Search results
Results: 15
Number of items: 15
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Schreven, K. H. T., Versluijs, T. S. L., Boom, M. P., Cottaar, F., Kuijken, E., Pessa, J., Tombre, I. M., Verscheure, C., Madsen, J., & Nolet, B. A. (2026). Arctic geese in newly colonised, colder breeding areas have higher spring body mass and breed earlier relative to the onset of spring. Journal of Animal Ecology, 95(1), 97-114. https://doi.org/10.1111/1365-2656.70172 -
Lameris, T., Boom, C., Nuijten, R., Buitendijk, N., Eichhorn, G., Ens, B., Exo, K.-M., Glazov, P., Hanssen, S. A., Hunke, P., van der Jeugd, H., de Jong, M., Kölzsch, A., Kondratyev, A., Kruckenberg, H., Kulikova, O., Linssen, H., Loonen, M., Loshchagina, J., … van Bemmelen, R. (2025, April 10). Data from: Migratory birds advance spring arrival and egg-laying in the Arctic, mostly by travelling faster [Data set]. DRYAD. https://doi.org/10.5061/dryad.w0vt4b93d
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Boom, M. P., & Kissling, W. D. (2025). Making better use of tracking data can reveal the spatiotemporal and intraspecific variability of species distributions. Ecography, 2025(3), Article e07246. https://doi.org/10.1111/ecog.07246 -
Linssen, H., Lameris, T. K., Boom, M. P., Nuijten, R. J. M., Buitendijk, N. H., Dokter, A. M., Ebbinge, B. S., Eichhorn, G., Geisler, J., Haitjema, T., Kölzsch, A., Kruckenberg, H., Leyrer, J., Madsen, J., Mitchell, C., Moonen, S., Müskens, G. J. D. M., Schreven, K. H. T., Vergin, L., ... Nolet, B. A. (2025). Scope for waterfowl to speed up migration to a warming Arctic. Nature Climate Change, 15(10), 1107–1114. https://doi.org/10.1038/s41558-025-02419-6 -
de Vries, E. H. J., Boom, M. P., Nolet, B. A., Jongejans, E., & van der Jeugd, H. P. (2025). Long-distance dispersal is asymmetrical with respect to age, sex and breeding latitude in a long-lived monogamous bird. Journal of Animal Ecology, 94(11), 2322-2337. https://doi.org/10.1111/1365-2656.70133 -
Boom, M. P., Yu, H., Bom, R. A., Hegemann, A., Lindström, Å., Nolet, B. A., & Lameris, T. K. (2024). Migrating shorebird killed by raptor at 3000 m above ground as revealed by high-resolution tracking. Ecology, 105(11), Article e4437. https://doi.org/10.1002/ecy.4437 -
Boom, M. P., Lameris, T. K., Schreven, K. H. T., Buitendijk, N. H., Moonen, S., De Vries, P. P., Zaynagutdinova, E., Nolet, B. A., van der Jeugd, H. P., & Eichhorn, G. (2023). Year-round activity levels reveal diurnal foraging constraints in the annual cycle of migratory and non-migratory barnacle geese. Oecologia, 202(2), 287-298. https://doi.org/10.1007/s00442-023-05386-x -
Lameris, T. K., Pokrovskaya, O. B., Kondratyev, A. V., Anisimov, Y. A., Buitendijk, N. H., Glazov, P. M., van der Jeugd, H. P., Kampichler, C., Kruckenberg, H., Litvin, K. E., Loshchagina, J. A., Moonen, S., Müskens, G. J. D., Nolet, B. A., Schreven, K. H. T., Sierdsema, H., Zaynagutdinova, E. M., & Boom, M. P. (2023). Barnacle geese Branta leucopsis breeding on Novaya Zemlya: current distribution and population size estimated from tracking data. Polar Biology, 46, 67–76. https://doi.org/10.1007/s00300-022-03110-8 -
Boom, M. P., Schreven, KH. T., Buitendijk, N. H., Moonen, S., Nolet, B. A., Eichhorn, G., van der Jeugd, H. P., & Lameris, T. K. (2023). Earlier springs increase goose breeding propensity and nesting success at Arctic but not at temperate latitudes. Journal of Animal Ecology, 92(12), 2399-2411. https://doi.org/10.1111/1365-2656.14020
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