EP1305965A1 - Verfahren zum zuweisen von funkbetriebsmitteln - Google Patents
Verfahren zum zuweisen von funkbetriebsmittelnInfo
- Publication number
- EP1305965A1 EP1305965A1 EP00934847A EP00934847A EP1305965A1 EP 1305965 A1 EP1305965 A1 EP 1305965A1 EP 00934847 A EP00934847 A EP 00934847A EP 00934847 A EP00934847 A EP 00934847A EP 1305965 A1 EP1305965 A1 EP 1305965A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- mobile terminal
- ifw
- codes
- interference free
- different
- 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- Withdrawn
Links
Classifications
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0007—Code type
- H04J13/0055—ZCZ [zero correlation zone]
- H04J13/007—LAS, i.e. LA, LS and LAS codes
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/16—Code allocation
- H04J13/22—Allocation of codes with a zero correlation zone
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
- H04W72/541—Allocation or scheduling criteria for wireless resources based on quality criteria using the level of interference
Definitions
- the present invention relates to the methods for assigning radio resources in a wireless system, and more particularly to the methods and means for assigning radio resources in a wireless system utilizing the orthogonal spread codes with an Interference Free Window (IFW) property.
- IFN Interference Free Window
- LS code has the special property that the auto correlation of an LS code is zero, except at the origin, when the two copies of the LS codes are synchronized to with a window of n chips.
- LS code has another special property that the cross correlation between two different LS codes are zero when the two codes are synchronized to the same n-chip window.
- Interference Free Window or IFW is used in place of the term Zero Correlation Window.
- the wireless systems, the signals, the air interface which utilize LS codes as the orthogonal spread codes will be respectively referred to as LS coded wireless systems, LS coded signals, and LS coded air interface.
- IFW wireless systems the signals, the air interface which utilize orthogonal spread codes with an IFW property
- IFW wireless systems IFW signals
- IFW air interface IFW air interface
- any LS coded signal arriving at a receiver will result in no interference after de-correlation for a particular mobile or fixed transmitter. This is true for reflected signals from the transmitter or for signals from another transmitter.
- MAI Multiple Access Interference
- ISI Inter-Symbol Interference
- Any uplink signal, either from the same or a different mobile terminal which is not received within this window by the Base Station will result in MAI and ISI, thus reducing transmission quality and system capacity.
- the present invention contains the first proposal that allows the adaptation to the radio propagation conditions of different mobile terminal using the new concept of Interference Free Window.
- the present invention involves a method for adapting the IFW air interface to the radio propagation conditions of different mobile terminals within the same cell. This is achieved by first utilizing the special feature of LS coded wireless system where an IFW of a given size can be associated with the LS codes. A larger IFW can tolerate larger delay spread of the transmitted signal. However, there is a trade off between the IFW size and the number of available LS codes and consequently system capacity. The larger the IFW, the smaller the number of available LS codes. It is thus advantageous to limit the IFW size to the minimal required value so that larger number of LS codes will be available for carrying user traffic.
- the radio propagation condition of each mobile terminal varies depending on its location and other factors. This means that the minimum IFW that can achieve acceptable performance, such as bit error rate, varies from user to user (or user group to user group).
- This invention provides a method and means for achieving the followings in a LS coded wireless system:
- the invention relies on the notion that the transmission from a fixed or mobile transmitter of an LS coded wireless system can be separated by the receiver from the transmission from other transmitters by a number of different means.
- This separation can for example be realized: in the time domain by limiting some transmitters to transmit within certain time slots; - in the space domain by using adaptive antenna arrays to distinguish areas of different delay spreads; in the frequency domain by allocating different RF carriers to transmitters with different delay properties; by allocating different code divided channels to mobiles belonging to different delay spread categories.
- the method according to the present invention is composed of the following steps:
- Each partition supports a different IFW. For example, in the time domain, this can be achieved by allocating different IFW to different SF. In the space domain, this can be achieved by allocating different IFW to different directional antenna. In the frequency domain, this can be achieved by allocating different IFW to different carrier.
- the IFW assignment procedure is performed such that the mobile terminal is assigned radio resource that supports an IFW that is most suitable to the radio propagation condition of the mobile terminal.
- the network constantly evaluates the radio propagation condition of the mobile terminal. If there is a change in the radio propagation environment such that the interference level of the mobile terminal improves or degrades, the mobile terminal is assigned to another radio resource with a different IFW. This procedure is called the IFW handoff procedure.
- Figure 1 describes a LAS-2000 frame structure and shows how the frame is further divided into sub-frames and time-slots according to a preferred embodiment of the present invention.
