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1.
高动态组合导航信号模拟器是高动态组合导航接收机设计验证的高效平台。本文给出了高动态GPS/BD2组合导航信号模拟器关键部分架构和实现方案,重点阐述了高动态信号的产生方法、提高模拟器运算效率的三次样条插值算法、反SINC滤波器补偿方法和保证模拟器通道一致性措施。对这一信号模拟器所产生的GNSS信号进行了验证。  相似文献   

2.
全球导航卫星系统(GNSS)共视(CV)技术应用中需要对GNSS共视信号进行模拟仿真,可以降低对共视接收机和共视算法进行测试过程中的成本。为此,提出了一种基于信道复用方法的GNSS共视信号的双路信号模拟方法。首先,对GNSS共视技术原理进行了分析。然后,根据GNSS直射信号的模拟思路,设计了基于GNSS直射信号模拟器的GNSS共视信号模拟方法,对共视信号传播过程中可能产生的误差进行了分析。最后,对零基线、短基线、长基线3种场景下仿真的共视信号,以及实场采集的试验数据进行了验证分析。验证的结果表明,仿真的GNSS共视信号定位准确,定位精度在米级;共视比对结果均方根值(RMS)精度优于12 ns,可以进行共视法时间传递,证明了提出的共视信号模拟方法能够有效地用于GNSS共视信号生成。对GNSS共视信号模拟器、共视接收机的研制和共视算法的研究具有一定的理论参考意义和实际应用价值。   相似文献   

3.
GNSS不同频点间的码伪距作差会引入信号的差分码偏差(DCB),包括GNSS卫星及地面接收机的DCB.本文提出一种地基GNSS接收机差分码偏差参数估算方法,首先由电离层文件参数作线性插值,计算出电离层延迟误差.之后对IGS站观测文件进行加权最小二乘法估计,得到GPS卫星和地面GNSS接收机的L1C频点和L2P频点间码偏...  相似文献   

4.
为了研究GPS/INS(Inertial Navigation System)组合导航方案和算法,设计了一种GPS中频信号和IMU(Inertial Measurement Unit)信号的软件模拟器.首先建立了载体的运动模型,然后介绍了信号的仿真方法.根据载体的运动产生IMU信号,载体的典型运动包括平飞运动、横滚运动、俯仰运动和偏航运动.建立了典型的干扰模型,包括欺骗式干扰和压制式干扰(窄带干扰、宽带干扰、连续波干扰和锯齿调频连续波干扰等4种),实现了干扰环境下的场景模拟.GPS/INS组合导航软件接收机对模拟器输出的数据进行解算,结果表明:信号的仿真算法是正确的,模拟器可以为组合导航接收机提供有效的中频信号和IMU信号.  相似文献   

5.
软件GNSS(Global Navigation Satellite Systems)信号模拟器对于GNSS接收机的高效研发将做出重要贡献,因其结构灵活、开放性以及低成本.以GPS/Galileo组合系统为例,讨论了软件GNSS中频信号模拟器的架构,主要功能模块包括卫星星座仿真、接收机轨迹生成、传播通道特性仿真(包括电离层模型、对流层模型、多径模型等)、数字中频信号生成.在此基础上,着重阐述了数字中频信号生成模块的实现,功率谱图及分析结果验证了所生成的信号,包括GPS L1 C/A,Galileo E1 CBOC(Composite Binary Offset Carrier),Galileo E5a和E5b信号.  相似文献   

6.
一种用于电离层TEC监测的GNSS信号载波跟踪算法   总被引:1,自引:1,他引:0       下载免费PDF全文
全球卫星导航系统(GNSS)是电离层TEC监测中应用最普遍的手段. 目前方法通常是在传统导航用途的GNSS接收机输出的原始观测量基础上,经过数据后处理得到电离层TEC信息,其GNSS信号的跟踪处理算法依然采用GNSS导航接收机的算法. 针对GNSS系统用于电离层TEC监测的特殊性,提出一种称为GNSS双频信号和差联合跟踪的新算法,与传统方法相比,该算法直接跟踪电离层TEC的变化,可以提高电离层TEC跟踪的灵敏度和TEC的观测精度,改善电离层TEC监测性能.   相似文献   

