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

Information

  • Patent Grant
  • 7502406
  • Patent Number
    7,502,406
  • Date Filed
    Wednesday, February 27, 2002
    23 years ago
  • Date Issued
    Tuesday, March 10, 2009
    16 years ago
Abstract
A receiver receives signals and noise over a frequency spectrum of a desired received signal. The desired received signal is spread using code division multiple access. The received signals and noise are demodulated to produce a demodulated signal. The demodulated signal is despread using a code uncorrelated with a code associated with the desired received signal. A power level of the despread demodulated signal is measured as an estimate of the noise level of the frequency spectrum.
Description
BACKGROUND OF THE INVENTION

Providing quality telecommunication services to user groups which are classified as remote such as rural telephone systems and telephone systems in developing countries, has proved to be a challenge over recent years. These needs have been partially satisfied by wireless radio services, such as fixed or mobile frequency division multiplex (FDM), frequency division multiple access (FDMA), time division multiplex (TDM), time division multiple access (TDMA) systems, combination frequency and time division systems (FD/TDMA), and other land mobile radio systems. Usually, these remote services are faced with more potential users than can be supported simultaneously by their frequency or spectral bandwidth capacity.


Recognizing these limitations, recent advances in wireless communications have used spread spectrum modulation techniques to provide simultaneous communication by multiple users through a single communications channel. Spread spectrum modulation refers to modulating a information signal with a spreading code signal: the spreading code signal being generated by a code generator where the period Tc of the spreading code is substantially less than the period of the information data bit or symbol signal. The code may modulate the carrier frequency upon which the information has been sent, called frequency-hopped spreading, or may directly modulate the signal by multiplying the spreading code with the information data signal, called direct-sequence spreading (DS). Spread-spectrum modulation produces a signal having a bandwidth that is substantially greater than that required to transmit the information signal. Synchronous reception and despreading of the signal at the receiver demodulator recovers the original information. The synchronous demodulator uses a reference signal to synchronize the despreading circuits to the input spread-spectrum modulated signal to recover the carrier and information signals. The reference signal can be a spreading code which is not modulated by an information signal. Such use of a synchronous spread-spectrum modulation and demodulation for wireless communication is described in U.S. Pat. No. 5,228,056 entitled SYNCHRONOUS SPREAD-SPECTRUM COMMUNICATIONS SYSTEM AND METHOD by Donald L. Schilling, which is incorporated herein by reference.


Spread-spectrum modulation in wireless networks offers many advantages because multiple users may use the same frequency band with minimal interference to each user's receiver. In addition, spread spectrum modulation reduces effects from other sources of interference. Also, synchronous spread-spectrum modulation and demodulation techniques may be expanded by providing multiple message channels for a user, each spread with a different spreading code, while still transmitting only a single reference signal to the user. Such use of multiple message In channels modulated by a family of spreading codes synchronized to a pilot spreading code for wireless communication is described in U.S. Pat. No. 5,166,951 entitled HIGH CAPACITY SPREAD-SPECTRUM CHANNEL by Donald L. Schilling, which is incorporated herein by reference.


Another problem associated with multiple access, spread-spectrum communication systems is the need to reduce the total transmitted power of users in the system, since users may have limited available power. An associated problem requiring power control in spread-spectrum systems is related to the inherent characteristic of spread-spectrum systems that one user's spread-spectrum signal is received by another user as noise with a certain power level. Consequently, users transmitting with high levels of signal power may interfere with other users' reception. Also, if a user moves relative to another user's geographic location, signal fading and distortion require that the users adjust their transmit power level to maintain a particular signal quality, and to maintain the power that the base station receives from all users. Finally, because it is possible for the spread-spectrum system to have more remote users than can be supported simultaneously, the power control system should also employ a capacity management method which rejects additional users when the maximum system power level is reached.


Prior spread-spectrum systems have employed a base station that measures a received signal and sends an adaptive power control (APC) signal to the remote users. Remote users include a transmitter with an automatic gain control (AGC) circuit which responds to the APC signal. In such systems the base station monitors to the overall system power or the power received from each user, and sets the APC signal accordingly. Such a spread-spectrum power control system and method is described in U.S. Pat. No. 5,299,226 entitled ADAPTIVE POWER CONTROL FOR A SPREAD SPECTRUM COMMUNICATION SYSTEM AND METHOD, and U.S. Pat. No. 5,093,840 entitled ADAPTIVE POWER CONTROL FOR A SPREAD SPECTRUM TRANSMITTER, both by Donald L. Schilling and incorporated herein by reference. This open loop system performance may be improved by including a measurement of the signal power received by the remote user from the base station, and transmitting an APC signal back to the base station to effectuate a closed loop power control method. Such closed loop power control is described, for 2) example, in U.S. Pat. No. 5,107,225 entitled HIGH DYNAMIC RANGE CLOSED LOOP AUTOMATIC GAIN CONTROL CIRCUIT to Charles E. Wheatley, III et al. and incorporated herein by reference.


These power control systems, however, exhibit several disadvantages. First, the base station must perform complex power control algorithms, increasing the amount of processing in the base station. Second, the system actually experiences several types of power variation: variation in the noise power caused by changing numbers of users and variations in the received signal power of a particular bearer channel. These variations occur with different frequency, so simple power control algorithms can be optimized only to one of the two types of variation. Finally, these power algorithms tend to drive the overall system power to a relatively high level. Consequently, there is a need for a spread-spectrum power control method that rapidly responds to changes in bearer channel power levels, while simultaneously making adjustments to all users' transmit power in response to changes in the number of users. Also, there is a need for an improved spread-spectrum communication system employing a closed loop power control system which minimizes the system's overall power requirements while maintaining a sufficient BER at the individual remote receivers. In addition, such a system should control the initial transmit power level of a remote user and manage total system capacity.


SUMMARY OF THE INVENTION

A receiver receives signals and noise over a frequency spectrum of a desired received signal. The desired received signal is spread using code division multiple access. The received signals and noise are demodulated to produce a demodulated signal. The demodulated signal is despread using a code uncorrelated with a code associated with the desired received signal. A power level of the despread demodulated signal is measured as an estimate of the noise level of the frequency spectrum.





BRIEF DESCRIPTION OF THE DRAWING(S)


FIG. 1 is a block diagram of a code division multiple access communication system according to the present invention.



FIG. 2 is a flow-chart diagram of an exemplary maintenance power control algorithm of the present invention.



FIG. 3 is a flow-chart diagram of an exemplary automatic forward power control algorithm of the present invention.



FIG. 4 is a flow-chart diagram of an exemplary automatic reverse power control algorithm of the present invention.



FIG. 5A and FIG. 5B is a block diagram of an exemplary closed loop power control system of the present invention when the bearer channel is established.



FIG. 6A and FIG. 6B is a block diagram of an exemplary closed loop power control system of the present invention during the process of establishing the bearer channel.





DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)

The system of the present invention provides local-loop telephone service using radio link between one or more base stations and multiple remote subscriber units. In the exemplary embodiment, one radio link is described for a base station communicating with a fixed subscriber unit (FSU), but the system is equally applicable to systems including multiple base stations with radio links to both FSUs and Mobile Subscriber Units (MSUs). Consequently, the remote subscriber units are referred to herein as Subscriber Units (SUs).


Referring to FIG. 1, Base Station (BS) 101 provides call connection to a local exchange (LE) 103 or any other telephone network switching interface, and includes a Radio Carrier Station (RCS) 104. One or more RCSs 104, 105, 110 connect to a Radio Distribution Unit (RDU) 102 through links 131, 132, 137, 138, 139, and RDU 102 interfaces with LE 103 by transmitting and receiving call set-up, control, and information signals through telco links 141, 142, 150. SUs 116, 119 communicate with the RCS 104 through RF links 161, 162, 163, 164, 165. Alternatively, another embodiment of the invention includes several SUs and a “master” SU with functionality similar to the RCS. Such an embodiment may or may not have connection to a local telephone network.


Although the described embodiment uses different spread-spectrum bandwidths centered around a carrier for the transmit and receive spread-spectrum channels, the present method is readily extended to systems using multiple spread-spectrum bandwidths for the transmit channels and multiple spread-spectrum bandwidths for the receive channels. Alternatively, because spread-spectrum communication systems have the inherent feature that one user's transmission appears as noise to another user's despreading receiver, an embodiment can employ the same spread-spectrum channel for both the transmit and receive path channels. In other words, Uplink and Downlink transmissions can occupy the same frequency band. An embodiment of the invention may also employ multiple spread spectrum channels which need not be adjacent in frequency. In this embodiment, any channel may be used for Uplink, Downlink or Uplink and Downlink transmission.


In the exemplary embodiment, the spread binary symbol information is transmitted over the radio links 161 to 165 using Quadrature Phase Shift Keying (QPSK) modulation with Nyquist Pulse Shaping, although other modulation techniques may be used, including, but not limited to, Offset QPSK (OQPSK). Minimum Shift Keying (MSK), M-ary Phase Shift Keying (MPSK) and Gaussian Phase Shift Keying (GPSK).


