Chapter 14: Wireless WANs Business Data Communications, 5e.

Slides:



Advertisements
Similar presentations
Lecture 11: Satellite Communication Anders Västberg Slides are a selection from the slides from chapter 9 from:
Advertisements

Chapter 14: Wireless WANs
Satellite Communications Systems
April 25, 2005ECE 457 Cellular Communication ECE 457 Spring 2005.
Satellite Communications
Satellite Communications
SATELLITE SYSTEMS Satellite Communications Based on microwave transmission Satellite communication systems consist of ground-based or earth stations.
CMPE 150- Introduction to Computer Networks 1 CMPE 150 Fall 2005 Lecture 9 Introduction to Computer Networks.
1 ITC242 – Introduction to Data Communications Week 8 Topic 13 Wireless WANS Reading 2.
Copyright : Hi Tech Criminal Justice, Raymond E. Foster Police Technology Police Technology Chapter Three Police Technology Wireless Communications.
Sistem Seluler Pertemuan 12 Matakuliah: H0122 / Dasar Telekomunikasi Tahun: 2008.
EC 553 Satellite Communication Systems
CIS-325 Data Communications1 Dr. L. G. Williams, Instructor.
Introduction Chapter 1. Wireless Comes of Age Guglielmo Marconi invented the wireless telegraph in 1896 Communication by encoding alphanumeric characters.
Lecture 11: Satellite Communcation Anders Västberg Slides are a selection from the slides from chapter 9 from:
Chapter 16 Other Wireless Networks 16.# 1
GROUP MEMBERS Jalil Ahmed Sadia Imtiaz Zaigham Abbas Faisal Jamil swedishcr.weebly.com 3.
Satellite Communication
Lecture 11: Cellular Networks
Lecture slides prepared for “Business Data Communications”, 7/e, by William Stallings and Tom Case, Chapter 17 “Wireless WANs”.
ECEN 621, Prof. Xi Zhang ECEN “ Mobile Wireless Networking ” Course Materials: Papers, Reference Texts: Bertsekas/Gallager, Stuber, Stallings,
CSCI 465 Data Communications and Networks Lecture 6 Martin van Bommel CSCI 465 Data Communications and Networks 1.
Wireless Communications. Outline Introduction History System Overview Signals and Propagation Noise and Fading Modulation Multiple Access Design of Cellular.
16.1 Chapter 16 Wireless WANs: Cellular Telephone and Satellite Networks Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction.
COMMUNICATION SYSTEM (2) CT1401 LECTURE-9 : MOBILE PHONE BY : AFNAN ALAYYASH SUPERVISION : DR.OUIEM BCHIR.
Sharif University of Technology Physical layer: Wireless Transmission.
Stallings, Wireless Communications & Networks, Second Edition, © 2005 Pearson Education, Inc. All rights reserved Introduction Chapter 1.
Chapter 13: Wireless Networks Business Data Communications, 4e.
1 Kyung Hee University Chapter 17 Cellular Telephone and Satellite Networks.
Satellite Communications
Satellites orbits Lec /23/2017 Dr. Hassan Yousif.
Lecture 5: Cellular networks Anders Västberg Slides are a selection from the slides from chapter 10 from:
Cellular Networks Why use cellular networks? What mobile radio services where provided before cellular? Use multiple low-power transmitters (100 W or less),
Wireless Transmission and Services Chapter 9. Objectives Associate electromagnetic waves at different points on the wireless spectrum with their wireless.
Data Communications & Computer Networks, Second Edition1 Chapter 3 The Media: Conducted and Wireless.
Mobile Computing Cellular Concepts. Cellular Networks Wireless Transmission Cellular Concept Frequency Reuse Channel Allocation Call Setup Cell Handoffs.
Mobile Communication Satellite Systems  History  Basics  Localization  Handover  Routing  Systems.
Slide title 44 pt Text and bullet level 1 minimum 24 pt Bullets level 2-5 minimum 20 pt Characters for Embedded font: !"#$%&'()*+,-./ :;
Chapter 13: Wireless Networks Business Data Communications, 4e.
Satellite Communications
Ch 16. Wireless WANs Cellular Telephony Designed to provide communication between two “moving” units – To track moving units (mobile station; MS),
Chapter 16 Other Wireless Networks Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display.
Satellite Communications Chapter 9. Satellite Network Configurations.
16.1 Chapter 16 Wireless WANs: Cellular Telephone and Satellite Networks Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction.
Computer Networks with Internet Technology William Stallings
Satellite Communications
1 Kyung Hee University Chapter 17 Cellular Telephone and Satellite Networks.
Unit 4 Cellular Telephony
MICROWAVE RADIO APPLICATIONS. SATELLITE COMMUNICATIONS.
SATELLITE COMMUNICATION Sanjida Hossain Sabah Lecturer, BRAC University.
COMPUTER NETWORKING 2 LECTURE 6: satellites technology.
Cellular Wireless Networks. Cellular Network Organization Multiple low power transmitters —100w or less Area divided into cells —Each with own antenna.
Bitwali.com 1 WIRELESS COMMUNICATION LEC bitwali.com 2 TYPES OF SATELLITES Satellite Orbits  GEO  LEO  MEO  Molniya Orbit Frequency Bands.
Satellite Communications
Cellular Networks Wireless Transmission Cellular Concept
Lecture 7: Satellite Networks By: Adal ALashban.
Satellite Communications
Satellite Communications
Satellite Communications
Satellite Communications
Cellular Wireless Networks
Satellite (and long-range) communications overview
Satellite Communication
Satellites orbits Lec /16/2018 Dr. Hassan Yousif.
Satellite Communications
Chapter 17 Cellular Telephone and Satellite Networks
Satellite Communication
Satellite Communications
Cellular Telephone Networks
SATELLITE NETWORKS SATELLITE NETWORKS A satellite network is a combination of nodes, some of which are satellites, that provides communication from one.
Presentation transcript:

