WO2011099225A1 - 移動局装置、通信方法、集積回路、無線通信システムおよび制御プログラム - Google Patents
移動局装置、通信方法、集積回路、無線通信システムおよび制御プログラム Download PDFInfo
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- WO2011099225A1 WO2011099225A1 PCT/JP2010/072662 JP2010072662W WO2011099225A1 WO 2011099225 A1 WO2011099225 A1 WO 2011099225A1 JP 2010072662 W JP2010072662 W JP 2010072662W WO 2011099225 A1 WO2011099225 A1 WO 2011099225A1
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- uplink
- signal
- control channel
- reference signal
- radio resource
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signaling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/21—Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
Definitions
- the present invention efficiently controls an uplink reference signal and an uplink control channel signal in a radio communication system including a plurality of mobile station apparatuses and a base station apparatus, and the mobile station apparatus appropriately transmits signals.
- the present invention relates to a mobile station apparatus, a communication method, an integrated circuit, a wireless communication system, and a control program.
- EUTRA Evolved Universal Terrestrial Radio Access
- A-EUTRA Advanced EUTRA
- a survey reference signal SRS Sounding Reference Signal is specified in order for a base station apparatus to measure uplink channel quality.
- the mobile station device transmits a survey reference signal using radio resources preset by the base station device.
- the mobile station apparatus is periodically assigned a radio resource for transmitting a survey reference signal, or a radio resource for transmitting a survey reference signal only once.
- the survey reference signal is transmitted only in an uplink periodic subframe (referred to as a survey reference signal subframe SRS subframe) preset by the base station apparatus.
- the survey reference signal is transmitted using the last SC-FDMA: Single Carrier-Frequency Division Multiple Access symbol of the uplink subframe.
- an uplink control channel PUCCH Physical Uplink Control Channel
- the scheduling request means that the mobile station apparatus requests the base station apparatus to allocate radio resources of the uplink shared channel PUSCH: Physical Up and Shared Channel.
- the mobile station apparatus transmits an uplink control channel signal using a periodic radio resource preset by the base station apparatus. If the mobile station apparatus does not make a scheduling request, the mobile station apparatus does not transmit a scheduling request signal even if radio resources are allocated.
- the first format is a format in which radio resources in the time domain to which a survey reference signal may be allocated, that is, SC-FDMA symbols to which a survey reference signal may be allocated are used for transmission of a scheduling request.
- the format 2 is a format in which radio resources in the time domain to which a survey reference signal may be allocated, that is, SC-FDMA symbols to which a survey reference signal may be allocated are not used for transmission of a scheduling request.
- E-UTRA there is a mode in which the mobile station apparatus can simultaneously transmit a survey reference signal and an uplink control channel signal, and a mode in which the mobile station apparatus cannot transmit a survey reference signal when transmitting an uplink control channel signal. It is switched and used by the station device.
- the second format is used as the format of the uplink control channel signal.
- control information indicating whether the first format or the second format is used for the uplink control channel signal format is transmitted from the base station apparatus to the mobile station.
- the device is notified.
- control information indicating that the first format is used for the format of the uplink control channel signal in the survey reference signal subframe is indicated by the base station device
- the mobile station device uses the first information in the survey reference signal subframe.
- the mobile station device uses the second information in the survey reference signal subframe.
- the survey reference signal and the uplink control channel Are simultaneously transmitted.
- A-EUTRA it has been studied to support a wider frequency band than EUTRA and to ensure compatibility with EUTRA. Therefore, in A-EUTRA, a base station apparatus performs communication using a system band composed of a plurality of element frequency bands, with the frequency band of EUTRA as a unit (element frequency band) (frequency band aggregation: Spectrum). Aggregation or carrier aggregation (sometimes referred to as carrier aggregation) has been studied (the element frequency band may also be referred to as carrier element or component carrier). (Non-Patent Document 1).
- a base station apparatus communicates with a mobile station apparatus compatible with EUTRA using either one of the element frequency bands in each of the uplink and the downlink, and the mobile station apparatus compatible with A-EUTRA and the uplink Communication is performed using one or more element frequency bands in each link and downlink.
- the mobile station apparatus needs to efficiently control the transmission process of the survey reference signal and the uplink control channel signal.
- the inventor knows about the control of the transmission processing of the signal of the mobile station apparatus when the survey reference signal and the uplink control channel signal occur simultaneously in different element frequency bands, they are described in any document. It has not been.
- the mobile station apparatus can transmit the survey reference signal as much as possible.
- the mobile station apparatus can reliably transmit an uplink control channel signal including a scheduling request.
- the present invention has been made in view of such circumstances, and in a wireless communication system including a plurality of mobile station apparatuses and base station apparatuses, an uplink reference signal and an uplink control channel signal are efficiently transmitted. It is an object of the present invention to provide a mobile station device, a communication method, an integrated circuit, a wireless communication system, and a control program that can be controlled by the mobile station device and appropriately transmit signals.
- the present invention has taken the following measures. That is, the mobile station apparatus of the present invention is applied to a radio communication system including a plurality of mobile station apparatuses and a base station apparatus that transmits and receives signals to and from the plurality of mobile station apparatuses, and has a predetermined frequency bandwidth.
- a mobile station apparatus that transmits a signal by using one or more element frequency bands, and a radio resource control unit that sets a radio resource of a reference signal for measuring channel quality and a radio resource of an uplink control channel;
- a radio resource control unit that sets a radio resource of a reference signal for measuring channel quality and a radio resource of an uplink control channel;
- each radio resource is set in the same element frequency band, or each radio resource is set in a different element frequency band. Since signal transmission processing is controlled according to whether or not is set, uplink control information and a reference signal can be efficiently transmitted.
- the simultaneous transmission control unit controls transmission processing according to a signal format of the uplink control channel.
- the uplink control channel signal format is a first format in which radio resources in the time domain to which radio resources of the reference signal may be allocated are used.
- it is any one of the second formats in which radio resources in the time domain to which radio resources of the reference signal may be allocated are not used.
- the format of the signal of the uplink control channel is either the first format or the second format
- transmission processing suitable for each format is controlled, and the uplink control information and the reference signal are controlled. Can be efficiently transmitted.
- the simultaneous transmission control unit is configured such that a signal format of the uplink control channel is a first format, and the reference is made to the same element frequency band in the radio resource control unit.
- the reference signal is not transmitted, and control is performed so as to transmit the uplink control channel signal, while the uplink control channel signal format is In the first format, when the radio resource of the reference signal and the uplink control channel are set in different element frequency bands in the radio resource control unit, the reference signal and the signal of the uplink control channel are simultaneously transmitted. It controls to do.
- the mobile station apparatus sets the reference resource and the uplink control channel signal radio resources to the same uplink element frequency band. Since the reference signal is not transmitted and only the signal of the uplink control channel is controlled to be transmitted, the same as the uplink control channel for a different mobile station apparatus using radio resources in the same frequency domain as the uplink control channel is used. An orthogonal sequence having a sequence length is appropriately used, and orthogonalization between the signals of the uplink control channels can be reliably realized.
- the radio resources of the reference signal and the uplink control channel signal are set to different uplink element frequency bands, the control is performed so that the reference signal and the uplink control channel signal are simultaneously transmitted.
- the base station apparatus While reliably realizing orthogonalization between uplink control channel signals for different mobile station apparatuses that use radio resources in the same frequency domain as the channel, the base station apparatus transmits the uplink element frequency band in which the reference signal is transmitted.
- the uplink channel quality can be measured.
- the mobile station apparatus reliably transmits a scheduling request to the base station apparatus and keeps the delay required until data transmission is completed, and the base station apparatus performs scheduling and adaptive modulation using the measured uplink channel quality.
- the efficiency of transmission power control can be improved.
- the simultaneous transmission control unit is configured such that the uplink control channel signal format is the second format, and the radio resource control unit refers to the same element frequency band.
- the radio resource of the signal and the uplink control channel is set, the reference signal and the signal of the uplink control channel are controlled to be transmitted simultaneously, while the format of the signal of the uplink control channel is the second
- the reference resource and the uplink control channel radio resource are set in different element frequency bands in the radio resource control unit, the reference signal and the uplink control channel signal are transmitted simultaneously. It is characterized by controlling.
- the mobile station apparatus sets the reference signal and the uplink control channel signal radio resources to the same uplink element frequency band. Since control is performed so that the reference signal and the uplink control channel signal are simultaneously transmitted, orthogonalization between the uplink control channel signals for different mobile station apparatuses using radio resources in the same frequency domain as the uplink control channel is used.
- the base station apparatus can measure the uplink channel quality of the uplink element frequency band in which the reference signal is transmitted, while reliably realizing the above.
- the control is performed so that the reference signal and the uplink control channel signal are simultaneously transmitted.
