Detection of funerary monuments in the northern necropolis of Segobriga using multispectral and georadar imaging

Rosario Cebrián

https://orcid.org/0000-0002-5560-1191

Spain

Universidad Complutense de Madrid image/svg+xml

Departamento de Prehistoria, Historia Antigua y Arqueología

Ignacio Hortelano

https://orcid.org/0000-0002-3883-2510

Spain

Equipo científico de Segobriga

Irene Ortiz

https://orcid.org/0000-0003-2558-3540

Spain

Universidad Complutense de Madrid image/svg+xml

Departamento de Didáctica de Ciencias Experimentales, Sociales y Matemáticas

Javier Vallés

https://orcid.org/0000-0002-3272-0876

Spain

Universidad Complutense de Madrid image/svg+xml

Unidad de Arqueometría y Análisis Arqueológico

|

Accepted: 2025-03-01

|

Published: 2025-06-06

DOI: https://doi.org/10.4995/var.2024.22738
Funding Data

Downloads

Additional Files

Keywords:

georadar (GPR), multispectral drone imaging, archaeological documentation, funerary structures, Gräberstraße, Roman period

Supporting agencies:

This research was not funded

Abstract:

The existence of an extensive Gräberstraße-type necropolis in the Roman city of Segobriga is confirmed by the funerary-type structures located 2,400 m from the city and by the excavation of five funerary monuments located along its main entrance/exit road. The inscriptions, sculptures and architectural remains of funerary character exhumed prove, in addition, its use by members of the higher social classes, including wealthy freedmen. Until now we did not know the spatial structuring of the monumenta and their relationship with each other and with the road. This information is vital to know the internal topographic organisation and the constructive density of the necropolis. Geophysical surveys with ground penetrating radar (GPR) and multispectral images captured with unmanned aerial vehicles (UAV) have recently been carried out in order to improve our knowledge in this field. They have been developed within the framework of an ongoing research project to study the northern suburb. The objective of these surveys was to identify new funerary monuments not visible on the surface along the route of the road. This paper analyses the methodology and processing of the two techniques used. It also evaluates their comparative applicability to detect buried remains in calcareous soils. The data obtained indicate the presence of mausoleums on both sides of the roadway according to the Italic model of funerary viae. Those located in the first line form two continuous rows, while isolated monuments are located at the rear. This model prevailed in the cemetery areas of the Western Roman Empire from the end of the 1st century BC onwards.

Show more Show less

References:

Abascal Palazón, J. M., Almagro-Gorbea, M., Cebrián Fernández, R. & Hortelano Uceda, I. (2008). Segóbriga 2007. Resumen de las intervenciones arqueológicas. Cuenca: Consorcio Parque Arqueológico de Segóbriga

Agudo, P. U., Pajas, J. A., Pérez-Cabello, F., Redón, J. V., & Lebrón, B. E. (2018). The potential of drones and sensors to enhance detection of archaeological cropmarks: A comparative study between multi-spectral and thermal imagery. Drones, 2(3), 29. https://doi.org/10.3390/drones2030029

Ali, S., Hanson, W. S., & Drummond, J. (2012). The potential of hyperspectral and multi-spectral imagery to enhance archaeological cropmark detection: a comparative study. Journal of Archaeological Science, 39(7), 1915–1924. https://doi.org/10.1016/j.jas.2012.01.034

Almagro-Gorbea, M., & Lorrio Alvarado, A. J. (1989). Segóbriga III. La muralla norte y la puerta principal: campañas 1986-1987. Cuenca: Diputación Provincial de Cuenca.

Arrayás Morales, I. (2005). Morfología histórica del territorio de "Tarraco" (ss. III-I A.C.). Barcelona: Ediciones de la Universitat de Barcelona.

Bennett, R., Welham, K., Hill, R. A., & Ford, A. L. J. (2012). The application of vegetation indices for the prospection of archaeological features in grass-dominated environments. Archaeological Prospection, 19(3), 209–218. https://doi.org/https://doi.org/10.1002/arp.1429

Brooke, C., & Clutterbuck, B. (2020). Mapping heterogeneous buried archaeological features using multisensor data from unmanned aerial vehicles. Remote Sensing, 12(1), 41. https://doi.org/10.3390/rs12010041

Campbell, V. (2015). The tombs of Pompeii: organization, space and society. New York: Routledge.

