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相关概念视频

Types of Global Positioning System Surveys01:30

Types of Global Positioning System Surveys

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GPS surveying methods vary in application, accuracy, and data collection techniques, catering to diverse surveying and mapping needs. Static GPS, kinematic GPS, and real-time kinematic (RTK) surveying are widely used. Each technique offers distinct advantages.Static GPS involves placing one receiver at a known reference point and another at the target point. It collects exact positional data by observing multiple satellite ranges over an extended period, achieving centimeter-level accuracy for...
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Circular Orbits and Critical Velocity for Satellites01:16

Circular Orbits and Critical Velocity for Satellites

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The Moon orbits around the Earth. In turn, the Earth (and other planets) orbit the Sun. The space directly above our atmosphere is filled with artificial satellites in orbit. One can examine the circular orbit, the simplest kind of orbit, to understand the relationship between the speed and the period of planets and satellites with respect to their positions and the bodies that they orbit.
Nicolaus Copernicus (1473-1543) first suggested that the Earth and all other planets orbit the Sun in...
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Design Example: Identifying the Locations of Monuments in the Field Using Global Positioning System Device01:30

Design Example: Identifying the Locations of Monuments in the Field Using Global Positioning System Device

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Surveyors use Global Positioning System (GPS) technology to measure the precise location and elevation of points on Earth. In a recent survey, GPS receivers were used to determine the coordinates and elevations of two park monuments. The process involved careful mission planning, data collection, and correction to ensure accuracy. The survey began with mission planning to identify optimal satellite visibility and minimize Position Dilution of Precision (PDOP). A geodetic control point...
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Introduction to Global Positioning System01:30

Introduction to Global Positioning System

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The Global Positioning System (GPS) revolutionized positioning on Earth, providing precise location data through satellite ranging. The GPS system was developed in 1978 by the U.S. Department of Defense  for military use, and it became available for civilian applications in 1983, transforming fields including navigation, fleet management, and time synchronization for telecommunications systems.GPS consists of satellites in medium Earth orbit, about 20,200 kilometers above the surface,...
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Errors in Global Positioning System01:26

Errors in Global Positioning System

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Global Positioning System (GPS) technology has revolutionized navigation and positioning, but its accuracy is often compromised by various errors. These errors, stemming from environmental, satellite, and receiver-related factors, require careful mitigation to ensure reliable performance across applications.Atmospheric ErrorsGPS signals travel through the Earth’s ionosphere and troposphere, introducing delays which affect accuracy. The ionosphere is strongly influenced by charged particles,...
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Field Application of Global Positioning System01:28

Field Application of Global Positioning System

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The Global Positioning System (GPS) has become an indispensable tool in fieldwork, offering unparalleled precision and efficiency for surveying, navigation, and infrastructure development. By harnessing signals from a constellation of satellites, GPS receivers determine the location of objects with remarkable speed and accuracy, often completing calculations within a second.Advantages of Modern GPS TechnologyContemporary GPS receivers are designed to meet the practical demands of field...
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相关实验视频

Updated: Jul 24, 2025

Author Spotlight: Investigating the Effects of Mind-Body-Movement Practices on Brain Function
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百度空间导航增强实验卫星的性能评估

Lin Chen1, Feiren Lv1, Qiangwen Yang2

  • 1The 29th Research Institute of China Electronic Technology Group Corporation, Chengdu 610036, China.

Sensors (Basel, Switzerland)
|July 8, 2023
PubMed
概括

低地球轨道导航系统CentiSpace成功验证了同时同频自干扰抑制. 这使得全球导航卫星系统接收器能够确定厘米级轨道和可靠的增强信号.

关键词:
这是一个GNSS接收器.LEO导航增强器的使用抑制自我干扰 抑制自我干扰信号质量信号质量信号质量

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科学领域:

  • 卫星导航系统 卫星导航系统
  • 太空飞船工程 太空飞船工程
  • 信号处理 信号处理

背景情况:

  • 低地轨道 (LEO) 导航增强系统面临自我干扰的挑战.
  • 现有的系统难以同时接收和广播信号.
  • CentiSpace引入了一种新的方法来缓解这些问题.

研究的目的:

  • 分析 CentiSpace LEO 导航系统的性能.
  • 评估同时同频 (CCST) 自干扰抑制技术的有效性.
  • 评估全球导航卫星系统 (GNSS) 信号和增强数据的质量.

主要方法:

  • 在轨验证CentiSpace卫星上的CCST自我干扰抑制技术.
  • 使用机载实验数据进行性能分析.
  • 评估太空GNSS接收器性能和增强信号质量.

主要成果:

  • 在轨道上,CentiSpace成功地展示了CCST的自我干扰抑制.
  • 太空中的GNSS接收器实现了超过90%的卫星可见性.
  • 在自我轨道的确定中获得了厘米级的精度.
  • 增强信号质量符合北斗卫星导航系统 (BDS) 接口要求.

结论:

  • CentiSpace的CCST技术使得在LEO中实现了强大的GNSS信号增强.
  • 该系统显示了全球完整性监测和增强导航的巨大潜力.
  • 这项研究为未来的LEO增强系统开发提供了基础.