Channel arrangement method and wireless communication base station device
Abstract
An integrated circuit adapted to control a procedure in a system, in which the system uses a series of physical resource blocks, PRBs, into which a series of consecutive subcarriers are divided into a frequency domain, and defines a mapping structure of distributed virtual resource blocks, DVRBs to PRBs, with DVRBs with the same number of DVRBs being mapped to two of the PRBs with a separation between them, the separation depending on both a number of consecutive PRBs and the bandwidth of the system, and the separation being an integer multiple of said number of consecutive PRBs, the procedure comprising: receive indicative allocation information from DVRB or PRBs, which are assigned in one of a first assignment in which DVRBs are assigned with the same DVRB number, or a second assignment in which PRBs are allocated in units of resource block groups , RBGs, in which the series of PRBs are grouped and each of which is a set of said number of consecutive PRBs, and to receive data transmitted using the assigned DVRBs or PRBs; and decode the data according to the mapping structure that is stored.

Term
2.3 yearsto projected expiry
Projected expiry 26 December 2028, counted from filing; an application has no term until it is granted.
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14 claims: 2 independent, 12 dependent
- 15 10 15 20 25 30 35 40 45 REIVINDICACIONES 1. Un circuito integrado adaptado para controlar un procedimiento en un sistema, en el que sistema utiliza una serie de bloques de recursos físicos, PRBs, en los que son divididas una serie de subportadoras consecutivas en un dominio de frecuencia, y define un estructura de mapeo de bloques de recursos virtuales distribuidos, DVRBs a PRBs, siendo los DVRBs con el mismo número de DVRB mapeados a dos de los PRBs con una separación entre ambos, dependiendo la separación tanto de un número de PRBs consecutivos como del ancho de banda del sistema, y siendo la separación un múltiplo entero de dicho número de PRBs consecutivos, comprendiendo el procedimiento:recibir información de asignación indicativa de DVRB o PRBs, que son asignados en alguna de una primera asignación en la que se asignan DVRBs con el mismo número de DVRB, o una segunda asignación en la que se asignan PRBs en unidades de grupos de bloques de recursos, RBGs, en los que la serie de PRBs son agrupados y cada uno de los cuales es un conjunto de dicho número de PRBs consecutivos, y para recibir datos transmitidos utilizando los DVRBs o PRBs asignados;y descodificar los datos de acuerdo con la estructura de mapeo que está almacenada.
- 2El circuito integrado según la reivindicación 1, en el que número es el tamaño de grupo de bloque de recursos.
- 3El circuito integrado según la reivindicación 1 ó 2, en el que uno o varios de los RBG se asignan en la segunda asignación.
- 4El circuito integrado según cualquiera de las reivindicaciones 1 a 3, en el que, en la primera asignación, los DVRB con el mismo número de DVRB son mapeados a los dos de los PRBs que son diferentes en un dominio de tiempo.
- 5El circuito integrado según cualquiera de las reivindicaciones 1 a 4, en el que los DVRB con números de DVRB consecutivos son asignados en la primera asignación.
- 6El circuito integrado según la reivindicación 5, en el que dicha recepción incluye la recepción de la información de asignación que está basada en un número de DVRB inicial y un número de DVRB asignados con números de DVRB consecutivos.
- 7El circuito integrado según cualquiera de las reivindicaciones 1 a 6, en el que los PRBs a los que no son mapeados los DVRB, se asignan en la segunda asignación.
- 8El circuito integrado según cualquiera de las reivindicaciones 1 a 7, en el que dicha recepción incluye la recepción de la información de asignación que incluye un mapa de bits que indica los RBG que son asignados.
- 9El circuito integrado según cualquiera de las reivindicaciones 1 a 8, en el que, en la segunda asignación, se mapean bloques de recursos virtuales localizados, LVRB, a PRB, y los LVRB se asignan en unidades de los RBG.
- 10El circuito integrado según la reivindicación 9, en el que se asignan los LVRB con números de LVRB consecutivos.
- 11El circuito integrado según la reivindicación 10, en el que dicha recepción incluye la recepción de la información de asignación que indica los LVRB asignados con números de LVRB consecutivos.
- 12El circuito integrado según cualquiera de las reivindicaciones 1 a 11, en el que dos de los DVRB son mapeados a dos de los PRB en la misma frecuencia de una subtrama, respectivamente.
- 13El circuito integrado según cualquiera de las reivindicaciones 1 a 12, en el que se mapean DVRB con números de DVRB no consecutivos a dos de los PRB que son adyacentes entre sí en el dominio de frecuencia.
- 14El circuito integrado según cualquiera de las reivindicaciones 1 a 13, en el que la separación es la mayor de las separaciones que son múltiplos enteros de un número de PRB consecutivos que forman el RBG y que son iguales o menores que Nrb/Nd, donde Nrb es un ancho de banda del sistema expresado como el número total de PRB, y Nd es el número total de DVRB mapeados a PRB en la misma frecuencia de una subtrama, o que son múltiplos enteros de un número de PRB consecutivos que forman el RBG y que están disponibles en función del ancho de banda del sistema.
Independent claims14
293 paragraphs in 1 section, as filed
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DESCRIPTION
Procedure for arranging the channel and device for the wireless communication base station Technical sector
The present invention relates to a channel mapping procedure and a radio communication base station apparatus in a multi-carrier communication.
Prior art
In recent years, various types of information such as images and data, in addition to voice, are transmitted in radio communication, and in mobile communication, in particular. In the future, transmission demands are expected to increase at even higher speeds, and the implementation of high-speed transmission requires a radio transmission technique that uses limited frequency resources more efficiently and achieves high transmission efficiency. speed.
One of the radio transmission techniques that can meet these demands is OFDM (Orthogonal Frequency Division multiplexing, orthogonal frequency division multiplexing). OFDM is a multi-carrier transmission technique for transmitting data in parallel using many subcarriers, it has features such as high frequency efficiency, reduced interference between symbols in a multi-path environment and is known to be effective in improving transmission efficiency.
Discussions are taking place to carry out transmission with frequency planning and transmission with frequency diversity when data is multiplexed in the frequency domain data for a series of radio station mobile station devices (hereinafter simply referred to as "mobile stations ") with a series of subcarriers that use this OFDM in the downlink.
In the transmission with frequency planning, a radio communication base station apparatus (hereinafter, simply called "base station") adaptively allocates subcarriers to each mobile station based on the quality received by frequency band at each mobile station, and thus obtains a maximum multi-user diversity effect and carries out the communication very efficiently. Such transmission with frequency planning is a scheme suitable primarily for data communications or high-speed data communications when the mobile station is traveling at low speed. On the other hand, since the transmission with frequency planning requires feedback from each mobile station of the quality information received, the transmission with frequency planning is inadequate for data communication when the mobile station is traveling at high speed. In addition, frequency planning is normally carried out for each resource block (RB) formed into a block by grouping several adjacent subcarriers into a transmission time unit called a "subframe". The channel for carrying out said transmission with frequency planning is called "localized channel" (hereinafter referred to as "Lch").
On the other hand, in the transmission with diversity of frequencies, the data for each mobile station is distributed throughout the entire band and is assigned to subcarriers in the same, and therefore a great effect of frequency diversity can be obtained. In addition, the transmission with frequency diversity does not require quality information received from the mobile station, and therefore it is an effective scheme in the situation described above in which it is difficult to apply transmission with frequency planning. On the other hand, since the transmission with frequency diversity is carried out independently of the quality received in each mobile station, no effect of diversity is obtained such as in the case of transmission with frequency planning. The channel for carrying out said transmission with a diversity of frequencies is called the "distributed channel" (hereinafter referred to as "Dch").
In addition, the transmission with frequency planning by Lch and the transmission with frequency diversity by Dch can be carried out at the same time. That is, the RBs used for Lch and the RBs used for Dch in a series of subcarriers of an OFDM symbol can be multiplexed in the frequency domain. In this case, each RB and Lch are associated with each other, and each RB and Dch are previously associated with each other, and it is controlled in the subframe units which RBs should be used as Lch or as Dch.
