Cole Bio-Impedance Model Variations in $Daucus~Carota~Sativus$ Under Heating and Freezing Conditions
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Ahmed S. Elwakil | Ahmed Gomaa Radwan | Lobna A. Said | Ahmed H. Madian | Bahaaaldeen M. Aboalnaga | A. Elwakil | A. Radwan | L. Said | A. Madian
[1] Marc Hendrickx,et al. Carrot β-carotene degradation and isomerization kinetics during thermal processing in the presence of oil. , 2012, Journal of agricultural and food chemistry.
[2] J. P. Buren,et al. THE CHEMISTRY OF TEXTURE IN FRUITS AND VEGETABLES , 1979 .
[3] D. Northcote. Chemistry of the Plant Cell Wall , 1972 .
[4] R. S. Pearce,et al. Plant Freezing and Damage , 2001 .
[5] M. Hendrickx,et al. Pectin fraction interconversions: Insight into understanding texture evolution of thermally processed carrots. , 2006, Journal of agricultural and food chemistry.
[6] H. Ramaswamy,et al. Effect of high pressure processing on the texture of selected fruits and vegetables , 1998 .
[7] Sreeurpa Ray,et al. The Cell: A Molecular Approach , 1996 .
[8] Ahmed S. Elwakil,et al. Extracting the parameters of the single-dispersion Cole bioimpedance model using a magnitude-only method , 2015, Comput. Electron. Agric..
[9] K. Muhlethaler. Ultrastructure and Formation of Plant Cell Walls , 1967 .
[10] Todd J. Freeborn,et al. A Survey of Fractional-Order Circuit Models for Biology and Biomedicine , 2013, IEEE Journal on Emerging and Selected Topics in Circuits and Systems.
[11] Juan Manuel Ponce,et al. Automatic Counting and Individual Size and Mass Estimation of Olive-Fruits Through Computer Vision Techniques , 2019, IEEE Access.
[12] Guan Gui,et al. Multi-Task Cascaded Convolutional Networks Based Intelligent Fruit Detection for Designing Automated Robot , 2019, IEEE Access.
[13] Shiva Gholami-Boroujeny,et al. Extraction of Cole parameters from the electrical bioimpedance spectrum using stochastic optimization algorithms , 2015, Medical & Biological Engineering & Computing.
[14] K. Waldron,et al. Effect of Cooking and Pre‐Cooking on Cell‐Wall Chemistry in Relation to Firmness of Carrot Tissues , 1997 .
[15] Debalina Ghosh,et al. Synthesis of linear aperiodic array using Cauchy mutated cat swarm optimization , 2017 .
[16] Wilson Castro,et al. Classification of Cape Gooseberry Fruit According to its Level of Ripeness Using Machine Learning Techniques and Different Color Spaces , 2019, IEEE Access.
[17] D. Northcote. THE CELL WALLS OF HIGHER PLANTS: THEIR COMPOSITION, STRUCTURE AND GROWTH , 1958 .
[18] Weikuan Jia,et al. A Detection Method for Apple Fruits Based on Color and Shape Features , 2019, IEEE Access.
[19] Ahmed S. Elwakil,et al. Experimental comparison of integer/fractional-order electrical models of plant , 2017 .
[20] R. D. Preston,et al. The physical biology of plant cell walls , 1975 .
[21] A. V. Van Loey,et al. Effect of high pressure/high temperature processing on cell wall pectic substances in relation to firmness of carrot tissue. , 2008, Communications in agricultural and applied biological sciences.
[22] Kenneth S. Cole,et al. PERMEABILITY AND IMPERMEABILITY OF CELL MEMBRANES FOR IONS , 1940 .
[23] T. Repo,et al. Electrical impedance analysis in plant tissues: on the biological meaning of Cole-Cole α in Scots pine needles , 1995, European Biophysics Journal.
[24] Fernando Seoane,et al. Cole equation and parameter estimation from electrical bioimpedance spectroscopy measurements - A comparative study , 2009, 2009 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[25] Dalia Yousri,et al. Biologically Inspired Optimization Algorithms for Fractional-Order Bioimpedance Models Parameters Extraction , 2018 .
[26] Tapani Repo,et al. Modelling Woody Plant Tissues5 , 1993 .
[27] Dalia Yousri,et al. Biological Inspired Optimization Algorithms for Cole-Impedance Parameters Identification , 2017 .
[28] M. I. Zhang,et al. Electrical impedance analysis in plant tissues: The effect of freeze-thaw injury on the electrical properties of potato tuber and carrot root tissues , 1992 .