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Artículos de revistas sobre el tema "Muntjac deer"

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1

Chaffin, Wendy. "Muntjac Deer Fact File." Veterinary Nursing Journal 27, no. 1 (January 2012): 32. http://dx.doi.org/10.1111/j.2045-0648.2011.00138.x.

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2

Chapman, D. I., and O. Dansie. "Unilateral implantation in muntjac deer." Journal of Zoology 159, no. 4 (August 20, 2009): 534–36. http://dx.doi.org/10.1111/j.1469-7998.1969.tb03907.x.

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3

Rahman, Dede Aulia, and Ani Mardiastuti. "Factors influencing the activity patterns of two deer species and their response to predators in two protected areas in Indonesia." Therya 12, no. 1 (January 30, 2021): 149–61. http://dx.doi.org/10.12933/therya-21-1087.

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Facing change of environmental conditions, the activity rhythm of animals may habituate. Remote cameras were used to quantify Bawean deer and red muntjac activity patterns and to examined differences by season, sex and lunar cycle to respond predator presence, in Bawean Island and Ujung Kulon National Park, Indonesia. Photographs of Bawean deer (n = 118) were taken during March to November 2014 and for red muntjac (n = 4,142) were taken during January 2013 to July 2014. Data were analyzed by using Generalized Additive Models (GAMs) to test the relationship between activity patterns and the lun
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4

Dansie, O., and J. Williams. "Paraurethral glands in Reeves muntjac deer, Muntiacus reevesii." Journal of Zoology 171, no. 4 (August 20, 2009): 469–71. http://dx.doi.org/10.1111/j.1469-7998.1973.tb02227.x.

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5

Chaplin, Raymond E., and Grahame Dangerfield. "Breeding records of Muntjac deer (Muntiacus reevsi) in captivity." Journal of Zoology 170, no. 2 (August 20, 2009): 150–51. http://dx.doi.org/10.1111/j.1469-7998.1973.tb01370.x.

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6

Cita, K. D., R. A. Adila, R. I. Hardianto, M. F. Adib, and L. Setyaningsih. "Wildlife Camera Trapping: Estimating the Abundance of Sumatran Tiger’s Prey in Way Kambas National Park." IOP Conference Series: Earth and Environmental Science 959, no. 1 (January 1, 2022): 012020. http://dx.doi.org/10.1088/1755-1315/959/1/012020.

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Abstract The Sumatran tiger is one of the endemic species in Indonesia which has been driven to extinction. This species has been categorized as critically endangered by IUCN and as Appendix I by CITES. Loss of prey is one of the threats to the Sumatran tiger’s population. It is an essential factor to maintain the existence of the Sumatran tiger. The study aimed to reveal the abundance of the Sumatran tiger prey using the camera trap method in Way Kambas National Park where one of the Sumatran tiger’s habitats. Our study was conducted from March until August 2020. We used 16 Camera traps which
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7

Dolman, Paul M., and Kristin Wäber. "Ecosystem and competition impacts of introduced deer." Wildlife Research 35, no. 3 (2008): 202. http://dx.doi.org/10.1071/wr07114.

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Numerous deer species have been introduced beyond their native range into ecosystems around the world. Their economic value leads to further accidental and deliberate releases and lack of control is contributing to range expansion in Australia, South America and Europe. Despite localised or regional concern, the scale and generality of detrimental impacts have not been widely recognised. We review the direct and indirect impacts on ecosystems and evidence for interspecific effects on native deer. In New Zealand, where large herbivores were previously absent, severe and novel impacts have been
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8

Chaplin, Raymond E. "Dental development in Muntjac deer (Muntiacus reevesi) of known age." Journal of Zoology 170, no. 2 (August 20, 2009): 148–49. http://dx.doi.org/10.1111/j.1469-7998.1973.tb01369.x.