- the base station apparatus While reliably realizing orthogonalization between uplink control channel signals for different mobile station apparatuses that use radio resources in the same frequency domain as the channel, the base station apparatus transmits the uplink element frequency band in which the reference signal is transmitted.
- the uplink channel quality can be measured.
- the mobile station apparatus reliably transmits a scheduling request to the base station apparatus and keeps the delay required until data transmission is completed, and the base station apparatus performs scheduling and adaptive modulation using the measured uplink channel quality.
- the efficiency of transmission power control can be improved.
- the simultaneous transmission control unit is configured such that the uplink control channel signal format is the first format, and the radio resource control unit refers to the different element frequency bands.
- the reference signal is not transmitted, and control is performed so as to transmit the uplink control channel signal, while the uplink control channel signal format is In the second format, when the radio resource of the reference signal and the uplink control channel are set in different element frequency bands in the radio resource control unit, the reference signal and the signal of the uplink control channel are simultaneously transmitted. It controls to do.
- the reference signal may not be transmitted.
- control is performed so that the uplink control channel signal is transmitted, the uplink control channel signal format is the second format, and the reference signal and the uplink control channel signal radio are transmitted in different uplink element frequency bands.
- control is performed so that the reference signal and the uplink control channel signal are transmitted simultaneously. Therefore, the uplink control channel signal and the reference signal can be appropriately transmitted in consideration of transmission power limitation. it can.
- a mobile station apparatus that has a small remaining transmission power that can be transmitted, and a mobile station apparatus in which simultaneous transmission of signals in different uplink element frequency bands is basically prohibited by the base station apparatus 1 is used, and when the radio resources of the reference signal and the uplink control channel signal are set in different uplink element frequency bands, the uplink control channel does not transmit the reference signal due to the limitation of the transmission power. If the second format is used for the uplink control channel signal and the radio resources of the reference signal and the uplink control channel signal are set in different uplink element frequency bands, the transmission power is transmitted. Simultaneous transmission of reference signal and uplink control channel signal in the same uplink subframe without worrying about restrictions Rukoto can.
- Radio resources of reference signals of different uplink component frequency bands and uplink control channel signals are set to different SC-FDMA symbols, and the mobile station apparatus effectively transmits signals of different uplink component frequency bands in units of SC-FDMA symbols. Since the transmission power necessary for each of the reference signal and the uplink control channel signal is not generated simultaneously, the mobile station apparatus having a small remaining transmission power that can be transmitted is used for the uplink control channel.
- the signal format is the second format, a reference signal in which radio resources are set in different uplink element frequency bands and an uplink control channel signal can be transmitted simultaneously in the same uplink subframe.
- the communication method of the present invention is applied to a radio communication system including a plurality of mobile station apparatuses and a base station apparatus that transmits and receives signals to and from the plurality of mobile station apparatuses, and has a predetermined frequency band.
- a communication method for transmitting a signal using one or more element frequency bands having a width wherein, in the mobile station apparatus, a radio resource of a reference signal for measuring channel quality and a radio resource of an uplink control channel And when transmitting the uplink control channel signal in a time frame in which the radio resource of the reference signal is set, each radio resource is set in the same element frequency band, or each in a different element frequency band.
- Transmitting a signal of the serial reference signal and / or uplink control channel characterized in that the at least.
- each radio resource is set in the same element frequency band, or each radio resource is set in a different element frequency band. Since signal transmission processing is controlled according to whether or not is set, uplink control information and a reference signal can be efficiently transmitted.
- the integrated circuit of the present invention is an integrated circuit that causes the mobile station device to perform a plurality of functions by being mounted on the mobile station device, and is predetermined for the base station device.
- a function of transmitting a signal using one or more element frequency bands having a frequency bandwidth, a function of setting a radio resource of a reference signal and a radio resource of an uplink control channel for measuring channel quality, and the reference When transmitting the uplink control channel signal in a time frame in which signal radio resources are set, whether each radio resource is set in the same element frequency band or each radio resource is set in a different element frequency band And the reference signal and / or the uplink control channel based on the function of controlling the signal transmission process and the control of the signal transmission process.
- a function of transmitting a signal, the set of functions including, characterized in that to exhibit to the mobile station apparatus.
- each radio resource is set in the same element frequency band, or each radio resource is set in a different element frequency band. Since signal transmission processing is controlled according to whether or not is set, uplink control information and a reference signal can be efficiently transmitted.
- the wireless communication system of the present invention is a base that transmits and receives signals using a plurality of mobile station apparatuses and one or more element frequency bands having a predetermined frequency bandwidth with the plurality of mobile station apparatuses.
- a radio communication system including a station apparatus, wherein the base station apparatus includes a reception processing unit that receives a signal transmitted from the mobile station apparatus, and the mobile station apparatus measures channel quality.
- signal transmission processing When transmitting the uplink control channel signal in the time frame in which the radio resource of the reference signal and the radio resource of the uplink control channel are set, and the time frame in which the radio resource of the reference signal is set, the same element frequency Depending on whether each radio resource is set in a band or each radio resource is set in a different element frequency band, signal transmission processing A simultaneous transmission control unit that controls, based on control of the simultaneous transmission control unit, characterized in that it and a transmission processing unit for transmitting a signal of the reference signal and / or uplink control channel.
- each radio resource is set in the same element frequency band, or each radio resource is set in a different element frequency band. Since signal transmission processing is controlled according to whether or not is set, uplink control information and a reference signal can be efficiently transmitted.
- a control program according to the present invention is applied to a radio communication system including a plurality of mobile station apparatuses and a base station apparatus that transmits and receives signals to and from the plurality of mobile station apparatuses, and a predetermined frequency band.
- a control program for a mobile station apparatus that transmits a signal using at least one element frequency band having a width, and sets a radio resource of a reference signal and an uplink control channel for measuring channel quality
- each radio resource is set in the same element frequency band or each radio resource in a different element frequency band
- the reference is controlled based on the process for controlling the signal transmission process and the control for the signal transmission process.
- a process of transmitting the signal of the signal and / or uplink control channel a series of processes including, characterized by being capable and can execute command of reading into the computer.
- each radio resource is set in the same element frequency band, or each radio resource is set in a different element frequency band. Since signal transmission processing is controlled according to whether or not is set, uplink control information and a reference signal can be efficiently transmitted.
- a mobile station apparatus appropriately performs uplink reference signals and uplink control even when radio resources of uplink reference signals and uplink control channel signals are set in the same uplink subframe.
- Channel signals can be transmitted.
- the mobile station apparatus reliably transmits the uplink control channel signal to the base station apparatus and keeps the delay required to complete the data transmission small, and the base station apparatus maintains the measured uplink channel quality. It is possible to improve the efficiency of scheduling, adaptive modulation, and transmission power control.
- FIG. 10 is a diagram illustrating an overview of the overall image of the wireless communication system according to the embodiment of the present invention.
- a base station device 3 and a plurality of mobile station devices 5A, 5B, and 5C perform wireless communication.
- the downlink which is the communication direction from the base station apparatus 3 to the mobile station apparatuses 5A, 5B, and 5C, is a downlink pilot channel and a downlink control channel (also referred to as PDCCH: Physical Downlink Control CHannel).
- a downlink shared channel also referred to as PDSCH: Physical Downlink Shared CHannel.
- the uplink which is the communication direction from the mobile station devices 5A, 5B, and 5C to the base station device 3, is an uplink shared channel (also referred to as a PUSCH: Physical Uplink Shared CHannel), an uplink pilot channel, And an uplink control channel (also referred to as PUCCH: Physical Uplink Control CHannel).
- PUSCH Physical Uplink Shared CHannel
- PUCCH Physical Uplink Control CHannel
- the mobile station devices 5A, 5B, and 5C are referred to as the mobile station device 5 and will be described.
- FIG. 11 is a diagram showing a schematic configuration of a downlink radio frame (referred to as a downlink radio frame) from the base station apparatus 3 to the mobile station apparatus 5 according to the embodiment of the present invention.
- the horizontal axis represents the frequency domain
- the vertical axis represents the time domain.
- the downlink radio frame is a unit for radio resource allocation or the like, and is composed of a pair of resource blocks (referred to as a downlink resource block pair) composed of a frequency band and a time zone having a predetermined downlink width.
- One downlink resource block pair is composed of two resource blocks (referred to as downlink resource blocks) that are continuous in the downlink time domain.
- one downlink resource block is composed of 12 subcarriers (referred to as downlink subcarriers) in the downlink frequency domain, and is composed of 7 OFDM symbols in the time domain.
- a downlink system bandwidth (referred to as a downlink system bandwidth) is a downlink communication bandwidth of the base station apparatus 3, and includes a plurality of downlink component frequency bandwidths (downlink component frequency bandwidths). It is comprised.)
