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Open AccessJournal ArticleDOI

Secure Artificial Intelligence of Things for Implicit Group Recommendations

TLDR
This article proposes secure AIoT for implicit group recommendations (SAIoT-GRs) with a collaborative Bayesian network model and noncooperative game introduced as algorithms and is able to maximize the advantages of the two modules.
Abstract
The emergence of Artificial Intelligence of Things (AIoT) has provided novel insights for many social computing applications such as group recommender systems. As the distances between people have been greatly shortened, there has been more general demand for the provision of personalized services aimed at groups instead of individuals. The existing methods for capturing group-level preference features from individuals have mostly been established via aggregation and face two challenges: secure data management workflows are absent, and implicit preference feedback is ignored. To tackle these current difficulties, this paper proposes secure AIoT for implicit group recommendations (SAIoT-GR). For the hardware module, a secure IoT structure is developed as the bottom support platform. For the software module, a collaborative Bayesian network model and noncooperative game are introduced as algorithms. This secure AIoT architecture is able to maximize the advantages of the two modules. In addition, a large number of experiments are carried out to evaluate the performance of SAIoT-GR in terms of efficiency and robustness.

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Citations
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Blockchain-Empowered Decentralized Horizontal Federated Learning for 5G-Enabled UAVs

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Graph Neural Network-Driven Traffic Forecasting for the Connected Internet of Vehicles

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Constructing a prior-dependent graph for data clustering and dimension reduction in the edge of AIoT

TL;DR: In this paper , a prior-dependent graph (PDG) construction method is proposed for high-efficiency data clustering and dimensionality reduction in Artificial Intelligence Internet of Things (AIoT) applications.
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Toward real-time and efficient cardiovascular monitoring for COVID-19 patients by 5G-enabled wearable medical devices: a deep learning approach.

TL;DR: Wang et al. as discussed by the authors proposed a 5G-enabled real-time cardiovascular monitoring system for COVID-19 patients using deep learning, which employed 5G to send and receive data from wearable medical devices.
References
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Proceedings ArticleDOI

Collaborative Filtering for Implicit Feedback Datasets

TL;DR: This work identifies unique properties of implicit feedback datasets and proposes treating the data as indication of positive and negative preference associated with vastly varying confidence levels, which leads to a factor model which is especially tailored for implicit feedback recommenders.
Journal ArticleDOI

Blockchain-Enhanced Data Sharing With Traceable and Direct Revocation in IIoT

TL;DR: A blockchain-enhanced security access control scheme that supports traceability and revocability has been proposed in IIoT for smart factories and has shown that the size of the public/private keys is smaller compared to other schemes, and the overhead time is less for public key generation, data encryption, and data decryption stages.
Journal ArticleDOI

Deep Learning-Based Traffic Safety Solution for a Mixture of Autonomous and Manual Vehicles in a 5G-Enabled Intelligent Transportation System

TL;DR: A deep learning-based traffic safety solution for a mixture of autonomous and manual vehicles in a 5G-enabled ITS, effectively improving both accuracy and real-time intention recognition and improving the lane change problem in a mixed traffic environment.
Journal ArticleDOI

A Deep Graph Neural Network-Based Mechanism for Social Recommendations

TL;DR: A deep graph neural network-based social recommendation framework (GNN-SoR) is proposed for future IoTs, which embeds two encoded spaces into two latent factors of matrix factorization to complete missing rating values in a user-item rating matrix.
Proceedings ArticleDOI

Social Influence-Based Group Representation Learning for Group Recommendation

TL;DR: A novel group recommender system, namely SIGR (short for "Social Influence-based Group Recommender"), which takes an attention mechanism and a bipartite graph embedding model BGEM as building blocks and develops a novel deep social influence learning framework to exploit and integrate users' global and local social network structure information to further improve the estimation of users' social influences.
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