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Phenology of Ecosystem Processes: Applications in Global Change Research

Changes in the onset of spring in the western United States. A new model for estimating chill accumulation requirements for crop and natural species. Norfolk, VA, 20—24 May Phenology and climate — early Australian botanical records. Channell R, Lomolino MV. Dynamic biogeography and conservation of endangered species.

Sensitivity of a general circulation model to global changes in leaf area index. Improving the budburst phenology subroutine in the forest carbon model PnET. Climate changes and trends in phenology of fruit trees and field crops in Germany, — A unified model for budburst of trees. Why does phenology drive species distribution? Chuine I, Beaubien EG. Phenology is a major determinant of tree species range. Fitting models predicting dates of flowering of temperate-zone trees using simulated annealing.

Opportunities and Challenges for Remote Sensing in Agricultural Applications of Data Science

Selecting models to predict the timing of flowering of temperate trees: Shifting plant phenology in response to global change. Clements DR, Ditommaso A. Climate change and weed adaptation: Ecological forecasting under climatic data uncertainty: Modelling of weather variability effect on fitophenology. Complex responses to climate drivers in onset of spring flowering across a semi-arid elevation gradient.

A land surface phenology assessment of the northern polar regions using MODIS reflectance time series. Determination of phenological dates in boreal regions using normalized difference water index. Exceptional carbon uptake in European forests during the warm spring of Climatic and phenological controls on coherent regional interannual variability of carbon dioxide flux in a heterogeneous landscape. Climate effects on the phenology of geophytes. Green leaf phenology at Landsat resolution: Scaling from the field to the satellite.

Phenology model from surface meteorology does not capture satellite-based greenup estimations. An integrated biosphere model of land surface processes, terrestrial carbon balance, and vegetation dynamics IBIS. Flowering phenology in subalpine meadows: Does climate variation influence community co-flowering patterns? Toward a synthetic understanding of the role of phenology in ecology and evolution. Model for forecasting Olea europea L. Modelling start of oak pollen season in different climatic zones in Spain.

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Diurnal and annual exchanges of mass and energy between an aspen-hazelnut forest and the atmosphere: Methods for combining phenological time series: Modelling bud dormancy release in trees from cool and temperate regions. Effects of climatic change on trees from cool and temperate regions: The utilization of old phenological time series of budburst to compare models describing annual cycles of plants. Plant phenology observation networks. In Phenology and seasonality modelling. Springer, Berlin Heidelberg, New York.

Predicting the timing of budburst in temperate trees. Forecasting phenology under global warming. A generalized, bioclimatic index to predict foliar phenology in response to climate. Diagnostic assessment of European gross primary production. Kaduk J, Heimann M. A prognostic phenology scheme for global terrestrial carbon cycle models. Predicting the time of green up on temperate and boreal biomes.


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On the use of the Advanced Very High Resolution Radiometer for development of prognostic land surface phenology models. Leaf phenology as an optimal strategy for carbon gain in plants.

Phenology of ecosystem processes : applications in global change research

Annual and interannual CO 2 exchanges of the terrestrial biosphere: Selecting a model to predict the onset of growth of Fagus sylvatica. Modelling comparison to evaluate the importance of phenology for the effects of climate change on growth of mixed temperate-zone deciduous forests. The importance of phenology for the evaluation of impact of climate change on growth of boreal, temperate and Mediterranean forests ecosystems: An introduction to statistical modeling. Oxford University Press Inc. Vegetation structure, phenology, soil temperature, and CO 2 and H 2 O vapor exchange.

A simulation model for the annual frost hardiness and freeze damage of Scots pine. Leinonen I, Kramer K. Applications of phenological models to predict the future carbon sequestration potential of boreal forests. Response of vegetation distribution, ecosystem productivity, and fire to climate change scenarios for California.

Liang L, Schwartz MD. Phenology and Seasonality modelling. Estimating daily positive Utah chill units using daily maximum and minimum temperatures. The Frankfurt Biosphere Model: Model description and illustrative results for cold deciduous and boreal forests. European larch phenology in the Alps: Impact of global warming on a group of related species and their hybrids: Morin X, Thuiller W.

Comparing nich- and process-based models to reduce prediction uncertainty in species range shifts under climate change. Process-based modelling of tree species' distributions: Tree species range shifts at a continental scale: Timing and duration of European larch growing seasen along altitudial gradients in the Swiss Alps.

Date of budburst of fifteen tree species in Britain following climatic warming. Increased plant growth in the northern high latitudes from to Towards European climate risk surfaces: The use of climate projections in the modelling of bud burst. On poster programme CL2. Influences of species, latitudes and methodologies on estimates of phenological response to global warming. Parmesan C, Yohe G.

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    Write a review Rate this item: Preview this item Preview this item. Phenology of ecosystem processes: Dordrecht ; New York: English View all editions and formats Summary: Changes in the seasonal timing of ecosystem carbon, water and energy exchange are key sources of variation in biosphere-atmosphere feedbacks. Referencing this variability to traditional phenological events, such as bud break or flowering, introduces additional uncertainty with little mechanistic relationship to the process of interest.

    Instead, the seasonal cycles of each process must be understood in the context of biological and environmental factors that affect it. Some processes, like photosynthesis, are represented with high degree of realism and accuracy in several existing ecosystem process models, whereas others still have significant uncertainties. This volume summarizes the current understanding of the seasonality of ecosystem carbon and water cycles in the temperate and boreal zones using eight case studies, highlighting sources of variability, necessary additional measurements and novel ways to analyze existing datasets.

    It also includes syntheses of the interaction between water and carbon fluxes as mediated by constraints from plant anatomy to the ecosystem level. This book is intended as a reference for researchers and graduate students in ecosystem ecology, modeling, climate change, phenology and land surface phenology, and as supplementary material for advanced courses in ecosystem or community ecology and biometeorology. Allow this favorite library to be seen by others Keep this favorite library private. Find a copy in the library Finding libraries that hold this item Electronic books Additional Physical Format: Phenology of ecosystem processes.

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