AU9012798A - A method for assigning spreading codes - Google Patents

A method for assigning spreading codes Download PDF

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Publication number
AU9012798A
AU9012798A AU90127/98A AU9012798A AU9012798A AU 9012798 A AU9012798 A AU 9012798A AU 90127/98 A AU90127/98 A AU 90127/98A AU 9012798 A AU9012798 A AU 9012798A AU 9012798 A AU9012798 A AU 9012798A
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spreading codes
link connection
orthogonal
assigning
codes
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AU751483B2 (en
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Erik Dahlman
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Telefonaktiebolaget LM Ericsson AB
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Telefonaktiebolaget LM Ericsson AB
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J13/00Code division multiplex systems
    • H04J13/16Code allocation
    • H04J13/18Allocation of orthogonal codes
    • 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
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/24Radio transmission systems, i.e. using radiation field for communication between two or more posts
    • H04B7/26Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile
    • H04B7/2628Radio transmission systems, i.e. using radiation field for communication between two or more posts at least one of which is mobile using code-division multiple access [CDMA] or spread spectrum multiple access [SSMA]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J13/00Code division multiplex systems
    • H04J13/0007Code type
    • H04J13/0022PN, e.g. Kronecker
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J13/00Code division multiplex systems
    • H04J13/0007Code type
    • H04J13/004Orthogonal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B2201/00Indexing scheme relating to details of transmission systems not covered by a single group of H04B3/00 - H04B13/00
    • H04B2201/69Orthogonal indexing scheme relating to spread spectrum techniques in general
    • H04B2201/696Orthogonal indexing scheme relating to spread spectrum techniques in general relating to Dowlink

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Description

WO 99/12284 PCT/SE98/01541 A METHOD FOR ASSIGNING SPREADING CODES TECHNICAL FIELD OF THE INVENTION The present invention relates to methods for assigning spreading 5 codes to DS-CDMA forward-link connections. DESCRIPTION OF RELATED ART CDMA (Code Division Multiple Access) is a well known method for multiple access in a radio communication system. The CDMA method uses the spread spectrum technique in which a number of users 10 simultaneously occupy the same frequency band with their radio channels. In a DS-CDMA (Direct Sequence-CDMA) system which is a particular type of the CDMA techniques, each user is assigned a specific spreading code by which the user is separated from the other 15 users of the system. Another name for a spreading code is spreading sequence or spreading-code sequence. The transmitted information in the radio signal is coded (spread) by a specific spreading code in the transmitter. At the receiving end the coded information is decoded (despread) by 20 correlating with the same specific spreading code again or by filtering the received information in a matched filter. A spreading code of the same length as the symbol interval is called a short spreading code. Orthogonal codes are codes that has zero cross correlation for 25 zero time offset. The use of orthogonal codes will reduce the intra-cell interference, i.e. interference from other forward link signals in the same cell. Normally the intra-cell WO99/12284 PCT/SE98/01541 2 interference will not be completely eliminated as time dispersion will partly destroy the orthogonality between signals coded with orthogonal codes. In general, a set of orthogonal codes does only contain a finite 5 number of codes, where the number of codes is always smaller or the same as the length of the codes. Consequently, as there are only a finite number of orthogonal spreading codes available, spreading codes which are almost orthogonal or non-orthogonal has to be used to increase the 10 number of simultaneous users or increase the bit-rate of the system. On a DS-CDMA forward-link (transmission from a base station to a radio unit), orthogonal spreading codes are often used to separate different radio channels. 15 When a connection through a radio channel uses more than one spreading code, it is said to use so-called multi-code transmission. For variable bit-rate connections, i.e. a connection where the bit-rate varies during the duration of a call, the number of 20 spreading codes actually used by each connection will vary in time and between the different connections. A high bit-rate uses more spreading codes than a lower bit-rate. One example of a scheme to assign spreading codes to a connection with a variable bit-rate in a radio communication 25 system is the static allocation. A static allocation means that each connection is, at call set up, allocated as many spreading codes as is needed to be able to transmit at a requested maximum bit-rate.
