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| 1 | Image Decomposition into A Bounded Variation Component and An Oscillating Component 显示文摘 | AUJOL J F AUBERT G LAURE B F | 2005 | Journal of Mathematical Imaging and Vision2005,22,1: | 1 |
| 2 | Variational approach for edge-perserving regularization using coupled PDE's显示文摘 | Teboul S Laure B F Aubert G | 1998 | IEEE Trans Image Proc1998,7,3: | 1 |
| 3 | Image Decomposition into A Bounded Variation Component and An Oscillating Component显示文摘 | Aubert G Laure B F | 2005 | Journal of Mathematical Imaging and Vision2005,22,1: | 1 |
| 4 | Image decomposition into a bounded variation component and an oscillating component 显示文摘 | AUJOI J F AUBERT G LAURE B F | 2005 | Journal of Mathematical Imaging and Vision2005,22,1: | 1 |
| 5 | Evaluation of skull strength following parietal bone graft harvest 显示文摘 | Laure B Tranquart F Geais L | 2010 | Plast Reconstr Surg2010,126,5: | 1 |
| 6 | Evaluation of skull strength following parietal bone graft harvest 显示文摘 | LAURE B TRANQUART F GEAIS L | 2010 | Plast Reconstr Surg2010,126,5: | 1 |
| 7 | Reconstruction of bony mandibular and maxillary defects with one single transfer of a free fibula osteocutaneous flap显示文摘 | Laure B Sury F Martin T | 2008 | J Plast Reconstr Aesthet Surg2008,61,2: | 1 |
| 8 | Deterministic edge-preserving regularization in computed imaging显示文摘 | CHARBONNIER P LAURE B F | 1997 | IEEE Trans Image Processing1997,6,2: | 1 |
| 9 | Resistance of the sheep skull after a monocortical cranial graft harvest 显示文摘 | Laure B Petraud A Sury F | 2012 | J Craniomaxillofac Surg2012,40,3: | 1 |
| 10 | Down-regulation of catalase activity allows transient accumulation of a hydrogen peroxide signal in Chlamydomonas reinhardtii 显示文摘 | Laure M Thomas R Beat B F et at | 2013 | Plant Cell and Enviro~ment2013,36,: | 1 |
| 11 | Deterministic edge-preserving regularization in computed imaging显示文摘 | CHARBONNIER P LAURE B F AUBERT G | 1997 | IEEE Transactions on Image Processing1997,6,2: | 1 |
| 12 | Characterization and quantification of proteins in lecithins 显示文摘 | Carmen M- H Sylvie B Laure F M- G | 2005 | J Agric Food Chem2005,53,23: | 1 |
| 13 | Characterization of laclosylated proteins of infant formula powders using two- dimensional gel electrophoresis and nanoelectrospray mass spectrometry 显示文摘 | Laure F M Veronique P Laurent B Fay | 2002 | Electrophoresis2002,23,15: | 1 |
| 14 | Reconstruction of bony mandibular and maxillary defects with one single transfer of a free fibula osteocutaneous flap显示文摘 | Laure B Sury F Martin T Chabut A Goga D | 2008 | J Plast Reconstr Aesthet Surg2008,61,: | 1 |
| 15 | Facial resurfacing with split- thickness skin grafts in xeroderma pigmentosum variant 显示文摘 | Tayeb T Laure B Sury F | 2011 | J Craniomaxillofac Surg2011,39,7: | 1 |
| 16 | Pre-implantation apposition gratis for edentuous anterior maxillary:Retrospective study of 36 patients显示文摘 | Baccar MN Laure B Stay F | 2005 | Rev Stomatol Chit Maxillofac2005,106,3: | 1 |
| 17 | Mesophyll thickness and sclerophylly among Calotropis procera morphotypes reveal water-saved adaptation to environments显示文摘Calotropis procera(Aiton)Dryand(Apocynaceae)is a native species in tropical and subtropical Africa and Asia.However,due to its fast growing and drought-tolerant,it has become an invasive species when it was introduced into Central and South America,as well as the Caribbean Islands.Currently,C.procera displays a wide distribution in the world.Invasiveness is important,in particular,because many invasive species exert a high reproductive pressure on the invaded communities or are highly productive in their new distributed areas.It has been suggested that a very deep root system and a high capacity to reduce stomatal conductance during water shortage could allow this species to maintain the water status required for a normal function.However,the true mechanism behind the successful distribution of C.procera across wet and dry environments is still unknown.C.procera leaves were collected from 12 natural populations in Brazil,Colombia and Mexico,ranging from wet to dry environments during 2014–2015.Many traits of morphology and anatomy from these distinct morphotypes were evaluated.We found that C.procera leaves had a considerable capacity to adjust their morphological,anatomical and physiological traits to different environments.The magnitude of acclimation responses,i.e.,plasticity,had been hypothesized to reflect the specialized adaptation of plant species to a particular environment.However,allometric models for leaf area(LA)estimation cannot be grouped as a single model.Leaves are narrower and thicker with low amounts of air spaces inside the leaf parenchyma in wet environments,while they are broader and thinner with a small number of palisade cell layers in dry environments.Based on these,we argue that broader and thinner leaves of C.procera dissipate incident energy at the expense of a higher rate of transpiration to survive in environments in which water is the most limiting factor and to compete in favorable wet environments. | Marcelo F POMPELLI Keila R MENDES Marcio V RAMOS Jose N B SANTOS Diaa T A YOUSSEF Jaqueline D PEREIRA Laurício ENDRES Alfredo JARMA-OROZCO Rodolfo SOLANO-GOMES Betty JARMA-ARROYO Andre L J SILVA Marcos A SANTOS Werner C ANTUNES | 2019 | Journal of Arid Land2019,11,6: | 0 |