Image-Based 2D PCD for Morphological Analysis of Tendrils-Like Structure
91
8. Burris, J.N., Lenaghan, S.C., Stewart, C.N.: Climbing plants: attachment adaptations and bioinspired innovations. Plant Cell Rep. 37(4), 565–574 (2017). https://
doi.org/10.1007/s00299-017-2240-y
9. Sousa-Baena, M.S., Lohmann, L.G., Hernandes-Lopes, J., Sinha, N.R.: The molecular control of tendril development in angiosperms. New Phytol. 218(3), 944–958
(2018)
10. Gianoli, E.: The behavioural ecology of climbing plants. AoB Plants 7 (2015)
11. Darwin, C.: The Movements and Habits of Climbing Plants. John Murray, London
(1875)
12. Peressotti, A., et al.: Flexible control of movement in plants. Sci. Rep. 218 (2019)
13. Sousa-Baena, M., Lohmann, L., Hernandes-Lopes, J., Sinha, N.: The molecular
control of tendril development in angiosperms. New Phytol. 218, 03 (2018)
14. Vidoni, R., Mimmo, T., Pandolfi, C.: Tendril-based climbing plants to model, simulate and create bio-inspired robotic systems. J. Bionic Eng. 12, 04 (2015)
15. Burris, J.N., Lenaghan, S.C., Stewart, C.N.: Climbing plants: attachment adaptations and bioinspired innovations. Plant Cell Rep. 37(4), 565–574 (2017). https://
doi.org/10.1007/s00299-017-2240-y
16. Gerbode, S.J., Puzey, J.R., McCormick, A.G., Mahadevan, L.: How the cucumber
tendril coils and overwinds. Science 337(6098), 1087–1091 (2012)
17. Singh, G., Xiao, C., Hsiao-Wecksler, E., Krishnan, G.: Design and analysis of coiled
fiber reinforced soft pneumatic actuator. Bioinspiration Biomimetics 13, 02 (2018)
18. Mehling, J.S., Diftler, M.A., Chu, M., Valvo, M.: A minimally invasive tendril robot
for in-space inspection. In: The First IEEE/RAS-EMBS International Conference
on Biomedical Robotics and Biomechatronics, 2006. BioRob 2006, February 2006
19. Wooten, M.B., Walker, I.D.: Vine-inspired continuum tendril robots and circumnutations. Robotics 7, 58 (2018)
20. Must, I., Sinibaldi, E., Mazzolai, B.: A variable-stiffness tendril-like soft robot
based on reversible osmotic actuation. Nat. Commun. 10(1), 1–18 (2019)
21. Feng, J., Zhang, W., Liu, C., Guo, M., Zhang, C.: Homoclinic and heteroclinic
orbits in climbing cucumber tendrils. Sci. Rep. 9, 03 (2019)
22. Fan, J., Dottore, E.D., Visentin, F., Mazzolai, B.: Image-based approach to reconstruct curling in continuum structures. In: 2020 3rd IEEE International Conference
on Soft Robotics (RoboSoft), pp. 544–549 (2020)
23. Pickover, C.A.: Mathematics and beauty: a sampling of spirals and ‘strange’ spirals
in science, nature and art. Leonardo 21(2), 173–181 (1988)
24. Rafsanjani, A., Brul´ e, V., Western, T.L., Pasini, D.: Hydro-responsive curling of
the resurrection plant selaginella lepidophylla. Sci. Rep. 5, 8064 (2015)
25. Gonthina, P.S., Kapadia, A.D., Godage, I.S., Walker, I.D.: Modeling variable curvature parallel continuum robots using Euler curves. In: 2019 International Conference on Robotics and Automation (ICRA), vol. 05 (2019)
26. Heald, M.A.: Rational approximations for the fresnel integrals (1985)
91
8. Burris, J.N., Lenaghan, S.C., Stewart, C.N.: Climbing plants: attachment adaptations and bioinspired innovations. Plant Cell Rep. 37(4), 565–574 (2017). https://
doi.org/10.1007/s00299-017-2240-y
9. Sousa-Baena, M.S., Lohmann, L.G., Hernandes-Lopes, J., Sinha, N.R.: The molecular control of tendril development in angiosperms. New Phytol. 218(3), 944–958
(2018)
10. Gianoli, E.: The behavioural ecology of climbing plants. AoB Plants 7 (2015)
11. Darwin, C.: The Movements and Habits of Climbing Plants. John Murray, London
(1875)
12. Peressotti, A., et al.: Flexible control of movement in plants. Sci. Rep. 218 (2019)
13. Sousa-Baena, M., Lohmann, L., Hernandes-Lopes, J., Sinha, N.: The molecular
control of tendril development in angiosperms. New Phytol. 218, 03 (2018)
14. Vidoni, R., Mimmo, T., Pandolfi, C.: Tendril-based climbing plants to model, simulate and create bio-inspired robotic systems. J. Bionic Eng. 12, 04 (2015)
15. Burris, J.N., Lenaghan, S.C., Stewart, C.N.: Climbing plants: attachment adaptations and bioinspired innovations. Plant Cell Rep. 37(4), 565–574 (2017). https://
doi.org/10.1007/s00299-017-2240-y
16. Gerbode, S.J., Puzey, J.R., McCormick, A.G., Mahadevan, L.: How the cucumber
tendril coils and overwinds. Science 337(6098), 1087–1091 (2012)
17. Singh, G., Xiao, C., Hsiao-Wecksler, E., Krishnan, G.: Design and analysis of coiled
fiber reinforced soft pneumatic actuator. Bioinspiration Biomimetics 13, 02 (2018)
18. Mehling, J.S., Diftler, M.A., Chu, M., Valvo, M.: A minimally invasive tendril robot
for in-space inspection. In: The First IEEE/RAS-EMBS International Conference
on Biomedical Robotics and Biomechatronics, 2006. BioRob 2006, February 2006
19. Wooten, M.B., Walker, I.D.: Vine-inspired continuum tendril robots and circumnutations. Robotics 7, 58 (2018)
20. Must, I., Sinibaldi, E., Mazzolai, B.: A variable-stiffness tendril-like soft robot
based on reversible osmotic actuation. Nat. Commun. 10(1), 1–18 (2019)
21. Feng, J., Zhang, W., Liu, C., Guo, M., Zhang, C.: Homoclinic and heteroclinic
orbits in climbing cucumber tendrils. Sci. Rep. 9, 03 (2019)
22. Fan, J., Dottore, E.D., Visentin, F., Mazzolai, B.: Image-based approach to reconstruct curling in continuum structures. In: 2020 3rd IEEE International Conference
on Soft Robotics (RoboSoft), pp. 544–549 (2020)
23. Pickover, C.A.: Mathematics and beauty: a sampling of spirals and ‘strange’ spirals
in science, nature and art. Leonardo 21(2), 173–181 (1988)
24. Rafsanjani, A., Brul´ e, V., Western, T.L., Pasini, D.: Hydro-responsive curling of
the resurrection plant selaginella lepidophylla. Sci. Rep. 5, 8064 (2015)
25. Gonthina, P.S., Kapadia, A.D., Godage, I.S., Walker, I.D.: Modeling variable curvature parallel continuum robots using Euler curves. In: 2019 International Conference on Robotics and Automation (ICRA), vol. 05 (2019)
26. Heald, M.A.: Rational approximations for the fresnel integrals (1985)
