WO2011093687A2 - Apparatus and method for allocating channel and power in communication system - Google Patents

Apparatus and method for allocating channel and power in communication system Download PDF

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WO2011093687A2
WO2011093687A2 PCT/KR2011/000694 KR2011000694W WO2011093687A2 WO 2011093687 A2 WO2011093687 A2 WO 2011093687A2 KR 2011000694 W KR2011000694 W KR 2011000694W WO 2011093687 A2 WO2011093687 A2 WO 2011093687A2
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power
inter
neighboring
scheduling
cell
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PCT/KR2011/000694
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French (fr)
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WO2011093687A3 (en
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Ho-Joong Kwon
Soon-Young Yoon
June Moon
Sung-Woo Park
Seung-Won Kang
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Samsung Electronics Co., Ltd.
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Priority to EP11737326.6A priority Critical patent/EP2532185B1/en
Publication of WO2011093687A2 publication Critical patent/WO2011093687A2/en
Publication of WO2011093687A3 publication Critical patent/WO2011093687A3/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/54Allocation or scheduling criteria for wireless resources based on quality criteria
    • H04W72/542Allocation or scheduling criteria for wireless resources based on quality criteria using measured or perceived quality
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/06TPC algorithms
    • H04W52/14Separate analysis of uplink or downlink
    • H04W52/146Uplink power control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/18TPC being performed according to specific parameters
    • H04W52/24TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters
    • H04W52/247TPC being performed according to specific parameters using SIR [Signal to Interference Ratio] or other wireless path parameters where the output power of a terminal is based on a path parameter sent by another terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/04TPC
    • H04W52/38TPC being performed in particular situations
    • H04W52/40TPC being performed in particular situations during macro-diversity or soft handoff
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/27Control channels or signalling for resource management between access points
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/08Access point devices

Definitions

  • the present invention relates to a communication system. More particularly, the present invention relates to an apparatus and a method for allocating a channel and power in a multi-cell communication system.
  • a Wireless Metropolitan Area Network (WMAN) communication system In order to efficiently provide high-speed large-capacity services, the next generation communication system needs to maximize frequency efficiency.
  • a Wireless Metropolitan Area Network (WMAN) communication system In order to increase the frequency efficiency, a Wireless Metropolitan Area Network (WMAN) communication system, for example, needs to divide the whole network into multiple cells, and needs to support the reuse of frequency resources in each of the multiple cells.
  • WMAN Wireless Metropolitan Area Network
  • ICI Inter-Cell Interference
  • the reuse rate of the frequency resources is expressed as a frequency reuse factor.
  • the frequency reuse factor indicates the number of cells, to which a frequency band is distributed. When the frequency reuse factor is set to a value more than “1,” frequency efficiency becomes lower, but ICI becomes smaller. Therefore, a Fractional Frequency Reuse (FFR) scheme, in which a frequency reuse rate is controlled for each subchannel by using a trade-off between frequency efficiency and ICI according to the frequency reuse factors, has been proposed for use in the next generation communication system.
  • the FFR scheme refers to a scheme in which a frequency reuse factor is set to “1” for some subchannels and is set to a value more than “1” for the remaining subchannels.
  • a frequency reuse pattern is determined and fixed during cell planning.
  • a frequency reuse pattern for optimizing frequency efficiency changes depending on user distribution in a network, the number of users in each cell of the network, etc.
  • An aspect of the present invention is to address at least the above?mentioned problems and/or disadvantages and to provide at least the advantages described below. Accordingly, an aspect of the present invention is to provide an apparatus and a method for allocating a channel and power in a communication system.
  • Another aspect of the present invention is to provide an apparatus and a method for allocating a channel and power by using inter-cell cooperation information received from each neighboring cell in a multi-cell communication system.
  • a method for allocating a channel and power by a Base Station (BS) in a communication system includes, performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each User Equipment (UE), and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information, selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling, computing a power metric for each of a selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the performed scheduling, and allocating power to all UEs by preset subframe periods by using the computed power metric.
  • a first scheduling which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each User Equipment (UE)
  • UE User Equipment
  • a BS in a communication system includes, a channel allocator for performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each UE, and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information, and for selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling, and a power allocator for computing a power metric for each of a selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the first scheduling, and for allocating power to all UEs including the selected UE and the non-selected UE by preset subframe periods by using the computed power metric.
  • a method for allocating a channel and power by a BS in a communication system includes, performing scheduling by using inter-cell cooperation information received from at least one neighboring BS and channel state information received from each UE, selecting a UE combination including at least one UE to be allocated each subchannel in each subframe based on results of the scheduling, computing a power metric for each of a selected UE and a non-selected UE by using data rate information of the at least one UE estimated based on the channel state information, the inter-cell cooperation information, an amount of performance change of the at least one UE, and the results of the scheduling, and allocating power to all UEs by preset subframe periods by using the computed power metric.
  • a BS apparatus for allocating a channel and power in a communication system.
  • the BS apparatus includes, a channel allocator for performing scheduling by using inter-cell cooperation information received from at least one neighboring BS and channel state information received from each UE, and for selecting a UE combination including at least one UE to be allocated each subchannel in each subframe based on results of the scheduling, and a power allocator for computing a power metric for each of a selected UE and a non-selected UE by using data rate information of the at least one UE estimated based on the channel state information, the inter-cell cooperation information, an amount of performance change of the at least one UE, and the results of the scheduling, and for allocating power to all UEs by preset subframe periods by using the computed power metric.
  • each BS generates inter-cell cooperation information based on channel state information that each BS has received from users, and exchanges the generated inter-cell cooperation information with a neighboring BS. Then, each BS allocates a channel and power based on inter-cell cooperation information received from the neighboring BS. As a result, it is possible to minimize interference between neighboring cells and improve frequency efficiency. Also, it is possible to allocate a channel and power in adaptive response to a real-time network state such as user distribution, the number of users in each cell, etc.
  • FIG. 1 is an illustrative view showing the structure of a multi-cell communication system according to an exemplary embodiment of the present invention
  • FIG. 2 is a block diagram illustrating the configuration of a serving Base Station (BS) for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention
  • BS Base Station
  • FIG. 3 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention
  • FIG. 4 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention
  • FIG. 5 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
  • FIG. 6 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
  • FIG. 1 is an illustrative view showing the structure of a multi-cell communication system according to an exemplary embodiment of the present invention.
  • the multi-cell communication system includes 2 neighboring cells, i.e. cell k 110 and cell m 120, will be described as an example.
  • Cell k 110 includes a first Base Station (BS) 111 for controlling cell k 110 and first User Equipments (UEs) 113 and 114 which receive communication services provided by the first BS 111.
  • cell m 120 includes a second BS 121 for controlling cell m 120 and second UEs 123 and 124 which receive communication services provided by the second BS 121.
  • the first BS 111 and the second BS 121 exchange inter-cell cooperation information.
  • each BS efficiently allocates a channel and power to UEs located in the cell that it controls.
  • channel allocation is performed in each subframe, and power allocation is performed at predetermined subframe intervals, e.g. in each T subframe.
  • inter-cell cooperation information is exchanged in each T subframes.
  • the apparatus and the method proposed in the embodiment of the present invention may be applied to not only the first BS 111 but also other BSs including the second BS 121.
  • the first BS 111 is referred to as a “serving BS”
  • the second BS 121 is referred to as a “neighboring BS.”
  • FIG. 2 is a block diagram illustrating the configuration of a serving BS for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention.
  • the serving BS 111 includes a resource allocator 210 and an inter-cell cooperation information generation/processing unit 220.
  • the resource allocator 210 includes a channel state information processor 213, a channel allocator 211, and a power allocator 212.
  • the operations of the elements in the serving BS 111 change depending on whether the multi-cell communication system is a system (hereinafter, referred to as a “single scheduling system”) using a Single-User (SU) scheduling method or a system (hereinafter, referred to as a “multiple scheduling system”) using a Multi-user (MU) scheduling method.
  • a single scheduling system using a Single-User (SU) scheduling method
  • SU Single-User
  • multiple scheduling system a Multi-user (MU) scheduling method.
  • the SU scheduling method refers to a scheduling method for allocating a single UE to a single subchannel.
  • the MU scheduling method refers to a scheduling method for simultaneously allocating multiple UEs to a single subchannel by using multiple transmission antennas.
  • the channel state information processor 213 receives transmittable data rate information over each subchannel from an ith UE 113 (hereinafter, referred to as “UE i”), which belongs to cell k, in each subframe. At this time, transmittable data rate information over subchannel j in subframe t of UE i 113 belonging to cell k is expressed as .
  • the channel state information processor 213 accumulates received from UE i 113 for a preset time period, and computes which is the average transmittable data rate information over subchannel j in subframe t of UE i 113 belonging to cell k.
  • the channel state information processor 213 provides the computed to the channel allocator 211. At this time, is updated in each subframe by using equation (1) below.
  • Equation (1) is used to compute a moving average of a data rate.
  • equation (1) represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the channel allocator 211 performs actual scheduling for allocating a subchannel, over which actual data is to be transmitted, and virtual scheduling for generating inter-cell cooperation information by using the received and the computed . Then, the channel allocator 211 provides the results of the actual scheduling and those of the virtual scheduling to the power allocator 212 and the inter-cell cooperation information generation/processing unit 220.
  • the channel allocator 211 selects a UE, which will provide a service for each subchannel, based on in each subframe by using equation (2) below.
  • Equation (2) is used to select a UE which maximizes an actual scheduling metric.
  • equation (2) represents an index of a UE which is to be allocated subchannel j, represents a throughput to the end of subframe t of UE i 113 belonging to cell k, c represents a scaling constant, and represents a parameter for adjusting a trade-off between throughput in the whole cell and throughput on each cell boundary.
  • equation (3) an can be expressed by equation (3) below.
  • equation (3) represents a ratio of transmission power of UE i 113 and transmission power for a reference signal (or a pilot signal) of the serving BS 111.
  • equation (3) represents inter-cell cooperation information which is the most recently received from the neighboring BS 121 belonging to cell m by the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 belonging to cell k. Specifically, represents the amount of utility change in cell m according to the increase of the average transmission power in cell k over subchannel j.
  • the term utility refers to the satisfaction degree of UE i 113 according to a function value of a data rate or throughput allocated to UE i 113. More particularly, the utility is determined by when , whereas it is determined by when .
  • equation (2) represents the amount of utility increase in cell k which is obtained when a service is provided to UE i 113, and represents the sum of amounts of utility decreases in cells other than cell k.
  • the channel allocator 211 performs the actual scheduling by using equation (2), and thereby selects a UE which maximizes a utility of the whole network. However, when an actual scheduling metric of each UE, which has been computed by using equation (2), is less than “0,” the channel allocator 211 does not allocate a subchannel to any UE.
  • a throughput of each UE is updated by using equations (4) and (5) below. Specifically, when the channel allocator 211 selects UE i 113, the throughput of UE i 113 is updated by using equation (4) below. On the other hand, when the channel allocator 211 does not select UE i 113, the throughput of UE i 113 is updated by using equation (5) below.
  • equations (4) and (5) represents the number of subchannels, and , which represents a moving average coefficient, is defined as a rational number ranging from “0” to “1.”
  • the channel allocator 211 selects a UE, to which a communication service is to be provided, based on over each subchannel in each subframe by using equation (6) below.
  • Equation (6) is used to select a UE which maximizes a virtual scheduling metric.
  • equation (6) represents a throughput to the end of subframe t according to the virtual scheduling of UE i 113 belonging to cell k.
  • a throughput of each UE is updated by using equations (7) and (8) below.
  • the throughput of UE i 113 is updated by using equation (7) below.
  • the throughput of UE i 113 is updated by using equation (8) below.
