WO2000022746A1 - A cdma receiver that shares a tracking device among multiple rake branches - Google Patents

A cdma receiver that shares a tracking device among multiple rake branches Download PDF

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Publication number
WO2000022746A1
WO2000022746A1 PCT/SE1999/001844 SE9901844W WO0022746A1 WO 2000022746 A1 WO2000022746 A1 WO 2000022746A1 SE 9901844 W SE9901844 W SE 9901844W WO 0022746 A1 WO0022746 A1 WO 0022746A1
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WO
WIPO (PCT)
Prior art keywords
tracking device
rake branches
cdma
tracking
cdma receiver
Prior art date
Application number
PCT/SE1999/001844
Other languages
French (fr)
Inventor
Göran KLANG
Per Konradsson
Original Assignee
Telefonaktiebolaget Lm Ericsson (Publ)
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Telefonaktiebolaget Lm Ericsson (Publ) filed Critical Telefonaktiebolaget Lm Ericsson (Publ)
Priority to EP99956456A priority Critical patent/EP1121767B1/en
Priority to CA002345699A priority patent/CA2345699C/en
Priority to KR1020017004615A priority patent/KR20010080123A/en
Priority to DE69937838T priority patent/DE69937838T2/en
Priority to AU13064/00A priority patent/AU1306400A/en
Priority to JP2000576554A priority patent/JP4280423B2/en
Publication of WO2000022746A1 publication Critical patent/WO2000022746A1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/69Spread spectrum techniques
    • H04B1/707Spread spectrum techniques using direct sequence modulation
    • H04B1/7073Synchronisation aspects
    • H04B1/7085Synchronisation aspects using a code tracking loop, e.g. a delay-locked loop
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/69Spread spectrum techniques
    • H04B1/707Spread spectrum techniques using direct sequence modulation
    • H04B1/7097Interference-related aspects
    • H04B1/711Interference-related aspects the interference being multi-path interference
    • H04B1/7115Constructive combining of multi-path signals, i.e. RAKE receivers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/69Spread spectrum techniques
    • H04B1/707Spread spectrum techniques using direct sequence modulation
    • H04B1/7097Interference-related aspects
    • H04B1/711Interference-related aspects the interference being multi-path interference
    • H04B1/7113Determination of path profile
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/69Spread spectrum techniques
    • H04B1/707Spread spectrum techniques using direct sequence modulation
    • H04B1/7097Interference-related aspects
    • H04B1/711Interference-related aspects the interference being multi-path interference
    • H04B1/7115Constructive combining of multi-path signals, i.e. RAKE receivers
    • H04B1/7117Selection, re-selection, allocation or re-allocation of paths to fingers, e.g. timing offset control of allocated fingers