The CDMA demodulator in either the RCS or the SU despreads the received signal with appropriate processing to combat or exploit multipath propagation effects. Parameters (concerning the received power level are used to generate the Automatic Power Control (APC) information which, in turn, is transmitted to the other end. The APC information is used to control transmit power of the automatic forward power control (AFPC) and automatic reverse power control (ARPC) links. In addition, each RCS 104, 105 and 110 can perform Maintenance Power Control (MPC), in a manner similar to APC, to adjust the initial transmit power of each SU 111, 112, 115, 117 and 118. Demodulation is coherent where the pilot signal provides the phase reference.


The transmit power levels of the radio interface between RCS 104 and SUs 111, 112, 115, 117 and 118 are controlled using two different closed loop power control algorithms. The Automatic Forward Power Control (AFPC) determines the Downlink transmit power level, and the Automatic Reverse Power Control (ARPC) determines the Uplink transmit power level. The logical control channel by which SU 111 and RCS 104, for example, transfer power control information operates at least a 16 kHz update rate. Other embodiments may use a faster 32 kHz update rate. These algorithms ensure that the transmit power of a user maintains an acceptable Bit-Error Rate (BER), maintains the system power at a minimum to conserve power, and maintains the power level of all SUs 111, 112, 115, 117 and 118. as received by RCS 104, at a nearly equal level.


In addition, the system includes an optional maintenance power algorithm that is used during the inactive mode of a SU. When SU 111 is inactive or powered-down to conserve power, the unit may occasionally activate itself and adjust its initial transmit power level setting in response to a maintenance power control signal from RCS 104. The maintenance power signal is determined by the RCS 104 by measuring the received power level of SU 111 and present system power level and calculating the necessary initial transmit power. The method shortens the channel acquisition time of SU 111 when it is turned on to begin a communication. The method also prevents the transmit power level of SU 111 from becoming too high and interfering with other channels during the initial transmission before the closed loop power control adjusts the transmit power to a level appropriate for the other message traffic in the channel.


The RCS 104 obtains synchronization of its clock from an interface line such as, but not limited to, E1, T1, or HDSL interfaces. Each RCS can also generate its own internal clock signal from an oscillator which may be regulated by a Global Positioning System (GPS) receiver. The RCS 104 generates a Global Pilot Code for a channel having a spreading code but no data modulation, which can be acquired by remote SUs 111 through 118. All transmission channels of the RCS are synchronous with the Pilot channel, and spreading code phases of code generators (not shown) used for Logical communication channels within RCS 104 are also synchronous with the Pilot channel's spreading code phase. Similarly, SUs 111 through 118 which receive the Global Pilot Code of RCS 104 synchronize the spreading and de-spreading code phases of the code generators (not shown) of the SUs to the Global Pilot Code.


Logical Communication Channels


A ‘channel’ of the prior art is usually regarded as a communications path that is part of an interface and that can be distinguished from other paths of the interface without regard to its content. In the case of CDMA, however, separate communications paths are distinguished only by their content. The term ‘logical channel’ is used to distinguish the separate data streams, which are logically equivalent to channels in the conventional sense. All logical channels and sub-channels of the present invention are mapped to a common 64 kilo-symbols per second (ksym/s) QPSK stream. Some channels are synchronized to associated pilot codes which are generated and perform a similar function to the system Global Pilot Code. The system pilot signals are not, however, considered logical channels.


Several logical communication channels are used over the RF communication link between the RCS and SU. Each logical communication channel either has a fixed, pre-determined spreading code or a dynamically assigned spreading code. For both pre-determined and assigned codes, the code phase is synchronous with the Pilot Code. Logical communication channels are divided into two groups: the Global Channel (GC) group and the Assigned Channel (AC) group. The GC group includes channels which are either transmitted from the base station RCS to all the remote SUs or from any SU to the RCS of the base station regardless of the SU's identity. These channels typically contain information of a given type for all users. These channels include the channels used by the SUs to gain system access. Channels in the Assigned Channels (AC) group are those channels dedicated to communication between the RCS and a particular SU.


Power Control


General


The power control feature of the present invention is used to minimize the transmit power used between an RCS and any SUs with which it is in communication. The power control subfeature that updates transmit power during bearer channel connection is defined as automatic power control (APC). APC data is transferred from the RCS to an SU on the forward APC channel and from an SU to the RCS on the reverse APC channel. When there is no active data link between the two, the maintenance power control subfeature (MPC) controls the transmit to power of the SU.


Transmit power levels of forward and reverse assigned channels and reverse global channels are controlled by the APC algorithm to maintain sufficient signal power to interference noise power ratio (SIR) on those channels, and to stabilize and minimize system output power. The present invention uses a closed loop power control system in which a receiver controls its associated transmitter to incrementally raise or lower its transmit power. This control is conveyed to the associated transmitter via the power control signal on the APC channel. The receiver makes the decision to increase or decrease the transmitter's power based on two error signals. One error signal is an indication of the difference between the measured and required despread signal powers, and the other error signal is an indication of the average received total power.


As used in the described embodiment of the invention, the term near-end power control is used to refer to adjusting the transmitter's output power in accordance with the APC signal received on the APC channel from the other end. This means the reverse power control for the SU and forward power control for the RCS; and the term far-end APC is used to refer to forward power control for the SU and reverse power control for the RCS (adjusting the transmit power of the unit at the opposite end of the channel).


In order to conserve power, the SU modem terminates transmission and powers-down while waiting for a call, defined as the sleep phase. Sleep phase is terminated by an awaken signal from the SU controller. Responsive to this signal, the SU modem acquisition circuit automatically enters the reacquisition phase, and begins the process of acquiring the downlink pilot, as described below.


Closed Loop Power Control Algorithms


The near-end power control includes two steps: first, set the initial transmit power, second, continually adjust transmit power according to information received from the far-end using APC.


For the SU, initial transmit power is set to a minimum value and then ramped up, for example, at a rate of 1 dB/ms until either a ramp-up timer expires (not shown) or the RCS changes the corresponding traffic light value on the FBCH to “red” indicating the RCS has locked to the SU's short pilot signal (SAXPT). Expiration of the timer causes the SAXPT transmission to be shut down, unless the traffic light value is set to red first, in which case the SU continues to ramp-up transmit power but at a much lower rate than before the “red” signal was detected.


The initial power ramp-up method is described in a U.S. patent application entitled A METHOD OF CONTROLLING INITIAL POWER RAMP-UP IN CDMA SYSTEMS BY USING SHORT CODES, filed on even date herewith. which is hereby incorporated by reference.


For the RCS, initial transmit power is set at a fixed value, corresponding to the minimum value necessary for reliable operation as determined experimentally for the service type and the current number of system users. Global channels, such as the Global Pilot or, the fast broadcast channel (FBCH), are always transmitted at the fixed initial power, whereas traffic channels are switched to APC.


The APC signal is transmitted as one bit signals on the APC channel. The one-bit signal represents a command to increase (signal is logic-high) or decrease (signal is logic-low) the associated transmit power. In the described embodiment, the 64 kbps APC data stream is not encoded or interleaved.


Far-end power control consists of the near-end transmitting power control information for the far-end to use in adjusting its transmit power.


The APC algorithm causes the RCS or the SU to transmit +1 if the following inequality holds, otherwise −1 (logic-low).

α1e1−α2e2>0  (1)


Here the error signal e1 is calculated as

e1=Pd−(1+SNRREF)PN  (2)


where Pd is the despread signal plus noise power, PN is the despread noise power, and SNRREF is the desired despread signal to noise ratio for the particular service type; and

e2=Pr−Po  (3)


where Pr is a measure of the received power and Po is the automatic gain control (AGC) circuit set point. The weights α1 and α2 in equation (30) are chosen for each service type and for the APC update rate.


Maintenance Power Control


During the sleep phase of the SU, the interference noise power of the CDMA RF channel changes. As an alternative to the initial power ramp-up method described above, the present invention may include a maintenance power control feature (MPC) which periodically adjusts the SU's initial transmit power with respect to the interference noise power of the CDMA channel. The MPC is the process whereby the transmit power level of an SU is maintained within close proximity of the minimum level required for the RCS to detect the SU's signal. The MPC process compensates for low frequency changes in the required SU transmit power.


The maintenance control feature uses two global channels: one is called the status channel (STCH) on reverse link, and the other is called the check-up channel (CUCH) on forward link. The signals transmitted on these channels carry no data and they are generated the same way the short codes used in initial power ramp-up are generated. The STCH and CUCH codes are generated from a “reserved” branch of the global code generator.