  • equations (7) and (8) below represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the virtual scheduling metric is used to compute a throughput of UE i 113 when scheduling is performed by using a data average for each subchannel, which is obtained by excluding the influence of channel fading.
  • a virtual throughput is computed by using equations (4) and (5), and whether UE i 113 is selected is determined based on the results of the actual scheduling.
  • a power metric which represents the amount of utility change of the whole network according to the increase of of UE i 113 belonging to cell k, is expressed as .
  • the power allocator 212 computes a power metric based on the results of the virtual scheduling by using equations (9) and (10) below. When the virtual scheduling is not performed, the results of the actual scheduling are used.
  • Equation (9) is used to compute a power metric when UE i 113 is selected based on the results of the virtual scheduling.
  • Equation (10) is used to compute a power metric when UE i 113 is not selected based on the results of the virtual scheduling.
  • equations (9) and (10) represents the amount of change for each subchannel of UE i 113 to the amount of increase of UE i 113 which is the amount of performance change of UE i 113 according to the change of transmission power of UE i 113 belonging to cell k.
  • the element represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the element represents a weighting factor which is obtained when UE i 113 belonging to cell k considers the amounts of performance changes of other cells to the amount of performance change of cell k.
  • a weighting factor for each UE is initially set to “1.” Then, a weighting factor for a UE, of which a current performance does not satisfy the QoS conditions, is reduced by a predetermined value in each T subframe. On the other hand, a weighting factor for a UE, of which a current performance satisfies the QoS conditions, is increased by a predetermined value in each T subframes.
  • QoS Quality of Service
  • the channel state information processor 213 computes a in each T subframe by using equation (11) below. Then, it provides the computed to the power allocator 212.
  • the power allocator 212 determines a transmission power for at the relevant time point in each T subframes based on the power metric , which has been computed by using equations (9) and (10), by using equations (12) and (13) below. Specifically, when > 0 , the power allocator 212 determines a transmission power by using equation (12) below. On the other hand, when ⁇ 0 , it determines a transmission power by using equation (13) below.
  • max represents a maximum value of the transmission power
  • min represents a minimum value of the transmission power
  • the power allocator 212 allocates power, which is larger than currently-allocated power, to UE i 113.
  • the power allocator 212 allocates power, which is smaller than currently-allocated power, to UE i 113.
  • the power allocator 212 maintains the power which is currently allocated to UE i 113.
  • the transmission power of UE i 113 which has been determined by using equations (12) and (13), is used during the next T subframes.
  • the power allocator 212 transmits data by using power which is obtained by multiplying transmission power of a reference signal by the transmission power of UE i 113 selected by scheduling.
  • the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 belonging to cell k generates , which is to be delivered to the neighboring BS 121 belonging to cell m, by using equations (14) and (15) below. Specifically, when UE i 113 is selected based on the results of the virtual scheduling, the inter-cell cooperation information generation/processing unit 220 updates in each subframe by using equation (14) below. On the other hand, when none of the UEs are selected based on the results of the virtual scheduling, the inter-cell cooperation information generation/processing unit 220 updates in each subframe by using equation (15) below. In equations (14) and (15) below, represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the inter-cell cooperation information generation/processing unit 220 transmits at the relevant time point in each T subframes to the neighboring BS 121.
  • equation (14) represents the amount of performance change of UE i 113 belonging to the serving cell k according to the change of average transmission power of neighboring cell m.
  • the element represents the amount of change of UE i 113 to the amount of average transmission power increase for each subchannel of neighboring cell m.
  • the channel state information processor 213 computes a by using equation (16) below, and then provides the computed to the inter-cell cooperation information generation/processing unit 220.
  • Equation (16) represents a ratio of power of a reference signal, which UE i 113 belonging to cell k receives from cell m, and that of a reference signal, which UE i 113 receives from cell k.
  • UE i 113 measures both a power of the reference signal, which UE i 113 has received from cell k to which UE i 113 itself belongs, and a power of the reference signal which it has received from neighboring cell m. Then, it transmits the measured power values or a ratio of the measured power values to the serving BS 111.
  • a for cell m of which a power of the reference signal cannot be measured, is determined as follows.
  • the channel state information processor 213 manages, according to cells, a set K for the number of neighboring cells which exert the largest influence of Inter-Cell Interference (ICI) on UEs belonging to each cell.
  • the set K is constructed based on powers of reference signals that all the UEs in each cell have received from neighboring cells.
  • the channel state information processor 213 manages an average transmittable data rate to the whole frequency band of each UE.
  • the channel state information processor 213 updates a in each subframe by using equation (17) below.
  • equation (17) below represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the channel state information processor 213 computes an average Signal-to-Interference Noise Ratio (SINR) to the whole frequency band based on the value of a at the relevant time point in each T subframes by using equations (18) and (19) below.
  • SINR Signal-to-Interference Noise Ratio
  • the average SINR is expressed by equation (19) below.
  • a is computed by the sum of data rates for 2 data streams, and a and b represent parameters for computing an average SINR from an average transmittable data rate.
  • equation (20) represents a set of neighboring cells of which reception powers of reference signals is measured, and represents the number of the neighboring cells belonging to the set of the neighboring cells.
  • the inter-cell cooperation information generation/processing unit 220 computes for all neighboring cells as inter-cell cooperation information, and transmits the computed to all the neighboring cells in each T subframe. However, a transmission time point of the computed may be differently set for each of all the neighboring cells.
  • the performance of each UE is determined by an instantaneous channel state at the relevant time point, simultaneously-transmitted precoding of all UEs at the relevant time point, intra-cell interference and Inter-Cell Interference (ICI) at the relevant time point, etc.
  • ICI Inter-Cell Interference
  • subchannel and power allocation must be performed by predicting the performance change of the whole network according to the subchannel allocation and power control.
  • transmission power which is used when the serving BS 111 transmits data to each UE, is determined by multiplying the reference power by a relative transmission power of each UE determined by the channel allocator 211. Namely, a transmission power , which is used to transmit data to UE i 113 allocated to subchannel j in cell k, is determined by equation (21) below.
  • equation (21) represents reference power of the serving BS 111 belonging to cell k, represents the number of UEs which are simultaneously allocated to subchannel j in subframe t determined by the channel allocator 211, represents a ratio of transmission power of UE i 113 and transmission power for a reference signal (or a pilot signal) of the serving BS 111.
  • a transmittable data rate of a UE allocated to a particular subchannel is determined according to how a UE is combined with other UEs which are allocated to the same subchannel. Specifically, the data rate is determined based on precoding and channel characteristics of each UE for reducing interference between the UEs included in a relevant UE combination.
  • a transmittable data rate of UE i 113 included in the UE combination is determined by using equation (22) below.
  • Equation (22) represents a precoding vector of UE i 113 over subchannel j in cell k, and represents a precoding vector of UE i' over subchannel j in cell k.
  • UE i' represents a UE other than UE i 113 included in the UE combination , or a UE included in a UE combination in cell m.
  • the element represents a channel vector between UE i 113 and a neighboring BS 121 belonging to cell m, represents a channel vector between UE i 113 and the serving BS 111 belonging to cell k, represents transmission power for transmitting data to UE i' allocated to subchannel j in cell k, and N represents noise power.
  • the channel state information processor 213 of the serving BS 111 receives channel state information from UE i 113 in order to estimate a .
  • the channel state information includes an SINR which is computed on the assumption that UE i 113 sets transmission power of the serving BS 111 as reference power and only UE i 113 is allocated the relevant subchannel.
  • An SINR is computed by using equation (23) below.
  • equation (23) represents an SINR over subchannel j during subframe t of UE i 113 included in cell k, and represents a magnitude of inter-cell interference which occurs when the neighboring BS 121 transmits data by using reference power.
  • the channel state information processor 213 estimates a transmittable data rate by using the computed . Namely, the channel state information processor 213 estimates the transmittable data rate by using equation (24) below.
  • equation (24) represents a vector which is obtained by normalizing a vector , represents an average value of relative transmission powers to reference powers that neighboring BSs of cell k use over subchannel j, and represents a ratio of transmission power of UE i' and transmission power for a reference signal (or a pilot signal) of the serving BS111.
  • the channel state information processor 213 provides the estimated to the channel allocator 211. Then, the channel allocator 211 determines a combination of UEs which are to be allocated to each subchannel in each subframe by using a scheduling metric which appears in equation (25) below. When there is a combination of UEs for which the value of a scheduling metric is less than “0,” the channel allocator 211 does not perform UE allocation to the relevant subchannel.
  • equation (25) represents an index of a combination ⁇ i ⁇ of UEs allocated to subchannel j in cell k, and an is determined by using equation (26) below.
  • equation (26) represents the number of users belonging to the combination ⁇ i ⁇ of the UEs, represents inter-cell cooperation information which is the most recently received from the neighboring BS 121 belonging to cell m by the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 belonging to cell k. Namely, represents the amount of utility change in cell m according to the increase of the average transmission power in cell k over subchannel j.
  • the channel allocator 211 provides in each subframe the results of the scheduling, which have been obtained by using equation (25), to the channel state information processor 213, the power allocator 212, and the inter-cell cooperation information generation/processing unit 220. Also, the channel allocator 211 updates in each subframe a throughput to the end of subframe t of UE i 113 belonging to cell k. Then, it provides the updated to the power allocator 212 and the inter-cell cooperation information generation/processing unit 220.
  • the channel state information processor 213 computes a based on the transmittable data rate at the relevant time point in each subframe by using equation (27) below. At this time, represents the amount of change over subchannel j to the amount of increase of UE i 113.
  • the channel state information processor 213 provides the , which has been computed by using equation (27), to the power allocator 212.
  • the channel state information processor 213 computes a based on the transmittable data rate at the relevant time point in each subframe by using equation (28) below. At this time, represents the amount of change of UE i 113 belonging to cell k to the amount of average transmission power increase over subchannel j in neighboring cell m.
  • equation (28) is expressed by equation (29) below.
  • the channel state information processor 213 provides the computed to inter-cell cooperation information generation/processing unit 220.
  • the power allocator 212 computes a based on the results of the scheduling in each subframe by using equations (30) and (31) below. At this time, is a power metric which represents the amount of utility change of the whole network according to the increase of of UE i 113 belonging to cell k.
  • the power allocator 212 computes a by using equation (30) below.
  • the power allocator 212 computes a by using equation (31) below.
  • equations (30) and (31) below represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the power allocator 212 allocates power, which is larger than currently-allocated power, to UE i 113.
  • the power allocator 212 allocates power, which is smaller than currently-allocated power, to UE i 113.
  • the power allocator 212 maintains the power which is currently allocated to UE i 113. The process of allocating power by the power allocator 212 is performed in each T subframes.
  • the inter-cell cooperation information generation/processing unit 220 receives from the neighboring BS in each T subframes. Then, it provides the received to the channel allocator 211 and the power allocator 212.
  • the inter-cell cooperation information generation/processing unit 220 updates , which is to be transmitted to the neighboring BS 121, based on the results of the scheduling in each subframe by using equations (32) and (33) below.
  • the inter-cell cooperation information generation/processing unit 220 updates by using equation (32) below.
  • the inter-cell cooperation information generation/processing unit 220 updates by using equation (33) below.
  • equations (32) and (33) below represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
  • the inter-cell cooperation information generation/processing unit 220 transmits in each T subframes the updated to the neighboring BS 121 along with .
  • a method for allocating a channel and power in a multi-cell communication system according to a first exemplary embodiment of the present invention will be described with reference to FIG. 3.
  • FIG. 3 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention.
  • UE i 113 transmits, in each subframe, transmittable data rate information over subchannel j of UE i 113, which belongs to cell k, to a serving BS 111 in step 301.
  • a channel state information processor 213 of the serving BS 111 receives the transmittable data rate information , and computes average transmittable data rate information for each subchannel by using the received . Then, the channel state information processor 213 provides the computed to a channel allocator 211 in step 305. Next, the channel state information processor 213 computes average transmittable data rate information to the whole frequency band by using the received in step 306.
