• DocumentCode
    1351682
  • Title

    Effect of tap spacing on the performance of direct-sequence spread-spectrum RAKE receiver

  • Author

    Kim, Ki Jun ; Kwon, Soon Yil ; Hong, Een Kee ; Whang, Keum Chan

  • Author_Institution
    Adv. Telecommun. Res. Lab., LG Inf. & Commun. Ltd., Kyunggi, South Korea
  • Volume
    48
  • Issue
    6
  • fYear
    2000
  • fDate
    6/1/2000 12:00:00 AM
  • Firstpage
    1029
  • Lastpage
    1036
  • Abstract
    The effect of tap spacing on the performance of a RAKE receiver is analyzed analytically in a frequency-selective fading channel. A continuous time multipath fading channel model is used for the analysis, and the expression of the correlation between the desired signals, interference signals, and noise signals at the output of each branch of the RAKE receiver is derived for various chip waveforms. Since the noise components of each branch signal are correlated to each other, an optimum combining rule based on the maximum-likelihood criterion is derived to gain utmost performance. It is shown that the performance of the system can be improved by setting the tap spacing of the RARE receiver below the chip duration when the bandwidth of the transmitted signal is larger than the inverse of the chip duration. Also, it is shown that the normalized capacity of the system can be increased by using a chip waveform occupying wider bandwidth, which takes advantage of the increased diversity gain merits of a wide-band code-division multiple-access system at the same chip rate. It is noted that the derived combining rule gives diversity gain against the fading process as well as noise whitening processing gain against multiple-access interference at the same time
  • Keywords
    cellular radio; channel capacity; code division multiple access; correlation methods; diversity reception; fading channels; interference suppression; multipath channels; multiuser channels; radio receivers; radiofrequency interference; signal processing; spread spectrum communication; DS-SS RAKE receiver; W-CDMA; branch signal; cellular radio; chip duration; chip waveforms; continuous time multipath fading channel model; correlation; direct-sequence spread-spectrum; diversity gain merits; frequency-selective fading channel; interference signals; maximum-likelihood criterion; multiple-access interference; noise components; noise signals; noise whitening processing gain; normalized capacity; optimum combining rule; receiver performance; tap spacing; transmitted signal bandwidth; wide-band code-division multiple-access system; Bandwidth; Diversity methods; Frequency-selective fading channels; Interference; Multiaccess communication; Multipath channels; Performance analysis; Performance gain; Signal analysis; Wideband;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/26.848565
  • Filename
    848565