The MPC process is as follows. At random intervals, the SU sends a symbol length spreading code periodically for 3 ms on the status channel (STCH). If the RCS detects the sequence, it replies by sending a symbol length code sequence within the next 3 ms on the check-up channel (CUCH). When the SU detects the response from the RCS, it reduces its transmit power by a particular step size. If the SU does not detect any response from the RCS within the 3 ms period, it increases its transmit power by the step size. Using this method, the RCS response is transmitted at a power level that is enough to maintain a 0.99 detection probability at all SU's.


The rate of change of traffic load and the number of active users is related to the total interference noise power of the CDMA channel. The update rate and step size of the maintenance power update signal for the present invention is determined by using queuing theory methods well known in the art of communication theory, such as outlined in “Fundamentals of Digital Switching” (Plenum-New York) edited by McDonald and incorporated herein by reference. By modeling the call origination process as an exponential random variable with mean 6.0 mins, numerical computation shows the maintenance power level of a SU should be updated once every 10 seconds or less to be able to follow the changes in interference level using 0.5 dB step size. Modeling the call origination process as a Poisson random variable with exponential interarrival times, arrival rate of 2×10−4 per second per user, service rate of 1/360 per second, and the total subscriber population is 600 in the RCS service area also yields by numerical computation that an update rate of once every 10 seconds is sufficient when 0.5 dB step size is used.


Maintenance power adjustment is performed periodically by the SU which changes from sleep phase to awake phase and performs the MPC process. Consequently, the process for the MPC feature is shown in FIG. 2 and is as follows: First, at step 201, signals are exchanged between the SU and the RCS maintaining a transmit power level that is close to the required level for detection: the SU periodically sends a symbol length spreading code in the STCH, and the RCS sends periodically a symbol length spreading code in the CUCH as response.


Next, at step 202, if the SU receives a response within 3 ms after the STCH message it sent, it decreases its transmit power by a particular step size at step 203; but if the SU does not receive a response within 3 ms after the STCH message, it increases its transmit power by the same step size at step 204.


The SU waits, at step 205, for a period of time before sending another STCH message, this time period is determined by a random process which averages 10 seconds.


Thus, the transmit power of the STCH messages from the SU is adjusted based on the RCS response periodically, and the transmit power of the CUCH messages from the RCS is fixed.


Mapping of Power Control Signal to Logical Channels For APC


Power control signals are mapped to specified Logical Channels for controlling transmit power levels of forward and reverse assigned channels. Reverse global channels are also controlled by the APC algorithm to maintain sufficient signal power to interference noise power ratio (SIR) on those reverse channels, and to stabilize and minimize system output power. The present invention uses a closed loop power control method in which a receiver periodically decides to incrementally raise or lower the output power of the transmitter at the other end. The method also conveys that decision back to the respective transmitter.









TABLE 1







APC Signal Channel Assignments









Link




Channels
Call/Connection
Power Control Method










and Signals
Status
Initial Value
Continuous





Reverse link
Being Established
as determined by
APC bits in


AXCH

power ramping
forward APC


AXPT


channel


Reverse link
In-Progress
level established
APC bits in


APC, OW,

during call set-
forward APC


TRCH,

up
channel


pilot signal


Forward link
In-Progress
fixed value
APC bits in


APC, OW,


reverse APC


TRCH


channel









Forward and reverse links are independently controlled. For a call/connection in process, forward link traffic channel (TRCH) APC, and Order Wire (OW) power is controlled by the APC bits transmitted on the reverse APC channel. During the call/connection establishment process, reverse link access channel (AXCH) power is also controlled by the APC bits transmitted on the forward APC channel. Table 1 summarizes the specific power control methods for the controlled channels.


The required SIRs of the assigned channels TRCH, APC and OW and reverse assigned pilot signal for any particular SU are fixed in proportion to each other and these channels are subject to nearly identical fading, therefore, they are power controlled together.


Automatic Forward Power Control


The AFPC system attempts to maintain the minimum required SIR on the forward channels during a call/connection. The AFPC recursive process shown in FIG. 3 consists of the steps of having an SU form the two error signals e1 and e2 in step 301 where

e1=Pd−(1+SNRREQ)PN  (4)
e2=Pr−Po  (5)


and Pd is the despread signal plus noise power, PN is the despread noise power, SNRREF is the required signal to noise ratio for the service type, Pr is a measure of the total received power, and Po is the AGC set point. Next, the SU modem forms the combined error signal α1 e12 e2 in step 302. Here, the weights α1 and α2 are chosen for each service type and APC update rate. In step 303, the SU hard limits the combined error signal and forms a single APC bit. The SU transmits the APC bit to the RCS in step 304 and RCS modem receives the bit in step 305. The RCS increases or decreases its transmit power to the SU in step 306 and the algorithm repeats starting from step 301.


Automatic Reverse Power Control


The ARPC system maintains the minimum required SIR on the reverse channels to minimize the total system reverse output power, during both call/connection establishment and while the call/connection is in progress. The ARPC recursive process shown in FIG. 4 begins at step 401 where the RCS modem forms the two error signals e1 and e2 in step 401 where

e1=Pd−(1+SNRREQ)PN  (6)
e2=Prt−Po  (7)


SIR and Multiple Channel Types


The required SIR for channels on a link is a function of channel format (e.g. TRCH, OW). service type (e.g. ISDN B, 32 kb/s ADPCM POTS) and the number of symbols over which data bits are distributed (e.g. two 64 kb/s symbols are integrated to form a single 32 kb/s ADPCM POTS symbol). Despreader output power corresponding to the required SIR for each channel and service type is predetermined. While a call/connection is in progress, several user CDMA logical channels are concurrently active; each of these channels transfers a symbol every symbol period. The SIR of the symbol from the nominally highest SIR channel is measured, compared to a threshold and used to determine the APC step up/down decision each symbol period. Table 2 indicates the symbol (and threshold) used for the APC computation by service and call type.


APC Parameters


APC information is always conveyed as a single bit of information, and the APC Data Rate is equivalent to the APC Update Rate. The APC update rate is 64 kb/s. This rate is high enough to accommodate expected Rayleigh and Doppler fades, and allow for a relatively high (˜0.2) Bit Error Rate (BER) in the Uplink and Downlink APC channels, which minimizes capacity devoted to the APC.


The power step up/down indicated by an APC bit is nominally between 0.1 and 0.01 dB. The dynamic range for power control is 70 dB on the reverse link and 12 dB on the forward link for the exemplary embodiment of the present system. and Pd is the despread signal plus noise power, PN is the despread noise power. SNRREF is the reference signal to noise ratio for the service type, Prt is a measure of the average total power received by the RCS, and Po is the AGC set point. The RCS modem forms the combined error signal α1 e12 e2 in step 402 and hard limits this error signal to determine a single APC bit in step 403. The RCS transmits the APC bit to the SU in step 404, and the bit is received by the SU in step 405. Finally, SU adjusts its transmit power according to the received APC bit in step 406, and the process repeats starting from step 401.









TABLE 2







Symbols/Thresholds Used for APC Computation










Call/Connec-
Symbol (and Threshold) Used for


Service or Call Type
tion Status
APC Decision





Don't care
Being
AXCH



Established


ISDN D SU
In-Progress
one 1/64-KBPS symbol from




TRCH (ISDN-D)


ISDN 1B + D SU
In-Progress
TRCH (ISDN-B)


ISDN 2B + D SU
In-Progress
TRCH (one ISDN-B)


POTS SU
In-Progress
one 1/64-KBPS symbol from


(64 KBPS PCM)

TRCH, use 64 KBPS PCM




threshold


POTS SU (32 KBPS
In-Progress
one 1/64-KBPS symbol from


ADPCM)

TRCH, use 32 KBPS ADPCM




threshold


Silent Maintenance
In-Progress
OW (continuous during a


Call (any SU)

maintenance call)









An Alternative Embodiment for Multiplexing APC Information


The dedicated APC and OW logical channels described previously can also be multiplexed together in one logical channel. The APC information is transmitted at 64 kb/s. continuously whereas the OW information occurs in data bursts. The alternative multiplexed logical channel includes the unencoded, non-interleaved 64 kb/s. APC information on, for example, the In-phase channel and the OW information on the quadrature channel of the QPSK signal.


Closed Loop Power Control Implementation


The closed loop power control during a call connection responds to two different variations in overall system power. First, the system responds to local behavior such as changes in power level of an SU, and second, the system responds to changes in the power level of the entire group of active users in the system.


The Power Control system of the exemplary embodiment of the present invention is shown in FIG. 5A and FIG. 5B. As shown, the circuitry used to adjust the transmitted power is similar for the RCS (shown as the RCS power control module 501) and SU (shown as the SU power control module 502). Beginning with the RCS power control module 501, the reverse link RF channel signal is received at the RF antenna 590 and demodulated to produce the reverse CDMA signal RMCH which is applied to the variable gain amplifier (VGA1) 510. The output signal of VGA1 510 is provided to the Automatic Gain Control (AGC) Circuit 511 which produces a variable gain amplifier control signal into the VGA1 510. This signal maintains the level or the output signal of VGA1 510 at a near constant value. The output signal of VGA1 is despread by the despread-demultiplexer (demux) 512 which produces a despread user message signal MS and a forward APC bit. The forward APC bit is applied to the integrator 513 to produce the Forward APC control signal. The Forward APC control signal controls the Forward Link VGA2 514 and maintains the Forward Link RF channel signal at a minimum level necessary for communication.


