EP0836770A2

Automatic power control system for a code division multiple access (cdma) communications system

Abstract

This record has no abstract on file.

EP0836770A2, drawing sheet 1
Sheet 1 of 4

Term

Term ended

Projected expiry passed 27 June 2016, 10.2 years ago.

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1 claim: 1 independent, 0 dependent

  1. 1
    Claims of equivalent WO 9702665 A2 The Invention Claimed Is:A automatic power control (APC) system for a multiple access, spread- spectrum communication system, comprising first and second transceivers, wherein the first transceiver transmits a forward channel information signal to the second transceiver as a forward spread-spectrum signal having a forward transmit power level, and the second transceiver transmits a reverse channel information signal to the first transceiver as a reverse spread-spectrum signal having a reverse transmit power level;an automatic forward power control (AFPC) system, comprising a) means in the second transceiver including: received signal measuring means for measuring a forward channel signal-to-noise ratio of the forward channel information signal, error generating means for generating a forward channel error signal corresponding to a difference between the measured forward channel signal-to-noise ratio and a pre- determined signal-to-noise value, and a transmitting means for transmitting the forward channel error signal as a forward error spread-spectrum signal;and b) means in the first transceiver including: a first receiving means for receiving the forward channel error signal from the forward error spread-spectrum signal, and a first transmit power adjustment means for adjusting the forward transmit power level of the forward spread-spectrum signal responsive to the received forward error signal, and;an automatic reverse power control (ARPC) system, comprising: a) means in the first transceiver including: received signal measuring means for measuring a reverse channel signal-to-noise ratio of the reverse channel information signal, error generating means for generating a reverse channel error signal corresponding to a difference between the measured reverse channel signal-to-noise ratio and a pre- determined signal-to-noise value, and a transmitting means for transmitting the reverse channel error signal as a reverse error spread-spectrum signal;and . b) means in the second transceiver including: a second receiving means for receiving the reverse error signal from the reverse error spread- spectrum signal, and a second transmit power adjustment means for adjusting the reverse transmit power level of the reverse spread-spectrum signal responsive to the reverse error signal. 2. An APC system as set forth in claim 1 wherein each of the forward error signal and the reverse error signal includes a one-bit signal which indicates whether the respective difference signal is positive or negative. 3. An APC system as set forth in claim 1 wherein each of the forward error signal and the reverse error signal includes a measure of instantaneous noise in the channel. 4. An automatic power control (APC) system for a multiple access, spread- spectrum communication system, comprising a base station and a plurality of subscriber units, wherein the base station transmits a plurality of forward channel information signals to a plurality of subscriber units as a plurality of forward channel spread-spectrum signals each having a respective forward transmit power level, and each of the subscriber units transmit to the base station at least one reverse spread-spectrum signal having a respective reverse transmit power level and at least one reverse channel spread-spectrum signal includes a reverse channel information signal;an automatic forward power control (AFPC) system, wherein: a) each one of the plurality of subscriber units comprises: forward channel signal measuring means for measuring a forward signal-to-noise ratio of the respective forward channel information signal, forward error generating means for generating a respective forward channel error signal corresponding to a difference between the respective measured forward signal-to-noise ratio and a pre-determined signal-to-noise value, and a transmitting means for transmitting the respective forward channel error signal as part of a respective reverse channel information signal;and b) the base station comprises: a plurality of AFPC receiving means for receiving the plurality of reverse channel information signals and extracting the plurality of forward channel error signals from the respective reverse channel information signals, and a plurality of forward transmit power adjustment means for adjusting the respective forward transmit power levels of the respective forward spread-spectrum signals responsive to the respective forward error signals, and;an automatic reverse power control (ARPC) system, wherein: a) the base station comprises: a plurality of reverse signal measuring means, each reverse signal measuring means for measuring a reverse signal-to-noise ratio of the respective reverse channel information signal;a plurality of reverse error generating means, each reverse error generating means for generating a respective reverse channel error signal representing a difference between the respective measured reverse channel signal-to- noise ratio and a respective pre-determined signal-to-noise value;and a plurality of transmitting means, each transmitting means for transmitting the respective reverse channel error signal as a part of a respective forward channel information signal;and b) each subscriber unit comprises: an ARPC receiving means for receiving a respective one of the forward channel information signals and extracting the respective reverse error signal from the forward channel information signal, and a subscriber transmit power adjustment means for adjusting the reverse transmit power level of the respective reverse spread- spectrum signal responsive to the respective reverse error signal. 