- a downlink element frequency band (referred to as a downlink element frequency band) is a band of a predetermined frequency bandwidth, and the downlink element frequency bandwidth is a frequency of the downlink element frequency band.
- Bandwidth For example, a downlink system band (referred to as a downlink system band) having a bandwidth of 40 MHz is composed of two downlink element frequency bands having a bandwidth of 20 MHz.
- the downlink element frequency band a plurality of downlink resource blocks are arranged according to the downlink element frequency bandwidth.
- the downlink element frequency band having a bandwidth of 20 MHz is configured by 100 downlink resource blocks.
- the downlink component frequency bandwidth is a frequency bandwidth that can be used for communication by the mobile station device 5 corresponding to EUTRA
- the downlink system bandwidth is the mobile station device 5 corresponding to A-EUTRA. It is a frequency bandwidth that can be used for communication.
- a slot composed of seven OFDM symbols (referred to as a downlink slot) and a subframe composed of two downlink slots (referred to as a downlink subframe).
- a downlink radio frame composed of 10 downlink subframes.
- a unit composed of one downlink subcarrier and one OFDM symbol is called a resource element (downlink resource element).
- a downlink shared channel used for information data transmission and a downlink control channel used for control data transmission are arranged in each downlink subframe.
- the downlink control channel is composed of the first to third OFDM symbols of the downlink subframe
- the downlink shared channel is composed of the fourth to fourteenth OFDM symbols of the downlink subframe.
- a downlink pilot channel reference signal (referred to as a downlink reference signal) used for estimating propagation path fluctuations of the downlink shared channel and the downlink control channel is a plurality of downlink resources. Distributed in the elements.
- the downlink reference signal is a signal known in the radio communication system 1 used for the downlink pilot channel.
- One downlink shared channel is composed of one or more downlink resource blocks in the same downlink component frequency band, and one downlink control channel is a plurality of downlink component frequency bands in the same downlink component frequency band. It consists of downlink resource elements.
- a plurality of downlink shared channels and a plurality of downlink control channels are arranged in the downlink system band.
- the base station apparatus 3 has one downlink control channel and one downlink shared channel in the same downlink element frequency band in the same downlink subframe with respect to one mobile station apparatus 5 corresponding to EUTRA.
- a plurality of downlink control channels and a plurality of downlink shared channels can be arranged in the same downlink subframe with respect to one mobile station apparatus 5 corresponding to A-EUTRA.
- the base station apparatus 3 arranges a plurality of downlink control channels in the same downlink element frequency band in the same downlink subframe with respect to one mobile station apparatus 5 corresponding to A-EUTRA.
- a plurality of downlink shared channels cannot be arranged within the same downlink element frequency band, and each downlink shared channel can be arranged in a different downlink element frequency band.
- the downlink control channel includes control data such as a mobile station identifier, downlink shared channel radio resource allocation information, uplink shared channel radio resource allocation information, multi-antenna related information, modulation scheme, coding rate, and retransmission parameters.
- the signal generated from is placed.
- one downlink control channel includes only information on radio resource allocation of one downlink shared channel or information on radio resource allocation of one uplink shared channel, and a plurality of downlink shared channels. It does not include radio resource allocation information or radio resource allocation information for multiple uplink shared channels.
- FIG. 12 is a diagram showing a schematic configuration of an uplink radio frame (referred to as an uplink radio frame) from the mobile station apparatus 5 to the base station apparatus 3 according to the embodiment of the present invention.
- the horizontal axis represents the frequency domain
- the vertical axis represents the time domain.
- An uplink radio frame is a unit for radio resource allocation or the like, and is composed of a pair of resource blocks (referred to as an uplink resource block pair) consisting of a frequency band and a time slot of a predetermined width in the uplink. .
- One uplink resource block pair is composed of two resource blocks (referred to as uplink resource blocks) that are continuous in the uplink time domain.
- one uplink resource block is composed of 12 subcarriers (referred to as uplink subcarriers) in the uplink frequency domain, and 7 SC-FDMA symbols in the time domain.
- Consists of The uplink system bandwidth (referred to as an uplink system bandwidth) is an uplink communication bandwidth of the base station apparatus 3, and includes a plurality of uplink component frequency bandwidths (uplink component frequency bandwidths and It is composed of
- an uplink element frequency band (referred to as an uplink element frequency band) is a band of a predetermined frequency bandwidth
- the uplink element frequency bandwidth is a frequency of the uplink element frequency band.
- Bandwidth For example, an uplink system band having a bandwidth of 40 MHz (referred to as an uplink system band) is composed of two uplink element frequency bands having a bandwidth of 20 MHz.
- the uplink component frequency band a plurality of uplink resource blocks are arranged according to the uplink component frequency bandwidth.
- an uplink element frequency band with a bandwidth of 20 MHz is configured by 100 uplink resource blocks.
- the uplink component frequency bandwidth is a frequency bandwidth that can be used for communication by the mobile station device 5 compatible with EUTRA, and the uplink system bandwidth is set by the mobile station device 5 compatible with A-EUTRA. It is a frequency bandwidth that can be used for communication.
- a slot composed of seven SC-FDMA symbols (referred to as an uplink slot) and a subframe composed of two uplink slots (uplink subframe).
- a unit composed of one uplink subcarrier and one SC-FDMA symbol is called a resource element (referred to as an uplink resource element).
- each uplink subframe at least an uplink shared channel used for transmitting information data and an uplink control channel used for transmitting control data are arranged.
- the uplink control channel is used for transmitting control data including a scheduling request, a channel quality indicator for the downlink, or an acknowledgment for the downlink shared channel.
- the present invention is directed to an uplink control channel used for transmitting a scheduling request.
- first format is a format in which radio resources in the time domain to which a survey reference signal may be allocated, that is, SC-FDMA symbols to which a survey reference signal may be allocated are used.
- second format is a format that does not use time-domain radio resources to which a survey reference signal may be allocated, that is, SC-FDMA symbols to which a survey reference signal may be allocated.
- the first to seventh SC-FDMA symbols in the first uplink slot of the uplink subframe and the first to seventh SC-FDMA symbols in the second uplink slot are used.
- the first to seventh SC-FDMA symbols in the first uplink slot of the uplink subframe and the first to sixth SC-FDMA symbols in the second uplink slot are used.
- the first format uses the seventh SC-FDMA symbol in the second uplink slot of the uplink subframe, while the second format uses the seventh SC in the second uplink slot of the uplink subframe. SC-FDMA symbols are not used.
- the SC-FDMA symbol is multiplied by the orthogonal sequence in the uplink slot unit in the time domain.
- FIG. 13 is a table showing orthogonal sequences to be multiplied by the uplink control channel used for transmitting the scheduling request in the embodiment of the present invention. Two types of orthogonal sequences having different sequence lengths are used, and three orthogonal sequences are used for each sequence length.
- any orthogonal sequence having a sequence length of 4 is used in the first uplink slot and the second uplink slot of the uplink subframe, and each code of the sequence Is multiplied by the first, second, sixth and seventh SC-FDMA symbols of each uplink slot.
- any orthogonal sequence having a sequence length of 4 is used in the first uplink slot of the uplink subframe, and each code of the orthogonal sequence is the first uplink.
- the first, second, sixth and seventh SC-FDMA symbols of the slot are multiplied, and any orthogonal sequence having a sequence length of 3 is used in the second uplink slot of the uplink subframe.
- Each code is multiplied by the first, second and sixth SC-FDMA symbols of the second uplink slot.
- a plurality of uplink control channels are arranged in the same uplink resource block, and each uplink control channel arranged in the same uplink resource block is orthogonally multiplexed with an orthogonal sequence. In order to realize suitable orthogonal multiplexing, orthogonal sequences having the same sequence length are used for uplink control channels arranged in at least the same uplink resource block.
- One uplink shared channel is composed of one or more uplink resource blocks in the same uplink element frequency band, and one uplink control channel is a frequency domain in the same uplink element frequency band. Are composed of two uplink resource blocks located in different uplink slots. For example, in FIG. 12, in the uplink subframe in the uplink element frequency band with the lowest frequency, the uplink resource block with the lowest frequency of the first uplink slot and the highest frequency of the second uplink slot.
- One uplink resource block pair used for the uplink control channel is configured by an uplink resource block having a high.
- a plurality of uplink shared channels and a plurality of uplink control channels are arranged in the uplink system band.
