Title of Invention

"WEIGHTED OPEN LOOP POWER CONTROL IN A TIME DIVISION DUPLEX COMMUNICATION SYSTEM"

Abstract The invention controls transmission power levels in a spread spectrum time division duplex communication station. A first communication station transmits a communication to a second communication station. The second station receives the communication and measures its received power level. Based on, in part, the received communication's power level and the communication's transmission power level, a path loss estimate is determined. A quality of the path loss estimate is also determined. The transmission power level for a communication from the second station to the first station is based on, in part, weighting the path loss estimate in response to the estimate's quality.
Full Text Background
This invention generally relates to spread spectrum time division duplex (TDD) communication systems. More particularly, the present invention relates to a system and method for controlling transmission power within TDD communication systems.
Figure 1 depicts a wireless spread spectrum time division duplex (TDD) communication system. The system has a plurality of base stations 30|-307. Each base station 30| communicates with user equipments (UEs) 321-323 in its operating area. Communications transmitted from a base station 30| to a UE 32! are referred to as downlink communications and communications transmitted from a UE 32i to a base station 30] are referred to as uplink communications.
In addition to communicating over different frequency spectrums, spread spectrum TDD systems carry multiple communications over the same spectrum. The multiple signals are distinguished by their respective chip code sequences (codes). Also, to more efficiently use the spread spectrum, TDD systems as illustrated in Figure 2 use repeating frames 34 divided into a number of time slots 36-36,, such as fifteen time slots. In such systems, a communication is sent in selected time slots 36i-36n using selected codes. Accordingly, one frame 34 is capable of carrying multiple communications distinguished by both time slot 36r36n and code. The use of a single code in a single time slot is referred to as a resource unit.
Based on the bandwidth required to support a communication, one or multiple resource units are assigned to that communication.
Most TDD systems adaptively control transmission power levels. In a TDD system, many communications may share the same time slot and spectrum. When UE 32| or base station 30i is receiving a specific communication, all the other communications using the same time slot and spectrum cause interference to the specific communication. Increasing the transmission power level of one communication degrades the signal quality of all other communications within that time slot and spectrum. However, reducing the transmission power level too far results in undesirable signal to noise ratios (SNRs) and bit error rates (BERs) at the receivers. To maintain both the signal quality of communications and low transmission power levels, transmission power control is used.
One approach using transmission power control in a code division multiple access (CDMA) communication system is described in U.S. Patent No. 5,056,109 (Gilhousen et al.). A transmitter sends a communication to a particular receiver. Upon reception, the received signal power is measured. The received signal power is compared to a desired received signal power. Based on the comparison, a control bit is sent to the transmitter either increasing or decreasing transmission power by a fixed amount. Since the receiver sends a control signal to the transmitter to control the transmitter's power level, such power control techniques are commonly referred to as closed loop.
Under certain conditions, the performance of closed loop systems degrades. For instance, if communications sent between a UE 32]
and a base station 30i are in a highly dynamic environment, such as due to the UE 32\ moving, such systems may not be able to adapt fast enough to compensate for the changes. The update rate of closed loop power control in a typical TDD system is 100 cycles per second which is not sufficient for fast fading channels.
EPO 462 952 A discloses a method for regulating or adjusting transmission power for signals between a mobile station and a base station in a digital mobile telephony system. To determine the transmission power level, the mean values of the signal strength and signal transmission quality are determined. Based on the mean values, an anticipated signal strength and signal quality are calculated for a subsequent time period, assuming the transmission power is maintained unchanged. The transmission power level at the subsequent time period is adjusted based on the anticipated values.
WO 98 45962 A discloses a method for controlling a transmission power level of a mobile terminal in a satellite communication system. The power control method has both a closed-loop and an open-loop element. For the closed-loop element, the base station calculates the mobile terminal's power setting based on the strength of the signals received from the mobile terminal. The base station takes into account the propagation delays of the satellite system in the power setting determination. For the open-loop element, the strength of the received signal from the base station in each frame is compared to the strength of the signal received the previous frame. The transmit power of the mobile terminal is adjusted inversely with the variations in the observed signal strength.