  • a neighboring BS 121 transmits inter-cell cooperation information to the serving BS 111 in each T subframe in step 333. Then, the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 receives the inter-cell cooperation information , and provides the received to a power allocator 212 and the channel allocator 211 in step 334.
  • the neighboring BS 121 belongs to cell m
  • the serving BS 111 belongs to cell k. Therefore, the inter-cell cooperation information represents the amount of utility change of cell m according to the increase of average transmission power in cell k over subchannel j.
  • the channel allocator 211 performs actual scheduling by using the received and the received , and performs virtual scheduling by using the computed and the received in step 307. Then, the channel allocator 211 provides the results of the actual scheduling and those of the virtual scheduling to the inter-cell cooperation information generation/processing unit 220 and the power allocator 212 in step 309.
  • the channel allocator 211 computes a throughput of UE i 113 belonging to cell k based on the results of the actual scheduling, and computes a virtual throughput of UE i 113 belonging to cell k based on the results of the virtual scheduling in step 311. Then, the channel allocator 211 provides the values of the computed and to the inter-cell cooperation information generation/processing unit 220 and the power allocator 212 in step 313.
  • UE i 113 transmits the measured reception power for the reference signal to the serving BS 111. Then, the serving BS 111 receives the measured reception power for the reference signal through the channel state information processor 213 thereof.
  • the channel state information processor 213 computes an average SINR of the whole frequency band by using average transmittable data rate information at the relevant time point in each T subframes in step 317). Then, the channel state information processor 213 computes a for neighboring cell m, of which a power of a reference signal cannot be measured, by using the computed in step 319. Also, the channel state information processor 213 computes in each T subframe a , which is the amount of change for each subchannel to the amount of increase of UE i 113, by using both the average transmittable data rate information , which has been computed in step 303, and a ratio of transmission power of UE i 113 and that of a reference signal of cell k in step 321. Then, the channel state information processor 213 provides the value of the computed to the power allocator 212 in step 323.
  • the power allocator 212 computes in each subframe a , which is the amount of utility change of the whole network according to the increase of of UE i 113, by using the received and the value of the computed . Then, the power allocator 212 performs power allocation based on the computed in each T subframe in step 327. Namely, when > 0, the power allocator 212 allocates power, which is larger than currently-allocated power, to UE i 113. When ⁇ 0, the power allocator 212 allocates power, which is smaller than currently-allocated power, to UE i 113. The results of the power allocation are provided not only to UE i 113 but also to the channel state information processor 213 and the channel allocator 211 in step 328.
  • the channel state information processor 213 computes in each T subframes a , which is the amount of change of UE i 113 to the amount of transmission power increase for each subchannel in neighboring cell m, by using both , which has been computed in step 303, and which has been computed in step 319 in step 329. Then, the channel state information processor 213 provides the value of the computed to the inter-cell cooperation information generation/processing unit 220 in step 331.
  • the inter-cell cooperation information generation/processing unit 220 updates in each subframe by using the computed and in step 335. Next, it transmits the updated to the neighboring BS 121 in each T subframes in step 337.
  • FIG. 4 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention.
  • UE i 113 transmits channel state information including an SINR to a serving BS 111 in each subframe in step 401. Then, the channel state information processor 213 of the serving BS 111 receives the channel state information, and computes a transmittable data rate in each subframe by using the SINR included in the channel state information in step 403. Next, the channel state information processor 213 provides the computed to the channel allocator 211 in step 405.
  • the channel allocator 211 receives the computed from the channel state information processor 213, and receives inter-cell cooperation information from an inter-cell cooperation information generation/processing unit 220. At this time, is inter-cell cooperation information which is received in each T subframes from a neighboring BS 121 in step 407. The inter-cell cooperation information is received through the inter-cell cooperation information generation/processing unit 220 of the serving BS 111.
  • the inter-cell cooperation information generation/processing unit 220 provides to the channel allocator 211 and a power allocator 212 in each T subframes in steps 409 and 411.
  • the channel allocator 211 performs scheduling in each subframe by using the received and in step 413.
  • the channel allocator 211 provides the results of the scheduling to the channel state information processor 213, the power allocator 212, and the inter-cell cooperation information generation/processing unit 220 in steps 415, 417, and 419.
  • the channel allocator 211 updates a throughput in each subframe in step 421. Then, the channel allocator 211 provides the updated to the power allocator 212 and the inter-cell cooperation information generation/processing unit 220 in steps 423 and 425.
  • the channel state information processor 213 computes a by using a transmittable data rate at the relevant time point in each subframe in step 427. Next, the channel state information processor 213 provides the computed to the power allocator 212 in step 429. Then, the power allocator 212 computes a based on the results of the scheduling in each subframe in step 431. The computed is used to allocate power.
  • the channel state information processor 213 computes a by using a transmittable data rate at the relevant time point in each subframe in step 433. Next, the channel state information processor 213 provides the computed to the inter-cell cooperation information generation/processing unit 220 in step 435.
  • the inter-cell cooperation information generation/processing unit 220 updates inter-cell cooperation information , which is to be transmitted to the neighboring BS 121, in each subframe by using the results of the scheduling, the computed and the computed in step 437.
  • the inter-cell cooperation information generation/processing unit 220 transmits in each T subframe the updated to the neighboring BS 121 along with in step 439.
  • the power allocator 212 allocates power to UE i 113 in each T subframes based on the results of the scheduling, the computed and the updated in step 441. Then, the power allocator 212 provides the results of the power allocation to the channel state information processor 213 and the channel allocator 211 in steps 443 and 445.
  • FIG. 5 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
  • the serving BS receives data rate information from UE i. Namely, the serving BS receives as the data rate information in each subframe.
  • the serving BS receives inter-cell cooperation information from a neighboring BS.
  • the inter-cell cooperation information may be expressed as , and is received in each T subframes.
  • the serving BS performs actual scheduling and virtual scheduling by using the received data rate information and inter-cell cooperation information. Before performing the actual scheduling and virtual scheduling, the serving BS computes average transmittable data rate information and an average transmittable data rate by using the received data rate information .
  • the serving BS When completing the computation of and a , in each subframe, the serving BS performs the actual scheduling by using the received and , and performs the virtual scheduling by using the computed and the received .
  • step 504 the serving BS allocates a subchannel to UE i based on the results of the actual scheduling, and proceeds to step 505.
  • step 505 the serving BS allocates power to UE i according to a power metric which has been computed based on the results of the virtual scheduling.
  • the serving BS allocates a subchannel to UE i based on the results of the actual scheduling, and updates a throughput of UE i. Then, the serving BS updates a virtual throughput of UE i based on the results of the virtual scheduling.
  • the updated is used for allocating power to UE i and generating inter-cell cooperation information which is to be transmitted to the neighboring BS.
  • the updated is used instead of .
  • the virtual scheduling may not be performed in some exemplary embodiments of the present invention.
  • the serving BS uses the results of the actual scheduling instead of those of the virtual scheduling.
  • the serving BS computes an by using , and computes a by using the computed .
  • the serving BS computes a by using a ratio of transmission power of UE i and that of a reference signal of cell k. At this time, represents the amount of change for each subchannel to the amount of increase.
  • the serving BS computes a , which is the amount of utility change of the whole network according to the increase of , in each subframe by using the received and the computed . Then, the serving BS performs power allocation in each T subframes based on the computed .
  • the serving BS allocates power, which is larger than currently-allocated power, to UE i.
  • the serving BS allocates power, which is smaller than currently-allocated power, to UE i.
  • the serving BS generates inter-cell cooperation information that it will transmit to the neighboring BS.
  • the serving BS computes a which is the amount of change of UE i to the amount of transmission power increase for each subchannel in neighboring cell m by using and which is computed in each T subframes. Then, in each subframe, the serving BS updates by using the updated and the computed , and thereby generates inter-cell cooperation information that it will transmit to the neighboring BS.
  • the serving BS transmits the generated inter-cell cooperation information to the neighboring BS.
  • FIG. 6 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
  • the serving BS receives channel state information from UE i in each subframe.
  • the channel state information includes .
  • the serving BS receives inter-cell cooperation information from a neighboring BS.
  • the inter-cell cooperation information is expressed as , and is received by the serving BS in each T subframe.
  • the serving BS performs scheduling by using the received channel state information and the inter-cell cooperation information.
  • the serving BS computes by using included in the channel state information. Then, the serving BS performs scheduling by using the computed and the received .
  • the serving BS updates a throughput to the end of subframe t of UE i based on the results of the scheduling.
  • the serving BS computes a which is the amount of change over subchannel j to the amount of increase of UE i.
  • the serving BS In step 606, the serving BS generates inter-cell cooperation information that it will transmit to the neighboring BS. Specifically, the serving BS computes a based on the , and generates as inter-cell cooperation information, which it will transmit to the neighboring BS, based on the computed and the results of the scheduling. In step 607, the serving BS transmits the generated inter-cell cooperation information to the neighboring BS.
  • each BS generates inter-cell cooperation information based on channel state information that each BS has received from users, and exchanges the generated inter-cell cooperation information with a neighboring BS. Then, each BS allocates a channel and power based on inter-cell cooperation information received from the neighboring BS. As a result, it is possible to minimize interference between neighboring cells and improve frequency efficiency. Also, it is possible to allocate a channel and power in adaptive response to a real-time network state such as user distribution, the number of users in each cell, etc.

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Abstract

An apparatus and method for allocating a channel and power by a Base Station (BS) in a communication system are provided. The method includes, performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each User Equipment (UE), and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information, selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling, computing a power metric for each of the selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the performed scheduling; and allocating power to all UEs including the selected UE and the non-selected UE by preset subframe periods by using the computed power metric.

Description

APPARATUS AND METHOD FOR ALLOCATING CHANNEL AND POWER IN COMMUNICATION SYSTEM
The present invention relates to a communication system. More particularly, the present invention relates to an apparatus and a method for allocating a channel and power in a multi-cell communication system.
In order to efficiently provide high-speed large-capacity services, the next generation communication system needs to maximize frequency efficiency. In order to increase the frequency efficiency, a Wireless Metropolitan Area Network (WMAN) communication system, for example, needs to divide the whole network into multiple cells, and needs to support the reuse of frequency resources in each of the multiple cells. However, when the frequency resources are reused, Inter-Cell Interference (ICI) occurs, which causes significant performance degradation for users who are located on a cell boundary among users in each cell.
The reuse rate of the frequency resources is expressed as a frequency reuse factor. The frequency reuse factor indicates the number of cells, to which a frequency band is distributed. When the frequency reuse factor is set to a value more than “1,” frequency efficiency becomes lower, but ICI becomes smaller. Therefore, a Fractional Frequency Reuse (FFR) scheme, in which a frequency reuse rate is controlled for each subchannel by using a trade-off between frequency efficiency and ICI according to the frequency reuse factors, has been proposed for use in the next generation communication system. The FFR scheme refers to a scheme in which a frequency reuse factor is set to “1” for some subchannels and is set to a value more than “1” for the remaining subchannels.
In the FFR scheme, a frequency reuse pattern is determined and fixed during cell planning. However, a frequency reuse pattern for optimizing frequency efficiency changes depending on user distribution in a network, the number of users in each cell of the network, etc. In the FFR scheme, it is impossible to control the frequency reuse pattern in response to changes in the network as described above. Therefore, when the FFR scheme is used, there is a problem in that system performance is degraded. Also, when the FFR scheme is used, it has limitations in performing power control through the frequency reuse pattern. Therefore, there is another problem in that power cannot be efficiently controlled. Consequently, there has been a demand for a scheme for allocating an optimal frequency channel and optimal power in adaptive response to a network state which changes depending on user distribution in a network, the number of users in each cell of the network, etc.
