| Literature DB >> 27529252 |
Kyuman Lee1, Hoki Baek2, Jaesung Lim3.
Abstract
The airborne relay-based positioning system (ARPS), which employs the relaying of navigation signals, was proposed as an alternative positioning system. However, the ARPS has limitations, such as relatively large vertical error and service restrictions, because firstly, the user position is estimated based on airborne relays that are located in one direction, and secondly, the positioning is processed using only relayed navigation signals. In this paper, we propose an enhanced positioning algorithm to improve the performance of the ARPS. The main idea of the enhanced algorithm is the adaptable use of either virtual or direct measurements of reference stations in the calculation process based on the structural features of the ARPS. Unlike the existing two-step algorithm for airborne relay and user positioning, the enhanced algorithm is divided into two cases based on whether the required number of navigation signals for user positioning is met. In the first case, where the number of signals is greater than four, the user first estimates the positions of the airborne relays and its own initial position. Then, the user position is re-estimated by integrating a virtual measurement of a reference station that is calculated using the initial estimated user position and known reference positions. To prevent performance degradation, the re-estimation is performed after determining its requirement through comparing the expected position errors. If the navigation signals are insufficient, such as when the user is outside of airborne relay coverage, the user position is estimated by additionally using direct signal measurements of the reference stations in place of absent relayed signals. The simulation results demonstrate that a higher accuracy level can be achieved because the user position is estimated based on the measurements of airborne relays and a ground station. Furthermore, the service coverage is expanded by using direct measurements of reference stations for user positioning.Entities:
Keywords: accuracy enhancement; dilution of precision; positioning algorithm; re-estimation; virtual measurement
Year: 2016 PMID: 27529252 PMCID: PMC5017449 DOI: 10.3390/s16081284
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Configuration of the airborne relay-based positioning system.
Figure 2Positioning procedures of the enhanced algorithm.
Main notations for the mathematical expressions.
| Variable | Description |
|---|---|
| Unit vector from the | |
| Unit vector from the | |
| Position vector of the | |
| Position vector of the | |
| Initial user position vector | |
| Final user position vector | |
| Measured reception time of the relayed signal by the | |
| Measured reception time of direct signal from the | |
| Measured pseudorange between the | |
| Estimated pseudorange between the | |
| Estimated distance between the | |
| Estimated virtual pseudorange between the | |
Figure 3Time difference of arrival for each step.
Figure 4Segment disposition for simulations.
Figure 5Re-estimation errors of the user for direct and virtual measurements. (a) Results for direct measurement; (b) Results for virtual measurement.
Figure 6User accuracy according to the number of virtual measurements.
PDOP in accordance with the position of the reference station.
| Distance from a User | Near <– – – – – – – – – – – – – – – – – –> Far | |||||
|---|---|---|---|---|---|---|
| 2.1087 | 2.2264 | 2.2565 | 2.2451 | 2.2304 | 2.2105 | |
| (10,000, 10,000, 10) | ||||||
| 4.8424 | 4.9252 | 5.6364 | 5.6731 | 5.7758 | 5.9863 | |
| (60,000, 60,000, 10) | ||||||
Figure 7Horizontal and vertical accuracies of the user in a service area. (a) Existing algorithm; (b) Enhanced algorithm.
Figure 8East, north and up (ENU) errors of the user positioning outside a coverage area. (a) User position in the simulation; (b) ENU errors of a user.
Figure 9Horizontal and vertical accuracy according to the distance from the center.