The prior arts in the field do not address the issues related to the signal quality and transmission power levels. Accordingly, there is a need for alternate approaches to maintain signal quality and low transmission power levels.
Summary of the Invention
The invention controls transmission power levels in a spread spectrum time division duplex communication station. A first communication station transmits a communication to a second communication station. The second station receives the communication and measures its received power level. Based on, in part, the received communication's power level and the communication's transmission power level, a path loss estimate is determined. The transmission power level for a communication from the second station to the first station is set based on, in part, weighting the path loss estimate and a long term path loss estimate.
Statement of Invention
A time division duplex/code division multiple access user equipment comprises a pathless estimation device for determining a pathless estimate, a transmit power calculation device for determining a long term average of pathloss estimates, multiplying a first weighting factor, a, by the determined pathloss estimate, producing a weighted pathloss estimate, multiplying (1-a) to the determined long term average of pathloss estimates to produce a weighted long term pathloss estimate, and determining a transmission power level of the time division duplex/code division multiple access user equipment by adding the weighted pathloss estimate to the weighted long term pathloss estimate to a measured interference level to a target signal to interference ratio to a constant value.
Brief Description of The Accompanying Drawings
Figure 1 illustrates a prior art TDD system.
Figure 2 illustrates time slots in repeating frames of a TDD system.
Figure 3 is a flow chart of weighted open loop power control.
Figure 4 is a diagram of components of two communication
stations using weighted open loop power control.
Figure 5 depicts a graph of the performance of a weighted open
loop, open loop and closed loop power control system for a UE
moving at 30 kilometers per hour (km/h).
Figure 6 depicts a graph of the three systems' performance for a UE
moving at 60 km/h.
Detailed Description of The Preferred Embodiments
The preferred embodiments will be described with reference to the drawing figures where like numerals represent like elements throughout. Weighted open loop power control will be explained using the flow chart of Figure 3 and the components of two simplified communication stations 110, 112 as shown in Figure 4. For the following discussion, the communication station having its transmitter's power controlled is referred to as the transmitting station 112 and the communication station receiving power controlled communications is referred to as-the receiving station 110. Since weighted open loop power control may be used for uplink, downlink or both types of communications, the transmitter having its power controlled may be located at a base station 30i, UE 32i or both. Accordingly, if both uplink and downlink power control are used, the receiving and transmitting station's components are located at both the base station 301 and UE 321.
For use in estimating the path loss between the receiving and transmitting stations 110, 112, the receiving station 110 sends a communication to the transmitting station 112. The communication may be sent on anyone of various channels. Typically, in a TDD system, the channels used for estimating path loss are referred to as reference channels, although other channels may be used. If the receiving station 110 is abase station 30], the communication is preferably sent over a downlink common channel or a Common Control Physical Channel (CCPCH).
Data to be communicated to the transmitting station 112 over the reference channel is referred to as reference channel data. The reference channel data is generated by a reference channel data generator 56. The reference data is assigned one or multiple resource units based on the communication's bandwidth requirements. A spreading and training sequence insertion device 58 spreads the reference channel data and makes the spread reference data time-multiplexed with a training sequence in the appropriate time slots and codes of the assigned resource units. The resulting sequence is referred to as a communication burst. The communication burst is subsequently amplified by an amplifier 60. The amplified communication burst may be summed by a sum device 62 with any other communication burst created through devices, such as a data generator 50, spreading and training sequence insertion device 52 and amplifier 54. The summed communication bursts are modulated by a modulator 64. The modulated signal is 20 passed though an isolator 66 and radiated by an antenna 78 as shown or, alternately, through an antenna array, step 38. The radiated signal is passed though a wireless radio channel 80 to an antenna 82 of the transmitting station 112. The type of modulation used for the transmitted communication