- the base station apparatus 3 transmits the radio resources of the uplink control channel and the radio resources of the uplink shared channel within the same uplink element frequency band in the same uplink subframe to one mobile station apparatus 5 corresponding to EUTRA. Can be assigned one by one. Further, the base station apparatus 3 allocates one uplink shared channel radio resource for each uplink element frequency band in the same uplink subframe to one mobile station apparatus 5 corresponding to A-EUTRA. Can do. Note that the base station apparatus 3 allocates radio resources of a plurality of uplink shared channels in the same uplink element frequency band in the same uplink subframe to one mobile station apparatus 5 corresponding to A-EUTRA. The radio resources of each uplink shared channel cannot be allocated, and can be allocated to different uplink element frequency bands.
- the uplink pilot channel is an uplink pilot channel for demodulation used for estimating propagation path fluctuations of the uplink shared channel and the uplink control channel, and a reference uplink used for frequency scheduling of the uplink shared channel of the base station apparatus 3. And a link pilot channel. Note that the reference uplink pilot channel is also used to measure the synchronization shift between the base station apparatus 3 and the mobile station apparatus 5.
- the demodulation uplink pilot channel has different SC-FDMA symbols depending on whether it is arranged in the same uplink resource block as the uplink shared channel or in the same uplink resource block as the uplink control channel.
- a reference signal (referred to as an uplink reference signal) is arranged.
- the uplink reference signal is a signal known in the radio communication system 1 used for an uplink pilot channel.
- an uplink reference signal (uplink of the demodulation pilot channel is added to the fourth SC-FDMA symbol in the uplink slot).
- a reference signal is referred to as a demodulation reference signal DM ⁇ RS: DeModulationModReference Signal).
- the demodulation uplink pilot channel is arranged in the same uplink resource block as the uplink control channel including the control data including the scheduling request, the third, fourth, and fifth SC-FDMA in the uplink slot are used.
- a demodulation reference signal is arranged in the symbol.
- the demodulation reference signal When the demodulation reference signal is arranged in the same uplink resource block as the uplink control channel including the control data including the reception confirmation response, the demodulation reference signal is included in the third, fourth, and fifth SC-FDMA symbols in the uplink slot. A demodulation reference signal is arranged. When the demodulation reference signal is arranged in the same uplink resource block as the uplink control channel including the control data including the channel quality indicator, the demodulation reference signal is included in the second and sixth SC-FDMA symbols in the uplink slot. Is placed.
- the reference uplink pilot channel is arranged in the uplink resource block determined by the base station apparatus 3, and the 14th SC-FDMA symbol in the uplink subframe (the second uplink slot of the uplink subframe).
- An uplink reference signal (the uplink reference signal of the reference uplink pilot channel is referred to as a survey reference signal SRS: Sounding Reference Signal) is arranged in the seventh SC-FDMA symbol.
- the survey reference signal is arranged only in an uplink subframe (referred to as a survey reference signal subframe SRS subframe) having a cycle determined by the base station apparatus 3 in the cell.
- the base station device 3 allocates a cycle for transmitting the survey reference signal for each mobile station device 5 and an uplink resource block.
- This figure shows a case where the uplink control channel is arranged in the uplink resource block at the extreme end of each uplink component frequency band, but the second, third, etc. uplink from the end of the uplink component frequency band is shown.
- a link resource block may be used for the uplink control channel.
- the OFDM scheme is applied in the downlink
- the NxDFT-Spread OFDM scheme is applied in the uplink.
- the NxDFT-Spread OFDM scheme is a scheme in which signals are transmitted and received using the DFT-Spread OFDM scheme in units of uplink element frequency bands, and a radio communication system 1 using a plurality of uplink element frequency bands.
- communication is performed using a plurality of processing units related to DFT-Spread OFDM transmission / reception.
- FIG. 1 is a schematic block diagram showing the configuration of the base station apparatus 3 according to the embodiment of the present invention.
- the base station apparatus 3 includes a reception processing unit 101, a radio resource control unit 103, a control unit 105, and a transmission processing unit 107.
- the reception processing unit 101 uses the uplink reference signal of the demodulation pilot channel for the reception signal of the uplink control channel and the uplink shared channel received from the mobile station apparatus 5 by the reception antenna 109 according to the instruction of the control unit 105. Demodulate and decode to extract control data and information data. In addition, the reception processing unit 101 measures the channel quality of one or more uplink resource blocks using the survey reference signal received from the mobile station apparatus 5. The reception processing unit 101 performs processing and channel quality for extracting control data for uplink subframes and uplink resource blocks in which the own device assigns uplink control channels and radio resources for investigation reference signals to the mobile station device 5. Process to measure. The reception processing unit 101 is instructed from the control unit 105 what processing is to be performed on which uplink subframe and which uplink resource block. The reception processing unit 101 outputs the extracted control data and the measured channel quality to the control unit 105, and outputs information data to an upper layer. Details of the reception processing unit 101 will be described later.
- the radio resource control unit 103 assigns radio resources for the survey reference signal of each mobile station device 5 (transmission cycle, uplink resource block), cycle of the survey reference signal subframe, transmission power, radio resource allocation for the downlink control channel, The radio resource allocation of the uplink control channel, the radio resource allocation of the downlink shared channel, the radio resource allocation of the uplink shared channel, the modulation scheme / coding rate of various channels, etc. are set. Also, the radio resource control unit 103 sets the radio resource allocation of the uplink shared channel based on the control data acquired by the reception processing unit 101 using the uplink control channel and input via the control unit 105. .
- the radio resource control unit 103 when a scheduling request is input as control data, the radio resource control unit 103 performs radio resource allocation for the uplink shared channel to the mobile station apparatus 5 that has transmitted the scheduling request. Also, the radio resource control unit 103 sets whether the first format or the second format is used for the uplink control channel signal format of the survey reference signal subframe of each uplink component frequency band To do.
- the radio resource control unit 103 Based on the uplink channel quality input through the control unit 105, the radio resource control unit 103 performs settings such as radio resource allocation of the uplink shared channel and a value of transmission power. For example, the radio resource control unit 103 allocates the radio resource of the uplink shared channel to the uplink resource block with good channel quality for the mobile station apparatus 5 or the channel so that the received signal can realize a predetermined error rate. Set the value of transmission power based on quality.
- the radio resource control unit 103 controls the simultaneous transmission of signals in different uplink element frequency bands based on the information on the remaining transmittable transmission power notified from the mobile station apparatus 5, and the remaining transmittable transmit power Is large, permits simultaneous transmission of signals in different uplink element frequency bands to the mobile station apparatus 5, and moves the simultaneous transmission of signals in different uplink element frequency bands when the remaining transmittable transmission power is small. The station apparatus 5 is prohibited.
- the radio resource control unit 103 outputs various control information to the control unit 105.
- the control information includes control information indicating whether the first format or the second format is used for the signal format of the uplink control channel in the survey reference signal subframe, and the radio of the survey reference signal. Permits simultaneous transmission of control information indicating resource allocation, control information indicating radio resource allocation of the uplink control channel, control information indicating the period of the survey reference signal subframe, signals of different uplink element frequency bands, This is control information indicating whether to prohibit.
- control section 105 controls radio resource allocation, modulation scheme, and coding rate for downlink shared channel and downlink control channel for transmission processing section 107. .
- control unit 105 generates control data to be transmitted using the downlink control channel based on the control information, and outputs the control data to the transmission processing unit 107.
- the control unit 105 also includes control information indicating the radio resource allocation of the survey reference signal, control information indicating the cycle of the survey reference signal subframe, control information indicating the radio resource allocation of the uplink control channel, and each uplink element frequency band. Control information indicating whether the first format or the second format is used for the format of the uplink control channel signal of the survey reference signal subframe of the mobile station apparatus 5 via the transmission processing unit 107. Is controlled to transmit using a downlink shared channel.
- control unit 105 controls radio resource allocation, modulation scheme, and coding rate of uplink shared channel and uplink control channel for reception processing unit 101. . Further, the control unit 105 controls the reception processing unit 101 to control channel quality measurement using the survey reference signal based on the control information input from the radio resource control unit 103. In addition, the control unit 105 receives control data transmitted from the mobile station device 5 using the uplink control channel from the reception processing unit 101, and outputs the input control data to the radio resource control unit 103.
- the transmission processing unit 107 generates a signal to be transmitted using the downlink control channel and the downlink shared channel based on the control signal input from the control unit 105, and transmits the signal via the transmission antenna 111.
- the transmission processing unit 107 which is input from the radio resource control unit 103, indicates control information indicating radio resource allocation of the survey reference signal, control information indicating the cycle of the survey reference signal subframe, and indicates radio resource allocation of the uplink control channel.
- Control information control information indicating whether the first format or the second format is used for the uplink control channel signal format of the survey reference signal subframe of each uplink component frequency band, from the upper layer
- the input information data is transmitted to the mobile station apparatus 5 using the downlink shared channel, and the control data input from the control unit 105 is transmitted to the mobile station apparatus 5 using the downlink control channel.
