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An AI Security Agent for University ACMIS: Multi-Vector Threat Detection and Automated Response From Privacy to Workflow Integrity: Communication-Graph Metadata in Autonomous Agent Interoperability Learn from Your Mistakes: Tree-like Self-Play for Secure Code LLMs Send a SCOUT First: Pre-hoc Reasoning for Adaptive Detector Allocation in Prompt-Injection Defense QSignAI: Quantum-Randomness-Seeded Identity Signatures at the Intersection of AI for Science and Science for AI A Standardized Ontology for Intent-Based Security Management in Autonomous Networks Code as a Weapon: A Consensus-Labeled Prompt Bank for Measuring Coding-Model Compliance with Malicious-Code Requests Cordyceps: Covert Control Attacks on LLMs via Data Poisoning SAMark: A Self-Anchored Text Watermarking with Paragraph-Level Paraphrase Robustness Mechanistic origins of catastrophic forgetting: why RL preserves circuits better than SFT? Red-Teaming Agent Execution Contexts: Open-World Security Evaluation on OpenClaw From Specification to Deployment: Empirical Evidence from a W3C VC + DID Trust Infrastructure for Autonomous Agents Jailbreak Attack Initializations as Extractors of Compliance Directions Detecting Malicious Concepts without Image Generation in AI-Generated Content (AIGC) XAttnMark: Learning Robust Audio Watermarking with Cross-Attention How Vulnerable Is My Learned Policy? Universal Adversarial Perturbation Attacks On Modern Behavior Cloning Policies Position: Adversarial ML for LLMs Is Not Making Any Progress Activation Approximations Can Incur Safety Vulnerabilities Even in Aligned LLMs: Comprehensive Analysis and Defense Imitation Game for Adversarial Disillusion with Chain-of-Thought Reasoning in Generative AI PromptGuard: Soft Prompt-Guided Unsafe Content Moderation for Text-to-Image Models Towards the Anonymization of the Language Modeling A Multiparty Homomorphic Encryption Approach to Confidential Federated Kaplan Meier Survival Analysis The Utility and Complexity of in- and out-of-Distribution Machine Unlearning Red-Teaming Text-to-Image Models via In-Context Experience Replay and Semantic-Preserving Prompt Rewriting DeTrigger: A Gradient-Centric Approach to Backdoor Attack Mitigation in Federated Learning Privacy Leakage via Output Label Space and Differentially Private Continual Learning ARQ: A Mixed-Precision Quantization Framework for Accurate and Certifiably Robust DNNs Noise-Aware Differentially Private Variational Inference Faster-GCG: Efficient Discrete Optimization Jailbreak Attacks against Aligned Large Language Models Jailbreaking and Mitigation of Vulnerabilities in Large Language Models CoreGuard: Safeguarding Foundational Capabilities of LLMs Against Model Stealing in Edge Deployment Power-Softmax: Towards Secure LLM Inference over Encrypted Data FlipAttack: Jailbreak LLMs via Flipping Hypnopaedia-Aware Machine Unlearning via Psychometrics of Artificial Mental Imagery Anomaly Detection from a Tensor Train Perspective Survival of the Cheapest: Cost-Aware Hardware Adaptation for Adversarial Robustness Convergent Differential Privacy Analysis for General Federated Learning Certified Causal Defense with Generalizable Robustness Improving Clean Accuracy via a Tangent-Space Perspective on Adversarial Training Contracting Self-similar Groups in Group-Based Cryptography The AI risk repository: A meta-review, database, and taxonomy of risks from artificial intelligence Towards Agentic Runtime Healing Verification of Machine Unlearning is Fragile Certified Robustness to Data Poisoning in Gradient-Based Training Nonlinear Transformations Against Unlearnable Datasets Aggressive or Imperceptible, or Both: Network Pruning Assisted Hybrid Byzantines in Federated Learning Whispers in the Machine: Confidentiality in Agentic Systems MalPurifier: Enhancing Android Malware Detection with Adversarial Purification against Evasion Attacks Towards Adaptive, Learning-Based Security in Decentralized Applications Approximate and Weighted Data Reconstruction Attack in Federated Learning Can Blockchains Reliably Train Machine Learning Models? LSTM based IoT Device