Segmented evaluation and multivariate temporal compensation method for thermally induced image drift in chain cameras for bridge deflection monitoring

Accurate bridge deflection monitoring is vital, yet conventional single-camera vision methods are limited in measurement range. Chain-camera systems overcome this constraint but suffer from thermally induced image drift during camera startup, which compromises accuracy. This study proposes a two-step evaluation and compensation approach for startup-induced thermal drift in chain cameras. A segmented linear model is established to characterize the drift evolution, revealing a multi-stage drift behavior and showing similarity with the experimental data. An engineering-oriented lightweight compensation model is constructed by integrating measurement time, camera temperature, and ambient temperature to characterize startup-induced thermal drift. Experimental results demonstrate that the proposed multivariate fusion method is effective and outperforms commonly used alternative modeling approaches. Field application on an in-service bridge preliminarily demonstrates the potential of the proposed compensation method for practical monitoring scenarios. Overall, this study provides a lightweight preliminary approach for mitigating startup-induced thermal drift, with potential to improve the accuracy of bridge deflection monitoring under appropriate conditions.

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Publication Details

Journal
Structures
Published
2026-09-25
DOI
https://doi.org/10.1016/j.istruc.2026.112946
Primary Topic
Structural Health Monitoring Techniques
Type
article
Field-Weighted Citation Impact
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article

Segmented evaluation and multivariate temporal compensation method for thermally induced image drift in chain cameras for bridge deflection monitoring

Weihao Sun, Shitong Hou, Zheng Li, Qing Chun et al.
Structures
Structural Health Monitoring Techniques
article

Segmented evaluation and multivariate temporal compensation method for thermally induced image drift in chain cameras for bridge deflection monitoring

Weihao Sun, Shitong Hou, Zheng Li, Qing Chun, Tao Wu
article en

Abstract

Accurate bridge deflection monitoring is vital, yet conventional single-camera vision methods are limited in measurement range. Chain-camera systems overcome this constraint but suffer from thermally induced image drift during camera startup, which compromises accuracy. This study proposes a two-step evaluation and compensation approach for startup-induced thermal drift in chain cameras. A segmented linear model is established to characterize the drift evolution, revealing a multi-stage drift behavior and showing similarity with the experimental data. An engineering-oriented lightweight compensation model is constructed by integrating measurement time, camera temperature, and ambient temperature to characterize startup-induced thermal drift. Experimental results demonstrate that the proposed multivariate fusion method is effective and outperforms commonly used alternative modeling approaches. Field application on an in-service bridge preliminarily demonstrates the potential of the proposed compensation method for practical monitoring scenarios. Overall, this study provides a lightweight preliminary approach for mitigating startup-induced thermal drift, with potential to improve the accuracy of bridge deflection monitoring under appropriate conditions.

StructuresVol. 93
Southeast University (CN)
Openalex Percentile: Top 17%
Structural Health Monitoring Techniques
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Segmented evaluation and multivariate temporal compensation method for thermally induced image drift in chain cameras for bridge deflection monitoring — Weihao Sun, Shitong Hou, et al. · Structures (2026) | TGRS Research Map | TGRS