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Anomaly Detection in Wireless Selective Forwarding in Cyber Security
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Anomaly Detection in Wireless Selective Forwarding in Cyber Security

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:NT$ 1330 元
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商品簡介

商品簡介

The rapid growth of wireless communication technologies, wireless sensor networks (WSNs), Internet of Things (IoT) devices, and cyber-physical systems has created new opportunities for digital transformation while simultaneously introducing sophisticated cybersecurity challenges. Among the most difficult attacks to detect in wireless networks is the selective forwarding attack, where compromised nodes intentionally forward some packets while silently dropping others. Because malicious nodes continue to behave normally for most network traffic, these attacks are difficult to identify using conventional security mechanisms and can severely affect network reliability, data integrity, and mission-critical applications. Research has shown that selective forwarding attacks are particularly challenging because attackers appear legitimate while selectively discarding sensitive traffic.

Anomaly Detection in Wireless Selective Forwarding in Cyber Security presents a comprehensive study of anomaly detection techniques designed to identify and mitigate selective forwarding attacks in modern wireless environments. The book begins by introducing the fundamentals of wireless communication, wireless sensor networks, routing protocols, and cybersecurity principles before examining the security vulnerabilities that exist in distributed wireless infrastructures. Readers gain a clear understanding of how selective forwarding attacks are launched, why they are difficult to detect, and how they impact data transmission, network performance, and system availability.

The book explores both traditional and modern anomaly detection approaches, including statistical analysis, rule-based systems, machine learning algorithms, artificial intelligence, trust-based models, and hybrid intrusion detection systems. It explains how abnormal communication patterns, packet loss behavior, node trust values, traffic characteristics, and routing anomalies can be analyzed to distinguish malicious activity from normal network behavior. Readers are introduced to supervised, unsupervised, and hybrid learning techniques that improve detection accuracy while minimizing false alarms. Modern anomaly detection systems increasingly combine AI with behavioral analysis to improve detection of previously unseen attacks.

Special emphasis is placed on practical implementation in wireless sensor networks, IoT environments, mobile ad hoc networks (MANETs), and next-generation wireless systems. The book discusses secure routing protocols, intrusion detection systems, anomaly detection frameworks, trust management, network monitoring, and performance evaluation using industry-standard metrics such as detection accuracy, precision, recall, false positive rate, and response time. It also examines the challenges of resource-constrained wireless devices, energy efficiency, scalability, and real-time detection in dynamic network environments.

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定價:100 1330
無庫存,下單後進貨
(到貨天數約30-45天)

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