can be any of those known to those skilled in the art, such as direct phase shift keying (DPSK) or quadrature phase shift keying (QPSK).
The antenna 82 or, alternately, antenna array of the transmitting station 112 receives various radio frequency signals. The received signals are passed through an isolator 84 to a demodulator 86 to produce a baseband signal. The baseband signal is processed, such as by a channel estimation device 88 and a data estimation device 90, in the time slots and with the appropriate codes assigned to the communication's burst. The channel estimation device commonly uses the training sequence component in the baseband signal to provide channel information, such as channel impulse responses. The channel information is used by the data estimation device 90 and a power measurement device 92. The power level of the processed communication corresponding to the reference channel, RTS is measured by the power measurement device 92 and sent to a pathloss estimation device 94, step 40. The channel estimation device 88 is capable of separating the reference channel from all other channels. If an automatic gain control device or amplifier is used for processing the received signals, the measured power level is adjusted to correct for the gain of these devices at either the power measurement device 92 or the pathloss estimation device 94.
To determine the path loss, L, the transmitting station 112 also requires the communication's transmitted power level, TRS The transmitted power level, TRS may be sent along with the communication's data or in a signaling channel. If the power level, TRS is sent along with the communication's data, the data estimation device 90 interprets the power level and sends the interpreted power level to the pathloss estimation device 94. If the
receiving station 110 is a base station 30i, preferably the transmitted power level, TRS is sent via the broadcast channel (BCH) from the base station 30(. By subtracting the received communication's power level, Rs in dB, from the sent communication's transmitted power level, TRS in dB, the pathless estimation device 94 estimates the path loss, L, between the two stations 110, 112, step 42. Additionally, along term average of the pathloss, L0, is updated, step 44. In certain situations, instead of transmitting the transmitted power level, TRS, the receiving station 110 may transmit a reference for the transmitted power level. In that case, the pathloss estimation device 94 provides reference levels for the path loss, L, and the long term average of the path loss, L0.
Since TDD systems transmit downlink and uplink communications in the same frequency spectrum, the conditions these communications experience are similar. This phenomenon is referred to as reciprocity. Due to reciprocity, the path loss experienced for the downlink will also be experienced for the uplink and vice versa. By adding the estimated path loss to a desired received power level, a transmission power level for a communication from the transmitting station 112 to the receiving station 110 is determined. This power control technique is referred to as open loop power control.
Open loop systems have drawbacks. If a time delay exists between the estimated path loss and the transmitted communication, the path loss experienced by the transmitted communication may differ from the calculated loss. In TDD where communications are sent in differing time slots 36i-36n, the time slot delay between received and transmitted communications may degrade the performance of
an open loop power control system. To overcome these drawbacks, a quality measurement device 96 in a weighted open loop power controller 100 determines quality of the estimated path loss, step 46. The quality measurement device 96 also weights the estimated path loss, L, and long term average of the pathless, L0, to set the transmit power level by transmit power calculation device 98, step 48. As illustrated in Figure 4, the weighted open loop power controller 100 consists of the power measurement device 92, pathless estimation device 94, quality measurement device 96, and transmit power calculation device 98.
The following is one of the preferred weighted open loop power control algorithms. The transmitting station's power level in decibels, PTS, is determined using Equation 1.
(Equation Removed)
PRS is the power level that the receiving station 110 desires to receive the transmitting station's communication in dB. PRS is determined by the desired SIR, SIR.TARGET, at the receiving station 110 and the interference level, IRS, at the receiving station 110.
To determine the interference level, IRS. at the receiving station, received communications from the transmitting station 112 are demodulated by a demodulator 68. The resulting baseband signal is processed, such as by a channel estimation device 70 and a data estimator device 72 in the time slots and with the appropriate codes assigned the transmitting station's communications. The channel information produced by the channel estimation device 70 is used by an interference measurement device 74 to determine the interference level, IRS. The channel information may also be used
to control the transmit power level of the receiving station 110. The channel information is input to a data estimation device 72 and a transmit power calculation device 76. The data estimation produced the data estimation device 72 is used with the channel information by the transmit power calculation device 76 to control the amplifier 54 which, controls the receiving station's transmit power level.
