2626991 F6MU4YF5 1 universite-de-sherbrooke-departement-de-geomatique 50 date desc 1 title 1916 https://grimp.ca/wp-content/plugins/zotpress/
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Meloche, F., Guillet, L., Gauthier, F., Langlois, A. et Gaume, J. (2025) Influence of slab depth spatial variability on skier-triggering probability and avalanche size. Annals of Glaciology, vol. 65, p. e13.
Saulnier-Talbot, É., Duchesne, É., Antoniades, D., Arseneault, D., Barnard, C., Berteaux, D., Bhiry, N., Bouchard, F., Boudreau, S., Cazelles, K., Comte, J., Corbeil-Robitaille, M.-Z., Côté, S. D., Couture, R.-M., De Lafontaine, G., Domine, F., Fauteux, D., Fortier, D., Garneau, M., Gauthier, G., Gravel, D., Laurion, I., Lavoie, M., Lecomte, N., Legagneux, P., Lévesque, E., Naud, M.-J., Paquette, M., Payette, S., Pienitz, R., Rautio, M., Roy, A., Royer, A., Simard, M., Vincent, W. F. et Bêty, J. (2024) Expert elicitation of state shifts and divergent sensitivities to climate warming across northern ecosystems. Communications Earth & Environment, vol. 5, n°1, p. 624.
Meloche, F., Gauthier, F. et Langlois, A. (2024) Snow mechanical property variability at the slope scale – implication for snow mechanical modelling. The Cryosphere, vol. 18, n°3, p. 1359‑1380.
Hughes‐Allen, L., Bouchard, F., Biskaborn, B. K., Cardelli, S., Subetto, D. A., Laffont, L. et Sonke, J. E. (2024) A 14,000‐Year Sediment Record of Mercury Accumulation and Isotopic Signatures From Lake Malaya Chabyda (Siberia). Journal of Geophysical Research: Biogeosciences, vol. 129, n°10, p. e2023JG007863.
Sasseville, V., Langlois, A., Brucker, L. et Johnson, C. A. (2024) Patterns and Trend Analysis of Rain-on-Snow Events using Passive Microwave Satellite Data over the Canadian Arctic Archipelago Since 1987. Journal of Hydrometeorology, vol. 25, n°2, p. 311‑324.
Bouchard, F. et Sjöberg, Y. (2024) Frozen-Ground Cartoons—Revealing the Invisible Ice. In A. Hemkendreis et A.-S. Jürgens (dir.), Communicating Ice through Popular Art and Aesthetics (p. 219‑233). Cham : Springer International Publishing.
Meloche, J., Royer, A., Roy, A., Langlois, A. et Picard, G. (2024) Improvement of Polar Snow Microwave Brightness Temperature Simulations for Dense Wind Slab and Large Grain. IEEE Transactions on Geoscience and Remote Sensing, vol. 62, p. 1‑10.
Saros, J. E., Arp, C. D., Bouchard, F., Comte, J., Couture, R.-M., Dean, J. F., Lafrenière, M., MacIntyre, S., McGowan, S., Rautio, M., Prater, C., Tank, S. E., Walvoord, M., Wickland, K. P., Antoniades, D., Ayala-Borda, P., Canario, J., Drake, T. W., Folhas, D., Hazuková, V., Kivilä, H., Klanten, Y., Lamoureux, S., Laurion, I., Pilla, R. M., Vonk, J. E., Zolkos, S. et Vincent, W. F. (2023) Sentinel responses of Arctic freshwater systems to climate: linkages, evidence, and a roadmap for future research. Arctic Science, vol. 9, n°2, p. 356‑392.
Vincent, W. F., Boike, J., Buschman, V. R., Bouchard, F., Zolkos, S., Henry, G. H. R., Wolfe, B. B. et Canário, J. (2023) Terrestrial geosystems, ecosystems, and human systems in the fast-changing Arctic: research themes and connections to the Arctic Ocean. Arctic Science, vol. 9, n°2, p. 258‑265.
Léger, E., Saintenoy, A., Grenier, C., Séjourné, A., Pohl, E., Bouchard, F., Pessel, M., Bazhin, K., Danilov, K., Costard, F., Mugler, C., Fedorov, A., Khristoforov, I. et Konstantinov, P. (2023) Comparing Thermal Regime Stages along a Small Yakutian Fluvial Valley with Point Scale Measurements, Thermal Modeling, and Near Surface Geophysics. Remote Sensing, vol. 15, n°10, p. 2524.
Hughes-Allen, L., Bouchard, F., Séjourné, A., Fougeron, G. et Léger, E. (2023) Automated Identification of Thermokarst Lakes Using Machine Learning in the Ice-Rich Permafrost Landscape of Central Yakutia (Eastern Siberia). Remote Sensing, vol. 15, n°5, p. 1226.
Sjöberg, Y., Bouchard, F., Gartler, S., Bartsch, A. et Zona, D. (2023) Focus on Arctic change: transdisciplinary research and communication. Environmental Research Letters, vol. 18, n°1, p. 010201.
Kramer, D., Langlois, A., Royer, A., Madore, J.-B., King, J., McLennan, D. et Boisvert-Vigneault, É. (2023) Assessment of Arctic snow stratigraphy and water equivalent using a portable Frequency Modulated Continuous Wave RADAR. Cold Regions Science and Technology, vol. 205, p. 103683.
Coulombe, S., Fortier, D., Bouchard, F., Paquette, M., Charbonneau, S., Lacelle, D., Laurion, I. et Pienitz, R. (2022) Contrasted geomorphological and limnological properties of thermokarst lakes formed in buried glacier ice and ice-wedge polygon terrain. The Cryosphere, vol. 16, n°7, p. 2837‑2857.
