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Author |
Zhiryakov V.A. |
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Title |
Snow leopard in the Almaty nature reserve. Short messages about snow leopards |
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Miscellaneous |
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1986 |
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51-54 |
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Kazakhstan; Almaty nature reserve; snow leopard; preys; ungulates; rodents; ibex; number.; 8790; Russian |
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Snow leopard is a common species for the Almaty nature reserve due to numerous wild ungulates, particularly ibexes (about 600 ibexes at a density of 32 animals per 1,000 ha) inhabiting the area. According to the data of 1982 there were 0.5 footprints of snow leopard per 10 km of transect. The remains of ibex, roe deer, squirrel, gray vole mouse and birds were found in faeces of snow leopards. Snow leopard attacks their prey unexpectedly, being in wait for it in such places where prey is difficult to escape from. When hunt is successful the prey is killed almost instantly. Snow leopard feeds upon the same prey for several days. |
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Full text available in RussianJournal Title: Rare animals of Kazakhstan. |
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SLN @ rana @ 856 |
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1088 |
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Author |
Zhiryakov V.A. |
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Title |
The influence of the predators on population trend of the ungulates in the Almaty nature reserve |
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Miscellaneous |
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1989 |
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199-201 |
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Kazakhstan; predators; ungulates; dencity; population trend; snow leopard.; 8770; Russian |
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The data on predators and ungulates population dynamics in Almaty Nature reserve (Kazakhstan) in 1983-1987s are given. The number of snow leopard is stable (3-5 individuals), the density is 0.06 indi/1000 ha. An insignificant increase of Siberian ibex' number (660 to 700) with density of 36 indi/1000 ha is recorded. |
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Full text available in RussianJournal Title: All-Union Conference on cadastre and censusing of the animals. |
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Call Number |
SLN @ rana @ 854 |
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1084 |
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Author |
Zhiryakov V.A. |
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Title |
The Almaty nature reserve |
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Miscellaneous |
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Year |
1990 |
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102-114 |
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Kazakhstan; Almaty nature reserve; location; climate; soils; flora; fauna; snow leopard; number.; 8800; Russian |
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It provides general information about the Almatya nature reserve (Kazakhstan), its physico-geographical features and description of flora and fauna. Snow leopard inhabits alpine zone and goes down as low as forest-meadow zone following ibex in winter. There are two or three families of snow leopard in the nature reserve. The population of ibex is 600 700 animals. |
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Full text available in RussianJournal Title: Nature reserves of Central Asia and Kazakhstan. |
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SLN @ rana @ 857 |
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1086 |
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Author |
Zhiryakov V.A. |
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Title |
Ecology and behavior of the Snow leopard in Kazakhstan |
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Miscellaneous |
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2002 |
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N 1-4. |
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184-199 |
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Kazakhstan; distribution; number; density; population size; habitats; marking; Migration; diet; prey species; hunting; faeces; Sex; Age; population dynamics; reproductive activity; competitors; mortality; snow leopard.; 8810; Russian |
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The data on spreading, numbers and population density of snow leopard in Kazakhstan are given in this article. The total number of the snow leopard in Kazakhstan is evaluated in 100-110 individuals. The everywhere occurred numbers' reduction under the influence of the anthropogenic factors is observed. The snow leopard' inhabitation area varies from 20 to 120 square kilometers depending on its regions. Sex and composition of the population and its aggregative behavior are given. The dynamics of numbers and mortality are estimated. |
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Full text available in Russian.Journal Title: Selevinia. The zoological journal of Kazakhstan. |
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SLN @ rana @ 858 |
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1087 |
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Author |
Zhiryakov V.A. |
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Title |
Wolves' role in biocenosis of the Almaty nature reserve (North Tien Shan) |
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Miscellaneous |
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1990 |
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Vol. II. |
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278-279 |
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Kazakhstan; Almaty nature reserve; ungulates; number; livestock; red deer; roe deer; ibex; wild boar; predators; brown bear; wolf; snow leopard.; 8780; Russian |
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The quantity of ungulates is high in the nature reserve: moral (100-120), roe deer (500-650), Siberian ibex (660-700), and wild boar (50-80). Moreover some 5,000 heads of livestock (mostly sheep) are grazed in a buffer zone in summer. Among big predators (snow leopard, bear, lynx) wolf kills about 40 percent of ungulates. |
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Full text available in RussianJournal Title: Proceedings of V all-Union congress of mammalogy society of the Academy of Science of the USSR. |
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Call Number |
SLN @ rana @ 855 |
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1085 |
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Author |
Zimina R.P. |
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Title |
Biology and biotopical distribution of mammals. Predators. Distribution of mammals by vertical zones |
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1964 |
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25-27 |
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Kyrgyzstan; Issy-Kul derression; fauna; snow leopard; distribution.; 8820; Russian |
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Fauna of the Issyk-Kul depression and the surrounding ridges consists of heterogeneous elements different in their ecologic features and origin. In highlands, more common are species of Central Asia's origin (gray marmot, snow leopard, dhole, ibex, argali, etc.). Snow leopard is met in Terskey-Alatau. Each year hunters catch/shoot one to three snow leopards in the Chon-Kizilsu river basin. In the Djeti-Oguz district, up to five eight snow leopards are caught each winter. Snow leopard is also caught/shot in the river basins Chon-Kizilsu, Karabatkak, Ortok, Archtor, Tekeletor, and Shatly. |
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Full text available in RussianJournal Title: Regularities of vertical distribution of mammals. |