7.
GNSS接收机因须并行接收处理大量卫星信号,使用通道数量较多,功耗大是其主要难题,降低功耗的解决方法之一是让通道工作时钟采用较低的频率。通过分析工作时钟与所需处理的伪码频率的关系,本文给出了通道时钟频率对伪码相位分辨率和相位抖动幅度的影响。选取两种频率的工作时钟进行仿真实验,结果表明在相同仿真条件下,选用21MHz工作时钟与选用63MHz工作时钟相比,接收机的伪码测量精度、载波测量精度均下降1倍左右,但其引入的测量误差仍小于理论估算结果,选取较低的工作时钟频率是兼顾功耗与精度的折中方法,适合作为工程设计方案。  相似文献   

8.
导航信号的测量性能最终影响系统定位、测速、授时等服务精度, 是系统顶层设计的重要论证内容之一. 结合COMPASS系统新一代卫星导航信号体制框架设计, 分析了各种应用条件下的伪距、载波相位和多普勒测量精度, 并以典型设计参数为例进行了数值计算. 结果表明, 在接收机典型设计参数和工作条件下, 各信号分量均能够实现0.1m的伪距测量精度、0.006周的载波相位测量精度以及0.005m·s-1的多普勒测量精度. 首次给出的针对新信号体制各项测量性能的研究结果可为卫星导航系统信号体制设计、 导航接收机关键参数设计以及卫星导航系统用户测距误差预算等顶层设计提供参考.   相似文献   

9.
  总被引:1,自引:1,他引:0  
全球导航卫星系统反射(GNSS-R)技术应用中需GNSS-R信号模拟器来测试反射信号接收机,以降低成本。为此,提出了一种基于双基雷达原理的全球导航卫星系统(GNSS)海面反射信号建模方法。首先,分析了GNSS-R双基雷达遥感原理,根据延迟和多普勒频率在海面的分布特点,选择海面的反射点,并计算相应反射单元的面积;然后,对散射系数进行了计算;最后,对多条反射信号的合路信号进行相关的仿真验证。验证结果表明:模拟的海面反射信号的相关功率曲线与ZV模型理论曲线的相关系数优于0.92,能够有效地用于GNSS海面反射信号的生成。  相似文献   

10.
随着卫星导航产业的迅猛发展,导航终端测试技术越来越得到重视。传统的室内模拟测试和实际信号测试各有优缺点,因而产生了采集回放测试,通过采集存储实际卫星导航信号,并在实验室环境下进行回放,能够有效完成卫星导航终端的实际使用性能测试。基于导航信号模拟器,对采集回放系统做了介绍。选用国产多模接收机为参考标准接收机,以静态场景为例,从终端测试结果角度,分析了终端采集回放定位精度,对基于导航信号模拟器的采集回放测试方法进行了研究。  相似文献   

11.
由于全球导航卫星系统反射(GNSS-R)机载试验耗费大和重复性差,需研制GNSS-R信号模拟器,但没有相应的反射信号模型。提出了一种基于数据拟合的机载GNSS海洋反射信号建模方法。首先,对复杂的GNSS海面反射信号进行近似简化。然后利用ZV模型生成的时延相关功率曲线,通过最小二乘拟合和非线性拟合,建立了多条等时延间隔的海洋反射信号功率衰减模型,从而得到机载GNSS海洋反射信号的时延、功率、多普勒频率参数。最后,对多条反射信号的合路信号进行相关的仿真验证。验证的结果表明模拟的14条反射信号的相关功率曲线与ZV模型理论曲线的相关系数优于0.99,能够有效地用于GNSS海洋反射信号的生成。该方法可根据海面风场、浪高、波高等海面信息,模拟不同海况的海洋反射信号,为GNSS-R信号模拟器的研制奠定基础。  相似文献   

12.
The integer ambiguity resolution (AR) of carrier phase is significant for Global Navigation Satellite System (GNSS) precise positioning. However, in kinematic case, single-epoch AR methods based on alone GNSS are usually not reliable due to the instable pseudorange accuracy. Moreover, the computation of classical AR method Least Squares Ambiguity Decorrelation Adjustment (LAMBDA) is large. Thus, the inertial measurement unit (IMU) is introduced, a new inertial-aided AR method that directly rounds the float ambiguity of BeiDou triple-frequency combined observations, which is characterized by long wavelength, low carrier-phase noise and ionospheric delay, is proposed. The mathematical model of the new method is derived first. Then the impacts of the carrier-phase noise, ionospheric delay and inertial navigation system (INS) position error on the AR success ratio of combined observation are analyzed through probabilistic approach. Based on above investigation, the combinations (0, ?1, 1), (1, 4, ?5) and (4, ?2, ?3) are selected to resolve the original ambiguity. A vehicular integrated navigation test is performed to demonstrate the proposed method. The results show that the average AR success ratios of the three selected combinations, whose float ambiguity errors are 0.041, 0.146, 0.279 cycle respectively, are above 97.25% without regard to low-elevation C05. With respect to positioning accuracy based on our AR method when compared with IE software, the east, north, up error RMS of position are 0.042, 0.024, 0.069 m, respectively. In terms of the AR recover after the BeiDou signals outage, as long as 62 s BeiDou signal complete outage, all the ambiguities of all satellites could be re-fixed immediately. Besides, during the 90 s signals partial outage, the AR is not influenced by the position error, since the float ambiguity errors are all below half-cycle. The research of this contribution demonstrates the effectiveness of the proposed new method, which indicates it is applicable to kinematic positioning, even in BDS degraded and denied environments.  相似文献   