In addition, studies are being carried out to divide RBs for use for Dch into a series of subblocks and configure a Dch using a combination of different RB sub-blocks (for example, see non-patent document 1). More specifically, when an RB is divided into two sub-blocks, a Dch maps to two divided sub-blocks. Non-patent document 1: R1-072431 "Comparison between RB-level and Sub-carrier-level Distributed Transmission for Shared Data Channel in E-UTRA Downlink" 3GPP TSG RAN WG1 LTE Meeting, Kobe, Japan, May 7-11, 2007
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Description of the invention
Problems to be solved by the invention
In accordance with the prior art described above, the interval between RBs to which a Dch is mapped (hereinafter referred to as "RB range") is determined. For example, a Dch maps to two RB sub-blocks where the range of RBs is "floor" (number of all RBs / 2). In this case, the floor operator (x) indicates the maximum integer that does not exceed x. This requires only that the Dch channel number from the base station to the mobile station be indicated, and therefore the amount of control information can be reduced a small value. In addition, Dchs can be mapped to RBs at equal intervals. Therefore, since the range of RBs of RB in which a Dch is mapped is previously determined, the base station first assigns Dchs to resource blocks and then assigns Lchs to resource blocks, to prevent collision between the allocation of Dchs and the allocation of Lchs.
In this case, when the base station assigns a series of Dchs to a mobile station, the frequency diversity effect does not change substantially regardless of which Dch is assigned to resource blocks, and therefore a series of Dchs are assigned with numbers of continuous channel. Thus, by indicating only the first channel number and the last channel number between the continuous channel numbers, from the base station to the mobile station, the mobile station can estimate the Dchs assigned to the mobile station. Therefore, it is possible to reduce the control information to indicate the result of the Dch allocation.
On the other hand, when the base station assigns Lchs, the base station notifies the mobile station of the RBs to which Lchs have been assigned, by means of a bitmap assignment report to assign Lchs to high quality RBs. In this case, the base station groups a series of RBs into a series of groups of RBs, allocates Lchs in units of groups of RBs, and thereby reduces the control information to indicate the result of the Lchs assignment. For example, in a system with 14 RBs, mapping for each RB requires 14 bits of control information, but the allocation in units of groups of RBs formed with 2 RBs requires only 7 bits of control information.
However, when Dchs are mixed with Lchs, if it is assumed that the range of RBs between RBs to which a Dch is mapped is floor (number of all RBs / 2), there may be a case in which they cannot be assign Lchs in units of groups of RBs. Therefore, there may be some unoccupied RBs and the efficiency of utilization of communication resources may be impaired. As a result, the system flow deteriorates. In this case, assigning unused and unused RBs to Lchs requires the allocation of Lchs in RB units. However, the amount of control information to indicate the result of the Lchs assignment becomes enormous and as a consequence the system flow deteriorates.
For example, when 14 consecutive RBs # 1 to # 14 in the frequency domain are each divided into two sub-blocks, and Dchs with continuous channel numbers # 1 to # 14 are associated with RBs # 1 to # 14, a Dch is mapped at intervals of 7 RBs (= floor (14/2)). That is, Dchs # 1 to # 7 are associated with a sub-block of RBs # 1 to # 7 and Dchs # 8 to # 14 are associated with the other sub-block of RBs # 1 to # 7. Similarly, Dchs # 1 to # 7 are associated with a sub-block of RBs # 8 to # 14 and Dchs # 8 to # 14 are associated with the other sub-block of RBs # 8 to # 14. Therefore, Dchs # 1 is formed with the sub-block of RB # 1 and the sub-block of RB # 8, and Dch # 2 is formed with the sub-block of RB # 2 and the sub-block of RB # 9. The same applies to Dchs # 3 to # 14.
In this case, when two Dchs are assigned (for example, Dch # 1 and Dch # 2), the Dchs are assigned to RBs # 1, # 2, # 8 and # 9 and the Lchs are assigned to the rest of the RBs . When the Lchs are assigned to units of a group of RBs, which each includes two RBs, the Lchs are assigned to the groups of RBs of (RBs # 3 and # 4), (RBs # 5 and # 6), (RBs # 11 and # 12) and (RBs # 13 and # 14). However, in the case of RB # 7 and RB # 10, since the other RBs that constitute their respective groups of RBs are assigned to Dchs, Lchs cannot be assigned to RB # 7 and RB # 10. Therefore, some RBs can remain unoccupied without being used, causing deterioration of the efficiency of use of communication resources and this leads to deterioration of the system flow. In this case, assigning Lchs RBs (RB # 7 and RB # 10) that can remain unoccupied without being used requires assigning Lchs in units of RBs. However, the allocation of Lchs in units of RBs causes the amount of control information to indicate the allocation of Lchs to be enormous, which consequently leads to a deterioration of the system flow.
Therefore, an objective of the present invention is to provide a channel mapping procedure for transmission with a variety of frequencies and a base station that can prevent the deterioration of the system flow due to the deterioration in the efficiency of resource utilization of communication when carrying out transmission with frequency planning and transmission with frequency diversity at the same time in a multi-carrier communication.
Means to solve the problem
The channel mapping method according to the invention divides a series of subcarriers composed of a multi-carrier signal into a series of resource blocks and groups said series of resource blocks into a series
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of groups, so that a distributed channel is mapped at intervals of an integer multiple of the number of resource blocks that constitute a group in the series of resource blocks.
Advantageous results of the invention
The present invention can prevent the deterioration of the efficiency of use of communication resources when transmission with frequency planning and transmission with diversity of frequencies is carried out at the same time in multi-carrier communication.
Brief description of the drawings
Figure 1 is a block diagram showing a configuration of a base station, according to an embodiment of the present invention;
Figure 2 is a block diagram showing a configuration of the mobile station, according to the embodiment of the present invention;
Figure 3 shows an Lchs mapping procedure, according to the embodiment of the present invention;
Figure 4 shows a Dchs mapping procedure, according to the mapping procedure 1 of the embodiment of the present invention;
Figure 5 shows an example of assignment, according to the mapping procedure 1 of the embodiment of the present invention;
Figure 6 shows a Dchs mapping procedure, according to the mapping procedure 1 of the embodiment of the present invention (case of division into three parts);
Figure 7 shows a Dchs mapping procedure, according to the mapping procedure 2 of the embodiment of the present invention;
Figure 8 shows an example of assignment, according to the mapping procedure 2 of the embodiment of the present invention;
Figure 9 shows a Dchs mapping procedure, according to the mapping procedure 3 of the embodiment of the present invention (when the mapping procedure 1 is used);
Figure 10 shows a Dchs mapping procedure, according to the mapping procedure 3 of the embodiment of the present invention (when the mapping procedure 2 is used);
Figure 11 shows a Dchs mapping procedure, according to the mapping procedure 4 of the embodiment of the present invention (when the mapping procedure 1 is used);
Figure 12 shows a Dchs mapping procedure, according to the mapping procedure 4 of the embodiment of the present invention (when the mapping procedure 2 is used);
Figure 13 shows a Dchs mapping procedure, according to the mapping procedure 5 of the embodiment of the present invention (when the mapping procedure 1 is used); Y
Figure 14 shows a Dchs mapping procedure, according to the mapping procedure 5 of the embodiment of the present invention (when the mapping procedure 2 is used);
Best way to carry out the invention
An embodiment of the present invention will now be described in detail with reference to the accompanying drawings.
Figure 1 shows a configuration of the base station 100, according to the present embodiment. The base station 100 divides a series of subcarriers composed of an OFDM symbol, which is a multi-carrier signal, into a series of RBs and uses Dch and Lch for each RB of the RB series. In addition, one of Dch and Lch is assigned to a mobile station in the same subframe.
The base station 100 is provided with n (n is the number of mobile stations (MSs) with which the base station 100 can communicate) coding / modulation sections 101-1 to 101-n each of which comprises a section of coding 11 and a modulation section 12 for Dch data, n coding / modulation sections 102-1 to 102-n each of which comprises an encoding section 21 and a modulation section 22 for Lch data and n demodulation / decoding sections 115-1 to 115-n each of which comprises a demodulation section 31 and a decoding section 32.
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In the coding / modulation sections 101-1 to 101-n, the coding section 11 carries out an encoding process using a turbo code or the like on data Dch # 1 to #n for each of the mobile stations # 1 a #n and the modulation section 12 carries out a modulation process on the coded Dch data to thereby generate a Dch data symbol.
In the coding / modulation sections 102-1 to 102-n, the coding section 21 performs an encoding process using a turbo code or the like on data Lch # 1 to #n for each of the mobile stations # 1 a #n, and the modulation section 22 performs a modulation process on the encoded Lch data to thereby generate a Lch data symbol. The coding rate and the modulation scheme in this case follow the MCS information (MCS: Modulation and Coding Scheme) entered from the adaptive control section 116.