Bouchard, F., Fritz, M. et Sjöberg, Y. (2022) Redrawing permafrost outreach. Nature Reviews Earth & Environment, vol. 3, n°1, p. 7‑7.
Meloche, J., Langlois, A., Rutter, N., McLennan, D., Royer, A., Billecocq, P. et Ponomarenko, S. (2022) High‐resolution snow depth prediction using Random Forest algorithm with topographic parameters: A case study in the Greiner watershed, Nunavut. Hydrological Processes, vol. 36, n°3.
Costard, F., Gautier, E., Konstantinov, P., Bouchard, F., Séjourné, A., Dupeyrat, L. et Fedorov, A. (2022) Thermal regime variability of islands in the Lena River near Yakutsk, eastern Siberia. Permafrost and Periglacial Processes, vol. 33, n°1, p. 18‑31.
Madore, J.-B., Fierz, C. et Langlois, A. (2022) Investigation into percolation and liquid water content in a multi-layered snow model for wet snow instabilities in Glacier National Park, Canada. Frontiers in Earth Science, vol. 10, p. 898980.
Laliberté, J., Langlois, A., Royer, a, Madore, J.-B. et Gauthier, F. (2022) Retrieving dry snow stratigraphy using a versatile low-cost frequency modulated continuous wave (FMCW) K-band radar. Physical Geography, vol. 43, n°3, p. 308‑332.
Voglimacci-Stephanopoli, J., Wendleder, A., Lantuit, H., Langlois, A., Stettner, S., Schmitt, A., Dedieu, J.-P., Roth, A. et Royer, A. (2022) Potential of X-band polarimetric synthetic aperture radar co-polar phase difference for arctic snow depth estimation. The Cryosphere, vol. 16, n°6, p. 2163‑2181.
Martineau, C., Langlois, A., Gouttevin, I., Neave, E. et Johnson, C. A. (2022) Improving Peary Caribou Presence Predictions in MaxEnt Using Spatialized Snow Simulations. ARCTIC, vol. 75, n°1, p. 55‑71.
Meloche, J., Langlois, A., Rutter, N., Royer, A., King, J., Walker, B., Marsh, P. et Wilcox, E. J. (2022) Characterizing tundra snow sub-pixel variability to improve brightness temperature estimation in satellite SWE retrievals. The Cryosphere, vol. 16, n°1, p. 87‑101.
Hughes-Allen, L., Bouchard, F., Hatté, C., Meyer, H., Pestryakova, L. A., Diekmann, B., Subetto, D. A. et Biskaborn, B. K. (2021) 14,000-year Carbon Accumulation Dynamics in a Siberian Lake Reveal Catchment and Lake Productivity Changes. Frontiers in Earth Science, vol. 9, p. 710257.
Costard, F., Dupeyrat, L., Séjourné, A., Bouchard, F., Fedorov, A. et Saint‐Bézar, B. (2021) Retrogressive Thaw Slumps on Ice‐Rich Permafrost Under Degradation: Results From a Large‐Scale Laboratory Simulation. Geophysical Research Letters, vol. 48, n°1, p. e2020GL091070.
Prėskienis, V., Laurion, I., Bouchard, F., Douglas, P. M. J., Billett, M. F., Fortier, D. et Xu, X. (2021) Seasonal patterns in greenhouse gas emissions from lakes and ponds in a High Arctic polygonal landscape. Limnology and Oceanography, vol. 66, n°S1.
Hughes‐Allen, L., Bouchard, F., Laurion, I., Séjourné, A., Marlin, C., Hatté, C., Costard, F., Fedorov, A. et Desyatkin, A. (2021) Seasonal patterns in greenhouse gas emissions from thermokarst lakes in Central Yakutia (Eastern Siberia). Limnology and Oceanography, vol. 66, n°S1.
Royer, A., Roy, A., Jutras, S. et Langlois, A. (2021) Review article: Performance assessment of radiation-based field sensors for monitoring the water equivalent of snow cover (SWE). The Cryosphere, vol. 15, n°11, p. 5079‑5098.
Royer, A., Domine, F., Roy, A., Langlois, A., Marchand, N. et Davesne, G. (2021) New northern snowpack classification linked to vegetation cover on a latitudinal mega-transect across northeastern Canada. Écoscience, vol. 28, n°3‑4, p. 225‑242.
Levasseur, S., Brown, K., Langlois, A. et McLennan, D. (2021) Measurement of Snow Physical Properties and Stable Isotope Variations in the Canadian Sub-Arctic and Arctic Snowpack. Atmosphere-Ocean, vol. 59, n°3, p. 137‑151.
Meloche, J., Royer, A., Langlois, A., Rutter, N. et Sasseville, V. (2021) Improvement of microwave emissivity parameterization of frozen Arctic soils using roughness measurements derived from photogrammetry. International Journal of Digital Earth, vol. 14, n°10, p. 1380‑1396.
Royer, A., Picard, G., Vargel, C., Langlois, A., Gouttevin, I. et Dumont, M. (2021) Improved Simulation of Arctic Circumpolar Land Area Snow Properties and Soil Temperatures. Frontiers in Earth Science, vol. 9, p. 685140.
Letcher, T., Vuyovich, C., Langlois, A. et Roy, A. (2021) Understanding Uncertainty of Snow Radiative Transfer Modeling Within a Mixed Deciduous and Evergreen Forest. IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing, vol. 14, p. 8225‑8235.