An aspect of the present invention is to address at least the above?mentioned problems and/or disadvantages and to provide at least the advantages described below. Accordingly, an aspect of the present invention is to provide an apparatus and a method for allocating a channel and power in a communication system.
Another aspect of the present invention is to provide an apparatus and a method for allocating a channel and power by using inter-cell cooperation information received from each neighboring cell in a multi-cell communication system.
In accordance with an aspect of the present invention, a method for allocating a channel and power by a Base Station (BS) in a communication system is provided. The method includes, performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each User Equipment (UE), and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information, selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling, computing a power metric for each of a selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the performed scheduling, and allocating power to all UEs by preset subframe periods by using the computed power metric.
In accordance with another aspect of the present invention, a BS in a communication system is provided. The BS includes, a channel allocator for performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each UE, and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information, and for selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling, and a power allocator for computing a power metric for each of a selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the first scheduling, and for allocating power to all UEs including the selected UE and the non-selected UE by preset subframe periods by using the computed power metric.
In accordance with another aspect of the present invention, a method for allocating a channel and power by a BS in a communication system is provided. The method includes, performing scheduling by using inter-cell cooperation information received from at least one neighboring BS and channel state information received from each UE, selecting a UE combination including at least one UE to be allocated each subchannel in each subframe based on results of the scheduling, computing a power metric for each of a selected UE and a non-selected UE by using data rate information of the at least one UE estimated based on the channel state information, the inter-cell cooperation information, an amount of performance change of the at least one UE, and the results of the scheduling, and allocating power to all UEs by preset subframe periods by using the computed power metric.
In accordance with another aspect of the present invention, a BS apparatus for allocating a channel and power in a communication system is provided. The BS apparatus includes, a channel allocator for performing scheduling by using inter-cell cooperation information received from at least one neighboring BS and channel state information received from each UE, and for selecting a UE combination including at least one UE to be allocated each subchannel in each subframe based on results of the scheduling, and a power allocator for computing a power metric for each of a selected UE and a non-selected UE by using data rate information of the at least one UE estimated based on the channel state information, the inter-cell cooperation information, an amount of performance change of the at least one UE, and the results of the scheduling, and for allocating power to all UEs by preset subframe periods by using the computed power metric.
Other aspects, advantages, and salient features of the invention will become apparent to those skilled in the art from the following detailed description, which, taken in conjunction with the annexed drawings, discloses exemplary embodiments of the invention.
According to an exemplary embodiment of the present invention, each BS generates inter-cell cooperation information based on channel state information that each BS has received from users, and exchanges the generated inter-cell cooperation information with a neighboring BS. Then, each BS allocates a channel and power based on inter-cell cooperation information received from the neighboring BS. As a result, it is possible to minimize interference between neighboring cells and improve frequency efficiency. Also, it is possible to allocate a channel and power in adaptive response to a real-time network state such as user distribution, the number of users in each cell, etc.
The above and other aspects, features, and advantages of certain exemplary embodiments of the present invention will be more apparent from the following description taken in conjunction with the accompanying drawings, in which:
FIG. 1 is an illustrative view showing the structure of a multi-cell communication system according to an exemplary embodiment of the present invention;
FIG. 2 is a block diagram illustrating the configuration of a serving Base Station (BS) for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention;
FIG. 3 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention;
FIG. 4 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention;
FIG. 5 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention; and
FIG. 6 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
Throughout the drawings, it should be noted that like reference numbers are used to depict the same or similar elements, features, and structures.
The following description with reference to the accompanying drawings is provided to assist in a comprehensive understanding of exemplary embodiments of the invention as defined by the claims and their equivalents. It includes various specific details to assist in that understanding but these are to be regarded as merely exemplary. Accordingly, those of ordinary skill in the art will recognize that various changes and modifications of the embodiments described herein can be made without departing from the scope and spirit of the invention. In addition, descriptions of well-known functions and constructions may be omitted for clarity and conciseness.
The terms and words used in the following description and claims are not limited to the bibliographical meanings, but, are merely used by the inventor to enable a clear and consistent understanding of the invention. Accordingly, it should be apparent to those skilled in the art that the following description of exemplary embodiments of the present invention is provided for illustration purpose only and not for the purpose of limiting the invention as defined by the appended claims and their equivalents.
It is to be understood that the singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to “a component surface” includes reference to one or more of such surfaces.
In this specification, a description will be made of an exemplary apparatus and method for allocating a frequency channel and power in a multi-cell communication system. Also, herein, a description will be made of an exemplary apparatus and method for allocating a channel and power by using inter-cell cooperation information received from neighboring cells in the multi-cell communication system.
FIG. 1 is an illustrative view showing the structure of a multi-cell communication system according to an exemplary embodiment of the present invention.
Referring to FIG. 1, a case where the multi-cell communication system includes 2 neighboring cells, i.e. cell k 110 and cell m 120, will be described as an example.
Cell k 110 includes a first Base Station (BS) 111 for controlling cell k 110 and first User Equipments (UEs) 113 and 114 which receive communication services provided by the first BS 111. Also, cell m 120 includes a second BS 121 for controlling cell m 120 and second UEs 123 and 124 which receive communication services provided by the second BS 121.
The first BS 111 and the second BS 121 exchange inter-cell cooperation information. Thereby, each BS efficiently allocates a channel and power to UEs located in the cell that it controls. In an exemplary embodiment of the present invention, channel allocation is performed in each subframe, and power allocation is performed at predetermined subframe intervals, e.g. in each T subframe. Also, in an exemplary embodiment of the present invention, inter-cell cooperation information is exchanged in each T subframes.
Hereinafter, a description will be made of an exemplary apparatus and method for allocating a channel and power by using inter-cell cooperation information that the first BS 111 receives from the second BS 121, which is a neighboring BS. However, it goes without saying that the apparatus and the method proposed in the embodiment of the present invention may be applied to not only the first BS 111 but also other BSs including the second BS 121. Meanwhile, hereinafter, for the convenience of the description, the first BS 111 is referred to as a “serving BS,” and the second BS 121 is referred to as a “neighboring BS.”
Hereinafter, the configuration of an exemplary serving BS will be described with reference to FIG. 2.
FIG. 2 is a block diagram illustrating the configuration of a serving BS for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention.
Referring to FIG. 2, the serving BS 111 includes a resource allocator 210 and an inter-cell cooperation information generation/processing unit 220. The resource allocator 210 includes a channel state information processor 213, a channel allocator 211, and a power allocator 212.
The operations of the elements in the serving BS 111 change depending on whether the multi-cell communication system is a system (hereinafter, referred to as a “single scheduling system”) using a Single-User (SU) scheduling method or a system (hereinafter, referred to as a “multiple scheduling system”) using a Multi-user (MU) scheduling method.
The SU scheduling method refers to a scheduling method for allocating a single UE to a single subchannel. The MU scheduling method refers to a scheduling method for simultaneously allocating multiple UEs to a single subchannel by using multiple transmission antennas.
Hereinafter, two exemplary embodiments, into which operations of the elements of the serving BS 111 performed when the multi-cell communication system is the single scheduling system, and operations of the elements of the serving BS 111 performed when the multi-cell communication system is the multiple scheduling system are classified, will be orderly described.
First, a description will be made of the operations of the elements of the serving BS 111 performed when the multi-cell communication system is the single user scheduling system, according to a first exemplary embodiment of the present invention.
The channel state information processor 213 receives transmittable data rate information over each subchannel from an ith UE 113 (hereinafter, referred to as “UE i”), which belongs to cell k, in each subframe. At this time, transmittable data rate information over subchannel j in subframe t of UE i 113 belonging to cell k is expressed as .
The channel state information processor 213 accumulates
Figure PCTKR2011000694-appb-I000002
received from UE i 113 for a preset time period, and computes
Figure PCTKR2011000694-appb-I000003
which is the average transmittable data rate information over subchannel j in subframe t of UE i 113 belonging to cell k.
Then, the channel state information processor 213 provides the computed
Figure PCTKR2011000694-appb-I000004
to the channel allocator 211. At this time,
Figure PCTKR2011000694-appb-I000005
is updated in each subframe by using equation (1) below.
MathFigure 1
Figure PCTKR2011000694-appb-M000001
Equation (1) is used to compute a moving average of a data rate. In equation (1),
Figure PCTKR2011000694-appb-I000006
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
The channel allocator 211 performs actual scheduling for allocating a subchannel, over which actual data is to be transmitted, and virtual scheduling for generating inter-cell cooperation information by using the received
Figure PCTKR2011000694-appb-I000007
and the computed
Figure PCTKR2011000694-appb-I000008
. Then, the channel allocator 211 provides the results of the actual scheduling and those of the virtual scheduling to the power allocator 212 and the inter-cell cooperation information generation/processing unit 220.
Herein, the actual scheduling out of the actual scheduling and virtual scheduling will be first described in detail as follows.
For the actual scheduling, the channel allocator 211 selects a UE, which will provide a service for each subchannel, based on
Figure PCTKR2011000694-appb-I000009
in each subframe by using equation (2) below.
MathFigure 2
Figure PCTKR2011000694-appb-M000002
Equation (2) is used to select a UE which maximizes an actual scheduling metric. In equation (2),
Figure PCTKR2011000694-appb-I000010
represents an index of a UE which is to be allocated subchannel j,
Figure PCTKR2011000694-appb-I000011
represents a throughput to the end of subframe t of UE i 113 belonging to cell k, c represents a scaling constant, and
Figure PCTKR2011000694-appb-I000012
represents a parameter for adjusting a trade-off between throughput in the whole cell and throughput on each cell boundary. In this case, an
Figure PCTKR2011000694-appb-I000013
can be expressed by equation (3) below.
MathFigure 3
Figure PCTKR2011000694-appb-M000003
In equation (3),
Figure PCTKR2011000694-appb-I000014
represents a ratio of transmission power of UE i 113 and transmission power for a reference signal (or a pilot signal) of the serving BS 111.
Also, in equation (3),
Figure PCTKR2011000694-appb-I000015
represents inter-cell cooperation information which is the most recently received from the neighboring BS 121 belonging to cell m by the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 belonging to cell k. Specifically,
Figure PCTKR2011000694-appb-I000016
represents the amount of utility change in cell m according to the increase of the average transmission power in cell k over subchannel j.
Herein, the term utility refers to the satisfaction degree of UE i 113 according to a function value of a data rate or throughput allocated to UE i 113. More particularly, the utility is determined by
Figure PCTKR2011000694-appb-I000017
when
Figure PCTKR2011000694-appb-I000018
, whereas it is determined by
Figure PCTKR2011000694-appb-I000019
when
Figure PCTKR2011000694-appb-I000020
.
Meanwhile, in equation (2),
Figure PCTKR2011000694-appb-I000021
represents the amount of utility increase in cell k which is obtained when a service is provided to UE i 113, and
Figure PCTKR2011000694-appb-I000022
represents the sum of amounts of utility decreases in cells other than cell k.
Accordingly, the channel allocator 211 performs the actual scheduling by using equation (2), and thereby selects a UE which maximizes a utility of the whole network. However, when an actual scheduling metric of each UE, which has been computed by using equation (2), is less than “0,” the channel allocator 211 does not allocate a subchannel to any UE.
Based on the results of the actual scheduling obtained by using equation (2), a throughput of each UE is updated by using equations (4) and (5) below. Specifically, when the channel allocator 211 selects UE i 113, the throughput of UE i 113 is updated by using equation (4) below. On the other hand, when the channel allocator 211 does not select UE i 113, the throughput of UE i 113 is updated by using equation (5) below.
MathFigure 4
Figure PCTKR2011000694-appb-M000004
MathFigure 5
Figure PCTKR2011000694-appb-M000005
In equations (4) and (5),
Figure PCTKR2011000694-appb-I000023
represents the number of subchannels, and
Figure PCTKR2011000694-appb-I000024
, which represents a moving average coefficient, is defined as a rational number ranging from “0” to “1.”
