Automatic detection of hand hygiene using computer vision technology

被引:42
作者
Singh, Amit [1 ]
Haque, Albert [2 ]
Alahi, Alexandre [3 ]
Yeung, Serena [4 ]
Guo, Michelle [2 ]
Glassman, Jill R. [5 ]
Beninati, William [6 ]
Platchek, Terry [1 ,5 ]
Li Fei-Fei [2 ]
Milstein, Arnold [5 ]
机构
[1] Stanford Univ, Dept Pediat, Sch Med, Stanford, CA 94305 USA
[2] Stanford Univ, Dept Comp Sci, Stanford, CA 94305 USA
[3] Ecole Polytech Fed Lausanne, Dept Civil Engn, Lausanne, Switzerland
[4] Stanford Univ, Dept Biomed Data Sci, Stanford, CA 94305 USA
[5] Stanford Univ, Sch Med, Clin Excellence Res Ctr, Stanford, CA USA
[6] Intermt TeleHlth Serv, Murray, UT USA
关键词
computer vision; hand hygiene; healthcare acquired infections; patient safety; machine learning; artificial intelligence; depth sensing;
D O I
10.1093/jamia/ocaa115
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Objective: Hand hygiene is essential for preventing hospital-acquired infections but is difficult to accurately track. The gold-standard (human auditors) is insufficient for assessing true overall compliance. Computer vision technology has the ability to perform more accurate appraisals. Our primary objective was to evaluate if a computer vision algorithm could accurately observe hand hygiene dispenser use in images captured by depth sensors. Materials and Methods: Sixteen depth sensors were installed on one hospital unit. Images were collected continuously from March to August 2017. Utilizing a convolutional neural network, a machine learning algorithm was trained to detect hand hygiene dispenser use in the images. The algorithm's accuracy was then compared with simultaneous in-person observations of hand hygiene dispenser usage. Concordance rate between human observation and algorithm's assessment was calculated. Ground truth was established by blinded annotation of the entire image set. Sensitivity and specificity were calculated for both human and machine-level observation. Results: A concordance rate of 96.8% was observed between human and algorithm (kappa = 0.85). Concordance among the 3 independent auditors to establish ground truth was 95.4% (Fleiss's kappa = 0.87). Sensitivity and specificity of the machine learning algorithm were 92.1% and 98.3%, respectively. Human observations showed sensitivity and specificity of 85.2% and 99.4%, respectively. Conclusions: A computer vision algorithm was equivalent to human observation in detecting hand hygiene dispenser use. Computer vision monitoring has the potential to provide a more complete appraisal of hand hygiene activity in hospitals than the current gold-standard given its ability for continuous coverage of a unit in space and time.
引用
收藏
页码:1316 / 1320
页数:5
相关论文
共 50 条
[31]   A Detection System for Vertical Slot Fishways Using Laser Technology and Computer Vision Techniques [J].
Rico-Diaz, Angel J. ;
Rodriguez, Alvaro ;
Villares, Daniel ;
Rabunal, Juan R. ;
Puertas, Jeronimo ;
Pena, Luis .
ADVANCES IN COMPUTATIONAL INTELLIGENCE, PT I (IWANN 2015), 2015, 9094 :218-226
[32]   PCB Component Detection Using Computer Vision for Hardware Assurance [J].
Zhao, Wenwei ;
Gurudu, Suprith Reddy ;
Taheri, Shayan ;
Ghosh, Shajib ;
Sathiaseelan, Mukhil Azhagan Mallaiyan ;
Asadizanjani, Navid .
BIG DATA AND COGNITIVE COMPUTING, 2022, 6 (02)
[33]   Computer vision detection of defective apples using automatic lightness correction and weighted RVM classifier [J].
Zhang, Baohua ;
Huang, Wenqian ;
Gong, Liang ;
Li, Jiangbo ;
Zhao, Chunjiang ;
Liu, Chengliang ;
Huang, Danfeng .
JOURNAL OF FOOD ENGINEERING, 2015, 146 :143-151
[34]   Exercise Recognition and Repetition Counting for Automatic Workout Documentation Using Computer Vision [J].
Volschenk, Francois ;
Vadapalli, Hima ;
van der Haar, Dustin .
DIGITAL HUMAN MODELING AND APPLICATIONS IN HEALTH, SAFETY, ERGONOMICS AND RISK MANAGEMENT, DHM 2024, PT III, 2024, 14711 :298-309
[35]   Computer Vision System for Automatic Counting of Planting Microsites Using UAV Imagery [J].
Bouachir, Wassim ;
Ihou, Koffi Eddy ;
Gueziri, Houssem-Eddine ;
Bouguila, Nizar ;
Belanger, Nicolas .
IEEE ACCESS, 2019, 7 :82491-82500
[36]   Automatic Annotation of Training Datasets in Computer Vision Using Machine Learning Methods [J].
Zhuravlyov, A. K. ;
Grigorian, K. A. .
AUTOMATIC DOCUMENTATION AND MATHEMATICAL LINGUISTICS, 2024, 58 (SUPPL5) :S279-S282
[37]   Student Emotion Recognition Using Computer Vision as an Assistive Technology for Education [J].
van der Haar, Dustin .
INFORMATION SCIENCE AND APPLICATIONS, 2020, 621 :183-192
[38]   Violence Detection Using Computer Vision Approaches [J].
Talha, Khalid Raihan ;
Bandapadya, Koushik ;
Khan, Mohammad Monirujjaman .
2022 IEEE WORLD AI IOT CONGRESS (AIIOT), 2022, :544-550
[39]   Automated Fall Detection Using Computer Vision [J].
Soni, Pramod Kumar ;
Choudhary, Ayesha .
INTELLIGENT HUMAN COMPUTER INTERACTION, 2018, 11278 :220-229
[40]   Nighttime Vehicle Detection Using Computer Vision [J].
Badri, Sushruth ;
Somu, Sri Soumya ;
Meghana, K. Vamsi ;
Aparna, V .
INNOVATIONS IN ELECTRONICS AND COMMUNICATION ENGINEERING, 2019, 33 :167-171