Case Study: Transformer-Based Solution for the Automatic Digitization of Gas Plants
I. Bailo, F. Buonora, G. Ciarfaglia, L. T. Consoli, A. Evangelista, M. Gabusi, M. Ghiani, C. Petracca Ciavarella, F. Picariello, F. Sarcina, F. Tuosto, V. Zullo, L. Airoldi, G. Bruno, D. D. Gobbo, S. Pezzenati, G. A. Tona

TL;DR
This paper presents a transformer-based AI solution that automates the digitization of gas plants by extracting design data and hierarchical structures from plant documentation, significantly improving accuracy and efficiency.
Contribution
The work introduces a novel transformer architecture for scene graph generation and combines multiple AI techniques to automate plant digitization from unstandardized PDFs.
Findings
91% accuracy in textual data extraction
93% correct identification of plant components
80% accuracy in hierarchical structure extraction
Abstract
The energy transition is a key theme of the last decades to determine a future of eco-sustainability, and an area of such importance cannot disregard digitization, innovation and the new technological tools available. This is the context in which the Generative Artificial Intelligence models described in this paper are positioned, developed by Engineering Ingegneria Informatica SpA in order to automate the plant structures acquisition of SNAM energy infrastructure, a leading gas transportation company in Italy and Europe. The digitization of a gas plant consists in registering all its relevant information through the interpretation of the related documentation. The aim of this work is therefore to design an effective solution based on Artificial Intelligence techniques to automate the extraction of the information necessary for the digitization of a plant, in order to streamline the…
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Taxonomy
TopicsIntegrated Energy Systems Optimization · Hybrid Renewable Energy Systems · Reservoir Engineering and Simulation Methods