WO99/12284 PCT/SE98/01541 3 This means that a small number of connections with variable bit rate connection might allocate all available spreading codes even if they do not have to use all of them simultaneous. Another example of a scheme to assign spreading codes to a 5 connection is the dynamic allocation. A dynamic allocation means that all connections share a common pool of spreading codes that are continuously redistributed by a base station, according to the instantaneous need of each connection. 10 Each time the bit-rate at a connection is to be increased the base station has to inform the radio unit what new spreading codes to receive. This will require a significant overhead in the communication between the base station and radio unit. The US patent US 5 533 013 describes a method and a system for 15 assigning complete orthogonal spreading codes and radio channels in a combined CDMA/TDMA or TDMA/CDMA communication system. Said method comprises the step of assigning an orthogonal spreading code selected from a set of complete orthogonal spreading codes. Said system comprises means for assigning orthogonal spreading 20 codes selected from at least one code set of complete orthogonal spreading codes. If more than one set, the code sets of complete orthogonal spreading codes have been selected so that they are completely orthogonal in relation to each other. The US patent US 5 452 328 describes a method for assigning 25 disjoint sets of binary spreading-code sequences to different nodes in a multi-node communication network. Each node in the network is allotted spreading-code sequences which are selected from a family of "almost orthogonal" binary sequences. The patent also describes an apparatus and a method WO99/12284 PCT/SE98/01541 4 for generating said family of sequences by combining a first and a second multi-stage shift register. As will be seen herein, each of the methods disclosed in these patents is of a different construction than the method of the 5 present invention. The name radio unit includes all portable and non-portable equipment intended for radio communication, like mobile phones, pagers, telex, electronic notebooks and communicators. These equipment's can be used in any type of radio communication 10 system, such as cellular networks, satellite or small local networks. SUMMARY The present invention meets problems related to how a forward link connection is assigned specific spreading codes in a DS 15 CDMA communication system where only a finite number of orthogonal spreading codes are available. One problem occurs when the system is using static allocation for variable bit-rate connections. The system may run out of spreading codes even if only a small number of spreading codes 20 are actually used simultaneous. Each connection has allocated the amount of spreading codes that is needed for the maximum bit-rate irrespective of if the maximum bit-rate is needed for only a short time. Another problem occurs when the system is using dynamic 25 allocation for variable bit-rate connections. A significant overhead in the communication between the base station and the radio unit is needed to inform the radio unit what new spreading codes to receive each time the bit-rate is increased.
WO99/12284 PCT/SE98/01541 5 In light of the foregoing, a primary object of the present invention is to provide methods and means to assign spreading codes for radio units in a DS-CDMA communication system with variable bit-rate connections. 5 Another object of the present invention is to provide a large number of available spreading codes which is not limited by the amount of orthogonal spreading codes available in a DS-CDMA communication system. A further object of the present invention is to avoid re 10 allocation of spreading codes during the call in a DS-CDMA communication system. In accordance with a first aspect of the present invention, spreading codes are assigned to forward-link connections from a first set of orthogonal spreading codes as long as there are 15 spreading codes available in the first set. When all spreading codes in the first set is allocated, a second set of orthogonal spreading codes which are non-orthogonal to the spreading codes in the first set is used from which spreading codes are assigned to the forward-link connections. When applicable, more than two 20 sets of spreading codes are used. According to a second aspect of the present invention, spreading codes assigned to forward-link connection are assigned from two different code sets. A first group of the spreading codes is assigned from the first code set and a second group of the 25 spreading codes is assigned from the second code set. When applicable, more than two sets of spreading codes are used. The present invention includes methods for assigning spreading codes to variable bit-rate forward-link connections. The methods include the step of assigning spreading codes from a first set WO 99/12284 PCT/SE98/01541 6 of orthogonal spreading codes. The method also includes the step of assigning spreading codes from a second set of orthogonal spreading codes which are non-orthogonal to the spreading codes in the first set. 5 According to the first aspect of the present invention, spreading codes are first assigned from the first set of spreading codes. Spreading codes are then assigned from the second code set when all spreading codes in the first code set is allocated. The number of code sets can be extended to more 10 than two code sets. According to the second aspect of the invention, the spreading codes are assigned from two different code sets. A first group of spreading codes is assigned from the first code set and a second group of spreading codes is assigned from the 15 second code set. The first group of the spreading codes comprises those codes which are most frequently used. The second group comprises the remaining codes. More than two code sets can be used. One advantage with the present invention is that the number of 20 simultaneous allocated spreading codes is not hard limited by the size of a code set. Another advantage is that each connection is allocated a number of spreading codes at call set-up. No further spreading code re allocation is needed.