5. An automatic forward power control (AFPC) system for a multiple access, spread-spectrum communication system, comprising a base station and a plurality of subscriber units, wherein the base station transmits a plurality of forward channel information signals to a plurality of subscriber units as a plurality of forward channel spread-spectrum signals, and each of the subscriber units transmits to the base station at least one reverse spread-spectrum signal, and at least one reverse channel spread-spectrum signal includes a reverse channel mformation signal;each one of the plurality of subscriber units comprises: forward channel signal measuring means for measuring a forward signal-to-noise ratio of the respective forward channel information signal, forward error generating means for generating a respective forward channel error signal corresponding to a difference between the respective forward signal-to-noise ratio and a pre-determined signal-to-noise value, and a transmitting means for transmitting the respective forward channel error signal as part of a respective reverse channel information signal;and the base station comprises: a plurality of AFPC receiving means for receiving the plurality of reverse channel information signals and extracting the plurality of forward channel error signals from the respective reverse channel information signals, and a plurality of forward transmit power adjustment means for adjusting the respective forward transmit power levels of each of the respective forward spread-spectrum signals responsive to the respective forward error signal. 6. An AFPC system as set forth in claim 5 wherein the forward channel error signal includes a one-bit signal which indicates whether the respective difference signal is positive or negative. 7. An AFPC system as set forth in claim 5 wherein the forward channel error signal includes a measure of instantaneous noise in the channel. 8. The AFPC system of claim 7, wherein each of the subscriber units further comprise: a system noise measuring means for measuring a system noise power level of the spread-spectrum system comprising the plurality of forward spread-spectrum signals;means for multiplying the difference signal by the measured system noise power level to generate the forward channel error signal. 9. An automatic reverse power control (ARPC) system for a multiple access, spread-spectrum communication system, comprising: a base station and a plurality of subscriber units, wherein the base station transmits a plurality of forward channel information signals to a plurality of subscriber units as a plurality of forward channel spread-spectrum signals, and each ones of the subscriber units transmit to the base station at least one reverse spread-spectrum signal, and at least one reverse channel spread-spectrum signal includes a reverse channel information signal;the base station comprises: a plurality of reverse signal measuring means, each reverse signal measuring means for measuring a reverse signal-to-noise ratio of the respective reverse channel information signal;a plurality of reverse error generating means, each reverse error generating means for generating a respective reverse channel error signal representing a difference between the respective reverse channel signal-to- noise ratio and a respective pre-determined signal-to-noise value;and a plurality of transmitting means, each transmitting means for transmitting the respective reverse channel error signal as a part of the respective forward channel information signal;and each subscriber unit comprises: an ARPC receiving means for receiving a respective one of the forward channel information signals and extracting the respective reverse error signal from the forward channel information signal, and a subscriber transmit power adjustment means for adjusting the reverse transmit power level of the respective reverse spread-spectrum signal responsive to the respective reverse error signal. 10. An ARPC system as set forth in claim 9 wherein the reverse channel error signal includes a one-bit signal which indicates whether the respective difference signal is positive or negative. 11. An AFPC system as set forth in claim 9 wherein the reverse channel error signal includes a measure of instantaneous noise in the channel. 12. The ARPC system of claim 11, wherein the base station of the ARPC system further comprises a system noise measuring means for measuring a system noise power level of the spread-spectrum system comprising the plurality of reverse spread-spectrum signals;means for multiplying the difference signal by the measured system noise power level to generate the reverse channel error signal. 13. An automatic maintenance power control (MPC) system for a multiple access, spread-spectrum communication system for maintaining the initial transmit power of a subscriber unit, comprising a base station and a plurality of inactive subscriber units, wherein the base station transmits a plurality of forward inactive channel information signals to a plurality of subscriber units as a plurality of forward channel spread-spectrum signals, and each of the inactive subscriber units occasionally transmits to the base station at least one reverse spread-spectrum signal including a reverse channel information signal;the base station comprises: a) a plurality of reverse signal measuring means, each reverse signal measuring means comprising: means for measuring a reverse signal-to-noise ratio of the respective reverse channel information signal;a plurality of reverse error generating means, each reverse error generating means for generating a respective reverse channel error signal representing a difference between the respective reverse channel signal-to-noise ratio and a respective pre-determined signal-to- noise value;b) a system noise measuring means for measuring a system noise power level of the spread-spectrum system comprising: means for receiving a plurality of reverse spread-spectrum signals;means for combining the received spread spectrum signals with an uncorrelated despreading signal to produce a noise signal;and means for measuring a power level of the noise signal to produce a system noise power signal;c) means for multiplying the difference signal by the system noise power signal to generate the reverse channel error signal;and d) a plurality of transmitting means, each transmitting means for transmitting a respective reverse channel error signal as a part of a respective forward channel information signal;and each subscriber unit comprises an MPC receiving means for receiving a respective one of the forward channel information signals and extracting the respective reverse error signal from the forward channel information signal, and a subscriber transmit power adjustment means for adjusting the reverse transmit power level of the respective reverse spread-spectrum signal responsive to the respective reverse error signal. 14. The automatic maintenance power control (MPC) system of claim 29, further comprising a plurality of active subscriber units each of which transmits substantially continuous active information signals and wherein the plurality of reverse spread-spectrum signals includes the plurality of active information signals.