Autonomous mobile bionanosensor networks for target tracking: A two-dimensional model
Tài liệu tham khảo
Akyildiz, 2008, Nanonetworks: a new communication paradigm, Comput. Netw., 52, 2260, 10.1016/j.comnet.2008.04.001
Hiyama, 2010, Molecular communication: harnessing biochemical materials to engineer biomimetic communication systems, Nano Commun. Netw., 1, 20, 10.1016/j.nancom.2010.04.003
Nakano, 2012, Molecular communication and networking: opportunities and challenges, IEEE Trans. NanoBiosci., 11, 135, 10.1109/TNB.2012.2191570
Nakano, 2013
Nakano, 2014, Molecular communication among biological nanomachines: a layered architecture and research issues, IEEE Trans. Nanobiosci,, 10.1109/TNB.2014.2316674
Fischer, 2009, A smart dust biosensor powered by kinesin motors, Nature Nanotechnol., 4, 162, 10.1038/nnano.2008.393
Sasaki, 2010, A nanosensory device fabricated on a liposome for detection of chemical signals, Biotechnol. Bioeng., 105, 37, 10.1002/bit.22521
Purnick, 2009, The second wave of synthetic biology from modules to systems, Nature Rev. Molecular Cell Biology, 10, 410, 10.1038/nrm2698
Y. Okaie, T. Nakano, T. Hara, S. Nishio, Single Target Tracking in Bionanosensor Networks: Preliminary Simulation Results, in Proc. 8th International Conference on Body Area Networks (BODYNETS), 2013, pp. 476–477.
Y. Okaie, T. Nakano, T. Hara, K. Hosoda, Y. Hiraoka, S. Nishio, Cooperative target tracking by a bacterium-based mobile sensor network, submitted.
Y. Okaie, T. Nakano, T. Hara, K. Hosoda, Y. Hiraoka, S. Nishio, Modeling and Performance Evaluation of Mobile Bionanosensor Networks for Target Tracking, in Proc. IEEE International Conference on Communications (ICC 2014), 2014.
Karl, 2005
H.T. Kung, D. Vlah, Efficient location tracking using sensor networks, in: IEEE Wireless Communications and Networking Conference (WCNC), 2003.
Zhang, 2004, Dctc: dynamic convoy tree-based collaboration for target tracking in sensor networks, IEEE Trans. Wireless Commun., 3, 1689, 10.1109/TWC.2004.833443
J.W.Y. Xu, W.-C. Lee, Prediction-based strategies for energy saving in object tracking sensor networks, in: IEEE International Conference on Mobile Data Management (MDM’04), 2004.
Rao, 2004, Purposeful mobility for relaying and surveillance in mobile ad hoc sensor networks, IEEE Trans. Mob. Comput., 3, 225, 10.1109/TMC.2004.26
Zou, 2007, Distributed mobility management for target tracking in mobile sensor networks, IEEE Trans. Mob. Comput., 6, 872, 10.1109/TMC.2007.1005
Enyang Xu, 2013, Target tracking and mobile sensor navigation in wireless sensor networks, IEEE Trans. Mob. Comput., 12, 177, 10.1109/TMC.2011.262
Ma, 2008, Managing the mobility of a mobile sensor network using network dynamics, IEEE Trans. Parallel Distrib. Syst., 19, 106, 10.1109/TPDS.2007.1113
P. Bogdan, G. Wei, R. Marculescu, Modeling populations of micro-robots for biological applications, in: IEEE International Conference on Communications (ICC) Workshop on Molecular and Nano-scale Communications (MoNaCom 2012), 2012.
Wei, 2013, Bumpy rides: modeling the dynamics of chemotactic interacting bacteria, IEEE J. Sel. Areas Commun., 31, 879, 10.1109/JSAC.2013.SUP2.12130020
Wei, 2013, Efficient modeling and simulation of bacteria-based nanonetworks with BNSim, IEEE J. Sel. Areas Commun., 31, 868, 10.1109/JSAC.2013.SUP2.12130019
Gregori, 2010, A new nanonetwork architecture using flagellated bacteria and catalytic nanomotors, IEEE J. Sel. Areas Commun., 28, 612, 10.1109/JSAC.2010.100510
Cobo, 2010, Bacteria-based communication in nanonetworks, Nano Commun. Netw., 1, 244, 10.1016/j.nancom.2010.12.002
Balasubramaniam, 2013, Multi-hop conjugation based bacteria nanonetworks, IEEE Trans. Nanobiosci,, 12, 47, 10.1109/TNB.2013.2239657
Y. Okaie, T. Nakano, Nanomachine placement strategies for detecting brownian molecules in nanonetworks, in: Proc. IEEE Wireless Communications and Networking Conference (WCNC), 2012, pp. 1777–1781.
Okaie, 2013, Distributing nanomachines for minimizing mean residence time of molecular signals in bionanosensor networks, IEEE Sensors, 14, 128
Keller, 1971, Model for chemotaxis, J. Theor. Biol., 30, 225, 10.1016/0022-5193(71)90050-6