WO99/12284 PCT/SE98/01541 7 BRIEF DESCRIPTION OF THE DRAWINGS These above mentioned objects and other features of the present invention will become more readily apparent upon reference to the following description when taken in conjunction with the 5 accompanying drawings. Figure 1 is an illustration of a base station and four radio units in a DS-CDMA communication system. Figure 2 is an illustration of an example of a set of code sets in accordance with the present invention. 0 Figure 3 is a first part of a flow chart illustrating a first embodiment of a method in accordance with the present invention. Figure 4 is a second part of the flow chart in figure 3. Figure 5 is an illustration of a set of code sets with assigned spreading codes in accordance with the first embodiment in 5 figure 3 and 4. Figure 6a is a first part of a flow chart illustrating a second embodiment of a method in accordance with the present invention. Figure 6b is a second part of the flow chart in figure 6a. Figure 7 is an illustration of four groups of spreading codes. 20 Figure 8 is an illustration of a set of code sets with assigned spreading codes in accordance with the second embodiment in figure 6a-b.
WO99/12284 PCT/SE98/01541 8 DETAILED DESCRIPTION OF EMBODIMENTS The present invention relates to methods for assigning spreading codes to forward-link connections in DS-CDMA communication systems. The forward-link connections are radio connections 5 where the bit-rate can be varied (variable bit-rate) during the duration of a call. The spreading codes can be assigned at call set-up and e.g. at handover and during set-up of additional services. Figure 1 shows a base station B and four radio units Ul-U4 in a 10 DS-CDMA communication system. Each radio unit Ul-U4 has a forward-link connection Cl-C4, with a variable bit-rate, between the base station B and the respective unit Ul-U4. When a first forward-link connection C1 between the base station B and the radio unit U1 is to be set up a specified number of 15 spreading codes are assigned to the first forward-link connection C1 by the base station B or by some other part of the communication system. The spreading codes assigned to this forward-link connection Cl can not be assigned to new forward link connections C2-C4 within the same cell as long as the first 20 forward-link connection C1 is up. The number of spreading codes which are assigned to each of the connections is determined by the desired bit-rate according to the following: A connection with a high bit-rate needs more spreading 25 codes than a connection with a low bit-rate. A connection with multi-code transmission uses several codes in parallel to increase the bit-rate.
WO99/12284 PCT/SE98/01541 9 Figure 2 shows an example of a set 20 of code sets S1-Sn according to the present invention. A first code set S1 comprises a number of orthogonal spreading codes mi. A second code set S2 also comprises a number of orthogonal 5 spreading codes m 2 . These spreading codes are orthogonal in relation to each other but non-orthogonal in relation to the spreading codes in the first code set SI. A third code set S3 also comprises a number of orthogonal spreading codes m 3 . These spreading codes are orthogonal in 10 relation to each other but non-orthogonal in relation to the spreading codes in the first and second code set S1 and S2. The number of code sets n with spreading codes can be more than three. Figure 3 and 4 show a flow chart of a first embodiment of a 15 method according to the present invention where a number of spreading codes corresponding to a requested bit-rate are assigned to a variable bit-rate forward-link connection CI. In a step 31a the number of spreading codes needed to transmit at the requested bit-rate between a base station B and a radio 20 unit U1 on the forward-link connection C1 is determined. In a step 31b the number of available (not assigned) spreading codes in all available code sets is determined. If there are less spreading codes available than the spreading codes needed the method ends, otherwise it continues with a step 32. 25 In step 32 the number of available (not assigned) spreading codes in a selected first set S1 of orthogonal spreading codes is determined. If there are no available spreading codes in the first set S1 of spreading codes the method continues with a step 35. If there are available spreading codes in the first set Si 30 of spreading codes the method continues with a step 33.