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9

Jackson, J. E., and D. I. Chapman. "A note on the food of Muntjac deer (Muntiacus reevesi)." Journal of Zoology 183, no. 4 (August 20, 2009): 546–48. http://dx.doi.org/10.1111/j.1469-7998.1977.tb04208.x.

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10

D. Rotherham, Ian. "Muntjac and water deer natural history, environmental impact and management." Arboricultural Journal 41, no. 4 (October 2, 2019): 243. http://dx.doi.org/10.1080/03071375.2019.1701766.

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11

Relissiana, H. Marhaento, and Subeno. "Extinction risk analysis of barking deer (Muntiacus muntjac) in Sermo Wildlife Sanctuary." IOP Conference Series: Earth and Environmental Science 1039, no. 1 (September 1, 2022): 012050. http://dx.doi.org/10.1088/1755-1315/1039/1/012050.

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Abstract Sermo Wildlife Sanctuary (SWS) is a habitat of barking barking deer (Muntiacus muntjac) that is included as one of the protected species according to Ministerial Decree of Forestry and Environment No. 92/2018. The latest report from the authority, the Yogyakarta Natural Resources Conservation Agency (BKSDA Yogyakarta), stated that in 2017, it was estimated that there are only six individual barking deer inside the SWS. Their existence is threatened due to several activities such as tourism and agriculture practices. It should be noted that SWS was formerly a production forest so that
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12

Scott, W. A. "Apparent low toxicity of yew in muntjac deer and Soay sheep." Veterinary Record 166, no. 8 (February 20, 2010): 246. http://dx.doi.org/10.1136/vr.c971.

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13

Hartmann, Nils, and Harry Scherthan. "Characterization of ancestral chromosome fusion points in the Indian muntjac deer." Chromosoma 112, no. 5 (February 1, 2004): 213–20. http://dx.doi.org/10.1007/s00412-003-0262-4.

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14

Rabinowitz, Alan, and Saw Tun Khaing. "Status of selected mammal species in North Myanmar." Oryx 32, no. 3 (July 1998): 201–8. http://dx.doi.org/10.1046/j.1365-3008.1998.d01-37.x.

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During 1996 and 1997, data on the status of selected mammal species were collected from a remote region of North Myanmar. Of the 21 species discussed in this paper, the black muntjac, stone marten and blue sheep are new records for the country. One species, the leaf muntjac, has never been described. At least three species that once inhabited the region – elephant, gaur and Sumatran rhinoceros – are no longer present, and the tiger has been nearly extirpated. Himalayan species that are declining elsewhere, such as takin, red goral and red panda, are still relatively abundant despite hunting pr
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15

Bhattarai, Bishnu Prasad. "Factors Associated with Habitat Segregation Among the Four Species of Cervids in the Chitwan National Park, Nepal." Ekológia (Bratislava) 38, no. 1 (March 1, 2019): 37–48. http://dx.doi.org/10.2478/eko-2019-0004.

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AbstractStudy of habitat segregation among the four species of cervids was conducted in the Chitwan National park of lowland Nepal. This study aimed to investigate the possible mechanisms of habitat partitioning among the four cervids - chital, sambar deer, hog deer and northern red muntjac using discriminant analysis and canonical correlation analysis. Present study considered four major niche dimensions - habitat, human disturbance, presence of predators and seasons. The data were collected by walking along the line transects that encompasses the different habitats, varying degree of human d
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16

Nalls, Amy V., Erin McNulty, Jenny Powers, Davis M. Seelig, Clare Hoover, Nicholas J. Haley, Jeanette Hayes-Klug, et al. "Mother to Offspring Transmission of Chronic Wasting Disease in Reeves’ Muntjac Deer." PLoS ONE 8, no. 8 (August 14, 2013): e71844. http://dx.doi.org/10.1371/journal.pone.0071844.

