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481
Privacy risk adaptive access control model via evolutionary game
Published 2019-12-01“…Aiming at the problem that in the private sensitive date centralized and opening information systems,a fine-grained and self-adaptive access control model for privacy preserving is desperately needed,thus the balance between privacy preserving and data access utility should be achieved,a rational multi-player risk-adaptive based access control model for privacy preserving was proposed.Firstly,the privacy risk values of access request and requester were formulized by the private information quantity of the requested dataset,and by using Shannon information.Secondly,a risk-adaptive based access control evolutionary game model was constructed by using evolutionary game under the supposing of bounded rational players.Furthermore,dynamic strategies of participants were analyzed by using replicator dynamics equation,and the method of choosing evolutionary stable strategy was proposed.Simulation and comparison results show that,the proposed model is effective to dynamically and adaptively preserve privacy and more risk adaptive,and dynamic evolutionary access strategies of the bounded rational participants are more suitable for practical scenarios.…”
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482
Biometric-based medical watermarking system for verifying privacy and source authentication
Published 2020-07-01“…Two of the most requirements in e-health care system is the ensuring the authenticity of the source from which the data is received and the privacy of medical record of the patient must be preserved. …”
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483
Preserving privacy and video quality through remote physiological signal removal
Published 2025-04-01“…However, the continuous and surreptitious recording of individuals by these devices and the collecting of sensitive health data without users’ knowledge or consent raise serious privacy concerns. …”
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484
Verifiable secure aggregation scheme for privacy protection in federated learning networks
Published 2025-08-01“…Security analysis demonstrates that our solution effectively ensures privacy protection. We tested the performance using a Raspberry Pi as an edge computing device. …”
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485
Analysis, Design, and Implementation of a User-Friendly Differential Privacy Application
Published 2025-02-01“…In the era of artificial intelligence, ensuring privacy in publicly released data is critical to prevent linkage attacks that can reveal sensitive information about individuals. …”
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486
Digital citizenship literacy in Indonesia: The role of privacy awareness and social campaigns
Published 2025-01-01“…A quantitative research approach was employed, using a survey method to collect data from 250 respondents of students from several high schools in Jakarta. …”
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487
Impact of perceived privacy and security in the TAM model: The perceived trust as the mediated factors
Published 2024-11-01Get full text
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488
Tabular Data Augmentation Using Artificial Intelligence: A Systematic Review and Taxonomic Framework
Published 2025-01-01Get full text
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489
Blockchain oracles for decentralized agricultural insurance using trusted IoT data
Published 2025-01-01“…Initially, a method for computing the direct reputation score of IoT devices based on behavioral and data reputation is illustrated. Next, a privacy preserved decentralized oracle mechanism is designed and implemented using a masked secret sharing and secure aggregation scheme. …”
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490
Design of an improved model using federated learning and LSTM autoencoders for secure and transparent blockchain network transactions
Published 2025-01-01“…After that, these local models are aggregated towards a common, global model using secure aggregation methods, which makes sure that there is nozza of data privacy and hence, in the process making sure that more accurate models can be obtained due to diversified data sets. …”
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491
Data Security Model Using (AES-LEA) Algorithms for WoT Environment
Published 2025-06-01“…Therefore, ensuring data privacy and protection is a major challenge for organizations and individuals. …”
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492
Social Engineering Threat Analysis Using Large-Scale Synthetic Data
Published 2025-02-01“…Our model achieved an accuracy of 0.8984 and an F1 score of 0.9253, demonstrating its effectiveness in detecting social engineering attacks. The use of synthetic data overcomes the problem of lack of availability of real-world data due to privacy issues, and is demonstrated in this work to be safe, scalable, ethics friendly and effective.…”
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493
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494
Mobile Phone Network Data in the COVID-19 era: A systematic review of applications, socioeconomic factors affecting compliance to non-pharmaceutical interventions, privacy implicat...
Published 2025-01-01“…<h4>Background</h4>The use of traditional mobility datasets, such as travel surveys and census data, has significantly impacted various disciplines, including transportation, urban sensing, criminology, and healthcare. …”
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495
Federated learning in food research
Published 2025-10-01“…The use of machine learning in food research is sometimes limited due to data sharing obstacles such as data ownership and privacy requirements. …”
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496
Federated meta learning: a review
Published 2023-03-01“…With the popularity of mobile devices, massive amounts of data are constantly produced.The data privacy policies are becoming more and more specified, the flow and use of data are strictly regulated.Federated learning can break data barriers and use client data for modeling.Because users have different habits, there are significant differences between different client data.How to solve the statistical challenge caused by the data imbalance becomes an important topic in federated learning research.Using the fast learning ability of meta learning, it becomes an important way to train different personalized models for different clients to solve the problem of data imbalance in federated learning.The definition and classification of federated learning, as well as the main problems of federated learning were introduced systematically based on the background of federated learning.The main problems included privacy protection, data heterogeneity and limited communication.The research work of federated metalearning in solving the heterogeneous data, the limited communication environment, and improving the robustness against malicious attacks were introduced systematically starting from the background of federated meta learning.Finally, the summary and prospect of federated meta learning were proposed.…”
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497
ETHICAL DIMENSIONS OF HUMAN RESOURCES AUDITING IN THE DIGITAL ERA
Published 2025-03-01Get full text
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498
Federated learning with LSTM for intrusion detection in IoT-based wireless sensor networks: a multi-dataset analysis
Published 2025-03-01“…Using an FL approach, multiple IoT nodes collaboratively train a global LSTM model without exchanging raw data, thereby addressing privacy concerns and improving detection capabilities. …”
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499
Improved SpaceTwist privacy protection method based on anchor optimization algorithm
Published 2017-10-01“…With location-based services worldwide used,private location data appealed easily in query process which caused serious security problems.So the introduction of SpaceTwist incremental nearest neighbor query algorithm,proposes protection of privacy method combined with improved SpaceTwist location optimization algorithm.The anchor point authentication server added to distributed system structure,user generate a k anonymous area according to their privacy preference and actual environment,using optimization algorithm to generate the anchor point.Forwarding users use the incremental nearest neighbor query throught the anchor point and accurate.Experiments in road network environment with different data sets show that the privacy protection works well in the algorithm,and own high work efficiency.…”
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500
Prioritizing privacy and presentation of supportable hypothesis testing in forensic genetic genealogy investigations
Published 2024-09-01“…However, FGG generated genetic data contain private and sensitive information. Therefore, it is essential to deploy approaches that minimize unnecessary disclosure of these data to mitigate potential risks to individual privacy. …”
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