Next, the virtual scheduling will be described as follows.
For the virtual scheduling, the channel allocator 211 selects a UE, to which a communication service is to be provided, based on
Figure PCTKR2011000694-appb-I000025
over each subchannel in each subframe by using equation (6) below.
MathFigure 6
Figure PCTKR2011000694-appb-M000006
Equation (6) is used to select a UE which maximizes a virtual scheduling metric. In equation (6),
Figure PCTKR2011000694-appb-I000026
represents a throughput to the end of subframe t according to the virtual scheduling of UE i 113 belonging to cell k.
Based on the results of the virtual scheduling obtained in equation (6), a throughput of each UE is updated by using equations (7) and (8) below. Specifically, when the channel allocator 211 selects UE i 113, the throughput of UE i 113 is updated by using equation (7) below. On the other hand, when the channel allocator 211 does not select UE i 113, the throughput of UE i 113 is updated by using equation (8) below. In equations (7) and (8) below,
Figure PCTKR2011000694-appb-I000027
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
MathFigure 7
Figure PCTKR2011000694-appb-M000007
MathFigure 8
Figure PCTKR2011000694-appb-M000008
The virtual scheduling metric is used to compute a throughput of UE i 113 when scheduling is performed by using a data average
Figure PCTKR2011000694-appb-I000028
for each subchannel, which is obtained by excluding the influence of channel fading.
Meanwhile, in an exemplary embodiment of the present invention, only the actual scheduling may be performed instead of the virtual scheduling, and a virtual throughput other than
Figure PCTKR2011000694-appb-I000029
may be managed for each UE. In this case, a virtual throughput is computed by using equations (4) and (5), and whether UE i 113 is selected is determined based on the results of the actual scheduling.
A power metric, which represents the amount of utility change of the whole network according to the increase of
Figure PCTKR2011000694-appb-I000030
of UE i 113 belonging to cell k, is expressed as
Figure PCTKR2011000694-appb-I000031
. In each subframe, the power allocator 212 computes a power metric
Figure PCTKR2011000694-appb-I000032
based on the results of the virtual scheduling by using equations (9) and (10) below. When the virtual scheduling is not performed, the results of the actual scheduling are used.
Equation (9) below is used to compute a power metric
Figure PCTKR2011000694-appb-I000033
when UE i 113 is selected based on the results of the virtual scheduling. Equation (10) below is used to compute a power metric
Figure PCTKR2011000694-appb-I000034
when UE i 113 is not selected based on the results of the virtual scheduling.
MathFigure 9
Figure PCTKR2011000694-appb-M000009
MathFigure 10
Figure PCTKR2011000694-appb-M000010
In equations (9) and (10),
Figure PCTKR2011000694-appb-I000035
represents the amount of
Figure PCTKR2011000694-appb-I000036
change for each subchannel of UE i 113 to the amount of
Figure PCTKR2011000694-appb-I000037
increase of UE i 113 which is the amount of performance change of UE i 113 according to the change of transmission power of UE i 113 belonging to cell k. The element
Figure PCTKR2011000694-appb-I000038
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.” The element
Figure PCTKR2011000694-appb-I000039
represents a weighting factor which is obtained when UE i 113 belonging to cell k considers the amounts of performance changes of other cells to the amount of performance change of cell k.
For example, when there are Quality of Service (QoS) conditions for each UE, a weighting factor
Figure PCTKR2011000694-appb-I000040
for each UE is initially set to “1.” Then, a weighting factor
Figure PCTKR2011000694-appb-I000041
for a UE, of which a current performance does not satisfy the QoS conditions, is reduced by a predetermined value in each T subframe. On the other hand, a weighting factor
Figure PCTKR2011000694-appb-I000042
for a UE, of which a current performance satisfies the QoS conditions, is increased by a predetermined value in each T subframes.
Meanwhile, the channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000043
in each T subframe by using equation (11) below. Then, it provides the computed
Figure PCTKR2011000694-appb-I000044
to the power allocator 212.
MathFigure 11
Figure PCTKR2011000694-appb-M000011
The power allocator 212 determines a transmission power
Figure PCTKR2011000694-appb-I000045
for
Figure PCTKR2011000694-appb-I000046
at the relevant time point in each T subframes based on the power metric
Figure PCTKR2011000694-appb-I000047
, which has been computed by using equations (9) and (10), by using equations (12) and (13) below. Specifically, when
Figure PCTKR2011000694-appb-I000048
> 0 , the power allocator 212 determines a transmission power
Figure PCTKR2011000694-appb-I000049
by using equation (12) below. On the other hand, when
Figure PCTKR2011000694-appb-I000050
< 0 , it determines a transmission power
Figure PCTKR2011000694-appb-I000051
by using equation (13) below.
MathFigure 12
Figure PCTKR2011000694-appb-M000012
MathFigure 13
Figure PCTKR2011000694-appb-M000013
In equations (12) and (13), max
Figure PCTKR2011000694-appb-I000052
represents a maximum value of the transmission power
Figure PCTKR2011000694-appb-I000053
, min
Figure PCTKR2011000694-appb-I000054
represents a minimum value of the transmission power
Figure PCTKR2011000694-appb-I000055
,
Figure PCTKR2011000694-appb-I000056
represents a real number which is more than “1,” and
Figure PCTKR2011000694-appb-I000057
represents a real number which is less than “1.” When
Figure PCTKR2011000694-appb-I000058
> 0, the power allocator 212 allocates power, which is larger than currently-allocated power, to UE i 113. When
Figure PCTKR2011000694-appb-I000059
< 0, the power allocator 212 allocates power, which is smaller than currently-allocated power, to UE i 113. Also, when
Figure PCTKR2011000694-appb-I000060
= 0, the power allocator 212 maintains the power which is currently allocated to UE i 113.
The transmission power
Figure PCTKR2011000694-appb-I000061
of UE i 113, which has been determined by using equations (12) and (13), is used during the next T subframes. The power allocator 212 transmits data by using power which is obtained by multiplying transmission power of a reference signal by the transmission power
Figure PCTKR2011000694-appb-I000062
of UE i 113 selected by scheduling.
The inter-cell cooperation information generation/processing unit 220 of the serving BS 111 belonging to cell k generates
Figure PCTKR2011000694-appb-I000063
, which is to be delivered to the neighboring BS 121 belonging to cell m, by using equations (14) and (15) below. Specifically, when UE i 113 is selected based on the results of the virtual scheduling, the inter-cell cooperation information generation/processing unit 220 updates
Figure PCTKR2011000694-appb-I000064
in each subframe by using equation (14) below. On the other hand, when none of the UEs are selected based on the results of the virtual scheduling, the inter-cell cooperation information generation/processing unit 220 updates
Figure PCTKR2011000694-appb-I000065
in each subframe by using equation (15) below. In equations (14) and (15) below,
Figure PCTKR2011000694-appb-I000066
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
MathFigure 14
Figure PCTKR2011000694-appb-M000014
MathFigure 15
Figure PCTKR2011000694-appb-M000015
The inter-cell cooperation information generation/processing unit 220 transmits
Figure PCTKR2011000694-appb-I000067
at the relevant time point in each T subframes to the neighboring BS 121.
In equation (14),
Figure PCTKR2011000694-appb-I000068
represents the amount of performance change of UE i 113 belonging to the serving cell k according to the change of average transmission power of neighboring cell m. Namely, the element
Figure PCTKR2011000694-appb-I000069
represents the amount of
Figure PCTKR2011000694-appb-I000070
change of UE i 113 to the amount of average transmission power increase for each subchannel of neighboring cell m.
The channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000071
by using equation (16) below, and then provides the computed
Figure PCTKR2011000694-appb-I000072
to the inter-cell cooperation information generation/processing unit 220.
MathFigure 16
Figure PCTKR2011000694-appb-M000016
In equation (16),
Figure PCTKR2011000694-appb-I000073
represents a ratio of power of a reference signal, which UE i 113 belonging to cell k receives from cell m, and that of a reference signal, which UE i 113 receives from cell k. UE i 113 measures both a power of the reference signal, which UE i 113 has received from cell k to which UE i 113 itself belongs, and a power of the reference signal which it has received from neighboring cell m. Then, it transmits the measured power values or a ratio of the measured power values to the serving BS 111.
Meanwhile, a
Figure PCTKR2011000694-appb-I000074
for cell m, of which a power of the reference signal cannot be measured, is determined as follows. First, the channel state information processor 213 manages, according to cells, a set K for the
Figure PCTKR2011000694-appb-I000075
number of neighboring cells which exert the largest influence of Inter-Cell Interference (ICI) on UEs belonging to each cell. The set K is constructed based on powers of reference signals that all the UEs in each cell have received from neighboring cells.
The channel state information processor 213 manages an average transmittable data rate
Figure PCTKR2011000694-appb-I000076
to the whole frequency band of each UE. The channel state information processor 213 updates a
Figure PCTKR2011000694-appb-I000077
in each subframe by using equation (17) below. In equation (17) below,
Figure PCTKR2011000694-appb-I000078
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
MathFigure 17
Figure PCTKR2011000694-appb-M000017
The channel state information processor 213 computes an average Signal-to-Interference Noise Ratio (SINR)
Figure PCTKR2011000694-appb-I000079
to the whole frequency band based on the value of a
Figure PCTKR2011000694-appb-I000080
at the relevant time point in each T subframes by using equations (18) and (19) below. When the number of transmission antennas is “1,” the average SINR
Figure PCTKR2011000694-appb-I000081
is expressed by equation (18) below.
MathFigure 18
Figure PCTKR2011000694-appb-M000018
Also, when the number of transmission antennas is “2” and transmission using a spatial multiplexing scheme is performed, the average SINR
Figure PCTKR2011000694-appb-I000082
is expressed by equation (19) below.
MathFigure 19
Figure PCTKR2011000694-appb-M000019
In equations (18) and (19), a
Figure PCTKR2011000694-appb-I000083
is computed by the sum of data rates for 2 data streams, and a and b represent parameters for computing an average SINR
Figure PCTKR2011000694-appb-I000084
from an average transmittable data rate.
Meanwhile, a
Figure PCTKR2011000694-appb-I000085
for neighboring cell m, of which a reception power of a reference signal cannot be measured by using equations (18) and (19), is computed by using equations (20) below.
MathFigure 20
Figure PCTKR2011000694-appb-M000020
In equation (20),
Figure PCTKR2011000694-appb-I000086
represents a set of neighboring cells of which reception powers of reference signals is measured, and
Figure PCTKR2011000694-appb-I000087
represents the number of the neighboring cells belonging to the set
Figure PCTKR2011000694-appb-I000088
of the neighboring cells.
The inter-cell cooperation information generation/processing unit 220 computes
Figure PCTKR2011000694-appb-I000089
for all neighboring cells as inter-cell cooperation information, and transmits the computed
Figure PCTKR2011000694-appb-I000090
to all the neighboring cells in each T subframe. However, a transmission time point of the computed
Figure PCTKR2011000694-appb-I000091
may be differently set for each of all the neighboring cells.
Hereinafter, a description will be made of operations of elements of the serving BS 111 when a multi-cell communication system according to a second exemplary embodiment of the present invention is the multiple scheduling system.
It is possible to further improve system efficiency when the MU scheduling method is used as compared to when the SU scheduling method is used. In order to use the MU scheduling method, the following particulars must be considered.
First, when the MU scheduling method is used, the performance of each UE is determined by an instantaneous channel state at the relevant time point, simultaneously-transmitted precoding of all UEs at the relevant time point, intra-cell interference and Inter-Cell Interference (ICI) at the relevant time point, etc. Also, subchannel and power allocation must be performed by predicting the performance change of the whole network according to the subchannel allocation and power control.