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17

Makouloutou, P., A. Setsuda, M. Yokoyama, T. Tsuji, E. Saita, H. Torii, Y. Kaneshiro, et al. "Genetic variation of Gongylonema pulchrum from wild animals and cattle in Japan based on ribosomal RNA and mitochondrial cytochrome c oxidase subunit I genes." Journal of Helminthology 87, no. 3 (September 12, 2012): 326–35. http://dx.doi.org/10.1017/s0022149x12000442.

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AbstractThe gullet worm (Gongylonema pulchrum) has been recorded from a variety of mammals worldwide, including monkeys and humans. Due to its wide host range, it has been suggested that the worm may be transmitted locally to any mammalian host by chance. To investigate this notion, the ribosomal RNA gene (rDNA), mainly regions of the internal transcribed spacers (ITS) 1 and 2, and a cytochrome c oxidase subunit I (COI) region of mitochondrial DNA of G. pulchrum were characterized using parasites from the following hosts located in Japan: cattle, sika deer, wild boars, Japanese macaques, a fer
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18

Lin, Shih-Ting, Li-Ting Wang, Yen-Chi Wu, Jia-Rong Jeremy Guu, Tomohiko Tamura, Koji Mori, Lina Huang, and Koichi Watanabe. "Weissella muntiaci sp. nov., isolated from faeces of Formosan barking deer (Muntiacus reevesi)." International Journal of Systematic and Evolutionary Microbiology 70, no. 3 (March 1, 2020): 1578–84. http://dx.doi.org/10.1099/ijsem.0.003937.

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A Gram-stain-positive strain, 8 H-2T, was isolated from faeces of Reeves’ muntjac (Muntiacus reevesi) barking deer in Taiwan. Cells of the strain were short rod-shaped, non-motile, non-haemolytic, asporogenous, facultatively anaerobic, heterofermentative and did not exhibit catalase and oxidase activities. Comparative analyses of 16S rRNA, pheS and dnaA gene sequences demonstrated that the novel strain was a member of the genus Weissella . On the basis of 16S rRNA gene sequence similarities, the type strains of Weissella oryzae (99.2 %), Weissella confusa (97.8 %), Weissella cibaria (97.6 %) a
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19

Kramsky, Joely A., Elizabeth J. B. Manning, and Michael T. Collins. "Protein G Binding to Enriched Serum Immunoglobulin from Nondomestic Hoofstock Species." Journal of Veterinary Diagnostic Investigation 15, no. 3 (May 2003): 253–61. http://dx.doi.org/10.1177/104063870301500306.

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Quick and cost-effective serologic assays, such as those based on enzyme-linked immunosorbent assay (ELISA) technology, are useful for screening animal populations for infectious diseases. Recombinant protein G is described as an almost universal ELISA conjugate for the detection of antibodies from a wide range of animal species. However, there is limited data documenting the ability of protein G to bind immunoglobulin (Ig) from many captive and free-ranging nondomestic hoofstock (Order Artiodactyla, e.g., elk, antelope, bison). Protein G binding to Ig from 11 species within this taxonomic ord
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20

Zhang, Yun-Chun, Chen Xiao-Yong, Guo-Gang Li, and Quan Rui-Chang. "Complete mitochondrial genome of Gongshan muntjac (Muntiacus gongshanensis), a Critically Endangered deer species." Mitochondrial DNA Part B 4, no. 2 (July 3, 2019): 2867–68. http://dx.doi.org/10.1080/23802359.2019.1660242.

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21

Southwell, Rebecca Marie, Kenneth Sherlock, and Matthew Baylis. "Cross-sectional study of British wild deer for evidence of Schmallenberg virus infection." Veterinary Record 187, no. 8 (May 23, 2020): e64-e64. http://dx.doi.org/10.1136/vr.105869.

