Gorosito, I., Benitez, A. & Busch, M. Home range variability, spatial aggregation, and excursions of Akodon azarae and Oligoryzomys flavescens in Pampean agroecosystems. Integr. Zool. 15, 401–415 (2020).
Google Scholar
Christy, M. T., Savidge, J. A., Adams, A. A. Y., Gragg, J. E. & Rodda, G. H. Experimental landscape reduction of wild rodents increases movements in the invasive brown treesnake (Boiga irregularis). Manag. Biol. Invasion. 8, 455–467 (2017).
Google Scholar
Cutrera, A. P., Antinuchi, C. D., Mora, M. S. & Vassallo, A. I. Home-range and activity patterns of the south American subterranean rodent Ctenomys talarum. J. Mammal. 87, 1183–1191 (2006).
Google Scholar
Tisell, H. B., Degrassi, A. L., Stephens, R. B. & Rowe, R. J. Influence of field technique, density, and sex on home range and overlap of the southern red-backed vole (Myodes gapperi). Can. J. Zool. 97, 1101–1108 (2019).
Google Scholar
Vieira, E. M., Baumgarten, L. C., Paise, G. & Becker, R. G. Seasonal patterns and influence of temperature on the daily activity of the diurnal neotropical rodent Necromys lasiurus. Can. J. Zool. 88, 259–265 (2010).
Google Scholar
Burt, W. H. Territoriality and home range concepts as applied to mammals. J. Mammal. 24, 346–352 (1943).
Google Scholar
Samuel, M. D., Pierce, D. & Garton, E. O. Identifying areas of concentrated use within the home range. J. Anim. Ecol. 54, 711–719 (1985).
Google Scholar
Worton, B. Kernel methods for estimating the utilization distribution in home-range studies. Ecology 70, 164–168 (1989).
Google Scholar
Powell, R. A. & Mitchell, M. S. What is a home range?. J. Mammal. 93, 948–958 (2012).
Google Scholar
White, G. C. & Garrott, R. A. Analysis of Wildlife Radio-tracking Data (Academic Press, 1990).
Lee, E. J., Rhim, S. J. & Lee, W. S. Seasonal movements and home range sizes of Korean field mouse Apodemus peninsulae in unburned and post-fire pine planted stands within a pine forest. J. Anim. Vet. Adv. 11, 3834–3839 (2012).
Thompson, R. L., Chambers, C. L. & McComb, B. C. Home range and habitat of western red-backed voles in the Oregon Cascades. Northwest Sci. 83, 46–56 (2009).
Google Scholar
Tu, C. L., He, T. B., Lu, X. H., Luo, Y. & Smith, P. Extent to which pH and topographic factors control soil organic carbon level in dry farming cropland soils of the mountainous region of Southwest China. CATENA 163, 204–209 (2018).
Google Scholar
Khandelwal, S., Goyal, R., Kaul, N. & Mathew, A. Assessment of land surface temperature variation due to change in elevation of area surrounding Jaipur, India. Egypt. J. Remote Sens. 21, 87–94 (2018).
Hatfield, J. L. & Prueger, J. H. Temperature extremes: Effect on plant growth and development. Weather Clim. Extrem. 10, 4–10 (2015).
Google Scholar
Fang, J. Y. et al. Precipitation patterns alter growth of temperate vegetation. Geophys. Res. Lett. 32, L21411 (2005).
Google Scholar
Palmer, M. S., Fieberg, J., Swanson, A., Kosmala, M. & Packer, C. A “dynamic” landscape of fear: Prey responses to spatiotemporal variations in predation risk across the lunar cycle. Ecol. Lett. 20, 1364–1373 (2017).
Google Scholar
Lee, J. K., Hwang, H. S., Eom, T. K. & Rhim, S. J. Influence of tree thinning on abundance and survival probability of small rodents in a natural deciduous forest. Turk. J. Zool. 42, 323–329 (2018).
Navarro-Castilla, A. & Barja, I. Stressful living in lower-quality habitats? Body mass, feeding behavior and physiological stress levels in wild wood mouse populations. Integr. Zool. 14, 114–126 (2019).