Cebrián Fernández, R. (2019). Las viae sepulchrales de Segobriga. Arquitectura y rituales funerarios. Onoba. Revista de Arqueología y Antigüedad, 7, 21-36. https://doi.org/10.33776/onoba.v7i0.3456

Cebrián Fernández, R. (2020). Nuevas inscripciones procedentes de la necrópolis septentrional de Segobriga, Cuenca (Conventus Carthaginensis, Hispania Citerior). Ficheiro Epigráfico 204-208, 3-13

Cebrián Fernández, R., Hortelano Uceda, I., & Panzram, S. (2019). La necrópolis septentrional de Segobriga y su configuración como suburbio cristiano. Interpretación de los resultados de la prospección geofísica. Archivo Español de Arqueología, 92, 191–212. https://doi.org/10.3989/aespa.092.019.010

Cebrián Fernández, R., Trunk, M., & Hortelano Uceda, I. (2022). Arquitectura y decoración de los monumentos funerarios de la necrópolis septentrional de Segobriga (provincia de Cuenca, Hispania citerior). Archivo Español de Arqueología, 95(e11). https://doi.org/10.3989/aespa.095.022.11

Chuvieco, E. (1995). Fundamentos de la teledetección espacial. Madrid: Ediciones RIALP S.A.

Conyers, L. B. (2015). Analysis and interpretation of GPR datasets for integrated archaeological mapping. Near Surface Geophysics, 13(6), 645–651. https://doi.org/10.3997/1873-0604.2015018

Cortesão Silva, F. (2015). The funerary practice of cremation at Augusta Emerita (Mérida, Spain) during High Empire: contributions from the anthropological analysis of burned human bone. In T. Thompson (Ed.), The Archaeology of cremation: burned human remains in funerary studies (pp. 123-150). Oxford: Oxbow Books.

Datt, B. (1999). A new reflectance index for remote sensing of chlorophyll content in higher plants: tests using eucalyptus leaves. Journal of Plant Physiology, 154(1), 30–36. https://doi.org/10.1016/S0176-1617(99)80314-9

Díaz Molina, M. & Lendínez González, A. (1992). Mapa geológico de la Hoja nº 633 (Palomares del Campo). Mapa Geológico de España E. 1:50.000. Segunda Serie (MAGNA), Primera edición. IGME.

Faltýnová, M., Pavelka, K., Nový, P., & Šedina, J. (2015). Complex archaeological prospection using combination of non-destructive techniques. International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL-5/W7, 141–146. https://doi.org/10.5194/isprsarchives-XL-5-W7-141-2015

Forte, E., Mocnik, A., Basso, P., Casagrande, G., Martinucci, D., Pillon, S., Possamai, M., & Zambrini, R. (2021). Optimised Extraction of Archaeological Features from Full 3-D GPR Data. Applied Sciences, 11(18): 8517. https://doi.org/10.3390/app11188517

Fuldain González, J. J., & Fuldain González, J. I. (2018). Prospección arqueológica en NDVI con drones. El uso de geoEuskadi como herramienta de ponderación de un nuevo método. Mapping, 27(192), 24–29.

Gnirs, A. (1930). Paralipomena aus Istrien und Aquileia. Jahreshefte des Österreichischen Archäologischen Institutes in Wien, 26, 177-189.

Gojda, M., & Hejcman, M. (2012). Cropmarks in main field crops enable the identification of a wide spectrum of buried features on archaeological sites in Central Europe. Journal of Archaeological Science, 39(6), 1655–1664. https://doi.org/10.1016/j.jas.2012.01.023

Goodman, D., Novo, A., Morelli, G., Piro, S., Kutrubes, D., & Lorenzo, H. (2011). Advances in GPR Imaging with Multi‐Channel Radar Systems from Engineering to Archaeology. Symposium on the Application of Geophysics to Engineering and Environmental, 416–422. https://doi.org/10.4133/1.3614128

Goodman, D., & Piro, S. (2013a). GPR Imaging on Historical Buildings and Structures. In GPR Remote Sensing in Archaeology (pp. 143–157). Springer Berlin Heidelberg. https://doi.org/10.1007/978-3-642-31857-3_7