Chapter 14: Wireless WANs Business Data Communications, 5e

2 Reasons for Wireless Networks Mobile communication is needed. Communication must take place in a terrain that makes wired communication difficult or impossible. A communication system must be deployed quickly. Communication facilities must be installed at low initial cost. The same information must be broadcast to many locations.

Business Data Communications, 5e3 Problems with Wireless Networks Operates in a less controlled environment, so is more susceptible to interference, signal loss, noise, and eavesdropping. Generally, wireless facilities have lower data rates than guided facilities. Frequencies can be more easily reused with guided media than with wireless media.

Business Data Communications, 5e4 Cellular Wireless Networks One of the most revolutionary developments in telecommunications Supports users in locations that are not easily served by wired networks Used for mobile telephones, personal communications systems, wireless Internet and wireless Web applications, and more

Business Data Communications, 5e5 Cellular Network Organization Uses multiple low-power transmitters (≤100W) Areas divided into cells, each one served by its own antenna. Each cell allocated a band of frequencies, and is served by a base station Adjacent cells are assigned different frequencies to avoid interference or crosstalk Cells sufficiently distant from each other can use the same frequency band

Business Data Communications, 5e6 Cellular Geometries

Business Data Communications, 5e7 Frequency Reuse Patterns

Business Data Communications, 5e8 Increasing Capacity Adding new channels Frequency borrowing: Frequencies are taken from adjacent cells by congested cells Cell splitting: Cells in areas of high usage can be split into smaller cells. Cell sectoring: Cell divided into wedge-shaped sectors. Each sector is assigned a separate subset of the cell's channels, and directional antennas at the base station are used to focus on each sector. Microcells: Useful in city streets in congested areas, along highways, and inside large public buildings

Business Data Communications, 5e9 Cellular System Overview

Business Data Communications, 5e10 Mobile to Base Channels Control channels are used to exchange information having to do with setting up and maintaining calls and with establishing a relationship between a mobile unit and the nearest BS Traffic channels carry a voice or data connection between users

Business Data Communications, 5e11 Steps in a Mobile Call Monitor for strongest signal Request for connection Paging Call accepted Ongoing call Handoff

Business Data Communications, 5e12 Mobile Telephony First Generation –analog voice communication using frequency modulation. Second Generation –digital techniques and time-division multiple access (TDMA) or code-division multiple access (CDMA) Third Generation –evolving from second-generation wireless systems –will integrate services into one set of standards.