- Figure 2 shows the generating tree of the LS code and demonstrates the relationship between the Interference Free Window and the number of available LS codes.
- Figure 3 shows an example of the allocation of different IFW windows to different SFs within the 20 ms LAS-2000 frame structure such that each 20 ms sub- frame supports 2 rFWs.
- Figure 4 shows an example of the allocation of different IFW windows to different SFs within the 20 ms LAS-2000 frame structure such that each 20 ms sub- frame supports 3 IFWs.
- Figure 5 shows the steps of the IFW assignment procedure that is performance when a channel resource request is received from the mobile terminal.
- Figure 6 shows the steps of the IFW handoff that is performance when a voice call or a data session has been established between the mobile terminal and the network.
- the system can be configured to tolerate different interference condition of the mobile terminals.
- interference may originate from several sources.
- the primarily sources of interference include Inter-Symbol interference (ISI), Multiple Access Interference (MAI), Adjacent Cell Interference (ACI), and noise.
- ISI is caused by the existence of multiple reflected paths of the same transmission associated with a mobile terminal. Due to the unequal time dispersion characteristics of the different reflected paths, neighboring symbols of the same transmission overlaps each other and results in interference.
- MAI is the results of interference between the transmission paths of different mobile terminals within the same cell. It has been demonstrated that it is difficult to design codes that has high tolerance for both ISI and MAI.
- ACI is generated by the transmission of the mobile terminals in a neighboring channel or cell, while noise is generated by sources that do not belong to the wireless communications system under discussion.
- the IFW wireless system has a special characteristic that if the multiple transmission paths, either belonging to the same or different mobiles, are synchronized to within a given Interference Free Window of n chips, then both ISI and MAI can be eliminated.
- a method for adapting the IFW to the ISI and MAI conditions of the mobile terminal is provided such that the best ISI and MAI characteristics can be achieved without unnecessary reduction in the total capacity of the IFW wireless system.
- Figure 1 describes the LAS-2000 (Large Area Synchronous) frame structure and shows how the frame is further divided into sub-frames and time-slots according to the present invention.
- LAS-2000 is an operation model of IFW wireless system that is compatible to IS-2000.
- W-LAS Wideband-LAS
- W-LAS Wideband-LAS
- the LAS-2000 frame is 20 ms long and is divided into 10 Sub-Frames (SFs). Each 20 ms frame consists of 24576 chips. The first SF consists of 1545 chips and is used for carrying the Broadcast and Synchronization Channel in the forward link and the Access and Synchronization Channel in the reverse link. The remaining 9 SFs, each consists of 2559 chips, are used for carrying user traffic and other signaling channels, such as common control channels and pilot channel.
- SFs Sub-Frames
- Each SF is divided into 17 time-slots (TSs).
- TSO is primarily used for carrying the pilot channel, even though it can be used for other purposes as well.
- TSs 1 to 16 are used for carrying user traffic as well as signaling information.
- the specific starting position of the TSs within the SF is governed by the LA code to be used.
- the LA code was disclosed in PCT application PCT/CN98/00151 entitled "A Spread Spectrum Multiple Access Coding Method," that was invented by Li Daoben.
- the present invention utilizes the LA code as described in PCT/CN98/00151 such that each SF carries a (136, 17, 2259) LA code.
- This LA code consists of 17 pulses with a period of 2559 chips.
- Each LA pulse corresponds to a time-slot within the SF.
- the first time-slot may be used as the Pilot and the remaining 16 time-slots can be used for carrying user data or signaling information.
- Each TS carries an LS code, the LS code is divided into the C and S components, each of 64 chips long. There are two 4-chip gaps within the LS code, one located before the C component and another one located between the C and the S component.
- Figure 2 shows the generating tree of the LS code, it can be seen that, at the root of the tree, there is a pair of LS codes called the originators. The number of LS codes doubles when the tree goes down by one layer and the LS code length doubles. There are altogether 128 LS codes of 128 chips long (C and S components together) at the bottom of the tree when a root of length 2 is used.
- the minimum IFW of a tree or subtree depends on how the LS codes are selected within the overall tree. If all LS codes are made available for use with a carrier, the IFW size is equal to 1 chip or [0, 0].
- the minimum size of the IFW can be increased to 3 chips or [-1,+1] when only half of the 128 LS codes are used, for example LS codes 1-64, or LS codes 65-128. Similarly, if only one quarter of the 128 LS codes are used, either LS codes 1-32, 33-64, 65-96, or 97-128, then the IFW size will increase to 7 chips or [-3, +3], and so on. There is thus a trade of between IFW size and the number of available LS codes.
