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Wireless Communications and Networks

1 MITW ireless Communications and NetworksMuriel Medard2 MITWhen do we use codes Two different types of codes: source codes: compression channel codes: error-correction Source-channel separation theorem says the two can bedone independently for a large family of channelsSourceencoderChannelencoderChann el decoderstreamModulator, channel, receiver, The physical layer Wireless telephony: FDMA TDMA CDMA UWB 3G Wireless networking: Bluetooth Ad hoc networks4 MITP hysical layer The physical layer plays a very important role in wirelessnetwork because it has severe limitation on transmissionsUplink with respect to downlink is more restricted:-more multiple access interference-more restrictions on power because of battery use and because or user safety-more decentralized problem uplinkdownlinkBase station5 MITThe cellular systemThe area of coverage ofDifferent base stations islogically a tessellation ofthe spaceW

Wireless Communications and Networks Muriel Medard. MIT 2 When do we use codes •Two different types of codes: –source codes: compression –channel codes: error-correction –Source-channel separation theorem says the two can be done independently for a large family of channels Source encoder Channel encoder

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Transcription of Wireless Communications and Networks

1 1 MITW ireless Communications and NetworksMuriel Medard2 MITWhen do we use codes Two different types of codes: source codes: compression channel codes: error-correction Source-channel separation theorem says the two can bedone independently for a large family of channelsSourceencoderChannelencoderChann el decoderstreamModulator, channel, receiver, The physical layer Wireless telephony: FDMA TDMA CDMA UWB 3G Wireless networking: Bluetooth Ad hoc networks4 MITP hysical layer The physical layer plays a very important role in wirelessnetwork because it has severe limitation on transmissionsUplink with respect to downlink is more restricted.

2 -more multiple access interference-more restrictions on power because of battery use and because or user safety-more decentralized problem uplinkdownlinkBase station5 MITThe cellular systemThe area of coverage ofDifferent base stations islogically a tessellation ofthe spaceWhen a user is better servedBy a different base station,hand-off occursIn reality, cell coverage is extremely uneven and irregular:There are dead spots and areasof overlapHandoffInter-cellinterferenceIntr a-cellinterference6 MITA ntennas Base stations are generally antennas on towers or on top ofbuildings, with heavy tendency towards co-location, as thereal estate is generally owned by a few companies Antennas can have directionality, giving sectors of the cells Sectors reduce interference, but also pose coverage issuesAntenna lobes7 MITUse of multiple antennas Multiple antennas can be used in two ways: In an adaptive fashion to cancel out interference In a static fashion to gather more of the signal.

3 Optimalways of combining the outputs rely on maximumlikelihood detection8 MITMIMO systems High SNR case: capacity goes with log(SNR) and min oftransmit and receive antennas Use of space-time-codes, Alamouti schemes Very sensitive to changes in channel and uncertainty inreceive channel Low SNR case: antennas just help to gather energy, capacitydepends only SNR and number of receive antennas\ Use of impulsive transmission schemes to achieve capacity ornear capacity9 MITW ireless Channel ModelReal partof impulseresponseTime10 MITW ireless Channel ModelReal partof impulseresponseTime11 MITW ireless Channel ModelReal partof impulseresponseTime12 MITTime SpreadDoppler shiftWireless Channel ModelReal partof impulseresponseTime13 MITV ariations in time and frequency The channel roughly changes across time and frequency In time, the time for change is roughly given by Tc.

4 Thecoherence time The coherence time is generally taken to be the inverse of theDoppler spread, which is proportional to the speed of themobile with respect to the obstacle and to the carrier frequency In frequency, the bandwidth for change is roughly given by Fc,the coherence bandwidth The coherence bandwidth is generally taken to the inverse ofthe time spread Most of the channels for Wireless applications are of theunderspread type, which means that TcFc >> 114 MITI mplications of variations Variations occur and lead to fades It is difficult to transmit during fades in time or in frequency Therefore we try to achieve diversity in time and infrequency Diversity in frequency may be difficult to achieve because ofregulatory issues around spectrum Diversity in time can be achieved but at the expense of delay use of interleaving to make the channel look memorylessa b c d e fa b c d e f a a b b c c d d interleavinggoodbadgood15 MITHow to adapt to the fades Slow fades.

5 Due to terrain, shadowing, weather, foliage Fast fades: due to short term multipath variations What can we adapt for and what should we adapt for? Limitation: finite battery energy and power safety constraints Two ways of adapting: Open loop: mobile detects a pilot symbol or pilot tone anduses that knowledge to adapt Closed loop: base station specifically sends controlsignals to the mobile, the mobile adapts and the basestation detects the adaptationInformationInformation16 MITA daptation and multiple access The near-far effect: In the case of open loop control, a mobile cannot make up formultiple access effects such as the near-far effect In the case of closed loop control, the users that are far canincrease their power, while the users that are far away candecrease their power Can we use power control to make up for fast fades?