Google Scholar
Casula, P., Luiselli, L. & Amori, G. Which population density affects home ranges of co-occurring rodents?. Basic Appl. Ecol. 34, 46–54 (2019).
Google Scholar
D’Elia, G., Fabre, P. H. & Lessa, E. P. Rodent systematics in an age of discovery: Recent advances and prospects. J. Mammal. 100, 852–871 (2019).
Google Scholar
Lee, J. K., Eom, T. K., Bae, H. K., Lee, D. H. & Rhim, S. J. Responsive strategies of three sympatric small rodents to the altitudinal effects on microhabitats. Anim. Biol. 72, 63–77 (2022).
Google Scholar
Lee, J. K., Hwang, H. S., Eum, T. K., Bae, H. K. & Rhim, S. J. Cascade effects of slope gradient on ground vegetation and small-rodent populations in a forest ecosystem. Anim. Biol. 70, 203–213 (2020).
Google Scholar
Orrock, J. L. & Connolly, B. M. Changes in trap temperature as a method to determine timing of capture of small mammals. PLoS ONE 11, e0165710 (2016).
Google Scholar
Endries, M. J. & Adler, G. H. Spacing patterns of a tropical forest rodent, the spiny rat (Proechimys semispinosus), in Panama. J. Zool. 265, 147–155 (2005).
Google Scholar
Kawata, M. & Saitoh, T. The effect of introduced males on spatial patterns of initially introduced red-backed voles. Acta Theriol. 33, 585–588 (1988).
Google Scholar
Desy, E., Batzli, G. & Liu, J. Effects of food and predation on behaviour of prairie voles: A field experiment. Oikos 58, 159–168 (1990).
Google Scholar
Attuquayefio, D., Gorman, M. & Wolton, R. Home range sizes in the wood mouse Apodemus sylvaticus: Habitat, sex and seasonal differences. J. Zool. 210, 45–53 (1986).
Google Scholar
Lovari, S., Sforzi, A. & Mori, E. Habitat richness affects home range size in a monogamous large rodent. Behav. Process. 99, 42–46 (2013).
Google Scholar
Puckey, H., Lewis, M., Hooper, D. & Michell, C. Home range, movement and habitat utilisation of the Carpentarian rock-rat (Zyzomys palatalis) in an isolated habitat patch. Wildlife Res. 31, 327–337 (2004).
Google Scholar
Jones, E. N. Effects of forage availability on home range and population density of Microtus pennsylvanicus. J. Mammal. 71, 382–389 (1990).
Google Scholar
Chun, J. H., Ali, A. & Lee, C. B. Topography and forest diversity facets regulate overstory and understory aboveground biomass in a temperate forest of South Korea. Sci. Total. Environ. 744, 140783 (2020).
Google Scholar
Koskela, E., Mappes, T. & Ylonen, H. Territorial behaviour and reproductive success of bank vole Clethrionomys glareolus females. J. Anim. Ecol. 66, 341–349 (1997).
Google Scholar
Vlasata, T. et al. Daily activity patterns in the giant root rat (Tachyoryctes macrocephalus), a fossorial rodent from the Afro-alpine zone of the Bale Mountains, Ethiopia. J. Zool. 302, 157–163 (2017).
Google Scholar
R Core Team. R: A Language and Environment for Statistical Computing (R Foundation for Statistical Computing, 2013).
Calenge, C. The package “adehabitat” for the R software: A tool for the analysis of space and habitat use by animals. Ecol. Model. 197, 516–519 (2006).
Google Scholar
Rhim, S. J., Kim, K. J., Son, S. H. & Hwang, H. S. Effect of forest road on stand structure and small mammals in temperate forests. J. Anim. Vet. Adv. 11, 2540–2547 (2012).
Google Scholar
Carrilho, M., Teixeira, D., Santos-Reis, M. & Rosalino, L. M. Small mammal abundance in Mediterranean Eucalyptus plantations: How shrub cover can really make a difference. For. Ecol. Manag. 391, 256–263 (2017).
Google Scholar
Emsens, W. J. et al. Effects of food availability on space and refuge use by a beotropical scatterhoarding rodent. Biotropica 45, 88–93 (2013).
Google Scholar
Malo, A. F. et al. Positive effects of an invasive shrub on aggregation and abundance of a native small rodent. Behav. Ecol. 24, 759–767 (2013).
