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2021 | OriginalPaper | Buchkapitel

Beyond Body Shape and Brain: Evolving the Sensory Apparatus of Voxel-Based Soft Robots

verfasst von : Andrea Ferigo, Giovanni Iacca, Eric Medvet

Erschienen in: Applications of Evolutionary Computation

Verlag: Springer International Publishing

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Abstract

Biological and artificial embodied agents behave by acquiring information through sensors, processing that information, and acting on the environment. The sensory apparatus, i.e., the location on the body of the sensors and the kind of information the sensors are able to capture, has a great impact on the agent ability of exhibiting complex behaviors. While in nature, the sensory apparatus is the result of a long-lasting evolution, in artificial agents (robots) it is usually the result of a design choice. However, when the agents are complex and the design space is large, making that choice can be hard. In this paper, we explore the possibility of evolving the sensory apparatus of voxel-based soft robots (VSRs), a kind of simulated robots composed of multiple deformable components. VSRs, due to their intrinsic modularity, allow for great freedom in how to shape the robot body, brain, and sensory apparatus. We consider a set of sensors that allow the agent to sense itself and the environment (using vision and touch) and we show, experimentally, that the effectiveness of the sensory apparatus depends on the shape of the body and on the actuation capability, i.e., the VSR strength. Then we show that evolutionary optimizaemedvet@units.ittion is able to evolve an effective sensory apparatus, even when constraints on the availability of the sensors are posed. By extending the adaptation to the sensory apparatus, beyond the body shape and the brain, we believe that our study takes a step forward to the ambitious path towards self-building robots.

