Impact of anthropogenic factors on occupancy and abundance of carnivorans in the Austral Atlantic forest
Tài liệu tham khảo
Amarasekare, 2008, Coexistence of intraguild predators and prey in resource-rich environments, Ecology, 89, 2786, 10.1890/07-1508.1
Bianchi, 2014, Intraspecific, interspecific, and seasonal differences in the diet of three mid-sized carnivores in a large neotropical wetland, Acta Theriol. (Warsz)., 59, 13, 10.1007/s13364-013-0137-x
Bogoni, 2016, Landscape features lead to shifts in communities of medium- to large-bodied mammals in subtropical Atlantic Forest, Journal of Mammalogy, 97, 713, 10.1093/jmammal/gyv215
Bovendorp, 2019, Defaunation and fragmentation erode small mammal diversity dimensions in tropical forests, Ecography (Cop.)., 42, 23, 10.1111/ecog.03504
Brady, 2011, Matrix is important for mammals in landscapes with small amounts of native forest habitat, Landscape Ecology, 26, 617, 10.1007/s10980-011-9602-6
Cardillo, 2004, Human population density and extinction risk in the world’s carnivores, PLoS Biology, 2, e197, 10.1371/journal.pbio.0020197
Cazetta, 2009, The Crab-eating Fox (Cerdocyon thous) as a secondary seed disperser of Eugenia umbelliflora (Myrtaceae) in a Restinga forest of southeastern Brazil, Biota Neotrop., 9, 271, 10.1590/S1676-06032009000200027
Corcoran, 2017, DiversityOccupancy.
Crooks, 2011, Global patterns of fragmentation and connectivity of mammalian carnivore habitat, Philos. Trans. R. Soc. B Biol. Sci., 366, 2642, 10.1098/rstb.2011.0120
Cruz, 2019, Cats under cover: Habitat models indicate a high dependency on woodlands by Atlantic Forest felids, Biotropica, 51
De Azevedo, 2008, Food habits and livestock depredation of sympatric jaguars and pumas in the Iguaçu National Park area, south Brazil, Biotropica., 10.1111/j.1744-7429.2008.00404.x
de la Torre, 2018, The jaguar’s spots are darker than they appear: Assessing the global conservation status of the jaguar Panthera onca, Oryx, 52, 300, 10.1017/S0030605316001046
Di Bitetti, 2010, Niche partitioning and species coexistence in a Neotropical felid assemblage, Acta Oecologica, 36, 403, 10.1016/j.actao.2010.04.001
Di Minin, 2016, Global priorities for national carnivore conservation under land use change, Scientific Reports, 6, 23814, 10.1038/srep23814
Elbroch, 2017, Vertebrate diversity benefiting from carrion provided by pumas and other subordinate, apex felids, Biological Conservation, 215, 123, 10.1016/j.biocon.2017.08.026
Farias, 2014, Ecoregional vulnerability assessment for the functional richness of south american carnivorans (Mammalia: Carnivora), J. Mamm. Evol., 21, 437, 10.1007/s10914-014-9264-7
Fragoso, 2000, Seed-dispersal and seedling recruitment patterns by the last Neotropical megafaunal element in Amazonia, the tapir, Journal of Tropical Ecology, 16, 369, 10.1017/S0266467400001462
Freitas, 2010, Effects of roads, topography, and land use on forest cover dynamics in the Brazilian Atlantic Forest, Forest Ecology and Management, 259, 410, 10.1016/j.foreco.2009.10.036
Galetti, 2017, Defaunation and biomass collapse of mammals in the largest Atlantic forest remnant, Animal Conservation, 20, 10.1111/acv.12311
Gittleman, 1986, Carnivore life history patterns: Allometric, phylogenetic and ecological associations, The American Naturalist, 127, 744, 10.1086/284523
Hair, 1995
Hoffmann, 2010, The impact of conservation on the status of the world’ s vertebrates, Old Dom. Univ. ODU Digit. Commons Biol. Sci. Fac. Publ. Biol. Sci.
