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April 8, 2026Data-Centric Engineering5 citationsOpen Access

Are large pre-trained vision language models effective construction safety inspectors

XCX.T. ChenZZZhengbo Zou

Key Points

  • This research aims to explore the effectiveness of large pre-trained vision language models in identifying safety issues on construction sites.
  • Proposed the ConstructionSite 10k dataset with 10,000 annotated images for various inspection tasks.
  • Evaluated large pre-trained vision language models using zero-shot and few-shot learning settings.
  • Assessed generalization abilities of existing VLMs in construction safety contexts.
  • Found that VLMs exhibit strong generalization capabilities in identifying safety violations.
  • Identified a need for additional training to enhance applicability to real construction safety scenarios.

Abstract

Abstract Construction safety inspections typically involve a human inspector identifying safety concerns on-site. With the rise of powerful vision language models (VLMs), researchers are exploring their use for tasks such as detecting safety rule violations from on-site images. However, there is a lack of open datasets to comprehensively evaluate and further fine-tune VLMs in construction safety inspection. Current applications of VLMs use small, supervised datasets, limiting their applicability in tasks they are not directly trained for. In this article, we propose the ConstructionSite 10 k , featuring 10,000 construction site images with annotations for three inter-connected tasks, including image captioning, safety rule violation visual question answering (VQA), and construction element visual grounding. Our subsequent evaluation of current state-of-the-art large pre-trained VLMs shows notable generalization abilities in zero-shot and few-shot settings, while additional training is needed to make them applicable to actual construction sites. This dataset allows researchers to train and evaluate their own VLMs with new architectures and techniques, providing a valuable benchmark for construction safety inspection.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69d5f05d74eaea4b11a79cdehttps://doi.org/10.1017/dce.2026.10044
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