Google Scholar
Johnson, M. D. & De Leon, Y. L. Effect of an invasive plant and moonlight on rodent foraging behavior in a coastal dune ecosystem. PLoS ONE 10, e0117903 (2015).
Google Scholar
Mori, E., Sangiovanni, G. & Corlatti, L. Gimme shelter: The effect of rocks and moonlight on occupancy and activity pattern of an endangered rodent, the garden dormouse Eliomys quercinus. Behav. Process. 170, 103999 (2020).
Google Scholar
Prugh, L. R. & Golden, C. D. Does moonlight increase predation risk? Meta-analysis reveals divergent responses of nocturnal mammals to lunar cycles. J. Anim. Ecol. 83, 504–514 (2014).
Google Scholar
Orrock, J. L., Danielson, B. J. & Brinkerhoff, R. J. Rodent foraging is affected by indirect, but not by direct, cues of predation risk. Behav. Ecol. 15, 433–437 (2004).
Google Scholar
Penteriani, V., Delgado, M. D. M., Campioni, L. & Lourenco, R. Moonlight makes owls more chatty. PLoS ONE 5, e8696 (2010).
Google Scholar
Penteriani, V., Kuparinen, A., del Mar Delgado, M., Lourenço, R. & Campioni, L. Individual status, foraging effort and need for conspicuousness shape behavioural responses of a predator to moon phases. Anim. Behav. 82, 413–420 (2011).
Google Scholar
Reher, S., Dausmann, K. H., Warnecke, L. & Turner, J. M. Food availability affects habitat use of Eurasian red squirrels (Sciurus vulgaris) in a semi-urban environment. J. Mammal. 97, 1543–1554 (2016).
Google Scholar
Lee, J. K., Hwang, H. S., Eom, T. K., Lee, D. H. & Rhim, S. J. Slope gradient effect on microhabitat and small rodents in a tree thinned Japanese larch plantation. Pak. J. Zool. 54, 2213–2220 (2022).
Google Scholar
Heroldova, M., Bryja, J., Janova, E., Suchomel, J. & Homolka, M. Rodent damage to natural and replanted mountain forest regeneration. Sci. World J. 2012, 872536 (2012).
Google Scholar
Jo, Y. S., Baccus, J. T. & Koprowski, J. L. Mammals of Korea (National Institute of Biological Resources, 2018).
Bondrup-Nielsen, S. Investigation of spacing behavior of Clethrionomys gapperi by experimentation. J. Anim. Ecol. 55, 269–279 (1986).
Google Scholar
Ylonen, H., Kojola, T. & Viitala, J. Changing female spacing behavior and demography in an enclosed breeding population of Clethrionomys glareolus. Holarctic Ecol. 11, 286–292 (1988).
Vander Wall, S. B. Seed harvest by scatter-hoarding yellow pine chipmunks (Tamias amoenus). J. Mammal. 100, 531–536 (2019).
Google Scholar
Lee, E. J. & Rhim, S. J. Seasonal home ranges and activity of three rodent species in a post-fire planted stand. Folia Zool. 65, 101–106 (2016).
Google Scholar
Bondrup-Nielsen, S. & Ims, R. A. Reproduction and spacing behavior of females in a peak density population of Clethrionomys glareolus. Holarctic Ecol. 9, 109–112 (1986).
Bujalska, G. & Grum, L. Social organization of the bank vole (Clethrionomys glareolus, Schreber 1780) and its demographic consequences: A model. Oecologia 80, 70–81 (1989).
Google Scholar
Henttonen, H. Importance of demography in understanding disease ecology in small mammals. Therya 13, 33–38 (2022).
Google Scholar
Rezende, E. L., Cortes, A., Bacigalupe, L. D., Nespolo, R. F. & Bozinovic, F. Ambient temperature limits above-ground activity of the subterranean rodent Spalacopus cyanus. J. Arid Environ. 55, 63–74 (2003).
Google Scholar
Guiden, P. W. & Orrock, J. L. Seasonal shifts in activity timing reduce heat loss of small mammals during winter. Anim. Behav. 164, 181–192 (2020).
Google Scholar
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