Second, when subchannels are allocated, a determination must be made of a scheduling metric used to select a combination of UEs which are simultaneously allocated to each subchannel in a particular cell.
Third, when power is allocated, it must be considered to distribute reference power to data of multiple UEs which are simultaneously allocated to each subchannel.
Fourth, a determination must be made of channel state information that each UE must report to a BS, and prediction must be made of performances of the UEs over the relevant subchannel by using the MU scheduling and transmission power allocated to the selected UEs based on the determined channel state information.
Hereinafter, a description will be made of operations of elements of the serving BS 111 which satisfy the four particulars as described above.
After reference power is equally allocated to UEs which are simultaneously allocated to the relevant subchannel, transmission power, which is used when the serving BS 111 transmits data to each UE, is determined by multiplying the reference power by a relative transmission power
Figure PCTKR2011000694-appb-I000092
of each UE determined by the channel allocator 211. Namely, a transmission power
Figure PCTKR2011000694-appb-I000093
, which is used to transmit data to UE i 113 allocated to subchannel j in cell k, is determined by equation (21) below.
MathFigure 21
Figure PCTKR2011000694-appb-M000021
In equation (21),
Figure PCTKR2011000694-appb-I000094
represents reference power of the serving BS 111 belonging to cell k,
Figure PCTKR2011000694-appb-I000095
represents the number of UEs which are simultaneously allocated to subchannel j in subframe t determined by the channel allocator 211,
Figure PCTKR2011000694-appb-I000096
represents a ratio of transmission power of UE i 113 and transmission power for a reference signal (or a pilot signal) of the serving BS 111.
A transmittable data rate of a UE allocated to a particular subchannel is determined according to how a UE is combined with other UEs which are allocated to the same subchannel. Specifically, the data rate is determined based on precoding and channel characteristics of each UE for reducing interference between the UEs included in a relevant UE combination. When a combination {i} of UEs (i.e. a UE combination
Figure PCTKR2011000694-appb-I000097
) is allocated to subchannel j of cell k in subframe t, a transmittable data rate
Figure PCTKR2011000694-appb-I000098
of UE i 113 included in the UE combination
Figure PCTKR2011000694-appb-I000099
is determined by using equation (22) below.
MathFigure 22
Figure PCTKR2011000694-appb-M000022
In equation (22),
Figure PCTKR2011000694-appb-I000100
represents a precoding vector of UE i 113 over subchannel j in cell k, and
Figure PCTKR2011000694-appb-I000101
represents a precoding vector of UE i' over subchannel j in cell k. Herein, UE i' represents a UE other than UE i 113 included in the UE combination
Figure PCTKR2011000694-appb-I000102
, or a UE included in a UE combination in cell m. The element
Figure PCTKR2011000694-appb-I000104
represents a channel vector between UE i 113 and a neighboring BS 121 belonging to cell m,
Figure PCTKR2011000694-appb-I000105
represents a channel vector between UE i 113 and the serving BS 111 belonging to cell k,
Figure PCTKR2011000694-appb-I000106
represents transmission power for transmitting data to UE i' allocated to subchannel j in cell k, and N represents noise power.
Meanwhile, the channel state information processor 213 of the serving BS 111 receives channel state information from UE i 113 in order to estimate a
Figure PCTKR2011000694-appb-I000107
. The channel state information includes an SINR which is computed on the assumption that UE i 113 sets transmission power of the serving BS 111 as reference power and only UE i 113 is allocated the relevant subchannel. An SINR is computed by using equation (23) below.
MathFigure 23
Figure PCTKR2011000694-appb-M000023
In equation (23),
Figure PCTKR2011000694-appb-I000108
represents an SINR over subchannel j during subframe t of UE i 113 included in cell k, and
Figure PCTKR2011000694-appb-I000109
represents a magnitude of inter-cell interference which occurs when the neighboring BS 121 transmits data by using reference power.
The channel state information processor 213 estimates a transmittable data rate
Figure PCTKR2011000694-appb-I000110
by using the computed
Figure PCTKR2011000694-appb-I000111
. Namely, the channel state information processor 213 estimates the transmittable data rate
Figure PCTKR2011000694-appb-I000112
by using equation (24) below.
MathFigure 24
Figure PCTKR2011000694-appb-M000024
In equation (24),
Figure PCTKR2011000694-appb-I000113
represents a vector which is obtained by normalizing a vector
Figure PCTKR2011000694-appb-I000114
,
Figure PCTKR2011000694-appb-I000115
represents an average value of relative transmission powers to reference powers that neighboring BSs of cell k use over subchannel j, and
Figure PCTKR2011000694-appb-I000116
represents a ratio of transmission power of UE i' and transmission power for a reference signal (or a pilot signal) of the serving BS111.
When the transmittable data rate
Figure PCTKR2011000694-appb-I000117
is estimated as described above, the channel state information processor 213 provides the estimated
Figure PCTKR2011000694-appb-I000118
to the channel allocator 211. Then, the channel allocator 211 determines a combination of UEs which are to be allocated to each subchannel in each subframe by using a scheduling metric which appears in equation (25) below. When there is a combination of UEs for which the value of a scheduling metric is less than “0,” the channel allocator 211 does not perform UE allocation to the relevant subchannel.
MathFigure 25
Figure PCTKR2011000694-appb-M000025
In equation (25),
Figure PCTKR2011000694-appb-I000119
represents an index of a combination {i} of UEs allocated to subchannel j in cell k, and an
Figure PCTKR2011000694-appb-I000120
is determined by using equation (26) below.
MathFigure 26
Figure PCTKR2011000694-appb-M000026
In equation (26),
Figure PCTKR2011000694-appb-I000121
represents the number of users belonging to the combination {i} of the UEs,
Figure PCTKR2011000694-appb-I000122
represents inter-cell cooperation information which is the most recently received from the neighboring BS 121 belonging to cell m by the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 belonging to cell k. Namely,
Figure PCTKR2011000694-appb-I000123
represents the amount of utility change in cell m according to the increase of the average transmission power in cell k over subchannel j.
The channel allocator 211 provides in each subframe the results of the scheduling, which have been obtained by using equation (25), to the channel state information processor 213, the power allocator 212, and the inter-cell cooperation information generation/processing unit 220. Also, the channel allocator 211 updates in each subframe a throughput
Figure PCTKR2011000694-appb-I000124
to the end of subframe t of UE i 113 belonging to cell k. Then, it provides the updated
Figure PCTKR2011000694-appb-I000125
to the power allocator 212 and the inter-cell cooperation information generation/processing unit 220.
The channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000126
based on the transmittable data rate
Figure PCTKR2011000694-appb-I000127
at the relevant time point in each subframe by using equation (27) below. At this time,
Figure PCTKR2011000694-appb-I000128
represents the amount of
Figure PCTKR2011000694-appb-I000129
change over subchannel j to the amount of
Figure PCTKR2011000694-appb-I000130
increase of UE i 113.
MathFigure 27
Figure PCTKR2011000694-appb-M000027
The channel state information processor 213 provides the
Figure PCTKR2011000694-appb-I000131
, which has been computed by using equation (27), to the power allocator 212.
Also, the channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000132
based on the transmittable data rate
Figure PCTKR2011000694-appb-I000133
at the relevant time point in each subframe by using equation (28) below. At this time,
Figure PCTKR2011000694-appb-I000134
represents the amount of
Figure PCTKR2011000694-appb-I000135
change of UE i 113 belonging to cell k to the amount of average transmission power increase over subchannel j in neighboring cell m.
MathFigure 28
Figure PCTKR2011000694-appb-M000028
In equation (28),
Figure PCTKR2011000694-appb-I000136
is expressed by equation (29) below.
MathFigure 29
Figure PCTKR2011000694-appb-M000029
The channel state information processor 213 provides the computed
Figure PCTKR2011000694-appb-I000137
to inter-cell cooperation information generation/processing unit 220.
The power allocator 212 computes a
Figure PCTKR2011000694-appb-I000138
based on the results of the scheduling in each subframe by using equations (30) and (31) below. At this time,
Figure PCTKR2011000694-appb-I000139
is a power metric which represents the amount of utility change of the whole network according to the increase of
Figure PCTKR2011000694-appb-I000140
of UE i 113 belonging to cell k.
When UE i 113 is selected based on the results of the scheduling, the power allocator 212 computes a
Figure PCTKR2011000694-appb-I000141
by using equation (30) below. On the other hand, when UE i 113 is not selected based on the results of the scheduling, the power allocator 212 computes a
Figure PCTKR2011000694-appb-I000142
by using equation (31) below. In equations (30) and (31) below,
Figure PCTKR2011000694-appb-I000143
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
MathFigure 30
Figure PCTKR2011000694-appb-M000030
MathFigure 31
Figure PCTKR2011000694-appb-M000031
When
Figure PCTKR2011000694-appb-I000144
> 0 , the power allocator 212 allocates power, which is larger than currently-allocated power, to UE i 113. When
Figure PCTKR2011000694-appb-I000145
< 0 , the power allocator 212 allocates power, which is smaller than currently-allocated power, to UE i 113. Also, when
Figure PCTKR2011000694-appb-I000146
= 0, the power allocator 212 maintains the power which is currently allocated to UE i 113. The process of allocating power by the power allocator 212 is performed in each T subframes.
The inter-cell cooperation information generation/processing unit 220 receives
Figure PCTKR2011000694-appb-I000147
from the neighboring BS in each T subframes. Then, it provides the received
Figure PCTKR2011000694-appb-I000148
to the channel allocator 211 and the power allocator 212.
Also, the inter-cell cooperation information generation/processing unit 220 updates
Figure PCTKR2011000694-appb-I000149
, which is to be transmitted to the neighboring BS 121, based on the results of the scheduling in each subframe by using equations (32) and (33) below.
Namely, when a UE combination is allocated to subchannel j based on the results of the scheduling, the inter-cell cooperation information generation/processing unit 220 updates
Figure PCTKR2011000694-appb-I000150
by using equation (32) below. On the other hand, when none of UE combinations are allocated to subchannel j based on the results of the scheduling, the inter-cell cooperation information generation/processing unit 220 updates
Figure PCTKR2011000694-appb-I000151
by using equation (33) below. In equations (32) and (33) below,
Figure PCTKR2011000694-appb-I000152
represents a moving average coefficient, and is defined as a rational number ranging from “0” to “1.”
MathFigure 32
Figure PCTKR2011000694-appb-M000032
MathFigure 33
Figure PCTKR2011000694-appb-M000033
Then, the inter-cell cooperation information generation/processing unit 220 transmits in each T subframes the updated
Figure PCTKR2011000694-appb-I000153
to the neighboring BS 121 along with
Figure PCTKR2011000694-appb-I000154
. Next, a method for allocating a channel and power in a multi-cell communication system according to a first exemplary embodiment of the present invention will be described with reference to FIG. 3.
FIG. 3 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention.
Referring to FIG. 3, UE i 113 transmits, in each subframe, transmittable data rate information
Figure PCTKR2011000694-appb-I000155
over subchannel j of UE i 113, which belongs to cell k, to a serving BS 111 in step 301.
In step 303, a channel state information processor 213 of the serving BS 111 receives the transmittable data rate information
Figure PCTKR2011000694-appb-I000156
, and computes average transmittable data rate information
Figure PCTKR2011000694-appb-I000157
for each subchannel by using the received
Figure PCTKR2011000694-appb-I000158
. Then, the channel state information processor 213 provides the computed
Figure PCTKR2011000694-appb-I000159
to a channel allocator 211 in step 305. Next, the channel state information processor 213 computes average transmittable data rate information
Figure PCTKR2011000694-appb-I000160
to the whole frequency band by using the received
Figure PCTKR2011000694-appb-I000161
in step 306.
