impact of channel estimation errors on the performance of dfe equalizers with space-time block codes...

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Impact of Channel Estimation Errors on the Performance of DFE equalizers with Space-Time Block Codes in Wideband Fading Channels Mohamed B Noune and Prof. Andrew Nix email: [email protected], [email protected] 0 2 4 6 8 10 12 14 16 18 20 10 -6 10 -5 10 -4 10 -3 10 -2 10 -1 10 0 S N R (dB ) BER M L detectorperform ance fordifferentfdts and S N R c settings fdts = 1e-5;S N R c = 20 fdts = 1e-4;S N R c = 20 fdts = 1e-5;S N R c = 10 fdts = 1e-4;S N R c = 10 SNRc = 0 fdts = 1e-5;S N R c = 30 fdts = 4e-5;S N R c = 30 0 2 4 6 8 10 12 14 16 18 20 22 24 10 -7 10 -6 10 -5 10 -4 10 -3 10 -2 10 -1 10 0 S N R (dB ) BER P erform ance ofD FE E qualizerw ith N oisy channelestim ates fdts = 1e-5;S N R c = 0 fdts = 1e-4;S N R c = 5 fdts = 1e-5;S N R c = 10 fdts = 1e-4;S N R c = 10 fdts = 1e-5;S N R c = 15 fdts = 1e-5;S N R c = 20 fdts = 1e-5;S N R c > 30 fdts = 1e-4;S N R c = 30 Future Generation Communications Must offer a wide range of services any time, any place and at low cost. Exploit different transmission standards and technologies: SDR, All IP system,…etc. e.g. 3GPP LTE design includes: o Different Multiple Access Systems. o Software Defined Radio. o MIMO technology. o IP-v6. Introduction There is a strong demand for high capacity and high speed wireless data transfer rates. Outdoor communications systems operate with limited power and bandwidth. Various solutions currently exist to enhance the performance of wireless communications systems: o Multiple Access: TDMA, FDMA, CDMA. o Modulation: GMSK, Adaptive Modulation. o Single Carrier Vs. Multiple Carrier. 0 2 4 6 8 10 12 14 16 18 10 -6 10 -5 10 -4 10 -3 10 -2 10 -1 10 0 S N R (dB ) B E R perform ance ofS B -S TB C system w ith m ultiple receivers 2-by-1 S B-S TB C 2-by-2 S B-S TB C 2-by-4 S B-S TB C 2-by-8 S B-S TB C Why go MIMO? • Suitable for Non- LoS. • Robustness. • Increased Capacity. • Increased Coverage. • Scalability. Multi-Carrier Techniques: Suitable for large cells with high data rates. Efficient reuse of adjacent channels. Scalable Frequency Domain Equalizer (FDE). Advancements in FPGA technology permits low cost and low complexity transceivers. MCT suffers from high PAPR, which limits PA efficiency and mean output power No frequency diversity at symbol-level. General setup for an N T -by-N R STBC MIMO system t k t h t j i v k i k i j j T n x y N 1 0 , Assessing the performance of DFE Equalizers for MIMO systems: Assumptions: High data rate picocell communications. 2-by-1 Alamouti system. Receiver Requires Channel Estimation. Channel estimation errors assumed to be zero mean, normally distributed. Transmission channels based on time varying Rayleigh fading taps (Jakes model). White noise input data signal. Receiver structures • STBC ML-receiver: • DFE equalizer: consists of a Feedforward filter and a Feedback filter . The equalizer’s output is The DFE is synchronized to the last tap. DFE Receiver: Given the analysis in [7], if the input autocorrelation matrix is and the noise autocorrelation matrix is: , then the receiver input autocorrelation is The mean square error performance is . This translates to Conclusions and Future Direction: Single carrier MIMO systems are well suited to the uplink transmission in a cellular picocell. The performance of the STBC receiver degrades as a result of mobility and channel estimation errors. DFEs can outperform the computationally demanding ML receiver in the case of high channel estimation error. A comparison needs to be established between the complexity of FDE, ML and DFE techniques. A study to determine how channel coding 1 : : 1 ˆ ˆ t t H t t H b f N N x B y W X v N f 2 I R XX f N n NN 2 2 I R N n H H 2 2 I HH R H HR R NN XX YY LB D L B B H H I B t e 2 1 2 1 H H H n H E Results and Discussion: The ML detector is better than the DFE in terms of BER performance in the mobile case. The performance of the DFE approaches that of the ML detector when channel estimation error is included. The limitation in the BER performance of the DFE can be compensated by using multiple receiver antennas. 1 2 2 ~ opt opt e e opt L B 1 ~ ~ yy xy H H opt opt R R B W 2 ˆ min arg ˆ x H r X x B W STBC Encoder STBC D ecoder ….. ….. 1 , 1 h 1 , 2 h 1 , R h N 2 , 1 h 2 , 2 h 2 , R h N T h N , 1 T h N , 2 T R h N N , 1 x 2 x T N x R N n 2 n 1 n 1 y 2 y R N y Destination