The signal power of the despread user message signal MS of the RCS power module 501 is measured by the power measurement circuit 515 to produce a signal power indication. The output of the VGA1 is also despread by the AUX despreader 581 which despreads the signal by using an uncorrelated spreading code, and hence obtains a despread noise signal. The power measurement taken at power measurement device 582 of this signal is multiplied at multiplier 583 by 1 plus the required signal to noise ratio (SNRR) to form the threshold signal S1. The difference between the despread signal power and the threshold value S1 is produced by the subtracter 516. This difference is the error signal ES1 which is an error signal relating to the particular SU transmit power level. Similarly the control signal for the VGA1 510 is applied to the rate scaling circuit 517 to reduce the rate of the control signal for VGA1 510. The output signal of scaling circuit 517 is a scaled system power level signal SP1. The Threshold Compute logic 518 computes the System Signal Threshold SST value from the RCS user channel power data signal (RCSUSR). The complement of the Scaled system power level signal, SP1, and the System Signal Power Threshold value SST are applied to the adder 519 which produces second error signal ES2. This error signal is related to the system transmit power level of all active SUs. The input Error signals ES1 and ES2 are combined in the combiner 520 produce a combined error signal input to the delta modulator (DM1) 521, and the output signal of the DM1 is the reverse APC bit stream signal, having bits of value +1 or −1, which for the present invention is transmitted as a 64 kb/sec signal.


The Reverse APC bit is applied to the spreading circuit 522 and the output signal of the spreading circuit 522 is the spread-spectrum forward APC message signal. Forward OW and Traffic signals are also provided to spreading circuits 523, 524, producing forward traffic message signals 1, 2, . . . N. The power level of the forward APC signal, the forward OW, and traffic message signals are adjusted by the respective amplifiers 525, 526 and 527 to produce the power level adjusted forward APC, OW, and TRCH channels signals. These signals are combined by the adder 528 and applied to the VAG2 514, which produces forward link RF channel signal. The forward link RF channel signal is transmitted by transmitter 591.


The forward link RF channel signal including the spread forward APC signal is received by the RF antenna 592 of the SU, and demodulated to produce the forward CDMA signal FMCH. This signal is provided to the variable gain amplifier (VGA3) 540. The output signal of VGA3 is applied to the Automatic Gain Control Circuit (AGC) 541 which produces a variable gain amplifier control signal to VGA3 540. This signal maintains the level of the output signal of VGA3 at a near constant level. The output signal of VAG3 540 is despread by the despread demux 542, which produces a despread user message signal SUMS and a reverse APC bit. The reverse APC bit is applied to the integrator 543 which produces the Reverse APC control signal. This reverse APC control signal is provided to the Reverse APC VGA4 544 to maintain the Reverse link RF channel signal at a minimum power level.


The despread user message signal SUMS is also applied to the power measurement circuit 545 producing a power measurement signal which is added to the complement of threshold value S2 in the adder 546 to produce error signal ES3. The signal ES3 is an error signal relating to the RCS transmit power level for the particular SU. To obtain threshold S2, the despread noise power indication at measure power device 586 from the AUX despreader 585 is multiplied at multiplier 587 by 1 plus the desired signal lo noise ratio SNRR. The AUX despreader 585 despreads the input data using an uncorrelated spreading code, hence its output is an indication of the despread noise power.


Similarly, the control signal for the VGA3 is applied to the rate scaling circuit 570 to reduce the rate of the control signal for VGA3 in order to produce a scaled received power level RP1 (see FIG. 5A and FIG. 5B). The threshold compute 598 circuit computes the received signal threshold RST from SU measured power signal SUUSR. The complement of the scaled received power level RP1 and the received signal threshold RST are applied to the adder 594 which produces error signal ES4. This error is related to the RCS transmit power to all other SUs. The input error signals ES3 and ES4 are combined in the combiner 599 and input to the delta modulator DM2 547, and the output signal of DM2 547 is the forward APC bit stream signal, with bits having value of value +1 or −1. In the exemplary embodiment of the present invention this signal is transmitted as a 64 kb/sec signal.


The Forward APC bit stream signal is applied to the spreading circuit 2948 to produce the output reverse spread-spectrum APC signal. Reverse OW and Traffic signals are also input to spreading circuits 549, 550, producing reverse OW and traffic message signals 1, 2 . . . N and the reverse pilot is generated by the reverse pilot generator 551. The power level of the reverse APC message signal reverse OW message signal, reverse pilot, and the reverse traffic message signals are adjusted by amplifiers 552, 553, 554, 555 to produce the signals which are combined by the adder 556 and input to the reverse APC VGA4 544. It is this VGA4 544 which produces the reverse link RF channel signal. The reverse link RF channel signal is transmitted by transmitter 593.


During the call connection and bearer channel establishment process, the closed loop power control of the present invention is modified, and is shown in FIG. 6A and FIG. 6B. As shown, the circuits used to adjust the transmitted power are different for the RCS, shown as the Initial RCS power control module 601; and for the SU, shown as the Initial SU power control module 602. Beginning with the Initial RCS power control module 601, the reverse link RF channel signal is received at the RF antenna 640 and demodulated producing the reverse CDMA signal IRMCH which is received by the first variable gain amplifier (VGA 1) 603. The output signal of VGA1 is detected by the Automatic Gain Control Circuit (AGC1) 604 which provides a variable gain amplifier control signal to VGA1 603 to maintain the level of the output signal of VAG1 at a near constant value. The output signal of VGA1 is despread by the despread demultiplexer 605 which produces a despread user message signal IMS. The Forward APC control signal, ISET, is set to a fixed value, and is applied to the Forward Link Variable Gain Amplifier (VGA2) 606 to set the Forward Link RF channel signal at a predetermined level.


The signal power of the despread user message signal IMS of the Initial RCS power module 601 is measured by the power measure circuit 607, and the output power measurement is subtracted from a threshold value S3 in the subtracter 608 to produce error signal ES5 which is an error signal relating to the transmit power level of a particular SU. The threshold S3 is calculated by multiplying at multiplier 652 the despread power measurement at measure power device 651 obtained from the AUX despreader 650 by 1 plus the desired signal to noise ratio SNR. The AUX despreader 650 despreads the signal using an uncorrelated spreading code, hence its output signal is an indication of despread noise power. Similarly, the VGA1 control signal is applied to the rate scaling circuit 609 to reduce the rate of the VGA1 control signal in order to produce a scaled system power level signal SP2. The threshold computation logic 610 determines an Initial System Signal Threshold value (ISST) computed from the user channel power data signal (IRCSUSR). The complement of the scaled system power level signal SP2 and the (ISST) are provided to the adder 611 which produces a second error signal ES6, which is an error signal relating to the system transmit power level of all active SUs. The value of ISST is the desired transmit power for a system having the particular configuration. The input Error signals ES5 and ES6 are combined in the combiner 612 produce a combined error signal input to the delta modulator (DM3) 613. DM3 produces the initial reverse APC bit stream signal, having bits of value +1 or −1, which for the present invention is transmitted as a 64 kb/sec signal.


The Reverse APC bit stream signal is applied to the spreading circuit 614. to produce the initial spread-spectrum forward APC signal. The control channel (CTCH) information is spread by the spreader 616 to form the spread CTCH message signal. The spread APC and CTCH signals are scaled by the amplifiers 615 and 617 and combined by the combiner 618. The combined signal is applied to VAG2 606 which produces the forward link RF channel signal. The forward link RF channel signal is transmitted by transmitter 641.


The forward link RF channel signal including the spread forward APC signal is received by the RF antenna 642 of the SU and demodulated to produce the initial forward CDMA signal (IFMCH) which is applied to the variable gain amplifier (VGA3) 620. The output signal of VGA3 is detected by the Automatic Gain Control Circuit (AGC2) 621 which produces a variable gain amplifier control signal for the VGA3 620. This signal maintains the output power level of the VGA3 620 at a near constant value. The output signal of VAG3 is despread by the despread demultiplexer 622 which produces an initial reverse APC bit that is dependent on the output level of VGA3. The reverse APC bit is processed by the integrator 623 to produce the Reverse APC control signal. The Reverse APC control signal is provided to the Reverse APC VGA4 624 to maintain Reverse link RF channel signal at a defined power level the reverse link RF channel signal is transmitted by transmitter 643.


The global channel AXCH signal is spread by the spreading circuits 625 to provide the spread AXCH channel signal. The reverse pilot generator 626 provides a reverse pilot signal, and the signal power of AXCH and the reverse pilot signal are adjusted by the respective amplifiers 627 and 628. The spread AXCH channel signal and the reverse pilot signal are added by the adder 629 to produce reverse link CDMA signal. The reverse link CDMA signal is received by the reverse APC VGA4 624, which produces the reverse link RF channel signal output to the RF transmitter.


