EP1900116A1 - Zuteilungsverfahren, netzelement, modul und benutzereinrichtung - Google Patents

Zuteilungsverfahren, netzelement, modul und benutzereinrichtung

Info

Publication number
EP1900116A1
EP1900116A1 EP06778513A EP06778513A EP1900116A1 EP 1900116 A1 EP1900116 A1 EP 1900116A1 EP 06778513 A EP06778513 A EP 06778513A EP 06778513 A EP06778513 A EP 06778513A EP 1900116 A1 EP1900116 A1 EP 1900116A1
Authority
EP
European Patent Office
Prior art keywords
user
denotes
feedback
network element
code word
Prior art date
Legal status (The legal status 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 status listed.)
Withdrawn
Application number
EP06778513A
Other languages
English (en)
French (fr)
Inventor
Jyri K. HÄMÄLÄINEN
Esa Tiirola
Risto Wichman
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nokia Oyj
Original Assignee
Nokia Oyj
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
Priority claimed from FI20050714A external-priority patent/FI20050714A0/fi
Application filed by Nokia Oyj filed Critical Nokia Oyj
Publication of EP1900116A1 publication Critical patent/EP1900116A1/de
Withdrawn legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/54Allocation or scheduling criteria for wireless resources based on quality criteria
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/21Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/54Allocation or scheduling criteria for wireless resources based on quality criteria
    • H04W72/542Allocation or scheduling criteria for wireless resources based on quality criteria using measured or perceived quality

