Performance Limits and Geometric Properties of Array Localization
arXiv:1405.4372 · doi:10.1109/TIT.2015.2511778
Abstract
Location-aware networks are of great importance and interest in both civil and military applications. This paper determines the localization accuracy of an agent, which is equipped with an antenna array and localizes itself using wireless measurements with anchor nodes, in a far-field environment. In view of the Cramér-Rao bound, we first derive the localization information for static scenarios and demonstrate that such information is a weighed sum of Fisher information matrices from each anchor-antenna measurement pair. Each matrix can be further decomposed into two parts: a distance part with intensity proportional to the squared baseband effective bandwidth of the transmitted signal and a direction part with intensity associated with the normalized anchor-antenna visual angle. Moreover, in dynamic scenarios, we show that the Doppler shift contributes additional direction information, with intensity determined by the agent velocity and the root mean squared time duration of the transmitted signal. In addition, two measures are proposed to evaluate the localization performance of wireless networks with different anchor-agent and array-antenna geometries, and both formulae and simulations are provided for typical anchor deployments and antenna arrays.
to appear in IEEE Transactions on Information Theory
References in corpus (4)
- Fundamental Limits of Wideband Localization - Part II: Cooperative Networks
- Target Localization Accuracy Gain in MIMO Radar Based Systems
- Distributed Sensor Localization in Random Environments using Minimal Number of Anchor Nodes
- Resource Allocation in MIMO Radar With Multiple Targets for Non-Coherent Localization
Cited by in corpus (11)
- Error Bounds for Uplink and Downlink 3D Localization in 5G mmWave Systems
- Cooperative Network Synchronization: Asymptotic Analysis
- Cooperative Localization in Massive Networks
- Wireless Localization for mmWave Networks in Urban Environments
- Performance Limits of Single-Anchor Millimeter-Wave Positioning
- Multi-Array 5G V2V Relative Positioning: Performance Bounds
- 5G Downlink Multi-Beam Signal Design for LOS Positioning
- Cramér-Rao Bound Analysis of Radars for Extended Vehicular Targets with Known and Unknown Shape
- LOKO: Localization-aware Roll-out Planning for Future Mobile Networks
- SNR-Adaptive Ranging Waveform Design Based on Ziv-Zakai Bound Optimization
- Pairwise Node Localization From Differences in Their UWB Channels to Observer Nodes