Secrecy Outage Analysis for Downlink Transmissions in the Presence of Randomly Located Eavesdroppers
Gaojie Chen, Justin P. Coon, Marco Di Renzo

TL;DR
This paper analyzes the secrecy outage probability in downlink wireless networks with randomly located eavesdroppers, comparing half-duplex and full-duplex user equipment, and provides exact and approximate expressions for different eavesdropper models.
Contribution
It introduces new analytical expressions for secrecy outage probability considering both HD and FD modes with colluding and non-colluding eavesdroppers, enhancing understanding of secrecy performance.
Findings
Secrecy outage probability decreases logarithmically with the number of antennas.
FD jamming can outperform HD under certain conditions.
Explicit formulas are derived for various path loss exponents.
Abstract
We analyze the secrecy outage probability in the downlink for wireless networks with spatially (Poisson) distributed eavesdroppers (EDs) under the assumption that the base station employs transmit antenna selection (TAS) to enhance secrecy performance. We compare the cases where the receiving user equipment (UE) operates in half-duplex (HD) mode and full-duplex (FD) mode. In the latter case, the UE simultaneously receives the intended downlink message and transmits a jamming signal to strengthen secrecy. We investigate two models of (semi)passive eavesdropping: (1) EDs act independently and (2) EDs collude to intercept the transmitted message. For both of these models, we obtain expressions for the secrecy outage probability in the downlink for HD and FD UE operation. The expressions for HD systems have very accurate approximate or exact forms in terms of elementary and/or special…
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Taxonomy
TopicsWireless Communication Security Techniques · Full-Duplex Wireless Communications · Cooperative Communication and Network Coding