Definitions

  • the invention relates to an allocation method in a communication system, a network element, a module and a user device.
  • resource allocation has a critical role in respect of transmission quality and delays in the eyes of a user (that can also be taken as a part of the transmission quality).
  • CDMA code division multiple access
  • Another method is to introduce a secondary scrambling code.
  • the secondary scrambling code is the increase in the interference that leads to a need for a higher power level.
  • an allocation method in a communication system comprising at least one network element and at least one user device, the allocation method comprising: generating feedback information in the at least one user device and transmitting the feedback information to the network element; creating a first orthogonality measure in the network element by using the feedback information; creating a second orthogonality measure in the network element by comparing transmission resources; allocating transmission resources for the at least one user device based on the first orthogonality measure, the second orthogonality measure and a required transmission quality; and transmitting information from a network element to at least one user device.
  • an allocation method in a communication system comprising at least one network element and at least one user device, the allocation method comprising: extending available code space by generating non-orthogonal codes; generating feedback information in the at least one user device and transmitting the feedback information to the network element; creating a first orthogonality measure in the network element by using the feedback information; creating a second orthogonality measure in the network element by comparing transmission resources; allocating transmission resources for the at least one user device based on the first orthogonality measure, the second orthogonality measure and a required transmission quality in such a way that, in addition to orthogonal codes, the non-orthogonal codes are used; and transmitting information from the network element to the at least one user device.
  • a network element comprising: means for receiving feedback information from auser device; means for creating a first orthogonality measure by using the feedback informa- tion; means for creating a second orthogonality measure by comparing transmission resources; and means for transmitting information to at least one user device.
  • a network element comprising: means for extending an available code space by generating non-orthogonal codes; means for receiving feedback information from a user device; means for creating a first orthogonality measure by using the feedback information; means for creating a second orthogonality measure by comparing transmission resources; means for allocating transmission resources for the user device based on the first orthogonality measure, the second orthogonality measure and a required transmission quality in such a way that, in addition to orthogonal codes, the non-orthogonai codes are used; and means for transmitting information to the user device.
  • a module comprising: means for extending available code space by generating non- orthogonal codes; means for creating a first orthogonality measure by using feedback information; means for creating a second orthogonality measure by comparing transmission resources; means for allocating transmission resources for the user device based on the first orthogonality measure, the second orthogonality measure and a required transmission quality in such a way that, in addition to orthogonal codes, the non-orthogonal codes are used.
  • a module configured to: extend available code space by generating non-orthogonal codes; create a first orthogonality measure by using feedback information; create a second orthogonality measure by comparing transmission resources; allocate transmission resources for the user device based on the first orthogonality measure, the second orthogonality measure and a required transmission quality in such a way that, in addition to orthogonal codes, the non-orthogonal codes are used.
  • a network element configured to: receive feedback information from the user device; create a first orthogonality measure by using the feedback information; create a second orthogonality measure by comparing transmission resources; and transmit information the user device.
  • a network element configured to: extend available code space by generating non- orthogonal codes; and allocate transmission resources for the user device on the basis of a received first orthogonality measure, second orthogonality measure and a required transmission quality in such a way that, in addition to the orthogonal codes, also the non-orthogonal codes are used.
  • a user device configured to: transmit feedback information including at least one of the following indicators:
  • W 1111x is afeedback code word giving a best Signal-to-Noise Ratio
  • W 1nJn is a feedback code word giving a worstSNR
  • W n ⁇ 1 is afirst component of vector W 1113x
  • w m i x,2 is asecond component of vector W 1113x
  • H 1 is a complex conjugate of a first channel coefficient
  • Ji 2 is a complex conjugate of a second channel coefficient
  • ⁇ x ⁇ denotes the absolute value of x
  • Vi ⁇ is the feedback code word giving the worst SNR, and where w max (maximum) is selected such that
  • a user device comprising: means for transmitting feedback information including at least one of the following indicators:
  • W 1114x is a feedback code word giving the best Signal-to-Noise Ratio
  • W ⁇ 1 is a first component of vector W n ⁇
  • w mx2 is a second component of vector W 70117 .
  • Aj is a complex conjugate of the first channel coefficient
  • a 2 is a complex conjugate of the second channel coefficient
  • ⁇ x denotes the absolute value of x
  • VV n ⁇ n is the feedback code word giving the worst SNR, and where w m!Ol (maximum) is selected such that
  • An embodiment of the invention provides means for using non-orthogonal resources, such as non- orthogonal channelization codes and non-orthogonal frequencies, in a communications system.
