Effects of Managed and Unmanaged Floral Margins on Pollination Services and Production in Melon Crops
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[1] M. Fountain. Impacts of Wildflower Interventions on Beneficial Insects in Fruit Crops: A Review , 2022, Insects.
[2] M. J. Ramírez‐Soria,et al. Native natural enemies in Mediterranean melon fields can provide levels of pest control similar to conventional pest management with broad-spectrum pesticides , 2021, Biological Control.
[3] C. Gratton,et al. Impacts of field-edge flower plantings on pollinator conservation and ecosystem service delivery – A meta-analysis , 2021, Agriculture, Ecosystems & Environment.
[4] C. Polidori,et al. Bees and crops in Spain: an update for melon, watermelon and almond , 2021 .
[5] L. Garibaldi,et al. Field margin floral enhancements increase pollinator diversity at the field edge but show no consistent spillover into the crop field: a meta‐analysis , 2020 .
[6] R. Isaacs,et al. The effectiveness of flower strips and hedgerows on pest control, pollination services and crop yield: a quantitative synthesis , 2020, Ecology letters.
[7] C. Peres,et al. Pollination ecosystem services: A comprehensive review of economic values, research funding and policy actions , 2020, Food Security.
[8] A. Fereres,et al. The Role of Annual Flowering Plant Strips on a Melon Crop in Central Spain. Influence on Pollinators and Crop , 2020, Insects.
[9] N. Blüthgen,et al. High land-use intensity in grasslands constrains wild bee species richness in Europe , 2020, Biological Conservation.
[10] D. Wagner. Insect Declines in the Anthropocene. , 2020, Annual review of entomology.
[11] F. J. Ortiz-Sánchez,et al. How Bees Respond Differently to Field Margins of Shrubby and Herbaceous Plants in Intensive Agricultural Crops of the Mediterranean Area , 2019, Insects.
[12] J. Bosch,et al. Chronic oral exposure to field-realistic pesticide combinations via pollen and nectar: effects on feeding and thermal performance in a solitary bee , 2019, Scientific Reports.
[13] D. Kleijn,et al. Effects of landscape complexity on pollinators are moderated by pollinators' association with mass-flowering crops , 2019, Proceedings of the Royal Society B.
[14] C. Westphal,et al. Fruit quantity and quality of strawberries benefit from enhanced pollinator abundance at hedgerows in agricultural landscapes , 2019, Agriculture, Ecosystems & Environment.
[15] Elisabeth B. Webb,et al. Field-level characteristics influence wild bee functional guilds on public lands managed for conservation , 2019, Global Ecology and Conservation.
[16] J. González-Andújar,et al. The role of field margins in supporting wild bees in Mediterranean cereal agroecosystems: Which biotic and abiotic factors are important? , 2017 .
[17] F. Wäckers,et al. Getting More Power from Your Flowers: Multi-Functional Flower Strips Enhance Pollinators and Pest Control Agents in Apple Orchards , 2017, Insects.
[18] K. Garbach,et al. Determinants of field edge habitat restoration on farms in California's Sacramento Valley. , 2017, Journal of environmental management.
[19] Z. Szendrei,et al. Floral Strips Attract Beneficial Insects but Do Not Enhance Yield in Cucumber Fields , 2017, Journal of Economic Entomology.
[20] F. Wäckers,et al. Do sown flower strips boost wild pollinator abundance and pollination services in a spring-flowering crop? A case study from UK cider apple orchards , 2017 .
[21] A. C. Dibble,et al. Pollination Reservoirs in Lowbush Blueberry (Ericales: Ericaceae) , 2017, Journal of Economic Entomology.
[22] E. Lonsdorf,et al. A Tool for Selecting Plants When Restoring Habitat for Pollinators , 2017 .
[23] M. Edwards,et al. Comparing the pollination services of honey bees and wild bees in a watermelon field , 2016 .
[24] E. Wajnberg,et al. Watermelon pollinators exhibit complementarity in both visitation rate and single‐visit pollination efficiency , 2016 .
[25] M. Balzan,et al. Utilisation of plant functional diversity in wildflower strips for the delivery of multiple agroecosystem services , 2016 .
[26] L. Carvalheiro,et al. Mutually beneficial pollinator diversity and crop yield outcomes in small and large farms , 2016, Science.
[27] C. Polidori,et al. Small sweat bees (Hymenoptera: Halictidae) as potential major pollinators of melon (Cucumis melo) in the Mediterranean , 2016 .
[28] Emily A. May,et al. Native wildflower plantings support wild bee abundance and diversity in agricultural landscapes across the United States. , 2015, Ecological applications : a publication of the Ecological Society of America.
[29] R. Bommarco,et al. Local and landscape-level floral resources explain effects of wildflower strips on wild bees across four European countries , 2015 .
[30] Rebecca E. Irwin,et al. The effect of repeated, lethal sampling on wild bee abundance and diversity , 2015 .
[31] Lauren C Ponisio,et al. Habitat restoration promotes pollinator persistence and colonization in intensively managed agriculture. , 2015, Ecological applications : a publication of the Ecological Society of America.
