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所在平台: Udemy |
课程主页: https://www.udemy.com/course/gps-rtk-land-survey-guide-for-precise-positioning/
课程评论:没有评论
课程名称:GPS RTK土地测量指南,精准定位 课程概述: 本课程提供有关实时动态全球定位系统(GPS RTK)测量技术的指导和信息,用于收集地形数据。课程旨在教授现代测量和制图过程中所需的技能,以帮助测量师使用GPS RTK测量技术进行地形测量。 “GPS RTK地形程序”的目标是为测量师提供使用GPS实时动态测量技术进行地形测量的相关信息。精确点定位(PPP)是一种有效的替代差分定位方法,适用于使用全球导航卫星系统(GNSS)进行精准定位。因无需依赖地方或区域参考站的数据,PPP具有很高的成本效益,特别是在偏远地区,后勤安排简化。PPP方法在静态应用中具有厘米级的精度,而在动态应用中则能达到亚分米级的精度。 挪威生命科学大学开发的PPP软件经过成功验证,自2003年以来已被挪威水文测量局用于海底测绘。基于操作简便、成本效益和定位精度的经验,Terratec AS公司开发了一款商业软件。本课程详细介绍了PPP方法,强调动态测量,并讨论了与差分方法相比的优缺点。由于无线导航卫星信号的可用性,导航、土地测量和一般地理参考的许多应用得以简化并更加精确。 全球导航卫星系统(GNSS)包括美国的GPS、俄罗斯的GLONASS以及未来的欧洲民用系统GALILEO。GPS作为卫星定位的基石,至今仍然发挥着重要作用,民用系统自1978年首颗GPS卫星发射以来,一直保持卓越的一致性。至今已发射了29颗GPS卫星。 全球定位系统(GPS)是迄今为止最成功的卫星系统之一,通过一方式无线电测距,提供实时的自我定位信息和精确的时间参考。GPS系统提供定位、导航和定时(PNT)功能,这不仅对最初开发的美国军方有重要价值,也对无数商业活动及公众而言具有重要意义。GPS系统由三个部分组成:1. 空间部分,由24颗以上卫星组成,携带精确的原子钟,持续向地球发送测距信号;2. 控制部分,由多个地面站组成,监控卫星,计算轨道和时钟偏差,并将信息上传至卫星;3. 用户部分,由GPS接收器组成,跟踪四颗或更多GPS卫星,并计算自身位置。 此课程适合希望学习和掌握GPS RTK测量技术的专业人士与学生。
This course gives instruction and information regarding Real Time Kinematic Global Positioning System surveying techniques used in the collection of topographic data. The course teaches skills needed in the practice of this modern surveying and mapping procedureThe objective of "GPS RTK Topographic Procedures" is to provide information that will assist the surveyor in using GPS Real Time Kinematic surveying techniques in preparing topographic surveys.The technique of Precise Point Positioning (PPP) is a viable alternative to differential methods for precise positioning using Global Navigation Satellite Systems (GNSS). PPP is very cost effective since there is no need for data from local or regional reference stations. Especially in remote areas the logistic is greatly simplified. The PPP method has a potential for centimetre accuracy for static applications and sub-decimeter accuracy for kinematic applications. PPP-software developed at the Norwegian University of Life Sciences has after a successful verification been used by the Hydrographic Survey of Norway in seafloor mapping since 2003. Based on experiences regarding ease of operation, cost-effectiveness and positional accuracy, a commercial software has been developed by the company Terratec AS. In the presented course the PPP approach is outlined with emphasis on kinematic measurements. Advantages and drawbacks compared to differential methods are discussed.Many applications in navigation, land surveying and general geo-referencing have been simplified and made more precise due to the availability of signals from radionavigation satellites. Global Navigation Satellite Systems (GNSS) include military systems like GPS from the United States, GLONASS from Russia, as well as the future civilian system from Europe named GALILEO. It is fair to mention that GPS has been, and still is, the cornerstone of satellite positioning, and the system has been available for civilian use with a remarkably consistency. The first GPS satellite was put into orbit in 1978. Up until 1985 a total of 10 experimental block I satellites were launched. In 1989 the first operational block II satellite was launched, and the system reached full operational capability in 1994. Since then block IIA, IIR and IIRM satellites of different generations have been launched, and at the time of writing 29 GPS satellites are availableThe NAVigation Satellite Time And Ranging (NAVSTAR) system, better known as the Global Positioning System (GPS), is one the most successful satellite systems to date. GPS is a one way radio ranging system which provides realtime knowledge of one's own position and a very accurate time reference. GPS is said to provide Positioning, Navigation and Timing (PNT) functionality, which is very valuable not only for the US military, for which it was first developed, but also to a myriad of commercial activities as well as the general public at large. The GPS system consists of 3 segments. 1. The space segment, consisting of 24, or more satellites, with accurate atomic clocks on board, continuously transmits ranging signals to the Earth. 2. The control segment, consisting of a number of ground stations, which monitors the satellites, computes their orbits and clock offsets, and uploads this information to the satellites, which in turn encode this information on the ranging signal. 3. The user segment, simply consisting of a GPS receiver, which tracks 4 or more GPS satellites, and computes its own position.