- the information data includes several types of control information for simplification of description. Details of the transmission processing unit 107 will be described later.
- FIG. 2 is a schematic block diagram showing the configuration of the transmission processing unit 107 of the base station apparatus 3 according to the embodiment of the present invention.
- the transmission processing unit 107 includes a plurality of downlink shared channel processing units 201-1 to 201-M (hereinafter referred to as downlink shared channel processing units 201-1 to 201-M together).
- a plurality of downlink control channel processing units 203-1 to 203-M (hereinafter referred to as downlink control channel processing units 203-1 to 203-M together with the downlink control channel processing unit 203).
- a downlink pilot channel processing unit 205, a multiplexing unit 207, an IFFT (Inverse Fast Fourier Transform) unit 209, a GI (Guard Interval) insertion unit 211, and a D / A (Digital / Analog; Digital-analog conversion) unit 213, transmission RF (Radio Frequency) unit 215, and transmission antenna 11 1 is comprised. Since each downlink shared channel processing unit 201 and each downlink control channel processing unit 203 have the same configuration and function, only one of them will be described as a representative.
- the downlink shared channel processing unit 201 includes a turbo coding unit 219 and a data modulation unit 221, respectively.
- the downlink control channel processing unit 203 includes a convolutional coding unit 223 and a QPSK modulation unit 225.
- the downlink shared channel processing unit 201 performs baseband signal processing for transmitting information data to the mobile station apparatus 5 using the OFDM scheme.
- the turbo encoding unit 219 performs turbo encoding for increasing the error tolerance of the data at the encoding rate input from the control unit 105 and outputs the input information data to the data modulation unit 221.
- the data modulation unit 221 modulates the data encoded by the turbo coding unit 219 with a modulation method input from the control unit 105, for example, a modulation method such as QPSK, 16QAM, or 64QAM, and generates a signal sequence of modulation symbols To do.
- the data modulation unit 221 outputs the generated signal sequence to the multiplexing unit 207.
- the downlink control channel processing unit 203 performs baseband signal processing for transmitting the control data input from the control unit 105 in the OFDM scheme.
- the convolutional coding unit 223 performs convolutional coding for increasing the error tolerance of the control data based on the coding rate input from the control unit 105.
- the control data is controlled in bit units.
- the convolutional coding unit 223 also performs rate matching to adjust the number of output bits for the bits subjected to the convolutional coding process based on the coding rate input from the control unit 105.
- the convolutional coding unit 223 outputs the encoded control data to the QPSK modulation unit 225.
- the QPSK modulation unit 225 modulates the control data encoded by the convolutional coding unit 223 using the QPSK modulation method, and outputs the modulated modulation symbol signal sequence to the multiplexing unit 207.
- the downlink pilot channel processing unit 205 generates a downlink reference signal (also referred to as Cell-specific RS) that is a known signal in the mobile station apparatus 5 and outputs the downlink reference signal to the multiplexing unit 207.
- a downlink reference signal also referred to as Cell-specific RS
- the multiplexing unit 207 receives the signal input from the downlink pilot channel processing unit 205, the signal input from each downlink shared channel processing unit 201, and the signal input from each downlink control channel processing unit 203. In accordance with an instruction from the control unit 105, multiplexing is performed on the downlink radio frame. Control information related to radio resource allocation of the downlink shared channel and radio resource allocation of the downlink control channel set by the radio resource control unit 103 is input to the control unit 105, and based on the control information, the control unit 105 performs the multiplexing unit 207. Control the processing.
- the multiplexing unit 207 performs multiplexing between the downlink shared channel and the downlink control channel by time multiplexing as shown in FIG.
- the multiplexing unit 207 performs multiplexing between the downlink pilot channel and other channels by time / frequency multiplexing.
- the multiplexing unit 207 multiplexes the downlink shared channel addressed to each mobile station device 5 in units of downlink resource block pairs, and uses one or more downlink resource block pairs for one mobile station device 5 for downlink.
- a link shared channel may be multiplexed.
- the multiplexing unit 207 performs multiplexing of the downlink control channel addressed to each mobile station apparatus 5 by using a plurality of downlink resource elements dispersed in the same downlink element frequency band.
- the multiplexing unit 207 outputs the multiplexed signal to the IFFT unit 209.
- the IFFT unit 209 performs fast inverse Fourier transform on the signal multiplexed by the multiplexing unit 207, performs OFDM modulation, and outputs the result to the GI insertion unit 211.
- the GI insertion unit 211 generates a baseband digital signal including symbols in the OFDM scheme by adding a guard interval to the signal modulated by the OFDM scheme by the IFFT unit 209. As is well known, the guard interval is generated by duplicating a part of the head or tail of a symbol to be transmitted.
- the GI insertion unit 211 outputs the generated baseband digital signal to the D / A unit 213.
- the D / A unit 213 converts the baseband digital signal input from the GI insertion unit 211 into an analog signal and outputs the analog signal to the transmission RF unit 215.
- the transmission RF unit 215 generates an in-phase component and a quadrature component of the intermediate frequency from the analog signal input from the D / A unit 213, and removes an extra frequency component for the intermediate frequency band.
- the transmission RF section 215 converts (up-converts) the intermediate frequency signal into a high frequency signal, removes excess frequency components, amplifies the power, and transmits to the mobile station apparatus 5 via the transmission antenna 111. Send.
- FIG. 3 is a schematic block diagram showing the configuration of the reception processing unit 101 of the base station apparatus 3 according to the embodiment of the present invention.
- the reception processing unit 101 includes a reception RF unit 301, an A / D (Analog / Digital) unit 303, an element frequency band separation unit 305, and a plurality of uplink element frequency band reception processes.
- Sections 307-1 to 307-M hereinafter, reception processing units 307-1 to 307-M for each uplink component frequency band are referred to as reception processing units 307 for each uplink component frequency band).
- the reception processing unit 307 for each uplink element frequency band includes a symbol timing detection unit 309, a GI removal unit 311, an FFT unit 313, a subcarrier demapping unit 315, a channel estimation unit 317, an uplink Propagation path equalization section 319 for the link shared channel, propagation path equalization section 321 for the uplink control channel, IDFT section 323, data demodulation section 325, turbo decoding section 327, uplink control channel detection section 329, and uplink A channel quality measurement unit 331 is provided. Note that each uplink component frequency band reception processing unit 307 has the same configuration and function, and therefore one of them will be described as a representative.
- the reception RF unit 301 appropriately amplifies the signal received by the reception antenna 109, converts it to an intermediate frequency (down-conversion), removes unnecessary frequency components, and amplifies the signal level so that the signal level is appropriately maintained. , And quadrature demodulation based on the in-phase and quadrature components of the received signal.
- the reception RF unit 301 outputs the quadrature demodulated analog signal to the A / D unit 303.
- a / D section 303 converts the analog signal quadrature demodulated by reception RF section 301 into a digital signal, and outputs the converted digital signal to element frequency band separation section 305.
- the element frequency band separation unit 305 separates the received signal for each uplink element frequency band of the uplink system bandwidth, and outputs it to the reception processing unit 307 for each uplink element frequency band.
- the reception processing unit 307 for each uplink element frequency band performs demodulation and decoding of the uplink shared channel and the uplink control channel in the uplink element frequency band, and detects information data and control data. Also, the reception processing unit 307 for each uplink element frequency band measures the uplink channel quality.
- the symbol timing detection unit 309 detects the symbol timing based on the signal input from the element frequency band separation unit 305, and outputs a control signal indicating the detected symbol boundary timing to the GI removal unit 311.
- the GI removal unit 311 removes a portion corresponding to the guard interval from the signal input from the element frequency band separation unit 305 based on the control signal from the symbol timing detection unit 309, and converts the remaining portion of the signal to the FFT unit. It outputs to 313.
- the FFT unit 313 performs fast Fourier transform on the signal input from the GI removal unit 311, performs demodulation of the DFT-Spread-OFDM scheme, and outputs the result to the subcarrier demapping unit 315. Note that the number of points in the FFT unit 313 is equal to the number of points in the IFFT unit of the mobile station apparatus 5 described later.
- subcarrier demapping section 315 uses the uplink pilot channels (demodulation uplink pilot channel and reference uplink pilot channel) as uplink signals demodulated by FFT section 313.
- a link reference signal (a demodulation reference signal and a survey reference signal), an uplink shared channel signal, and an uplink control channel signal are separated.
- Subcarrier demapping section 315 outputs the separated demodulation reference signal to propagation path estimation section 317, and outputs the separated uplink shared channel signal to uplink shared channel propagation path equalization section 319 for separation.
- the uplink control channel signal is output to the uplink control channel propagation path equalization unit 321, and the separated survey reference signal is output to the uplink channel quality measurement unit 331.
