Sanitary felling of Norway spruce due to spruce bark beetles in Slovenia: A model and projections for various climate change scenarios
暂无分享,去创建一个
Maja Jurc | Nikica Ogris | N. Ogris | M. Jurc
[1] H. Kromp-Kolb,et al. The sensitivity of Austrian forests to scenarios of climatic change: a large-scale risk assessment based on a modified gap model and forest inventory data , 2002 .
[2] B. Bentz,et al. TEMPERATURE-DEPENDENT DEVELOPMENT OF THE MOUNTAIN PINE BEETLE (COLEOPTERA: SCOLYTIDAE) AND SIMULATION OF ITS PHENOLOGY , 1991, The Canadian Entomologist.
[3] Beat Wermelinger,et al. Ecology and management of the spruce bark beetle Ips typographus—a review of recent research , 2004 .
[4] J. Régnière,et al. Assessing the Impacts of Global Warming on Forest Pest Dynamics , 2022 .
[5] Ian H. Witten,et al. Data mining: practical machine learning tools and techniques, 3rd Edition , 1999 .
[6] W. Winiwarter,et al. Summary for policy makers , 2011 .
[7] G. Lobinger. Die Lufttemperatur als limitierender Faktor für die Schwärmaktivität zweier rindenbrütender Fichtenborkenkäferarten,lps typographus L. undPityogenes chalcographus L. (Col., Scolytidae) , 2005, Anzeiger für Schädlingskunde, Pflanzenschutz, Umweltschutz.
[8] L. M. Schroeder,et al. Attacks on living spruce trees by the bark beetle Ips typographus (Col. Scolytidae) following a storm‐felling: a comparison between stands with and without removal of wind‐felled trees , 2002 .
[9] Keith M. Reynolds,et al. Relative importance of risk factors for spruce beetle outbreaks , 1994 .
[10] Vincent R. Gray. Climate Change 2007: The Physical Science Basis Summary for Policymakers , 2007 .
[11] K. Heliövaara,et al. Attack density and breeding success of bark beetles (Coleoptera, Scolytidae) at different distances from forest‐clearcut edge , 1999 .
[12] Seymour Geisser,et al. The Predictive Sample Reuse Method with Applications , 1975 .
[13] David W. Williams,et al. Climate change and the outbreak ranges of two North American bark beetles , 2002 .
[14] S. Džeroski,et al. Spruce bark beetles (Ips typographus, Pityogenes chalcographus, Col.: Scolytidae) in the Dinaric mountain forests of Slovenia: Monitoring and modeling , 2006 .
[15] M. Faccoli,et al. A practical method for predicting the short‐time trend of bivoltine populations of Ips typographus (L.) (Col., Scolytidae) , 2006 .
[16] K. McGarigal,et al. FRAGSTATS: spatial pattern analysis program for quantifying landscape structure. , 1995 .
[17] Jesse A. Logan,et al. Ghost Forests, Global Warming and the Mountain Pine Beetle , 2001 .
[18] Dominic Frigon,et al. Assessment of site characteristics as predictors of the vulnerability of Norway spruce (Picea abies Karst.) stands to attack by Ips typographus L. (Col., Scolytidae) , 2000 .
[19] Ottar N. Bjørnstad,et al. Synchrony and geographical variation of the spruce bark beetle (Ips typographus) during a non-epidemic period , 2003, Population Ecology.
[20] Oscar García,et al. Evaluating forest Growth Models , 1997 .
[21] J. P. Mccarty. Ecological Consequences of Recent Climate Change , 2001 .
[22] J. Koricheva,et al. Insect performance on experimentally stressed woody plants: a meta-analysis. , 1998, Annual review of entomology.
[23] L. M. Schroeder. Tree Mortality by the Bark Beetle Ips typographus (L.) in storm-disturbed stands , 2001 .
[24] Lars Wichmann,et al. The spread of Ips typographus (L.) (Coleoptera, Scolytidae) attacks following heavy windthrow in Denmark, analysed using GIS , 2001 .
[25] Steward T. A. Pickett,et al. The Ecology of Natural Disturbance and Patch Dynamics , 1985 .
[26] Larry A. Rendell,et al. A Practical Approach to Feature Selection , 1992, ML.
[27] Corinne Le Quéré,et al. Climate Change 2013: The Physical Science Basis , 2013 .
[28] M. Obrist,et al. Dynamics of saproxylic beetles (Coleoptera) in windthrow areas in alpine spruce forests , 2002 .
[29] Marko Robnik-Sikonja,et al. An adaptation of Relief for attribute estimation in regression , 1997, ICML.
[30] M. Stone. Cross‐Validatory Choice and Assessment of Statistical Predictions , 1976 .
[31] C. Malmström,et al. Biotic disturbance agents in the boreal forest: considerations for vegetation change models , 2000, Global change biology.
[32] Leslie Ries,et al. Ecological Responses to Habitat Edges: Mechanisms, Models, and Variability Explained , 2004 .
[33] Lučka Kajfež-Bogataj. Podnebne spremembe in ranljivost kmetijstva , 2005, Acta agriculturae Slovenica.
[34] Klemen Zaksek,et al. Solar radiation modelling , 2005, Comput. Geosci..
[35] T. Sørensen,et al. A method of establishing group of equal amplitude in plant sociobiology based on similarity of species content and its application to analyses of the vegetation on Danish commons , 1948 .
[36] Alan A. Berryman,et al. Forest Insects: Principles and Practice of Population Management , 1986 .
[37] A. Prasad,et al. PREDICTING ABUNDANCE OF 80 TREE SPECIES FOLLOWING CLIMATE CHANGE IN THE EASTERN UNITED STATES , 1998 .
[38] Luc De Raedt,et al. Machine Learning: ECML-94 , 1994, Lecture Notes in Computer Science.
[39] Ian Witten,et al. Data Mining , 2000 .
[40] J. Régnière,et al. Modeling cold tolerance in the mountain pine beetle, Dendroctonus ponderosae. , 2007, Journal of insect physiology.
[41] A. Berryman,et al. Resource dynamic plays a key role in regional fluctuations of the spruce bark beetles Ips typographus , 2004 .
[42] O. Hoegh‐Guldberg,et al. Ecological responses to recent climate change , 2002, Nature.
[43] Igor Kononenko,et al. Estimating Attributes: Analysis and Extensions of RELIEF , 1994, ECML.
[44] P. White,et al. The Ecology of Natural Disturbance and Patch Dynamics , 1986 .
[45] J. Régnière,et al. Mountain pine beetle and climate change , 2009 .
[46] A. Rigling,et al. The influence of changes in climate and land-use on regeneration dynamics of Norway spruce at the treeline in the Swiss Alps , 2007 .
[47] C. Rolland,et al. Effects of climate on radial growth of Norway spruce and interactions with attacks by the bark beetle Dendroctonus micans (Kug., Coleoptera: Scolytidae): a dendroecological study in the French Massif Central , 2004 .