More pests but less pesticide applications: Ambivalent effect of landscape complexity on conservation biological control
暂无分享,去创建一个
Olivier Bonnefon | Thomas Opitz | Julien Papaïx | Edith Gabriel | Patrizia Zamberletti | Khadija Sabir | T. Opitz | J. Papaïx | P. Zamberletti | E. Gabriel | O. Bonnefon | Khadija Sabir
[1] M. Hochberg,et al. Indirect interactions, community modules and biological control: a theoretical perspective. , 2001 .
[2] P. Tixier,et al. How can models foster the transition towards future agricultural landscapes? , 2021, Advances in Ecological Research.
[3] J. Rosenheim,et al. Should increasing the field size of monocultural crops be expected to exacerbate pest damage , 2012 .
[4] I. Sobol. On the distribution of points in a cube and the approximate evaluation of integrals , 1967 .
[5] C. Lavigne,et al. Estimating population dynamics parameters of cabbage pests in temperate mixed apple tree-cabbage plots compared to control vegetable plots , 2020 .
[6] Carsten F. Dormann,et al. Crop pests and predators exhibit inconsistent responses to surrounding landscape composition , 2018, Proceedings of the National Academy of Sciences.
[7] Rebecca Chaplin-Kramer,et al. A meta-analysis of crop pest and natural enemy response to landscape complexity. , 2011, Ecology letters.
[8] W. E. Snyder,et al. Predation of green peach aphids by generalist predators in the presence of alternative, Colorado potato beetle egg prey , 2004 .
[9] Martin Lange,et al. Agricultural landscape generators for simulation models: A review of existing solutions and an outline of future directions , 2019, Ecological Modelling.
[10] Carsten Thies,et al. REVIEWS AND SYNTHESES Landscape perspectives on agricultural intensification and biodiversity - ecosystem service management , 2005 .
[11] T. Tscharntke,et al. Sustainable pest regulation in agricultural landscapes: a review on landscape composition, biodiversity and natural pest control , 2006, Proceedings of the Royal Society B: Biological Sciences.
[12] Emily A. Martin,et al. When natural habitat fails to enhance biological pest control – Five hypotheses ☆ , 2016 .
[13] S. Macfadyen,et al. Broad spectrum pesticide application alters natural enemy communities and may facilitate secondary pest outbreaks , 2017, PeerJ.
[14] Helmut Hillebrand,et al. Biodiversity in a complex world: consolidation and progress in functional biodiversity research. , 2009, Ecology letters.
[15] Olivier Bonnefon,et al. Modelling Population Dynamics in Realistic Landscapes with Linear Elements: A Mechanistic-Statistical Reaction-Diffusion Approach , 2016, PloS one.
[16] I. Sobol. Uniformly distributed sequences with an additional uniform property , 1976 .
[17] A. Hilbeck,et al. Impact of Bacillus thuringiensis – insecticides on population dynamics and egg predation of the Colorado potato beetle in North Carolina potato plantings , 1998, BioControl.
[18] Paola Annoni,et al. Variance based sensitivity analysis of model output. Design and estimator for the total sensitivity index , 2010, Comput. Phys. Commun..
[19] D. Bailey,et al. How landscape structure, land-use intensity and habitat diversity affect components of total arthropod diversity in agricultural landscapes , 2007 .
[20] F. Maisels,et al. Selection criteria for suites of landscape species as a basis for site-based conservation , 2004 .
[21] G. E. A. El-Ghar,et al. Impact of two synthetic pyrethroids and methomyl on management of the cabbage aphid, brevicoryne brassicae (L.) and its associated parasitoid, diaeretiella rapae (M'Intosh) , 1989 .
[22] T. Tscharntke,et al. The landscape context of trophic interactions : insect spillover across the crop-noncrop interface , 2005 .
[23] D. Bonte,et al. The importance and adaptive value of life history evolution for metapopulation dynamics , 2018, bioRxiv.
[24] I. A. Antonov,et al. An economic method of computing LPτ-sequences , 1979 .
[25] K. Kiêu,et al. A completely random T-tessellation model and Gibbsian extensions , 2013, 1302.1809.