The assignment section 103 assigns the Dch data symbol and the Lch data symbol to each subcarrier composed of an OFDM symbol, according to the control coming from the adaptive control section 116, and delivers the OFDM symbol to the multiplexing section 104. In this case, the assignment section 103 collectively allocates the Dch data symbols and the Lch data symbols for each RB. In addition, when the Lch data symbols are assigned, the assignment section 103 groups the series of RBs into a series of groups and assigns Lchs in units of groups of RBs. In addition, when a series of Dchs is used for the Dch data symbol of a mobile station, the assignment section 103 uses Dchs with continuous channel numbers. In addition, the allocation section 103 assigns the Dch data symbol to a series of RBs to which a Dch is mapped at intervals of an integer multiple of the number of RBs that constitute a group of RBs. In each RB the mapping positions of Dch and Lch are previously associated with each other. That is, the allocation section 103 previously stores a mapping structure, which is the association between Dchs and Lchs and RBs, and assigns the data symbol of Dch and the data symbol of Lch to each RB based on the structure of mapping Details of the Dchs mapping procedure according to the present embodiment will be described below. In addition, the assignment section 103 delivers assignment information of the Dch data symbol (information indicating which Dch data symbol of the mobile station is assigned to which RB) and assignment information of the Lch data symbol (information that indicates which RBs are assigned to the Lch data symbol of which mobile station) to control section 105 of generating control information. For example, the assignment information of the Dch data symbol includes only the first channel number and the last channel number of the continuous channel numbers.
The control information generation section 105 generates control information that includes the Dch data symbol assignment information, the Lch data symbol assignment information and MCS information entered from the adaptive control section 116, and delivers control information to coding section 106.
The coding section 106 performs a coding process on the control information, and the modulation section 107 performs a modulation process on the encoded control information and delivers the control information to the multiplexing section 104.
The multiplexing section 104 multiplexes with control information each data symbol entered from the assignment section 103, and delivers the application result to the IFFT section (Inverse Fast Fourier Transform, fast reverse Fourier transform) 108. Multiplexing Control information is performed, for example, in each subframe. In accordance with the present embodiment, the multiplexing of the control information may be a multiplexing in the time domain and multiplexing in the frequency domain.
The IFFT section 108 performs IFFT on a series of subcarriers composed of a series of RBs to which control information and data symbols are assigned, to generate an OFDM symbol, which is a multi-carrier signal.
The CP addition section (Cyclic Prefix, cyclic prefix) 109 adds the same signal as the last part of the OFDM symbol to the header of the OFDM symbol as a CP.
The radio transmission section 110 performs a transmission process such as D / A conversion, amplification and up conversion of the OFDM symbol with a CP, and transmits the OFDM symbol from the antenna 111 to each mobile station.
On the other hand, the radio reception section 112 receives n OFDM symbols at the same time, transmitted from a maximum of n mobile stations by means of the antenna 111, and performs a reception process, such as down conversion, conversion A / D on these OFDm symbols.
Section 113 of the CP deletion removes the CP of the OFDM symbol after the reception process.
Section 114 of FFT (Fast Fourier Transform, Fast Fourier Transform) performs FFT on the OFDM symbol without a CP, to obtain a signal for each multiplexed mobile station in the frequency domain. In this case, the respective mobile stations transmit signals using subcarriers different from each other or RBs different from each other, and a signal for each mobile station includes for each rB quality information received,
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notified from each mobile station. Each mobile station can measure the quality received from each RB using the SNR received, the SIR received, the SINR received, the CINR received, the power received, the interference power, the binary error rate, the flow rate and the MCS or the like that can get a certain error rate. In addition, the quality information received can be expressed as "CQI" (Channel Quality Indicator), "CSI" (Channel State Information) and the like.
In the demodulation / decoding sections 115-1 to 115-n, the modulation section 31 carries out a demodulation process on the signal after the FFT, and the decoding section 32 carries out a decoding process on the demodulated signal. In this way the received data is obtained. From the received data, the quality information received is entered in the adaptive control section 116.
The adaptive control section 116 performs an adaptive control on Lch data based on the quality information received for each RB, notified from each mobile station. That is, for coding / modulation sections 102-1 to 102-n, adaptive control section 116 selects MCS by which a required error rate can be satisfied for each group of RBs based on quality information received for each RB and delivers the MCS information, and for assignment section 103, adaptive control section 116 performs frequency planning to determine to which group of RBs Lch # 1 to #n data should be assigned respectively using a planning algorithm, such as a Max SIR procedure or a fair proportionality procedure. In addition, adaptive control section 116 delivers MCS information for each RB group to control section 105 of generating control information.
Next, the configuration of the mobile station 200 according to the present embodiment is shown in Figure 2. A mobile station 200 receives from a base station 100 (FIG. 1) a multi-carrier signal, which is an OFDM symbol composed of a series of subcarriers divided into a series of RBs. In addition, Dch and Lch are used for each RB in a series of RBs. In addition, one of a Dch and an Lch is assigned to mobile station 200 in the same subframe.
In the mobile station 200, the radio reception section 202 receives the OFDM symbol transmitted from the base station 100 via the antenna 201 and performs the reception process, such as down conversion or A / D conversion on the symbol OFDM
The CP 203 deletion section removes the CP of the OFDM symbol after the reception process.
The FFT section 204 performs an FFT on the OFDM symbol without CP, to obtain a received signal in which the control information and data symbols are multiplexed.
The demultiplexing section 205 demultiplexes the signal received after the FFT into a control signal and a data symbol. The demultiplexing section 205 then delivers the control signal to the demodulation / decoding section 206 and delivers the data symbol to the unmapping section 207.
In the demodulation / decoding section 206, the demodulation section 41 carries out a demodulation process on the control signal, and the decoding section 42 performs a decoding process on the demodulated signal. In this case, the control information includes Dch data symbol assignment information, Lch data symbol assignment information and MCS information. The demodulation / decoding section 206 then delivers the Dch data symbol assignment information and the Lch data symbol assignment information of the control information to the unmapping section 207.
The unmapping section 207 extracts the data symbol assigned to said mobile station, from among the series of RBs to which data symbols entered from the demultiplexing section 205 are assigned based on the allocation information entered from the demodulation section / decoding 206. In each RB, the mapping positions of Dchs and Lchs are previously associated with each other, such as with base station 100 (Figure 1). That is, the unmapping section 207 stores the same mapping structure as that of the assignment section 103 of the base station 100 and extracts data symbols of Dch and data symbols of Lch from a series of RBs, depending on of the mapping structure. In addition, when extracting the Lch data symbol, the de-mapping section 207 extracts Lchs in units of groups of RBs in which a series of RBs are grouped into a series of groups. In addition, as described above, when a series of Dchs is used for a Dch data symbol of a mobile station, the assignment section 103 of the base station 100 (Figure 1) uses Dchs with continuous channel numbers. In addition, the allocation information included in the control information from the base station 100 indicates only the first channel number and the last channel number between the continuous channel numbers of Dchs used for the Dch data symbol. Therefore, the specific clearing section 207 Dchs used for the Dch data symbol assigned to said mobile station, based on the first channel number and the last channel number indicated in the allocation information. More specifically, the unmapping section 207 identifies a series of continuous Dchs from the first channel number indicated in the allocation information to the last channel number indicated in the allocation information, such as Dchs used for the Dch data symbol assigned to said mobile station. The desmapeo section
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207 it then extracts the RB associated with the specific channel number of the identified Dch, and delivers to the demodulation / decoding section 208 the data symbol assigned to the extracted RB.
In the demodulation / decoding section 208, the demodulation section 51 performs a demodulation process on the data symbol entered from the unmapping section 207, and the decoding section 52 performs a decoding process on the demodulated signal. In this way the received data is obtained.
On the other hand, in the coding / modulation section 209, the coding section 61 performs a coding process using a turbo code or the like on the transmission data, and the modulation section 62 performs a modulation process on the data of coded transmission, to generate a data symbol. In this case, the mobile station 200 transmits transmission data using subcarriers or RBs different from those of other mobile stations, and the transmission data includes reception quality information for each RB.
The IFFT section 210 performs an IFFT on a series of subcarriers composed of a series of RBs to which are assigned data symbols entered from the coding / modulation section 209, to generate an OFDM symbol, which is a multi-carrier signal.
The CP addition section 211 adds as CP the same signal as the last part of the OFDM symbol to the header of the OFDM symbol.
The radio transmission section 212 performs a transmission process, such as D / A conversion, amplification and up conversion on the OFDM symbol with a CP, and transmits the OFDM symbol to the base station 100 (Figure 1) from the antenna 201 .