WO99/12284 PCT/SE98/01541 10 In step 33 a number of spreading codes, not exceeding the number of spreading codes needed on the forward-link connection C1, are assigned from the first set S1 of spreading codes to the forward-link connection C1. 5 In a step 34 the number of spreading codes needed is compared with the number of spreading codes assigned from the first set S1 of spreading codes. The method ends if the number of spreading codes needed are equal to the number of spreading codes assigned from the first set S1 of spreading codes, LO otherwise it continues with a step 35. In step 35 the number of available spreading codes in a selected second set S2 of orthogonal spreading codes is determined. If there are no available spreading codes in the second set S2 of spreading codes the method continues with a step 38. If there 15 are available spreading codes in the second set S2 of spreading codes the method continues with a step 36. In step 36 a number of spreading codes, not exceeding the number of spreading codes needed on the forward-link connection C1, are assigned to the forward-link connection C1. 20 In a step 37 the number of spreading codes needed is compared with the number of spreading codes assigned from the first and second set of spreading codes S1, S2 respectively. The method ends if the number of spreading codes needed are equal to the number of spreading codes assigned from the first and second set 25 of spreading codes S1, S2 respectively, otherwise it continues with step 38. In step 38, shown in figure 4, the number of code sets is determined. The method continues with a step 39 if the number of code sets is three, otherwise it ends.
WO99/12284 PCT/SE98/01541 11 In step 39 the number of available spreading codes in a selected third set S3 of orthogonal spreading codes is determined. If there are no available spreading codes in the third set S3 of spreading codes the method continues with a step 42. If there 5 are available spreading codes in the third set S3 of spreading codes the method continues with a step 40. In step 40 a number of spreading codes, not exceeding the number of spreading codes needed on the forward-link connection C1, are assigned from the third set S3 of spreading codes. 10 In a step 41 the number of spreading codes needed is compared with the number of spreading codes assigned from the first, second and third set of spreading codes S1, S2, S3 respectively. The method ends if the number of spreading codes needed are equal to the number of spreading codes assigned from the first, 15 second and third set of spreading codes S1, S2, S3 respectively, otherwise it continues with step 42. In step 42, the number of code sets is determined. If the number of code sets is three the method ends, otherwise it continues with more steps similar to the previous steps 39-42 as long as 20 there are more spreading codes to be assigned and more sets Si Sn of codes available. The method according to figure 3 and 4 is repeated each time a new forward-link connection is to be set-up. Figure 5 shows an illustration of a set 50 of code sets S1-Sn 25 comprising spreading codes according to the first embodiment. The first forward-link connection C1 between the base station B and the radio unit Ul, see figure 1, has been assigned a first number of spreading codes x from the first set S1 of spreading codes. A second forward-link connection C2 has been assigned a 30 second number of spreading codes y. A first part y-kl of the WO99/12284 PCT/SE98/01541 12 second number of spreading codes y are taken from the first set S1 of spreading codes and is assigned to the second forward-link connection C2. The first part y-kl of the second number of spreading codes y comprises at least one complete spreading 5 code. A second part k, of the second number of spreading codes y is taken from the second set S2 of spreading codes and is assigned to the second forward-link connection C2. The second part k, of the second number of spreading codes y comprises at least one complete spreading code. The number of non-assigned LO spreading codes in the first set S1 of spreading codes were less than y so more spreading codes where assigned from the second set S2 of spreading codes. A third forward-link connection C3 has been assigned a third number of spreading codes z from the second set S2 of spreading 15 