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BackgroundSchmallenberg virus (SBV) is an orthobunyavirus, carried by Culicoides biting midges, that causes reproductive problems in adult ruminants when infected during their gestation period. SBV was first detected in ruminants in the UK in 2011/2012 and then again in 2016. The reason behind the 2016 re-emergence of SBV is unknown, but one possibility is that it can be maintained in wildlife, such as deer. SBV has been detected at high seroprevalence in deer in a number of European countries, but only once in the UK in a single region.MethodsThe purpose of this study was to survey wild deer
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22

Bhattarai, Bishnu Prasad, and Pavel Kindlmann. "Factors Affecting Population Composition and Social Organization of Wild Ungulates in the Chitwan National Park, Nepal." Journal of Institute of Science and Technology 22, no. 2 (April 9, 2018): 156–67. http://dx.doi.org/10.3126/jist.v22i2.19608.

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We investigated the factors affecting group sizes and population composition of chital (Axis axis), sambar (Rusa unicolor), hog deer (Axis porcinus), northern red muntjac (Muntiacus vaginalis), wild boar (Sus scrofa) and gaur (Bos gaurus) in the Chitwan National Park in southern Nepal. The study revealed that mean group sizes were the largest for chital (winter: 13.76 and summer: 11.01), followed by wild boar (winter: 6.89 and summer: 8.51), hog deer (winter: 5.52 and summer: 6.66), gaur (winter: 4.36 and summer: 5.81), sambar (winter: 1.86 and summer: 2.45) and muntjac (winter: 1.44 and summe
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23

Lamichhane, Saneer, and Bibhuti Ranjan Jha. "Prey selection by Bengal Tiger Panthera tigris tigris (Mammalia: Carnivora: Felidae) of Chitwan National Park, Nepal." Journal of Threatened Taxa 7, no. 14 (November 26, 2015): 8081. http://dx.doi.org/10.11609/jott.2424.7.14.8081-8088.

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<p>Prey selection by tiger in Chitwan National Park, Nepal was studied from 77 tiger scats that contained the remains of principal prey species. The scats were collected from January to March 2010. Government reports on herbivore population in Chitwan provided the base data on density of principal prey species. In order to understand prey selectivity, the observed proportion of prey species in the scats were compared with the expected proportion derived from density estimates. The observed scat frequency of Sambar, Hog Deer and Wild Boar was found to be greater than the estimated frequen
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24

Wang, Wen, and Hong Lan. "Rapid and Parallel Chromosomal Number Reductions in Muntjac Deer Inferred from Mitochondrial DNA Phylogeny." Molecular Biology and Evolution 17, no. 9 (September 1, 2000): 1326–33. http://dx.doi.org/10.1093/oxfordjournals.molbev.a026416.

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25

Huang, Ling, Jianxiang Chi, Wenhui Nie, Jinhuan Wang, and Fengtang Yang. "Phylogenomics of several deer species revealed by comparative chromosome painting with Chinese muntjac paints." Genetica 127, no. 1-3 (May 2006): 25–33. http://dx.doi.org/10.1007/s10709-005-2449-5.

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26

Chapman, N. G., K. Claydon, M. Claydon, and S. Harris. "Techniques for the safe and humane capture of free-living muntjac deer (Muntiacus reevesi)." British Veterinary Journal 143, no. 1 (January 1987): 35–43. http://dx.doi.org/10.1016/0007-1935(87)90104-7.

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27

Cooke, A. S., and K. H. Lakhani. "Damage to coppice regrowth by muntjac deer Muntiacus reevesi and protection with electric fencing." Biological Conservation 75, no. 3 (1996): 231–38. http://dx.doi.org/10.1016/0006-3207(95)00070-4.

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28

McKillen, John, Kayleigh Hogg, Paula Lagan, Cheryl Ball, Simon Doherty, Neil Reid, Lisa Collins, and Jaimie T. A. Dick. "Detection of a novel gammaherpesvirus (genus Rhadinovirus) in wild muntjac deer in Northern Ireland." Archives of Virology 162, no. 6 (February 15, 2017): 1737–40. http://dx.doi.org/10.1007/s00705-017-3254-z.