Business Data Communications, 5e13 Multiple Access Four ways to divide the spectrum among active users –frequency-division multiple access (FDMA) –time-division multiple access (TDMA) –code-division multiple access (CDMA) –space-division multiple access (SDMA) FDMA and TDMA discussed in Chapter 17 CDMA and SDMA discussed here

Business Data Communications, 5e14 CDMA Based on direct sequence spread spectrum (DSSS) Provides immunity from various kinds of noise and multipath distortion. (The earliest applications of spread spectrum were military, where it was used for its immunity to jamming.) Can be used for hiding and encrypting signals. Several users can independently use the same (higher) bandwidth with very little interference

Business Data Communications, 5e15 Cellular Multiple Access Schemes

Business Data Communications, 5e16 Third Generation Systems Intended to provide provide high speed wireless communications for multimedia, data, and video Reflects trend toward universal personal telecommunications and communications access Personal communications services (PCSs) and personal communication networks (PCNs) are objectives for 3G wireless. Planned technology is digital using TDMA or CDMA to provide efficient spectrum use and high capacity

Business Data Communications, 5e17 Wireless Application Protocol (WAP) Programming model based on the WWW Programming Model Wireless Markup Language, adhering to XML Specification of a small browser suitable for a mobile, wireless terminal A lightweight communications protocol stack A framework for wireless telephony applications (WTAs)

Business Data Communications, 5e18 WAP Programming Model

Business Data Communications, 5e19 Wireless Markup Language Does not assume a standard keyboard or a mouse; designed to work with telephone keypads, styluses, and other input devices common to mobile, wireless communication Documents are subdivided into small, well- defined units of user interaction called cards; users navigate by moving back and forth between cards. Uses a small set of markup tags appropriate to telephony-based systems

Business Data Communications, 5e20 Microbrowser Based on a user interface model appropriate for mobile, wireless devices. Traditional 12-key phone keypad is used to enter alphanumeric characters Users navigate among the WML cards using up and down scroll keys rather than a mouse. Navigation features familiar from the Web (e.g., Back, Home, and Bookmark) are provided as well.

Business Data Communications, 5e21 Wireless Telephony Applications: A Sample Configuration

Business Data Communications, 5e22 Satellite Communications Two or more stations on or near the earth communicate via one or more satellites that serve as relay stations in space The antenna systems on or near the earth are referred to as earth stations Transmission from an earth station to the satellite is an uplink, from the satellite to the earth station is downlink The transponder in the satellite takes an uplink signal and converts it to a downlink signal

Business Data Communications, 5e23 Geostationary Satellites Circular orbit 35,838 km above the earth’s surface Rotates in the equatorial plane of the earth at exactly the same angular speed as the earth Remains above the same spot on the equator as the earth rotates

Business Data Communications, 5e24 Advantages of Geostationary Orbits Satellite is stationary relative to the earth, so no frequency changes due to the relative motion of the satellite and antennas on earth (Doppler effect). Tracking of the satellite by its earth stations is simplified. One satellite can communicate with roughly a fourth of the earth; three satellites separated by 120° cover most of the inhabited portions of the entire earth excluding only the areas near the north and south poles

Business Data Communications, 5e25 Problems with Geostationary Orbits Signal can weaken after traveling that distance Polar regions and the far northern and southern hemispheres are poorly served Even at speed of light, the delay in sending a signal 35,838 km each way to the satellite and back is substantial

Business Data Communications, 5e26 LEO and MEO Orbits Alternatives to geostationary orbits LEO: Low earth orbiting MEO: Medium earth orbiting

Business Data Communications, 5e27 Satellite Orbits

Business Data Communications, 5e28 LEO Characteristics Circular or slightly elliptical orbit < 2000 km Orbit period is in the range of 1.5 to 2 hours Diameter of coverage is about 8000 km Round-trip signal propagation delay is < 20 ms Maximum time that the satellite is visible from a fixed point on earth (above the radio horizon) is up to 20 minutes System must be able to cope with large Doppler shifts, which change the frequency of the signal Significant atmospheric drag on a LEO satellite results in gradual orbital deterioration.

Business Data Communications, 5e29 LEO Advantages Reduced propagation delay Received LEO signal is much stronger than that of GEO signals for the same transmission power LEO coverage can be better localized so that spectrum can be better conserved. On the other hand, to provide broad coverage over 24 hours, many satellites are needed.

Business Data Communications, 5e30 Types of LEOs Little LEOs: Intended to work at communication frequencies below1 GHz using no more than 5 MHz of bandwidth and supporting data rates up to 10 kbps Big LEOs: Work at frequencies above 1 GHz and supporting data rates up to a few megabits per second

Business Data Communications, 5e31 MEO Characteristics Circular orbit at an altitude of 5000 to 12,000 km Orbit period is about 6 hours Diameter of coverage is 10,000 to 15,000 km Round trip signal propagation delay < 50 ms Maximum time that the satellite is visible from a fixed point on earth (above the radio horizon) is a few hours

Business Data Communications, 5e32 Satellite Network Configurations

Business Data Communications, 5e33 Satellite Network Applications Television distribution Long-distance telephone transmission Private business networks