codes. A fourth forward-link connection C4 has been assigned a fourth number of spreading codes w. A first part w-k 2 of the fourth number of spreading codes w is taken from the second set S2 of spreading codes and is assigned to the fourth forward-link 20 connection C4. The first part w-k 2 of the fourth number of spreading codes w comprises at least one complete spreading code. A second part k 2 of the fourth number of spreading codes w is taken from the third set S3 of spreading codes and is assigned to the fourth forward-link connection C4. The second 25 part k 2 of the fourth number of spreading codes w comprises at least one complete spreading code. Figures 6a-b show a flow chart of a second embodiment of a method according to the present invention where a number of spreading codes corresponding to a requested bit-rate are 30 assigned to a forward-link connection C1 with variable bit-rate. In a step 61a a total number of spreading codes needed to transmit at the requested bit-rate between the base station B WO99/12284 PCT/SE98/01541 13 and a radio unit U1 on the forward-link connection C1 is determined. In a step 61b the number of available (not assigned) spreading codes in all available code sets is determined. If there are 5 less spreading codes available than the total number of spreading codes needed the method ends, otherwise it continues with a step 62. In step 62 the total number of spreading codes needed is divided in a first and a second group xj, x 2 respectively. The number of 0 spreading codes needed in the first group x, corresponds to the number of spreading codes which will be most frequently used on the forward-link connection Cl. The number of spreading codes needed in the second group x 2 corresponds to the number of spreading codes which will be less frequently used on the 5 forward-link connection C1. Together the first and second group x 1 , x 2 respectively will include the total number of spreading codes needed for the forward-link connection C1. In a step 63 the number of available (not assigned) spreading codes in a selected first set S1 of orthogonal spreading codes .0 is determined. If there are no available spreading codes in the first set S1 of spreading codes the method continues with a step 70, see page 14. If there are available spreading codes in the first set S1 of spreading codes the method continues with a step 64. 25 In step 64 a number of spreading codes, not exceeding the number of spreading codes needed to the first group xj, are assigned to the first group of spreading codes x, from the first set S1 of spreading codes. In a step 65 the number of spreading codes needed in the first 30 group x, is compared with the number of spreading codes assigned WO99/12284 PCT/SE98/01541 14 from the first set S1 of spreading codes. If the number of spreading codes needed in the first group x, is equal to the number of spreading codes assigned from the first set S1 of spreading codes the method continues with a step 66 to assign 5 spreading codes to the second group x 2 , otherwise it continues with step 70 to assign more spreading codes to the first group
X
1 . In step 66, shown in figure 6b, the number of available (not assigned) spreading codes in a selected second set S2 of 10 orthogonal spreading codes is determined. If there are no available spreading codes in the second set S2 of spreading codes the method continues with a step 69. If there are available spreading codes in the second set S2 of spreading codes the method continues with a step 67. 15 In step 67 a number of spreading codes, not exceeding the number of spreading codes needed to the second group x 2 , are assigned to the second group x 2 from the second set S2 of spreading codes. In a step 68 the number of spreading codes needed in the second 20 group x 2 is compared with the number of spreading codes assigned from the second set S2 of spreading codes. The method ends if the number of spreading codes needed in the second group x 2 is equal to the number of spreading codes assigned from the second set S2 of spreading codes, otherwise it continues with step 69 25 to assign more spreading codes to the second group x 2 . In step 69, the number of code sets is determined. The method continues with steps similar to the previous steps 63-69 if the number of code sets is more than two, otherwise it ends.