Definitions

  • the present invention relates to a method and apparatus for estimating multi- path radio signal transmission delays, and more particularly to a method and apparatus for tracking multi-path signal delays in telecommunications systems that use direct sequence spread spectrum techniques.
  • FDMA frequency division-multiple-access
  • TDMA time-division- multiple-access
  • SS spread spectrum
  • CDMA code-division-multiple-access
  • JSTD-008 code-division-multiple-access
  • DS-SS direct sequence spread spectrum
  • information symbols are represented by sequences of symbols referred to as chips. This spreads the information symbols in the frequency band.
  • correlations to the chip sequences are used to recover the information symbols.
  • Spreading allows the system to operate at a low chip signal-to-noise ratio (SNR). By choosing spreading codes with good auto- and cross-correlation properties cross talk between different users can be kept at a low level allowing multiple user signals to occupy the same bandwidth at the same time.
  • SNR chip signal-to-noise ratio
  • the radio signal is reflected and scattered off of various objects, giving rise to multi-path propagation.
  • multiple images of the signal arrive at the receive antenna.
  • these images have roughly the same delay, relative to the chip period, they give rise to fading. Fading occurs because the images add sometimes constructively, and sometimes destructively.
  • these images arrive with different delays relative to the chip period, they can be viewed as echoes of the signal and are often referred to as "resolvable multi-paths," "rays,” or simply "multi-paths.
  • the receiver should exploit the multi- path fading channel by collecting signal energy from the different multi-paths.
  • a RAKE receiver which individually detects each echo signal using a correlation method, corrects for different time delays, and combines the detected echo signals coherently.
  • the RAKE receiver includes a number of processing RAKE branches or "fingers. " Using a delay searcher, the receiver searches for delays of the multi-paths and assigns an estimated delay to each one of the RAKE branches. Each RAKE branch then despreads the signal received over a path with a corresponding delay. The RAKE branch outputs are RAKE combined by weighting them and adding them together.
  • the delay estimation procedure must be able to track the multi-path delays.
  • RAKE branches are equipped with corresponding tracking devices, which employs delay tracking techniques, such as the early/late gate (ELG) and tau-dither techniques.
  • ELG early/late gate
  • tau-dither techniques With these delay tracking techniques, the signal energy is measured slightly before and slightly after the estimated delay. When the estimated delay is correct, then the early and late measurements should be approximately equal, as the chip pulse waveform falls off symmetrically about its peak. When an imbalance is detected, the delay estimate is adjusted to restore balance.
  • ELG technique is implemented using two independent correlation receivers, an early correlation receiver and a late correlation receiver.
  • Each correlation receiver works with a spreading code, also known as pseudo-noise (PN) code, that is shifted plus and minus a fraction k of the chip period T c relative to the estimated delay used by the RAKE branch.
  • PN pseudo-noise
  • the estimated received power from the early and late correlation receivers are compared, usually low-pass filtered, and used to control the phase of a local PN code generator.
  • each RAKE branch has a dedicated tracking device. Because of the signal processing requirement, the implementation of a dedicated tracking device for each RAKE branch significantly complicates the hardware design of the CDMA receiver. For example, implementation of dedicated ELGs, each having two correlation receivers, for each one of the RAKE branches, requires twice as many ELG correlation receivers as data demodulating correlator receivers. In addition to complex hardware requirement, the implementation of dedicated tracking devices also increases the CDMA receiver's power consumption. Therefore, there exists a need to reduce hardware complexity and power consumption of the CDMA receivers that utilize tracking RAKE receivers.
  • the present invention reduces the hardware complexity of a CDMA receiver by sharing a tracking device among a number of RAKE branches.
  • the CDMA receiver of the present invention includes a plurality of RAKE branches for despreading the received CDMA signals over a corresponding plurality of multi-paths. According to the present invention, a single tracking device is shared among the plurality of the
  • the single tracking device tracks the delays of the received CDMA signal over a corresponding path.
  • a method for tracking a CDMA signal according to the present invention correlates the received signals over the multi-paths with corresponding local PN codes using a plurality of RAKE branches and tracks the received signal using a single tracking device that is shared among the plurality of the RAKE branches.
  • FIG. 1 is a block diagram of a communication system that incorporates the present invention.
  • FIG. 2 is a block diagram of a baseband processor according to the present invention.
  • the communication system 10 which in the exemplary embodiment of the invention is a DS-SS communication system, includes a DS-SS transmitter 12 that transmits a DS-SS signal 14 through a multi-path fading channel having an assumed number of (M) paths.
  • a receiver 16 having an RF section 18 and a baseband processor 20 receives the DS-SS signal 14 along the M paths.
  • the RF section 18 amplifies, filters, and mixes the DS-SS signal 14 down to a baseband frequency, typically centered around 0 Hz.
  • the down- converted signal is also sampled and quantized, producing data samples that are representative of the modulated signal.
  • the signal may be sampled using a sampling period of T samp that provides a predefined number of samples during each chip period T c corresponding to the required synchronization accuracy of the receiver.
  • T samp a sampling period of T samp that provides a predefined number of samples during each chip period T c corresponding to the required synchronization accuracy of the receiver.
  • the sampling rate is equal to n samples per chip.
  • the baseband processor 20 includes a delay searcher 22, a plurality (L) of RAKE branches 24, and a single tracking device 26. It should be noted that there is no requirement for the number of RAKE branches to be the same as the number of paths (M). If L>M, L minus M branches are switched off. Meanwhile if L ⁇ M, the strongest paths are assigned for demodulation and the remaining M minus L paths are ignored.
  • the tracking device 26 is assumed to be a conventional time-shared non-coherent dual correlator early-late gate (ELG) tracking device.
  • ESG early-late gate
  • each RAKE branch 24 includes a local PN code generator 28 and a delay element 30 that based on assigned time delay information from the searcher correct for relative propagation delay differences between the paths to be demodulated.
  • Each branch 24 also includes a correlation receiver 32, which includes a multiplier 34 and an accumulator 36.
  • the PN code generator 28 of each branch 24 applies a local PN code to the corresponding multiplier 34 of each one of the correlation receivers 32.
