La tecnologia robotica può salvare I beni culturali sommersi?

Autori

  • Ramiro Dell'Erba ENEA http://orcid.org/0000-0002-4857-4025
  • Claudio Moriconi Laboratorio di Robotica Centro Ricerche ENEA Casaccia
  • Alfredo Trocciola ENEA Technical Unit Technology – Biogeochemistry Laboratory Piazzale E. Fermi, 1, 80055 Po

DOI:

https://doi.org/10.48258/arc.v9i3.1560

Parole chiave:

Robotica mobile, Beni Culturali, Museo Remoto, ROV

Abstract

Cultural Heritage can largely profit from the set of technologies that have
recently been developed in Submarine Robotics. In this paper, we focus on how
underwater robotics and related technologies can be used to enhance economical fruition, control, protection and social impact of the cultural heritage.

Robots allow online experience, in remote locations, realizing the remote
museum concept as an extension and enhancement of the virtual museum. These solutions push the cultural tourism beyond actual limits of the sites like the number of simultaneous visitors, the travelling costs, the difficulties to
access dangerous locations coming to a true, advanced fruition of the Cultural
Heritage goods.

Biografia autore

Ramiro Dell'Erba, ENEA

Laboratorio di Robotica Centro Ricerche ENEA Casaccia

Riferimenti bibliografici

Bonabeau, E., Dorigo, M. and Theraulaz, G. (1999) Swarm intelligence from natural to artificial isystems. New York: Oxford University Press.

Burgard, W. et al. (1999) ‘Experiences with an interactive museum tour-guide robot', Artificial Intelligence, 114(1), pp. 3–55. doi: 10.1016/S0004-3702(99)00070-3.

Conte, G. et al. (2009) ‘Underwater vehicle technology in the European research project VENUS', Underwater Technology, 28(4), pp. 175–185.

Conte, G. et al. (2010) ‘Robotics tools for underwater archaeology', in Science For Cultural Heritage: Technological Innovation and Case Studies in Marine and Land Archaeology in the Adriatic Region and Inland. World Scientific, pp. 187–194.

De Nardi, R. and Holland, O. (2006) ‘Swarmav: A swarm of miniature aerial vehicles'. Available at: http://cogprints.org/5569/ (Accessed: 7 November 2014).

Dell'Erba, R. and Moriconi, C. (no date) Bio-inspired Robotics ” it. Available at: http://www.enea.it/it/produzione-scientifica/edizioni-enea/2014/bio-inspirede-robotics-proceedings (Accessed: 15 December 2014).

dell'Erba R. (2006) Tecsis project. Workshop Multi-quality approach to cultural heritage Roma CNR. Roma, Italy.

dell'Erba R. (2008) The Sixth IARP-IEEE/RAS-EURON Joint Workshop on Technical Challenges for Dependable Robots in Human Environment, May 17-18, 2008, Pasadena, California

dell'Erba R. (2008) European Conference on Research for Protection, C. and E. of C. H., Kolar, J. and Strlić, M. (2010) Cultural heritage research meets practice Conference postprints. Ljubljana: Narodna in univerzitetna knjižnica. Available at: http://www.chresp.net/CHRESP_postprint.pdf (Accessed: 27 August 2018).

Fantoni, R. et al. (2013a) ‘Laser-induced fluorescence study of medieval frescoes by Giusto de' Menabuoi', Journal of Cultural Heritage, 14(3 SUPPL), pp. S59–S65.

Fantoni, R. et al. (2013b) ‘Laser-induced fluorescence study of medieval frescoes by Giusto de' Menabuoi', Journal of Cultural Heritage, 14(3 SUPPL), pp. S59–S65.

Germak, C. et al. (2015) ‘Robots and cultural heritage: New museum experiences', Journal of Science and Technology of the Arts, 7(2), pp. 47–57.

Scaradozzi, D. et al. (2014) ‘Innovative strategy and process for underwater data gathering and results elaboration', in Control and Automation (MED), 2014 22nd Mediterranean Conference of. IEEE, pp. 652–657.

Trahanias, P. et al. (2000) ‘Tourbot-interactive museum tele-presence through robotic avatars', in Proc. of the 9th International World Wide Web Conference.

Pennetta M., Minopoli C., Pica R., Trocciola A., Donadio C. (2017), Nuove conoscenze sull'ubicazione dell'approdo di epoca romana: assetto geomorfologico dell'area marina di Sinuessa, (pp.73-91), in SINUESSA, un approdo sommerso di epoca romana - Archeologia, geomorfologia costiera, strategie sostenibili di valorizzazione. Ed. ENEA, pp. 172, ISBN: 978-88-8286-340-1

Pennetta M., Stanislao C., D'ambrosio V., Marchese F., Minopoli C., Trocciola A., Valente R., Donadio C. (2016), Geomorphological features of the archaeological marine area of Sinuessa in Campania, southern Italy. QUATERNARY INTERNATIONAL. 198-213, 425. Elsevier Ltd, ISSN: 10406182. http://dx.doi.org/10.1016/j.quaint.2016.04.019

Trocciola A., Minopoli C., Pica R., Ruggi D'aragona M.G., Santanastasio R., Sarao P. (2017), Elaborazione di un itinerario subacqueo sul banco roccioso di Sinuessa. (pp.143-152), in SINUESSA, un approdo sommerso di epoca romana - Archeologia, geomorfologia costiera, strategie sostenibili di valorizzazione. Ed. ENEA, pp. 172, ISBN: 978-88-8286-340-1

Trocciola A., Minopoli C., Pica R., Sarao P., Ruggi D'aragona M. G., Caputo P., Santanastasio R. (2014) Indagine geofisica per la comprensione dei fenomeni di sprofondamento di strutture costiere di epoca romana nell'area archeologica sommersa di Sinuessa del golfo di Gaeta. Atti del Workshop in geofisica, 6 dicembre 2013. Museo Civico di Rovereto, Ed. Osiride,pp. 69-81.

Trocciola A., Minopoli C., Pica R., Sarao P. (2013), Indagini geofisiche per la mappatura dei fondali e delle antiche strutture portuali sommerse di Sinuessa. Archeomatica, 4, pp.26-29, Roma

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Pubblicato

2018-11-16

Come citare

Dell’Erba, R., Moriconi, C., & Trocciola, A. (2018). La tecnologia robotica può salvare I beni culturali sommersi?. Archeomatica, 9(3). https://doi.org/10.48258/arc.v9i3.1560

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