- the propagation path estimation unit 317 estimates propagation path fluctuations using the demodulated reference signal separated by the subcarrier demapping unit 315 and a known signal.
- the propagation path estimation unit 317 outputs the estimated propagation path estimation value to the propagation path equalization unit 319 for the uplink shared channel and the propagation path equalization unit 321 for the uplink control channel.
- the channel equalization unit 319 for the uplink shared channel uses the amplitude and phase of the signal of the uplink shared channel separated by the subcarrier demapping unit 315 based on the channel estimation value input from the channel estimation unit 317. Equalize.
- equalization refers to a process for restoring the fluctuation of the propagation path received by the signal during wireless communication.
- the propagation path equalization unit 319 for the uplink shared channel outputs the adjusted signal to the IDFT unit 323.
- the IDFT unit 323 performs discrete inverse Fourier transform on the signal input from the propagation path equalization unit 319 for the uplink shared channel, and outputs the result to the data demodulation unit 325.
- Data demodulation section 325 demodulates the uplink shared channel signal converted by IDFT section 323, and outputs the demodulated uplink shared channel signal to turbo decoding section 327.
- This demodulation is demodulation corresponding to the modulation method used in the data modulation unit of the mobile station apparatus 5, and the modulation method is input from the control unit 105.
- the turbo decoding unit 327 decodes information data from the uplink shared channel signal input from the data demodulation unit 325 and demodulated.
- the coding rate is input from the control unit 105.
- the channel equalization unit 321 for the uplink control channel converts the amplitude and phase of the uplink control channel signal separated by the subcarrier demapping unit 315 into the channel estimation value input from the channel estimation unit 317. Equalize based.
- the channel equalization unit 321 for the uplink control channel outputs the equalized signal to the uplink control channel detection unit 329.
- the uplink control channel detection unit 329 demodulates, according to the control data (scheduling request, channel quality indicator, reception confirmation response) transmitted from the signal input from the channel equalization unit 321 for the uplink control channel. Decode and detect control data.
- the uplink control channel detection unit 329 detects a signal in the radio resource allocated to the mobile station apparatus 5 in order to transmit a scheduling request.
- the uplink control channel detection unit 329 combines the uplink resource block signal allocated to the mobile station apparatus 5 to transmit the scheduling request by multiplying the orthogonal sequence by the orthogonal sequence, and the power of the combined signal is determined in advance. If it is equal to or greater than a predetermined threshold, it is determined that a scheduling request signal from the mobile station apparatus 5 has been detected.
- the uplink control channel detection unit 329 uses an orthogonal sequence similar to the orthogonal sequence multiplied by the mobile station apparatus 5.
- the uplink control channel detection unit 329 detects a scheduling request signal
- the uplink control channel detection unit 329 generates a control signal indicating that the scheduling request has been detected, and outputs the control signal to the control unit 105.
- the uplink control channel detection unit 329 determines that the scheduling request signal from the mobile station apparatus 5 has not been detected. In this case, the uplink control channel detection unit 329 generates a control signal indicating that no scheduling request has been detected, and outputs the control signal to the control unit 105.
- the uplink control channel detection unit 329 is a signal of an uplink resource block allocated to the mobile station apparatus 5 for transmitting a channel quality indicator and a reception confirmation response, and includes a propagation path for the uplink control channel, etc.
- the signal equalized in the equalization unit 321 is demodulated and decoded, and a channel quality indicator and a reception confirmation response are detected.
- the uplink control channel detection unit 329 outputs the detected control data to the control unit 105.
- the uplink channel quality measurement unit 331 measures the channel quality using the survey reference signal input from the subcarrier demapping unit 315, and outputs the measurement result of the channel quality of the uplink resource block to the control unit 105.
- the uplink channel quality measurement unit 331 is instructed by the control unit 105 as to which uplink resource block signal of which uplink subframe the channel quality of the mobile station apparatus 5 is to be measured.
- the control unit 105 Based on the control data transmitted from the base station device 3 to the mobile station device 5 using the downlink control channel and the control information transmitted using the downlink shared channel, the control unit 105 includes a subcarrier demapping unit 315, Data demodulator 325, turbo decoder 327, propagation path estimator 317, uplink control channel detector 329, and uplink channel quality measurer 331 are controlled. Further, the control unit 105 determines which of the uplink shared channel, the uplink control channel, and the survey reference signal transmitted by each mobile station apparatus 5 is based on the control data and control information transmitted from the base station apparatus 3 to the mobile station apparatus 5. It is ascertained whether the radio resource (uplink resource block) is allocated.
- FIG. 4 is a schematic block diagram showing the configuration of the mobile station apparatus 5 according to the embodiment of the present invention.
- the mobile station apparatus 5 includes a reception processing unit 401, a radio resource control unit 403, a control unit 405, and a transmission processing unit 407.
- the control unit 405 includes a simultaneous transmission control unit 4051.
- the reception processing unit 401 receives a signal from the base station apparatus 3, and demodulates and decodes the received signal in accordance with an instruction from the control unit 405.
- the reception processing unit 401 detects a downlink control channel signal addressed to itself, the reception processing unit 401 outputs control data obtained by decoding the downlink control channel signal to the control unit 405.
- the reception processing unit 401 also obtains information data obtained by decoding the downlink shared channel addressed to itself based on an instruction from the control unit 405 after outputting the control data included in the downlink control channel to the control unit 405. Is output to the upper layer via the control unit 405.
- reception processing unit 401 outputs the control information generated by the radio resource control unit 103 of the base station apparatus 3 obtained by decoding the downlink shared channel to the control unit 405, and also via the control unit 405, Output to the radio resource control unit 403 of the apparatus.
- control information generated by the radio resource control unit 103 of the base station device 3 includes control information indicating radio resource allocation of the survey reference signal, control information indicating the cycle of the survey reference signal subframe, and radio of the uplink control channel.
- Control information indicating resource allocation control information indicating whether the first format or the second format is used for the format of the uplink control channel signal of the survey reference signal subframe of each uplink element frequency band including.
- the reception processing unit 401 measures the downlink channel quality using the downlink reference signal of the downlink pilot channel in each downlink element frequency band, and outputs the measurement result to the control unit 405. Details of the reception processing unit 401 will be described later.
- the control unit 405 includes a simultaneous transmission control unit 4051.
- the control unit 405 confirms the data transmitted from the downlink shared channel and input from the reception processing unit 401, outputs the information data to the upper layer in the data, and the base station apparatus 3 in the data Based on the control information generated by the radio resource control unit 103, the reception processing unit 401 and the transmission processing unit 407 are controlled. Similarly, the control unit 405 controls the reception processing unit 401 and the transmission processing unit 407 based on the control data transmitted using the downlink control channel and input from the reception processing unit 401.
- the simultaneous transmission control unit 4051 sets each radio resource in the same uplink element frequency band. Depending on whether it is set or each radio resource is set in a different uplink element frequency band, the transmission processing of the investigation reference signal and the signal of the uplink control channel is controlled, and the control signal is output to the transmission processing unit 407.
- the simultaneous transmission control unit 4051 performs the survey reference signal and the uplink control according to the format of the uplink control channel signal used for transmitting the scheduling request in the survey reference signal subframe of each uplink element frequency band. Controls channel signal transmission processing.
- the format is a first format in which radio resources in the time domain to which radio resources for the survey reference signal may be allocated are used, or radio resources in the time domain in which radio resources for the survey reference signal may be allocated.
- the second format is not possible.
- the format of the survey reference signal subframe of the uplink control channel signal is the first format
- the radio resource control unit 403 uses the survey reference signal and the uplink control channel in the same uplink element frequency band.
- the transmission processing unit 407 controls to transmit the uplink control channel signal without transmitting the survey reference signal, and the uplink control channel signal of the survey reference signal subframe is transmitted.
- the format is the first format
- the radio resource control unit 403 sets the radio resource of the uplink reference channel and the uplink reference channel in different uplink element frequency bands at the same time, the transmission processing unit 407 and the uplink reference channel Simultaneous link control channel signal To control so as to transmit.
- the transmission processing unit 407 may control to transmit the uplink control channel signal without transmitting the survey reference signal.
- the base station apparatus 3 controls the simultaneous transmission of signals in different uplink element frequency bands based on the information on the remaining transmittable transmission power notified from the mobile station apparatus 5, and the remaining transmittable transmission power is large
- simultaneous transmission of signals in different uplink element frequency bands is permitted and the remaining transmittable transmission power is small, simultaneous transmission of signals in different uplink element frequency bands is prohibited.
- the format of the survey reference signal subframe of the uplink control channel signal is the second format
- the radio resource control unit 403 uses the survey reference signal and the uplink control channel in the same uplink element frequency band.