  • Each one of the multipliers 34 multiply the local PN codes with the stream of chips representing the data samples as provided by a corresponding delay element 30.
  • the accumulator 36 of each one of the correlation receivers 32 recover the user information from each of the DS-SS signal received over the corresponding plurality of paths by performing a correlation that produces a corresponding correlation result R c .
  • An adder 40 sums the correlation results R c for further processing by a Digital Signal Processor 42.
  • the delay searcher 22 makes initial, coarse estimates of the multi-path delays and provides the delay elements 30 with these initial estimated delay ⁇ l esl .
  • Correlation receiver 32 number / then performs correlations based on the assigned delay information until it is either reassigned a new delay value or switched off.
  • Each RAKE branch must continuously track or be synchronized with one of the channel paths. This means that the misalignment between the local despreading code used in this branch and the transmitted spreading code of one of the channel paths must be close to zero. Thus, each RAKE branch must be provided with the delays of the multi-paths.
  • the ELG tracking device 26 refines the multi-path delay estimates provide by the delay searcher 22, and continues to track these delays and provide accurate delay estimates to the RAKE branches 24.
  • the ELG tracking device 26 relies on the fact that the correlation function resulting from the correlation of a transmitted spreading code and a locally generated PN code is symmetrical.
  • the ELG tracking device 26 includes two independent correlation receivers 47 that make two correlations between the local PN code and the received DS-SS signal along each path. Similar to the correlation receiver, 32, of the RAKE branches, each correlation receiver in the ELG tracking device includes a delay element 44, a multiplier 46 and a summer 48.
  • the delay elements of the ELG tracking device use an early-late delay ⁇ equal to the absolute value of Tc/k, where k is an integer selected based on the sampling rate of the receiver, i.e., Tc/T samp , preferably in the range of 2-16.
  • the results of the early and late correlations, R ⁇ l and R ⁇ , are compared, to adjust the phase of the local PN code or the estimated delay ⁇ l esl to converge on the exact channel path delay i ⁇ .
  • the present invention uses the single ELG tracking device 26 by sharing it among the plurality of the RAKE branches 24.
  • the CDMA receiver of the present invention only requires 2 correlation receiver for tracking (or L+2 correlation receivers in total in the ELG's and in the RAKE branches).
  • the present invention takes advantage of the fact that the time-of- arrival (TO A) of signals at each one of the selected paths at the CDMA receiver changes very slowly.
  • the TOA would change once every C ⁇ /v second, where C is the speed of light.
  • k is equal to 8
  • a CDMA receiver using a chip rate of 1.2288 Mcps a CDMA receiver traveling with a speed of 90km/h causes a TOA change of ⁇ to occur once every 60-th frame. Therefore, by selectively scheduling the connection of the ELG tracking device to each one of the RAKE branches 24 at an appropriate rate, the CDMA receiver of the invention can effectively keep track the path propagation delays without the need for a dedicated tracking device for each RAKE branch 24.
  • selection rate or connection schedule of the shared ELG tracking device 26 to the RAKE branches 24 may be static, semi-static, or dynamic. For example, in environments where the channel conditions change slowly compared to a specified time interval measure, such as frame duration, slot duration (partial frame duration) or symbol duration, the ELG tracking device 26 may be scheduled for connection to each RAKE branch 24 at a constant selection rate by continuously sweeping through the RAKE branches based on one of the aforementioned parameters. However, if there is a considerable change in channel conditions from time to time, the shared ELG tracking device 26 may be coupled to the RAKE branches 24 at a semi-static selection rate through continuous or non-continuous sweeping of the RAKE branches 24 based on known or measured channel statistics.
  • a specified time interval measure such as frame duration, slot duration (partial frame duration) or symbol duration
  • a dynamic selection and assignment approach may be utilized to select and assign the shared ELG tracking device 26 to the RAKE branches.
  • the selection rate and assignment schedule of the shared ELG tracking device 26 to the RAKE branches 24 may be adaptively determined based on a received power level. It should be noted that depending on a required accuracy and adaptation rate of the dynamic scheme, the method of measuring the received power level may differ. When quick adaptation to changes in the transmission environment is required, a received power level measurement based on one or a few symbols may be used. On the other hand, when more accuracy is required, the received power level measurement may instead be based on an average power measurement obtained during a number of symbol periods i.e., as an average value of a number of received symbol power level measurement values. Under another arrangement of on-demand based tracking method, the shared ELG tracking device 26 may be assigned to the RAKE branches 24 if a detected received signal power level at a corresponding RAKE branch is lower than either a fix or an adaptive threshold value.
  • a tracking device selection controller 50 selectively couples the ELG tracking device 32 to each one of the RAKE branches 24. Operationally, the selection controller 50 sequentially connects the ELG device to the RAKE branches 24 one by one at a predefined or adaptively set selection rate. More specifically, for each RAKE branch 24, the selection controller 50 connects a corresponding local PN code and a corresponding synchronized signal to the inputs of the ELG for a period defined by the selection rate. During each selection period, a corresponding local PN code is connected to the ELG delay elements 44 and the signal is connected to the input of the ELG multiplier 46. In this way, the ELG summers 48 produce the correlation results for a selected branch. A comparator 52 compares the correlation results and provides a comparison result to the selection controller 50.
  • the selection controller 50 provides the comparison result to the corresponding PN code generator of the selected RAKE branch, to adjust the phase of the local PN code. Alternatively, the delay value of ⁇ est may be adjusted based on the comparison result.
  • a process of iterative comparison of the correlation results continues until the correlation results from the early correlation receiver and late correlation receiver become equal.
  • the information retrieved from the early-late correlation receivers combined with demodulation information from the demodulating receiver, e.g., power information, are used for tracking each path. From the foregoing description it would be appreciated that the present invention significantly simplifies the hardware requirements of the CDMA receiver. The reduction in hardware complexity of the CDMA receiver also reduces its power consumption, without sacrificing performance.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
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Abstract