System Capacity Management


The system capacity management algorithm of the present invention optimizes the maximum user capacity for an RCS area, called a cell. When the SU comes within a certain value of maximum transmit power, the SU sends an alarm message to the RCS. The RCS sets the traffic lights which control access to the system, to “red” which, as previously described, is a flag that inhibits access by the SU's. This condition remains in effect until the alarming SU terminates its call, or until the transmit power of the alarming SU, measured at the SU, is a value less than the maximum transmit power. When multiple SUs send alarm messages, the condition remains in effect until either all calls from alarming SUs terminate, or until the transmit power of the alarming SU, measured at the SU, is a value less than the maximum transmit power. An alternative embodiment measures the bit error rate measurements from the Forward Error Correction (FEC) decoder, and holds the RCS traffic lights at “red” until the bit error rate is less than a predetermined value.


The blocking strategy of the present invention includes a method which uses the power control information transmitted from the RCS to an SU, and the received power measurements at the RCS. The RCS measures its transmit power level, detects that a maximum value is reached, and determines when to block new users. An SU preparing to enter the system blocks itself if the SU reaches the maximum transmit power before successful completion of a bearer channel assignment.


Each additional user in the system has the effect of increasing the noise level for all other users, which decreases the signal to noise ratio (SNR) that each user experiences. The power control algorithm maintains a desired SNR for each user. Therefore, in the absence of any other limitations, addition of a new user into the system has only a transient effect and the desired SNR is regained.


The transmit power measurement at the RCS is done by measuring either the root mean square (rms) value of the baseband combined signal or by measuring the transmit power of the RF signal and feeding it back to digital control circuits. The transmit power measurement may also be made by the SUs to determine if the unit has reached its maximum transmit power. The SU transmit power level is determined by measuring the control signal of the RF amplifier, and scaling the value based on the service type, such as plain old telephone service (POTS), FAX, or integrated services digital network (ISDN).


The information that an SU has reached the maximum power is transmitted to the RCS by the SU in a message on the Assigned Channels. The RCS also determines the condition by measuring reverse APC changes because, if the RCS sends APC messages to the SU to increase SU transmit power, and the SU transmit power measured at the RCS is not increased, the SU has reached the maximum transmit power.


The RCS does not use traffic lights to block new users who have finished ramping-up using the short codes. These users are blocked by denying them the dial tone and letting them time out. The RCS sends all 1's (go down commands) on the APC Channel to make the SU lower its transmit power. The RCS also sends either no CTCH message or a message with an invalid address which would force the FSU to abandon the access procedure and start over. The SU does not start the acquisition process immediately because the traffic lights are red.


When the RCS reaches its transmit power limit, it enforces blocking in the same manner as when an SU reaches its transmit power limit. The RCS turns off all the traffic lights on the FBCH, starts sending all I APC bits (go down commands) to those users who have completed their short code ramp-up but have not yet been given dial tone, and either sends no CTCH message to these users or sends messages with invalid addresses to force them to abandon the access process.


The self blocking algorithm of the SU is as follows. When the SU starts transmitting the AXCH, the APC starts its power control operation using the AXCH and the SU transmit power increases. While the transmit power is increasing under the control of the APC, it is monitored by the SU controller. If the transmit power limit is reached, the SU abandons the access procedure and starts over.


Although the invention has been described in terms of an exemplary embodiment, it is understood by those skilled in the art that the invention may be practiced with modifications to the embodiment that are within the scope of the invention as defined by the following claims.

Claims
  • 1. A method for controlling transmission power levels of a code division multiple access (CDMA) subscriber unit, the method comprising: receiving by the subscriber unit a power control bit on a downlink control channel, the power control bit indicating either an increase or decrease in transmission power level;transmitting a plurality of channels by the subscriber unit, the plurality of channels including a traffic channel and a reverse control channel;in response to the received power control bit, adjusting a transmission power level of both the traffic channel and the reverse control channel, wherein the transmission power level of the traffic channel and the reverse control channel are different; andtransmitting the traffic channel and the reverse control channel at their respective adjusted transmit power levels.
  • 2. The method of claim 1 comprising transmitting at least one additional traffic channel by the subscriber unit and wherein a transmission power level of the at least one additional traffic channel is adjusted in response to the received power control bit.
  • 3. The method of claim 1 comprising transmitting a reverse channel that is not a traffic or control channel by the subscriber unit wherein a transmission power level of the reverse channel that is not a traffic or control channel is adjusted in response to the received power control bit.
  • 4. The method of claim 1 wherein the power control bit has a value of +1 or −1.
  • 5. The method of claim 1 wherein the transmission power levels of the traffic channel and the reverse control channel are established based on a characteristic of the traffic channel with respect to the reverse control channel.
  • 6. The method of claim 1 wherein the reverse control channel carries at least one power command.
  • 7. A method for controlling transmission power levels of a code division multiple access (CDMA) subscriber unit, the method comprising: receiving by the subscriber unit a series of power control bits on a downlink channel, each power control bit indicating either an increase or decrease in transmission power level;transmitting a plurality of channels by the subscriber unit, the plurality of channels including a traffic channel and a reverse control channel;adjusting a transmission power level of both the traffic channel and the reverse control channel in response to the same bits in the received series of power control bits, wherein the transmission power level of the traffic channel and the reverse control channel are different; andtransmitting the traffic channel and the reverse control channel at their respective adjusted transmit power levels.
  • 8. The method of claim 7 wherein the downlink channel is a downlink control channel.
  • 9. The method of claim 7 comprising transmitting at least one additional traffic channel by the subscriber unit and wherein a transmission power level of the at least one additional traffic channel is adjusted in response to the same bits in the received series of power control bits.
  • 10. The method of claim 7 comprising transmitting a reverse channel that is not a traffic or control channel by the subscriber unit and wherein a transmission power level of the reverse channel that is not a traffic or control channel is adjusted in response to the same bits in the received series of power control bits.
  • 11. The method of claim 7 wherein each power control bit has a value of +1 or −1.
  • 12. The method of claim 7 wherein the transmission power levels of the traffic channel and the reverse control channel are established based on a characteristic of the traffic channel with respect to the reverse control channel.
  • 13. The method of claim 7 wherein the reverse control channel carries at least one power command.
  • 14. The method of claim 7 wherein the traffic channel and the reverse control channel have different required signal to interference ratios (SIRs).
  • 15. A code division multiple access (CDMA) subscriber unit comprising: a despreading and demultiplexing device configured to recover a power control bit from a downlink control channel, wherein the power control bit having has a value indicating a command to either increase or decrease transmission power level; andgain devices configured, in response to the received power control bit, to adjust a transmission power level of both a traffic channel and a reverse control channel prior to transmission by the subscriber unit, wherein the transmission power level of the traffic channel and the reverse_control channel are different.
  • 16. The CDMA subscriber unit of claim 15 wherein a gain device is configured to adjust a transmission power level of at least one additional traffic channel in response to the received power control bit.
  • 17. The CDMA subscriber unit of claim 15 wherein a gain device is configured to adjust a transmission power level of a reverse channel that is not a traffic or control channel in response to the received power control bit.
  • 18. The CDMA subscriber unit of claim 15 wherein the power control bit has a value of +1 or −1.
  • 19. The CDMA subscriber unit of claim 15 wherein the transmission power levels of the traffic channel and the reverse control channel are established based on a characteristic of the traffic channel with respect to the reverse control channel.
  • 20. The CDMA subscriber unit of claim 15 wherein the reverse control channel carries at least one power command.
  • 21. A code division multiple access (CDMA) subscriber unit comprising: a despreading and demultiplexing device configured to recover a series of power control bits from a downlink channel, wherein each power control bit has a value indicating a command to either increase or decrease transmission power level; andgain devices configured, in response to the received series of power control bits, to adjust a transmission power level of both a traffic channel and a reverse control channel in response to same bits in the received series of power control bits prior to transmission by the subscriber unit, wherein the transmission power level of the traffic channel and the reverse control channel are different.
  • 22. The CDMA subscriber unit of claim 21 wherein the downlink channel is a downlink control channel.
  • 23. The CDMA subscriber unit of claim 22 wherein a gain device is configured to adjust a transmission power level of a reverse channel that is not a traffic or control channel in response to the same bits in the received series of power control bits.
  • 24. The CDMA subscriber unit of claim 22 wherein each power control bit has a value of +1 or −1.
  • 25. The CDMA subscriber unit of claim 22 wherein the transmission power levels of the traffic channel and the reverse control channel are established based on a characteristic of the traffic channel with respect to the reverse control channel.
  • 26. The CDMA subscriber unit of claim 22 wherein the reverse control channel carries at least one power command.
  • 27. The CDMA subscriber unit of claim 22 wherein the traffic channel and the reverse control channel have different required signal to interference ratios (SIRs).
  • 28. The CDMA subscriber unit of claim 21 wherein a gain device is configured to adjust a transmission power level of at least one additional traffic channel in response the same bits in the received series of power control bits.
  • 29. A method for controlling transmission power levels of a code division multiple access (CDMA) subscriber unit, the method comprising: receiving by the subscriber unit a power control bit on a downlink control channel, the power control bit indicating either an increase or decrease in transmission power level;transmitting a plurality of channels by the subscriber unit, the plurality of channels including a traffic channel and a reverse control channel;in response to the received power control bit, adjusting a transmission power level of both the traffic channel and the reverse control channel,separately adjusting the transmission power level of the traffic channel and the reverse control channel; andtransmitting the traffic channel and the reverse control channel at their respective adjusted transmit power levels.
  • 30. The method of claim 29 comprising transmitting at least one additional traffic channel by the subscriber unit wherein a transmission power level of the at least one additional traffic channel is adjusted in response to the received power control bit.
  • 31. The method of claim 29 comprising transmitting a reverse channel that is not a traffic or control channel by the subscriber unit wherein a transmission power level of the reverse channel that is not a traffic or control channel is adjusted in response to the received power control bit.
  • 32. The method of claim 29 wherein the power control bit has a value of +1 or −1.
  • 33. The method of claim 29 wherein the transmission power levels of the traffic channel and the reverse control channel are established based on a characteristic of the traffic channel with respect to the reverse control channel.
  • 34. The method of claim 29 wherein the reverse control channel carries at least one power command.
  • 35. A code division multiple access (CDMA) subscriber unit comprising: a despreading and demultiplexing device configured to recover a power control bit from a downlink control channel, wherein the power control bit has a value indicating a command to either increase or decrease transmission power level; andgain devices configured, in response to the received power control bit, to adjust a transmission power level of both a traffic channel and a reverse control channel prior to transmission by the subscriber unit, and the gain devices being configured to separately adjust the transmission power level of the traffic channel and the reverse control channel.
  • 36. The CDMA subscriber unit of claim 35 wherein a gain device is configured to adjust a transmission power level of at least one additional traffic channel in response to the received power control bit.
  • 37. The CDMA subscriber unit of claim 35 wherein a gain device is configured to adjust a transmission power level of a reverse channel that is not a traffic or control channel in response to the received power control bit.
  • 38. The CDMA subscriber unit of claim 35 wherein the power control bit has a value of +1 or −1.
  • 39. The CDMA subscriber unit of claim 35 wherein the transmission power levels of the traffic channel and the reverse control channel are established based on a characteristic of the traffic channel with respect to the reverse control channel.
  • 40. The CDMA subscriber unit of claim 35 wherein the reverse control channel carries at least one power command.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation of U.S. patent application Ser. No. 09/833,285, filed Apr. 12, 2001, which is a continuation of U.S. patent application Ser. No. 09/406,162, filed Sep. 27, 1999, now abandoned, which is a continuation of U.S. patent application Ser. No. 08/669,770, filed Jun. 27, 1996, now U.S. Pat. No. 5,991,329, which claims priority from Provisional Patent Application No. 60/000,775, filed Jun. 30, 1995, which applications are incorporated herein by reference.