IRS is determined using Equation 2.
(Equation Removed)
SIRS is either signaled or broadcasted from the receiving station 110 to the transmitting station 112. For downlink power control, SITARGET is known at the transmitting station 112. For uplink power control, SRTARGET is signaled from the receiving station 110 to the transmitting station 112. Using Equation 2, Equation 1 is rewritten as either Equations 3 or 4. PTS = SIRTARGET +!RS + a (L-(Equation Removed)
(Equation Removed)
L is the path loss estimate in decibels, T Rs -Rrs for the most recent time slot 36i-36n that the path loss was estimated. The long term average of the pathloss, L0, is a running average of the path loss estimates L. The CONSTANT VALUE is a correction term. The CONSTANT VALUE corrects for differences in the uplink and downlink channels, such as to compensate for differences in uplink and downlink gain. Additionally, the CONSTANT VALUE may provide correction if the transmit power reference level of the receiving station is transmitted instead of the actual transmit power, TRS If the receiving station is a base, station 30], the CONSTANT VALUE is preferably sent via Layer 3 signaling. If the receiving
station is a base station 30,, the CONSTANT VALUE is preferably sent via Layer 3 signaling.
The weighting value, a determined by the quality measurement device 94, is a measure of the quality of the estimated path loss and is, preferably, based on the number of time slots 36i-36n between the time slot, n, of the last path loss estimate and the first time slot of the communication transmitted by the transmitting station 112. The value of a is from zero to one. Generally, if the time difference between the time slots is small, the recent path loss estimate will be fairly accurate and a is set at a value close to one. By contrast, if the time difference is large, the path loss estimate may not be accurate and the long term average path loss measurement is most likely a better estimate for the path loss. Accordingly, a is set at a value closer to zero.
Equation 5 is one equation for determining a , although others may be used.
(Equation Removed)
The value, D, is the number of time slots 36i-36n between the time slot of the last path loss estimate and the first time slot of the transmitted communication which will be referred to as the time slot delay. If the delay is one time slot, a is one. Dmax is the maximal possible delay. A typical value for a frame having fifteen time slots is six. If the delay is Dmax or greater, a approaches zero. Using the transmit power level, PTS determined by a transmit power calculation device 98, the weighted open loop power controller 100 sets the transmit power of the transmitted communication, step 48.
Data to be transmitted in a communication from the transmitting station 112 is produced by a data generator 102. The communication data is spread and time-multiplexed with a training sequence by the spreading and training sequence insertion device 104 in the appropriate time slots and codes of the assigned resource units. The spread signal is amplified by the amplifier 106 and modulated by the modulator 108 to radio frequency.
The weighted open loop power controller 100 controls the gain of the amplifier 106 to achieve the determined transmit power level, PTS for the communication. The communication is passed through the isolator 84 and radiated by the antenna 82.
Figures 5 and 6 depict graphs 82, 84 illustrating the performance of a weighted open loop system using Equation 4. Equation 5 is used to calculate a. These graphs 82, 84 depict the results of simulations comparing the performance of a weighted open loop, an open loop and a closed loop system controlling the transmission power level of the transmitting station 112. The simulations address the performance of these systems in a fast fading channel under steady-state conditions. In this example, the receiving station is a base station 30] and the transmitting station is a UE 32|. For the simulation, the UE 32\ was a mobile station. The simulated base station 30] used two antenna diversity for reception with each antenna having a three finger RAKE receiver. The simulation approximated a realistic channel and SIR estimation based on a midamble sequence of burst type 1 field in the presence of additive white Gaussian noise (A WGN). The simulation used an International Telecommunication Union (ITU) Pedestrian B type channel and QPSK modulation. Interference levels were assumed to be accurately known with no uncertainty. Channel coding
schemes were not considered. The CONSTANT VALUE and L0 were set at 0 db.
For each of the power control techniques, Figure 5, graph 82 shows the energy for a transmitted complex symbol in decibels (Es/No) required to maintain a BER of 1% for various time slot delays, D, with the UE 32\ moving at 30 kilometers per hour (km/h). As shown, at lower time slot delays, both weighted open loop and open loop outperform closed loop. For higher time slot delays, weighted open loop outperforms both open loop and closed Joop. As shown in Figure 6, graph 84, similar results occur if the UE 321 is traveling at 60 km/h. (Equation Removed)