Next, the Dch channel mapping procedure according to the present embodiment will be described. In the following explanations, a case in which a series of subcarriers composed of an OFDM symbol are uniformly divided into 14 RBs of RBs # 1 through # 14 will be described as an example of configuration, as shown in Figure 3. In addition, Lch # 1 to # 14 or Dch # 1 to # 14 are formed with each RB, and adaptive control section 116 controls the channels used by each mobile station. In addition, Lchs are assigned to each mobile station in the RB group units. In this case, as shown in Figure 3, RBs # 1 to # 14 are grouped into groups of RBs RBGs # 1 to # 7. In this case, it is assumed that the number of RBs that make up a group of RBs (hereafter referred to as "group size of RBs") is 2. Therefore, as shown in Figure 3, Lch # 1 and Lch # 2 mapped to RB # 1 and RB # 2 that constitute RBG1 are always assigned at the same time and Lch # 3 and Lch # 4 mapped to RB # 3 and RB # 4 that constitute RBG2 are always assigned at the same time. The same applies to the Lchs # 5 to # 14 that constitute the RBGs # 3 to # 7, respectively. In addition, the Lchs configuration in each RB shown in Figure 3 and the Dchs configuration in each RB shown below are previously associated with each other in the allocation section 103.
In this case, since frequency planning has been carried out on Lch in units of RB, each RB used for Lch includes a data symbol of Lch for only one mobile station. That is, an Lch corresponding to a mobile station is formed with an RB. Therefore, as shown in Figure 3, Lchs # 1 to # 12 are mapped to RBs # 1 to # 12, respectively. That is, the allocation unit of each Lch is "1 RB * 1 subframe".
On the other hand, since transmission with frequency diversity for Dch is carried out, the RB used for Dch includes a series of Dch data symbols. In this case, each RB used for Dch is temporarily divided into two sub-blocks and different Dchs are mapped to each sub-block. That is, a series of different Dchs are multiplexed in the time domain in 1 RB. In addition, a Dch is formed by two different RB subblocks. That is, the allocation unit of each Dch is "(1 RB * 1/2 subframe) * 2" and is the same as the allocation unit of each Lch.
<Mapping procedure 1 (figure 4)>
In the present mapping procedure, a Dch is mapped at intervals of an integer multiple of the group size of RBs for a series of RBs.
That is, the separation of the range of RBs for RBs in which a Dch is mapped is given by the following equation 1,
Separation = floor ((Nrb / Nd) / RBG Size) ■ RBG Size ... (Equation 1)
where Nrb is the number of all RBs, Nd is the number of sub-blocks into which an RB is divided and RBG size is the size of the group of RBs.
The expression of the relationship between the channel number of Dch and an RB number of RBs in which the Dch is mapped is shown below. The numbers of RB Nd (indices) j in which the Dch #k (k = 1 to 12) are mapped, are given by the following equation 2.
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j = (((k -1) + Separation ■ p) mod (Separation ■ Nd)) + 1, p = 0, 1, ..., Nd -1 ... (Equation 2)
In this case, since Nrb = 14, Nd = 2, RBG size = 2, the separation of the range of RBs is 6 (= floor ((14/2) / 2) x2), according to equation 1. Therefore, Equation 2 above is j = ((((k - 1) + 6p) mod 12) + 1 (p = 0, 1), where k = 1, 2, ..., 12 .. Thus, a Dch it is distributed mapped to two RBs of RB # (k) and RB # (k + 6), which are separated by 6 RBs in the frequency domain. In other words, a Dch is mapped in a distributed way to RBs separated by 6 RBs, which is an integer multiple (in this case, triple) of the group size of RBs (RBG size = 2) in the frequency domain. This range of RBs (range of RBs 6) is a maximum range equal to or less than Nrb / Nd (= 14/2) between intervals of integer multiples of the size of the group of RBs (RB Size = 2).
Being more concrete, as shown in Figure 4, Dchs # 1 and # 7 are mapped to RB # 1 (RB # 7), Dchs # 2 and # 8 are mapped to RB # 2 (RB # 8) , Dchs # 3 and # 9 are mapped to RB # 3 (RB # 9), Dchs # 4 and # 10 are mapped to RB # 4 (RB # 10), Dchs # 5 and # 11 are mapped to RB # 5 (RB # 11) and Dchs # 6 and # 12 are mapped to RB # 6 (RB # 12). That is, according to the present mapping procedure, the maximum number of Dchs that the allocation section 103 can assign to RBs is 12.
Next, Figure 5 shows an example of assignment in the assignment section 103 (Figure 1) of the base station 100 when four Dchs are assigned to a Dch data symbol of a mobile station. In this case, to simplify the explanation, Dch # 1, # 2, # 7 and # 8 are assigned so that odd sub-blocks are not produced in the RBs used for Dchs. In addition, the allocation section 103 previously stores the Dch mapping structure shown in Figure 4 and assigns Dch data symbols to RBs according to the mapping structure shown in Figure 4.
As shown in Figure 5, the assignment section 103 assigns Dch data symbols to the RB # 1 sub-block and the RB # 7 sub-block that constitute the Dch # 1, to the RB sub-block # 2 and the sub-block of RB # 8 that constitute the Dch # 2, the sub-block of RB # 1 and the sub-block of RB # 7 that constitute the Dch # 7, and the sub-block of RB # 2 and to the sub-block of RB # 8 that constitute Dch # 8. That is, as shown in Figure 5, Dch data symbols are assigned to RBs # 1, # 2, # 7 and # 8. Therefore, four Dchs are assigned to the RB sub-blocks RBs # 1 and # 2 that constitute RBG1 and RBs # 7 and # 8 that constitute RBG4 covering all RBs.
In addition, as shown in Figure 5, the assignment section 103 assigns Lch data symbols to the other RBs other than the RBs to which Dch data symbols are assigned, ie RBs # 3 to # 6 and RBs # 9 to # 14. As described above, each Lch is assigned to units of groups of RBs. Therefore, as shown in Figure 5, the assignment section 103 assigns data symbols from Lch to RB # 3 and RB # 4 constituting RBG2 in which Lch # 3 and Lch # 4, RB are mapped respectively. # 5 and RB # 6 constituting RBG3 in which Lch # 5 and Lch # 6, RB # 9 and rB # 10 are respectively mapped, constituting RBG5 in which Lch # 9 and Lch # 10, RB # 11 are mapped respectively and RB # 12 constituting RBG6 in which Lch # 11 and Lch # 12 are mapped respectively, and RB # 13 and RB # 14 which constitute RBG7 in which Lch # 13 and Lch # 14 are mapped respectively. That is, Lchs # 3 to # 6 and Lchs # 9 to # 14 shown in Figure 3 are used for Lch data symbols. Therefore, when Lch data symbols are assigned to RBs other than RBs to which Dch data symbols are assigned, allocation section 103 can assign Lch data symbols in units of groups of RBs that cover all the RBs.
Next, an extraction example will be described in the de-mapping section 207 of the mobile station 200 (Figure 2) where 200 data symbols of Dch using four Dchs are assigned to the mobile station. In this case, to simplify the explanation, Dchs # 1, # 2, # 7 and # 8 are used for Dch data symbols, so that odd sub-blocks are not produced in RBs. In addition, as with the allocation section 103, the de-mapping section 207 previously stores the Dch mapping structure shown in Figure 4 and extracts Dch data symbols from a series of RBs according to the mapping structure shown in the figure Four.
As with the allocation section 103, as shown in Figure 5, the clearing section 207 extracts the Dch # 1 formed with the sub-block of RB # 1 and the sub-block of RB # 7, the Dch # 2 formed with sub-block of RB # 2 and sub-block of RB # 8, Dch # 7 formed with sub-block of RB # 1 and sub-block of RB # 7 and Dch # 8 formed with the sub-block of RB # 2 and the sub-block of RB # 8. That is, as shown in Figure 5, the de-mapping section 207 extracts data symbols of Dch assigned to RBs # 1, # 2, # 7 and # 8 as data symbols directed to the target station. In other words, as shown in Fig. 5, the de-mapping section 207 extracts four Dchs assigned to RBG1 formed with RBs # 1 and # 2 and to RBG4 formed with RBs # 7 and # 8, covering all RBs as symbols of data directed to the target station.