Holtzman, N. M., Anderegg, L. D. L., Kraatz, S., Mavrovic, A., Sonnentag, O., Pappas, C., Cosh, M. H., Langlois, A., Lakhankar, T., Tesser, D., Steiner, N., Colliander, A., Roy, A. et Konings, A. G. (2021) L-band vegetation optical depth as an indicator of plant water potential in a temperate deciduous forest stand. Biogeosciences, vol. 18, n°2, p. 739‑753.
Bouchard, F., Fortier, D., Paquette, M., Boucher, V., Pienitz, R. et Laurion, I. (2020) Thermokarst lake inception and development in syngenetic ice-wedge polygon terrain during a cooling climatic trend, Bylot Island (Nunavut), eastern Canadian Arctic. The Cryosphere, vol. 14, n°8, p. 2607‑2627.
Sjöberg, Y., Siewert, M. B., Rudy, A. C. A., Paquette, M., Bouchard, F., Malenfant‐Lepage, J. et Fritz, M. (2020) Hot trends and impact in permafrost science. Permafrost and Periglacial Processes, vol. 31, n°4, p. 461‑471.
Vargel, C., Royer, A., St-Jean-Rondeau, O., Picard, G., Roy, A., Sasseville, V. et Langlois, A. (2020) Arctic and subarctic snow microstructure analysis for microwave brightness temperature simulations. Remote Sensing of Environment, vol. 242, p. 111754.
Roy, A., Toose, P., Mavrovic, A., Pappas, C., Royer, A., Derksen, C., Berg, A., Rowlandson, T., El-Amine, M., Barr, A., Black, A., Langlois, A. et Sonnentag, O. (2020) L-Band response to freeze/thaw in a boreal forest stand from ground- and tower-based radiometer observations. Remote Sensing of Environment, vol. 237, p. 111542.
Mavrovic, A., Madore, J.-B., Langlois, A., Royer, A. et Roy, A. (2020) Snow liquid water content measurement using an open-ended coaxial probe (OECP). Cold Regions Science and Technology, vol. 171, p. 102958.
Langlois, A., Royer, A., Montpetit, B., Roy, A. et Durocher, M. (2020) Presenting Snow Grain Size and Shape Distributions in Northern Canada Using a New Photographic Device Allowing 2D and 3D Representation of Snow Grains. Frontiers in Earth Science, vol. 7, p. 347.
Pomerleau, P., Royer, A., Langlois, A., Cliche, P., Courtemanche, B., Madore, J.-B., Picard, G. et Lefebvre, É. (2020) Low Cost and Compact FMCW 24 GHz Radar Applications for Snowpack and Ice Thickness Measurements. Sensors, vol. 20, n°14, p. 3909.
Kaluskar, S., Blukacz‐Richards, E. A., Johnson, C. A., He, Y., Langlois, A., Kim, D. et Arhonditsis, G. (2019) Development of a model ensemble to predict Peary caribou populations in the Canadian Arctic Archipelago. Ecosphere, vol. 10, n°12.
Prince, M., Roy, A., Royer, A. et Langlois, A. (2019) Timing and spatial variability of fall soil freezing in boreal forest and its effect on SMAP L-band radiometer measurements. Remote Sensing of Environment, vol. 231, p. 111230.
Domine, F., Picard, G., Morin, S., Barrere, M., Madore, J.-B. et Langlois, A. (2019) Major Issues in Simulating Some Arctic Snowpack Properties Using Current Detailed Snow Physics Models: Consequences for the Thermal Regime and Water Budget of Permafrost. Journal of Advances in Modeling Earth Systems, vol. 11, n°1, p. 34‑44.
Kramer, D., Meloche, J., Langlois, A., McLennan, D., Chapdelaine, B., Gauthier Barrette, C., Royer, A. et Cliche, P. (2019) Designing a Do-It-Yourself Unmanned aerial Vehicle for Arctic research purposes and proving its capabilities by retrieving snow depth via structure-from-motion. Aqhaliat 2019, Polar Knowledge Canada, p. 43‑62.
King, J., Derksen, C., Toose, P., Langlois, A., Larsen, C., Lemmetyinen, J., Marsh, P., Montpetit, B., Roy, A., Rutter, N. et Sturm, M. (2018) The influence of snow microstructure on dual-frequency radar measurements in a tundra environment. Remote Sensing of Environment, vol. 215, p. 242‑254.
Montpetit, B., Royer, A., Roy, A. et Langlois, A. (2018) In-situ passive microwave emission model parameterization of sub-arctic frozen organic soils. Remote Sensing of Environment, vol. 205, p. 112‑118.
Lyu, H., McColl, K. A., Li, X., Derksen, C., Berg, A., Black, T. A., Euskirchen, E., Loranty, M., Pulliainen, J., Rautiainen, K., Rowlandson, T., Roy, A., Royer, A., Langlois, A., Stephens, J., Lu, H. et Entekhabi, D. (2018) Validation of the SMAP freeze/thaw product using categorical triple collocation. Remote Sensing of Environment, vol. 205, p. 329‑337.
Marchand, N., Royer, A., Krinner, G., Roy, A., Langlois, A. et Vargel, C. (2018) Snow-Covered Soil Temperature Retrieval in Canadian Arctic Permafrost Areas, Using a Land Surface Scheme Informed with Satellite Remote Sensing Data. Remote Sensing, vol. 10, n°11, p. 1703.