[26] J. Dutcher. A Review of Resurgence and Replacement Causing Pest Outbreaks in IPM , 2007 .
[27] K. Mcrae,et al. CONTROL OF THE ENGLISH GRAIN APHID [SITOBION AVENAE (F.)] (HOMOPTERA: APHIDIDAE) AND THE OAT-BIRDCHERRY APHID [RHOPALOSIPHUM PADI (L.)] (HOMOPTERA: APHIDIDAE) ON WINTER CEREALS , 1997, The Canadian Entomologist.
[28] M. Jansen. Analysis of variance designs for model output , 1999 .
[29] D. Landis,et al. Predicting Landscape Configuration Effects on Agricultural Pest Suppression. , 2019, Trends in ecology & evolution.
[30] J. Lecomte,et al. Modelling the interactions between landscape structure and spatio-temporal dynamics of pest natural enemies: Implications for conservation biological control , 2020 .
[31] Bai-lian Li,et al. Effects of agricultural intensification on ability of natural enemies to control aphids , 2015, Scientific Reports.
[32] Gibbsian T-tessellation model for agricultural landscape characterization , 2020, 2007.16094.
[33] Claire Lavigne,et al. Does landscape composition affect pest abundance and their control by natural enemies? A review , 2013 .
[34] Carsten Thies,et al. The landscape context of cereal aphid–parasitoid interactions , 2005, Proceedings of the Royal Society B: Biological Sciences.
[35] Ignasi Bartomeus,et al. The interplay of landscape composition and configuration: new pathways to manage functional biodiversity and agroecosystem services across Europe. , 2019, Ecology letters.
[36] Minghua Zhang,et al. Does use of Pesticides Known to Harm Natural Enemies of Spider Mites (Acari: Tetranychidae) Result in Increased Number of Miticide Applications? An Examination of California Walnut Orchards , 2011, Journal of economic entomology.
[37] J. Sarthou,et al. Biological Control of Insect Pests in Agroecosystems: Effects of Crop Management, Farming Systems, and Seminatural Habitats at the Landscape Scale: A Review , 2010 .
[38] D. Bates,et al. Linear Mixed-Effects Models using 'Eigen' and S4 , 2015 .
[39] D. Wise,et al. IMPACT OF A DETRITAL SUBSIDY ON TROPHIC CASCADES IN A TERRESTRIAL GRAZING FOOD WEB , 2002 .
[40] Claire Lavigne,et al. The influence of landscape on insect pest dynamics: a case study in southeastern France , 2009, Landscape Ecology.
[41] Hervé Monod,et al. Pathogen population dynamics in agricultural landscapes: the Ddal modelling framework. , 2014, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases.
[42] Stefano Tarantola,et al. Estimating the approximation error when fixing unessential factors in global sensitivity analysis , 2007, Reliab. Eng. Syst. Saf..
[43] T. Tscharntke,et al. Spillover edge effects: the dispersal of agriculturally subsidized insect natural enemies into adjacent natural habitats. , 2006, Ecology letters.
[44] A. Klein,et al. Spillover of functionally important organisms between managed and natural habitats , 2012 .
[45] N. Pettorelli,et al. Chapter two - individual variability: the missing component to our understanding of predator–prey interactions , 2015 .
[46] Frédéric Hecht,et al. New development in freefem++ , 2012, J. Num. Math..
[47] H. Possingham,et al. Spatial variability in ecosystem services: simple rules for predator-mediated pest suppression. , 2010, Ecological applications : a publication of the Ecological Society of America.
[48] Rudolf P. Rohr,et al. The importance of landscape and spatial structure for hymenopteran-based food webs in an agro-ecosystem. , 2013, The Journal of animal ecology.
[49] K. Gross,et al. Quantifying secondary pest outbreaks in cotton and their monetary cost with causal-inference statistics. , 2011, Ecological applications : a publication of the Ecological Society of America.
[50] Neal M. Williams,et al. Crop pollination from native bees at risk from agricultural intensification , 2002, Proceedings of the National Academy of Sciences of the United States of America.