Therefore, according to the present mapping procedure, the range of RBs, of RBs to which a Dch is mapped is configured as an integer multiple of the group size of RBs, of the group of RBs used for the allocation of Lch (the triple, in the present mapping procedure). When Lchs are assigned to the rest of the RBs after Dchs have been assigned, this allows the base station to assign Lchs in units of groups of RBs without producing any RB that cannot be used. Therefore, according to the present mapping procedure, even when the transmission with frequency planning and the transmission with diversity of frequencies are carried out at the same time, it is possible to prevent the flow of the system from deteriorating due to the deterioration of efficiency
of utilization of communication resources. In addition, according to the present mapping procedure, Lchs can be assigned without producing any unoccupied RB and therefore the Lchs flow rate can be improved. In addition, according to the present mapping procedure, Lchs are assigned to units of groups of RBs, and therefore the amount of control information can be reduced to indicate the result of the Lchs assignment.
5 In this case, with 14 RBs (RBs # 1 to # 14) shown in Figure 4, a maximum of 14 Dchs can be assigned. On the other hand, according to the present mapping procedure, a maximum of 12 Dchs can be assigned as described above. That is, according to the present mapping procedure, the number of Dchs that can be assigned is reduced by the amount corresponding to the size of the group of RBs (two Dchs in Figure 4) at most. However, since Dchs applications are limited to data communication when the mobile station travels at high speed or the like, it is extremely rare that Dchs are assigned to all
RBs Therefore, there is substantially no deterioration of the system flow due to a decrease in the number of Dchs that can be assigned using the present mapping procedure. In addition, the improvement in the system flow rate by assigning Lchs without producing any unoccupied RB using the present mapping procedure becomes more significant than the deterioration of the system flow rate.
fifteen Although in the present mapping procedure a case has been described in which an RB is divided into two parts
When Dchs are used, the number of divisions is not limited to 2, but an RBs can be divided into three parts. For example, Figure 6 shows a mapping procedure in which an RB is divided into three parts when Dchs are used. In the mapping procedure shown in Figure 6, when, for example, six Dchs are mapped, the Dchs can be mapped inside groups of RBs that cover all RBs sub-blocks, and therefore 20 obtain effects similar to those of the present mapping procedure. Furthermore, as shown in Figure 6, since a Dch is configured distributed across three RBs, the diversity effect can be improved more than in the case of splitting into two parts.
<Mapping procedure 2 (figure 7)>
The present mapping procedure is the same as the mapping procedure 1 in which a Dch is mapped at 25 intervals of an integer multiple of the group size of RBs between a series of RBs, but the present mapping procedure is different from the mapping procedure 1 in which a Dch is mapped in the maximum interval between possible intervals of integer multiples of the group size of RBs.
That is, the separation of the range of RBs between RBs to which a Dch is mapped is given by the following equation 3.
30 Separation = floor ((Nrb - Wseparation ■ Nd) / RBG Size) ■ RBG Size + Wseparation ... (Equation 3)
where Separation = floor ((Nrb / Nd) / RBG size) ■ RBG size and is equivalent to equation 1.
The numbers of RB Nd (indices) and to which the Dch #k (k = 1 to 12) are mapped, are given by the following equation 4.
j = ((k - 1) mod (Wseparation)) + 1 + Separation ■ p, p = 0, 1, ..., Nd -1 ... (Equation 4)
35 where the Dchs of k = 1,2, ..., Wseparation are mapped to the RB sub-blocks of the first half and the Dchs of k = Wseparation + 1, Wseparation + 2, ..., Wseparation * Nd se map the RB sub-blocks of the last half.
In this case, since Nrb = 14, Nd = 2, RBG size = 2 and Wseparation = 6, the separation of the range of RBs is 8 (= floor ((14/2) / 2) * 2 + 6) according to the equation 3. Therefore, the previous equation 4 passes aj = ((k - 1) mod (6)) + 8xp (p = 0, 1). where, k = 1, 2, ..., 12. In this way, a Dch is mapped in a distributed way to two RBs of RB # (k) and RB 40 # (k + 8), which are separated by 8 RBs in the frequency domain. In other words, a Dch is mapped of
distributed way to RBs separated by 8 RBs, which is an integer multiple (in this case, the quadruple) of the group size of RBs (RBGsize = 2) in the frequency domain. Furthermore, according to the present mapping procedure (equation 3), the range of RBs increases in the number of RBs of groups of RBs to which Dchs are not assigned, compared to the range of RBs (equation 1) of the procedure Mapping 1. Being more concrete, according to the mapping procedure 1 (figure 4), Dchs are not mapped to two RBs of RBs # 13 and # 14. Therefore, the separation of the range of RBs according to the present mapping procedure becomes 8 RBs, which is greater in 2 RBs than the range of RBs of 6 RBs according to the mapping procedure 1. This is because, according to the mapping procedure 1 (Figure 4), the RBs in which no Dch is mapped are assigned to one end of all the RBs, while according to the present mapping procedure, the RBs in the that no Dch is mapped, 50 are assigned to the central part of all RBs.
Being more concrete, as shown in Figure 7, Dchs # 1 and # 7 are mapped to RB # 1 (RB # 9), Dchs # 2 and # 8 are mapped to RB # 2 (RB # 10) , Dchs # 3 and # 9 are mapped to RB # 3 (RB # 11), Dchs # 4 and # 10 are mapped to RB # 4 (RB # 12), Dchs # 5 and # 11 are mapped to RB # 5 (RB # 13) and Dchs # 6 and # 12 are mapped to RB # 6 (RB # 14). That is, according to the present mapping procedure, the maximum number of Dchs that can be assigned to 55 RBs through the allocation section 103 is 12, as with the mapping procedure 1. In addition, according to the mapping procedure 1 (figure 4), the RBs in which no Dch is mapped are the last RBs # 13 and # 14 of
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RBs # 1 to # 14, while according to the present mapping procedure, the RBs in which no Dch is mapped are RBs # 7 and # 8, as shown in Figure 7. That is, it is not map any Dch to the central part of all RBs. Therefore, two sub-blocks of RBs that constitute each Dch are mapped extending to a maximum extent on RBs # 1 to # 6 and RBs # 9 to # 14, on both sides of RBs # 7 and # 8. That is, Dchs # 1 to # 12 are mapped to a maximum interval (range of 8 RBs) between possible intervals of integer multiples of the group size of RBs from 14 RBs.
Next, as with the mapping procedure 1, Figure 8 shows an example mapping in which four Dchs are used for Dch data symbols of a mobile station. In this case, Dchs # 1, # 2, # 7 and # 8 are assigned as with the mapping procedure 1. In addition, the assignment section 103 previously stores the Dch mapping structure shown in Figure 7 and assigns symbols of data from Dch to RBs according to the mapping structure shown in Figure 7.
As shown in Figure 8, the assignment section 103 assigns Dch data symbols to the RB # 1 sub-block and the RB # 9 sub-block that constitute the Dch # 1, to the RB sub-block # 2 and the sub-block of RB # 10 that constitute the Dch # 2, the sub-block of RB # 1 and the sub-block of RB # 9 that constitute the Dch # 7, and the sub-block of RB # 2 and to the sub-block of RB # 10 that constitute Dch # 8. That is, Dch data symbols are assigned to RBs # 1, # 2, # 9 and # 10, as shown in Figure 8. That is, the four Dchs are assigned to RBs # 1 and # 2 that constitute RBG1, and RBs # 9 and # 10 that constitute RBG5 covering all RB sub-blocks.
In addition, as shown in Figure 8, the assignment section 103 assigns data symbols of Lch to the rest of the RBs # 3 to # 8 and of the RBs # 11 to # 14 other than the RBs to which they have been assigned Dch data symbols. In this case, the assignment section 103 assigns Lch data symbols in units of groups of RBs, as with the mapping procedure 1. More specifically, as shown in Figure 8, the assignment section 103 assigns Lch data symbols to two RBs that constitute the RBGs # 2, # 3, # 4, # 6 and # 7, respectively. That is, Lchs # 3 to # 8 and Lchs # 11 to # 14 shown in Figure 3 are used for Lch data symbols. Therefore, when Lch data symbols are assigned to blocks other than the RBs to which Dch data symbols have been assigned, the assignment section 103 can assign the Lch data symbols in units of groups of RBs that they cover all RBs, as with the mapping procedure 1.
Next, an extraction example will be described in the de-mapping section 207 of the mobile station 200 (Figure 2) where 200 data symbols of Dch using four Dchs are assigned to the mobile station. In this case, Dchs # 1, # 2, # 7 and # 8 are used for Dch data symbols, as with the mapping procedure 1. In addition, as with the allocation section 103, the de-mapping section 207 previously stores the Dch mapping structure shown in Figure 7, and extracts Dch data symbols from a series of RBs according to the mapping structure shown in the figure 7.