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SLN @ rana @ 859 |
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1090 |
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Author |
Zinchenko Yu.K. |
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Title |
About characteristic of mammal fauna in the Markakol nature reserve |
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Miscellaneous |
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1989 |
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Part. II. |
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39-41 |
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Kazakhstan; Markakol nature reserve; mammals; snow leopard.; 8830; Russian |
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50 mammal species permanently live in the nature reserve. There penetrate snow leopard, wolf, corsac, and wild boar on a relatively regular basis. Moral, roe deer, and elk migrate outside the Markakol depression in winter. Though mentioned in literature as species inhabiting the nature reserve, beaver, stone marten, and dhole are not met there today. |
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Full text available in RussianJournal Title: Proceedings of All-Union conference on cadastre and fauna counts. |
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SLN @ rana @ 860 |
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1091 |
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Thapa, K., Baral, S., Rahamajhi, S. |
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Title |
Effectiveness of Human-Snow leopard co-existence measure- a systematic analysis |
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2023 |
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Journal for Nature Conservation |
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76 |
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126511 |
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1-11 |
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Community-based conservation, Himalayan, Snow leopard range countries |
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Snow leopards and agropastoral communities have co-existed in snow leopard range countries for centuries. The vulnerable snow leopard forms and maintains the entire ecosystem, serving as an indicator species of a healthy alpine ecosystem. However, snow leopards, on the other hand, habitually kill livestock, occasionally killing 100 or more livestock in a single night, resulting in snow leopard retaliation. Thus, the snow leopard is becoming more threatened, so more attention should be paid. Therefore, numerous conservation mitigation strategies have been applied to maintain human-snow leopard coexistence in countries of the snow leopard range. However, such implemented conservation strategies lacked a thorough assessment of their achievements or shortcomings in protecting the snow leopard and enhancing community tolerance. Therefore, we systematically examined and evaluated peer-reviewed articles and book chapters on existing and implemented mitigation measures. We use the software Publish or Perish to achieve this, and we assess using the Preferred Reporting of Items for Systematic Review and Meta-Analysis (PRISMA) review approach. We thoroughly analyzed 42 papers and book chapters that were condensed human- snow leopard co-existence-related literature published in English from 2010 to 2023. Almost 90% of the papers were country-specific, with the remaining papers covering regional or snow leopard ranges countries. Nepal had the most papers, followed by China, India, and Mongolia; however, Afghanistan, Bhutan, Pakistan, Russia, and Tajikistan each had<10%, but there was no single document from Kazakhstan or Kyrgyzstan. Predator-proof corral, improved herding practices, and community-based insurance programs were three of the key recommendations that were more than 10 to 22 times proposed interventions. There are site-specific sociocultural situations and environments that require long-term action-oriented research that is area-specific rather than short-term and generic interventions. We identified a large knowledge gap in snow leopard research, specifically a lack of evidence that demonstrates and quantifies the effects of conservation actions, and strongly advise that it be further researched. |
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SLN @ rakhee @ |
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1735 |
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Alexander, J. S., Agvaantseren, B., Gongor, E., Mijiddorj, T. N., Piaopiao, T., Stephen Redpath, S., Young, J., Mishra, C. |
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Assessing the Effectiveness of a Community-based Livestock Insurance Program |
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2021 |
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Environmental Management |
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Large carnivores, Snow leopard conservation, Human-wildlife conflicts, Livestock insurance, Community conservation, Human-wildlife co-existence, Snow leopard |
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1635 |
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Atzeni, L., Cushman, S. A., Bai, D., Wang, J., Chen, P., Shi,
K., Riordan, P. |
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Meta-replication, sampling bias, and multi-scale model selection:
A case study on snow leopard (Panthera uncia) in western China. |
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2020 |
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Ecology and Evolution |
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1-27 |
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MaxEnt, meta-replication, multi-scale, Panthera uncia, sampling bias, scale selection, snow leopard, species distribution model |
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Replicated multiple scale species distribution models (SDMs)
have become increasingly important to identify the correct variables
determining species distribution and their influences on ecological
responses. This study explores multi-scale habitat relationships of the
snow leopard (Panthera uncia) in two study areas on the Qinghai–Tibetan
Plateau of western China. Our primary objectives were to evaluate the
degree to which snow leopard habitat relationships, expressed by
predictors, scales of response, and magnitude of effects, were
consistent across study areas or locally landcape-specific. We coupled
univariate scale optimization and the maximum entropy algorithm to
produce multivariate SDMs, inferring the relative suitability for the
species by ensembling top performing models. We optimized the SDMs based
on average omission rate across the top models and ensembles’ overlap
with a simulated reference model. Comparison of SDMs in the two study
areas highlighted landscape-specific responses to limiting factors.
These were dependent on the effects of the hydrological network,
anthropogenic features, topographic complexity, and the heterogeneity of
the landcover patch mosaic. Overall, even accounting for specific local
differences, we found general landscape attributes associated with snow
leopard ecological requirements, consisting of a positive association
with uplands and ridges, aggregated low-contrast landscapes, and large
extents of grassy and herbaceous vegetation. As a means to evaluate the
performance of two bias correction methods, we explored their effects on
three datasets showing a range of bias intensities. The performance of
corrections depends on the bias intensity; however, density kernels
offered a reliable correction strategy under all circumstances. This
study reveals the multi-scale response of snow leopards to environmental
attributes and confirms the role of meta-replicated study designs for
the identification of spatially varying limiting factors. Furthermore,
this study makes important contributions to the ongoing discussion about
the best approaches for sampling bias correction. |
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