 1990 .
[37] J. Chapuis. Comparison of the diets of two sympatric lagomorphs, Lepus europaeus (Pallas) and Oryctolagus cuniculus (L.) in an agroecosystem of the Ile-de-France , 1990 .
[38] P. Kabai,et al. Winter plant selection by red and roe deer in a forest habitat in Hungary , 1989 .
[39] Mark K. Johnson,et al. Microhistological techniques for food habits analyses , 1983 .
[40] Bryan D. Gross,et al. Training Needed for Quantifying Simulated Diets from Fragmented Range Plants , 1982 .
[41] Z. Gębczyńska. Food of the roe deer and red deer in the Białowieża Primeval Forest , 1980 .
[42] M. Samuel,et al. Atlas of Epidermal Plant Fragments Ingested by Grazing Animals , 1979 .
[43] Richard Mark Hansen,et al. Diets of the Slave River Lowland Bison Herd, Northwest Territories, Canada , 1978 .
[44] R. Dzie̦ciolowski. Food of the red deer in an annual cycle , 1967 .
[45] G. Storr. Microscopic Analysis of Faeces, a Technique for Ascertaining the Diet of Herbivorous , Mammals , 1961 .
[46] K. Esau. Anatomy of seed plants , 1960 .
[47] C. R. Metcalfe. Anatomy of the monocotyledons. 1. Gramineae. , 1960 .
[48] C. R. Metcalfe,et al. Anatomy of the Dicotyledons: leaves, stem, and wood, in relation to taxonomy, with notes on economic uses. , 1950 .
[49] J. L. Dusi. Methods for the Determination of Food Habits by Plant Microtechniques and Histology and Their Application to Cottontail Rabbit Food Habits , 1949 .
[50] A. C. Martin,et al. Plant histology as an aid in squirrel food-habit studies , 1939 .