13.
GNSS模拟器中频调制卡设计与实现   总被引:1,自引:0,他引:1  
GNSS(Global Navigation Satellite System)信号模拟器能够根据用户所设置的GNSS系统和信号形式、载体动态和环境参数,精确模拟出载体收到的卫星信号,这为GNSS系统级仿真试验和接收机的测试提供一种高效的工具.主要研究兼容多系统多频点的卫星信号模拟器中频信号发生器和数字信号处理技术,提出了数字合路与功率控制的方法和信号相位精确模拟的途径;在基于PCIE+DSP+FPGA+DAC架构的中频板卡上完成了与PC通信、波形控制参数计算和更新、基带信号调制以及模拟中频信号的产生;最后给出了与相应的GNSS接收机的对接结果,验证了所产生中频信号的正确性和信号质量.  相似文献   

14.
高轨空间中全球卫星导航系统(GNSS)信号可用性严重变差,对GNSS接收机的跟踪性能提出更高要求。利用GNSS信号传播链路模型分析了高轨空间GNSS信号特点,对比了标量跟踪和矢量跟踪这2类典型跟踪环路在高轨空间的适用性,进而设计了一种适用于高轨空间的GNSS矢量跟踪方案。该方案通过估计载噪比确定量测噪声方差阵,以对各通道量测信息进行加权处理来获得高精度的导航参数;并根据高轨航天器的动态性能确定过程噪声方差阵,利用轨道动力学模型对导航参数进行一步预测,从而实现了对各通道信号跟踪参数的准确预测及联合跟踪。仿真验证表明:所设计的跟踪方案可实现高轨空间中强信号对弱信号的辅助跟踪,从而提高了高轨空间中弱信号的跟踪性能及可用性,并对中断信号具有一定的桥接能力。   相似文献   

15.
Ionosphere delay is very important to GNSS observations, since it is one of the main error sources which have to be mitigated even eliminated in order to determine reliable and precise positions. The ionosphere is a dispersive medium to radio signal, so the value of the group delay or phase advance of GNSS radio signal depends on the signal frequency. Ground-based GNSS stations have been used for ionosphere monitoring and modeling for a long time. In this paper we will introduce a novel approach suitable for single-receiver operation based on the precise point positioning (PPP) technique. One of the main characteristic is that only carrier-phase observations are used to avoid particular effects of pseudorange observations. The technique consists of introducing ionosphere ambiguity parameters obtained from PPP filter into the geometry-free combination of observations to estimate ionospheric delays. Observational data from stations that are capable of tracking the GPS/BDS/GALILEO from the International GNSS Service (IGS) Multi-GNSS Experiments (MGEX) network are processed. For the purpose of performance validation, ionospheric delays series derived from the novel approach are compared with the global ionospheric map (GIM) from Ionospheric Associate Analysis Centers (IAACs). The results are encouraging and offer potential solutions to the near real-time ionosphere monitoring.  相似文献   

16.
Three frequency GNSS (Global Navigation Satellite Systems) signals will be fully accessible in the near future. It is theoretically well-understood that the GNSS navigation performance could be improved with introduction of the third frequency signals. However it remains unclear what numerical improvements can be achieved in the varying navigation scenarios. In this paper, we numerically demonstrate the superior navigation prospect of three frequency GNSS compared to dual-frequency case. Since the third frequency pseudorange is not fully accessible at current stage, a semi-simulation method is firstly introduced to generate the third frequency pseudorange based on the dual-frequency GPS pseudorange and phase measurements. Then the three frequency navigation precision, availability and reliability are examined, compared with their dual-frequency counterparts in varying simulated navigation scenarios. The results show that with three frequency GNSS signals the navigation precision can be improved by 10% in both horizontal and vertical components. More promisingly, the availability of navigation solutions is significantly improved (even by 50% for some scenarios) with higher reliability.  相似文献   

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