US Referenced Citations (400)
Number Name Date Kind
3700820 Blasbalg et al. Oct 1972 A
3761610 Krallinger et al. Sep 1973 A
4069392 Goldenberg et al. Jan 1978 A
4156277 Seitz et al. May 1979 A
4292623 Eswaran et al. Sep 1981 A
4320513 Lampert Mar 1982 A
4384307 Kuzmik et al. May 1983 A
4385206 Bradshaw et al. May 1983 A
4403322 Kato et al. Sep 1983 A
4425665 Stauffer Jan 1984 A
4458314 Grimes Jul 1984 A
4480307 Budde et al. Oct 1984 A
4570220 Tetrick et al. Feb 1986 A
4583124 Tsuji et al. Apr 1986 A
4608700 Kirtley, Jr. et al. Aug 1986 A
4630126 Kaku et al. Dec 1986 A
4646232 Chang et al. Feb 1987 A
4667192 Schmid et al. May 1987 A
4675865 DeVries et al. Jun 1987 A
4709343 Van Chang Nov 1987 A
4744079 Csapo et al. May 1988 A
4768145 Wheelwright et al. Aug 1988 A
4785463 Janc et al. Nov 1988 A
4802189 Wedler Jan 1989 A
4811262 White Mar 1989 A
4811421 Havel et al. Mar 1989 A
4862402 Shah et al. Aug 1989 A
4876554 Tubbs Oct 1989 A
4901265 Kerr et al. Feb 1990 A
4901307 Gilhousen et al. Feb 1990 A
4905177 Weaver, Jr. et al. Feb 1990 A
4914574 Terada et al. Apr 1990 A
4926130 Weaver May 1990 A
4928274 Gilhousen et al. May 1990 A
4965533 Gilmore Oct 1990 A
4979170 Gilhousen et al. Dec 1990 A
5017926 Ames et al. May 1991 A
5021891 Lee Jun 1991 A
5022024 Paneth et al. Jun 1991 A
5022049 Abrahamson et al. Jun 1991 A
5027306 Dattorro et al. Jun 1991 A
5028887 Gilmore Jul 1991 A
5050004 Morton, Jr. Sep 1991 A
5056109 Gilhousen et al. Oct 1991 A
5081643 Schilling Jan 1992 A
5084900 Taylor Jan 1992 A
5093840 Schilling Mar 1992 A
5099204 Wheatley, III Mar 1992 A
5101416 Fenton et al. Mar 1992 A
5101501 Gilhousen et al. Mar 1992 A
5103459 Gilhousen et al. Apr 1992 A
5105423 Tanaka et al. Apr 1992 A
5107225 Wheatley et al. Apr 1992 A
5107345 Lee Apr 1992 A
5109390 Gilhousen et al. Apr 1992 A
5113525 Andoh May 1992 A
5115429 Huckyj et al. May 1992 A
5117385 Gee May 1992 A
5126748 Ames et al. Jun 1992 A
5128623 Gilmore Jul 1992 A
5140613 Birgenheier et al. Aug 1992 A
5142278 Moallemi et al. Aug 1992 A
5159283 Jensen Oct 1992 A
5159551 Brunnett et al. Oct 1992 A
5161168 Schilling Nov 1992 A
5166929 Lo Nov 1992 A
5166951 Schilling Nov 1992 A
5166952 Omurg et al. Nov 1992 A
5179571 Schilling Jan 1993 A
5179572 Schilling Jan 1993 A
5193094 Viterbi Mar 1993 A
5199061 Kim Mar 1993 A
5204876 Bruckert et al. Apr 1993 A
5210771 Schaeffer et al. May 1993 A
5216692 Ling Jun 1993 A
5224120 Schilling Jun 1993 A
5228053 Miller et al. Jul 1993 A
5228054 Rueth et al. Jul 1993 A
5228056 Schilling Jul 1993 A
5233630 Wolf Aug 1993 A
5235614 Bruckert et al. Aug 1993 A
5237586 Bottomley Aug 1993 A
5239685 Moe et al. Aug 1993 A
5241690 Larsson et al. Aug 1993 A
5245629 Hall Sep 1993 A
5253268 Omura et al. Oct 1993 A
5253347 Bagnoli et al. Oct 1993 A
5257283 Gilhousen et al. Oct 1993 A
5258940 Coker et al. Nov 1993 A
5260967 Schilling Nov 1993 A
5262974 Hausman et al. Nov 1993 A
5263045 Schilling Nov 1993 A
5265119 Gilhousen et al. Nov 1993 A
5267261 Blakeney, III et al. Nov 1993 A
5267262 Wheatley, III Nov 1993 A
5274474 Medina Dec 1993 A
5274665 Schilling Dec 1993 A
5276261 Mayer et al. Jan 1994 A
5276684 Pearson Jan 1994 A
5276907 Meidan Jan 1994 A
5280472 Gilhousen et al. Jan 1994 A
5283536 Wheatley, III et al. Feb 1994 A
5287299 Lin Feb 1994 A
5287463 Frame et al. Feb 1994 A
5289527 Tiedemann, Jr. Feb 1994 A
5291515 Uchida et al. Mar 1994 A
5295152 Gudmundson et al. Mar 1994 A
5295153 Gudmundson Mar 1994 A
5297161 Ling Mar 1994 A
5297162 Lee et al. Mar 1994 A
5299226 Schilling Mar 1994 A
5299228 Hall Mar 1994 A
5305349 Dent Apr 1994 A
5307405 Sih Apr 1994 A
5309474 Gilhousen et al. May 1994 A
5311459 D'Luna et al. May 1994 A
5316422 Coffman May 1994 A
5321721 Yamaura et al. Jun 1994 A
5327455 DeGaudenzi et al. Jul 1994 A
5327467 DeGaudenzi et al. Jul 1994 A
5329547 Ling et al. Jul 1994 A
5337338 Sutton et al. Aug 1994 A
5339046 Kornfeld et al. Aug 1994 A
5339174 Harris Aug 1994 A
5341396 Higgins et al. Aug 1994 A
5341397 Gudmundson Aug 1994 A
5341427 Hardy et al. Aug 1994 A
5341456 DeJaco Aug 1994 A
5343335 Hara Aug 1994 A
5345467 Lomp et al. Sep 1994 A
5345596 Buchenhorner et al. Sep 1994 A
5345598 Dent Sep 1994 A
5347536 Meehan Sep 1994 A
5349606 Lovell et al. Sep 1994 A
5351134 Yaguchi et al. Sep 1994 A
5351269 Schilling Sep 1994 A
5353302 Bi Oct 1994 A
5353352 Dent et al. Oct 1994 A
5355453 Row et al. Oct 1994 A
5361276 Subramanian Nov 1994 A
5363377 Sharpe Nov 1994 A
5363403 Schilling et al. Nov 1994 A
5365544 Schilling Nov 1994 A
5365585 Puhl et al. Nov 1994 A
5367533 Schilling Nov 1994 A
5373259 Hackman et al. Dec 1994 A
5373502 Turban Dec 1994 A
5377183 Dent Dec 1994 A
5377223 Schilling Dec 1994 A
5379242 Rose et al. Jan 1995 A
5383219 Wheatley, III et al. Jan 1995 A
5386589 Kanai Jan 1995 A
5390207 Fenton et al. Feb 1995 A
5392287 Tiedemann, Jr. et al. Feb 1995 A
D356560 Kornfeld et al. Mar 1995 S
5396516 Padovani et al. Mar 1995 A
5396539 Slekys et al. Mar 1995 A
5398243 Aguilhon et al. Mar 1995 A
5404376 Dent Apr 1995 A
5406559 Edem et al. Apr 1995 A
5406615 Miller, II et al. Apr 1995 A