A CDMA receiver includes a plurality of RAKE branches for despreading the received CDMA signals over a corresponding plurality of paths and a single tracking device that is shared among the plurality of the RAKE branches for tracking the delays of the received CDMA signal over a corresponding path. Similarly, a method for tracking a CDMA signal correlates the received signal with local PN code using a plurality of RAKE branches and tracks the received signal using a single tracking device that is shared among the plurality of the RAKE branches.

Description

A CDMA RECEIVER THAT SHARES A TRACKING DEVICE AMONG
MULTIPLE RAKE BRANCHES
FIELD OF THE INVENTION
The present invention relates to a method and apparatus for estimating multi- path radio signal transmission delays, and more particularly to a method and apparatus for tracking multi-path signal delays in telecommunications systems that use direct sequence spread spectrum techniques.
BACKGROUND OF THE INVENTION
The field of wireless communications is expanding at a phenomenal rate, as more radio spectrum becomes available for commercial use and as cellular phones become commonplace. In addition, there is currently an evolution from analog communications to digital communications. In digital communications, speech is represented by a series of bits which are modulated and transmitted from transmitter (e.g., a base station) to a receiver (e.g. , a mobile phone). The receiver demodulates the received waveform to recover the bits, which are then converted back into speech. There is also a growing demand for data services, such as e-mail and Internet access, which require digital communications.
There are many types of digital communications systems. Traditionally, frequency division-multiple-access (FDMA) is used to divide the spectrum up into a plurality of radio channels corresponding to different carrier frequencies. These carriers may be further divided into time slots, a technique referred to as time-division- multiple-access (TDMA), as is done in the D-AMPS, PDC, and GSM digital cellular systems.
If the radio channel is wide enough, multiple users can use the same channel using spread spectrum (SS) techniques and code-division-multiple-access (CDMA). IS- 95 and JSTD-008 are examples of CDMA standards. With direct sequence spread spectrum (DS-SS), information symbols are represented by sequences of symbols referred to as chips. This spreads the information symbols in the frequency band. At the receiver, correlations to the chip sequences are used to recover the information symbols. Spreading allows the system to operate at a low chip signal-to-noise ratio (SNR). By choosing spreading codes with good auto- and cross-correlation properties cross talk between different users can be kept at a low level allowing multiple user signals to occupy the same bandwidth at the same time.
The radio signal is reflected and scattered off of various objects, giving rise to multi-path propagation. As a result, multiple images of the signal arrive at the receive antenna. When these images have roughly the same delay, relative to the chip period, they give rise to fading. Fading occurs because the images add sometimes constructively, and sometimes destructively. When these images arrive with different delays relative to the chip period, they can be viewed as echoes of the signal and are often referred to as "resolvable multi-paths," "rays," or simply "multi-paths. "
To communicate efficiently and reliably, the receiver should exploit the multi- path fading channel by collecting signal energy from the different multi-paths. This is achieved by employing a RAKE receiver, which individually detects each echo signal using a correlation method, corrects for different time delays, and combines the detected echo signals coherently. The RAKE receiver includes a number of processing RAKE branches or "fingers. " Using a delay searcher, the receiver searches for delays of the multi-paths and assigns an estimated delay to each one of the RAKE branches. Each RAKE branch then despreads the signal received over a path with a corresponding delay. The RAKE branch outputs are RAKE combined by weighting them and adding them together.
For mobile communications, the movement of mobile stations changes multi- path delays over time. To maintain performance, the delay estimation procedure must be able to track the multi-path delays. In conventional tracking RAKE receivers, RAKE branches are equipped with corresponding tracking devices, which employs delay tracking techniques, such as the early/late gate (ELG) and tau-dither techniques. With these delay tracking techniques, the signal energy is measured slightly before and slightly after the estimated delay. When the estimated delay is correct, then the early and late measurements should be approximately equal, as the chip pulse waveform falls off symmetrically about its peak. When an imbalance is detected, the delay estimate is adjusted to restore balance. In a DS-CDMA based system, the ELG technique is implemented using two independent correlation receivers, an early correlation receiver and a late correlation receiver. Each correlation receiver works with a spreading code, also known as pseudo-noise (PN) code, that is shifted plus and minus a fraction k of the chip period Tc relative to the estimated delay used by the RAKE branch. In order to adjust for path delay changes, the estimated received power from the early and late correlation receivers are compared, usually low-pass filtered, and used to control the phase of a local PN code generator.
As explained above, in conventional CDMA receivers, each RAKE branch has a dedicated tracking device. Because of the signal processing requirement, the implementation of a dedicated tracking device for each RAKE branch significantly complicates the hardware design of the CDMA receiver. For example, implementation of dedicated ELGs, each having two correlation receivers, for each one of the RAKE branches, requires twice as many ELG correlation receivers as data demodulating correlator receivers. In addition to complex hardware requirement, the implementation of dedicated tracking devices also increases the CDMA receiver's power consumption. Therefore, there exists a need to reduce hardware complexity and power consumption of the CDMA receivers that utilize tracking RAKE receivers.
SUMMARY OF THE INVENTION
The present invention reduces the hardware complexity of a CDMA receiver by sharing a tracking device among a number of RAKE branches. The CDMA receiver of the present invention includes a plurality of RAKE branches for despreading the received CDMA signals over a corresponding plurality of multi-paths. According to the present invention, a single tracking device is shared among the plurality of the
RAKE branches. The single tracking device tracks the delays of the received CDMA signal over a corresponding path. A method for tracking a CDMA signal according to the present invention correlates the received signals over the multi-paths with corresponding local PN codes using a plurality of RAKE branches and tracks the received signal using a single tracking device that is shared among the plurality of the RAKE branches. BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a block diagram of a communication system that incorporates the present invention.
FIG. 2 is a block diagram of a baseband processor according to the present invention.
DETAILED DESCRIPTION OF THE INVENTION
Referring to FIG. 1, a block diagram of a communication system 10 employing the present invention is illustrated. The communication system 10, which in the exemplary embodiment of the invention is a DS-SS communication system, includes a DS-SS transmitter 12 that transmits a DS-SS signal 14 through a multi-path fading channel having an assumed number of (M) paths. A receiver 16 having an RF section 18 and a baseband processor 20 receives the DS-SS signal 14 along the M paths. In a well known manner, the RF section 18 amplifies, filters, and mixes the DS-SS signal 14 down to a baseband frequency, typically centered around 0 Hz. The down- converted signal is also sampled and quantized, producing data samples that are representative of the modulated signal. For example, the signal may be sampled using a sampling period of Tsamp that provides a predefined number of samples during each chip period Tc corresponding to the required synchronization accuracy of the receiver. For the exemplary system 10, it is assumed that the sampling rate is equal to n samples per chip.
