Rice yields in tropical/subtropical Asia exhibit large but opposing sensitivities to minimum and maximum temperatures

Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice yields in tropical/subtropical Asia. We used a multiple regression model to analyze data from 227 intensively managed irrigated rice farms in...

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Published inProceedings of the National Academy of Sciences - PNAS Vol. 107; no. 33; pp. 14562 - 14567
Main Authors Welch, Jarrod R., Vincent, Jeffrey R., Auffhammer, Maximilian, Moya, Piedad F., Dobermann, Achim, Dawe, David, Khush, Gurdev S.
Format Journal Article
LanguageEnglish
Published United States National Academy of Sciences 17.08.2010
National Acad Sciences
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Abstract Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice yields in tropical/subtropical Asia. We used a multiple regression model to analyze data from 227 intensively managed irrigated rice farms in six important rice-producing countries. The farm-level detail, observed over multiple growing seasons, enabled us to construct farm-specific weather variables, control for unobserved factors that either were unique to each farm but did not vary over time or were common to all farms at a given site but varied by season and year, and obtain more precise estimates by including farm- and site-specific economic variables. Temperature and radiation had statistically significant impacts during both the vegetative and ripening phases of the rice plant. Higher minimum temperature reduced yield, whereas higher maximum temperature raised it; radiation impact varied by growth phase. Combined, these effects imply that yield at most sites would have grown more rapidly during the high-yielding season but less rapidly during the low-yielding season if observed temperature and radiation trends at the end of the 20th century had not occurred, with temperature trends being more influential. Looking ahead, they imply a net negative impact on yield from moderate warming in coming decades. Beyond that, the impact would likely become more negative, because prior research indicates that the impact of maximum temperature becomes negative at higher levels. Diurnal temperature variation must be considered when investigating the impacts of climate change on irrigated rice in Asia.
AbstractList Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice yields in tropical/subtropical Asia. We used a multiple regression model to analyze data from 227 intensively managed irrigated rice farms in six important rice-producing countries. The farm-level detail, observed over multiple growing seasons, enabled us to construct farm-specific weather variables, control for unobserved factors that either were unique to each farm but did not vary over time or were common to all farms at a given site but varied by season and year, and obtain more precise estimates by including farm- and site-specific economic variables. Temperature and radiation had statistically significant impacts during both the vegetative and ripening phases of the rice plant. Higher minimum temperature reduced yield, whereas higher maximum temperature raised it; radiation impact varied by growth phase. Combined, these effects imply that yield at most sites would have grown more rapidly during the high-yielding season but less rapidly during the low-yielding season if observed temperature and radiation trends at the end of the 20th century had not occurred, with temperature trends being more influential. Looking ahead, they imply a net negative impact on yield from moderate warming in coming decades. Beyond that, the impact would likely become more negative, because prior research indicates that the impact of maximum temperature becomes negative at higher levels. Diurnal temperature variation must be considered when investigating the impacts of climate change on irrigated rice in Asia.Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice yields in tropical/subtropical Asia. We used a multiple regression model to analyze data from 227 intensively managed irrigated rice farms in six important rice-producing countries. The farm-level detail, observed over multiple growing seasons, enabled us to construct farm-specific weather variables, control for unobserved factors that either were unique to each farm but did not vary over time or were common to all farms at a given site but varied by season and year, and obtain more precise estimates by including farm- and site-specific economic variables. Temperature and radiation had statistically significant impacts during both the vegetative and ripening phases of the rice plant. Higher minimum temperature reduced yield, whereas higher maximum temperature raised it; radiation impact varied by growth phase. Combined, these effects imply that yield at most sites would have grown more rapidly during the high-yielding season but less rapidly during the low-yielding season if observed temperature and radiation trends at the end of the 20th century had not occurred, with temperature trends being more influential. Looking ahead, they imply a net negative impact on yield from moderate warming in coming decades. Beyond that, the impact would likely become more negative, because prior research indicates that the impact of maximum temperature becomes negative at higher levels. Diurnal temperature variation must be considered when investigating the impacts of climate change on irrigated rice in Asia.
Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice yields in tropical/subtropical Asia. We used a multiple regression model to analyze data from 227 intensively managed irrigated rice farms in six important rice-producing countries. The farm-level detail, observed over multiple growing seasons, enabled us to construct farm-specific weather variables, control for unobserved factors that either were unique to each farm but did not vary over time or were common to all farms at a given site but varied by season and year, and obtain more precise estimates by including farm- and site-specific economic variables. Temperature and radiation had statistically significant impacts during both the vegetative and ripening phases of the rice plant. Higher minimum temperature reduced yield, whereas higher maximum temperature raised it; radiation impact varied by growth phase. Combined, these effects imply that yield at most sites would have grown more rapidly during the high-yielding season but less rapidly during the low-yielding season if observed temperature and radiation trends at the end of the 20th century had not occurred, with temperature trends being more influential. Looking ahead, they imply a net negative impact on yield from moderate warming in coming decades. Beyond that, the impact would likely become more negative, because prior research indicates that the impact of maximum temperature becomes negative at higher levels. Diurnal temperature variation must be considered when investigating the impacts of climate change on irrigated rice in Asia.
Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice yields in tropical/subtropical Asia. We used a multiple regression model to analyze data from 227 intensively managed irrigated rice farms in six important rice-producing countries. The farm-level detail, observed over multiple growing seasons, enabled us to construct farm-specific weather variables, control for unobserved factors that either were unique to each farm but did not vary over time or were common to all farms at a given site but varied by season and year, and obtain more precise estimates by including farm- and site-specific economic variables. Temperature and radiation had statistically significant impacts during both the vegetative and ripening phases of the rice plant. Higher minimum temperature reduced yield, whereas higher maximum temperature raised it; radiation impact varied by growth phase. Combined, these effects imply that yield at most sites would have grown more rapidly during the high-yielding season but less rapidly during the low-yielding season if observed temperature and radiation trends at the end of the 20th century had not occurred, with temperature trends being more influential. Looking ahead, they imply a net negative impact on yield from moderate warming in coming decades. Beyond that, the impact would likely become more negative, because prior research indicates that the impact of maximum temperature becomes negative at higher levels. Diurnal temperature variation must be considered when investigating the impacts of climate change on irrigated rice in Asia. [PUBLICATION ABSTRACT]
Author Welch, Jarrod R.
Dawe, David
Vincent, Jeffrey R.
Khush, Gurdev S.
Dobermann, Achim
Auffhammer, Maximilian
Moya, Piedad F.
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  givenname: Jarrod R.
  surname: Welch
  fullname: Welch, Jarrod R.
– sequence: 2
  givenname: Jeffrey R.
  surname: Vincent
  fullname: Vincent, Jeffrey R.
– sequence: 3
  givenname: Maximilian
  surname: Auffhammer
  fullname: Auffhammer, Maximilian
– sequence: 4
  givenname: Piedad F.
  surname: Moya
  fullname: Moya, Piedad F.
– sequence: 5
  givenname: Achim
  surname: Dobermann
  fullname: Dobermann, Achim
– sequence: 6
  givenname: David
  surname: Dawe
  fullname: Dawe, David
– sequence: 7
  givenname: Gurdev S.
  surname: Khush
  fullname: Khush, Gurdev S.
BackLink https://www.ncbi.nlm.nih.gov/pubmed/20696908$$D View this record in MEDLINE/PubMed
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Author contributions: J.R.W., J.R.V., M.A., and D.D. designed research; P.F.M., A.D., and D.D. collected data; J.R.W., J.R.V., and M.A. analyzed data; and J.R.W., J.R.V., M.A., A.D., and D.D. wrote the paper.
Edited by Gurdev S. Khush, University of California, Davis, CA, and approved July 6, 2010 (received for review January 30, 2010)
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Snippet Data from farmer-managed fields have not been used previously to disentangle the impacts of daily minimum and maximum temperatures and solar radiation on rice...
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StartPage 14562
SubjectTerms Agricultural production
Agricultural seasons
Agriculture - methods
Agriculture - trends
Asia
Circadian Rhythm - physiology
Climate change
Crop economics
Crop science
Crop yield
Crops
Environmental impact
Farms
grain yield
Growing season
Growing seasons
Irrigated farming
irrigation
Light
Models, Theoretical
Oryza - growth & development
Oryza - radiation effects
Oryza sativa
Radiation
Regression Analysis
Rice
Ripening
Seasons
Social Sciences
Solar radiation
Temperature
Tropical Climate
Weather
Title Rice yields in tropical/subtropical Asia exhibit large but opposing sensitivities to minimum and maximum temperatures
URI https://www.jstor.org/stable/25708948
http://www.pnas.org/content/107/33/14562.abstract
https://www.ncbi.nlm.nih.gov/pubmed/20696908
https://www.proquest.com/docview/746435070
https://www.proquest.com/docview/1825415582
https://www.proquest.com/docview/748963010
https://www.proquest.com/docview/817605811
https://pubmed.ncbi.nlm.nih.gov/PMC2930450
Volume 107
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