  • the embodiment of the invention also provides means for expanding restricted code pools without generating addition to the interference level.
  • Figure 1 shows an example of a communication system
  • Figure 2 is a flow chart
  • Figure 3 illustrates an example of a channelization code tree
  • Figure 4 illustrates an example of a network element
  • Figure 5 illustrates another example of a network element
  • Figure 6 illustrates an example of a user device.
  • UMTS Universal Mobile Telecommunications System
  • WCDMA wideband code division multiple access
  • FIG. 1 is a simplified illustration of a part of a digital data transmission system to which the solution according to the invention is applicable.
  • This is a part of a cellular radio system, which comprises a base station (or a node B) 100, which has bi-directionai radio links 102 and 104 to user devices 106 and 108.
  • the user devices may be fixed, vehicle-mounted or portable.
  • the base station includes transceivers, for instance. From the transceivers of the base station, there is a connection to an antenna unit that establishes the bi-directional radio links to the user device.
  • the base station is further connected to a controller 110, such as a radio network controller (RNC), which transmits the connections of the user devices to the other parts of the network.
  • RNC radio network controller
  • the radio network controller controls in a centralized manner several base stations connected to it.
  • the radio network controller is further connected to a core network 112 (CN).
  • CN core network 112
  • the counterpart on the CN side can be a mobile services switching centre (MSC), a media gateway (MGW) or a serving GPRS (general packet radio service) support node (SGSN).
  • MSC mobile services switching centre
  • MGW media gateway
  • GPRS general packet radio service support node
  • the radio system can also communicate with other networks, such as a public switched telephone network or the Internet.
  • the size of communication systems can vary quite a lot according to the data transfer needs and the required coverage area.
  • FIG. 1 illustrates an example of a channelization code-tree in a Wideband Code Division Multiple Access (WCDMA) system.
  • WCDMA Wideband Code Division Multiple Access
  • channelization and scrambling codes used in the Uu interface are managed by a radio network controller.
  • Each cell has one primary scrambling code from which user devices can recognize the cell and under each scrambling code there is a set of channelization codes.
  • the information sent over the Uu interface is spread with a channel-specific spreading code that in turn is performed using a scrambling code and a channelization code.
  • Scrambling code is typically pseudo-random and it is used to produce a randomised digital signal.
  • the scrambling code is used in the downlink direction for cell or sector separation and in the uplink direction for user separation.
  • channelization codes are used for channel separation both in uplink and downlink directions.
  • the channelization codes have different spreading factor values and thus different symbol rates.
  • the spreading factor has a relatively small value. Therefore, high user data rates require more air interface code capacity.
  • the channelization codes are designed to be as orthogonal as possible to achieve a good channel separation. Orthogonality means in theory that codes do not correlate with each other.
  • the code space is extended by using non-orthogonal codes that are formed as a linear combination of the original orthogonal codes.
  • the original codes with which the new codes are generated are called base codes.
  • the new codes will be orthogonal against codes other than the base codes.
  • the base codes are typically selected from the same branch of the code tree and hence they are orthogonal against the channelization codes of the other branches of the code tree. In such a case, the reduced code orthogonality will reduce the link performance only for the users having a channelization code from the code tree branch that was used for generating non-orthogonal codes.
  • codes 300-308 are original codes and codes 310-316 are added non-orthogonal codes.
  • the spreading factor On level 318 the spreading factor is 2, on level 320 the spreading factor is 4, on level 322 the spreading factor is 8 and on level 324 the spreading factor is 16. It is obvious to a skilled person that the embodiments of the allocation method are not restricted to the usage of the depicted code tree.
  • feedback information is generated in the at least one user device and the feedback information is transmitted to the network element.
  • One example of the feedback information is quantized antenna weight vectors ⁇ w,,w 2 ).
  • the feedback information typically includes information also on spatial separation of the users.
  • the spatial information may be used in antenna beam forming.
  • the determination of the quantized antenna weight vectors or the eigenvectors is known in the prior art. Also, the determination of the spatial separation of the users is a part of the prior art. Therefore the determination methods are not explained here in further detail.
  • the first orthogonality measure is created in the network element by using the feedback information.
  • quantized antenna weights (W ⁇ w 2 ) received from the user device are used for determining the first orthogonality measure in which case the distance between two code words in the space of quantized antenna weight vec- tors tells if the two code words are orthogonal against each other.
  • the first orthogonality measure can be calculated as follows:
  • W 1 denotes a feedback code word (quantized antenna weight vector) of user 1
  • w 2 denotes a feedback code word (quantized antenna weight vector) of user 2
  • jb refers to feedback.
  • W 1 and w 2 are orthogonal if 0, where vP m l is the quantized feedback corresponding to the first transmitter antenna from the /nth user and w m 2 is the quantized feedback corresponding to the second transmitter antenna from the mth user.