Referring to FIG. 2, the block diagram of the baseband processor 20 according to the present invention is shown. The baseband processor 20 includes a delay searcher 22, a plurality (L) of RAKE branches 24, and a single tracking device 26. It should be noted that there is no requirement for the number of RAKE branches to be the same as the number of paths (M). If L>M, L minus M branches are switched off. Meanwhile if L<M, the strongest paths are assigned for demodulation and the remaining M minus L paths are ignored. In the exemplary embodiment of the present invention, the tracking device 26 is assumed to be a conventional time-shared non-coherent dual correlator early-late gate (ELG) tracking device. It should be noted, however, that the present invention may utilize other types of tracking devices, such as time-shared single correlator ELG (Tau dither ELG) or a double dither ELG. In the exemplary embodiment of the invention, each RAKE branch 24 includes a local PN code generator 28 and a delay element 30 that based on assigned time delay information from the searcher correct for relative propagation delay differences between the paths to be demodulated. Each branch 24 also includes a correlation receiver 32, which includes a multiplier 34 and an accumulator 36. The PN code generator 28 of each branch 24 applies a local PN code to the corresponding multiplier 34 of each one of the correlation receivers 32. Each one of the multipliers 34 multiply the local PN codes with the stream of chips representing the data samples as provided by a corresponding delay element 30. The accumulator 36 of each one of the correlation receivers 32 recover the user information from each of the DS-SS signal received over the corresponding plurality of paths by performing a correlation that produces a corresponding correlation result Rc. An adder 40 sums the correlation results Rc for further processing by a Digital Signal Processor 42.
More specifically, the delay searcher 22 makes initial, coarse estimates of the multi-path delays and provides the delay elements 30 with these initial estimated delay τl esl. Under the assumption that the DS-SS signal is received among the multi-paths with exact delays τ , τ2,..., τL, the delay searcher 22 assigns delay element 30 number / the initial estimated delay, τl est, corresponding to channel path number /, where / = 1, 2, .. or L. Correlation receiver 32 number / then performs correlations based on the assigned delay information until it is either reassigned a new delay value or switched off.
Each RAKE branch must continuously track or be synchronized with one of the channel paths. This means that the misalignment between the local despreading code used in this branch and the transmitted spreading code of one of the channel paths must be close to zero. Thus, each RAKE branch must be provided with the delays of the multi-paths. The ELG tracking device 26 refines the multi-path delay estimates provide by the delay searcher 22, and continues to track these delays and provide accurate delay estimates to the RAKE branches 24.
The ELG tracking device 26 relies on the fact that the correlation function resulting from the correlation of a transmitted spreading code and a locally generated PN code is symmetrical. The ELG tracking device 26 includes two independent correlation receivers 47 that make two correlations between the local PN code and the received DS-SS signal along each path. Similar to the correlation receiver, 32, of the RAKE branches, each correlation receiver in the ELG tracking device includes a delay element 44, a multiplier 46 and a summer 48. For tracking the paths, the delay elements of the ELG tracking device use an early-late delay δ equal to the absolute value of Tc/k, where k is an integer selected based on the sampling rate of the receiver, i.e., Tc/Tsamp, preferably in the range of 2-16. One ELG correlation receiver, an early correlation receiver, uses a delay δ1 =- TJk, while the other, a late correlation receiver, uses a delay δ2 = Tc/k. The results of the early and late correlations, Rδl and R^, are compared, to adjust the phase of the local PN code or the estimated delay τl esl to converge on the exact channel path delay i^.
Unlike conventional CDMA receivers, which use dedicated ELGs tracking devices for each one of the RAKE branches 24, the present invention uses the single ELG tracking device 26 by sharing it among the plurality of the RAKE branches 24. Compared to the conventional CDMA receivers that require 2*L correlation receivers for tracking (or 3* L correlation receivers in total in the ELG's and in the RAKE branches), the CDMA receiver of the present invention only requires 2 correlation receiver for tracking (or L+2 correlation receivers in total in the ELG's and in the RAKE branches). The present invention takes advantage of the fact that the time-of- arrival (TO A) of signals at each one of the selected paths at the CDMA receiver changes very slowly. For example, using the early-late delay of δ = Tc/k in a mobile station traveling with a speed equal to v, the TOA would change once every Cδ/v second, where C is the speed of light. Under the IS95 communication standard, where k is equal to 8, a CDMA receiver using a chip rate of 1.2288 Mcps, a CDMA receiver traveling with a speed of 90km/h causes a TOA change of δ to occur once every 60-th frame. Therefore, by selectively scheduling the connection of the ELG tracking device to each one of the RAKE branches 24 at an appropriate rate, the CDMA receiver of the invention can effectively keep track the path propagation delays without the need for a dedicated tracking device for each RAKE branch 24.
Depending on channel conditions, selection rate or connection schedule of the shared ELG tracking device 26 to the RAKE branches 24 may be static, semi-static, or dynamic. For example, in environments where the channel conditions change slowly compared to a specified time interval measure, such as frame duration, slot duration (partial frame duration) or symbol duration, the ELG tracking device 26 may be scheduled for connection to each RAKE branch 24 at a constant selection rate by continuously sweeping through the RAKE branches based on one of the aforementioned parameters. However, if there is a considerable change in channel conditions from time to time, the shared ELG tracking device 26 may be coupled to the RAKE branches 24 at a semi-static selection rate through continuous or non-continuous sweeping of the RAKE branches 24 based on known or measured channel statistics.
If, however, the channel characteristics are not known, a dynamic selection and assignment approach may be utilized to select and assign the shared ELG tracking device 26 to the RAKE branches. For example, the selection rate and assignment schedule of the shared ELG tracking device 26 to the RAKE branches 24 may be adaptively determined based on a received power level. It should be noted that depending on a required accuracy and adaptation rate of the dynamic scheme, the method of measuring the received power level may differ. When quick adaptation to changes in the transmission environment is required, a received power level measurement based on one or a few symbols may be used. On the other hand, when more accuracy is required, the received power level measurement may instead be based on an average power measurement obtained during a number of symbol periods i.e., as an average value of a number of received symbol power level measurement values. Under another arrangement of on-demand based tracking method, the shared ELG tracking device 26 may be assigned to the RAKE branches 24 if a detected received signal power level at a corresponding RAKE branch is lower than either a fix or an adaptive threshold value.
A tracking device selection controller 50 selectively couples the ELG tracking device 32 to each one of the RAKE branches 24. Operationally, the selection controller 50 sequentially connects the ELG device to the RAKE branches 24 one by one at a predefined or adaptively set selection rate. More specifically, for each RAKE branch 24, the selection controller 50 connects a corresponding local PN code and a corresponding synchronized signal to the inputs of the ELG for a period defined by the selection rate. During each selection period, a corresponding local PN code is connected to the ELG delay elements 44 and the signal is connected to the input of the ELG multiplier 46. In this way, the ELG summers 48 produce the correlation results for a selected branch. A comparator 52 compares the correlation results and provides a comparison result to the selection controller 50. The selection controller 50 provides the comparison result to the corresponding PN code generator of the selected RAKE branch, to adjust the phase of the local PN code. Alternatively, the delay value of τest may be adjusted based on the comparison result. A process of iterative comparison of the correlation results continues until the correlation results from the early correlation receiver and late correlation receiver become equal. The information retrieved from the early-late correlation receivers combined with demodulation information from the demodulating receiver, e.g., power information, are used for tracking each path. From the foregoing description it would be appreciated that the present invention significantly simplifies the hardware requirements of the CDMA receiver. The reduction in hardware complexity of the CDMA receiver also reduces its power consumption, without sacrificing performance. The principles, preferred embodiments and modes of operation of the present invention have been described in the foregoing specification. However, the invention which is intended to be protected is not to be construed as limited to the particular embodiments disclosed. Further, the embodiments described herein are to be regarded as illustrative rather than restrictive. Variations and changes may be made by others, and equivalents employed, without departing from the spirit of the present invention. For example, other types of tracking devices may be used, including those based on tau-dither, double dither or extended Kalman Filter techniques. Accordingly, it is expressly intended that all such variations, changes and equivalents which fall within the spirit and scope of the present invention as defined in the claims be embraced thereby.

