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相关概念视频

Errors in Global Positioning System01:26

Errors in Global Positioning System

36
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,...
36
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

21
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...
21
Types of Global Positioning System Surveys01:30

Types of Global Positioning System Surveys

49
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...
49
Field Application of Global Positioning System01:28

Field Application of Global Positioning System

30
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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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,...
46
IR Frequency Region: Fingerprint Region01:03

IR Frequency Region: Fingerprint Region

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IR spectra are divided into two main regions: the diagnostic region and the fingerprint region. The diagnostic region of the spectrum lies above 1500 cm−1. The absorptions resulting from single-bond vibrations of the N–H, C–H, and O–H stretch at higher wavenumbers and appear on the left side of the spectrum. The stretching absorptions of the C≡C and C≡N occur between 2100–2300 cm−1. In contrast, those arising from stretching absorptions of the...
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卫星指纹检测方法用于GNSS伪造检测

Francisco Gallardo1,2, Antonio Pérez-Yuste1, Andriy Konovaltsev3

  • 1ETSI Sistemas de Telecomunicación, Universidad Politécnica de Madrid, 28031 Madrid, Spain.

Sensors (Basel, Switzerland)
|December 17, 2024
PubMed
概括

卫星指纹采集方法提高了全球导航卫星系统 (GNSS) 的伪造检测. 这项研究引入了基于卫星仪器延迟的新指标,提高了对复杂攻击的准确性.

关键词:
利略 利略 利略 利略 利略这就是SCERER.估计估计估计的估计.全球导航卫星系统全球导航卫星系统机器学习是机器学习.卫星指纹采集 卫星指纹采集卫星 卫星 卫星 卫星 卫星 卫星 卫星

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科学领域:

  • 导航系统和信号处理系统
  • 网络安全和信号身份验证

背景情况:

  • 全球导航卫星系统 (GNSS) 对许多操作至关重要,但容易受到欺骗攻击.
  • 现有的伪造检测方法可以通过先进的攻击来规避,例如安全代码估计和重复 (SCER).

研究的目的:

  • 分析和基准卫星指纹方法用于GNSS伪造检测.
  • 引入和评估基于卫星仪器延迟的新型指纹指标.

主要方法:

  • 现有指纹方法 (高斯特征,能量,相位符号分散) 和基于卫星仪表延迟的新方法的性能评估.
  • 利用在DLR先进的GNSS模拟设施中生成和记录的真实GPS和利略信号.
  • 使用指纹和机器学习开发了一种新的干扰和伪造互补检测技术.

主要成果:

  • 拟议的指纹采集方法与现有技术相比,显示了更高的检测准确性.
  • 基于卫星仪表延迟的新指标显示了伪造检测的巨大潜力.
  • 指纹检测方法可以与其他技术相结合,以提高检测系统的整体性能.

结论:

  • 卫星指纹,特别是使用仪器延迟,为稳固的GNSS伪造检测提供了一个有希望的方法.
  • 开发的补充检测技术增强了对复杂的伪造和干扰攻击的弹性.
  • 简单,有效的指标可以显著提高依赖GNSS系统的安全性.