- the transmission processing unit 407 controls to transmit the survey reference signal and the uplink control channel signal simultaneously, and the format of the survey reference signal subframe of the uplink control channel signal is the first. 2 and when the radio resource control unit 403 sets the radio resource of the uplink reference channel and the survey reference signal in different uplink element frequency bands at the same time, the transmission processing unit 407 transmits the survey reference signal and the uplink control channel. Simultaneously send It is controlled to be.
- the simultaneous transmission control unit 4051 is basically prohibited from simultaneous transmission of signals of different uplink element frequency bands from the base station apparatus 3, the format of the signal of the uplink control channel is the second. If the radio resource control unit 403 sets the survey reference signal and the radio resource of the uplink control channel in different uplink element frequency bands at the same time, the transmission processing unit 407 transmits the survey reference signal and the signal of the uplink control channel. Are controlled simultaneously.
- the simultaneous transmission control unit 4051 has the first format of the survey reference signal subframe of the uplink control channel signal, and the radio resource control unit 403 uses the survey reference signal and the uplink in different uplink element frequency bands.
- the transmission processing unit 407 controls to transmit the uplink control channel signal without transmitting the investigation reference signal, and the investigation reference signal sub of the uplink control channel signal is transmitted.
- the transmission processor 407 checks And uplink control channel signals The controls to transmit simultaneously.
- the simultaneous transmission control unit 4051 when the simultaneous transmission control unit 4051 is basically prohibited from simultaneous transmission of signals of different uplink element frequency bands than the base station device 3, the simultaneous reference control signal and the uplink control according to the format of the uplink control channel.
- the transmission processing of the channel signal In the case of the first format, the transmission processing of the channel signal is controlled.
- the transmission processing unit 407 controls to transmit the uplink control channel signal without transmitting the survey reference signal.
- the transmission processing unit 407 controls to transmit the survey reference signal and the uplink control channel signal simultaneously.
- the control unit 405 controls the transmission processing unit 407 to transmit the survey reference signal and the uplink control channel signal based on the control of the simultaneous transmission control unit 4051.
- the radio resource control unit 403 holds control information generated by the radio resource control unit 103 of the base station apparatus 3 and notified from the base station apparatus 3, and receives a reception processing unit 401 and a transmission processing unit via the control unit 405. 407 is controlled. For example, the radio resource control unit 403 assigns radio resources for the survey reference signal (transmission period, uplink resource block), uplink shared channel, uplink control channel, uplink pilot channel transmission power, and uplink control channel radio.
- the control unit 405 outputs a control signal related to the resource allocation and the format used for the uplink control channel signal of each uplink element frequency band.
- the radio resource control unit 403 determines whether to transmit a signal indicating the scheduling request using the radio resource allocated by the base station apparatus 3, and determines that the signal indicating the scheduling request is to be transmitted, that fact Is output to the control unit 405, and the transmission processing unit 407 controls to transmit the signal using the uplink control channel.
- the transmission processing unit 407 encodes information data and control data in accordance with an instruction from the control unit 405, places the modulated signal in the radio resources of the uplink shared channel and the uplink control channel, and transmits the transmission antenna to the base station apparatus 3. 411 to transmit. Also, the transmission processing unit 407 transmits a survey reference signal in accordance with an instruction from the control unit 405. Details of the transmission processing unit 407 will be described later. Note that the uplink resource block of the periodic uplink subframe is allocated to the mobile station apparatus 5 as the radio resource allocation of the uplink control channel for transmission of the scheduling request.
- FIG. 5 is a schematic block diagram showing the configuration of the reception processing unit 401 of the mobile station apparatus 5 according to the embodiment of the present invention.
- the reception processing unit 401 includes a reception RF unit 501, an A / D unit 503, a symbol timing detection unit 505, a GI removal unit 507, an FFT unit 509, a demultiplexing unit 511, a propagation path estimation unit 513, A downlink channel quality measurement unit 515, a downlink shared channel propagation path compensation unit 516, a downlink shared channel decoding unit 517, a downlink control channel propagation path compensation unit 519, and a downlink control channel decoding unit 521, It is comprised including.
- the downlink shared channel decoding unit 517 includes a data demodulation unit 523 and a turbo decoding unit 525.
- the downlink control channel decoding unit 521 includes a QPSK demodulation unit 527 and a Viterbi decoder unit 529.
- the reception RF unit 501 appropriately amplifies the signal received by the reception antenna 409, converts it to an intermediate frequency (down-conversion), removes unnecessary frequency components, and amplifies the signal level so that the signal level is appropriately maintained. And quadrature demodulation based on the in-phase and quadrature components of the received signal.
- the reception RF unit 501 outputs the quadrature demodulated analog signal to the A / D unit 503.
- the A / D unit 503 converts the analog signal quadrature demodulated by the reception RF unit 501 into a digital signal, and outputs the converted digital signal to the symbol timing detection unit 505 and the GI removal unit 507.
- Symbol timing detection section 505 detects symbol timing based on the digital signal converted by A / D section 503, and outputs a control signal indicating the detected symbol boundary timing to GI removal section 507.
- GI removal section 507 removes a portion corresponding to the guard interval from the digital signal output from A / D section 503 based on the control signal from symbol timing detection section 505, and converts the remaining portion of the signal to FFT section 509. Output to.
- the FFT unit 509 performs fast Fourier transform on the signal input from the GI removing unit 507, performs OFDM demodulation, and outputs the result to the demultiplexing unit 511.
- the demultiplexing unit 511 demultiplexes the signal demodulated by the FFT unit 509 into a downlink control channel signal and a downlink shared channel signal based on the control signal input from the control unit 405.
- the demultiplexing unit 511 outputs the separated downlink shared channel signal to the downlink shared channel propagation path compensation unit 516, and transmits the separated downlink control channel signal to the downlink control channel propagation Output to the path compensation unit 519.
- the demultiplexing unit 511 demultiplexes the downlink resource element in which the downlink pilot channel is arranged, and transmits the downlink reference signal of the downlink pilot channel to the propagation path estimation unit 513 and the downlink channel quality measurement unit 515. Output.
- the propagation path estimation unit 513 estimates the propagation path variation using the downlink reference signal of the downlink pilot channel separated by the demultiplexing unit 511 and the known signal, and compensates for the propagation path variation. And the propagation path compensation value for adjusting the phase are output to the propagation path compensation section 516 for the downlink shared channel and the propagation path compensation section 519 for the downlink control channel.
- the downlink channel quality measurement unit 515 measures the downlink channel quality using the downlink reference signal of the downlink pilot channel, and outputs the measurement result of the downlink channel quality to the control unit 405.
- the downlink shared channel propagation path compensation unit 516 adjusts the amplitude and phase of the downlink shared channel signal separated by the demultiplexing unit 511 according to the propagation path compensation value input from the propagation path estimation unit 513.
- the downlink shared channel propagation path compensation unit 516 outputs the signal whose propagation path has been adjusted to the data demodulation unit 523 of the downlink shared channel decoding unit 517.
- the downlink shared channel decoding unit 517 demodulates and decodes the downlink shared channel based on an instruction from the control unit 405 and detects information data.
- Data demodulation section 523 demodulates the downlink shared channel signal input from propagation path compensation section 516, and outputs the demodulated downlink shared channel signal to turbo decoding section 525. This demodulation is demodulation corresponding to the modulation method used in the data modulation unit 221 of the base station device 3.
- the turbo decoding unit 525 decodes information data from the demodulated downlink shared channel signal input from the data demodulation unit 523 and outputs the decoded information data to the upper layer via the control unit 405. Note that the control information generated by the radio resource control unit 103 of the base station apparatus 3 transmitted using the downlink shared channel is also output to the control unit 405, and is transmitted to the radio resource control unit 403 via the control unit 405. Is also output.
- the downlink control channel propagation path compensation unit 519 adjusts the amplitude and phase of the downlink control channel signal separated by the demultiplexing unit 511 according to the propagation path compensation value input from the propagation path estimation unit 513.
- the downlink control channel propagation path compensation unit 519 outputs the adjusted signal to the QPSK demodulation unit 527 of the downlink control channel decoding unit 521.
- the downlink control channel decoding unit 521 demodulates and decodes the signal input from the downlink control channel propagation path compensation unit 519 as described below, and detects control data.
- the QPSK demodulator 527 performs QPSK demodulation on the downlink control channel signal and outputs the result to the Viterbi decoder 529.
- Viterbi decoder 529 decodes the signal demodulated by QPSK demodulator 527 and outputs the decoded control data to controller 405.
- this signal is expressed in bit units, and the Viterbi decoder unit 529 also performs rate dematching in order to adjust the number of bits for which Viterbi decoding processing is performed on the input bits.