Claims

WHAT IS CLAIMED IS:
1. A CDMA receiver for receiving a CDMA signal over a multi-path channel, comprising: a plurality of RAKE branches for despreading the received CDMA signals over a corresponding plurality of paths; and a tracking device that is shared among the plurality of RAKE branches for tracking the delays of the received CDMA signal over a corresponding path.
2. The CDMA receiver of claim 1, wherein the tracking device is selectively coupled to each one of the plurality of RAKE branches.
3. The CDMA receiver of claim 2, wherein the tracking device is coupled to the plurality of RAKE branches at a constant rate.
4. The CDMA receiver of claim 2, wherein the tracking device is coupled the plurality of RAKE branches at a dynamic rate that is dependent on channel conditions.
5. The CDMA receiver of claim 4, wherein the selection rate is determined based on a measurement of a received power level and a predefined threshold.
6. The CDMA receiver of claim 5, wherein the received power level is measured over one or more symbols.
7. The CDMA receiver of claim 5, wherein the received power level is based on an average value from several symbols.
8. The CDMA receiver of claim 3, wherei the constant selection rate is based on one of a symbol, slots or frame duration.
9. The CDMA receiver of claim 2, wherein the tracking device is coupled the plurality of RAKE branches at a semi static rate that is dependent on changed channel statistics.
10. The CDMA receiver of claim 1, wherein the tracking device is an ELG tracking device.
11. The CDMA receiver of claim 1 , wherein the tracking is a tau-dither tracking device.
12. A method for tracking a CDMA signal including the steps of: despreading a received signal with local PN codes using a plurality of RAKE branches; and tracking the received signal using a single tracking device that is shared among the plurality of the RAKE branches.
13. The method of claim 12, wherein the tracking device is selectively coupled to each one of the plurality of RAKE branches.
14. The method of claim 13, wherein each of the tracking devices is coupled to one of the plurality of RAKE branches at a selection rate that is dependent upon channel conditions.
15. The method of claim 14, wherein the selection rate is dynamic.
16. The method of claim 14, wherein the selection rate is semi-static.
17. The method of claim 14, wherein the selection rate is static.
18. The method of claim 12, wherein the tracking device is an ELG tracking device.
19. The method of claim 12, wherein the tracking device is a tau-dither tracking device.
PCT/SE1999/001844 1998-10-13 1999-10-12 A cdma receiver that shares a tracking device among multiple rake branches WO2000022746A1 (en)