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Literatur
1.
Zurück zum Zitat Cheney, N., MacCurdy, R., Clune, J., Lipson, H.: Unshackling evolution: evolving soft robots with multiple materials and a powerful generative encoding. In: Genetic and Evolutionary Computation Conference, pp. 167–174 (2013) Cheney, N., MacCurdy, R., Clune, J., Lipson, H.: Unshackling evolution: evolving soft robots with multiple materials and a powerful generative encoding. In: Genetic and Evolutionary Computation Conference, pp. 167–174 (2013)
2.
4.
Zurück zum Zitat Shah, D., Yang, B., Kriegman, S., Levin, M., Bongard, J., Kramer-Bottiglio, R.: Shape changing robots: bioinspiration, simulation, and physical realization. Adv. Mater. 2002882 (2020) Shah, D., Yang, B., Kriegman, S., Levin, M., Bongard, J., Kramer-Bottiglio, R.: Shape changing robots: bioinspiration, simulation, and physical realization. Adv. Mater. 2002882 (2020)
5.
Zurück zum Zitat Howison, T., Hauser, S., Hughes, J., Iida, F.: Reality-assisted evolution of soft robots through large-scale physical experimentation: a review. arXiv preprint arXiv:2009.13960 (2020) Howison, T., Hauser, S., Hughes, J., Iida, F.: Reality-assisted evolution of soft robots through large-scale physical experimentation: a review. arXiv preprint arXiv:​2009.​13960 (2020)
6.
Zurück zum Zitat Mintchev, S., Zappetti, D., Willemin, J., Floreano, D.: A soft robot for random exploration of terrestrial environments. In: International Conference on Robotics and Automation, pp. 7492–7497. IEEE (2018) Mintchev, S., Zappetti, D., Willemin, J., Floreano, D.: A soft robot for random exploration of terrestrial environments. In: International Conference on Robotics and Automation, pp. 7492–7497. IEEE (2018)
7.
Zurück zum Zitat Cheney, N., Bongard, J., Lipson, H.: Evolving soft robots in tight spaces. In: Genetic and Evolutionary Computation Conference, pp. 935–942 (2015) Cheney, N., Bongard, J., Lipson, H.: Evolving soft robots in tight spaces. In: Genetic and Evolutionary Computation Conference, pp. 935–942 (2015)
8.
Zurück zum Zitat Hallawa, A., Iacca, G., Sariman, C., Rahman, T., Cochez, M., Ascheid, G.: Morphological evolution for pipe inspection using robot operating system (ROS). Mater. Manuf. Processes 35(6), 714–724 (2020)CrossRef Hallawa, A., Iacca, G., Sariman, C., Rahman, T., Cochez, M., Ascheid, G.: Morphological evolution for pipe inspection using robot operating system (ROS). Mater. Manuf. Processes 35(6), 714–724 (2020)CrossRef
9.
Zurück zum Zitat Song, Y.S., et al.: Soft robot for gait rehabilitation of spinalized rodents. In: International Conference on Intelligent Robots and Systems, pp. 971–976. IEEE (2013) Song, Y.S., et al.: Soft robot for gait rehabilitation of spinalized rodents. In: International Conference on Intelligent Robots and Systems, pp. 971–976. IEEE (2013)
10.
Zurück zum Zitat Zhang, B., Fan, Y., Yang, P., Cao, T., Liao, H.: Worm-like soft robot for complicated tubular environments. Soft Rob. 6(3), 399–413 (2019)CrossRef Zhang, B., Fan, Y., Yang, P., Cao, T., Liao, H.: Worm-like soft robot for complicated tubular environments. Soft Rob. 6(3), 399–413 (2019)CrossRef
11.
Zurück zum Zitat Hiller, J., Lipson, H.: Automatic design and manufacture of soft robots. IEEE Trans. Rob. 28(2), 457–466 (2011)CrossRef Hiller, J., Lipson, H.: Automatic design and manufacture of soft robots. IEEE Trans. Rob. 28(2), 457–466 (2011)CrossRef
12.
Zurück zum Zitat Lee, H., et al.: 3D-printed programmable tensegrity for soft robotics. Sci. Rob. 5(45) (2020) Lee, H., et al.: 3D-printed programmable tensegrity for soft robotics. Sci. Rob. 5(45) (2020)
13.
Zurück zum Zitat Kriegman, S., Cheney, N., Bongard, J.: How morphological development can guide evolution. Sci. Rep. 8(1), 1–10 (2018) Kriegman, S., Cheney, N., Bongard, J.: How morphological development can guide evolution. Sci. Rep. 8(1), 1–10 (2018)
14.
Zurück zum Zitat Talamini, J., Medvet, E., Bartoli, A., De Lorenzo, A.: Evolutionary synthesis of sensing controllers for voxel-based soft robots. In: Artificial Life Conference, pp. 574–581. MIT Press (2019) Talamini, J., Medvet, E., Bartoli, A., De Lorenzo, A.: Evolutionary synthesis of sensing controllers for voxel-based soft robots. In: Artificial Life Conference, pp. 574–581. MIT Press (2019)
15.
Zurück zum Zitat Medvet, E., Bartoli, A., De Lorenzo, A., Fidel, G.: Evolution of distributed neural controllers for voxel-based soft robots. In: Genetic and Evolutionary Computation Conference, pp. 112–120 (2020) Medvet, E., Bartoli, A., De Lorenzo, A., Fidel, G.: Evolution of distributed neural controllers for voxel-based soft robots. In: Genetic and Evolutionary Computation Conference, pp. 112–120 (2020)
