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Packet Storm News
Packet Storm News
added 2025/06/22 12:0 a.m.8 views

InverTune: Removing Backdoors from Multimodal Contrastive Learning Models Via Trigger Inversion and Activation Tuning

Multimodal contrastive learning models like CLIP have demonstrated remarkable vision-language alignment capabilities, yet their vulnerability to backdoor attacks poses critical security risks. Attackers can implant latent triggers that persist through downstream tasks, enabling malicious control ...

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Packet Storm News
Packet Storm News
added 2025/06/22 12:0 a.m.23 views

KEENHash: Hashing Programs into Function-Aware Embeddings for Large-Scale Binary Code Similarity Analysis

Binary code similarity analysis BCSA is a crucial research area in many fields such as cybersecurity. Specifically, function-level diffing tools are the most widely used in BCSA: they perform function matching one by one for evaluating the similarity between binary programs. However, such methods...

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Packet Storm News
Packet Storm News
added 2025/06/20 12:0 a.m.8 views

Semantic-Aware Parsing for Security Logs

Security analysts struggle to quickly and efficiently query and correlate log data due to the heterogeneity and lack of structure in real-world logs. Existing AI-based parsers focus on learning syntactic log templates but lack the semantic interpretation needed for querying. Directly querying lar...

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Packet Storm News
Packet Storm News
added 2025/06/19 12:0 a.m.7 views

Private Training and Data Generation by Clustering Embeddings

Deep neural networks often use large, high-quality datasets to achieve high performance on many machine learning tasks. When training involves potentially sensitive data, this process can raise privacy concerns, as large models have been shown to unintentionally memorize and reveal sensitive...

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Packet Storm News
Packet Storm News
added 2025/06/17 12:0 a.m.14 views

KGMark: a Diffusion Watermark for Knowledge Graphs

Knowledge graphs KGs are ubiquitous in numerous real-world applications, and watermarking facilitates protecting intellectual property and preventing potential harm from AI-generated content. Existing watermarking methods mainly focus on static plain text or image data, while they can hardly be...

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Packet Storm News
Packet Storm News
added 2025/06/13 12:0 a.m.4 views

Graph-Based Floor Separation Using Node Embeddings and Clustering of WiFi Trajectories

Indoor positioning systems IPSs are increasingly vital for location-based services in complex multi-storey environments. This study proposes a novel graph-based approach for floor separation using Wi-Fi fingerprint trajectories, addressing the challenge of vertical localization in indoor settings...

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Packet Storm News
Packet Storm News
added 2025/06/11 12:0 a.m.11 views

Differentially Private Federated $K$-Means Clustering with Server-Side Data

Clustering is a cornerstone of data analysis that is particularly suited to identifying coherent subgroups or substructures in unlabeled data, as are generated continuously in large amounts these days. However, in many cases traditional clustering methods are not applicable, because data are...

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Packet Storm News
Packet Storm News
added 2025/06/11 12:0 a.m.8 views

First-Spammed, First-Served: MEV Extraction on Fast-Finality Blockchains

This research analyzes the economics of spam-based arbitrage strategies on fast-finality blockchains. We begin by theoretically demonstrating that, splitting a profitable MEV opportunity into multiple small transactions is the optimal strategy for CEX-DEX arbitrageurs. We then empirically validat...

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Packet Storm News
Packet Storm News
added 2025/06/06 12:0 a.m.6 views

Differentially Private Explanations for Clusters

The dire need to protect sensitive data has led to various flavors of privacy definitions. Among these, Differential privacy DP is considered one of the most rigorous and secure notions of privacy, enabling data analysis while preserving the privacy of data contributors. One of the fundamental...

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Packet Storm News
Packet Storm News
added 2025/06/05 12:0 a.m.8 views

Urania: Differentially Private Insights into AI Use

We introduce $Urania$, a novel framework for generating insights about LLM chatbot interactions with rigorous differential privacy DP guarantees. The framework employs a private clustering mechanism and innovative keyword extraction methods, including frequency-based, TF-IDF-based, and LLM-guided...

