Person Re-Identification Microservice over Artificial Intelligence Internet of Things Edge Computing Gateway

Author:

Chen Ching-HanORCID,Liu Chao-Tsu

Abstract

With the increase in the number of surveillance cameras being deployed globally, an important topic is person re-identification (Re-ID), which identifies the same person from multiple different angles and different directions across multiple cameras. However, because of the privacy issues involved in the identification of individuals, Re-ID systems cannot send the image data to cloud, and these data must be processed on edge servers. However, there has been a significant increase in computing resources owing to the processing of artificial intelligence (AI) algorithms through edge computing (EC). Consequently, the traditional AI Internet of Things (AIoT) architecture is no longer sufficient. In this study, we designed a Re-ID system at the AIoT EC gateway, which utilizes a microservice to perform Re-ID calculations on EC and balances efficiency with privacy protection. Experimental results indicate that this architecture can provide sufficient Re-ID computing resources to allow the system to scale up or down flexibly to support different scenarios and demand loads.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Computer Networks and Communications,Hardware and Architecture,Signal Processing,Control and Systems Engineering

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. EdgeVPR: Transformer-Based Real-Time Video Person Re-Identification at the Edge;2024 IEEE 44th International Conference on Distributed Computing Systems (ICDCS);2024-07-23

2. Attributes-Assisted Joint Contrastive Learning for Person Re-Identification;IEEE Internet of Things Journal;2024-07-15

3. Containerization in Edge Intelligence: A Review;Electronics;2024-04-02

4. The Transformative Impact of AI and ML in the Insurance Domain By IJISRT;International Journal of Innovative Science and Research Technology (IJISRT);2024-03-20

5. MetaGON: A Lightweight Pedestrian Re-Identification Domain Generalization Model Adapted to Edge Devices;IEEE Open Journal of the Communications Society;2024

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