- This invention proposes a method for adapting the set of available LS codes according to the measured delay spread for each mobile or fixed transmitter.
- the invention relies on the separation of the mobiles depending on their multi-path transmission characteristics.
- One way to achieve this is to use the time domain by first partitioning the SFs into two or more groups where each group is associated with an LFW, then allocate SFs from different groups to different mobile terminals according to the radio propagation condition experienced by the mobile terminal, as illustrated by the following preferred embodiments.
- each 20 ms frame carries two voice channels per LS code.
- the first four SFs are used to carry one voice channel
- the next four SFs are used to carry another voice channel
- SF9 is used for signaling or other purposes. It is then possible to allocate different IFWs to the two channels within the 20 ms frame.
- SFs 1 to 4 can be assigned a 1 chip IFW with a maximum of 128 LS codes for carrying voice traffic
- SFs 5 to 8 can be assigned a 3 chips IFW with a maximum of 64 LS codes for carrying voice traffic. This is illustrated in Figure 3.
- the 20 ms LAS-2000 frame is divided into 3 Data Frames (DFs), DF1, DF2 and DF3.
- DFs Data Frames
- DF1 can be assigned an IFW size of 1 chip
- DF2 is assigned an LFW size of 3 chips
- DF3 is assigned an LFW size of 7 chips.
- allocating channel resource mobile terminals are allocated DFs based on their radio propagation condition. Mobile terminals that are in a good radio propagation environment with very small delay spread between it multiple reflected paths can be assigned to DF1. On the other hand, mobile terminals that are experiencing high delay spread on its reflected paths can be allocated to DF2 or DF3.
- IFW size is also affected by other design parameters, such as the gap between the C and S components in the LS code.
- the IFW size mentioned here is the maximum available size given the number of available LS codes.
- Figures 3 and 4 shows only two particular embodiments of the present invention. Other arrangements, such as assigning a different IFW size to each SF or supporting more than 3 IFW sizes within the 20 ms frame, are possible and are not covered in the examples given in Figures 3 and 4.
- Such methods include the use of adaptive antenna arrays using measured multi-path characteristics to separate mobiles exhibiting different multi-path characteristics. Since the signals from transmitters can be separated by these antennas, they do not interfere with transmitters belonging to a different group of multi-path characteristics. Within a group of mobiles with uniform delay characteristics, a minimum IFW can be used according to the delay spread of the group of transmitters.
- the adaptation of LFW to the radio propagation environment of each mobile terminal can be achieved by two additional procedures: the IFW assignment and the LFW handoff procedures.
- the IFW assignment procedure is performed during connection setup or resource assignment.
- the initial radio propagation condition of the mobile terminal is estimated and the mobile is assigned resource in particular SFs, transmitter, or carrier (depending on the particular implementation) that has an IFW that is most suitable for the propagation condition of the mobile terminal.
- the IFW handoff procedure is executed when the radio propagation environment of the mobile terminal has changed during a communication session. If the condition has worsened such that the multi-path delay spread has increased, the mobile terminal can be handed off to SFs, transmitters, or carriers with a larger IFW.
- the mobile terminal can be handed off to SFs, transmitters, or carriers with smaller LFW. In this way, larger IFW is assigned to a mobile terminal only when necessary. This results in better utilization of the wireless channel resources.
- the followings describe in more details the preferred embodiment of the IFW assignment and IFW handoff procedures.
- FIG. 5 shows the flow diagram for the IFW assignment procedure.
- the IFW assignment procedure includes three steps: resource request, IFW decision, and resource assignment.
- the resource request step begins when the network receives a request from the mobile terminal for radio resource. This can be a voice channel request message that is generated by mobile when the user initiates a call, or it can be a packet data channel resource request message generated by the mobile terminal when the user initiates a data session.
- the resource requests can be initiated due to many other reasons, such as in response to a polling from the network, and is not described in details here.
- the network makes a decision on the IFW that is most suitable for the current radio propagation environment of the mobile terminal.
- This step may involve a channel measurement sub-step that is used to evaluate the channel propagation condition of the mobile terminal.
- the IFW decision can be made in a number of ways including, but not limited to, (i) a table lookup procedure such that the channel condition is mapped to a IFW value, or (ii) a worst case assignment procedure such that the mobile is always assigned the largest available LFW. If it is later on determined that a smaller IFW is sufficient for the mobile terminal, an LFW handoff procedure can be performed to reassign the mobile terminal to SFs, transmitter, or carrier with smaller LFW.
- the resource assignment step is initiated once the resource request and LFW decision steps are complete.