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EP99956456A EP1121767B1 (en) 1998-10-13 1999-10-12 A cdma receiver that shares a tracking device among multiple rake branches
CA002345699A CA2345699C (en) 1998-10-13 1999-10-12 A cdma receiver that shares a tracking device among multiple rake branches
KR1020017004615A KR20010080123A (en) 1998-10-13 1999-10-12 A cdma receiver that shares a tracking device among multiple rake branches
DE69937838T DE69937838T2 (en) 1998-10-13 1999-10-12 A CDMA RECEIVER OF REPLACEMENT EQUIPMENT BETWEEN SEVERAL RAKE BRANCHES
AU13064/00A AU1306400A (en) 1998-10-13 1999-10-12 A cdma receiver that shares a tracking device among multiple rake branches
JP2000576554A JP4280423B2 (en) 1998-10-13 1999-10-12 CDMA receiver with multiple rake branches sharing tracking device

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1162756A2 (en) * 2000-06-06 2001-12-12 Nec Corporation Rake reception apparatus
WO2002019555A2 (en) * 2000-08-28 2002-03-07 Koninklijke Philips Electronics N.V. Early-late detection in a cdma receiver

Families Citing this family (24)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR100269341B1 (en) * 1997-12-19 2000-10-16 서평원 Baseband signal demodulation apparatus and method in mobile communication system
DE19845620A1 (en) * 1998-10-05 2000-04-27 Systemonic Ag Method for receiving spread spectrum signals
US6560273B1 (en) * 1998-10-07 2003-05-06 Ericsson Inc. Delay searcher and delay trackers interaction for new delays assignment to rake fingers
US6618431B1 (en) * 1998-12-31 2003-09-09 Texas Instruments Incorporated Processor-based method for the acquisition and despreading of spread-spectrum/CDMA signals
JP3319436B2 (en) * 1999-06-02 2002-09-03 日本電気株式会社 CDMA mobile communication device, searcher circuit, and communication method
JP3367475B2 (en) * 1999-07-06 2003-01-14 日本電気株式会社 Wireless communication device and power consumption control method for wireless communication device
WO2001006670A1 (en) * 1999-07-15 2001-01-25 Infineon Technologies Ag Method for estimating the channel impulse response of a mobile radio channel
WO2001076085A1 (en) * 2000-03-30 2001-10-11 Ubinetics Limited A rake receiver and a method of operating a rake receiver
US6785321B1 (en) * 2000-10-31 2004-08-31 Motorola, Inc. Apparatus and method for estimating the time of arrival of a spread spectrum signal in a wireless communication system
JP2002290281A (en) * 2001-01-16 2002-10-04 Kawasaki Steel Corp Rake receiver
GB2379582A (en) * 2001-09-11 2003-03-12 Nokia Corp Power level detection for mobile communications
TWI236245B (en) * 2002-03-07 2005-07-11 Benq Corp Method of tracking finger assignment
US6795452B2 (en) * 2002-05-31 2004-09-21 Sandbridge Technologies, Inc. Method of tracking time intervals for a communication signal
CN100456662C (en) * 2002-11-15 2009-01-28 华为技术有限公司 A Multipath tracing method and apparatus for CDMA communication system
AU2003295479A1 (en) * 2002-11-15 2004-06-15 Time Domain Corporation A system and method for processing signals in uwb communications
US7068708B2 (en) * 2002-12-13 2006-06-27 Motorola, Inc. Method and receiving unit for demodulating a multi-path signal
US20040170218A1 (en) * 2003-03-01 2004-09-02 Andreas Molisch Rake receiver for ultra wide bandwidth communications systems
DE10345959B4 (en) * 2003-10-02 2005-12-15 Infineon Technologies Ag Operational situation-dependent identification and selection of the transmission paths for the establishment of rake fingers of Rake receiver units in mobile communication terminals
US7453920B2 (en) * 2004-03-09 2008-11-18 Atc Technologies, Llc Code synchronization in CDMA satellite wireless communications system using uplink channel detection
US20070041430A1 (en) * 2004-07-27 2007-02-22 Mitsubishi Denki Kabushiki Kaisha Reception device
TWI296881B (en) * 2006-01-16 2008-05-11 Lite On Technology Corp Receiver capable of enhancing receiving efficiency in a code division multiple access communication system
JP4718368B2 (en) * 2006-05-02 2011-07-06 富士通株式会社 CDMA receiver and its path timing update control method
KR102637730B1 (en) 2018-12-24 2024-02-19 삼성전자주식회사 Device and method for multi-receive multi-sim
US12063063B2 (en) * 2021-09-16 2024-08-13 L3Harris Technologies, Inc. Rake receiver and related methods

