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Packet Storm News
Packet Storm News
added 2025/06/02 12:00 a.m.10 views

Silence Is Golden: Leveraging Adversarial Examples to Nullify Audio Control in LDM-Based Talking-Head Generation

Advances in talking-head animation based on Latent Diffusion Models LDM enable the creation of highly realistic, synchronized videos. These fabricated videos are indistinguishable from real ones, increasing the risk of potential misuse for scams, political manipulation, and misinformation. Hence,...

7.1AI score
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Packet Storm News
Packet Storm News
added 2025/06/02 12:00 a.m.12 views

CSVAR: Enhancing Visual Privacy in Federated Learning Via Adaptive Shuffling against Overfitting

Although federated learning preserves training data within local privacy domains, the aggregated model parameters may still reveal private characteristics. This vulnerability stems from clients' limited training data, which predisposes models to overfitting. Such overfitting enables models to...

6.6AI score
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Packet Storm News
Packet Storm News
added 2025/06/02 12:00 a.m.14 views

Fingerprinting Deep Learning Models Via Network Traffic Patterns in Federated Learning

Federated Learning FL is increasingly adopted as a decentralized machine learning paradigm due to its capability to preserve data privacy by training models without centralizing user data. However, FL is susceptible to indirect privacy breaches via network traffic analysis-an area not explored in...

6.5AI score
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Packet Storm News
Packet Storm News
added 2025/06/02 12:00 a.m.9 views

Mitigating Disparate Impact of Differentially Private Learning through Bounded Adaptive Clipping

Differential privacy DP has become an essential framework for privacy-preserving machine learning. Existing DP learning methods, however, often have disparate impacts on model predictions, e.g., for minority groups. Gradient clipping, which is often used in DP learning, can suppress larger...

6.9AI score
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Packet Storm News
Packet Storm News
added 2025/06/01 12:00 a.m.12 views

Privacy-Aware, Public-Aligned: Embedding Risk Detection and Public Values into Scalable Clinical Text De-Identification for Trusted Research Environments

Clinical free-text data offers immense potential to improve population health research such as richer phenotyping, symptom tracking, and contextual understanding of patient care. However, these data present significant privacy risks due to the presence of directly or indirectly identifying...

6.9AI score
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Packet Storm News
Packet Storm News
added 2025/06/01 12:00 a.m.15 views

IDCloak: a Practical Secure Multi-Party Dataset Join Framework for Vertical Privacy-Preserving Machine Learning

Vertical privacy-preserving machine learning vPPML enables multiple parties to train models on their vertically distributed datasets while keeping datasets private. In vPPML, it is critical to perform the secure dataset join, which aligns features corresponding to intersection IDs across datasets...

7AI score
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RedhatCVE
RedhatCVE
added 2025/05/31 3:52 p.m.26 views

CVE-2025-3913

Mattermost versions 10.7.x = 10.7.0, 10.6.x = 10.6.2, 10.5.x = 10.5.3, 9.11.x = 9.11.12 fail to properly validate permissions when changing team privacy settings, allowing team administrators without the 'invite user' permission to access and modify team invite IDs via the...

5.3CVSS6.8AI score0.0029EPSS
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Packet Storm News
Packet Storm News
added 2025/05/31 12:00 a.m.25 views

Blockchain Powered Edge Intelligence for U-Healthcare in Privacy Critical and Time Sensitive Environment

Edge Intelligence EI serves as a critical enabler for privacy-preserving systems by providing AI-empowered computation and distributed caching services at the edge, thereby minimizing latency and enhancing data privacy. The integration of blockchain technology further augments EI frameworks by...

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Packet Storm News
Packet Storm News
added 2025/05/31 12:00 a.m.9 views

Browser Fingerprinting Using WebAssembly

Web client fingerprinting has become a widely used technique for uniquely identifying users, browsers, operating systems, and devices with high accuracy. While it is beneficial for applications such as fraud detection and personalized experiences, it also raises privacy concerns by enabling...

