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Characteristics of raw multi-GNSS measurement error from Google Android smart devices

机译:Google Android智能设备的原始多GNSS测量错误的特征

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Developers targeting Android platforms can obtain raw GNSS measurements, which can achieve submeter or even decimeter-level positioning accuracy. An accurate receiver measurement error model is an important prerequisite for precise positioning with smart devices. Therefore, we analyzed the measurement error characteristics of raw GNSS data from smart devices using both embedded and external antennas. We find that the GNSS signals produced by smart devices have non-uniform signal strengths, rapid C/N-0 variations, and low C/N-0 at high elevations. The pseudorange noise is about 10 times larger than that from geodetic receivers; the carrier phase noise of Nexus 9 is 3-5 times larger than that of geodetic receivers, and unexpectedly is half of that of mu-blox. We provide theoretical parameters for the noise versus C/N-0 models of the GNSS chipset for different smart devices. Unfortunately, the carrier phase tracking of Samsung Galaxy S8 and Huawei Honor v8 are discontinuous due to the duty-cycle issue, which results in greater noise and carrier phase unavailability. Moreover, we found two unique error characteristics of the carrier phase available from Nexus 9 anomalous jagged distribution and random initial phase biases, which is evident in the controlled environment test. Finally, we obtained promising positioning results: the horizontal and vertical RMS of pseudorange single-point positioning are about 10-20m; the static carrier phase relative positioning (CRP) solutions of Nexus 9 can achieve centimeter-level precision, whereas both horizontal and vertical STDs are about 1cm or better but with decimeter-level biases. When using an external antenna, the resulting biases are as small as a few centimeters. Encouragingly, the actual vehicle test results showed that the STD of the Nexus 9 kinematic CRP 3D-distance error is 0.169m, and the percentages of errors falling into +/- 0.1m and +/- 0.5m are 63.59% and 100%, respectively. Furthermore, multi-GNSS is able to provid
机译:针对Android平台的开发人员可以获得原始的GNSS测量,可以实现子表甚至抽取量级定位精度。准确的接收器测量误差模型是使用智能设备精确定位的重要前提。因此,我们使用嵌入式和外部天线从智能设备分析了RAW GNSS数据的测量误差特性。我们发现,智能设备产生的GNSS信号具有不均匀的信号强度,高升高的C / N-0变化和低C / N-0。伪奇噪声比从大地测量接收器大约10倍; Nexus 9的载波相位噪声比大地测量接收器大3-5倍,并且出乎意料地是MU-Blox的一半。我们为不同的智能设备提供了GNSS芯片组的噪声与C / N-0型号的理论参数。遗憾的是,由于占空比问题,三星Galaxy S8和华为荣誉v8的承运人阶段跟踪是不连续的,这导致更大的噪声和载波相位不可用。此外,我们发现从Nexus 9异常锯齿状分布和随机初始相位偏置的载体相的两个独特的误差特性,这在受控环境测试中是明显的。最后,我们获得了有前途的定位结果:伪橙色单点定位的水平和垂直rms约为10-20米; Nexus 9的静态载波相位相对定位(CRP)溶液可以达到厘米级精度,而水平和垂直STD两者均为约1cm或更好但具有排入级偏置。当使用外部天线时,所得到的偏差像几厘米一样小。令人鼓舞的是,实际的车辆测试结果表明,Nexus 9运动CRP 3D距离误差的STD为0.169M,掉落成+/- 0.1M和+/- 0.5M的误差百分比为63.59%和100%,分别。此外,多GNSS能够提供

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