6 Tc isabout 1/100 s, so would easily require 1000 bits/sThe car closest to the base station overpowers the other car17 MITR eceivers The receiver must take into account the instantaneous effect of thechannel Rake receiver is a means of taking into account the maincomponents of the channel Channel tap: sample of the channel The Rake receiver finds the main non-zero taps (fingers) Note: phase is needed to get information beyond the amplitudeChannel descriptionRake receiverEstimation/detection18 MITHow to perform multiple accessUser 3 User 2 TimeFrequencyUser 1 TimeFrequencyUser 3 User 2 User 1 FDMATDMAF requencyTimeFrequencyHoppingSpreadspectr umMixture of all colorsTimeFrequencyDirect SequenceSpreadspectrum19 MITC hannels in FDMA Channels in each cell Each user in a cell is given an uplink channel and a downlink channel AMPS.

7 30 kHz wide 1993 old AMPS and NAMPS => IS-91 Uplink Dowlink A channels (channels 1-> 333) competitive provider B channels (channels 334 ->666) -> wireline carrierA A B A B MHzA A B A B MHz20 MITM anaging channels in cells Certain cells may have heavier requirements than others at different times Standard fixed channel assignment: a channel is used every 7 cells Other idea is to borrowchannels from cells thatare less used Alternatively, someChannels may be permanently assignedto certain base stationswhile others are in ashared poolAlternatively make cells smallery cell-splitting down to + + + + + + + +3n+ European GSM (groupe special mobile), IS-54 (US standard), JDC(Japan) GSM standardization effort started in 1987, Phase 2 ended in 1995 Divide a little in frequency, a lot in time GSM.

8 Eight channels per carrier with a gross data rate of kbps (bitrate of 13 kbps) Frame is ms and time slots are ms for transmissionand reception 200 kHz channel spacing Gaussian minimum shift keying (GMSK)22 MITTDMAPre-ambleSlot 1 Slot 2 Slot 2 Slot nPre-ambleSlot 1 One framePre=ambleUser 1 User pGuard time23 MITTDMA IS-54 keeps the 30 kHz spacing of AMPS Each frequency can give kbps Uses /4-differential quadrature phase shift keying at Frame duration is 40 ms 6 time slots per frame Each time slot carries 260 bits of user information Total 395 30 kHz voice channels Total MHz system bandwidth24 MITCDMA Code division multiple access Roots are in military applications: Anti-jam Low-probability of intercept Frequency hop: Slow: hop every few bits Fast.

9 Hop every bit or faster Relatively expensive because of tuning Direct sequence: Use a spreading sequence to allow al users to share thebandwidth at all times25 MITDS-CDMAData timeW/2-W/2Ws/2-Ws/2spreadingtimeSpreadi ng sequence:chipsWs > WSpreading gain = chip rate/data rate26 MITIS-95 Chip rate Mcps Modulation is QPSK on forward. OQPSK on rverse Filtered bandwidth in uplink or downlink is MHz 63 Walsh codes per link for forward Convolutional coding with Viterbi decoding Interleaving with 20 ms span Main mode is 9600 bps (also available as 14,400 bps) Available in the 90 MHz range and the PCS 2 GHz range Reverse and forward links are separated by 45 MHz in theformer and 80 MHz in the latter27 MITCDMA2000 3-G system, generated in accordance with the recommendations ofthe International Mobile Telecommunications (IMT)-2000 of theITU (International Telecommunications Union) Main features.

10 Channel sizes of 1,3 , 6, 9 and 12 MHz Advanced antenna technology support Greater possible cell sites, up to megacells (>35 km in radius),down to picocells (<50m) Allows voice services End-user data services, packet data service node (PDSN) tosupport Intenet/intranet data connectivity Corresponding Universal Wireless Communications (UWC) is IS-13628 MITT hird generation Loose partnership for standardization is the Third Generation PartnershipProject (3 GPP) Predominantly Wideband-CDMA (W-CDMA) DOCOMO W-CDMA, UTRA (W-CDMA and T-CDMA) (UMTS terrestrial radio access) (UMTS= Universal mobile telecommunicationssystem), EDGE (enhanced data rates for GSM evolution), IS-136 (digitalAMPS, yielding up to 2 Mbps using TDMA technology close to EDGE) Mcps for DOCOMO, for UMTS UTRA not synchronized base station Frame lengths: 10 ms for both For comparison CDMA200: Mcps Synchronized base station 20 ms frame length29 MITNew services to core network connectionEvolved GSM coreGPRS IPcoreIS-41 WCDMATD-CDMAEDGECDMA2000 GPRS: GSM General Packet Radio Service EDGE: Enhanced Data Rates for GSM EvolutionIS-41.


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