6.8AI score
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Packet Storm News
Packet Storm News
added 2025/05/31 12:00 a.m.12 views

Unlearning Inversion Attacks for Graph Neural Networks

Graph unlearning methods aim to efficiently remove the impact of sensitive data from trained GNNs without full retraining, assuming that deleted information cannot be recovered. In this work, we challenge this assumption by introducing the graph unlearning inversion attack: given only black-box...

6.5AI score
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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.12 views

Dpmm: Differentially Private Marginal Models, a Library for Synthetic Tabular Data Generation

We propose dpmm, an open-source library for synthetic data generation with Differentially Private DP guarantees. It includes three popular marginal models -- PrivBayes, MST, and AIM -- that achieve superior utility and offer richer functionality compared to alternative implementations...

7.2AI score
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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.8 views

Breaking the Gold Standard: Extracting Forgotten Data under Exact Unlearning in Large Language Models

Large language models are typically trained on datasets collected from the web, which may inadvertently contain harmful or sensitive personal information. To address growing privacy concerns, unlearning methods have been proposed to remove the influence of specific data from trained models. Of...

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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.11 views

Local Frames: Exploiting Inherited Origins to Bypass Content Blockers

We present a study of how local frames i.e., iframes with non-URL sources like "about:blank" are mishandled by a wide range of popular Web security and privacy tools. As a result, users of these tools remain vulnerable to the very attack techniques they seek to protect against, including browser...

6.9AI score
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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.8 views

Next Generation Authentication for Data Spaces: an Authentication Flow Based on Grant Negotiation and Authorization Protocol for Verifiable Presentations (GNAP4VP)

Identity verification in Data Spaces is a fundamental aspect of ensuring security and privacy in digital environments. This paper presents an identity verification protocol tailored for shared data environments within Data Spaces. This protocol extends the Grant Negotiation and Authorization...

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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.15 views

Transaction Proximity: a Graph-Based Approach to Blockchain Fraud Prevention

This paper introduces a fraud-deterrent access validation system for public blockchains, leveraging two complementary concepts: "Transaction Proximity", which measures the distance between wallets in the transaction graph, and "Easily Attainable Identities EAIs", wallets with direct transaction...

6.7AI score
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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.8 views

Randextract: a Reference Library to Test and Validate Privacy Amplification Implementations

Quantum cryptographic protocols do not rely only on quantum-physical resources, they also require reliable classical communication and computation. In particular, the secrecy of any quantum key distribution protocol critically depends on the correct execution of the privacy amplification step. Th...

6.8AI score
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Packet Storm News
Packet Storm News
added 2025/05/30 12:00 a.m.10 views

Adaptive Privacy-Preserving SSD

Data remanence in NAND flash complicates complete deletion on IoT SSDs. We design an adaptive architecture offering four privacy levels PL0-PL3 that select among address, data, and parity deletion techniques. Quantitative analysis balances efficacy, latency, endurance, and cost. Machine-learning...

7AI score
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CVE
CVE
added 2025/05/29 7:25 p.m.53 views

CVE-2025-47288

Affected product: Discourse Policy plugin. Vulnerable: versions prior to 0.1.1. Root cause: a policy posted to a public topic that was tied to a private group could cause group members to be visible to non-group members. Impact: information disclosure of private-group membership (partial confiden...

3.5CVSS3.9AI score0.0023EPSS
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Github Security Blog
Github Security Blog
added 2025/05/29 6:31 p.m.24 views

Mattermost improperly allows team administrators to modify team invites

Mattermost versions 10.7.x = 10.7.0, 10.6.x = 10.6.2, 10.5.x = 10.5.3, 9.11.x = 9.11.12 fail to properly validate permissions when changing team privacy settings, allowing team administrators without the 'invite user' permission to access and modify team invite IDs via the...

5.3CVSS7AI score0.0029EPSS
SaveExploits0References4Affected Software1
NVD
NVD
added 2025/05/29 4:15 p.m.27 views

CVE-2025-3913

Mattermost versions 10.7.x = 10.7.0, 10.6.x = 10.6.2, 10.5.x = 10.5.3, 9.11.x = 9.11.12 fail to properly validate permissions when changing team privacy settings, allowing team administrators without the 'invite user' permission to access and modify team invite IDs via the...

5.3CVSS0.0029EPSS
SaveExploits0References1
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