As with the allocation section 103, as shown in Figure 8, the clearing section 207 extracts the Dch # 1 formed with the sub-block of RB # 1 and the sub-block of RB # 9, the Dch # 2 formed with the sub-block of RB # 2 and the sub-block of RB # 10, the Dch # 7 formed with the sub-block of RB # 1 and the sub-block of RB # 9 and the Dch # 8 formed with the sub-block of RB # 2 and the sub-block of RB # 10. That is, as shown in Figure 8, the de-mapping section 207 extracts data symbols of Dch assigned to RBs # 1, # 2, # 7 and # 8 as data symbols directed to the target station. In other words, as shown in Figure 8, the de-mapping section 207 extracts four Dchs assigned to RBG1 formed with RBs # 1 and # 2 and to RBG5 formed with RBs # 9 and # 10, covering all RBs as symbols of data directed to the target station.
In this case, in figure 8, as in the case of the mapping procedure 1 (figure 5), data symbols of Dch are assigned to four RBs and data symbols of Lch are assigned to 10 RBs. However, according to the mapping procedure shown in Figure 8, the Dch data symbols are allocated in a distributed manner to RB # 1, RB # 2, RB # 9 and RB # 10 and, therefore, therefore, the interval of these is greater, by the interval of RBs in which there is no mapped Dch (range of 2 RBs of RBs # 7 and # 8), than by means of the mapping procedure 1 (Figure 5). Therefore, the present mapping procedure can improve the effect of frequency diversity.
Thus, the present mapping procedure maps a Dch to a maximum interval (range of 8 RBs, four times the size of the group of RBs in Figure 7) between possible intervals of integer multiples of the group size of RBs. In this way, Lchs can be assigned in units of groups of RBs while maximizing the range of RBs of a Dch without producing any RB that cannot be used. Therefore, according to the present mapping procedure, it is possible to obtain effects similar to those of the mapping procedure 1 and to improve the effect of frequency diversity compared to the mapping procedure 1.
Although in the present mapping procedure a case has been described in which a RB is divided into two parts when Dchs are used, the number of divisions of a RB is not limited by two, but the number of divisions of a RB can be of three or more, as in the case of the mapping procedure 1.
<Mapping procedure 3 (figure 9)>
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The present mapping procedure is the same as the mapping procedure 1 in which a Dch is mapped at intervals of an integer multiple of the size of the group of RBs between a series of RBs, but the present mapping procedure differs from the mapping procedure 1 in that a series of Dchs with continuous channel numbers are mapped to an RB.
In the following, the present mapping procedure will be described more specifically. In this case, a Dch is mapped to two RBs that are mapped in a distributed manner intervals of 6 is RBs, with the mapping procedure 1 (Figure 4).
As shown in Figure 9, Dchs # 1 and # 2 with continuous channel numbers are mapped to RB # 1 (RB # 7). Similarly, Dchs # 3 and # 4 are mapped to Rb # 2 (RB # 8), Dchs # 5 and # 6 are mapped to RB # 3 (RB # 9), Dchs # 7 and # 8 are mapped to RB # 4 (RB # 10), Dchs # 9 and # 10 are mapped to RB # 5 (RB # 11) and Dchs # 11 and # 12 are mapped to RB # 6 (RB # 12).
Therefore, since a Dch is mapped to two RBs at intervals of 6 RBs, when Lchs are assigned to the rest of the RBs after the Dchs assignment as with the mapping procedure 1, it is possible to assign Lchs in units of groups of RBs without producing any RB that cannot be used. In addition, since a series of Dchs with continuous channel numbers are mapped to an RB, when a mobile station uses a series of Dchs, all sub-blocks of said RB are used first and then the other RBs are used. Therefore, the data symbols are assigned to some sub-blocks of a series of sub-blocks that constitute an RB and, on the other hand, it is possible to minimize the possibility that other sub-blocks can no longer be used. This makes it possible to improve the efficiency of use of Dch resources.
In addition, as with the mapping procedure 1, the allocation section 103 of the base station 100 (Figure 1) and the unmapping section 207 of the mobile station 200 (Figure 2) previously store the Dch mapping structure shown in the Figure 9, which is the correspondence between RBs and Dchs. The assignment section 103 of the base station 100 then assigns Dch data symbols to RBs, according to the Dch mapping structure shown in Figure 9. On the other hand, the de-mapping section 207 of the mobile station 200 extracts Dch data symbols directed to the target station from a series of RBs, according to the Dch mapping structure shown in Figure 9, as with the section of allocation 103.
Thus, the present mapping procedure maps a series of Dchs with continuous channel numbers in a RB, and thereby increases the probability that data symbols can be assigned to all RB subblocks used for Dchs. Therefore, it is possible to prevent the deterioration of the flow of the system due to the deterioration of the efficiency of utilization of the communication resources, in comparison with the mapping procedure 1.
As with the mapping procedure 2 (Figure 7), the present mapping procedure can map a Dch to the maximum interval between the possible intervals of integer multiples of the group size of RBs. Being more concrete, as shown in Figure 10, a Dch can be mapped to mapped RBs distributed in intervals of 8 RBs. This makes it possible to achieve an effect of diversity similar to that of the mapping procedure 2, while achieving effects similar to those of the present mapping procedure.
<Mapping procedure 4 (figure 11)>
The present mapping procedure is the same as the mapping procedure 1 in which a Dch is mapped at intervals of an integer multiple of the size of the group of RBs of a series of RBs, but the present mapping procedure is different from the mapping procedure 1 in which a series of Dchs with continuous channel numbers are mapped to different RBs that constitute a group of RBs.
In the following, the present mapping procedure will be described more specifically. In this case, as with the mapping procedure 1 (Figure 4), a Dch is mapped to two mapped RBs distributed in intervals of 6 RBs.
As shown in Figure 11, Dchs # 1 and # 3 are mapped to RB # 1 (RB # 7), Dchs # 2 and # 4 are mapped to RB # 2 (RB # 8), Dchs # 5 and # 7 are mapped to RB # 3 (RB # 9), Dchs # 6 and # 8 are mapped to RB # 4 (RB # 10), Dchs # 9 and # 11 are mapped to Rb # 5 (RB # 11) and Dchs # 10 and # 12 are mapped to RB # 6 (Rb # 12).
That is, as shown in Figure 11, Dchs # 1 to # 4 with continuous channel numbers are mapped to RBs # 1 and # 2 (RBs # 7 and # 8) that constitute RBG1 (RBG4). In addition, in RBG1 (RBG4), Dch # 1 (Dch # 3) and Dch # 2 (Dch # 4) with continuous channel numbers between Dchs # 1 to # 4 are mapped to different RBs of RB # 1 and # 2 respectively. In addition, as shown in Figure 11, Dch # 3 and Dch # 2 with continuous channel numbers are also mapped to different RBs, of RBs # 1 and # 2 respectively. The same applies to RBG2 (RBG5) and RBG3 (RBG6).
Therefore, since a series of Dchs with continuous channel numbers are mapped to a group of RBs, even when a mobile station uses a series of Dchs, the RBs are used in units of groups of RBs for Dchs. Therefore, when Lchs RBs different from the RBs used for Dchs are assigned, they can also be used
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RBs in units of groups of RBs for Lchs. That is, since the RBs can be used extensively, it is possible to prevent the deterioration of the efficiency of use of the communication resources more than with the mapping procedure 1. In addition, in the group of RBs, the Dchs with channel numbers Continuous maps are mapped to different RBs, and therefore the diversity effect is improved.
In addition, as with the mapping procedure 1, the allocation section 103 of the base station 100 (Figure 1) and the unmapping section 207 of the mobile station 200 (Figure 2) previously store the Dch mapping structure shown in the Figure 11, which is the correspondence between RBs and Dchs. The assignment section 103 of the base station 100 then assigns Dch data symbols to RBs, according to the Dch mapping structure shown in Figure 11. On the other hand, as with the allocation section 103, the de-mapping section 207 of the mobile station 200 extracts Dch data symbols directed to the target station from a series of RBs, according to the Dch mapping structure shown in Figure 11
Thus, the present mapping procedure maps a series of Dchs with continuous channel numbers in different RBs that constitute a group of RBs, respectively. Thus, even when a series of Dchs is used, said series of Dchs are collectively assigned in units of groups of RBs. That is, even when a mobile station uses a series of Dchs, Dchs are assigned to RB units, and therefore Lchs can also be assigned in units of groups of RBs. Therefore, the present mapping procedure can prevent the deterioration of the flow of the system due to the deterioration of the efficiency of use of the communication resources, in comparison with the mapping procedure 1. In addition, since different Dchs are assigned with numbers From continuous channels to different RBs within a group of RBs, the effect of frequency diversity can be further improved.