4. We Claim:
1. A time division duplex/code division multiple access user equipment [32]
comprising:
means for measuring an interference level;
means [42] for determining a pathloss estimate;
means [44] for determining a long term average of pathloss estimates; and
means for multiplying a first weighting factor, a, by the determined pathloss estimate, producing a weighted pathloss estimate;
means for multiplying (1-a) to the determined long term average of pathloss estimates, producing a weighted long term pathloss estimate; and
means for determining a transmission power level of the user equipment [32] by adding the weighted pathloss estimate to the weighted long term pathloss estimate to the measured interference level to a target signal to interference ratio to a constant value.
2. The time division duplex/code division multiple access user equipment
[32] of claim 4 wherein the first weighting factor represents a quality of the pathloss
estimate [42].
3. The time division duplex/code division multiple access user equipment
[32] of claim 1 wherein the determination of pathloss estimate is obtained by subtracting
a received power level from a transmit power level signaled on a broadcast channel.
4. The time division duplex/code division multiple access user equipment as
described herein and supported by the drawing figures.

Documents:

in-pct-2001-00739-del-abstract.pdf

in-pct-2001-00739-del-assignment.pdf

in-pct-2001-00739-del-claims.pdf

IN-PCT-2001-00739-DEL-Correspondence Others-(29-04-2011).pdf

in-pct-2001-00739-del-correspondence-others.pdf

in-pct-2001-00739-del-correspondence-po.pdf

in-pct-2001-00739-del-description (complete).pdf

in-pct-2001-00739-del-drawings.pdf

in-pct-2001-00739-del-form-1.pdf

in-pct-2001-00739-del-form-13.pdf

in-pct-2001-00739-del-form-19.pdf

in-pct-2001-00739-del-form-2.pdf

in-pct-2001-00739-del-form-26.pdf

IN-PCT-2001-00739-DEL-Form-27-(29-04-2011).pdf

in-pct-2001-00739-del-form-3.pdf

in-pct-2001-00739-del-form-5.pdf

in-pct-2001-00739-del-pct-101.pdf

in-pct-2001-00739-del-pct-210.pdf

in-pct-2001-00739-del-pct-220.pdf

in-pct-2001-00739-del-pct-401.pdf

in-pct-2001-00739-del-pct-408.pdf

in-pct-2001-00739-del-pct-409.pdf

in-pct-2001-00739-del-pct-416.pdf

in-pct-2001-00739-del-pct-901.pdf

IN-PCT-2001-00739-DEL-Petition-137-(29-04-2011).pdf

in-pct-2001-00739-del-petition-138.pdf

in-pct-2001-739-del-Correspondence-Others-(31-03-2010).pdf

in-pct-2001-739-del-Petition 138-(31-03-2010).pdf


Patent Number 210178
Indian Patent Application Number IN/PCT/2001/00739/DEL
PG Journal Number 40/2007
Publication Date 05-Oct-2007
Grant Date 25-Sep-2007
Date of Filing 21-Aug-2001
Name of Patentee INTERDIGITAL TECHNOLOGY CORPORATION
Applicant Address 3411 SILVERSIDE ROAD, CONCORD PLAZA, SUITE 105, HAGLEY BUILDING, WILMINGTON, DE 19810, U.S.A.
Inventors:
# Inventor's Name Inventor's Address
1 ZEIRA, ARIELA 8, OLD OAK ROAD, TRUMBALL, CT 06611, U.S.A.
2 SHIN, SUNG - HYUK 1531, 8TH STREET, FORT LEE, NJ 07024.
PCT International Classification Number H04B 7/212
PCT International Application Number PCT/US00/07477
PCT International Filing date 2000-03-22
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 60/125,417 1999-03-22 U.S.A.
2 60/136,557 1999-05-26 U.S.A.
3 60/136,556 1999-05-28 U.S.A.