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University of the Arts London

Applying Graph Theory to Conservation Documentation

Abstract

dc:description

Conservation is the management of change (UNESCO et al 2013). Heritage assets—which include tangible and intangible objects and places–are recognised as non-renewable resources. As conservators, we are merely stewards of these shared assets and the notes and records we create contribute to their long-term care and understanding. Therefore, it is imperative these records are both human- and machine-readable. This thesis leverages mathematical graph theory to identify and examine networks captured in conservation documentation. It demonstrates how the use of existing graph-based technologies, such as semantic web technologies (RDF) and property graph (PG) databases, can be used to build and inform computational models for conservation through the creation and analysis of graph-based metamodels and knowledge graphs. Conservation treatment data provided by The National Archives (UK) was used to develop a labelled property graph model and database that was also convertible to CIDOC CRM-mapped RDF triples. To further inform the development, investigations were conducted on existing conservation graphs, including the CIDOC CRM RDFS serialisation and RDF graphs produced by the Linked Conservation Data (LCD) project. The modelling decisions and investigations made during this process contributed to a suite of verification, validation and calibration (VVC) practices for graph model creation, assessment, and refinement, including the use of graph theoretic algorithms. The outcome is a graph representation method for conservation data which includes modelling principles to aid queryabillity and avoid common modelling pitfalls. Of the graph theoretic measures employed, leaf node detection, triangle count, motif frequency, diameter and eigenvector centrality measures were found to be diagnostic for comparing or contrasting data collection practices as evidenced in the datasets across institutions. Eigenvector centrality is also a strong candidate for systematic model validation due to its usefulness in identifying modelling errors. Furthermore, results demonstrate that the conservation graphs from each study case exhibit recurrent bipartite (k3,3 ) subgraphs, an indicator of non-planarity. This higher dimensionality speaks to an intrinsic characteristic of conservation data and may explain why tabular and traditional relational data models, while able to capture facets of conservation, have been so difficult to use to capture and model across conservation’s more complex nature. These results signal a promising new means for conservation to capture, encode, study, and discuss complex conservation events and practices.

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Tam, Ana

Subjects

dc:subject × 2

Rights

dc:rights
Statement dc:rights
  • cc_by_nc_nd
Language dc:language
en

Identifiers

dc:identifier.*
Identifier
Tam, Ana <https://ualresearchonline.arts.ac.uk/view/creators/Tam=3AAna=3A=3A.html> (2024) Applying Graph Theory to Conservation Documentation. PhD thesis, University of the Arts London.
OAI identifier oai:identifier
oai:ualresearchonline.arts.ac.uk:23239

Chain of custody

source
Harvested from
University of the Arts London
Base URL
ualresearchonline.arts.ac.uk/cgi/oai2
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
citation

Tam, Ana. Applying Graph Theory to Conservation Documentation. 2024.