2023

  1. Madore, J.-B., Vionnet, V. Khedhaouiria, D., Wagneur, N., Durant, W., and Langlois A. 2023. Improved Snowfall Estimation in support of Avalanche Hazard Assessment Deterministic Precipitation Analysis (RDPA – CaPA) in support of Avalanche Hazard Assessment. Canadian Avalanche Association Spring meeting, Penticton, British-Columbia, May 1-4 2023.
  2. Kramer, D. (2023). Multidisciplinary Observatory for Arctic Climate Change and Extreme Events Monitoring (MOACC). Eastern Snow Conference. 6.-8. June 2023, Easton, PA, USA
  3. Madore, J.-B., Vionnet, V. Khedhaouiria, D., Wagneur, N., Durant, W., and Langlois A. 2023. Towards improved snowfall estimations in the Canadian mountains in support of avalanche hazard assessment. International Snow Science Workshop, Bend, Oregon, October 9-15 2023.

2022

  1. Billecocq, P., Langlois, A., Madore, J.-B. and Montpetit, B. 2022. Subgridding a high-resolution numerical weather forecast for local snow modelling in a remote-sensing perspective, International Symposium on Snow, Davos, Switzerland, 25-30 september.
  2. Joyeux, A., Bouchard, F., Langlois, A., 2023. Dynamique des étendues d’eau dans la région de Cambridge Bay, NU, dans le contexte des divers paysages de pergélisol canadien entre 1984 et 2018, Rimouski, Québec, Canada, 16-17 février 2023.
  3. Groulx-Maurer, E., Langlois, A. 2023. Amélioration des simulations de densité du couvert neigeux par SNOWPACK pour l’évaluation des conditions de forage du caribou de Peary dans l’Archipel arctique canadien. Colloque annuel du Centre d’étude Nordique, Rimouski, Québec, CA, 16-17 février.
  4. Durand, W., Langlois, A and Madore, J.-B. 2022. Forcing the snow cover model SNOWPACK with CaPA precipitation data for avalanche risk assessment, International Symposium on Snow, Davos, Switzerland, 25-30 september.
  5. Durand, W., Langlois, A and Madore, J.-B. 2023. Simulations du couvert neigeux par le modèle SNOWPACK forcé avec des données de précipitations CaPA dans une optique d’évaluation du risque d’avalanche, Rimouski, Canada, 16-17 février.
  6. Madore, J.-B. and Langlois, A. 2022. Detection and evaluation of snow surface properties with a 24GhZ FMCW radar. International symposium on snow, Davos Switzerland. International Glaciological Society.
  7. Boisvert-Vigneault, A. Langlois, D. Kramer, J.-B. Madore, 2022. Évaluation de la densité de surface et de la variabilité spatiale du couvert nival arctique à l’aide d’un radar à onde modulée en fréquence (FMCW). Journée du CARTEL, Université de Sherbrooke, Sherbrooke, Québec, 15 juin.
  8. Boisvert-Vigneault, A. Langlois, D. Kramer, J.-B. Madore, 2023. Évaluation de la densité de surface et de la variabilité spatiale du couvert nival arctique à l’aide d’un radar à onde modulée en fréquence (FMCW). Colloque du Centre d’études nordiques, Université du Québec à Rimouski, Rimouski, Québec, 16-17 février.
  9. Hamel Jomphe, E.; Lévesque, E.; Johnson C.A.; Bayle, A.; Langlois, A. et Roy, A. 2023. Suivi du verdissement dans l’Archipel Arctique Canadien par Télédétection du NDVI. Conférence annuelle du Centre d’étude Nordique, Rimouski,Québec, 17-18 février.
  10. Meloche, F., Gauthier, F. et Langlois, A. (2022). Snow mechanical spatial variation at the slope, implication for snow stability assessment and snow cover modeling. European Geophysical Union general assembly, Vienna, Austria, 23-27 Mai 2022.
  11. Meloche, F., Gaume, J., Guillet, L., Gauthier, F. et Langlois, A. (2022). Influence of slab depth spatial variability on skier triggering probability and avalanche size, International Symposium on Snow, Davos, Suisse. 25-30 septembre 2022.
  12. Meloche, F., Gaume, J., Guillet, L., Gauthier, F. et Langlois, A. (2022). Influence of slab depth spatial variability on skier triggering probability and avalanche size, Colorado Snow and Avalanche Workshop, Boulder, Colorado. 7 octobre 2022.
  13. Meloche, J., Sandells, M., Rutter, N., Löwe, H., Picard, G., Langlois, A. & Essery, R., Altimetric Ku-band radar waveform simulations over sea ice with the Snow Microwave Radiative Transfer model (SMRT). IGS International Snow Symposium, Davos, Switzerland, 2022.
  14. Rolland, A., Langlois, A. and Madore, J.-B. 2022. Analysis of the spatial and temporal variability of snowpack stratigraphy using a 24 GHz FMCW radar in an avalanche context, International Symposium on Snow, Davos, Switzerland, 25-30 september.
  15. Rolland, A., Langlois, A. et Madore, J.-B. 2023. Analyse de la variabilité spatio-temporelle de la stratigraphie du manteau neigeux à l’aide d’un radar FMCW de 24 GHz en contexte avalancheux, Colloque annuel du Centre d’Études nordiques, Rimouski, Canada, 16-17 février.

2021

  1. Gautier, C., Langlois, A., Johnson C. A. and Sasseville, V. 2021. Étude des mouvements saisonniers du caribou de Peary (Rangifer tarandus pearyi) sur la glace de mer et les îles de l’Archipel Arctique Canadien, à l’aide d’un modèle thermodynamique de neige et des connaissances traditionnelles. Centre d’études nordiques, conférence annuelle, Février 2021.
  2. Crevier, C., Langlois, A., Roy, A. and Derksen, C. 2021. Détection du gel/dégel du sol en Arctique à partir d’imageries radar à synthèse d’ouverture (RSO) multicapteur en bande C. Centre d’études nordiques, conférence annuelle, Février 2021.
  3. Holtzman, N., Anderegg, L.D.L., Kraatz, S., Mavrovic, A., Sonnentag, O., Pappas, C., Cosh, M.H., Langlois, a., Lakhankar, T., Tesser, D., Steiner, N., Colliander, A., Roy, A. and Konings, G. 2021. L-band vegetation optical depth as an indicator of plant water potential in a temperate deciduous forest stand. European Geosciences Union, April 2021.
  4. Crevier, C., Langlois, A., Roy, A. and Derksen, C. 2021. Freeze/thaw detection in arctic environment from multisensor C-band SAR time series. 42nd Canadian Symposium on Remote Sensing, June 2021.
  5. Billecocq, P., Madore, J.-B., Wendleder, A., Montpetit, B. and Langlois, A. 2021. A multi-frequency SAR polarimetric analysis of British Columbia seasonal snowpack. 42nd Canadian Symposium on Remote Sensing, June 2021.
  6. Sasseville, V., Langlois, A. and Brucker, L. 2021. Patterns and trend analysis of rain-on-snow events using passive microwave satellite data over the Canadian Arctic Archipelago since 1979. 42nd Canadian Symposium on Remote Sensing, June 2021.
  7. Voglimacci CSRS2021

2020

  1. Meloche, J., Royer, A., Langlois, a. Rutter, N. and Sasseville, V. 2020. Improvement of microwave emissivity of frozen Arctic soils using roughness measurements derived from automated computer vision photogrammetry. American Geophysical Union, December 2020.
  2. Gautier, C., Langlois, A., Johnson, C.-A., Sasseville, V. 2020. Study of seasonal movements of Peary caribou (Rangifer tarandus pearyi) on sea-ice and islands of the Canadian Arctic Archipelago, using a thermodynamic model of snow and traditional Inuit knowledge, Arctic Change 2020, December 2020.
  3. Gautier, C., Langlois, A., Johnson, C.-A., Sasseville, V., Neave, E. 2020. Study of habitat quality along Peary caribou’s migratory routes, using a thermodynamic snow model and indigenous knowledge (IK). Annual meeting: Centre d’études nordiques, Montréal, Québec, February 13-14th, 2020.
  4. Voglimacci-Stephanopoli, J., Langlois, A., Lantuit, H.,Sasseville, V., Wendleder, A., and Stettner, S., 2019. Deriving Snow State Variables Mapping Approach Using Radar Satellite Observations and Multisource In-Situ Data. TerraSAR-X / TanDEM-X Science Team Meeting, Oberpfaffenhofen, Germany October 21 – 24th, 2019.
  5. Voglimacci-Stephanopoli, J., Langlois, A., Lantuit, H.,Sasseville, V., Wendleder, A., and Stettner, S., 2020. Caractérisation de l’état du couvert nival arctique à haute résolution au moyen de TerraSAR-X (bande X): étude du cas Qikitaruk-Herschel (Yukon). Annual meeting: Centre d’études nordiques, Montréal, Québec, February 13-14th, 2020.
  6. Sasseville, V., Gautier, C., Langlois, A., Théau, J and Johnson, C-A. 2020. Implementation of a habitat quality index for the Peary caribou using snow geophysical properties retrived from satellite remote sensing and modeling. Annual meeting: Centre d’études nordiques, Montréal, Québec, February 13-14th, 2020.
  7. Blanchette, A., Madore, J.B., Langlois, A. and Billecocq, P. 2020. Sensibilité du  modèle  SNOWPACK  à  la  paramétrisation  de  la  phase  de  précipitation  dans  un contexte de stabilité du couvert nival. Annual meeting: Centre d’études nordiques, Montréal, Québec, February 13-14th, 2020.
  8. Mavrovic, A., Roy, A., Lemmetyinen, J., Langlois, A. and Sonnentag, O. 2020. Suivi des flux de carbone hivernaux en régions arctiques par télédétection. Annual meeting: Centre d’études nordiques, Montréal, Québec, February 13-14th, 2020.