Goodman, D., & Piro, S. (2013b). GPR Remote Sensing in Archaeology. Springer Berlin Heidelberg. https://doi.org/10.1007/978-3-642-31857-3

Goudineau, Ch. (Dir.) (2009). Rites funéraires à Lugdunum. Paris: Éditions Errance,

Haboudane, D., Miller, J. R., Pattey, E., Zarco-Tejada, P. J., & Strachan, I. B. (2004). Hyperspectral vegetation indices and novel algorithms for predicting green LAI of crop canopies: Modeling and validation in the context of precision agriculture. Remote Sensing of Environment, 90(3), 337–352. https://doi.org/https://doi.org/10.1016/j.rse.2003.12.013

Hesberg, H. von (1987). Planung und Ausgestaltung römischer Nekropolen im 2. Jh. n.Chr. In H. von Hesberg & P. Zanker, Römische Gräberstraßen. Selbstdarstellung-Status-Standard. Kol-loquium (pp. 43-60). München: Bayerische Akademie der Wissen-schaften

Von Hesberg, H. (1992). Römische Grabbauten, Darmstadt: Wiss. Buchges.

Von Hesberg, H., & Zanker, P. (Eds.) (1987). Römische Gräberstrassen. Selbstdarstellung-Status-Standard. Kol-loquium. München: Bayerische Akademie der Wissen-schaften.

Huete, A. R. (1987). Spectral Signatures and Vegetation Indices A. R. In II Reunión Nacional del Grupo de Trabajo en Teledetección. Unidad de Investigación en Teledetección (pp.15–25). València: Universitat de València.

Kalayci, T., Lasaponara, R., Wainwright, J. & Masini, N. (2019). Multispectral Contrast of Archaeological Features: A Quantitative Evaluation. Remote Sensing, 11(8), 913; https://doi.org/10.3390/rs11080913

Lorenzo, E. (1994). Prospección geofísica de alta resolución mediante georadar. Aplicación a obras civiles (Doctoral dissertation, Universidad Complutense de Madrid).

Materazzi, F., & Pacifici, M. (2022). Archaeological crop marks detection through drone multispectral remote sensing and vegetation indices: A new approach tested on the Italian pre-Roman city of Veii. Journal of Archaeological Science: Reports, 41, 103235. https://doi.org/10.1016/j.jasrep.2021.103235

Monterroso-Checa, A., Teixidó, T., Gasparini, M., Peña, J. A., Rodero, S., Moreno, J. C., & Morena, J. A. (2019). Use of Remote Sensing, Geophysical Techniques and Archaeological Excavations to Define the Roman Amphitheater of Torreparedones (Córdoba, Spain). Remote Sensing, 11(24), 2937; https://doi.org/10.3390/rs11242937

Murciano, J. M. (2019). Tipología monumental funeraria en Augusta Emerita. Origen y desarrollo entre los siglos I a. C. y IV d. C. Monografías Emeritenses, 12, 77-89.

Noguera Celdrán, J. M. (2012). Segobriga (Provincia de Cuenca, Hispania Citerior), Corpus Signorum Imperii Romani. España. Volumen I. Fascículo 4. Tarragona: Institut Català d'Arqueologia Clàssica.

Palomero Plaza, S. (1983). Las vías romanas de Segobriga y su contexto en las vías romanas de la actual provincial de Cuenca. In Homenaje al prof. Martín Almagro Basch (pp. 247-261). Madrid: Ministerio de Cultura.

Pérez García, Mª de la Vega (2001). Radar del subsuelo. Evaluación para aplicaciones en arqueología y en patrimonio histórico-artístico (Doctoral dissertation, Universitat Politècnica de Catalunya). Retrieved from http://www.tdx.cat/TDX-1031101-082820

Piro, S., & Campana, S. (2012). GPR investigation in different archaeological sites in Tuscany (Italy). Analysis and comparison of the obtained results. Near Surface Geophysics, 10(1), 47–56. https://doi.org/10.3997/1873-0604.2011047

Remolà, J. A. (2008). Arquitectura funerària. In X. Dupré (Ed.), Las Capitales Provinciales de Hispania, 3: Colonia Iulia Urbs Triumphalis Tarraco (pp. 83-95). Tarragona: Museu Nacional Arqueològic de Tarragona.

