A geometrical model for testing bilateral symmetry of bamboo leaf with a simplified Gielis equation
暂无分享,去创建一个
Li Zhang | Johan Gielis | Cang Hui | Peijian Shi | Yulong Ding | J. Gielis | C. Hui | G. Reddy | Yulong Ding | P. Shi | Shuyan Lin | Li Zhang | Shuyan Lin | Gadi V. P. Reddy
[1] A. Lindenmayer. Mathematical models for cellular interactions in development. I. Filaments with one-sided inputs. , 1968, Journal of theoretical biology.
[2] M. Chase,et al. A Comparison of ITS Nuclear rDNA Sequence Data and AFLP Markers for Phylogenetic Studies in Phyllostachys (Bambusoideae, Poaceae) , 2000, Journal of Plant Research.
[3] R. V. Jean,et al. Phyllotaxis: A Systemic Study in Plant Morphogenesis , 1995 .
[4] R. Sablowski,et al. JAGGED Controls Growth Anisotropy and Coordination between Cell Size and Cell Cycle during Plant Organogenesis , 2012, Current Biology.
[5] A. Lindenmayer. Mathematical models for cellular interactions in development. II. Simple and branching filaments with two-sided inputs. , 1968, Journal of theoretical biology.
[6] Achim Tresch,et al. Heterochrony underpins natural variation in Cardamine hirsuta leaf form , 2015, Proceedings of the National Academy of Sciences.
[7] B. Andrieu,et al. Towards a Quantitative Evaluation of Cereal Lamina Shape Using an Empirical Shape Model , 2009, 2009 Third International Symposium on Plant Growth Modeling, Simulation, Visualization and Applications.
[8] R. Banik. Morphology and Growth , 2015 .
[9] Douady,et al. Phyllotaxis as a physical self-organized growth process. , 1992, Physical review letters.
[10] J. Gielis,et al. A botanical perspective on modeling plants and plant shapes in computer graphics , 2004 .
[11] P. Natalini,et al. Fourier Solution of the Dirichlet Problem for the Laplace and Helmholtz Equations in Starlike Domains , 2009 .
[12] Gerhard Hartwig Buck-Sorlin,et al. Simulating the morphology of barley spike phenotypes using genotype information , 2000 .
[13] W. Fang,et al. Genetic similarity among cultivars of Phyllostachys pubescens , 2008, Plant Systematics and Evolution.
[14] T. Koike,et al. Functional Leaf Phenotypes for Shaded and Open Environments of a Dominant Dwarf Bamboo (Sasa senanensis) in Northern Japan , 1998, International Journal of Plant Sciences.
[15] Shenghui Wang. Semantics of Natural Language Descriptions of Continuous Quantities , 2012 .
[16] A. Doust. Architectural Evolution and its Implications for Domestication in Grasses , 2007, Annals of botany.
[17] J. Gielis. A generic geometric transformation that unifies a wide range of natural and abstract shapes. , 2003, American journal of botany.
[18] D. Inzé,et al. LEAF-E: a tool to analyze grass leaf growth using function fitting , 2014, Plant Methods.
[19] D. Ohrnberger. The bamboos of the world: annotated nomenclature and literature of the species and the higher and lower taxa , 1999 .
[20] L. Clark,et al. Classification and Biogeography of New World Grasses: Anomochlooideae, Pharoideae, Ehrhartoideae, and Bambusoideae , 2007 .
[21] Cang Hui,et al. Capturing spiral radial growth of conifers using the superellipse to model tree-ring geometric shape , 2015, Front. Plant Sci..
[22] Tanvir R. Faisal,et al. The Impact of Tissue Morphology, Cross-Section and Turgor Pressure on the Mechanical Properties of the Leaf Petiole in Plants , 2010 .
[23] Y. Zhu,et al. Modelling leaf shape dynamics in rice , 2009 .
[24] C. Kuhlemeier,et al. Auxin Regulates the Initiation and Radial Position of Plant Lateral Organs , 2000, Plant Cell.
[25] D. Brandis. V. Remarks on the Structure of Bamboo Leaves. , 1907 .
[26] B. Andrieu,et al. Adel-maize: an l-system based model for the integration of growth processes from the organ to the ca , 1999 .
[27] Walter Liese,et al. Bamboo , 2015, Tropical Forestry.
[28] G. Quinn,et al. Experimental Design and Data Analysis for Biologists , 2002 .
[29] A. Bell,et al. Plant Form: An Illustrated Guide to Flowering Plant Morphology , 1991 .
[30] Jim Hanan,et al. Virtual sorghum: visualisation of partitioning and morphogenesis. , 2000 .
[31] Aristid Lindenmayer,et al. Mathematical Models for Cellular Interactions in Development , 1968 .
[32] Przemyslaw Prusinkiewicz,et al. A Look at the Visual Modeling of Plants Using L-Systems , 1996, German Conference on Bioinformatics - Selected Papers.
[33] C. Hui,et al. Capture the time when plants reach their maximum body size by using the beta sigmoid growth equation , 2016 .
[34] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[35] Weilong Ding,et al. Realistic Simulation of Rice Plant , 2011 .
[36] S. Kelchner,et al. Higher level phylogenetic relationships within the bamboos (Poaceae: Bambusoideae) based on five plastid markers. , 2013, Molecular phylogenetics and evolution.
[37] T. Mclellan,et al. THE ROLES OF HETEROCHRONY AND HETEROBLASTY IN THE DIVERSIFICATION OF LEAF SHAPES IN BEGONIA DREGEI (BEGONIACEAE) , 1993 .
[38] Yohan D. Fougerolle,et al. Universal Natural Shapes: From Unifying Shape Description to Simple Methods for Shape Analysis and Boundary Value Problems , 2012, PloS one.
[39] Qi Chang-han. A Study on the Fractal Characters and the Visual Simulation of Rice Morphology , 2002 .
[40] John A. Nelder,et al. A Simplex Method for Function Minimization , 1965, Comput. J..
[41] Bruno Andrieu,et al. A comparative analysis of leaf shape of wheat, barley and maize using an empirical shape model. , 2011, Annals of botany.
[42] F. Hallé,et al. Modular Growth in Seed Plants , 1986 .
[43] J. Gielis,et al. Comparison of dwarf bamboos (Indocalamus sp.) leaf parameters to determine relationship between spatial density of plants and total leaf area per plant , 2015, Ecology and evolution.
[44] L. Clark,et al. Evolution of the bamboos (Bambusoideae; Poaceae): a full plastome phylogenomic analysis , 2015, BMC Evolutionary Biology.
[45] Y. Suyama,et al. Clonal structure in a dwarf bamboo (Sasa senanensis) population inferred from amplified fragment length polymorphism (AFLP) fingerprints , 2000, Molecular ecology.
[46] J. Hanan,et al. Rice morphogenesis and plant architecture: measurement, specification and the reconstruction of structural development by 3D architectural modelling. , 2005, Annals of botany.