2019

  1. Kramer, D., Meloche, J., Langlois, A., Royer, A., Cliché, P. and McLennan, D. Describing Arctic snow and ice with a small Ka-band radar. Eastern Snow Conference, Lake Morey, VT, June 2019.
  2. Couture, G., Langlois, A., Howell, S. and Montpetit, B. Spatiotemporal polynya formation trends in the Canadian Arctic Archipelago using sea ice charts from 1968 onwards. Eastern Snow Conference, Lake Morey, VT, June 2019.
  3. Meloche, J., Kramer, D., Langlois, A. and Royer, A. High resolution snow depth mapping with Unmanned Aerial Vehicle (UAV) using Structure-from-Motion (SfM) and kinematic dGPS: Comparison of two methods for arctic application. Eastern Snow Conference, Lake Morey, VT, June 2019.
  4. Holtzman, N., Anderegg, L.D., Kraatz, S., Mavrovic, A., Roy, A., Sonnentag, O., Pappas, C., Cosh, M.H., Steiner, N., Langlois, A., Lakhankar, T., Colliander, A., and Konings, A.G. 2019. Microwave Radiometry for Remote Sensing of Plant Water Status Dynamics: Stand-Scale Evaluation in a Temperate Deciduous Forest. American Geophysical Union, San Francisco, USA, December 9-13 2019.
  5. Langlois, A., Johnson, C.-A., Dolant, C., Martineau, C., Brucker, L. and Royer, A. 2019. An Overview of Monitoring Winter Extreme Events using Remote Sensing and Modeling in the Arctic: an Ecological Perspective for Ungulates Habitat Characterization. American Geophysical Union, San Francisco, USA, December 9-13 2019.

2018

  1. Langlois, A., Dolant, C., Montpetit, B., Brucker, L., Roy, A. and Royer, A. 2018. Changing Arctic Snow Cover: Rain-on-Snow and Ice Layer Detection. International Symposium on Cryosphere and Biosphere. Kyoto, Japan, March 14-19 2018.
  2. Royer, A., Larue, F., Vargel, C., Roy, A., Langlois, A., Vionnet, V., Picard, G. and Cosme, E. 2018. Improved subarctic and arctic SWE retrieval using passive microwave over Canada. POLAR 2018, Davos, Switzerland, June 2018.
  3. Kramer, D., Langlois, A., Royer, A. and McLennan, D. 2018. Retrieving ice parameters with a UAV-mounted RADAR. POLAR 2018, Davos, Switzerland, June 2018.
  4. Vuyovich, C., Langlois, A., Roy, A., Letcher, t., Jacobs, J., Parno, J., Kraatz, S., Courville, Z. and Cho, E. 2018 Hubbard Brook Field Experiment: Snow observations in a north-eastern U.S. forested region. Eastern Snow Conference, College Park, Maryland, USA, June 2018.
  5. Letcher, T., Vuyovich, C., Langlois, A. and Roy, A. 2018. Improving the understanding and uncertainty of snow radiative transfer modeling using snowpack information of varying complexity. Eastern Snow Conference, College Park, Maryland, USA, June 2018.
  6. Roy, A., Langlois, A., Dolant, C., Brucker, L. and Royer, A. 2018. SnowEx 2017 In-situ passive microwave measurements: analysis of wet snow microwave emission. International Geoscience and Remote Sensing Symposium, Valencia, Spain, July 2018.
  7. Brucker, L. et al. 2018. NASA SnowEx’17 in-situ measurements and ground-based remote sensing. International Geoscience and Remote Sensing Symposium, Valencia, Spain, July 2018.
  8. Roy, A., Langlois, A., Dolant, C., Brucker, L. and Royer, A. 2018. SnowEx 2017 In-situ passive microwave measurements: Analysis of wet snow microwave emission. 75th Eastern Snow Conference, Washington, June 2018.
  9. Couture, G., Langlois, A., Howell, S. and Montpetit, B. 2018. Development of a polynya climatology in the Canadian Arctic Archipelago using RADARSAT imagery from 1997 to 2018. ArcticNet Annual Meeting, Ottawa, December 2018.
  10. Gautier, C., Langlois, A., Johnson, C.-A. and Martineau, C. 2018. Study of habitat quality and migratory patterns of Peary caribou (Rangifer tarandus pearyi) using a thermodynamic model of snow and traditional knowledge. ArcticNet Annual Meeting, Ottawa, December 2018.
  11. Kramer, D., Meloche, J., Langlois, A. and McLennan, D. 2018. Developing a low-cost DIY unmanned-aerial-vehicle (UAV) for arctic snow and ice monitoring. ArcticNet Annual Meeting, Ottawa, December 2018.
  12. Levasseur, S., Langlois, A. and Brown, K. 2018. Modeling snowmelt runoff and analysis of its impact on geochemical elements transport in the Arctic. ArcticNet Annual Meeting, Ottawa, December 2018.
  13. Meloche, J., Kramer, D. and Langlois, A. 2018. High resolution mapping of snow depth using UAS and kinematic dGPS in the Canadian Arctic. ArcticNet Annual Meeting, Ottawa, December 2018.
  14. Sasseville, V., Langlois, A., Théau, J. and Royer, A. 2018. Implementation of a habitat quality index for the Peary caribou using snow geophysical properties retrieved from satellite remote sensing and modeling. ArcticNet Annual Meeting, Ottawa, December 2018.
  15. Voglimacci, J., Langlois, A. and Lantuit, H. 2018. Development of a snow depth mapping approach using radar satellite data and multisource in-situ data. ArcticNet Annual Meeting, Ottawa, December 2018.
  16. Madore, J.-B., Mavrovic, A., Langlois, A., Laliberté, J. and Royer, A. 2018. Testing and comparing a new 1.2 GHz coaxial sensor for liquid water content in snow. International Snow Science Workshop, Innsbruck, Austria, October 2018.
  17. Laliberté, J., Langlois, A., Royer, A., Madore, J.-B. and Gauthier, F. 2018. Retrieving snow stratigraphic information using a frequency modulated continuous wave (FMCW) Ka-band radar. International Snow Science Workshop, Innsbruck, Austria, October 2018.

