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| 1 | Ethylene receptor degradation controls the timing of ripening in tomato fruit显示文摘 | Brian M.Kevany Denise M.Tieman Mark G.Taylor Valeriano DalCin | 2007 | The Plant Journal2007,,3: | 1 |
| 2 | 点在多边形内的测试 | G.Taylor | 1996 | 三晋测绘1996,3,4: | 0 |
| 3 | Thirty-two essential questions for understanding the social-ecological system of forage fish:the case of pacific herring显示文摘Forage fishes are ecologically and economically important low trophic level species,and in recent years interest in their biology and management has intensified.Pacific Herring are emblemat-ic of the management issues facing forage species-they are central components of the Northeast Pacific pelagic food web and support important commercial fisheries.In addition,the importance of Herring to indigenous peoples have made them cultural keystone species.We employed a participatory process to promote collaborative priority-setting for this critical forage species.Working with managers,the fisher-ies industry,indigenous peoples,and scientists,we co-constructed a conceptual model of the Pacific Her-ring social-ecological system(SES)in the Northeast Pacific.We then identified a set of questions,that,if answered,would significantly increase our ability to sustainably manage the Herring SES.Our objective was to generate a road map for scientists who wish to conduct useful forage fish research,for resource managers who wish to develop new research efforts that could fill critical gaps,and for public agencies and private foundations seeking to prioritize funding on forage fish issues in the Pacific.With this socio-cultural centrality comes complexity for fisheries management.Our participatory process highlighted the value of conceptualizing the full SES,overcame disciplinary differences in scientific approaches,research philos-ophy,and language,and charted a path forward for future research and management for forage species. | Phillip S.Levin Tessa B.Francis Nathan G.Taylor | 2016 | Ecosystem Health and Sustainability2016,2,4: | 0 |
| 4 | A solution scan of societal options to reduce transmission and spread of respiratory viruses:SARS-CoV-2 as a case study显示文摘Societal biosecurity–measures built into everyday society to minimize risks from pests and diseases–is an important aspect of managing epidemics and pandemics.We aimed to identify societal options for reducing the transmission and spread of respiratory viruses.We used SARS-CoV-2(severe acute respiratory syndrome coronavirus 2)as a case study to meet the immediate need to manage the COVID-19 pandemic and eventually transition to more normal societal conditions,and to catalog options for managing similar pandemics in the future.We used a‘solution scanning’approach.We read the literature;consulted psychology,public health,medical,and solution scanning experts;crowd-sourced options using social media;and collated comments on a preprint.Here,we present a list of 519 possible measures to reduce SARS-CoV-2 transmission and spread.We provide a long list of options for policymakers and businesses to consider when designing biosecurity plans to combat SARS-CoV-2 and similar pathogens in the future.We also developed an online application to help with this process.We encourage testing of actions,documentation of outcomes,revisions to the current list,and the addition of further options. | William J.Sutherland Nigel G.Taylor David C.Aldridge Philip Martin Catherine Rhodes Gorm Shackelford Simon Beard Haydn Belfield Andrew J.Bladon Cameron Brick Alec P.Christie Andrew P.Dobson Harriet Downey Amelia S.C.Hood Fangyuan Hua Alice C.Hughes Rebecca M.Jarvis Douglas MacFarlane William H.Morgan Anne-ChristineMupepele Stefan J.Marciniak Cassidy Nelson SeánÓhÉigeartaigh Clarissa Rios Rojas Katherine A.Sainsbury Rebecca K.Smith Lalitha S.Sundaram Ann Thornton John Watkins Thomas B.White Kate Willott Silviu O.Petrovan | 2021 | Journal of Biosafety and Biosecurity2021,3,2: | 0 |
| 5 | Decomposing the drivers of residential space cooling energy consumption in EU-28 countries using a panel data approach显示文摘While space cooling currently represents less than 1%of final energy use in the residential sector of the Euro-pean Union(EU-28),it was the fastest growing end-use during the 2000-15 period with a mean annual growth rate of 6%per year.Currently,little is known about factors which have driven regional air-conditioning(AC)energy consumption over time,since the literature is limited to cross-sectional studies that lack differentiation between climatic and non-climatic influences.Future projections for the EU’s electricity sector may therefore neglect the potential implications of rapidly growing AC demand.We develop a novel decomposition framework,which breaks down residential space cooling energy consumption in EU-28 countries into the effect of different components from 2000 to 2015.Decomposition is extended to panel data models identifying specific drivers of space cooling’s climate-sensitive components.Finally,we explore scenarios of residential AC energy consumption up to 2050 and evaluate their impact on summer time peak loads.AC diffusion was found to be the key driver of space cooling energy consumption,but this effect was partly counterbalanced by efficiency gains.While weather influences AC equipment ownership rate in EU-28 households,personal income has a larger marginal effect.In baseline scenarios,AC diffusion saturates by 2050,while modestly increasing sectoral final energy use.Still,our range of scenario values for space cooling energy consumption in 2050 exceed the majority of those originat-ing from recently published projections.In a future renewables-driven electricity system,energy security risks may emerge from a scenario of fast AC up-take in new and renovated buildings,especially for colder European countries where modelled peak cooling electricity demand is shown to outgrow the projected expansion of solar capacity.These findings have important implications for the EU’s strategy to decarbonise energy supply. | Andreas Andreou John Barrett Peter G.Taylor Paul E.Brockway Zia Wadud | 2020 | Energy and Built Environment2020,1,4: | 0 |