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Packet Storm News
Packet Storm News
added 2025/06/04 12:0 a.m.8 views

Clustering and Median Aggregation Improve Differentially Private Inference

Differentially private DP language model inference is an approach for generating private synthetic text. A sensitive input example is used to prompt an off-the-shelf large language model LLM to produce a similar example. Multiple examples can be aggregated together to formally satisfy the DP...

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Packet Storm News
Packet Storm News
added 2025/05/31 12:0 a.m.20 views

PackHero: a Scalable Graph-Based Approach for Efficient Packer Identification

Anti-analysis techniques, particularly packing, challenge malware analysts, making packer identification fundamental. Existing packer identifiers have significant limitations: signature-based methods lack flexibility and struggle against dynamic evasion, while Machine Learning approaches require...

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Packet Storm News
Packet Storm News
added 2025/05/28 12:0 a.m.7 views

Privacy-Preserving Prompt Personalization in Federated Learning for Multimodal Large Language Models

Prompt learning is a crucial technique for adapting pre-trained multimodal language models MLLMs to user tasks. Federated prompt personalization FPP is further developed to address data heterogeneity and local overfitting, however, it exposes personalized prompts - valuable intellectual assets - ...

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Packet Storm News
Packet Storm News
added 2025/05/26 12:0 a.m.5 views

Poison in the Well: Feature Embedding Disruption in Backdoor Attacks

Backdoor attacks embed malicious triggers into training data, enabling attackers to manipulate neural network behavior during inference while maintaining high accuracy on benign inputs. However, existing backdoor attacks face limitations manifesting in excessive reliance on training data, poor...

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RedhatCVE
RedhatCVE
added 2025/05/23 10:34 a.m.15 views

CVE-2024-46942

In OpenDaylight Model-Driven Service Abstraction Layer MD-SAL through 13.0.1, a controller with a follower role can configure flow entries in an OpenDaylight clustering deployment...

9.1CVSS6.8AI score0.00443EPSS
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RedhatCVE
RedhatCVE
added 2025/05/23 7:14 a.m.13 views

CVE-2024-53257

Vitess is a database clustering system for horizontal scaling of MySQL. The /debug/querylogz and /debug/env pages for vtgate and vttablet do not properly escape user input. The result is that queries executed by Vitess can write HTML into the monitoring page at will. These pages are rendered usin...

4.9CVSS5AI score0.00428EPSS
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RedhatCVE
RedhatCVE
added 2025/05/23 2:25 a.m.7 views

CVE-2023-45177

IBM MQ 9.0 LTS, 9.1 LTS, 9.2 LTS, 9.3 LTS and 9.3 CD is vulnerable to a denial-of-service attack due to an error within the MQ clustering logic. IBM X-Force ID: 268066...

5.3CVSS6.3AI score0.00599EPSS
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Packet Storm News
Packet Storm News
added 2025/05/21 12:0 a.m.8 views

Real-Time Detection of Insider Threats Using Behavioral Analytics and Deep Evidential Clustering

Insider threats represent one of the most critical challenges in modern cybersecurity. These threats arise from individuals within an organization who misuse their legitimate access to harm the organization's assets, data, or operations. Traditional security mechanisms, primarily designed for...

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Packet Storm News
Packet Storm News
added 2025/05/21 12:0 a.m.8 views

Privacy-Preserving Socialized Recommendation Based on Multi-View Clustering in a Cloud Environment

Recommendation as a service has improved the quality of our lives and plays a significant role in variant aspects. However, the preference of users may reveal some sensitive information, so that the protection of privacy is required. In this paper, we propose a privacy-preserving, socialized,...

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CNVD
CNVD
added 2025/05/20 12:0 a.m.10 views

DELL PowerScale OneFS Competitive Conditions Vulnerability

DELL PowerScale OneFS is Dell's horizontally scalable clustered file system designed to manage unstructured data and support enterprise-class storage capabilities. A competitive condition vulnerability exists in DELL PowerScale OneFS, which can be exploited by attackers to cause a denial of servi...

6.3CVSS6.6AI score0.00139EPSS
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