2017

  1. Langlois, A., Roy, A., Derksen, C.., Lundquist, J., Marsh, P., Kelly, R., Pomeroy, J., Royer, A., Belair, S., Garnaud, C., Carrera, M. and Brucker, L. 2017. Overview of SnowEx 2017 in-situ passive microwave measurements : a context for SWE assimilation. SnowEx scientific meeting, Longmont, CO, August 2017.
  2. Dolant, C., Langlois, A., Brucker, L., Royer, A., Roy, A. and Montpetit, B. 2017. Detection and evolution of rain-on-snow events in the Canadian Arctic Archipelago using passive microwave radiometry. Eastern Snow conference, Ottawa, ON, June 2017.
  3. Madore, J.-B., Langlois, A., Van Wierts, S., and Borghini, S. 2017. Identification of snow accumulation zones and cornices using LiDAR Unmanned Aerial Vehicles (UAVs) in an avalanche forecasting context: A case study. Eastern Snow conference, Ottawa, ON, June 2017.
  4. Kramer, D. and Langlois, A. 2017. Snow Depth retrieval via Unmanned Aerial Vehicles (UAV). Eastern Snow conference, Ottawa, ON, June 2017.
  5. Martineau, C., Langlois, F., Johnson, C.-A., Neave, E. and Ouellet, F. 2017. Adaptation and validation of the SNOWPACK model to Arctic conditions. Eastern Snow conference, Ottawa, ON, June 2017.
  6. Dolant, C., Langlois, A., Brucker, L., Royer, A., Roy, A. and Montpetit, B. 2017. Meteorological inventory of rain-on-snow events and detection assessment in the canadian arctic archipelago using passive microwave radiometry. IEEE International Geoscience and Remote Sensing Symposium, Fort Worth, Texas, July 2017.
  7. Brucker, L., …, Langlois, A. and co-authors. 2017. A first overview of SnowEx ground-based remote sensing activities. IEEE International Geoscience and Remote Sensing Symposium, Fort Worth, Texas, July 2017.

2016

  1. Madore, J.-B. and Langlois, A. 2016. Evaluation of SNOWPACK metamorphism and microstructure in a Canadian context: A case study for snow stability assessment. International Snow Science Worksop, Breckenridge, CO, October 2016.
  2. Langlois, A. and the Snow school team. 2016. 2nd European Snow Science Winter School. Eastern Snow Conference, Columbus, OH, June 2016.
  3. Langlois, A., Johnson, C.-A., Montpetit, B., Royer, A., Richerds, A., Neave, E., Dolant, C., Roy, A., Arhonditis, g., Kim, D.K., Kaluskar, S. and Brucker, L. 2016. Detection of rain-on-snow (ROS) events and ice layer formation using passive microwave radiometry: A context for Peary caribou habitat in the Canadian Arctic. Eastern Snow Conference, Columbus, OH, June 2016.
  4. Langlois A., and the iSWGR Team. 2016. NASA (international) Snow Working Group for Remote Sensing: iSWGR. Eastern Snow Conference, Columbus, OH, June 2016.
  5. St-Jean Rondeau, O., Royer, A., Roy, A., Langlois, A. and Madore, J.-B. 2016. Parameterization of snow microstructure for passive microwave radiometry. Eastern Snow Conference, Columbus, OH, June 2016.
  6. Dolant C. 1, 2, Langlois A.1, 2, Brucker L.,3, 4, Montpetit B.5 and Royer A.1, 2. 2016. Detection of raon-on-snow events in the Canadian Arctic archipelago between 1980-2014 using passive microwave radiometry. Eastern Snow Conference, Columbus, OH, June 2016.
  7. Langlois, A., Royer, A., Montpetit, B. and Roy, A.2016. Snow grain size and shape distributions in northern Canada. American Geophysical union Fall meeting, San Francisco, CA, December 2016.
  8. Royer, A., Marchand, N., Ottlé, C., Krinner, G., Roy, A. and Langlois, A. 2016. Continuous ground surface temperature measurements over the Arctic: a key parameter for the monitoring of permafrost evolution. European Space Agency Earth Observation and Cryosphere Science, Prague, Czech Republic, May 2016.
  9. Larue, F., Royer, A., De Sève, D., Langlois, A., Roy, A. and St-Jean Rondeau, O. 2016. Simulations of a Canadian snowpack brightness temperatures using SURFEX-Crocus. European Geosciences Union Spring meeting, Vienna, Austria, April 2016.
  10. Roy, A., Toose, P., Derksen, c., Royer, A., Mavrovic, Berg, A., Arnold, L., Williamson, M., Rowlandson, T., Lemmetyinen, J., Langlois, A., Teltock, e. and Sonnentag, O. 2015. Analysis of L-band brightness temperatures response to freeze/thaw in two prairie environments from surface-based radiometer measurements. IEEE International Geoscience and Remote Sensing Symposium, Beijing, China, July 2016.

