6 research outputs found

    Estimation of the precision of a structured light system in oil paintings on canvas

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    The conservation and authentication of pictorial artworks is considered an important part of the preservation of the cultural heritage. The use of non-destructive testing allows the obtaining of accurate information about the state of pictorial artworks, without direct contact between the equipment used and the sample. In particular, the use of this kind of technology is recommended in obtaining three-dimensional surface digital models, as it provides high-resolution information that constitutes a kind of fingerprint of the samples. In the case of pictorial artworks with some kind of surface relief, one of the most useful technologies is structured light (SL). In this paper the minimum difference in height that can be distinguished with this technology is estimated, establishing experimentally both the error committed in the measurement process and the precision in the use of this technology. The study, focused on the case of oil paintings on canvas, has been developed using a low-cost system to ensure its wide use

    Estimation of the Precision of a Structured Light System in Oil Paintings on Canvas

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    [EN] The conservation and authentication of pictorial artworks is considered an important part of the preservation of cultural heritage. The use of non-destructive testing allows the obtention of accurate information about the state of pictorial artworks without direct contact between the equipment used and the sample. In particular, the use of this kind of technology is recommended in obtaining three-dimensional surface digital models, as it provides high-resolution information that constitutes a kind of fingerprint of the samples. In the case of pictorial artworks with some kind of surface relief, one of the most useful technologies is structured light (SL). In this paper, the minimum difference in height that can be distinguished with this technology was estimated, establishing experimentally both the error committed in the measurement process and the precision in the use of this technology. This study focused on the case of oil paintings on canvas and developed a low-cost system to ensure its wide use.Sánchez-Jiménez, D.; Buchón Moragues, FF.; Bravo, JM.; Sánchez Pérez, JV. (2019). Estimation of the Precision of a Structured Light System in Oil Paintings on Canvas. Sensors. 19(22):1-13. https://doi.org/10.3390/s19224966S1131922Abate, D., Menna, F., Remondino, F., & Gattari, M. G. (2014). 3D painting documentation: evaluation of conservation conditions with 3D imaging and ranging techniques. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL-5, 1-8. doi:10.5194/isprsarchives-xl-5-1-2014Pelagotti, A., Uccheddu, F., Massa, E., & Carfagni, M. (2018). Comparing two 3D measurement techniques for documenting painted wooden panels surface deformations on a real test case: «Mystical Marriage of Saint Catherine» by Renaissance artist Piero di Cosimo. 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Review of Geometric and Radiometric Analyses of Paintings. The Photogrammetric Record, 26(136), 439-461. doi:10.1111/j.1477-9730.2011.00664.xBuchón-Moragues, F., Bravo, J., Ferri, M., Redondo, J., & Sánchez-Pérez, J. (2016). Application of Structured Light System Technique for Authentication of Wooden Panel Paintings. Sensors, 16(6), 881. doi:10.3390/s16060881Tian, G. Y., Lu, R. S., & Gledhill, D. (2007). Surface measurement using active vision and light scattering. Optics and Lasers in Engineering, 45(1), 131-139. doi:10.1016/j.optlaseng.2006.03.005Secher, J. J., Darvann, T. A., & Pinholt, E. M. (2017). Accuracy and reproducibility of the DAVID SLS-2 scanner in three-dimensional facial imaging. Journal of Cranio-Maxillofacial Surgery, 45(10), 1662-1670. doi:10.1016/j.jcms.2017.07.006Luhmann, T. (2010). Close range photogrammetry for industrial applications. ISPRS Journal of Photogrammetry and Remote Sensing, 65(6), 558-569. doi:10.1016/j.isprsjprs.2010.06.003Hui, Z., Liyan, Z., Hongtao, W., & Jianfu, C. (2009). Surface Measurement Based on Instantaneous Random Illumination. Chinese Journal of Aeronautics, 22(3), 316-324. doi:10.1016/s1000-9361(08)60105-3McPherron, S. P., Gernat, T., & Hublin, J.-J. (2009). Structured light scanning for high-resolution documentation of in situ archaeological finds. Journal of Archaeological Science, 36(1), 19-24. doi:10.1016/j.jas.2008.06.028Arias, P., Herráez, J., Lorenzo, H., & Ordóñez, C. (2005). Control of structural problems in cultural heritage monuments using close-range photogrammetry and computer methods. Computers & Structures, 83(21-22), 1754-1766. doi:10.1016/j.compstruc.2005.02.018Patrucco, G., Rinaudo, F., & Spreafico, A. (2019). A NEW HANDHELD SCANNER FOR 3D SURVEY OF SMALL ARTIFACTS: THE STONEX F6. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XLII-2/W15, 895-901. doi:10.5194/isprs-archives-xlii-2-w15-895-2019Guidi, G., Atzeni, C., Seracini, M., & Lazzari, S. (2004). Painting Survey by 3D Optical Scanning - The Case ofAdoration of the Magiby Leonardo Da Vinci. Studies in Conservation, 49(1), 1-12. doi:10.1179/sic.2004.49.1.1Palma, G., Pingi, P., Siotto, E., Bellucci, R., Guidi, G., & Scopigno, R. (2019). Deformation analysis of Leonardo da Vinci’s «Adorazione dei Magi» through temporal unrelated 3D digitization. Journal of Cultural Heritage, 38, 174-185. doi:10.1016/j.culher.2018.11.001Batlle, J., Mouaddib, E., & Salvi, J. (1998). Recent progress in coded structured light as a technique to solve the correspondence problem. Pattern Recognition, 31(7), 963-982. doi:10.1016/s0031-3203(97)00074-5Salvi, J., Pagès, J., & Batlle, J. (2004). Pattern codification strategies in structured light systems. 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Artificial Life and Robotics, 21(2), 149-154. doi:10.1007/s10015-016-0265-xZhu, H., Guo, B., Zou, K., Li, Y., Yuen, K.-V., Mihaylova, L., & Leung, H. (2019). A Review of Point Set Registration: From Pairwise Registration to Groupwise Registration. Sensors, 19(5), 1191. doi:10.3390/s19051191Lin, C.-C., Tai, Y.-C., Lee, J.-J., & Chen, Y.-S. (2017). A novel point cloud registration using 2D image features. EURASIP Journal on Advances in Signal Processing, 2017(1). doi:10.1186/s13634-016-0435-yAbate, D. (2019). Documentation of paintings restoration through photogrammetry and change detection algorithms. Heritage Science, 7(1). doi:10.1186/s40494-019-0257-
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