Design of Association Application System of Face Recognition and Test-Tube Barcode Based on CNN

Author:

Zhou Zhangning12,Shi He3,Niu Xuemin24ORCID

Affiliation:

1. General Practice Department, Huzhou Central Hospital, Huzhou 313003, China

2. Affiliated Central Hospital Huzhou University, Huzhou 313000, China

3. Zhejiang Health Technology Co., Ltd., Hangzhou 311100, China

4. Clinical Laboratory, Huzhou Central Hospital, Huzhou 313003, China

Abstract

In order to improve the standardization and accuracy of business process management of laboratory department in hospitals, combined with convolutional neural networks (CNN) and face recognition technology, an association application system of laboratory face recognition and test-tube barcode is designed by inputting patient’s face and blood test-tube barcode into the system for storage. When the patient logs into the system again, the system uses the patient’s face to automatically search for a matching test-tube barcode to obtain the test results. The simulation results show that the system can accurately recognize the face and match the corresponding test-tube barcode, and the accuracy and ROC of face recognition are 0.85 and 0.94, respectively. In addition, when the patient’s face is within 5 m from the system camera, the accuracy of face recognition can reach 100%. It can be seen that the system designed in this paper shows good performance.

Funder

Medical and Health Science and Technology Program Fund of Zhejiang Province, China

Publisher

Hindawi Limited

Subject

Applied Mathematics,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,Modeling and Simulation,General Medicine

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