- the network sends signaling messages to the mobile terminal indicating the resource assigned to the mobile terminal.
- the mobile terminal may send an acknowledgement to the network and begins transmission on the assigned resource.
- the exact resource request and resource assignment procedure depends on the specific wireless communication standards to be used.
- the above descriptions provide a general view on how the IFW assignment procedure can be performed in a generic wireless network.
- the IFW handoff procedure is performed when channel resource has been allocated to the mobile terminal and the mobile terminal has begun transmission using the allocated radio resource.
- Figure 6 shows the flow diagram of the IFW handoff procedure. This procedure consists of several steps: channel measurement, IFW handoff decision, IFW handoff indication, and IFW handoff.
- the channel measurement step consists of the continuous measurement and evaluation of the channel condition.
- the mobile terminal performs the channel measurement; the result of the measurement is then sent to the network.
- the network performs the channel measurement.
- the network After each measurement period, the network enters into the IFW handoff decision step. During this step, the networks determines the appropriate forward and reverse link LFW sizes for the mobile terminal, and make a decision on whether a IFW handoff should be performed by the mobile terminal. Note that depending on the network, LFW handoff may be enabled for the forward link only, reverse link only, or both forward and reverse. In addition, whether IFW handoff should be performed depends on a number of factors including, but not limited to, the severity of interference condition of the mobile terminal and the traffic load of the channels. Thus an IFW may not be performed even if it is determined that a different IFW is more suitable for the current interference condition of the mobile terminal.
- the network enters into the IFW handoff indication step. During this step, the network indicates to the mobile terminal that an IFW handoff should be performed and provides the mobile terminal all the relevant parameters, such as the identity of the new channel, new transmitter, or new carrier, so that the mobile can perform the IFW handoff.
- the final step is the IFW handoff step when the mobile terminal performs the IFW handoff as indicated by the network.
Landscapes
- Engineering & Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Signal Processing (AREA)
- Quality & Reliability (AREA)
- Mobile Radio Communication Systems (AREA)
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/CN2000/000140 WO2001095656A1 (en) | 2000-06-05 | 2000-06-05 | Methods for assigning radio resources |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP1305965A1 true EP1305965A1 (de) | 2003-05-02 |
Family
ID=4574664
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP00934847A Withdrawn EP1305965A1 (de) | 2000-06-05 | 2000-06-05 | Verfahren zum zuweisen von funkbetriebsmitteln |
Country Status (4)
| Country | Link |
|---|---|
| EP (1) | EP1305965A1 (de) |
| CN (1) | CN1241450C (de) |
| AU (1) | AU2000250580A1 (de) |
| WO (1) | WO2001095656A1 (de) |
Families Citing this family (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN1146163C (zh) * | 2000-10-20 | 2004-04-14 | 华为技术有限公司 | 提高td-cdma系统信道估计准确度的方法 |
| CN1640165A (zh) * | 2003-01-23 | 2005-07-13 | 连宇通信有限公司 | 一种小区搜索和选择的方法及装置 |
| CN101828359B (zh) * | 2007-12-03 | 2012-11-14 | 中兴通讯股份有限公司 | 小区间的资源协调方法 |
| US11298701B2 (en) | 2018-11-26 | 2022-04-12 | King Instrumentation Technologies | Microtiter plate mixing control system |
Family Cites Families (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH08509590A (ja) * | 1994-02-25 | 1996-10-08 | モトローラ・インコーポレイテッド | 通信システムにおいて拡散符号の使用を時分割多重化する方法および装置 |
| US5515396A (en) * | 1994-02-25 | 1996-05-07 | Motorola, Inc. | Method and apparatus for selecting a spreading code in a spectrum spread communication system |
| US5930230A (en) * | 1996-05-28 | 1999-07-27 | Qualcomm Incorporated | High data rate CDMA wireless communication system |
-
2000
- 2000-06-05 CN CN00818857.2A patent/CN1241450C/zh not_active Expired - Fee Related
- 2000-06-05 EP EP00934847A patent/EP1305965A1/de not_active Withdrawn
- 2000-06-05 AU AU2000250580A patent/AU2000250580A1/en not_active Abandoned
- 2000-06-05 WO PCT/CN2000/000140 patent/WO2001095656A1/en not_active Ceased
Non-Patent Citations (1)
| Title |
|---|
| See references of WO0195656A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| CN1433654A (zh) | 2003-07-30 |
| CN1241450C (zh) | 2006-02-08 |
| AU2000250580A1 (en) | 2001-12-17 |
| WO2001095656A1 (en) | 2001-12-13 |
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| 18D | Application deemed to be withdrawn |
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