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29

Khalil, Abdul Rouf Amarulloh, Agus Setiawan, Elly Lestari Rustiati, Sugeng Prayitno Haryanto, and Irfan Nurarifin. "The Diversity and Abundance of Artiodactyla Using Camera Traps in Forest Management Unit I Pesisir Barat." Jurnal Sylva Lestari 7, no. 3 (September 29, 2019): 350. http://dx.doi.org/10.23960/jsl37350-358.

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Artiodactyla is a wild animal that has an important role in ecology. The purpose of this study was to determine the diversity and abundance of species of order Artiodactyla in the Forest Management Unit (KPH) I Pesisir Barat. 19 units of camera traps were installed randomly within 14 observation stations (grid cells). Images of animals captured by camera traps on each grid cell were used to analyze the diversity and relative abundance of each species. The results of the diversity analysis showed that the Artiodactyla species found consisted of wild boar (Sus scrofa Linnaeus, 1758), muntjac (Mu
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30

Charaspet, Khwanrutai, Ronglarp Sukmasuang, Noraset Khiowsree, Nucharin Songsasen, Saksit Simchareon, and Prateep Duengkae. "Some ecological aspects of dhole (Cuon alpinus) in the Huai Kha Khaeng Wildlife Sanctuary, Uthai Thani Province, Thailand." Folia Oecologica 46, no. 2 (December 1, 2019): 91–100. http://dx.doi.org/10.2478/foecol-2019-0012.

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AbstractThe dhole (Cuon alpinus) is one of the least frequent studied endangered canid species and many aspects of ecological knowledge about this species are lacking. The objectives of this study were to investigate the spatial movement of dholes, prey abundance, prey selection, and prey overlaps with other large carnivorous species in the Huai Kha Khaeng Wildlife Sanctuary, Thailand, during November, 2017 and October, 2018. Two adult female dholes were captured and fitted with GPS collars. Twenty camera trap sets were systematically used to survey the area. Scat collection was conducted alon
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31

Rabinowitz, A., Than Myint, Saw Tun Khaing, and S. Rabinowitz. "Description of the leaf deer (Muntiacus putaoensis), a new species of muntjac from northern Myanmar." Journal of Zoology 249, no. 4 (December 1999): 427–35. http://dx.doi.org/10.1111/j.1469-7998.1999.tb01212.x.

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32

Cooke, A. S. "Impact of muntjac deer (Muntiacus reevesi) at Monks Wood National Nature Reserve, Cambridgeshire, eastern England." Forestry 74, no. 3 (March 1, 2001): 241–50. http://dx.doi.org/10.1093/forestry/74.3.241.

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33

Chapman, Norma G., Kathie Claydon, Mick Claydon, and Stephen Harris. "Distribution and habitat selection by muntjac and other species of deer in a coniferous forest." Acta Theriologica 30 (December 16, 1985): 287–303. http://dx.doi.org/10.4098/at.arch.85-20.

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34

Habiba, Ume, Maqsood Anwar, Rukhsana Khatoon, Majid Hussain, Kamal Ahmed Khan, Sangam Khalil, Syeda Asma Bano, and Ahmed Hussain. "Feeding habits and habitat use of barking deer (Muntiacus vaginalis) in Himalayan foothills, Pakistan." PLOS ONE 16, no. 1 (January 15, 2021): e0245279. http://dx.doi.org/10.1371/journal.pone.0245279.