  • the orthogonality between code words is relative to the orthogonality between the channels used by the correspondent users. Hence, the reliability of the orthogonality measure can be ensured by using proper feedback coding.
  • a simple example of such a feedback coding is Gray-coding for signal phases. Gray-coding is known in the art.
  • the values of the first orthogonality measure for different feedback combinations may be computed and stored in advance.
  • a second orthogonality measure is created in the network element by comparing transmission resources.
  • the distance between channelization code words in the code space of two resources is determined.
  • the second orthogonality measure can be computed as follows:
  • C 1 denotes a vector containing resource information, such as channelization codes of user 1 ,
  • C 1 denotes a vector containing resource information, such as channelization codes of user 2,
  • Il - L. and ir refers to a transmission.
  • the second orthogonality measure may be determined and stored in advance.
  • transmission resources are allocated to the at least one user device on the basis of the first orthogonality measure, the second orthogonality measure and a required transmission quality in such a way that, in addition to the orthogonal codes, also the non-orthogonal codes are used.
  • the required transmission quality may be deduced for instance on the basis of the distance between the user device and the network element.
  • W 1 denotes a feedback code word (quantized antenna weight vector) of user 1
  • w 2 denotes a feedback code word (quantized antenna weight vector) of user 2
  • C 1 denotes a vector containing resource information, such as channelization codes of user 1
  • c 2 denotes a vector containing resource information, such as channelization codes of user 2
  • M 11 M 2 denote transmission weights which depend on the performance target and the cell load.
  • the transmission weights can be determined for instance by simulation.
  • the embodiment can be extended to a system where a network element, such as base station, has M (M>2) antennas. Then up to M antennas, orthogonal feedback code words are defined such that
  • w m denotes a feedback code word (quantized antenna weight vector) of user m
  • w k denotes a feedback code word ⁇ quantized antenna weight vector) of user k
  • Jb refers to feedback.
  • the set of all feedback words may contain more than M feedback code words.
  • the second orthogonality measure (see equations (2) and (3)) can be extended to the case of M antennas.
  • L (L ⁇ K) users among K users may then be selected by using the measure
  • W 1 denotes a feedback code word (quantized antenna weight vector) of user 1
  • w L denotes a feedback code word (quantized antenna weight vector) of user L
  • c x denotes a vector containing resource information, such as channelization codes of user 1
  • c L denotes a vector containing resource information, such as channelization codes of user L 1
  • M,,M 2 denote transmission weights which depend on the performance target and the cell load.
  • the transmission weights can be determined for instance by simulation;
  • D ⁇ O is obtained from equation (1), w, denotes a feedback code word (quantized antenna weight vector) of user /,
  • W 1 denotes a feedback code word (quantized antenna weight vector) of user k
  • C 1 denotes a vector containing resource information, such as channelization codes of user /
  • c k denotes a vector containing resource information, such as channelization codes of user k
  • refers to a summing operation.
  • the generated non-orthogonal codes are allocated to the users on the basis of the measured path losses or known distances between users and a network element.
  • the embodiment does not only suit to resource allocation for several users but also for resource allocation for one user. That is to say, non-orthogonal codes may be used by a single user.
  • the feedback consists of eigenvectors corresponding to eigenvalues of the channel matrix
  • the transmission weights for data channels can be determined as a linear combination of the two best eigenvectors in the manner that channel power response is the same for both data channels.
  • the transmission weights are no longer necessarily orthogonal, but this can be compensated for by using non-orthogonal channelization codes.
  • the information typically also includes information on spatial separation of the users.
  • the spatial information may be used in antenna beam forming.
  • information on resource allocation is transmitted from a network element to at least one user device.
  • Typical situation where the embodiment is implemented is a cellular radio network or another wireless network, there the network element, for instance a base station or node B, transmits simultaneously to several user devices.
  • the information includes one or more quantized antenna weight vectors.
  • the method ends in block 214.
  • the arrow 216 depicts one possibility of repeating the embodiment.
  • the feedback information the user device transmits to the network element may also include different indicators.
  • SNIR Signal-to-Noise and Interference Ratio
  • W ⁇ x is the feedback code word giving the best Signal-to-Noise Ratio
  • W n ⁇ n is the feedback code word giving the worst Signal-to-Noise Ratio
  • W 1n - X1I is t ⁇ e first component of vector W n ⁇ , w ma ⁇ ,2 ls * ne second component of vector W 1113x ,
  • a 1 is the complex conjugate of the first channel coefficient
  • a 2 is the complex conjugate of the second channel coefficient, ⁇ denotes the absolute value of x.
  • W 1111x is the feedback code word giving the best SNR
  • h (A ( ⁇ 15 /i 2 )) denotes a channel vector containing the impulse response vectors h t and H 2 corresponding to the first and the second base station antenna
  • W 1 ⁇ n is the feedback code word giving the worst SNR, and where W 1113x (maximum) is selected such that
  • the network element is then able to make the resource allocation decision for w,, A 1 (first user) and for W 25 A 2 (second user) according to rule:
  • a f denotes indicator A for user k
  • a 1 denotes indicator A for user /