A neighboring BS 121 transmits inter-cell cooperation information
Figure PCTKR2011000694-appb-I000162
to the serving BS 111 in each T subframe in step 333. Then, the inter-cell cooperation information generation/processing unit 220 of the serving BS 111 receives the inter-cell cooperation information
Figure PCTKR2011000694-appb-I000163
, and provides the received
Figure PCTKR2011000694-appb-I000164
to a power allocator 212 and the channel allocator 211 in step 334. In this case, the neighboring BS 121 belongs to cell m, and the serving BS 111 belongs to cell k. Therefore, the inter-cell cooperation information
Figure PCTKR2011000694-appb-I000165
represents the amount of utility change of cell m according to the increase of average transmission power in cell k over subchannel j.
In each subframe, the channel allocator 211 performs actual scheduling by using the received
Figure PCTKR2011000694-appb-I000166
and the received
Figure PCTKR2011000694-appb-I000167
, and performs virtual scheduling by using the computed
Figure PCTKR2011000694-appb-I000168
and the received
Figure PCTKR2011000694-appb-I000169
in step 307. Then, the channel allocator 211 provides the results of the actual scheduling and those of the virtual scheduling to the inter-cell cooperation information generation/processing unit 220 and the power allocator 212 in step 309.
Also, in each subframe, the channel allocator 211 computes a throughput
Figure PCTKR2011000694-appb-I000170
of UE i 113 belonging to cell k based on the results of the actual scheduling, and computes a virtual throughput
Figure PCTKR2011000694-appb-I000171
of UE i 113 belonging to cell k based on the results of the virtual scheduling in step 311. Then, the channel allocator 211 provides the values of the computed
Figure PCTKR2011000694-appb-I000172
and
Figure PCTKR2011000694-appb-I000173
to the inter-cell cooperation information generation/processing unit 220 and the power allocator 212 in step 313.
Meanwhile, when measuring reception power for a reference signal from at least one neighboring BS, UE i 113 transmits the measured reception power for the reference signal to the serving BS 111. Then, the serving BS 111 receives the measured reception power for the reference signal through the channel state information processor 213 thereof.
The channel state information processor 213 computes an average SINR
Figure PCTKR2011000694-appb-I000174
of the whole frequency band by using average transmittable data rate information
Figure PCTKR2011000694-appb-I000175
at the relevant time point in each T subframes in step 317). Then, the channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000176
for neighboring cell m, of which a power of a reference signal cannot be measured, by using the computed
Figure PCTKR2011000694-appb-I000177
in step 319. Also, the channel state information processor 213 computes in each T subframe a
Figure PCTKR2011000694-appb-I000178
, which is the amount of
Figure PCTKR2011000694-appb-I000179
change for each subchannel to the amount of
Figure PCTKR2011000694-appb-I000180
increase of UE i 113, by using both the average transmittable data rate information
Figure PCTKR2011000694-appb-I000181
, which has been computed in step 303, and a ratio
Figure PCTKR2011000694-appb-I000182
of transmission power of UE i 113 and that of a reference signal of cell k in step 321. Then, the channel state information processor 213 provides the value of the computed
Figure PCTKR2011000694-appb-I000183
to the power allocator 212 in step 323.
In step 325, the power allocator 212 computes in each subframe a
Figure PCTKR2011000694-appb-I000184
, which is the amount of utility change of the whole network according to the increase of
Figure PCTKR2011000694-appb-I000185
of UE i 113, by using the received
Figure PCTKR2011000694-appb-I000186
and the value of the computed
Figure PCTKR2011000694-appb-I000187
. Then, the power allocator 212 performs power allocation based on the computed
Figure PCTKR2011000694-appb-I000188
in each T subframe in step 327. Namely, when
Figure PCTKR2011000694-appb-I000189
> 0, the power allocator 212 allocates power, which is larger than currently-allocated power, to UE i 113. When
Figure PCTKR2011000694-appb-I000190
< 0, the power allocator 212 allocates power, which is smaller than currently-allocated power, to UE i 113. The results of the power allocation are provided not only to UE i 113 but also to the channel state information processor 213 and the channel allocator 211 in step 328.
Also, the channel state information processor 213 computes in each T subframes a
Figure PCTKR2011000694-appb-I000191
, which is the amount of
Figure PCTKR2011000694-appb-I000192
change of UE i 113 to the amount of transmission power increase for each subchannel in neighboring cell m, by using both
Figure PCTKR2011000694-appb-I000193
, which has been computed in step 303, and
Figure PCTKR2011000694-appb-I000194
which has been computed in step 319 in step 329. Then, the channel state information processor 213 provides the value of the computed
Figure PCTKR2011000694-appb-I000195
to the inter-cell cooperation information generation/processing unit 220 in step 331.
Then, the inter-cell cooperation information generation/processing unit 220 updates
Figure PCTKR2011000694-appb-I000196
in each subframe by using the computed
Figure PCTKR2011000694-appb-I000197
and
Figure PCTKR2011000694-appb-I000198
in step 335. Next, it transmits the updated
Figure PCTKR2011000694-appb-I000199
to the neighboring BS 121 in each T subframes in step 337.
Hereinafter, a method for allocating a channel and power in a multi-cell communication system according to a second exemplary embodiment of the present invention will be described with reference to FIG. 4.
FIG. 4 is a signal flow diagram showing a method for allocating a channel and power in a multi-cell communication system according to an exemplary embodiment of the present invention.
Referring to FIG. 4, UE i 113 transmits channel state information including an SINR
Figure PCTKR2011000694-appb-I000200
to a serving BS 111 in each subframe in step 401. Then, the channel state information processor 213 of the serving BS 111 receives the channel state information, and computes a transmittable data rate
Figure PCTKR2011000694-appb-I000201
in each subframe by using the SINR
Figure PCTKR2011000694-appb-I000202
included in the channel state information in step 403. Next, the channel state information processor 213 provides the computed
Figure PCTKR2011000694-appb-I000203
to the channel allocator 211 in step 405.
The channel allocator 211 receives the computed
Figure PCTKR2011000694-appb-I000204
from the channel state information processor 213, and receives inter-cell cooperation information
Figure PCTKR2011000694-appb-I000205
from an inter-cell cooperation information generation/processing unit 220. At this time,
Figure PCTKR2011000694-appb-I000206
is inter-cell cooperation information which is received in each T subframes from a neighboring BS 121 in step 407. The inter-cell cooperation information
Figure PCTKR2011000694-appb-I000207
is received through the inter-cell cooperation information generation/processing unit 220 of the serving BS 111. The inter-cell cooperation information generation/processing unit 220 provides
Figure PCTKR2011000694-appb-I000208
to the channel allocator 211 and a power allocator 212 in each T subframes in steps 409 and 411.
Then, the channel allocator 211 performs scheduling in each subframe by using the received
Figure PCTKR2011000694-appb-I000209
and
Figure PCTKR2011000694-appb-I000210
in step 413. Next, the channel allocator 211 provides the results of the scheduling to the channel state information processor 213, the power allocator 212, and the inter-cell cooperation information generation/processing unit 220 in steps 415, 417, and 419.
The channel allocator 211 updates a throughput
Figure PCTKR2011000694-appb-I000211
in each subframe in step 421. Then, the channel allocator 211 provides the updated
Figure PCTKR2011000694-appb-I000212
to the power allocator 212 and the inter-cell cooperation information generation/processing unit 220 in steps 423 and 425.
The channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000213
by using a transmittable data rate
Figure PCTKR2011000694-appb-I000214
at the relevant time point in each subframe in step 427. Next, the channel state information processor 213 provides the computed
Figure PCTKR2011000694-appb-I000215
to the power allocator 212 in step 429. Then, the power allocator 212 computes a
Figure PCTKR2011000694-appb-I000216
based on the results of the scheduling in each subframe in step 431. The computed
Figure PCTKR2011000694-appb-I000217
is used to allocate power.
The channel state information processor 213 computes a
Figure PCTKR2011000694-appb-I000218
by using a transmittable data rate
Figure PCTKR2011000694-appb-I000219
at the relevant time point in each subframe in step 433. Next, the channel state information processor 213 provides the computed
Figure PCTKR2011000694-appb-I000220
to the inter-cell cooperation information generation/processing unit 220 in step 435.
Then, the inter-cell cooperation information generation/processing unit 220 updates inter-cell cooperation information
Figure PCTKR2011000694-appb-I000221
, which is to be transmitted to the neighboring BS 121, in each subframe by using the results of the scheduling, the computed
Figure PCTKR2011000694-appb-I000222
and the computed
Figure PCTKR2011000694-appb-I000223
in step 437. Next, the inter-cell cooperation information generation/processing unit 220 transmits in each T subframe the updated
Figure PCTKR2011000694-appb-I000224
to the neighboring BS 121 along with
Figure PCTKR2011000694-appb-I000225
in step 439.
Meanwhile, the power allocator 212 allocates power to UE i 113 in each T subframes based on the results of the scheduling, the computed and the updated
Figure PCTKR2011000694-appb-I000227
in step 441. Then, the power allocator 212 provides the results of the power allocation to the channel state information processor 213 and the channel allocator 211 in steps 443 and 445.
Hereinafter, an operation of a serving BS according to a first exemplary embodiment of the present invention will be described in detail with reference to FIG. 5.
FIG. 5 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
Referring to FIG. 5, in step 501, the serving BS receives data rate information from UE i. Namely, the serving BS receives
Figure PCTKR2011000694-appb-I000228
as the data rate information in each subframe.
In step 502, the serving BS receives inter-cell cooperation information from a neighboring BS. When the neighboring BS belongs to cell m and the serving BS belongs to cell k, the inter-cell cooperation information may be expressed as
Figure PCTKR2011000694-appb-I000229
, and is received in each T subframes.
In step 503, the serving BS performs actual scheduling and virtual scheduling by using the received data rate information and inter-cell cooperation information. Before performing the actual scheduling and virtual scheduling, the serving BS computes average transmittable data rate information
Figure PCTKR2011000694-appb-I000230
and an average transmittable data rate
Figure PCTKR2011000694-appb-I000231
by using the received data rate information
Figure PCTKR2011000694-appb-I000232
.
When completing the computation of
Figure PCTKR2011000694-appb-I000233
and a
Figure PCTKR2011000694-appb-I000234
, in each subframe, the serving BS performs the actual scheduling by using the received
Figure PCTKR2011000694-appb-I000235
and
Figure PCTKR2011000694-appb-I000236
, and performs the virtual scheduling by using the computed
Figure PCTKR2011000694-appb-I000237
and the received
Figure PCTKR2011000694-appb-I000238
.
In step 504, the serving BS allocates a subchannel to UE i based on the results of the actual scheduling, and proceeds to step 505. In step 505, the serving BS allocates power to UE i according to a power metric which has been computed based on the results of the virtual scheduling.
Specifically, in each subframe, the serving BS allocates a subchannel to UE i based on the results of the actual scheduling, and updates a throughput
Figure PCTKR2011000694-appb-I000239
of UE i. Then, the serving BS updates a virtual throughput
Figure PCTKR2011000694-appb-I000240
of UE i based on the results of the virtual scheduling.
At this time, the updated
Figure PCTKR2011000694-appb-I000241
is used for allocating power to UE i and generating inter-cell cooperation information which is to be transmitted to the neighboring BS. When the virtual scheduling is not performed, the updated
Figure PCTKR2011000694-appb-I000242
is used instead of
Figure PCTKR2011000694-appb-I000243
. Namely, the virtual scheduling may not be performed in some exemplary embodiments of the present invention. In these cases, the serving BS uses the results of the actual scheduling instead of those of the virtual scheduling.
Meanwhile, in each T subframes, the serving BS computes an
Figure PCTKR2011000694-appb-I000244
by using
Figure PCTKR2011000694-appb-I000245
, and computes a
Figure PCTKR2011000694-appb-I000246
by using the computed
Figure PCTKR2011000694-appb-I000247
.
