基于链路检测和WSN中节点协作调度的节能高效和高度可靠的地理路由
Minghua Wang1, Ziyan Zhu1, Yan Wang1
1School of Electrical Engineering, University of South China, Hengyang 421001, China.
Sensors (Basel, Switzerland)
|June 19, 2024
概括
本研究介绍了无线传感器网络的节点协作调度算法,以提高能源效率和数据可靠性. 新方法减少了能源消耗和网络延迟,同时提高了数据包交付率.
科学领域:
- 计算机科学 计算机科学
- 电气工程 电气工程
- 网络工程 网络工程
背景情况:
- 无线传感器网络 (WSN) 在能源效率和数据可靠性方面面临着挑战.
- 现有的路由协议经常忽视节点覆盖和数据冗余,导致资源浪费.
- 由于缺乏有效性检查,WSN中的地理路由受到数据传输不可靠性的影响.
研究的目的:
- 通过解决能源效率和数据可靠性问题来提高WSN性能.
- 提出一个新的路由协议,集成覆盖范围控制技术.
- 提高WSN中的地理路由的稳定性和吞吐量.
主要方法:
- 开发了一个节点协作调度算法,考虑传感器节点相关性.
- 集成的路由协议与覆盖范围控制,以最大限度地减少活跃节点和数据包生成.
- 实施了一个高度可靠的链路检测和修复方案,用于地理路由.
主要成果:
- 通过优化节点激活,减少能源消耗和网络延迟.
- 通过可靠的链接管理,提高了数据包交付速度和网络吞吐量.
- 通过广泛的实验证明了拟议方案的显著有效性和优越性.
结论:
- 拟议的节点协作调度算法有效地提高了WSN的性能.
- 综合方法优化了资源利用,减少了能源浪费.
- 可靠的链路检测和修复方案大大提高了数据传输完整性和网络稳定性.
相关概念视频
Field Application of Global Positioning System
42
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...
42
Errors in Global Positioning System
44
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,...
44
Types of Global Positioning System Surveys
54
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...
54
Introduction to Global Positioning System
55
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,...
55
Design Example: Alignment of a Road Line Using GIS
47
The alignment of a road line using Geographic Information Systems (GIS) is a critical process in civil engineering, combining advanced technology with practical decision-making. This methodology begins with the collection of geospatial data, including information on land cover, geomorphology, drainage patterns, slope, and contour details. Such data is typically acquired through satellite imagery and GIS tools, offering a comprehensive understanding of the terrain.Once the data is gathered, it...
47
Design Example: Identifying the Locations of Monuments in the Field Using Global Positioning System Device
27
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...
27


