Aug 2026· Advances in Computer and Materials Scienc Research· Vol 8, pp. 24· 0 citations
Abstract
Long-range localization of maritime infrared targets is challenging due to Earth’s curvature, installation deviations, sensor inaccuracies, and environmental noise.This paper proposes an Earth ellipsoid model-based localization algorithm with a two-stage error compensation mechanism. The algorithm constructs a collinearity equation in the geocentric Cartesian coordinate system to intersect the camera’s secondary optical axis with the WGS-84 ellipsoid, obtaining target coordinates. The first stage uses a dual-target-point calibration method to correct installation angle and hardware-induced secondary optical axis pointing errors. The second stage applies an adaptive Kalman filter to dynamically suppress random errors from environmental disturbances.Experiments on shore-based, shipborne, and airborne platforms show that when the observation device is above 80 m sea level, the proposed method achieves a localization accuracy within 5% of the detection range for distant infrared targets.The algorithm effectively compensates multi-source errors, significantly improving positioning precision under complex sea conditions, and is suitable for engineering deployment.
Gravity matching provides an absolute position reference for correcting the accumulated errors of an inertial navigation system (INS) during long-endurance underwater navigation. Its performance, however, can deteriorate when the available sampling data are limited, the gravity field is weakly distinctive, or the measu...
Hui Liu, Rui Jiang, H. Cheng et al.· Actuators· 0 citations
Maritime over-the-horizon (OTH) two-station angle-of-arrival localization is affected by both Earth-curvature modeling errors and systematic bearing biases introduced by tropospheric scattering. To improve localization accuracy while retaining the existing two-station direction-finding architecture, this paper proposes...
Yun-Ze Liu, Zhi-Yong Kang, Chao Yu et al.· Measurement science and tech...· 0 citations
This study presents a terrain-aware adaptive multisensor fusion framework for high-precision localization of robotic platforms operating on slightly undulating terrain. The framework integrates heterogeneous sensing modalities, including RGB-D perception, inertial measurements, wheel odometry, and total-station observa...
Tian-Yu Hua, Meng-Qi Zhao, Feng Li et al.· IEEE Sensors Journal· 0 citations
The signal anomalies of global navigation satellite system (GNSS) are the key factors for the performance of shipborne strapdown gravimetry. In order to obtain reliable gravity information in real-time and at low operating cost in the conditions of signal outages or interference, we show a high-precision strapdown gr...
Fang-Jun Qin, Lei-Yuan Qian, Kai-Long Li et al.· Communications Engineer· 0 citations
With the rapid development of industrial automation and intelligent logistics, the autonomous navigation and localization accuracy of automated guided vehicles (AGVs), as core equipment in automated transport systems, directly affects logistics efficiency and operational safety. To address insufficient AGV localization...
The accurate underwater gravity measurements are essential for revealing marine geological structures and resource distributions. Most existing methods primarily rely on the strapdown inertial navigation system (SINS) as the core component, heavily depending on underwater sensors, such as depth gauges (DGs) and ultrash...
Yun-Yun Xie, Zhi-Ming Xiong, Kai-Xin Luo et al.· IEEE Transactions on Geoscie...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.