  • w k is the feedback code word for the /cth user
  • w is the feedback code word for the ⁇ th user
  • Figure 4 illustrates a simplified exemplary embodiment of a network element in relation to the functionalities required by the allocation method described above. It is obvious to a person skilled in the art that the network element can deviate from what is depicted in Figure 4, for instance according to a modulation method used.
  • the network element illustrated in Figure 4 is a base station (or node B).
  • blocks 412 to 418 describe a transmitter and blocks 400 to 406 a receiver.
  • the example of Figure 4 shows the radio parts of the transmitter and the receiver as separate, but they may also be combined.
  • a signal- processing block 410 describes the hardware parts of the base station required for generating user speech or data in the transmitter. There may be one signal processing block, such as in the example of the figure, or a separate one for the transmitter and the receiver.
  • DSP Digital Signal Processing
  • the aim of channel coding is to make sure that the information transmitted can be restored in the receiver, although not every information bit could be received properly.
  • Block 412 the signal is modulated using the desired modulation method.
  • Block 414 describes multiplication by a spreading code performed on the information to be transmitted in direct sequence spread spectrum systems and used to spread a narrowband signal into wideband.
  • the code used in spreading may also be the same as the code indicating the information transfer zone in routing. Modulation and spreading may also be a part of the DSP processor.
  • the signal is converted from digital into analog form in block 416. In RF parts 418, the signal is up-converted to the selected transmission frequency either directly or via an intermediate frequency, amplified and filtered, if necessary.
  • the transmitter and the receiver share the same antenna 420, whereby a duplex filter is required to separate a signal to be transmitted and a signal to be received from each other.
  • the antenna may be an individual antenna or an array antenna composed of several antenna elements.
  • the receiver comprises RF parts 400, where a received signal is filtered, down-converted either directly to base band or to an intermediate frequency, and amplified.
  • the signal is converted from analog into digital by sampling and quantizing; in block 404, the direct spread wideband signal is despread by multiplication by a code sequence generated by a code generator; in block 406, the effect of the data modulation is removed by demodulation; and, in block 412, necessary signal processing is performed, such as de-interleaving, decoding and decryption.
  • Block 408 is a buffer memory, where location and other data can be stored about the devices belonging to the system at each particular moment.
  • the exemplary network element of Figure 4 certain steps of the embodiment of the resource allocation method, such as the determination of the first and the second orthogonality measure, are mainly carried out in the DSP processor.
  • the network element of Figure 4 (base station) may also in some implementations carry out the resource allocation to the user devices.
  • Figure 5 illustrates another simplified exemplary embodiment of a network element in relation to the functionalities required by the allocation method described above. It is obvious to a person skilled in the art that the network element can deviate from what is depicted in Figure 5.
  • FIG. 5 a simplified block diagram illustrates an example of the radio network controller's (RNC) logical structure.
  • RNC radio network controller's
  • a radio network controller is taken herein as an example of a network element. Both the source RNC and the target RNC may have the logical structure depicted in the example.
  • RNC is the switching and controlling element of UTRAN.
  • the switching 500 takes care of connections between the core network and the user device.
  • the radio network controller is located between lub 502 and Iu 514 interfaces.
  • the network controller is connected to these interfaces via interface units 504, 512.
  • the functionality of the radio network controller can be classified into two classes: UTRAN radio resource management 506 and control functions 510.
  • An operation and management interface function 508 serves as a medium for information transfer to and from network management functions.
  • the radio resource management is a group of algorithms used to share and manage the radio path connection so that the quality and capacity of the connection are adequate.
  • the most important radio resource management algorithms are handover control, power control, admission control, packet scheduling, and code management.
  • the UTRAN control functions take care of functions related to the setup, maintenance and release of a radio connection between the base stations and the user devices. Therefore, the embodiments of the hard handover method described above are typically carried out in a radio resource management block 506 and UTRAN control block 510. Radio resource management block 506 and control functions block 510 can be combined for forming a radio resource control (RRC) unit of a serving radio network controller (SRNC-RRC).
  • RRC radio resource control
  • SRNC-RRC serving radio network controller
  • Radio network controller (RNC) The precise implementation of the radio network controller (RNC) is vendor-dependent.
  • the main steps of the embodiment of the resource allocation method are mainly carried out in the radio resource management block 506 and control functions block 510.
  • the radio resource management block and/or the control functions block typically carries out the extending of the available code space by generating non-orthogonal codes.
  • Figure 6 illustrates a simplified exemplary embodiment of a user device in relation to the functionalities required by the allocation method described above. It is obvious to a person skilled in the art that the user device can deviate from what is depicted in Figure 6.
