A Novel Noncontact Temperature Field Measurement Method Based on Transmittance Field Estimation Under Dynamic Water Mist Interference

被引:0
作者
Li, Yitian [1 ]
Pan, Dong [1 ,2 ]
Jiang, Zhaohui [1 ,3 ]
Yu, Haoyang [1 ]
Gui, Weihua [1 ,3 ]
机构
[1] Cent South Univ, Sch Automat, Changsha 410083, Peoples R China
[2] Cent South Univ, State Key Lab Precis Mfg Extreme Serv Performance, Changsha 410083, Peoples R China
[3] Xiangjiang Lab, Changsha 410083, Peoples R China
基金
中国国家自然科学基金;
关键词
Temperature measurement; Atmospheric measurements; Atmospheric modeling; Interference; Estimation; Temperature distribution; Measurement uncertainty; Cameras; Accuracy; Temperature sensors; Infrared thermography (IRT); temperature field measurement; transmittance field estimation; visible vision; water mist interference;
D O I
10.1109/TIM.2025.3533633
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The infrared thermography (IRT) is a prevalent noncontact approach for measuring temperature fields. However, the dynamic water mist can absorb and scatter infrared radiation, resulting in measurement inaccuracies. Addressing this issue, a novel temperature field measurement method based on transmittance field estimation under water mist interference is proposed, and the key point is to introduce visible vision to obtain prior environmental information. First, a visible and thermal image registration algorithm are designed to solve the unaligned images, which incorporates camera imaging parameters to constrain the affine parameters. Then, a two-stage transmittance field estimation model combining visible and infrared vision is established to quantify the interference of water mist into transmittance. Following this, based on the principle of infrared temperature measurement, a temperature field measurement model tailored for the water mist environment is constructed, and the temperature field is accurately measured by substituting the estimated transmittance field. Finally, the experimental results with five common objects and four different heating plates show that the proposed method can achieve accurate temperature field measurement under the interference of dynamic water mist.
引用
收藏
页数:14
相关论文
共 51 条
[1]   Single Image Dehazing Using Haze-Lines [J].
Berman, Dana ;
Treibitz, Tali ;
Avidan, Shai .
IEEE TRANSACTIONS ON PATTERN ANALYSIS AND MACHINE INTELLIGENCE, 2020, 42 (03) :720-734
[2]   The registration of visible and thermal images through multi-objective optimization [J].
Bin, Junchi ;
Zhang, Heqing ;
Bahrami, Zhila ;
Zhang, Ran ;
Liu, Huan ;
Blasch, Erik ;
Liu, Zheng .
INFORMATION FUSION, 2023, 95 :186-198
[3]   DehazeNet: An End-to-End System for Single Image Haze Removal [J].
Cai, Bolun ;
Xu, Xiangmin ;
Jia, Kui ;
Qing, Chunmei ;
Tao, Dacheng .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2016, 25 (11) :5187-5198
[4]   Boosting Structure Consistency for Multispectral and Multimodal Image Registration [J].
Cao, Si-Yuan ;
Shen, Hui-Liang ;
Chen, Shu-Jie ;
Li, Chunguang .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2020, 29 :5147-5162
[5]   PMHLD: Patch Map-Based Hybrid Learning DehazeNet for Single Image Haze Removal [J].
Chen, Wei-Ting ;
Fang, Hao-Yu ;
Ding, Jian-Jiun ;
Kuo, Sy-Yen .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2020, 29 :6773-6788
[6]   An Infrared Thermography Model Enabling Remote Body Temperature Screening Up to 10 Meters [J].
Chin, Jing Wei ;
Wong, Kwan Long ;
Chan, Tsz Tai ;
Suhartono, Kristian ;
So, Richard H. Y. .
2021 IEEE/CVF CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION WORKSHOPS, CVPRW 2021, 2021, :3870-3876
[7]   Multiscale Symmetric Dense Micro-Block Difference for Texture Classification [J].
Dong, Yongsheng ;
Wu, Huangbin ;
Li, Xuelong ;
Zhou, Chuanqi ;
Wu, Qingtao .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS FOR VIDEO TECHNOLOGY, 2019, 29 (12) :3583-3594
[8]   An Intelligent Control Strategy for Iron Ore Sintering Ignition Process Based on the Prediction of Ignition Temperature [J].
Du, Sheng ;
Wu, Min ;
Chen, Xin ;
Cao, Weihua .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2020, 67 (02) :1233-1241
[9]   Single Image Haze Removal With Haze Map Optimization for Various Haze Concentrations [J].
Ganguly, Biswarup ;
Bhattacharya, Anwesa ;
Srivastava, Ananya ;
Dey, Debangshu ;
Munshi, Sugata .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS FOR VIDEO TECHNOLOGY, 2022, 32 (01) :286-301
[10]   Image dehazing via enhancement, restoration, and fusion: A survey [J].
Guo, Xiaojie ;
Yang, Yang ;
Wang, Chaoyue ;
Ma, Jiayi .
INFORMATION FUSION, 2022, 86-87 :146-170