Performance Analysis of Integrated Sensing and Communication Networks with Blockage Effects
arXiv:2403.18621 · doi:10.1109/TVT.2024.3420880
Abstract
Communication-sensing integration represents an up-and-coming area of research, enabling wireless networks to simultaneously perform communication and sensing tasks. However, in urban cellular networks, the blockage of buildings results in a complex signal propagation environment, affecting the performance analysis of integrated sensing and communication (ISAC) networks. To overcome this obstacle, this paper constructs a comprehensive framework considering building blockage and employs a distance-correlated blockage model to analyze interference from line of sight (LoS), non-line of sight (NLoS), and target reflection cascading (TRC) links. Using stochastic geometric theory, expressions for signal-to-interference-plus-noise ratio (SINR) and coverage probability for communication and sensing in the presence of blockage are derived, allowing for a comprehensive comparison under the same parameters. The research findings indicate that blockage can positively impact coverage, especially in enhancing communication performance. The analysis also suggests that there exists an optimal base station (BS) density when blockage is of the same order of magnitude as the BS density, maximizing communication or sensing coverage probability.
This paper has been accepted by IEEE Transactions on Vehicular Technology
References in corpus (7)
- Integrated Sensing and Communication with Massive MIMO: A Unified Tensor Approach for Channel and Target Parameter Estimation
- Downlink Coverage and Rate Analysis of Low Earth Orbit Satellite Constellations Using Stochastic Geometry
- Joint Pilot Optimization, Target Detection and Channel Estimation for Integrated Sensing and Communication Systems
- Joint Localization and Environment Sensing by Harnessing NLOS Components in RIS-aided mmWave Communication Systems
- Environment Sensing Considering the Occlusion Effect: A Multi-View Approach
- Coverage and Rate of Joint Communication and Parameter Estimation in Wireless Networks
- Highly Efficient Waveform Design and Hybrid Duplex for Joint Communication and Sensing