16.
Zurück zum Zitat Sims, K.: Evolving virtual creatures. In: Proceedings of the 21st Annual Conference on Computer Graphics and Interactive Techniques, pp. 15–22 (1994) Sims, K.: Evolving virtual creatures. In: Proceedings of the 21st Annual Conference on Computer Graphics and Interactive Techniques, pp. 15–22 (1994)
17.
Zurück zum Zitat Balakrishnan, K., Honavar, V.: On sensor evolution in robotics. In: Proceedings of the First International Conference on Genetic Programming, Citeseer, pp. 455–460 (1996) Balakrishnan, K., Honavar, V.: On sensor evolution in robotics. In: Proceedings of the First International Conference on Genetic Programming, Citeseer, pp. 455–460 (1996)
18.
Zurück zum Zitat Mautner, C., Belew, R.K.: Evolving robot morphology and control. Artif. Life Rob. 4(3), 130–136 (2000)CrossRef Mautner, C., Belew, R.K.: Evolving robot morphology and control. Artif. Life Rob. 4(3), 130–136 (2000)CrossRef
19.
Zurück zum Zitat Powers, J., Grindle, R., Kriegman, S., Frati, L., Cheney, N., Bongard, J.: Morphology dictates learnability in neural controllers. In: Artificial Life Conference, pp. 52–59. MIT Press (2020) Powers, J., Grindle, R., Kriegman, S., Frati, L., Cheney, N., Bongard, J.: Morphology dictates learnability in neural controllers. In: Artificial Life Conference, pp. 52–59. MIT Press (2020)
20.
Zurück zum Zitat Hiller, J., Lipson, H.: Dynamic simulation of soft multimaterial 3D-printed objects. Soft Rob. 1(1), 88–101 (2014)CrossRef Hiller, J., Lipson, H.: Dynamic simulation of soft multimaterial 3D-printed objects. Soft Rob. 1(1), 88–101 (2014)CrossRef
21.
Zurück zum Zitat Medvet, E., Bartoli, A., De Lorenzo, A., Seriani, S.:2D-VSR-SIM: a simulation tool for the optimization of 2-Dvoxel-based soft robots. SoftwareX 12, 100573 (2020) Medvet, E., Bartoli, A., De Lorenzo, A., Seriani, S.:2D-VSR-SIM: a simulation tool for the optimization of 2-Dvoxel-based soft robots. SoftwareX 12, 100573 (2020)
22.
Zurück zum Zitat Medvet, E., Bartoli, A., De Lorenzo, A., Seriani, S.: Design, validation, and case studies of 2D-VSR-SIM, an optimization-friendly simulator of 2-D Voxel-based soft robots. arXiv preprint arXiv:2001.08617 (2020) Medvet, E., Bartoli, A., De Lorenzo, A., Seriani, S.: Design, validation, and case studies of 2D-VSR-SIM, an optimization-friendly simulator of 2-D Voxel-based soft robots. arXiv preprint arXiv:​2001.​08617 (2020)
23.
Zurück zum Zitat Hansen, N., Ostermeier, A.: Completely derandomized self-adaptation in evolution strategies. Evol. Comput. 9(2), 159–195 (2001)CrossRef Hansen, N., Ostermeier, A.: Completely derandomized self-adaptation in evolution strategies. Evol. Comput. 9(2), 159–195 (2001)CrossRef
24.
Zurück zum Zitat Medvet, E., Bartoli, A.: GraphEA: a versatile representation and evolutionary algorithm for graphs. In: Workshop on Evolutionary and Population-based Optimization (WEPO@AIxIA) (2020) Medvet, E., Bartoli, A.: GraphEA: a versatile representation and evolutionary algorithm for graphs. In: Workshop on Evolutionary and Population-based Optimization (WEPO@AIxIA) (2020)
25.
Zurück zum Zitat Rothlauf, F., Goldberg, D.E.: Redundant representations in evolutionary computation. Evol. Comput. 11(4), 381–415 (2003)CrossRef Rothlauf, F., Goldberg, D.E.: Redundant representations in evolutionary computation. Evol. Comput. 11(4), 381–415 (2003)CrossRef
27.
Zurück zum Zitat Auerbach, J.E., Iacca, G., Floreano, D.: Gaining insight into quality diversity. In: Genetic and Evolutionary Computation Conference - Companion, pp. 1061–1064 (2016) Auerbach, J.E., Iacca, G., Floreano, D.: Gaining insight into quality diversity. In: Genetic and Evolutionary Computation Conference - Companion, pp. 1061–1064 (2016)
28.
Zurück zum Zitat Nordmoen, J., Veenstra, F., Ellefsen, K.O., Glette, K.: Quality and diversity in evolutionary modular robotics. arXiv preprint arXiv:2008.02116 (2020) Nordmoen, J., Veenstra, F., Ellefsen, K.O., Glette, K.: Quality and diversity in evolutionary modular robotics. arXiv preprint arXiv:​2008.​02116 (2020)
Metadaten
Titel
Beyond Body Shape and Brain: Evolving the Sensory Apparatus of Voxel-Based Soft Robots
verfasst von
Andrea Ferigo
Giovanni Iacca
Eric Medvet
Copyright-Jahr
2021
DOI
https://doi.org/10.1007/978-3-030-72699-7_14

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