As with the mapping procedure 2 (Figure 7), the present mapping procedure can also map a Dch to the maximum interval between the possible intervals of integer multiples of the group size of RBs. Being more concrete, as shown in Figure 12, a Dch can be mapped to mapped RBs distributed in intervals of 8 RBs. This makes it possible to achieve an effect of diversity similar to that of the mapping procedure 2, while achieving effects similar to those of the present mapping procedure.
<Mapping procedure 5 (figure 13)>
The present mapping procedure is the same as the mapping procedure 4 in which a series of Dchs are mapped with continuous channel numbers to different RBs that constitute a group of RBs, but the present mapping procedure is different from the mapping procedure 4 in which a series of Dchs are mapped with discontinuous channel numbers to RBs contiguous with each other between a series of RBs that constitute groups of RBs contiguous with each other.
In the following, the present mapping procedure will be described more specifically. In this case, as with the mapping procedure 1 (Figure 4), a Dch is mapped to two mapped RBs distributed in intervals of 6 RBs.
As shown in Figure 13, Dchs # 1 and # 7 are mapped to RB # 1 (RB # 7), Dchs # 2 and # 8 are mapped to RB # 2 (RB # 8), Dchs # 5 and # 11 are mapped to RB # 3 (RB # 9), Dchs # 6 and # 12 are mapped to RB # 4 (RB # 10), Dchs # 3 and # 9 are mapped to RB # 5 (RB # 11) and Dchs # 4 and # 10 are mapped to RB # 6 (RB # 12).
That is, as shown in Figure 13, Dchs # 1 and # 2 (Dchs # 7 and # 8) with continuous channel numbers are mapped to RBs # 1 and # 2 that constitute RBG1. Similarly, Dchs # 5 and # 6 (Dchs # 11 and # 12) with continuous channel numbers are mapped to RBs # 3 and # 4 that constitute RBG2, and Dchs # 3 and # 4 (Dchs # 9 and # 10 ) with continuous channel numbers they map to RBs # 5 and # 6 that constitute RBG3.
In addition, a series of different Dchs with discontinuous channel numbers are mapped to RB # 2 and RB # 3, which are RBs contiguous with each other (i.e., RBs at the boundary between RBG1 and RBG2) of RBs that constitute RBG1 (RBs # 1 and # 2) and RBG2 (RBs # 3 and # 4) contiguous with each other. Being more concrete, as shown in Figure 13, Dch # 2 and Dch # 5 (Dch # 8 and Dch # 11) with discontinuous channel numbers are mapped to RB # 2 and RB # 3 respectively. Similarly, Dch # 6 and Dch # 3 (Dch # 12 and Dch # 9) with discontinuous channel numbers are mapped to RB # 4 and RB # 5 contiguous with each other, between RB # 3 and # 4 constituting RBG2, and RB # 5 and # 6 that constitute RBG3. The same applies to RBG4 to RBG6.
Thus, at least one set of Dchs with continuous channel numbers is mapped to a group of RBs. In addition, the channel numbers of Dchs mapped to RBs contiguous with each other, among a series of RBs that constitute groups of RBs contiguous with each other respectively, are discontinuous. In other words, Dchs with continuous channel numbers between Dchs mapped to different groups of RBs are mapped to RBs distributed in the frequency domain.
Therefore, when a mobile station uses many Dchs, the assignment section 103 assigns Dchs to RBs distributed in the frequency domain, and thereby provides the effect of frequency diversity. On the other hand, when a mobile station uses a few Dchs, the assignment section 103 can collectively assign Dchs within a group of RBs. Thus, when Lchs RBs different from RBs are assigned
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used for Dchs, RBs can also be used in units of groups of RBs for Lchs. That is, the RBs can be used extensively, and therefore it is possible to prevent the deterioration of the efficiency of use of communication resources.
In addition, as with the mapping procedure 1, the allocation section 103 of the base station 100 (Figure 1) and the unmapping section 207 of the mobile station 200 (Figure 2) previously store the Dch mapping structure shown in the Figure 13, which is the correspondence between RBs and Dchs. The assignment section 103 of the base station 100 then assigns Dch data symbols to RBs, according to the Dch mapping structure shown in Figure 13. On the other hand, as with the allocation section 103, the de-mapping section 207 of the mobile station 200 extracts Dch data symbols directed to the target station from a series of RBs, according to the Dch mapping structure shown in Figure 13
Thus, the present mapping procedure maps a series of Dchs with discontinuous channel numbers in RBs contiguous with each other, between a series of RBs that constitute groups of RBs contiguous with each other. Therefore, as with the mapping procedure 1, it is possible to prevent the deterioration of the system flow due to the deterioration in the efficiency of use of the communication resources when a mobile station uses a few Dchs, and to improve the diversity effect of frequency when a mobile station uses many Dchs.
According to the present mapping procedure, a Dch can be mapped to the maximum interval between the possible intervals of integer multiples of the group size of RBs, such as with the mapping procedure 2 (Figure 7). Being more concrete, as shown in Figure 14, a Dch can be mapped to mapped RBs distributed in intervals of 8 RBs. This makes it possible to achieve an effect of diversity similar to that of the mapping procedure 2, while achieving effects similar to those of the present mapping procedure.
Mapping procedures 1 to 5 have been described so far, according to the present embodiment.
Therefore, according to the present embodiment, it is possible to prevent the deterioration of the efficiency of utilization of communication resources even when the transmission with frequency planning via Lchs and the transmission with frequency diversity through Dchs are carried out at Same time.
An embodiment of the present invention has been described so far.
In the embodiment described above, the channel mapping procedure for mapping Dchs in RBs depends on the number of all RBs (Nrb) determined by the system bandwidth, as shown in equation 1 or equation 3. Therefore, the base station and the mobile station can be configured to have a correspondence table between Dch channel numbers and RB numbers for each system bandwidth (for example, figure 4, figure 7, figure 9, Figure 11 and Figure 13), and consult the correspondence table corresponding to the bandwidth of the system to which Dch data symbols are assigned when Dch data symbols are assigned.
In addition, a case has been described with the embodiment described above, in which a signal received by the base station (ie, a signal transmitted by the mobile station on an uplink) is transmitted based on an OFDM scheme, but this signal it can also be transmitted in transmission schemes other than the OFDM scheme, such as a single carrier scheme or a CDMA scheme.
In addition, a case has been described with the embodiment described above, in which an RB is formed of a series of subcarriers that are composed of an OFDM symbol, but an RB can be any block formed with continuous frequencies.
In addition, with the embodiment described above, a case has been described in which the RBs are continuously configured in the frequency domain, but the RBs can also be continuously configured in the time domain.
In addition, with the embodiment described above, a case has been described in which the present invention is applied to a signal transmitted by the base station (ie, a signal transmitted by the base station on a downlink), but the present invention is it can also apply to a signal received by the base station (ie, a signal transmitted by the mobile station on an uplink). In this case, the base station performs adaptive control, such as RB assignment, on an uplink signal.
In addition, in the embodiment described above, adaptive modulation is carried out only on Lchs; but adaptive modulation on Dchs can also be carried out similarly. In this case, the base station can carry out adaptive modulation on Dch data based on average quality information received from a complete band, notified from each mobile station.
In addition, a case has been described with the embodiment described above, in which the RBs used for Dchs are divided into a series of sub-blocks in the time domain, but the RBs used for Dch can also be divided into a series of sub-blocks in the frequency domain or can also be divided into a series of sub-blocks in the time domain and in the frequency domain. That is, a series of Dchs can be
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multiplex the frequency domain in an RB or they can be multiplexed in the time domain or multiplexed in the frequency domain.
Furthermore, although a case has been described in the present embodiment in which when a series of different Dchs with continuous channel numbers are assigned to a mobile station, only the first channel number and the last channel number from the station are notified base to the mobile station, the first channel number and the number of channels from the base station to the mobile station can be notified.
Furthermore, although a case has been described in the present embodiment in which a Dch maps RBs that are mapped so that they are evenly distributed in the frequency domain, the RBs to which a Dch is mapped are not limited to mapped RBs that are evenly distributed in the frequency domain.
Furthermore, although a case has been described with the embodiment described above in which Dchs are used as channels to carry out transmission with a variety of frequencies, the channels are not limited to Dchs, but the channels can be any channels that are mapped. distributed in a series of RBs or a series of subcarriers in the frequency domain and can provide the effect of frequency diversity. Furthermore, although Lchs have been used as the channels to carry out the transmission with frequency planning, the channels used are not limited to Lchs, but the channels can be any channels that can provide multi-user diversity effect.