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Northern red muntjac (Muntiacus vaginalis; “barking deer”) is a shy and small-sized cervid mammal, limited to the outer Himalayan foothill forests in Pakistan. Habitat characteristics were measured by locating direct and indirect signs. To quantify habitat utilization of barking deer, 80 field surveys were conducted in the study area along transects. 1200 Quadrats at 50 m intervals were deployed along these transect lines to determine microhabitat factors associated with seasonal distribution. The food composition of the barking deer was determined through fecal droppings analysis by micro-his
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35

Chapman, Norma, and G. I. Twigg. "Studies on the thymus gland of British Cervidae, particularly muntjac,Muntiacus reevesi, and fallow,Dama dama, deer." Journal of Zoology 222, no. 4 (December 1990): 653–75. http://dx.doi.org/10.1111/j.1469-7998.1990.tb06021.x.

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36

Odden, Morten, and Per Wegge. "Predicting spacing behavior and mating systems of solitary cervids: A study of hog deer and Indian muntjac." Zoology 110, no. 4 (September 2007): 261–70. http://dx.doi.org/10.1016/j.zool.2007.03.003.

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37

Freeman, M. S., G. E. Beatty, J. T. A. Dick, N. Reid, and J. Provan. "The paradox of invasion: Reeves' muntjac deer invade the British Isles from a limited number of founding females." Journal of Zoology 298, no. 1 (August 11, 2015): 54–63. http://dx.doi.org/10.1111/jzo.12283.

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38

Hemami, M. R., A. R. Watkinson, and P. M. Dolman. "Habitat selection by sympatric muntjac (Muntiacus reevesi) and roe deer (Capreolus capreolus) in a lowland commercial pine forest." Forest Ecology and Management 194, no. 1-3 (June 2004): 49–60. http://dx.doi.org/10.1016/j.foreco.2004.01.049.

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39

Pusparini, Wulan, Timbul Batubara, Fahrudin Surahmat, Ardiantiono, Tri Sugiharti, Muhammad Muslich, Fahrul Amama, William Marthy, and Noviar Andayani. "A pathway to recovery: the Critically Endangered Sumatran tiger Panthera tigris sumatrae in an ‘in danger’ UNESCO World Heritage Site." Oryx 52, no. 1 (October 23, 2017): 25–34. http://dx.doi.org/10.1017/s0030605317001144.

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AbstractReliable information on wildlife populations and the threats they face is crucial for assessing the performance of conservation strategies. As part of its efforts to improve the effectiveness of Bukit Barisan Selatan National Park in Sumatra, Indonesia, and aid the recovery of flagship species, the Park's management authority designated a 1,000 km2 forest block an Intensive Protection Zone. To set a baseline from which to evaluate the performance of this zone, we investigated the density of tigers Panthera tigris sumatrae, and spatio-temporal interactions between tigers, their principl
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40

HEMAMI, MAHMOUD R., ANDREW R. WATKINSON, ROBIN M. A. GILL, and PAUL M. DOLMAN. "Estimating abundance of introduced Chinese muntjac Muntiacus reevesi and native roe deer Capreolus capreolus using portable thermal imaging equipment." Mammal Review 37, no. 3 (July 2007): 246–54. http://dx.doi.org/10.1111/j.1365-2907.2007.00110.x.

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41

Zheng, JinHua, and Kan Kobayashi. "Comparative morphological study on the lingual papillae and their connective tissue cores (CTC) in reeves’ muntjac deer (Muntiacus reevesi)." Annals of Anatomy - Anatomischer Anzeiger 188, no. 6 (November 2006): 555–64. http://dx.doi.org/10.1016/j.aanat.2006.05.014.

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42

Hemami, Mahmoud R., and Paul M. Dolman. "The disappearance of muntjac (Muntiacus reevesi) and roe deer (Capreolus capreolus) pellet groups in a pine forest of lowland England." European Journal of Wildlife Research 51, no. 1 (November 30, 2004): 19–24. http://dx.doi.org/10.1007/s10344-004-0067-7.

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43

SCHERTHAN, HARRY. "Characterisation of a tandem repetitive sequence cloned from the deer Capreolus capreolus and its chromosomal localisation in two muntjac species." Hereditas 115, no. 1 (February 14, 2008): 43–49. http://dx.doi.org/10.1111/j.1601-5223.1991.tb00345.x.

