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Hochschule Burgenland – University of Applied Sciences, Austria.
The work is conducted in an academic research context, with a strong focus on applied artificial intelligence, computer vision, and engineering systems.
PannOnonia OpticAI is a research-driven initiative focused on the digitalization and semantic understanding of technical engineering drawings, with a strong emphasis on:
Our long-term objective is to transform static technical documents into machine-interpretable, structured representations that can serve as a foundation for intelligent agents in building and industrial environments.
We develop end-to-end AI pipelines that combine:
Our approach integrates state-of-the-art computer vision techniques with domain-specific engineering knowledge.
Digitalization of technical drawings
From scanned PDFs and images to structured, analyzable data
P&ID understanding
Detection of symbols, valves, instruments, signal lines, and control logic
Hybrid AI approaches
Combining classical computer vision, deep learning, and rule-based methods
Vision Transformers & modern architectures
Exploration of CNN–Transformer hybrids and attention-based models for technical diagrams
Dataset creation & curation
Development of high-quality, domain-specific datasets aligned with ISO and ISA standards
Model development & evaluation
Training and benchmarking of detection and segmentation models for engineering diagrams
Technical drawings are a critical but underutilized source of knowledge in engineering, construction, and industrial operations.
By enabling machines to understand these documents, we aim to support:
Our vision is to enable AI agents that can:
We are an open, research-oriented group and welcome exchange with:
This Space serves as an organizational overview and research status page.
Detailed models, datasets, and experimental results are maintained in dedicated repositories.