  • the user device illustrated in Figure 6 is a user device of a wireless communication system.
  • the user device can be, for example, a portable phone, a card phone or a microcomputer without being limited to these.
  • the above-mentioned user device or the user device unit comprises an antenna 600, by means of which signals are usually both transmitted and received via a duplex filter.
  • the transmitter and the receiver may also have separate antennas, in which case no duplex filter is needed.
  • the user device includes a transmitter 602, which amplifies a modulated signal and transmits it to the antenna.
  • the transmitter also includes e.g. D/A converters, which convert a digital signal into an analogue signal, and filters which in systems with a limited bandwidth restrict the bandwidth of the output.
  • D/A converters which convert a digital signal into an analogue signal
  • filters which in systems with a limited bandwidth restrict the bandwidth of the output.
  • Which transmitter components, such as amplifiers, D/A converters and filter, or operations, such as various base band operations, are common to both transmitters and which are separate varies depending on the application and/or implementation.
  • the user device also includes a modulator 604, which modulates the carrier wave with a data signal including the desired information according to the desired modulation method.
  • the user device further includes a receiver 606, which amplifies a signal arriving from the antenna and down-converts it to a selected intermediate frequency or directly to the base band.
  • the user device also includes e.g. A/D converters, which convert an analogue signal into a digital signal by sampling and quantisizing a base band signal, and filters, which filter out frequencies outside the desired frequency band.
  • A/D converters which convert an analogue signal into a digital signal by sampling and quantisizing a base band signal
  • filters which filter out frequencies outside the desired frequency band.
  • Which receiver components, such as amplifiers, A/D converters and filters, or operations, such as various base band operations are common to both transmitters and which are separate varies depending on the application and/or implementation.
  • the user device also comprises a demodulator 608, which demodulates a received signal so that a data signal can be separated from the carrier wave.
  • the demodulator can also be included in the receiver.
  • the controller part 616 of the user device comprises e.g. controlling and calculating means for controlling the operation of the different parts of the user device and means for processing the user's speech or the data generated by the user, such as a DSP processor ⁇ Digital Signal Processing), which comprises e.g. channel equalizing operations for compensating for the interference caused in the signal by the radio channel, and coding and decoding means which perform both channel coding and speech coding.
  • a DSP processor Digital Signal Processing
  • the generating of the indicators A and B is typically carried out in the DSP processor.
  • the signal spectrum is spread onto a broad band in the transmitter using a pseudorandom spreading code, and in the receiver it is compiled to increase the channel capacity. Coding can also be used for encrypting the output or the information included therein.
  • the user interface of the user device comprises a loudspeaker or an earpiece 610, a microphone 612, a display 618 and possibly a keypad, which are connected to the controller part.
  • the user device or the user device unit also comprises different memory elements, which are illustrated as one functional block 614.
  • the memory element includes a program for controlling the function of the user device, for example.
  • Other implementation solutions are also possible, such as different hardware implementations, e.g. a circuit built of separate logics components or one or more client-specific integrated circuits (Application-Specific Integrated Circuit, ASIC). A hybrid of these implementations is also feasible.
  • the embodiments may be implemented as a module including hardware and/or software.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Quality & Reliability (AREA)
  • Mobile Radio Communication Systems (AREA)
EP06778513A 2005-07-04 2006-07-03 Zuteilungsverfahren, netzelement, modul und benutzereinrichtung Withdrawn EP1900116A1 (de)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
FI20050714A FI20050714A0 (fi) 2005-07-04 2005-07-04 Allokointimenetelmä, verkkoelementti, moduuli ja käyttäjälaite
US11/324,224 US7596167B2 (en) 2005-07-04 2006-01-04 Allocation method, network element, module and user device
PCT/FI2006/050310 WO2007003716A1 (en) 2005-07-04 2006-07-03 Allocation method, network element, module and user device

Publications (1)

Publication Number Publication Date
EP1900116A1 true EP1900116A1 (de) 2008-03-19

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EP06778513A Withdrawn EP1900116A1 (de) 2005-07-04 2006-07-03 Zuteilungsverfahren, netzelement, modul und benutzereinrichtung

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Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5938787A (en) * 1997-03-27 1999-08-17 Ericsson Inc. Communications systems and methods employing code rate partitioning with nonorthogonal modulation
US7301983B1 (en) * 1998-01-05 2007-11-27 Intel Corporation Method for using codebook indexing to achieve high bit densities in a direct-sequence CDMA spread spectrum communication system
US8537656B2 (en) * 2000-07-19 2013-09-17 Ipr Licensing, Inc. Method for compensating for multi-path of a CDMA reverse link utilizing an orthogonal channel structure
US7085313B2 (en) * 2001-02-17 2006-08-01 Koninklijke Philips Electronics N.V. Multiple channel joint decoding at mobile handset
US20040120289A1 (en) 2002-12-20 2004-06-24 Hamalainen Jyri K. Transmission of information in a wireless communication system
US7933250B2 (en) * 2003-06-23 2011-04-26 Qualcomm Incorporated Code channel management in a wireless communications system

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO2007003716A1 *

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