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44

Austin, Z., S. Cinderby, J. C. R. Smart, D. Raffaelli, and P. C. L. White. "Mapping wildlife: integrating stakeholder knowledge with modelled patterns of deer abundance by using participatory GIS." Wildlife Research 36, no. 7 (2009): 553. http://dx.doi.org/10.1071/wr08153.

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Context. Some species that are perceived by certain stakeholders as a valuable resource can also cause ecological or economic damage, leading to contrasting management objectives and subsequent conflict between stakeholder groups. There is increasing recognition that the integration of stakeholder knowledge with formal scientific data can enhance the information available for use in management. This is especially true where scientific understanding is incomplete, as is frequently the case for wide-ranging species, which can be difficult to monitor directly at the landscape scale. Aims. The aim
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45

SOHN, JoonHyuk, Motoki SASAKI, Masahiro YASUDA, YoungJun KIM, Nam-Shik SHIN, and Junpei KIMURA. "Immunolocalization of Cytoskeletal Proteins in the Testes of Two Asian Cervids: Water Deer (Hydropotes inermis) and Reeves^|^rsquo; Muntjac (Muntiacus reevesi)." Journal of Veterinary Medical Science 75, no. 8 (2013): 1071–75. http://dx.doi.org/10.1292/jvms.13-0079.

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46

Pollard, E., and A. S. Cooke. "Impact of muntjac deer Muntiacus reevesi on EGG-laying sites of the white admiral butterfly Ladoga camilla in a cambridgeshire wood." Biological Conservation 70, no. 2 (1994): 189–91. http://dx.doi.org/10.1016/0006-3207(94)90287-9.

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Hemami, Mahmoud-Reza, A. R. Watkinson, and P. M. Dolman. "Population densities and habitat associations of introduced muntjac Muntiacus reevesi and native roe deer Capreolus capreolus in a lowland pine forest." Forest Ecology and Management 215, no. 1-3 (August 2005): 224–38. http://dx.doi.org/10.1016/j.foreco.2005.05.013.

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48

Chapman, Norma G., Kathie Claydon, M. Claydon, P. G. Forde, and S. Harris. "Sympatric populations of muntjac (Muntiacus reevesi) and roe deer (Capreolus capreolus): a comparative analysis of their ranging behaviour, social organization and activity." Journal of Zoology 229, no. 4 (April 1993): 623–40. http://dx.doi.org/10.1111/j.1469-7998.1993.tb02660.x.

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49

Rehorek, S. J., W. J. Hillenius, J. Sanjur, and N. G. Chapman. "One gland, two lobes: Organogenesis of the “Harderian” and “nictitans” glands of the Chinese muntjac (Muntiacus reevesi) and fallow deer (Dama dama)." Annals of Anatomy - Anatomischer Anzeiger 189, no. 5 (September 2007): 434–46. http://dx.doi.org/10.1016/j.aanat.2006.10.007.

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50

Kawanishi, Kae, Gopalasamy Reuben Clements, Melvin Gumal, Gareth Goldthorpe, Mohd Nawayai Yasak, and Dionysius Shankar Kumar Sharma. "Using BAD for good: how best available data facilitated a precautionary policy change to improve protection of the prey of the tiger Panthera tigris in Malaysia." Oryx 47, no. 3 (July 2013): 420–26. http://dx.doi.org/10.1017/s0030605312000294.

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Resumen
AbstractTiger Panthera tigris populations are under threat from poaching and depletion of their prey populations. The National Tiger Action Plan for Malaysia contains several actions addressing the threat of legal and illegal hunting of tiger prey species. One action in this plan required an investigation of whether urgent policy changes were needed to improve the protection of the prey of tigers, based on existing data. As the lack of reliable baseline data prevented us from determining population trends accurately, we compiled camera-trapping data from 23 studies conducted between 1997 and 2
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