5408697 Price et al. Apr 1995 A
5410568 Schilling Apr 1995 A
5412686 Ling May 1995 A
5414728 Zehavi May 1995 A
5414729 Fenton May 1995 A
5414732 Kauffman May 1995 A
5414796 Jacobs et al. May 1995 A
5416797 Gilhousen et al. May 1995 A
5418624 Ahmed May 1995 A
5420850 Umeda et al. May 1995 A
5420864 Dahlin et al. May 1995 A
5420896 Schilling May 1995 A
5422908 Schilling Jun 1995 A
5430724 Fall et al. Jul 1995 A
5430760 Dent Jul 1995 A
5440597 Chung et al. Aug 1995 A
5442625 Gitlin et al. Aug 1995 A
5442662 Fukasawa et al. Aug 1995 A
5446683 Mullen et al. Aug 1995 A
5446756 Mallinckrodt Aug 1995 A
5448600 Lucas Sep 1995 A
5454026 Tanaka Sep 1995 A
5459758 Moore Oct 1995 A
5459759 Schilling Oct 1995 A
5461639 Wheatley, III et al. Oct 1995 A
5465399 Oberholtzer et al. Nov 1995 A
5483549 Weinberg et al. Jan 1996 A
5485486 Gilhousen et al. Jan 1996 A
5487089 Misaizu et al. Jan 1996 A
5487180 Ohtake Jan 1996 A
5488629 Takahashi et al. Jan 1996 A
5506864 Schilling Apr 1996 A
5508708 Ghosh et al. Apr 1996 A
5509126 Oprescu et al. Apr 1996 A
5519736 Ishida May 1996 A
5528593 English et al. Jun 1996 A
5528624 Kaku et al. Jun 1996 A
5535238 Schilling et al. Jul 1996 A
5535278 Cahn et al. Jul 1996 A
5541606 Lennen Jul 1996 A
5544156 Teder et al. Aug 1996 A
5544196 Tiedemann, Jr. et al. Aug 1996 A
5546424 Miyake Aug 1996 A
5548613 Kaku et al. Aug 1996 A
5550811 Kaku et al. Aug 1996 A
5559790 Yano et al. Sep 1996 A
5561669 Lenny et al. Oct 1996 A
5563907 Lomp Oct 1996 A
5563912 Yasunaga Oct 1996 A
5566165 Sawahashi et al. Oct 1996 A
5566201 Ostman Oct 1996 A
5568483 Padovani et al. Oct 1996 A
5570349 Bustamante et al. Oct 1996 A
5570353 Keskitalo et al. Oct 1996 A
5574754 Kurihara et al. Nov 1996 A
5574775 Miller, II et al. Nov 1996 A
5574983 Douzono et al. Nov 1996 A
5579374 Doi et al. Nov 1996 A
5581547 Umeda et al. Dec 1996 A
5590409 Sawahashi et al. Dec 1996 A
5594718 Weaver, Jr. et al. Jan 1997 A
5596570 Soliman Jan 1997 A
5602833 Zehavi Feb 1997 A
5603096 Gilhousen et al. Feb 1997 A
5604730 Tiedemann, Jr. Feb 1997 A
5610940 Durrant et al. Mar 1997 A
5613228 Tuttle et al. Mar 1997 A
5619524 Ling et al. Apr 1997 A
5619526 Kim et al. Apr 1997 A
5621416 Lennen Apr 1997 A
5621723 Walton et al. Apr 1997 A
5627835 Witter May 1997 A
5627855 Davidovici May 1997 A
5629955 McDonough May 1997 A
5638362 Dohi et al. Jun 1997 A
5644590 Sugita Jul 1997 A
5652765 Adachi et al. Jul 1997 A
5654980 Latva-aho et al. Aug 1997 A
5657343 Schilling Aug 1997 A
5673259 Quick, Jr. Sep 1997 A
5673286 Lomp Sep 1997 A
5675581 Soliman Oct 1997 A
5689502 Scott Nov 1997 A
5689815 Yamazaki et al. Nov 1997 A
5691974 Zehavi et al. Nov 1997 A
5692008 Van Nee Nov 1997 A
5710768 Ziv et al. Jan 1998 A
5712869 Lee et al. Jan 1998 A
5715526 Weaver et al. Feb 1998 A
5715536 Weaver et al. Feb 1998 A
5722051 Agrawal et al. Feb 1998 A
5745484 Scott Apr 1998 A
5748687 Ozluturk et al. May 1998 A
5754803 Regis May 1998 A
5757767 Zehavi May 1998 A
5764687 Easton Jun 1998 A
5771451 Takai et al. Jun 1998 A
5781584 Zhou et al. Jul 1998 A
5790591 Gold et al. Aug 1998 A
5796776 Lomp et al. Aug 1998 A
5799010 Lomp et al. Aug 1998 A
5802046 Scott Sep 1998 A
5812593 Kaku Sep 1998 A
5812938 Gilhousen et al. Sep 1998 A
5822318 Tiedemann et al. Oct 1998 A
5828662 Jalali et al. Oct 1998 A
5841768 Ozluturk et al. Nov 1998 A
5844935 Shoji Dec 1998 A
5870378 Huang et al. Feb 1999 A
5870427 Tiedemann et al. Feb 1999 A
5872810 Philips et al. Feb 1999 A
5875400 Madhavapeddy et al. Feb 1999 A
5878329 Mallinckrodt Mar 1999 A
5878350 Nakamura et al. Mar 1999 A
5881056 Huang et al. Mar 1999 A
5881368 Grob et al. Mar 1999 A
5884187 Ziv et al. Mar 1999 A
5884196 Lekven et al. Mar 1999 A
5896368 Dahlman et al. Apr 1999 A
5898665 Sawahashi et al. Apr 1999 A
5912919 Lomp et al. Jun 1999 A
5926501 Souissi et al. Jul 1999 A
5933781 Willenegger et al. Aug 1999 A
5940382 Haim Aug 1999 A
5940771 Gollnick et al. Aug 1999 A
5943361 Gilhousen et al. Aug 1999 A
5953346 Luddy Sep 1999 A
5959080 Scott Sep 1999 A
5959980 Scott Sep 1999 A
5966403 Pon Oct 1999 A
5991329 Lomp et al. Nov 1999 A
5991332 Lomp et al. Nov 1999 A
6018528 Gitlin et al. Jan 2000 A
6021123 Mimura Feb 2000 A
6038577 Burshtein Mar 2000 A
6049535 Ozluturk et al. Apr 2000 A
6072787 Hamalainen et al. Jun 2000 A
6088335 I et al. Jul 2000 A
6104748 Kaku Aug 2000 A
6108537 Comer et al. Aug 2000 A
6122292 Watanabe et al. Sep 2000 A
6141374 Burns Oct 2000 A
6157619 Ozluturk et al. Dec 2000 A
6181949 Ozluturk et al. Jan 2001 B1
6212174 Lomp et al. Apr 2001 B1
6212399 Kumar et al. Apr 2001 B1
6215778 Lomp et al. Apr 2001 B1
6226316 Schilling et al. May 2001 B1
6229843 Lomp et al. May 2001 B1
6252866 Haim Jun 2001 B1
6269113 Park Jul 2001 B1
6272168 Lomp et al. Aug 2001 B1
6286040 Durham et al. Sep 2001 B1
6289040 Molev-Shteiman Sep 2001 B1
6292519 Popovic Sep 2001 B1
6335924 Yano et al. Jan 2002 B1
6347083 Nishino Feb 2002 B1
6356555 Rakib et al. Mar 2002 B1
6381264 Lomp et al. Apr 2002 B1
6393049 Davidovici et al. May 2002 B1
6396867 Tiedemann et al. May 2002 B1
6396897 Ebrahimifard et al. May 2002 B1