WO99/12284 PCT/SE98/01541 15 In step 70 the number of available spreading codes in the selected second set S2 of orthogonal spreading codes is determined. If there are no available spreading codes in the second set S2 5 of spreading codes the method continues with a step similar to step 69 to search for more code sets. If there are available spreading codes in the second set S2 of spreading codes the method continues with a step where spreading codes is assigned to the first group x, from the second code set S2. 10 The spreading codes to the second group x 2 is then assigned from a third set S3 of spreading codes. The method according to figures 6a-b continue with steps similar to the previous steps 63-70 as long as there are more spreading codes to be assigned and more sets of codes S1-Sn available. 15 The method is repeated each time a new forward-link connection with variable bit-rate is to be set-up. Figure 7 shows an example of four groups of spreading codes G1, G2, G3, G4 respectively assigned to four different variable bit rate forward-link connections Cl-C4. Each group G1, G2, G3, G4 20 respectively comprises the total number of spreading codes needed in each forward-link connection Cl-C4. The total number of spreading codes needed in each forward-link connection Cl-C4 is divided in the first and second group of spreading codes xj, YI, z 1 , w 1 , x 2 , Y21 z 2 , w 2 respectively, where each group x,, Yi, 25 z 1 , w 1 , x 2 , Y 2 , z 2 , w 2 respectively comprises complete spreading codes. Figure 8 shows an illustration of a set 80 of code sets Si-Sn according to the second embodiment of the method in figure 6. The first forward-link connection C1 with variable bit-rate 30 between the base station B and the radio unit Ul, see figure 1, has been assigned spreading codes from the first S1 and second WO 99/12284 PCT/SE98/01541 16 S2 code set. The first group x, of spreading codes has been assigned from the first code set S1 and the second group x 2 of spreading codes has been assigned from the second code set S2. The second forward-link connection C2 with variable bit-rate 5 between the base station B and the radio unit U2, see figure 1, has been assigned spreading codes from the first S1 and second S2 code set. The first group yx of spreading codes has been assigned from the first code set S1 and the second group y 2 of spreading codes has been assigned from the second code set S2. 10 The third forward-link connection C3 with variable bit-rate between the base station B and the radio unit U3, see figure 1, has been assigned spreading codes from the first Si and second S2 code set. The first group z, of spreading codes has been assigned from the first code set S1 and the second group z 2 of 15 spreading codes has been assigned from the second code set S2. The fourth forward-link connection C4 with variable bit-rate between the base station B and the radio unit U4, see figure 1, has been assigned spreading codes from the first S1 and third S3 code set. The first group w, of spreading codes has been 20 assigned from the first code set S1 and the second group w 2 of spreading codes has been assigned from the third code set S3. There were no non-assigned spreading codes in the second code set S2 left so more spreading codes where assigned from the third code set S3. 25 The signals which have been coded by short spreading codes in the methods according to the present invention can be scrambled. Signals in a forward-link connection which have been coded by short spreading codes is scrambled by a common (long) Pseudo Noise code (PN-code). The scrambling randomise the interference 30 between the cells. The scrambling will not affect the orthogonality between the signals in one cell as all signals WO99/12284 PCT/SE98/01541 17 uses the same PN-code. The neighbouring cells uses different PN codes.

Claims (13)

1. A method for assigning spreading codes to a first corresponding forward-link connection (Cl) among a plurality of forward-link connections (Cl-C4) in a DS-CDMA communication 5 system having a plurality of radio units (Ul-U4), comprising the following steps: a) assigning (33) spreading codes from a selected first set (Sl) of orthogonal spreading codes to said first forward link connection (Cl), 10 c h a r a c t e r i s e d in the further step of: b) assigning (36) spreading codes from a selected second set (S2) of orthogonal spreading codes to said first forward-link connection (CI) if said first forward-link connection (Cl) requires more spreading codes then there are available in said 15 first set (Sl) of orthogonal spreading codes, where at least one of said spreading codes of said second set (S2) of orthogonal spreading codes are non-orthogonal to at least one of said spreading codes of said first set (Sl) of orthogonal spreading codes. 20
2. A method as claimed in claim 1, c h a r a c t e r i s e d in that said assigning (33, 36) according to step a)-b) implies assigning said spreading codes to said first forward-link connection (Cl) at call set-up.
3. A method as claimed in claim 1 or 2, 25 c h a r a c t e r i s e d in that said assigning (33, 36) according to step a)-b) implies assigning of a number of spreading codes to said first forward-link connection (Cl), where said number of spreading codes is determined by a requested maximum bit-rate. 30 WO 99/12284 PCT/SE98/01541 19
4. A method as claimed in one of claims 1-3, c h a r a c t e r i s e d in that said forward-link connection (Cl) is a variable bit-rate forward-link connection (Cl).
5. A method as claimed in one of claims 1-4, 5 c h a r a c t e r i s e d in that said DS-CDMA communication system provides multi-code transmission.