2015

  1. Papasodoro, C., Royer, A., Langlois, A. and Berthier, E. 2015. SAR RADARSAT-2 and optical Pléiades stereo imagery for monitoring the melt of Baffin Island ice caps (Nunavut, Canada). Eastern Snow Conference, Sherbrooke, Qc, June 2015.
  2. Ouellet, F., Langlois, A., Johnson, C.-A. and Richards, A. 2015. Spatialization of the SNOWPACK Snow Model in the Canadian Arctic for Peary Caribou Winter Grazing conditions assessment. Eastern Snow Conference, Sherbrooke, Qc, June 2015.
  3. Larue, F., Royer, A., De Sève, D., Lozac’h, L., Langlois, a., Roy, a. and Derksen, C. 2015. Preliminary validation analysis of the GlobSnow2 database over Eastern Canada.. Eastern Snow Conference, Sherbrooke, Qc, June 2015.
  4. Côté, K., Madore, J.-B. and Langlois, A. 2015. Assessing accuracy of simulated and spatialized snow profiles from SNOWPACK and Alpine3D driven by insitu and predicted meteorological data for avalanche forecasting in Canada. Eastern Snow Conference, Sherbrooke, Qc, June 2015.
  5. Madore, J.-B., Côté, K. and Langlois, A. 2015. Improvement of snow grain simulations from the multi-layered thermodynamic snow model SNOWPACK: implications to avalanche risk assessment. Eastern Snow Conference, Sherbrooke, Qc, June 2015.
  6. Busseau, B.-C., Royer, A. and Langlois, A. 2015. Analysis of the Interactions Between Snow and Shrub Ecosystem of the Taiga in Nunavik. Eastern Snow Conference, Sherbrooke, Qc, June 2015.
  7. Langlois, A., Dolant, C., Ouellet, F., Brucker, L., Richards, A., Johnson, c.-A. and Royer, a. 2015. Changing arctic snow cover : rain-on-snow detection and caribou grazing conditions in Canada. IEEE Geoscience and Remote Sensing Society meeting, Milan, Italy, July 2015.
  8. Roy, A., Toose, P., Derksen, C., Royer, A., Berg, a., Arnold, L., Willamson, M., Rowlandson, T., Langlois, A. and Tetlock, B. 2015. Response of L-band brightness temperatures to prairie soil and snow properties from surface-based radiometer measurements. IEEE Geoscience and Remote Sensing Society meeting, Milan, Italy, July 2015.
  9. Langlois, A., Côté, K. and Madore, J.-B. 2015. Improving snow stability prediction through improved microstructure simulations. Canadian Avalanche Association Spring meeting, Penticton, BC, May 2015.
  10. Ouellet, F., Langlois, A., Johnson, C.-A. and Richards, A. 2015. Spatialization of the SNOWPACK snow model in the Canadian Arctic for Peary caribou winter grazing conditions assessment. Canadian Meteorological and Oceanographic Society meeting, Whistler, BC, June 2015.
  11. Langlois, A., Royer, A., Roy, A., St-Jean Rondeau, O., Montpetit, B., Larue, F. and Dolant, C. 2015. Avancées dans l’étude de la télédétection micro-onde du couvert nival. Association Québécoise de Télédétection congress, Québec, QC, October 2015.
  12. Roy, A., Royer, A., Montpetit, B. and Langlois, A. 2015. Microwave snow emission modeling of boreal forest environments. . IEEE Geoscience and Remote Sensing Society meeting, Milan, Italy, July 2015.
  13. Langlois, A., Montpetit, B., Dolant, C., Brucker, L., Ouellet, F., Johnson, C.A., Richards, A., Roy, A. and Royer, A. 2015. Rain-on-snow and ice layer formation detection using passive microwave radiometry: An arctic perspective. American Geophysical Union Fall meeting, San Francisco, CA, December 2015.

2014

  1. Madore, J.-B., Côté, K. and Langlois, A. 2014. Improvement of snow grain simulations from the multi-layered thermodynamic snow model SNOWPACK : implications to avalanche risk assessment. International Snow Science Worksop, Banff, AB, Canada, October 2014.
  2. Côté, K., Madore, J.-B. and Langlois A. 2014. Evaluating the potential of using SNOWPACK and alpine-3D in three Canadian mountain climates. International Snow Science Worksop, Banff, AB, Canada, October 2014.
  3. Langlois, A. and the iSWGR team. 2014. NASA Snow Working Group – Remote Sensing (NASA SWGR). Eastern Snow Conference, Boone, NC, June 2014.
  4. Dolant, C., Langlois, A., Todorovic, V., Montpetit, B., Roy, A. and Royer, A. 2014. Detection of a rain-on-snow event (ROS) using an empirical algorithm using passive microwave radiometry. Eastern Snow Conference, Boone, NC, June 2014.
  5. Pachon, C., Langlois, A., Royer, A., Brown, R. and Harvey, R. 2014. Improvement of the parameterization of the precipitation phase in the CRCM4 from the Canadian Land Surface Scheme (CLASS 2.7 and 3.5) in Northern Québec, Canada. Eastern Snow Conference, Boone, NC, June 2014.
  6. Thériault, N., Royer, A., Langlois, A., Harvey, R. and Brown, R. 2014. Improving snow albedo simulations in arctic and subarctic regions with the Canadian LAnd Surface Scheme (CLASS). Eastern Snow Conference, Boone, NC, June 2014.
  7. Royer, A., Rodrigue, S. and Langlois, A. 2014. Analysis of the joint snow and ecosystem evolutions in Nunavik tundra and taiga areas (Québec Canada) over the last 35 years using satellite data. Arctic Change 2014, Ottawa, ON, December 2014.
  8. Royer, A., Montpetit, B. and Langlois, A. 2014. A Short-Wave Infrared Camera (SWIR cam) to retrieve the snow grain SSA and the snowpack stratigraphy. Intercomparison of Snow Grain Size Measurements Workshop. Davos, Switzerland, March 2014.
  9. Royer, A., Roy, A., Montpetit, B. and Langlois, A. 2014. Coupling the Canadian Land Surface Scheme to a microwave model to simulate the snow microwave brightness temperature under boreal forest. Workshop on Microstructure in Snow Microwave Radiative Transfer MICROSNOW, Reading, UK, August 2014.
  10. Brucker, L., Royer, A., Picard, G., Langlois, A. and fily, M. 2014. Simulation of Seasonal Snow Microwave TB Using Coupled Multi-Layered Snow Evolution and Microwave Emission Models. Workshop on Microstructure in Snow Microwave Radiative Transfer MICROSNOW, Reading, UK, August 2014.