[32] Emily A. May,et al. Delivery of crop pollination services is an insufficient argument for wild pollinator conservation , 2015, Nature Communications.
[33] G. R. Santos,et al. Diversity and flower-visiting rates of bee species as potential pollinators of melon (Cucumis melo L.) in the Brazilian Cerrado , 2015 .
[34] O. Olsson,et al. Sown flower strips in southern Sweden increase abundances of wild bees and hoverflies in the wider landscape , 2015 .
[35] Y. Mandelik,et al. Profiling crop pollinators: life history traits predict habitat use and crop visitation by Mediterranean wild bees. , 2015, Ecological applications : a publication of the Ecological Society of America.
[36] M. Delignette-Muller,et al. fitdistrplus: An R Package for Fitting Distributions , 2015 .
[37] M. Aizen,et al. Frontiers inEcology and the Environment From research to action : enhancing crop yield through wild pollinators , 2014 .
[38] Rufus Isaacs,et al. Flower plantings increase wild bee abundance and the pollination services provided to a pollination-dependent crop , 2014 .
[39] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[40] A. Nieto. European Red List of bees , 2014 .
[41] D. Mortensen,et al. Supporting crop pollinators with floral resources: network-based phenological matching , 2013, Ecology and evolution.
[42] C. Kremen,et al. Hedgerow restoration promotes pollinator populations and exports native bees to adjacent fields. , 2013, Ecological applications : a publication of the Ecological Society of America.
[43] Michael J. O. Pocock,et al. Identifying key knowledge needs for evidence‐based conservation of wild insect pollinators: a collaborative cross‐sectoral exercise , 2013 .
[44] Alana L. Burley,et al. A global quantitative synthesis of local and landscape effects on wild bee pollinators in agroecosystems. , 2013, Ecology letters.
[45] Breno M. Freitas,et al. Wild Pollinators Enhance Fruit Set of Crops Regardless of Honey Bee Abundance , 2013, Science.
[46] L. Carvalheiro,et al. Creating patches of native flowers facilitates crop pollination in large agricultural fields: mango as a case study , 2012 .
[47] S. Wratten,et al. Pollinator habitat enhancement: Benefits to other ecosystem services , 2012 .
[48] R. Didham,et al. Landscape moderation of biodiversity patterns and processes ‐ eight hypotheses , 2012, Biological reviews of the Cambridge Philosophical Society.
[49] Theodora Petanidou,et al. Assessing bee species richness in two Mediterranean communities: importance of habitat type and sampling techniques , 2011, Ecological Research.
[50] Nico Blüthgen,et al. Functional complementarity and specialisation: The role of biodiversity in plant–pollinator interactions , 2011 .
[51] L. Bersier,et al. Sown wildflower strips for insect conservation: a review , 2011 .
[52] William N. Venables,et al. Modern Applied Statistics with S , 2010 .
[53] R. Bussmann,et al. Diversity and efficiency of wild pollinators of watermelon (Citrullus lanatus (Thunb.) Mansf.) at Yatta (Kenya). , 2010 .
[54] J. Biesmeijer,et al. Global pollinator declines: trends, impacts and drivers. , 2010, Trends in ecology & evolution.
[55] C. Polidori,et al. Floral Resources and Nesting Requirements of the Ground-Nesting Social Bee, Lasioglossum malachurum (Hymenoptera: Halictidae), in a Mediterranean Semiagricultural Landscape , 2010 .
[56] T. Sisk,et al. Hedgerows in an agri-natural landscape: Potential habitat value for native bees , 2009 .
[57] Y. Clough,et al. On the relationship between farmland biodiversity and land-use intensity in Europe , 2009, Proceedings of the Royal Society B: Biological Sciences.
[58] T. Hothorn,et al. Simultaneous Inference in General Parametric Models , 2008, Biometrical journal. Biometrische Zeitschrift.
[59] D. Kleijn,et al. At what spatial scale do high-quality habitats enhance the diversity of forbs and pollinators in intensively farmed landscapes? , 2007 .
[60] D. Bailey,et al. How landscape structure, land-use intensity and habitat diversity affect components of total arthropod diversity in agricultural landscapes , 2007 .
[61] A. Klein,et al. Importance of pollinators in changing landscapes for world crops , 2007, Proceedings of the Royal Society B: Biological Sciences.
[62] A. P. Schaffers,et al. Parallel Declines in Pollinators and Insect-Pollinated Plants in Britain and the Netherlands , 2006, Science.
[63] T. Sparks,et al. Providing foraging resources for bumblebees in intensively farmed landscapes , 2005 .
[64] W. Meek,et al. The response of foraging bumblebees to successional change in newly created arable field margins , 2004 .
[65] Pat Willmer,et al. LINKING BEES AND FLOWERS: HOW DO FLORAL COMMUNITIES STRUCTURE POLLINATOR COMMUNITIES? , 2003 .
[66] W. N. Ellis,et al. Interdependence of native bee faunas and floras in changing Mediterranean communities , 1996 .
[67] J. Lagerlöf,et al. Margins of agricultural fields as habitats for pollinating insects , 1992 .
[68] K. A. Gomez,et al. Statistical Procedures for Agricultural Research. , 1984 .