CA2053595C

Microcellular communications system using space diversity reception

Abstract

- 12 -MICROCELLULAR COMMUNICATIONS SYSTEMUSING SPACE DIVERSITY RECEPTIONAbstractMicrocellular stations are transceiving units covering a relatively smallgeographic area and adapted to establish bidirectional links between mobiletelephone subscriber stations and a main base station. Each such microcellularstation includes a transmitter for generating outgoing signals directed to the mainbase station over an optical fiber link. Radio signals received from a mobile stationat a separate diversity antenna of the microcellular station are frequency shifted andcombined with other signals received from the mobile station. The transmitter at themicrocellular station generates an optical carrier signal which is modulated by theresulting combined signals. A frequency converter, located at the main base station,restores the frequency band of signals received from the microcellular station to itsoriginal frequency. Frequency shifting and conversion are implemented at themicrocellular station and at the main base station by frequency mixing stepsperformed by oscillators at both locations, which oscillators use the same referencefrequency thereby achieving channel coherency.

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Granted
  4. Today

15 claims: 8 independent, 7 dependent

  1. 1
    - 8 Claims:1. A microcell communications station exhibiting receive space diversity comprising: a first and a second antenna for each receiving radio signals in a predetermined range of radio frequencies;frequency conversion means coupled to the second antenna for shifting the frequency range of signals received at the second antenna;combining means coupled to the first antenna and the frequency conversion means for generating combined signals in two different frequency bands;and means coupled to the combining means for generating a carrier signal modulated by the combined signals.
  2. 5
    Method for processing radio signals at a microcell communications station comprising the steps of:receiving at the microcell station first and second radio signals having respective frequencies within a first range of frequencies;shifting the frequency range of the received second radio signals to generate third radio signals having frequencies within a second range of frequencies;- 9 combining the first radio signals and the third radio signals to generate combined signals having frequencies in the first and second ranges of frequencies;and modulating the combined signals on a carrier signal.
  3. 6
    Method according to claim 5, wherein the shifting step comprises the step of down converting the frequency of the second radio signals so that the second range of frequencies is lower than the first range of frequencies.
  4. 7
    Method according to claim 6, wherein the down converting step comprises the step of mixing the received second radio signals with a signal generated by a local oscillator having a frequency substantially below the frequency band of the receive radio signals.
  5. 8
    Method according to claim 7, comprising the step of selecting the frequency of the local oscillator to substantially reduce unwanted mixing products within the band of the receive radio signals.
  6. 9
    A microcell mobile radio communications station exhibiting receive space diversity comprising:a first antenna for receiving radio signals in a first range of radio frequencies;a second antenna for receiving radio signals in the first range of radio frequencies;frequency conversion means coupled to the second antenna for reducing the frequency range of signals received at the second antenna;combining means coupled to the first antenna and the frequency conversion means for generating combined signals in two different frequency bands;and a laser transmitter coupled to the combining means for generating an optical wavelength carrier signal modulated by the combined signals.
  7. 12
    A microcellular communications system comprising:a first antenna for receiving radio signals in a first range of radio frequencies;a diversity antenna for receiving radio signals in the first range of radio frequencies;frequency down conversion means coupled to the diversity antenna for reducing the frequency range of signals received at the diversity antenna;combining means coupled to the first antenna and the frequency conversion means for generating combined signals in two different frequency bands;a laser transmitter coupled to the combining means for generating an optical wavelength carrier signal modulated by the combined signals;and an optical transmission path coupled to the laser transmitter for transmitting the optical carrier signal to a remote cellular base station.
  8. 15
    A cellular communications base station comprising:- 11 input means adapted to receive signals in two different frequency bands from a remote cellular base location;detecting means coupled to the input means for demodulating the received signals;means coupled to the detecting means for dividing the demodulated signals into two separate signals;frequency shifting means coupled to the dividing means for increasing the frequency range of one of said separate signals;first filtering means coupled to the frequency shifting means for filtering the frequency-increased separate signals;and second filtering means coupled to the dividing means for filtering the other separate signal.