Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs
Wolf-Homeyer S, Engelmann J, Schneider A (2016)
Bioinspiration & Biomimetics 11(5): 55002.
Zeitschriftenaufsatz
| Veröffentlicht | Englisch
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Autor*in
Wolf-Homeyer, Sabine;
Engelmann, JacobUniBi ;
Schneider, Axel
Einrichtung
Abstract / Bemerkung
Weakly electric fish use self-generated electric fields for communication and for active electrolocation. The sensor part of the biological system consists of a vast amount of electroreceptors which are distributed across the skin of the electric fish. Fish utilise changes of their position and body geometry to aid in the extraction of sensory information. Inspired by the biological model, this study looks for a fixed, minimal scanning strategy compiled of active receptor-system movements that allows unique identification of the positions of objects in the vicinity. The localisation method is based on the superposition of numerical extracted contour-rings of rotated and/or linearly shifted EEVs (Solberg et al 2008 Int. J. Rob. Res. 27 529-48), simulated by means of FEM. For the evaluation of a movement sequence, matrices of unique intersection points and respective contrast functions are introduced. The resultant optimal scanning strategy consists of a combination of a linear shift and a rotation of the original EEV.
Erscheinungsjahr
2016
Zeitschriftentitel
Bioinspiration & Biomimetics
Band
11
Ausgabe
5
Art.-Nr.
55002
ISSN
1748-3190
Page URI
https://pub.uni-bielefeld.de/record/2905350
Zitieren
Wolf-Homeyer S, Engelmann J, Schneider A. Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs. Bioinspiration & Biomimetics. 2016;11(5): 55002.
Wolf-Homeyer, S., Engelmann, J., & Schneider, A. (2016). Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs. Bioinspiration & Biomimetics, 11(5), 55002. doi:10.1088/1748-3190/11/5/055002
Wolf-Homeyer, Sabine, Engelmann, Jacob, and Schneider, Axel. 2016. “Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs”. Bioinspiration & Biomimetics 11 (5): 55002.
Wolf-Homeyer, S., Engelmann, J., and Schneider, A. (2016). Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs. Bioinspiration & Biomimetics 11:55002.
Wolf-Homeyer, S., Engelmann, J., & Schneider, A., 2016. Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs. Bioinspiration & Biomimetics, 11(5): 55002.
S. Wolf-Homeyer, J. Engelmann, and A. Schneider, “Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs”, Bioinspiration & Biomimetics, vol. 11, 2016, : 55002.
Wolf-Homeyer, S., Engelmann, J., Schneider, A.: Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs. Bioinspiration & Biomimetics. 11, : 55002 (2016).
Wolf-Homeyer, Sabine, Engelmann, Jacob, and Schneider, Axel. “Electrolocation of objects in fluids by means of active sensor movements based on discrete EEVs”. Bioinspiration & Biomimetics 11.5 (2016): 55002.
Daten bereitgestellt von European Bioinformatics Institute (EBI)
2 Zitationen in Europe PMC
Daten bereitgestellt von Europe PubMed Central.
Fully 3D Printed Multi-Material Soft Bio-Inspired Whisker Sensor for Underwater-Induced Vortex Detection.
Gul JZ, Su KY, Choi KH., Soft Robot 5(2), 2018
PMID: 29297780
Gul JZ, Su KY, Choi KH., Soft Robot 5(2), 2018
PMID: 29297780
Application of reduced sensor movement sequences as a precursor for search area partitioning and a selection of discrete EEV contour-ring fragments for active electrolocation.
Wolf-Homeyer S, Engelmann J, Schneider A., Bioinspir Biomim 13(6), 2018
PMID: 30226470
Wolf-Homeyer S, Engelmann J, Schneider A., Bioinspir Biomim 13(6), 2018
PMID: 30226470
References
Daten bereitgestellt von Europe PubMed Central.
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