6. A method as claimed in one of claims 1-5, c h a r a c t e r i s e d in that said method further comprises the step of: .0 c) assigning (40) spreading codes from a selected third set (S3) of orthogonal spreading codes to said first forward-link connection (Cl), if said first forward-link connection (Cl) requires more spreading codes then there are available in said first (Si) and second (S2) set of orthogonal spreading codes, L5 where at least one of said spreading codes of said third set (S3) of orthogonal spreading codes are non-orthogonal to at least one of said spreading codes of said first (Sl) and second (S2) set of orthogonal spreading codes.
7. A method for assigning spreading codes to corresponding 20 forward-link connections (CI-C4) in a DS-CDMA communication system having a plurality of radio units (Ul-U4), comprising the following steps: a) assigning (33) a first number of spreading codes (x) from a first set (Si) of orthogonal spreading codes to a first 25 forward-link connection (Ci); c h a r a c t e r i s e d in the further step of: b) assigning (33) a first part (y-kj) of complete spreading codes of a second number of spreading codes (y) from said first set (Si) of spreading codes to a second forward-link 30 connection (C2); WO99/12284 PCT/SE98/01541 20 c) assigning (36) a second part of complete spreading codes (k) of said second number of spreading codes (y) from a second set (S2) of orthogonal spreading codes to said second forward link connection (C2), where at least one of said spreading codes 5 of said second set (S2) are non-orthogonal to at least one of said spreading codes of said first set (Sl).
8. A method for assigning a number of spreading codes to a first corresponding forward-link connection (Cl) among a plurality of forward-link connections (Cl-C4) in a DS-CDMA communication 10 system having a plurality of radio units (Ul-U4), c h a r a c t e r i s e d in the following steps: a) assigning (64) a first group (x) of complete spreading codes to said first forward-link connection (CI) from a selected first set (Sl) of orthogonal spreading codes; 15 b) assigning (67) a second group (x 2 ) of complete spreading codes to said first forward-link connection (CI) from a selected second set (S2) of orthogonal spreading codes, where at least one of said spreading codes of said second set (S2) are non orthogonal to at least one of said spreading codes of said first 20 set (Sl), and where said first (xj) and second (x 2 ) group of spreading codes includes said number of spreading codes needed for said forward-link connection (Ci).
9. A method as claimed in claim 8, c h a r a c t e r i s e d in that said assigning (64, 67) 25 according to step a)-b) implies assigning the spreading codes to said first forward-link connection (CI) at call set-up.
10. A method as claimed in claim 8 or 9, c h a r a c t e r i s e d in that said number of spreading codes needed to said first forward-link connection (Cl) is determined 30 by a requested maximum bit-rate.
11. A method as claimed in one of claims 8-10, WO99/12284 PCT/SE98/01541 21 c h a r a c t e r i s e d in that said forward-link connection (Cl) is a variable bit-rate forward-link connection (Cl).
12. A method as claimed in one of claims 8-11, c h a r a c t e r i s e d in that said DS-CDMA communication 5 system provides multi-code transmission.
13. A method for assigning a total number of spreading codes to corresponding forward-link connections (Cl-C4) with variable bit-rate in a DS-CDMA communication system having a plurality of 10 radio units (Ul-U4), c h a r a c t e r i s e d in the following steps: a) assigning (64) a first group (xj) of complete spreading codes to a first forward-link connection (Cl) from a first set (Sl) of orthogonal spreading codes; 15 b) assigning (64) a first group (yj) of complete spreading codes to a second forward-link connection (C2) from said first set (Sl) of orthogonal spreading codes; c) assigning (67) a second group (x 2 ) of complete spreading codes to said first forward-link connection (Cl) from a second 20 set (S2) of orthogonal spreading codes, where at least one of said spreading codes of said second set (S2) are non-orthogonal to at least one of said spreading codes of said first set (Sl), and where said first (xj) and second (x 2 ) group of spreading codes to said first forward-link connection (Cl) includes the 25 total number of spreading codes needed for said first forward link connection (Cl); d) assigning (67) a second group (y 2 ) of complete spreading codes to said second forward-link connection (C2) from said second set (S2) of orthogonal spreading codes, where said first 30 (y 1 ) and second (y 2 ) group of spreading codes to said second forward-link connection (C2) includes the total number of spreading codes needed for said second forward-link connection (C2).
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