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Single Satellite Emitter Geolocation in the Presence of Oscillator and Ephemeris Errors

机译:存在振荡器和星历误差的单颗卫星发射器地理位置

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This paper addresses high-accuracy geolocation of a ground-level, uncooperative RF emitter using a single low earth orbit (LEO) satellite. It is meant to be a real-time, single-pass solution that requires only a few seconds of Doppler and Doppler Rate measurements and resistant to erroneous ephemeris readings and oscillator errors from both the transmitter and receiver. The presented work can be expected to have a significant impact on search and rescue operations, spectrum monitoring, and tracking. Oscillator and ephemeris errors are inherent system flaws for satellite geolocation - heavily distorting error distributions, violating many symmetric and Gaussian assumptions that most estimation algorithms rely on. To deal with this, a constrained Unscented Particle Filter (cUPF) is provided. Using quoted oscillator errors, ephemeris error, analysis is provided with respect to geolocation accuracy. Each scenario compares the cUPF with a previously developed constrained Unscented Kalman Filter (cUKF). Validation is provided on both simulated data and off-the-air IQ data obtained from the TDS-1 Satellite operated by Surrey Satellite Technology. The cUPF algorithm outperforms the prior state-of-the-art cUKF in both accuracy and convergence time, often obtaining single kilometer geolocation accuracies with only a few seconds of acquisition time over a several hundred kilometer search space.
机译:本文满足了使用单个低地球轨道(LEO)卫星的地面,不合作的RF发射器的高精度地理位置。这是一个实时的单通解决方案,只需要几秒钟的多普勒和多普勒速率测量和抵抗发射器和接收器的错误星历读数和振荡器误差。可以预期提出的工作对搜索和救援行动,频谱监测和跟踪产生重大影响。振荡器和星历误差是卫星地理定位的固有系统缺陷 - 严重扭曲错误分布,违反了大多数估计算法依赖的许多对称和高斯假设。为此处理这一点,提供了一个受约束的无形粒子滤波器(CUPF)。使用引用的振荡器误差,星历错误,分析了地理位置准确性。每种情况都将Cupf与先前开发的受限无容的卡尔曼滤波器(CUKF)进行比较。在Surrey卫星技术运营的TDS-1卫星中获得的模拟数据和空中IQ数据都提供了验证。 CUPF算法在准确性和收敛时间内优于现有的最先进的CUKF,通常在几秒钟内获得单千米的地理位置精度超过几百公里的搜索空间。

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