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Artificial intelligence-assisted reduction in patients’ waiting time for outpatient process: a retrospective cohort study
by
Zhao, Liebin
, Dong, Bin
, Lin, Xulin
, Yuan, Jiajun
, Li, Biru
, Li, Xiaoqing
, Tian, Dan
, Wang, Hansong
, Li, Weihua
, Shi, Lei
, Liu, Shijian
in
Algorithms
/ Ambulatory medical care
/ Artificial Intelligence
/ China
/ Cohort analysis
/ Deep learning
/ Emergency medical care
/ Health Administration
/ Health aspects
/ Health care
/ Health Informatics
/ Health services
/ Hospitals
/ Humans
/ Kidney stones
/ Management
/ Medical appointments and schedules
/ Medical records
/ Medical system
/ Medicine
/ Medicine & Public Health
/ Natural language processing
/ Nursing Research
/ Organization
/ Outpatient
/ Outpatient care facilities
/ Outpatients
/ Patient satisfaction
/ Pediatrics
/ Physicians
/ Public Health
/ Registration
/ Research Article
/ Retrospective Studies
/ Service enhancement
/ structure and delivery of healthcare
/ Technology application
/ Ultrasonic imaging
/ Waiting Lists
/ Waiting time
2021
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Artificial intelligence-assisted reduction in patients’ waiting time for outpatient process: a retrospective cohort study
by
Zhao, Liebin
, Dong, Bin
, Lin, Xulin
, Yuan, Jiajun
, Li, Biru
, Li, Xiaoqing
, Tian, Dan
, Wang, Hansong
, Li, Weihua
, Shi, Lei
, Liu, Shijian
in
Algorithms
/ Ambulatory medical care
/ Artificial Intelligence
/ China
/ Cohort analysis
/ Deep learning
/ Emergency medical care
/ Health Administration
/ Health aspects
/ Health care
/ Health Informatics
/ Health services
/ Hospitals
/ Humans
/ Kidney stones
/ Management
/ Medical appointments and schedules
/ Medical records
/ Medical system
/ Medicine
/ Medicine & Public Health
/ Natural language processing
/ Nursing Research
/ Organization
/ Outpatient
/ Outpatient care facilities
/ Outpatients
/ Patient satisfaction
/ Pediatrics
/ Physicians
/ Public Health
/ Registration
/ Research Article
/ Retrospective Studies
/ Service enhancement
/ structure and delivery of healthcare
/ Technology application
/ Ultrasonic imaging
/ Waiting Lists
/ Waiting time
2021
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Artificial intelligence-assisted reduction in patients’ waiting time for outpatient process: a retrospective cohort study
by
Zhao, Liebin
, Dong, Bin
, Lin, Xulin
, Yuan, Jiajun
, Li, Biru
, Li, Xiaoqing
, Tian, Dan
, Wang, Hansong
, Li, Weihua
, Shi, Lei
, Liu, Shijian
in
Algorithms
/ Ambulatory medical care
/ Artificial Intelligence
/ China
/ Cohort analysis
/ Deep learning
/ Emergency medical care
/ Health Administration
/ Health aspects
/ Health care
/ Health Informatics
/ Health services
/ Hospitals
/ Humans
/ Kidney stones
/ Management
/ Medical appointments and schedules
/ Medical records
/ Medical system
/ Medicine
/ Medicine & Public Health
/ Natural language processing
/ Nursing Research
/ Organization
/ Outpatient
/ Outpatient care facilities
/ Outpatients
/ Patient satisfaction
/ Pediatrics
/ Physicians
/ Public Health
/ Registration
/ Research Article
/ Retrospective Studies
/ Service enhancement
/ structure and delivery of healthcare
/ Technology application
/ Ultrasonic imaging
/ Waiting Lists
/ Waiting time
2021
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Artificial intelligence-assisted reduction in patients’ waiting time for outpatient process: a retrospective cohort study
Journal Article
Artificial intelligence-assisted reduction in patients’ waiting time for outpatient process: a retrospective cohort study
2021
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Overview
Background
Many studies suggest that patient satisfaction is significantly negatively correlated with the waiting time. A well-designed healthcare system should not keep patients waiting too long for an appointment and consultation. However, in China, patients spend notable time waiting, and the actual time spent on diagnosis and treatment in the consulting room is comparatively less.
Methods
We developed an artificial intelligence (AI)-assisted module and name it XIAO YI. It could help outpatients automatically order imaging examinations or laboratory tests based on their chief complaints. Thus, outpatients could get examined or tested before they went to see the doctor. People who saw the doctor in the traditional way were allocated to the conventional group, and those who used XIAO YI were assigned to the AI-assisted group. We conducted a retrospective cohort study from August 1, 2019 to January 31, 2020. Propensity score matching was used to balance the confounding factor between the two groups. And waiting time was defined as the time from registration to preparation for laboratory tests or imaging examinations. The total cost included the registration fee, test fee, examination fee, and drug fee. We used Wilcoxon rank-sum test to compare the differences in time and cost. The statistical significance level was set at 0.05 for two sides.
Results
Twelve thousand and three hundred forty-two visits were recruited, consisting of 6171 visits in the conventional group and 6171 visits in the AI-assisted group. The median waiting time was 0.38 (interquartile range: 0.20, 1.33) hours for the AI-assisted group compared with 1.97 (0.76, 3.48) hours for the conventional group (
p
< 0.05). The total cost was 335.97 (interquartile range: 244.80, 437.60) CNY (Chinese Yuan) for the AI-assisted group and 364.58 (249.70, 497.76) CNY for the conventional group (
p
< 0.05).
Conclusions
Using XIAO YI can significantly reduce the waiting time of patients, and thus, improve the outpatient service process of hospitals.
Publisher
BioMed Central,BioMed Central Ltd,Springer Nature B.V,BMC
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