Identification Attacking the Spike: On the Transferability and Security of Spiking Neural Networks to Adversarial Examples Vendor-Conditioned Contrastive Learning for Predicting Organizational Cyber Threat Targets A formalization of re-identification in terms of compatible probabilities A trust-based security mechanism for nomadic users in pervasive systems Intrusion Detection on Smartphones Obesity Heuristic, New Way On Artificial Immune Systems Secured Wireless Communication using Fuzzy Logic based High Speed Public-Key Cryptography (FLHSPKC) Mining Permission Request Patterns from Android and Facebook Applications (extended author version) Building a Chaotic Proved Neural Network Detecting Danger: The Dendritic Cell Algorithm Detecting Anomalous Process Behaviour using Second Generation Artificial Immune Systems Outrepasser les limites des techniques classiques de Prise d'Empreintes grace aux Reseaux de Neurones Building Computer Network Attacks ToLeRating UR-STD The DCA:SOMe Comparison A comparative study between two biologically-inspired algorithms Real-Time Alert Correlation with Type Graphs Performance Evaluation of DCA and SRC on a Single Bot Detection Behavioural Correlation for Detecting P2P Bots Malicious Code Execution Detection and Response Immune System inspired by the Danger Theory Integrating Real-Time Analysis With The Dendritic Cell Algorithm Through Segmentation Integrating Innate and Adaptive Immunity for Intrusion Detection Information Fusion for Anomaly Detection with the Dendritic Cell Algorithm Further Exploration of the Dendritic Cell Algorithm: Antigen Multiplier and Time Windows Detecting Bots Based on Keylogging Activities Detecting Danger: Applying a Novel Immunological Concept to Intrusion Detection Systems Detecting Motifs in System Call Sequences Dendritic Cells for SYN Scan Detection Detecting Botnets Through Log Correlation DCA for Bot Detection Cooperative Automated Worm Response and Detection Immune Algorithm Cryptographic Implications for Artificially Mediated Games Differentially Private Empirical Risk Minimization An Immune Inspired Network Intrusion Detection System Utilising Correlation Context An Immune Inspired Approach to Anomaly Detection Hybrid Intrusion Detection and Prediction multiAgent System HIDPAS Artificial Dendritic Cells: Multi-faceted Perspectives AIS for Misbehavior Detection in Wireless Sensor Networks: Performance and Design Principles The Role of Self-Forensics in Vehicle Crash Investigations and Event Reconstruction Beyond Nash Equilibrium: Solution Concepts for the 21st Century From Qualitative to Quantitative Proofs of Security Properties Using First-Order Conditional Logic Danger Theory: The Link between AIS and IDS? Dempster-Shafer for Anomaly Detection The Danger Theory and Its Application to Artificial Immune Systems ANTIDS: Self-Organized Ant-based Clustering Model for Intrusion Detection System Analyzing and Improving Performance of a Class of Anomaly-based Intrusion Detectors Soft Constraint Programming to Analysing Security Protocols A Method for Clustering Web Attacks Using Edit Distance Encoding a Taxonomy of Web Attacks with Different-Length Vectors
Toward Integrated Solutions: A Systematic Interdisciplinary Review of Cybergrooming Research
Heajun An, Marcos Silva, Qi Zhang, Arav Singh, Minqian Liu, Xiny · 2025-02-18 · via cs.CR updates on arXiv.org

Cybergrooming exploits minors through online trust-building, yet research remains fragmented, limiting holistic prevention. Social sciences focus on behavioral insights, while computational methods emphasize detection, but their integration remains insufficient. This review systematically synthesizes both fields using the PRISMA framework to enhance clarity, reproducibility, and cross-disciplinary collaboration. Findings show that qualitative methods offer deep insights but are resource-intensive, machine learning models depend on data quality, and standard metrics struggle with imbalance and cultural nuances. By bridging these gaps, this review advances interdisciplinary cybergrooming research, guiding future efforts toward more effective prevention and detection strategies.