In addition, Dch can also be called "DVRB" (Distributed Virtual Resource Block) and Lch can also be called "LVRB" (Localized Virtual Resource Block). In addition, an RB used for Dch can also be called "DRB" or "DPRB" (Distributed Physical Resource Block) and an RB used for Lch can also be called "LRB" or "LPRB" (Localized Physical Resource Block, located physical resource block).
In addition, a mobile station may also be referred to as "UE", a base station apparatus may also be referred to as "node B" and a subcarrier may also be referred to as "tone". In addition, an RB can also be referred to as "subchannel", "subcarrier block", "subcarrier group", "sub-band" or "portion". In addition, a CP can also be referred to as "guard interval". In addition, a subframe can also be referred to as an "interval" or "frame". A sub-block can also be called "interval".
In addition, a case has been described with the embodiment described above, in which an RB is divided into two subblocks in the time domain and a Dch is assigned thereto, and each divided sub-block may be referred to as "RB". In this case, adaptive coding and control, or similar, is carried out on two RBs in the time domain.
Furthermore, although with the above embodiment, cases have been described in which the present invention is configured by hardware, the present invention can be implemented by software.
Each function block used in the description of the aforementioned embodiment can usually be implemented as an LSI composed of an integrated circuit. These can be individual chips, or be totally or partially contained in a single chip. In this case "LSI" is adopted, but it can also be referred to as "IC," "System LSI", "super LSI" or "ultra LSI" depending on different degrees of integration.
In addition, the circuit integration procedure is not limited to LSIs, and implementation is also possible using dedicated circuits or general purpose processors. After the lSi is manufactured, it is also possible to use an FPGA (Field Programmable Gate Array, on-site programmable door array) or a reconfigurable processor where the connections and configurations of the circuit cells within an LSI can be reconfigure
In addition, if the integrated circuit technology replaces the LSI as a result of the advancement of semiconductor technology or other derived technology, it is of course also possible to carry out the integration of function blocks using this technology. The application of biotechnology is also possible.
Industrial applicability
The present invention is applicable to a mobile communication system, or the like.
14 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14
114 members in 17 offices
Priority claims4
| Document | Office | Kind | Date |
|---|---|---|---|
| 2008000198 | Japan | A | |
| 2008000198 | Japan | – | |
| 2008062970 | Japan | A | |
| 2008062970 | Japan | – |
Members114
| Document | Office | Kind | |
|---|---|---|---|
| WO2009087744A1 | World Intellectual Property Organization (WIPO) | A1 | |
| US2010202377A1 | United States of America | A1 | |
| EP2229030A1 | European Patent Office (EPO) | A1 | |
| KR20100105535A | Republic of Korea | A | |
| CN101904207A | China | A | |
| JP4608594B2 | Japan | B2 | |
| JP2011045120A | Japan | A | |
| JP4659920B2 | Japan | B2 | |
| JP2011072032A | Japan | A | |
| US2011096742A1 | United States of America | A1 | |
| JPWO2009087744A1 | Japan | A1 | |
| US7991004B2 | United States of America | B2 | |
| US2011211545A1 | United States of America | A1 | |
| JP2011250460A | Japan | A | |
| JP2011250461A | Japan | A | |
| RU2010127271A | Russian Federation | A | |
| EP2229030A4 | European Patent Office (EPO) | A4 | |
| US8160100B2 | United States of America | B2 | |
| JP4926288B2 | Japan | B2 | |
| JP4926289B2 | Japan | B2 | |
| JP4928630B2 | Japan | B2 | |
| US8208491B2 | United States of America | B2 | |
| JP2012130050A | Japan | A | |
| US2012224547A1 | United States of America | A1 | |
| US8416807B2 | United States of America | B2 | |
| EP2584854A2 | European Patent Office (EPO) | A2 | |
| US2013148602A1 | United States of America | A1 | |
| KR20130093677A | Republic of Korea | A | |
| EP2229030B1 | European Patent Office (EPO) | B1 | |
| JP5323217B2 | Japan | B2 | |
| JP2013232962A | Japan | A | |
| ES2429796T3 | Spain | T3 | |
| RU2501191C2 | Russian Federation | C2 | |
| DK2229030T3 | Denmark | T3 | |
| CN101904207B | China | B | |
| CN103716146A | China | A | |
| CN103781178A | China | A | |
| JP5524395B2 | Japan | B2 | |
| KR101475643B1 | Republic of Korea | B1 | |
| KR101500788B1 | Republic of Korea | B1 | |
| BRPI0821819A2 | Brazil | A2 | |
| EP2584854A3 | European Patent Office (EPO) | A3 | |
| US9288788B2 | United States of America | B2 | |
| US2016150515A1 | United States of America | A1 | |
| US9420581B2 | United States of America | B2 | |
| EP2584854B1 | European Patent Office (EPO) | B1 | |
| US2016323884A1 | United States of America | A1 | |
| EP3096581A1 | European Patent Office (EPO) | A1 | |
| DK2584854T3 | Denmark | T3 | |
| US9544899B2 | United States of America | B2 | |
| US2017071000A1 | United States of America | A1 | |
| ES2606156T3 | Spain | T3 | |
| CN103716146B | China | B | |
| US9642143B2 | United States of America | B2 | |
| US2017208594A1 | United States of America | A1 | |
| CN103781178B | China | B | |
| US9794941B2 | United States of America | B2 | |
| EP3096581B1 | European Patent Office (EPO) | B1 | |
| DK3096581T3 | Denmark | T3 | |
| US2018007694A1 | United States of America | A1 | |
| EP3267750A1 | European Patent Office (EPO) | A1 | |
| ES2657807T3This record | Spain | T3 | |
| US9999056B2 | United States of America | B2 | |
| US2018227920A1 | United States of America | A1 | |
| US10085264B2 | United States of America | B2 | |
| EP3267750B1 | European Patent Office (EPO) | B1 | |
| US2018368147A1 | United States of America | A1 | |
| US10178675B1 | United States of America | B1 | |
| EP3432667A1 | European Patent Office (EPO) | A1 | |
| PT3267750T | Portugal | T | |
| US2019098633A1 | United States of America | A1 | |
| DK3267750T3 | Denmark | T3 | |
| LT3267750T | Lithuania | T | |
| HRP20190321T1 | Croatia | T1 | |
| SI3267750T1 | Slovenia | T1 | |
| US10306644B2 | United States of America | B2 | |
| ES2716758T3 | Spain | T3 | |
| US2019246401A1 | United States of America | A1 | |
| HUE043548T2 | Hungary | T2 | |
| PL3267750T3 | Poland | T3 | |
| EP3432667B1 | European Patent Office (EPO) | B1 | |
| US10506599B2 | United States of America | B2 | |
| EP3598826A1 | European Patent Office (EPO) | A1 | |
| US2020077399A1 | United States of America | A1 | |
| ES2750792T3 | Spain | T3 | |
| CY1121579T1 | Cyprus | T1 | |
| BR122019019722B1 | Brazil | B1 | |
| BRPI0821819B1 | Brazil | B1 | |
| US10827494B2 | United States of America | B2 | |
| EP3598826B1 | European Patent Office (EPO) | B1 | |
| EP3751939A1 | European Patent Office (EPO) | A1 | |
| US2021014863A1 | United States of America | A1 | |
| ES2836690T3 | Spain | T3 | |
| US11252729B2 | United States of America | B2 | |
| US2022132504A1 | United States of America | A1 | |
| US11564225B2 | United States of America | B2 | |
| US2023121741A1 | United States of America | A1 | |
| EP3751939B1 | European Patent Office (EPO) | B1 | |
| EP3751939C0 | European Patent Office (EPO) | C0 | |
| EP4207911A1 | European Patent Office (EPO) | A1 |
Numbers
- Publication
- 2657807
- Application
- 16177515
Titles2
- Spanish
- Procedimiento de disposición de canal y dispositivo de estación base de comunicación inalámbrica
- English
- Procedure for channel arrangement and wireless communication base station device
Classification
- CPC, 15
- H04W72/0453
- H04L5/0007
- H04W72/566
- H04L5/0042
- H04L5/0053
- H04W72/23
- H04L5/001
- H04W72/00
- H04W72/21
- H04W24/08
- H04W24/10
- H04W28/0278
- H04W76/28
- H04W72/04
- H04W72/044
- IPC, 4
- H04W72 04
- H04J11 00
- H04W28 06
- H04L5 00