Biomedical Engineering Reference
In-Depth Information
References
[17] T.D. Seeley, P.K. Visscher, T. Schlegel, P.M. Hogan, N.R.
Franks, and J.A.R. Marshall, Stop signals provide cross-
inhibition in collective decision-making by honeybee
swarms, Science 335 (2012), 108-111.
[18] T.D. Seeley, Honeybee democracy , Princeton University
Press, Princeton, NJ, USA (2010).
[19] C.T. Hansen and T.A. Lenau, Developing engineering
design core competences through analysis of industrial
products, Proceedings of the 7th International CDIO con-
ference , Technical University of Denmark, Copenhagen,
Denmark (20-23 June 2011).
[20] M. Worall, Homeostasis in nature: nest building ter-
mites and intelligent buildings, Intell Buildings Int 3
(2011), 87-95.
[21] J.S. Turner and R.C. Soar, Beyond biomimicry: what
termites can tell us about realizing the living building,
Proceedings of the 1st International conference on industri-
alized, intelligent construction (I3CON) (T. Hansen and J.
Ye, eds.), Loughborough University, UK (14-16 May
2008), 221-237.
[22] C. Kleineindan, R. Ernst, and F. Roces, Wind-induced
ventilation of the giant nests of the leaf-cutting ant Atta
vollenweideri , Naturwissen 88 (2001), 301-305.
[23] S. Garnier, J. Gautrais, and G. Theraulaz, The biological
principles of swarm intelligence, Swarm Intell 1 (2007),
3-31.
[24] N.R. Franks and J.-L. Deneubourg, Self-organizing nest
construction in ants: the behavior of individual workers
and the properties of the nest's dynamics, Anim Behav
54 (1997), 779-796.
[25] C. Tate-Holbrook, R.M. Clark, D. Moore, R.P. Overson,
C.A. Penick, and A.A. Smith, Social insects inspire
human design, Biol Lett 6 (2010), 421-433.
[26] N.J. Mlot, C.A. Tovey, and D.L. Hu, Fire ants self-
assemble into waterproof rafts to survive floods, Proc
Natl Acad Sci 108 (2011), 7669-7673.
[27] T.C. Schneirla, R.Z. Brown, and F.C. Brown, The
bivouac or temporary nest as an adaptive factor in
certain terrestrial species of army ants, Ecol Monogr 24
(1954), 269-296.
[28] I.D. Couzin and N.R. Franks, Self-organized lane for-
mation and optimized traffic flow in army ants, Proc R
Soc Lond B 270 (2003), 139-146.
[29] A. Dussotour, V. Fourcassie, D. Helbing, and
J.-L. Deneubourg, Optimal traffic organization in
ants under crowded conditions, Nature 428 (2004),
70-73.
[30] D. Floreano, P. Husbands, and S. Nolfi, Evolutionary
robotics, in Handbook of robotics (B. Siciliano and O.
Khatib, eds.), Springer-Verlag, Berlin, Germany (2008),
1423-1451.
[31] V. Trianni, S. Nolfi, and M. Dorigo, Cooperative hole
avoidance in a swarm-bot, Robot Auton Syst 54 (2006),
97-103.
[1] J.K. Parrish, S.V. Viscido, and D. Grunbaum, Self-organ-
ized fish schools: an examination of emergent proper-
ties, Biol Bull 202 (2002), 296-305.
[2] J.M. Pasteels, J.-L. Deneubourg, and S. Goss, Self-organ-
isation mechanisms in ant societies. I. The example of
food recruitment, in From individual to collective behavior
in social insects (J.M. Pasteels and J.-L. Deneubourg,
eds.), Birkhäuser, Basel, Switzerland (1987), 177-196.
[3] W. Bialek, A. Cavagna, I. Giardina, T. Morad, E. Silves-
trib, M. Vialeb, and A.M. Walczake, Statistical mechan-
ics for natural flocks of birds, Proc Natl Acad Sci 109
(2012), 4786-4791.
[4] D.J.T. Sumpter, The principles of collective animal
behavior, Phil Trans R Soc Lond B 361 (2006), 5-22.
[5] C.
Reynolds,
Boids—background
and
update,
http:// www.red3d.com/cwr/boids/
(accessed
30
April 2012).
[6] C.W. Reynolds, Flocks, herds, and schools: a distrib-
uted behavioral model, Comput Graph 21 (1987),
25-34.
[7] M. Ballerini, N. Cabibbo, R. Candelier, A. Cavagna,
E. Cisbani, I. Giardina, A. Orlandi, G. Parisi, A. Procaccini,
M. Viale, and V. Zdravkovic, Empirical investigation
of starling flocks: a benchmark study in collective
animal behavior, Anim Behav 76 (2008), 201-215.
[8] A. Cavagna, A. Cimarelli, I. Giardina, G. Parisi, R. San-
tagati, F. Stefanini, and M. Viale, Scale-free correlations
in starling flocks, Proc Natl Acad Sci 107 (2010),
11865-11870.
[9] B. Webb, Can robots make good models of biological
behavior? Behav Brain Sci 24 (2001), 1033-1050.
[10] S. Garnier, From ants to robots and back: how robotics
can contribute to the study of collective animal behav-
ior, in Bio-inspired self-organizing robotic systems ,
(Y. Meng and Y. Jin, eds.), Springer-Verlag, Heidelberg,
Germany (2011), 105-120.
[11] B. Webb and T.R. Consi, Biorobotics—methods and appli-
cation , MIT Press, Menlo Park, CA, USA (2001).
[12] http://www.sartre-project.eu (accessed 31 May 2012).
[13] A. Bürkle, F. Segor, and M. Kollmann, Towards autono-
mous micro UAV swarms, J Intell Robot Syst 61 (2011),
339-353.
[14] O. Holland, R. De Nardi, J. Woods, and A. clark, Beyond
swarm intelligence: the ultraswarm, Proceedings—2005
IEEE swarm intelligence symposium , Pasadena, CA, USA
(8-10 June 2005), 225-232.
[15] R. De Nardi and O. Holland, UltraSwarm: a further
step towards a flock of miniature helicopters, Swarm
Robotics 4433 (2007), 116-128.
[16] S. Gilbert, L.A. Lewis, and S.S. Schneider, The role of
the vibration signal during nest-site selection by honey
bee swarms, Ethology 117 (2011), 254-264.
Search WWH ::




Custom Search