6397070 Black May 2002 B1
6405272 Regis Jun 2002 B1
6434124 Rege Aug 2002 B1
6438119 Kim et al. Aug 2002 B1
6456608 Lomp Sep 2002 B1
6463295 Yun Oct 2002 B1
6473447 Strich et al. Oct 2002 B1
6487190 Regis Nov 2002 B1
6490462 Ozluturk et al. Dec 2002 B2
6493563 Ozluturk et al. Dec 2002 B1
6507745 Ozluturk et al. Jan 2003 B2
6510148 Honkasalo Jan 2003 B1
6519277 Eidson Feb 2003 B2
6519461 Andersson et al. Feb 2003 B1
6549565 Buehrer et al. Apr 2003 B1
6571105 Ozluturk et al. May 2003 B2
6577876 Ozluturk et al. Jun 2003 B2
6587447 Wang et al. Jul 2003 B1
6590883 Kitade et al. Jul 2003 B1
6590889 Preuss et al. Jul 2003 B1
6606503 Ozluturk et al. Aug 2003 B2
6608825 Luddy Aug 2003 B1
6633600 Lomp et al. Oct 2003 B2
6654613 Maeng et al. Nov 2003 B1
6671266 Moon et al. Dec 2003 B1
6674788 Lomp et al. Jan 2004 B2
6674791 Lomp et al. Jan 2004 B2
6697350 Lomp Feb 2004 B2
6707805 Ozluturk et al. Mar 2004 B2
6708041 Butovitsch et al. Mar 2004 B1
6721301 Ozluturk et al. Apr 2004 B2
RE38523 Ozluturk Jun 2004 E
6744809 Lomp et al. Jun 2004 B2
6760321 Shamsunder Jul 2004 B2
6763244 Chen et al. Jul 2004 B2
6778551 Magnus et al. Aug 2004 B1
6778840 Ozluturk et al. Aug 2004 B2
6788662 Ozluturk et al. Sep 2004 B2
6801516 Lomp et al. Oct 2004 B1
6816473 Ozluturk et al. Nov 2004 B2
6831905 Lomp et al. Dec 2004 B1
6839567 Ozluturk et al. Jan 2005 B2
6847821 Lewis et al. Jan 2005 B1
6853675 Oleynik Feb 2005 B1
6865168 Sekine Mar 2005 B1
6873645 Lomp et al. Mar 2005 B2
6879841 Ozluturk et al. Apr 2005 B2
6885652 Ozukturk et al. Apr 2005 B1
6904294 Ozluturk et al. Jun 2005 B2
6940840 Ozluturk et al. Sep 2005 B2
6983009 Lomp Jan 2006 B2
6985467 Lomp et al. Jan 2006 B2
7020111 Ozluturk et al. Mar 2006 B2
7072380 Ozluturk et al. Jul 2006 B2
7117004 Ozluturk et al. Oct 2006 B2
7123600 Ozluturk et al. Oct 2006 B2
7190966 Ozluturk et al. Mar 2007 B2
20010038630 Tong et al. Nov 2001 A1
20020051434 Ozluturk et al. May 2002 A1
20020057659 Ozluturk et al. May 2002 A1
20020101832 Chen et al. Aug 2002 A1
20020118653 Lomp et al. Aug 2002 A1
20030190925 Ozluturk et al. Oct 2003 A1
20030193914 Lomp et al. Oct 2003 A1
20040005020 Dent Jan 2004 A1
20040071198 Lomp et al. Apr 2004 A1
20040165654 Lomp et al. Aug 2004 A1
20040252668 Ozluturk et al. Dec 2004 A1
20050002348 Holtzman et al. Jan 2005 A1
20050094604 Ozluturk et al. May 2005 A1
20050243897 Lomp et al. Nov 2005 A1
20050249165 Ozluturk et al. Nov 2005 A1
20050254478 Ozluturk et al. Nov 2005 A1
20050265430 Ozluturk et al. Dec 2005 A1
20060088134 Gilhousen et al. Apr 2006 A1
20060098759 Tiedemann, Jr. et al. May 2006 A1
20070002934 Schilling Jan 2007 A1
Foreign Referenced Citations (99)
Number Date Country
3743731 Jul 1989 DE
3743731 Jul 1989 DE
3743732 Jul 1989 DE
3743732 Jul 1989 DE
0022170 Jan 1981 EP
0372350 Jun 1990 EP
0462572 Dec 1991 EP
0462572 Dec 1991 EP
0464839 Jan 1992 EP
0464839 Jan 1992 EP
0476215 Mar 1992 EP
0515335 May 1992 EP
0505341 Jun 1992 EP
0505341 Sep 1992 EP
0525860 Feb 1993 EP
0526106 Feb 1993 EP
0526106 Feb 1993 EP
0565507 Oct 1993 EP
0615395 Mar 1994 EP
0615395 Sep 1994 EP
0631397 Dec 1994 EP
0631397 Dec 1994 EP
0637179 Feb 1995 EP
0637179 Feb 1995 EP
0654913 May 1995 EP
0654913 May 1995 EP
0682423 May 1995 EP
0656716 Jun 1995 EP
0656716 Jun 1995 EP
0668662 Aug 1995 EP
0668662 Aug 1995 EP
0682423 Nov 1995 EP
0744876 Nov 1996 EP
2280575 Feb 1995 GB
2301746 Dec 1996 GB
H6104829 Jan 1986 JP
62256516 Nov 1987 JP
S62-256516 Nov 1987 JP
S63-198423 Aug 1988 JP
S63198423 Aug 1988 JP
H01-124730 Aug 1989 JP
02256331 Oct 1990 JP
H02-256331 Oct 1990 JP
H02-287874 Nov 1990 JP
H2287874 Nov 1990 JP
H03-040535 Feb 1991 JP
H04-222111 Aug 1992 JP
H4222111 Aug 1992 JP
H04-287593 Oct 1992 JP
H4287593 Oct 1992 JP
H05-022285 Jan 1993 JP
H05-083381 Apr 1993 JP
H583381 Apr 1993 JP
H05-129969 May 1993 JP
H05-144128 Jun 1993 JP
H5144128 Jun 1993 JP
5-227124 Sep 1993 JP
H05-244056 Sep 1993 JP
H05-300077 Nov 1993 JP
H06-006374 Jan 1994 JP
H66374 Jan 1994 JP
H06-104694 Apr 1994 JP
H06-104829 Apr 1994 JP
H06-120865 Apr 1994 JP
H6104694 Apr 1994 JP
H06-276176 Sep 1994 JP
H06-343068 Dec 1994 JP
H07-046180 Feb 1995 JP
H07-050631 Feb 1995 JP
H07-058665 Mar 1995 JP
H07-079477 Mar 1995 JP
H758665 Mar 1995 JP
H07-095151 Apr 1995 JP
H07-107007 Apr 1995 JP
H07-273600 Oct 1995 JP
H7273600 Oct 1995 JP
H6104829 Jan 1996 JP
S63198423 Aug 1998 JP
S631958423 Aug 1998 JP
9013942 Nov 1990 WO
9200639 Jan 1992 WO
9221196 Nov 1992 WO
9307702 Apr 1993 WO
WO9307702 Apr 1993 WO
9309626 May 1993 WO
9314588 Jul 1993 WO
9416513 Jul 1994 WO
9428640 Dec 1994 WO
9503652 Feb 1995 WO
WO9503652 Feb 1995 WO
9507578 Mar 1995 WO
9508876 Mar 1995 WO
WO9507578 Mar 1995 WO
9512257 May 1995 WO
9515038 Jun 1995 WO
9702665 Jan 1997 WO
9702675 Jan 1997 WO
WO9702665 Jan 1997 WO
9707600 Feb 1997 WO
Related Publications (1)
Number Date Country
20020118653 A1 Aug 2002 US
Provisional Applications (1)
Number Date Country
60000775 Jun 1995 US
Continuations (3)
Number Date Country
Parent 09833285 Apr 2001 US
Child 10084007 US
Parent 09406162 Sep 1999 US
Child 09833285 US
Parent 08669770 Jun 1996 US
Child 09406162 US