2013

  1. Langlois, A. and Royer, A. 2013. Improving snow properties retrievals in thermodynamic snow models for satellite remote sensing. International Snow Science Workshop, Grenoble, France, October 2013.
  2. Langlois, A., Royer, A. and Montpetit, B. 2013. Seasonal measurements of snow physical and radiometric properties during rain-on-snow events (ROS) over Eastern Canada. IEEE Geoscience and Remote Sensing Society meeting, Melbourne, Australia, July 2013.
  3. Royer, A., Leconte, R., Langlois, A., Trudel, M. and Goita, K. 2013. Amélioration du suivi de l’équivalent en eau du couvert nival dans un contexte hydrologique par télédétection. RHQ2013, Québec, QC, février 2013.
  4. Royer, A., Langlois, A., Cliche, P., Marchand, N., Montpetit, B., Thériault, N., Roy, A., Lefebvre, E., Lesaffre, B., Picard, G. and Fily, M. Amélioration de la modélisation de l’émission micro-onde de la neige par un suivi saisonnier des propriétés radiométriques et in-situ de la neige à la Baie James, Québec. Association Québécoise de Télédétection congress, Rimouski, QC, September 2013.
  5. Langlois, A., Pachon, C., Montpetit, B., Royer, A. and Roy, A. Detection of a rain-on-snow event using passive microwaves: A case study. Eastern Snow Conference, Waterloo, ON, June 2013.

2012

  1. Langlois, A., Bergeron, J., Harvey, R., Brown, R., Derksen, C., and Royer, A.. 2012. Evaluating CRCM4 snow cover properties simulations from the Canadian Land Surface Scheme (CLASS 2.7 and 3.5) in Northern Québec, Canada. Eastern Snow Conference, Frost Valley, NY, June 2012.
  2. Montpetit B., Royer, A., Roy, A., Langlois, A. and Derksen, C. 2012. Snow microwave emission modeling of ice lenses within the snowpack using the Microwave Emission Model for Layered Snowpacks (MEMLS). Eastern Snow Conference, Frost Valley, NY, June 2012.
  3. Langlois, A., Bergeron, J., Harvey, R., Brown, R., Derksen, C., Frigon, A., Royer, A., Thériault, N., and Dupras-Tessier, O. 2012. Evaluating CRCM4 snow cover properties simulations from the Canadian Land Surface Scheme (CLASS 2.7 and 3.5) in Northern Québec, Canada. Ouranos Scientific Symposium, Montréal, QC, November 2012.
  4. Royer, A., Langlois, A., Derksen, C., Roy, A., Montpetit, B., Bergeron, J., Picard, G., Brucker, L., Arnaud, L. and Goïta, K. 2012. Improvements in snow monitoring using microwave space-based observations. International Polar Year Symposium, Québec, QC, April 2012.
  5. Langlois, A., Royer, A., Derksen, C., Montpetit, B., Dupont, F. and Goïta, K. 2012. Coupling of the snow thermodynamic model SNOWPACK with the Microwave Emission Model for Layered Snowpacks (MEMLS) for subarctic and arctic Snow Water Equivalent retrievals. American Geophysical Union Fall meeting, San Francisco, CA, December 2012.
  6. Langlois, A., Bergeron, J., Brown, R., Royer, A., Harvey, R., Wang, L., Derksen, C. 2012. Evaluating CRCM4 snow cover properties simulations from the Canadian Land Surface Scheme (CLASS 2.7 and 3.5) in Northern Québec, Canada. American Geophysical Union Fall meeting, San Francisco, CA, December 2012.
  7. Royer, A., Langlois, A., Derksen, C., Montpetit, B., Dupont, f. and goita, K. 2012. Coupling of the snow thermodynamic model SNOWPACK with the Microwave Emission Model for Layered Snowpacks (MEMLS) for subarctic and arctic Snow Water Equivalent retrievals. American Geophysical Union Fall meeting, San Francisco, CA, December 2012.

 

2626991 YHYZISPY Mémoire 1 universite-de-sherbrooke-departement-de-geomatique 50 date desc 1 title 1916 https://grimp.ca/wp-content/plugins/zotpress/
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Mavrovic, A. (2018) Caractérisation diélectrique micro-onde (1,4 GHz) des arbres et des sols. Université de Sherbrooke.

2626991 YHYZISPY Essai 1 universite-de-sherbrooke-departement-de-geomatique 50 date desc 1 title 1916 https://grimp.ca/wp-content/plugins/zotpress/
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Gagnon, W. (2018) L'adaptation des stations de ski face aux changements climatiques. Université de Sherbrooke.
Todorovic, V. (2013) Examining rain on snow from a passive microwave perspective : a case study. Université de Sherbrooke.

2626991 YHYZISPY Thèse 1 universite-de-sherbrooke-departement-de-geomatique 50 date desc 1 title 1916 https://grimp.ca/wp-content/plugins/zotpress/
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Meloche, F. (2024) Influence de la variabilité spatiale des propriétés mécaniques de la neige sur le déclenchement d'avalanche. Thèse de doctorat, Université du Québec à Rimouski, Rimouski.
Vargel, C. (2020) Caractérisation du manteau neigeux arctique, suivi climatique et télédétection micro-onde. Thèse de doctorat, Université de Sherbrooke, 156 p.
Roy, A. (2014) Modélisation de l'émission micro-onde hivernale en forêt boréale canadienne. Thèse de doctorat, Université de Sherbrooke, 222 p.

Authors Description
Kramer, D. (2023). GIS crash course (field data)
https://zenodo.org/records/8037586
Introduction to GIS (QGIS based).
Kramer, D., M. Jonassen, and S. Solem (2022). Mass Balance Game. Zenodo. https://doi.org/10.5281/zenodo.7997591 Video game on glacier mass balance calculations
Kramer, D., M. Jonassen, and S. Solem. (2022, July 25). iWalk on FROST – How to create a walkable map. Zenodo. https://doi.org/10.5281/zenodo.7997493 Tutorial, video, video game creation
Kramer, D. and M. Jonassen (2022, July 25). FROST – A video about the videos. Zenodo. https://doi.org/10.5281/zenodo.7997495 Tutorial, video, audio/video editing
Kramer, D. (2022, April 5). Svalbard Geology Game. Zenodo. https://doi.org/10.5281/zenodo.8033566 Video game on Svalbard’s geology

 

2023-05-16: How Drones, Video Games, and Virtual Reality Strengthen Arctic Research, interview with Alexandre Roy and Daniel Kramer by Meral Jamal.

2019-01-07: Univeristé de Sherbrooke group uses UAVs to measure Arctic Snow Cover, interview with Daniel Kramer.