Then, the serving BS computes a
Figure PCTKR2011000694-appb-I000248
by using a ratio
Figure PCTKR2011000694-appb-I000249
of transmission power of UE i and that of a reference signal of cell k. At this time,
Figure PCTKR2011000694-appb-I000250
represents the amount of
Figure PCTKR2011000694-appb-I000251
change for each subchannel to the amount of
Figure PCTKR2011000694-appb-I000252
increase.
The serving BS computes a
Figure PCTKR2011000694-appb-I000253
, which is the amount of utility change of the whole network according to the increase of
Figure PCTKR2011000694-appb-I000254
, in each subframe by using the received
Figure PCTKR2011000694-appb-I000255
and the computed
Figure PCTKR2011000694-appb-I000256
. Then, the serving BS performs power allocation in each T subframes based on the computed
Figure PCTKR2011000694-appb-I000257
.
Specifically, when
Figure PCTKR2011000694-appb-I000258
> 0, the serving BS allocates power, which is larger than currently-allocated power, to UE i. When
Figure PCTKR2011000694-appb-I000259
< 0, the serving BS allocates power, which is smaller than currently-allocated power, to UE i.
In step 506, the serving BS generates inter-cell cooperation information that it will transmit to the neighboring BS. Namely, the serving BS computes a
Figure PCTKR2011000694-appb-I000260
which is the amount of
Figure PCTKR2011000694-appb-I000261
change of UE i to the amount of transmission power increase for each subchannel in neighboring cell m by using
Figure PCTKR2011000694-appb-I000262
and
Figure PCTKR2011000694-appb-I000263
which is computed in each T subframes. Then, in each subframe, the serving BS updates
Figure PCTKR2011000694-appb-I000264
by using the updated
Figure PCTKR2011000694-appb-I000265
and the computed
Figure PCTKR2011000694-appb-I000266
, and thereby generates inter-cell cooperation information that it will transmit to the neighboring BS.
In step 507, the serving BS transmits the generated inter-cell cooperation information to the neighboring BS.
Hereinafter, an operation of a serving BS according to a second exemplary embodiment of the present invention will be described in detail with reference to FIG. 6.
FIG. 6 is a flowchart showing a method for allocating a channel and power by a serving BS according to an exemplary embodiment of the present invention.
Referring to FIG. 6, in step 601, the serving BS receives channel state information from UE i in each subframe. The channel state information includes
Figure PCTKR2011000694-appb-I000267
. In step 602, the serving BS receives inter-cell cooperation information from a neighboring BS. At this time, the inter-cell cooperation information is expressed as
Figure PCTKR2011000694-appb-I000268
, and is received by the serving BS in each T subframe.
In step 603, the serving BS performs scheduling by using the received channel state information and the inter-cell cooperation information.
Specifically, the serving BS computes
Figure PCTKR2011000694-appb-I000269
by using
Figure PCTKR2011000694-appb-I000270
included in the channel state information. Then, the serving BS performs scheduling by using the computed
Figure PCTKR2011000694-appb-I000271
and the received
Figure PCTKR2011000694-appb-I000272
.
When a subchannel is allocated to a combination of UEs, which include UE i, based on the results of the scheduling in step 604, the serving BS updates a throughput
Figure PCTKR2011000694-appb-I000273
to the end of subframe t of UE i based on the results of the scheduling.
Then, the serving BS computes a
Figure PCTKR2011000694-appb-I000274
which is the amount of
Figure PCTKR2011000694-appb-I000275
change over subchannel j to the amount of
Figure PCTKR2011000694-appb-I000276
increase of UE i.
In step 605, the serving BS allocates power to the UEs according to a power metric, which has been computed based on the results of the scheduling. Namely, when the power metric, which has been computed based on the results of the scheduling, is expressed as
Figure PCTKR2011000694-appb-I000277
, the serving BS allocates power to the combination of the UEs based on whether
Figure PCTKR2011000694-appb-I000278
> 0,
Figure PCTKR2011000694-appb-I000279
< 0 or
Figure PCTKR2011000694-appb-I000280
= 0.
In step 606, the serving BS generates inter-cell cooperation information that it will transmit to the neighboring BS. Specifically, the serving BS computes a
Figure PCTKR2011000694-appb-I000281
based on the
Figure PCTKR2011000694-appb-I000282
, and generates
Figure PCTKR2011000694-appb-I000283
as inter-cell cooperation information, which it will transmit to the neighboring BS, based on the computed
Figure PCTKR2011000694-appb-I000284
and the results of the scheduling. In step 607, the serving BS transmits the generated inter-cell cooperation information
Figure PCTKR2011000694-appb-I000285
to the neighboring BS.
According to the exemplary embodiments as described above, each BS generates inter-cell cooperation information based on channel state information that each BS has received from users, and exchanges the generated inter-cell cooperation information with a neighboring BS. Then, each BS allocates a channel and power based on inter-cell cooperation information received from the neighboring BS. As a result, it is possible to minimize interference between neighboring cells and improve frequency efficiency. Also, it is possible to allocate a channel and power in adaptive response to a real-time network state such as user distribution, the number of users in each cell, etc.
While the invention has been shown and described with reference to certain exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims and their equivalents.

Claims (18)

  1. A method for allocating a channel and power by a Base Station (BS) in a communication system, the method comprising:
    performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each User Equipment (UE), and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information;
    selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling;
    computing a power metric for each of the selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the performed scheduling; and
    allocating power to all UEs including the selected UE and the non-selected UE by preset subframe periods by using the computed power metric.
  2. The method as claimed in claim 1, further comprising:
    generating inter-cell cooperation information, which is to be transmitted to the at least one neighboring BS, based on the results of the performed scheduling and an amount of performance change of the selected UE according to a change of an average transmission power of the at least one neighboring BS; and
    transmitting the generated inter-cell cooperation information to the at least one neighboring BS,
    wherein the amount of the performance change of the selected UE according to the change of the average transmission power of the at least one neighboring BS is determined based on both a ratio between a power of a reference signal, which the selected UE receives from the at least one neighboring BS, and a power of a reference signal, which the selected UE receives from the BS, and an average Signal-to-Interference Noise Ratio (SINR) to a whole frequency band which the BS uses.
  3. The method as claimed in claim 1, wherein the inter-cell cooperation information includes information about an amount of utility change of the at least one neighboring BS according to an increase of an average transmission power of the BS, and the utility represents a satisfaction degree of a corresponding UE according to a throughput allocated to the corresponding UE.
  4. The method as claimed in claim 1, wherein the allocating of power to all UEs comprises:
    allocating more power than currently allocated to the selected UE, if the computed power metric is more than 0; and
    allocating less power than currently allocated to the selected, UE if the computed power metric is less than 0.
  5. The method as claimed in claim 1, wherein the amount of the performance change of the selected UE includes an amount of performance change of the selected UE according to a change of a transmission power ratio between the selected UE and the BS.
  6. A Base Station (BS) in a communication system, the BS comprising:
    a channel allocator for performing one of a first scheduling, which uses inter-cell cooperation information received from at least one neighboring BS and a data rate received from each User Equipment (UE), and a second scheduling, which uses both an average data rate for each subchannel computed by accumulating the data rates for a preset time period and the inter-cell cooperation information, and for selecting a UE to be allocated each subchannel in each subframe based on results of the performed scheduling; and
    a power allocator for computing a power metric for each of the selected UE and a non-selected UE by using the inter-cell cooperation information, the average data rate, an amount of performance change of the selected UE, and the results of the first scheduling, and for allocating power to all UEs including the selected UE and the non-selected UE by preset subframe periods by using the computed power metric.
  7. The BS as claimed in claim 6, further comprising:
    an inter-cell cooperation information generation/processing unit for generating inter-cell cooperation information, which is to be transmitted to the at least one neighboring BS, based on the results of the performed scheduling and an amount of performance change of the selected UE according to a change of an average transmission power of the at least one neighboring BS, and for transmitting the generated inter-cell cooperation information to the at least one neighboring BS,
    wherein the amount of the performance change of the selected UE according to the change of the average transmission power of the at least one neighboring BS is determined based on both a ratio of a power of a reference signal, which the selected UE receives from the at least one neighboring BS, and a power of a reference signal, which the selected UE receives from the BS, and an average Signal-to-Interference Noise Ratio (SINR) to a whole frequency band which the BS uses.
  8. The BS as claimed in claim 6, wherein the inter-cell cooperation information includes information about an amount of utility change of the at least one neighboring BS according to an increase of an average transmission power of the BS, and the utility represents a satisfaction degree of a corresponding UE according to a throughput allocated to the corresponding UE.
  9. The BS as claimed in claim 6, wherein the power allocator allocates more power than currently allocated to the selected UE, if the computed power metric is more than 0, and allocates less power than currently allocated to the selected UE, if the computed power metric is less than 0.
  10. The BS as claimed in claim 6, wherein the amount of the performance change of the selected UE includes an amount of performance change of the selected UE according to a change of a transmission power ratio between the selected UE and the BS.
  11. A method for allocating a channel and power by a Base Station (BS) in a communication system, the method comprising:
    performing scheduling by using inter-cell cooperation information received from at least one neighboring BS and channel state information received from each User Equipment (UE);
    selecting a UE combination including at least one UE to be allocated each subchannel in each subframe based on results of the scheduling;
    computing a power metric for each of a selected UE and a non-selected UE by using data rate information of the at least one UE estimated based on the channel state information, the inter-cell cooperation information, an amount of performance change of the at least one UE, and the results of the scheduling; and
    allocating power to all UEs by preset subframe periods by using the computed power metric.
  12. The method as claimed in claim 11, wherein the inter-cell cooperation information includes information about an amount of utility change of the at least one neighboring BS according to an increase of an average transmission power of the BS, and the utility represents a satisfaction degree of a corresponding UE according to a throughput allocated to the corresponding UE.
  13. The method as claimed in claim 11, further comprising:
    generating inter-cell cooperation information, which is to be transmitted to the at least one neighboring BS, based on the results of the scheduling and an amount of performance change of the at least one UE according to a change of an average transmission power of the at least one neighboring BS; and
    transmitting the generated inter-cell cooperation information to the at least one neighboring BS.
  14. The method as claimed in claim 11, wherein the amount of the performance change of the selected UE includes an amount of performance change of the selected UE according to a change of a transmission power ratio between the selected UE and the BS.
  15. A Base Station (BS) in a communication system, the BS comprising:
    a channel allocator for performing scheduling by using inter-cell cooperation information received from at least one neighboring BS and channel state information received from each User Equipment (UE), and for selecting a UE combination including at least one UE to be allocated each subchannel in each subframe based on results of the scheduling; and
    a power allocator for computing a power metric for each of a selected UE and a non-selected UE by using data rate information of the at least one UE estimated based on the channel state information, the inter-cell cooperation information, an amount of performance change of the at least one UE, and the results of the scheduling, and for allocating power to all UEs by preset subframe periods by using the computed power metric.
  16. The BS as claimed in claim 15, wherein the inter-cell cooperation information includes information about an amount of utility change of the at least one neighboring BS according to an increase of an average transmission power of the BS, and the utility represents a satisfaction degree of a corresponding UE according to a throughput allocated to the corresponding UE.
  17. The BS as claimed in claim 15, further comprising:
    an inter-cell cooperation information generation/processing unit for generating inter-cell cooperation information, which is to be transmitted to the at least one neighboring BS, based on the results of the scheduling and an amount of performance change of the at least one UE according to a change of an average transmission power of the at least one neighboring BS, and for transmitting the generated inter-cell cooperation information to the at least one neighboring BS.
  18. The BS as claimed in claim 15, wherein the amount of the performance change of the selected UE includes an amount of performance change of the selected UE according to a change of a transmission power ratio between the selected UE and the BS.
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