Laundré, 2010, The landscape of fear: Ecological implications of being afraid, The Open Ecology Journal, 10.2174/1874213001003030001
Macedoa, 2018, Atlantic forest mammals cannot find cellphone coverage, Biological Conservation, 220, 201, 10.1016/j.biocon.2018.02.018
Massara, 2015, Ocelot population status in protected brazilian atlantic forest, PloS One, 10.1371/journal.pone.0141333
Massara, 2018, Effect of humans and pumas on the temporal activity of ocelots in protected areas of Atlantic Forest, Mammalian Biology = Zeitschrift Fur Saugetierkunde, 10.1016/j.mambio.2018.04.009
Massara, 2016, Ecological interactions between ocelots and sympatric mesocarnivores in protected areas of the Atlantic Forest, southeastern Brazil, Journal of Mammalogy, 97, 1634, 10.1093/jmammal/gyw129
Michalski, 2005, Anthropogenic determinants of primate and carnivore local extinctions in a fragmented forest landscape of southern Amazonia, Biological Conservation, 10.1016/j.biocon.2005.01.045
Monterroso, 2020, Ecological traits and the spatial structure of competitive coexistence among carnivores, Ecology., 10.1002/ecy.3059
Moreno, 2006, Competitive Release in diets of Ocelot (LEOPARDUS Pardalis) AND Puma (PUMA Concolor) after JAGUAR (PANTHERA ONCA) decline, Journal of Mammalogy, 87, 808, 10.1644/05-MAMM-A-360R2.1
Oksanen, 2017, Vegan: Ecological diversity, R Packag. Version, 2
Oksanen, 1981, Exploitation ecosystems in gradients of primary productivity, Am. Socety Nat, 118, 240, 10.1086/283817
Oliveira, 2015, Ocelot ecology and its effect on the small- felid guild in the lowland neotropics Ocelot ecology and its effect on the, Biol. Conserv. Wild Felids, 559
Oriol-Cotterill, 2015, Landscapes of Coexistence for terrestrial carnivores: The ecological consequences of being downgraded from ultimate to penultimate predator by humans, Oikos, 124, 1263, 10.1111/oik.02224
Polis, 1996, Food web complexity and community dynamics, The American Naturalist, 147, 813, 10.1086/285880
Polis, 1989, The ecology and evolution of intraguild predation: Potential competitors that eat each other, Annual Review of Ecology and Systematics, 20, 297, 10.1146/annurev.es.20.110189.001501
Prugh, 2009, The rise of the mesopredator, Bioscience, 59, 779, 10.1525/bio.2009.59.9.9
R Core Team, 2018
Regolin, 2017, Forest cover influences occurrence of mammalian carnivores within Brazilian Atlantic Forest, Journal of Mammalogy, 98, 1721, 10.1093/jmammal/gyx103
Ribeiro, 2009, The Brazilian Atlantic Forest: How much is left, and how is the remaining forest distributed? Implications for conservation, Biological Conservation, 10.1016/j.biocon.2009.02.021
Rich, 2017, Assessing global patterns in mammalian carnivore occupancy and richness by integrating local camera trap surveys, Global Ecology and Biogeography : A Journal of Macroecology, 26, 918, 10.1111/geb.12600
Ripple, 2014, Status and ecological effects of the world’s largest carnivores, Science (80-.), 10.1126/science.1241484
Rocha-Mendes, 2010, Feeding ecology of carnivores (Mammalia, Carnivora) in Atlantic Forest remnants, Southern Brazil, Biota Neotrop., 10, 21, 10.1590/S1676-06032010000400001
Rovero, 2013, “Which camera trap type and how many do I need?” A review of camera features and study designs for a range of wildlife research applications, Hystrix.
Sandom, 2017, Deconstructed cat communities: Quantifying the threat to felids from prey defaunation, Diversity & Distributions, 23, 667, 10.1111/ddi.12558
Tôrres, 2008, Jaguar distribution in Brazil: Past, present and future, CAT News.
Wearn, 2017, Mammalian species abundance across a gradient of tropical land-use intensity: A hierarchical multi-species modelling approach, Biological Conservation, 212, 162, 10.1016/j.biocon.2017.05.007
Wikenros, 2013, Biomass flow and scavengers use of carcasses after Re-Colonization of an apex predator, PloS One, 8, 10.1371/journal.pone.0077373
Wolf, 2017, Range contractions of the world’s large carnivores, Royal Society Open Science, 4, 10.1098/rsos.170052
Wright, 2000, Poachers alter mammal abundance, seed dispersal, and seed predation in a neotropical forest, Conservation Biology : the Journal of the Society for Conservation Biology, 14, 227, 10.1046/j.1523-1739.2000.98333.x
Young, 2016, Patterns, causes, and consequences of anthropocene defaunation, Annual Review of Ecology, Evolution, and Systematics, 47, 333, 10.1146/annurev-ecolsys-112414-054142