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Page 1: Impact of Channel Estimation Errors on the Performance of DFE equalizers with Space-Time Block Codes in Wideband Fading Channels Mohamed B Noune and Prof

Impact of Channel Estimation Errors on the Performance of DFE equalizers with Space-Time Block Codes in Wideband

Fading Channels Mohamed B Noune and Prof. Andrew Nix

email: [email protected], [email protected]

0 2 4 6 8 10 12 14 16 18 2010

-6

10-5

10-4

10-3

10-2

10-1

100

SNR (dB)

BE

R

ML detector performance for different fdts and SNRc settings

fdts = 1e-5;SNRc = 20fdts = 1e-4;SNRc = 20

fdts = 1e-5;SNRc = 10

fdts = 1e-4;SNRc = 10

SNRc = 0

fdts = 1e-5;SNRc = 30fdts = 4e-5;SNRc = 30

0 2 4 6 8 10 12 14 16 18 20 22 2410

-7

10-6

10-5

10-4

10-3

10-2

10-1

100

SNR (dB)

BE

R

Performance of DFE Equalizer with Noisy channel estimates

fdts = 1e-5; SNRc = 0

fdts = 1e-4; SNRc = 5fdts = 1e-5; SNRc = 10

fdts = 1e-4; SNRc = 10

fdts = 1e-5; SNRc = 15

fdts = 1e-5; SNRc = 20fdts = 1e-5; SNRc > 30

fdts = 1e-4; SNRc = 30

Future Generation Communications• Must offer a wide range of services any time, any place

and at low cost.

• Exploit different transmission standards and technologies: SDR, All IP system,…etc.

• e.g. 3GPP LTE design includes:

o Different Multiple Access Systems.

o Software Defined Radio.

o MIMO technology.

o IP-v6.

Introduction• There is a strong demand for high capacity and high

speed wireless data transfer rates.

• Outdoor communications systems operate with limited power and bandwidth.

• Various solutions currently exist to enhance the performance of wireless communications systems:

o Multiple Access: TDMA, FDMA, CDMA.

o Modulation: GMSK, Adaptive Modulation.

o Single Carrier Vs. Multiple Carrier.

0 2 4 6 8 10 12 14 16 1810

-6

10-5

10-4

10-3

10-2

10-1

100

SNR (dB)

BER performance of SB-STBC system with multiple receivers

2-by-1 SB-STBC

2-by-2 SB-STBC

2-by-4 SB-STBC

2-by-8 SB-STBC

Why go MIMO?

• Suitable for Non-LoS.

• Robustness.

• Increased Capacity.

• Increased Coverage.

• Scalability.

Multi-Carrier Techniques: • Suitable for large cells with high data rates.

• Efficient reuse of adjacent channels.

• Scalable Frequency Domain Equalizer (FDE).

• Advancements in FPGA technology permits low cost and low complexity transceivers.

• MCT suffers from high PAPR, which limits PA efficiency and mean output power

• No frequency diversity at symbol-level.

General setup for an NT-by-NR STBC MIMO system

tktht ji

v

ki

kijj

T

nxyN

1 0

,

Assessing the performance of DFE Equalizers for MIMO systems:

Assumptions:• High data rate picocell communications.

• 2-by-1 Alamouti system.

• Receiver Requires Channel Estimation.

• Channel estimation errors assumed to be zero mean, normally distributed.

• Transmission channels based on time varying Rayleigh fading taps (Jakes model).

• White noise input data signal.

• Receiver structures

• STBC ML-receiver:

• DFE equalizer: consists of a Feedforward filter and a Feedback filter . The equalizer’s output is

• The DFE is synchronized to the last tap.

DFE Receiver:Given the analysis in [7], if the input autocorrelation matrix

is and the noise autocorrelation matrix is:

, then the receiver input autocorrelation is

The mean square error performance is

. This translates to

and

Conclusions and Future Direction:• Single carrier MIMO systems are well suited to the

uplink transmission in a cellular picocell.

• The performance of the STBC receiver degrades as a result of mobility and channel estimation errors.

• DFEs can outperform the computationally demanding ML receiver in the case of high channel estimation error.

• A comparison needs to be established between the complexity of FDE, ML and DFE techniques.

• A study to determine how channel coding improves the error performance of DFEs is required.

1::1 ˆˆ tt

Htt

H

bf NN xByWX

vN f 2IR XX

fNnNN 22IR

NnHH

22IHHRHHRR NNXXYY

LBDLBBHHIBte2 1

2

1

HHH

n

HE

Results and Discussion:• The ML detector is better than the DFE in terms of

BER performance in the mobile case.

• The performance of the DFE approaches that of the ML detector when channel estimation error is included.

• The limitation in the BER performance of the DFE can be compensated by using multiple receiver antennas.

122

~

optopteeopt LB 1~~ yyxy

HH

optoptRRBW

2ˆminargˆ xHrXx

BW

ST

BC

Encoder

ST

BC

Decoder

…..

…..

1,1h

1,2h1,R

hN2,1h

2,2h

2,RhN

Th N,1

Th N,2

TRh NN ,

1x

2x

TNx

RNn

2n

1n

1y

2y

RNy

Destination