Ronchi, D., Limongiello, M., & Barba, S. Correlation among earthwork and cropmark anomalies within archaeological landscape investigation by using LiDAR and multispectral technologies from UAV. Drones, 4(4), 72; https://doi.org/10.3390/drones4040072

Rouse, J. W., Haas, R. H., Schell, J. A., & Deering, D. W. (1973) Monitoring Vegetation Systems in the Great Plains with ERTS (Earth Resources Technology Satellite). Proceedings of 3rd Earth Resources Technology Satellite Symposium, Greenbelt, 10-14 December, SP-351, 309-317.

Ruiz Osuna, A. (2010). Viae sepulchrales y paisaje funerario. In D. Vaquerizo & J. F. Murillo (Eds.), El anfiteatro romano de Córdoba y su entorno urbano. Análisis arqueológico (ss. I-XIII d.C.), Monografías de Arqueología Cordobesa, 19 (pp. 372-398). Córdoba: Universidad de Córdoba.

Salgado Carmona, J. Á., Quirós, E., Mayoral, V., & Charro, C. (2020). Assessing the potential of multispectral and thermal UAV imagery from archaeological sites. A case study from the Iron Age hillfort of Villasviejas del Tamuja (Cáceres, Spain). Journal of Archaeological Science: Reports, 31. https://doi.org/10.1016/j.jasrep.2020.102312

Salinas Pleguezuelo, E. (2015). Nuevos hallazgos exhumados en una necrópolis romana del sector septentrional de Córdoba (España). NAILOS Estudios Interdisciplinares de Arqueología 2, 253-273.

Sarris, A., Papadopoulos, N., Agapiou, A., Salvi, M. C., Hadjimitsis, D. G., Parkinson, W. A., Yerkes, R. W., Gyucha, A., & Duffy, P. R. (2013). Integration of geophysical surveys, ground hyperspectral measurements, aerial and satellite imagery for archaeological prospection of prehistoric sites: the case study of Vészto-Mágor Tell, Hungary. Journal of Archaeological Science, 40, 1454–1470. https://doi.org/10.1016/j.jas.2012.11.001

Scarfi. B. M. (1990). Gli scavi e il Museo di Altino. In Aquileia e l’arco adriatico: Atti della 20 Settimana di Studi Aquileiesi (pp. 311-327). Udine: Arti Grafice Friulane.

Scholz, M. (2012). Grabbatuten des 1.-3. Jahrhunderts in den nördlichen Grenzprovinzen des Römischen Reiches. Mainz: Römisch-Germanischen Zentralmuseums.

Sims, D. A., & Gamon, J. A. (2002). Relationships between leaf pigment content and spectral reflectance across a wide range of species, leaf structures and developmental stages. Remote Sensing of Environment, 81(2), 337–354. https://doi.org/10.1016/S0034-4257(02)00010-X

Trinks, I., Hinterleitner, A., Neubauer, W., Nau, E., Löcker, K., Wallner, M., Gabler, M., Filzwieser, R., Wilding, J., Schiel, H., Jansa, V., Schneidhofer, P., Trausmuth, T., Sandici, V., Ruß, D., Flöry, S., Kainz, J., Kucera, M., Vonkilch, A., Tencer, T., Gustavsen, L., Kristiansen, M., Bye-Johansen, L.-M., Tonning, C., Xitz, T., Paasche, K., Gansum, T. & Seren, S. (2018). Large-area high-resolution ground-penetrating radar measurements for archaeological prospection. Archaeological Prospect, 25, 171–195. https://doi.org/10.1002/arp.1599

Vaquerizo, D. (2010). Necrópolis urbanas en Baetica. Sevilla-Tarragona: Universidad de Sevilla-Institut Català d’Arqueologia Clàssica.

Zhao, W., Forte, E., Levi, S. T., Pipan, M., & Tian, G. (2015). Improved high-resolution GPR imaging and characterization of prehistoric archaeological features by means of attribute analysis. Journal of Archaeological Science, 54, 77–85. https://doi.org/10.1016/j.jas.2014.11.033

Show more Show less