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0661829A2 (en) * 1993-12-30 1995-07-05 Nec Corporation Direct sequence spread spectrum receiver using pilot signal averaged over a fixed moving time interval
US5764687A (en) * 1995-06-20 1998-06-09 Qualcomm Incorporated Mobile demodulator architecture for a spread spectrum multiple access communication system
DE19841148A1 (en) * 1997-09-16 1999-04-01 Motorola Inc Telecommunications receiver for demodulation of multichannel received signal

Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5109390A (en) 1989-11-07 1992-04-28 Qualcomm Incorporated Diversity receiver in a cdma cellular telephone system
US5101501A (en) 1989-11-07 1992-03-31 Qualcomm Incorporated Method and system for providing a soft handoff in communications in a cdma cellular telephone system
US5485486A (en) 1989-11-07 1996-01-16 Qualcomm Incorporated Method and apparatus for controlling transmission power in a CDMA cellular mobile telephone system
US5166952A (en) 1990-05-24 1992-11-24 Cylink Corporation Method and apparatus for the reception and demodulation of spread spectrum radio signals
US5390207A (en) 1990-11-28 1995-02-14 Novatel Communications Ltd. Pseudorandom noise ranging receiver which compensates for multipath distortion by dynamically adjusting the time delay spacing between early and late correlators
US5579338A (en) 1992-06-29 1996-11-26 Mitsubishi Denki Kabushiki Kaisha Spread spectrum receiver using partial correlations
JP3212390B2 (en) 1992-11-17 2001-09-25 クラリオン株式会社 Sliding correlator
FI110043B (en) 1993-09-20 2002-11-15 Nokia Corp Method for performing transmission in CDMA cellular radio system and mobile station
US5343496A (en) 1993-09-24 1994-08-30 Bell Communications Research, Inc. Interference suppression in CDMA systems
JP2927657B2 (en) 1993-11-05 1999-07-28 ケイディディ株式会社 Spread spectrum signal demodulator
JP2655068B2 (en) 1993-12-30 1997-09-17 日本電気株式会社 Spread spectrum receiver
US5499272A (en) 1994-05-31 1996-03-12 Ericsson Ge Mobile Communications Inc. Diversity receiver for signals with multipath time dispersion
US5486834A (en) 1994-08-08 1996-01-23 Trimble Navigation Limited Global orbiting navigation satellite system receiver
US5488631A (en) 1994-10-31 1996-01-30 Radio Connect Corporation Wireless direct-sequence spread spectrum TDMA communications system
US5654979A (en) 1995-01-13 1997-08-05 Qualcomm Incorporated Cell site demodulation architecture for a spread spectrum multiple access communication systems
US5648983A (en) 1995-04-24 1997-07-15 Lucent Technologies Inc. CDMA rake receiver with sub-chip resolution
JPH0974372A (en) * 1995-09-04 1997-03-18 Matsushita Electric Ind Co Ltd Spread spectrum radio transmitter-receiver
US5945948A (en) * 1996-09-03 1999-08-31 Motorola, Inc. Method and apparatus for location finding in a communication system
JP2924864B2 (en) * 1997-06-16 1999-07-26 日本電気株式会社 Adaptive rake reception method
JP3406831B2 (en) * 1998-03-19 2003-05-19 富士通株式会社 Array antenna system for wireless base station
US6157820A (en) * 1998-06-12 2000-12-05 Ericsson Inc. Pilot strength measurement and multipath delay searcher for CDMA receiver

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0661829A2 (en) * 1993-12-30 1995-07-05 Nec Corporation Direct sequence spread spectrum receiver using pilot signal averaged over a fixed moving time interval
US5764687A (en) * 1995-06-20 1998-06-09 Qualcomm Incorporated Mobile demodulator architecture for a spread spectrum multiple access communication system
DE19841148A1 (en) * 1997-09-16 1999-04-01 Motorola Inc Telecommunications receiver for demodulation of multichannel received signal

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1162756A2 (en) * 2000-06-06 2001-12-12 Nec Corporation Rake reception apparatus
EP1162756A3 (en) * 2000-06-06 2003-10-29 Nec Corporation Rake reception apparatus
WO2002019555A2 (en) * 2000-08-28 2002-03-07 Koninklijke Philips Electronics N.V. Early-late detection in a cdma receiver
WO2002019555A3 (en) * 2000-08-28 2002-08-22 Koninkl Philips Electronics Nv Early-late detection in a cdma receiver

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DE69937838T2 (en) 2008-12-11
EP1121767A1 (en) 2001-08-08
JP2002527985A (en) 2002-08-27
JP4280423B2 (en) 2009-06-17
EP1121767B1 (en) 2007-12-26
CA2345699A1 (en) 2000-04-20
AU1306400A (en) 2000-05-01
TW466848B (en) 2001-12-01
CN1192505C (en) 2005-03-09
KR20070049249A (en) 2007-05-10
CA2345699C (en) 2008-12-16
AR020799A1 (en) 2002-05-29
KR100765012B1 (en) 2007-10-09
US6330271B1 (en) 2001-12-11
KR20010080123A (en) 2001-08-22
DE69937838D1 (en) 2008-02-07
CN1330812A (en) 2002-01-09

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