- control unit 405 determines whether the control data input from the Viterbi decoder unit 529 is error-free and control data addressed to the own device.
- the multiplexer / demultiplexer 511, the data demodulator 523, the turbo decoder 525, and the transmission processor 407 are controlled.
- the control unit 405 transmits the uplink shared channel signal in the uplink element frequency band to which the radio resource is allocated to the transmission processing unit 407. Control to send.
- FIG. 6 is a schematic block diagram showing the configuration of the transmission processing unit 407 of the mobile station apparatus 5 according to the embodiment of the present invention.
- the transmission processing unit 407 includes a plurality of uplink element frequency band transmission processing units 601-1 to 601-M (hereinafter referred to as uplink element frequency band transmission processing units 601-1 to 601-M). And an element frequency band synthesizing unit 603, a D / A unit 605, a transmission RF unit 607, and a transmission antenna 411.
- a transmission processing unit 601 for each uplink element frequency band includes a turbo coding unit 611, a data modulation unit 613, a DFT unit 615, an uplink pilot channel processing unit 617, and an uplink control channel processing unit 619. , Subcarrier mapping section 621, IFFT section 623, multiplication section 624, and GI insertion section 625.
- the mobile station apparatus 5 includes a transmission processing unit 601 for each uplink element frequency band corresponding to the corresponding number of uplink element frequency bands. Since each uplink element frequency band transmission processing section 601 has the same configuration and function, one of them will be described as a representative.
- the transmission processing unit 601 for each uplink element frequency band encodes and modulates information data and control data, and transmits a signal to be transmitted using an uplink shared channel and an uplink control channel in the uplink element frequency band. Generate. Also, the transmission processing unit 601 for each uplink element frequency band generates a survey reference signal and a demodulation reference signal to be transmitted using the uplink pilot channel.
- the turbo coding unit 611 performs turbo coding for improving the error tolerance of the data at the coding rate instructed by the control unit 405 and outputs the input information data to the data modulation unit 613.
- the data modulation unit 613 modulates the code data encoded by the turbo encoding unit 611 with a modulation method instructed by the control unit 405, for example, a modulation method such as QPSK, 16QAM, or 64QAM, and converts a signal sequence of modulation symbols. Generate. Data modulation section 613 outputs the generated modulation symbol signal sequence to DFT section 615.
- a modulation method such as QPSK, 16QAM, or 64QAM
- the DFT unit 615 performs discrete Fourier transform on the signal output from the data modulation unit 613 and outputs the result to the subcarrier mapping unit 621.
- the uplink control channel processing unit 619 performs baseband signal processing for transmitting control data input from the control unit 405.
- the control data input to the uplink control channel processing unit 619 includes a scheduling request, a downlink channel quality indicator, a reception confirmation response, and the like.
- Uplink control channel processing section 619 performs baseband signal processing, and outputs the generated signal to subcarrier mapping section 621.
- the uplink pilot channel processing unit 617 generates an uplink reference signal that is a known signal in the base station apparatus 3 as a signal used for the demodulation reference signal and the survey reference signal based on an instruction from the control unit 405, and performs subcarrier mapping. To the unit 621.
- the subcarrier mapping unit 621 receives the signal input from the uplink pilot channel processing unit 617, the signal input from the DFT unit 615, and the signal input from the uplink control channel processing unit 619 from the control unit 405. Are arranged on subcarriers according to the instruction and output to IFFT section 623.
- the subcarrier mapping unit 621 arranges the survey reference signal arrangement, the demodulation reference signal arrangement in the uplink shared channel, and the demodulation reference signal arrangement in the uplink control channel as shown in FIG. ,Output.
- the IFFT unit 623 performs fast inverse Fourier transform on the signal output from the subcarrier mapping unit 621 and outputs the result to the multiplication unit 624.
- the number of points of IFFT section 623 is greater than the number of points of DFT section 615, and mobile station apparatus 5 uses the uplink shared channel by using DFT section 615, subcarrier mapping section 621, and IFFT section 623. Then, DFT-Spread-OFDM modulation is performed on the transmitted signal.
- Multiplier 624 multiplies the orthogonal code in units of SC-FDMA symbols according to instructions from control unit 405 and outputs the result to GI insertion unit 625.
- control unit 405 multiplies the uplink control channel signal including the scheduling request control data by multiplying each orthogonal code of the orthogonal sequence as shown in FIG. 13 by the SC-FDMA symbol.
- the multiplication unit 624 is controlled so as to output the input signal as it is without multiplying the uplink shared channel signal, the survey reference signal, and the demodulation reference signal.
- the GI insertion unit 625 adds a guard interval to the signal input from the multiplication unit 624 and outputs the signal to the element frequency band synthesis unit 603.
- Element frequency band synthesizer 603 synthesizes signals for each uplink element frequency band input from transmission element for each uplink element frequency band 601 and outputs the synthesized signal to D / A section 605.
- the D / A unit 605 converts the baseband digital signal input from the element frequency band synthesis unit 603 into an analog signal and outputs the analog signal to the transmission RF unit 607.
- the transmission RF unit 607 generates an in-phase component and a quadrature component of the intermediate frequency from the analog signal input from the D / A unit 605, and removes an extra frequency component for the intermediate frequency band.
- the transmission RF unit 607 converts (up-converts) the intermediate frequency signal into a high frequency signal, removes excess frequency components, amplifies the power, and transmits to the base station apparatus 3 via the transmission antenna 411. Send.
- the transmission processing unit 407 transmits the survey reference signal and the uplink control channel signal to the base station apparatus 3 based on the control of the control unit 405.
- FIG. 7 is a diagram illustrating a combination example of radio resources set in a survey reference signal and an uplink control channel signal in the embodiment of the present invention. A case will be described where a survey reference signal subframe is set for every two uplink subframes in the first uplink component frequency band and the second uplink component frequency band.
- a radio resource of the survey reference signal is allocated for every two survey reference signal subframes in the first uplink component frequency band, and every four survey reference signal subframes in the second uplink component frequency band.
- a case where the radio resource of the survey reference signal is allocated will be described.
- a case will be described in which a radio resource of an uplink control channel signal is allocated to the first uplink element frequency band every two uplink subframes.
- the first format is set in the uplink control channel of the survey reference signal subframe up to uplink subframe # 4, and the survey reference signal after uplink subframe # 5
- the second format is set in the uplink control channel of the subframe will be described. Note that the first format is set for the uplink control channel of the uplink subframe that is not the survey reference signal subframe.
- an uplink control channel of the second format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 has the same uplink subframe and the radio resources of the investigation reference signal and the uplink control channel signal are set in the first uplink element frequency band (Case # 2 in FIG. 7)
- the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the radio resources of the survey reference signal and the uplink control channel are set in different uplink element frequency bands.
- a case will be described where an uplink control channel of the first format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 is the same uplink subframe, the radio resource of the survey reference signal is set in the second uplink element frequency band, and the signal of the uplink control channel is set in the first uplink element frequency band.
- the radio resource is set (Case # 3 in FIG. 7)
- the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the mobile station device 5 with the small remaining transmission power that can be transmitted is based on an instruction from the base station device 3, and is the same uplink subframe, and the survey reference signal and the uplink control in different uplink element frequency bands.
- the survey reference signal is not transmitted, and only the uplink control channel signal is transmitted.
- an uplink control channel of the second format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 has the same uplink subframe, the radio resource of the survey reference signal is set in the second uplink element frequency band, and the uplink control channel signal in the first uplink element frequency band.
- the radio resource is set (Case # 4 in FIG. 7)
- the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the mobile station apparatus 5 sets the radio resources of the investigation reference signal and the uplink control channel signal in the same uplink subframe and different uplink element frequency bands regardless of the remaining transmittable transmission power.
- the uplink control channel signal format is the second format, the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the mobile station apparatus 5 does not use the allocated radio resource when the scheduling request is not transmitted in the uplink subframe to which the radio resource of the uplink control channel for transmitting the scheduling request is allocated.
- the uplink control channel of the first format is set in the survey reference signal subframe of the first uplink component frequency band, and the survey reference signal of the first uplink component frequency band is the same uplink subframe and in the second uplink component frequency band.
- the mobile station apparatus 5 makes a scheduling request. When it is determined not to transmit to the base station apparatus 3, only the survey reference signal is transmitted.
- FIG. 8 is a flowchart showing an example of transmission processing when the radio resources of the survey reference signal and the uplink control channel signal of the mobile station apparatus 5 according to the embodiment of the present invention are set in the same uplink subframe. .
- FIG. 8 shows processing in units of uplink subframes.
- the simultaneous transmission control unit 4051 determines whether or not the survey reference signal and the uplink control channel signal are set to radio resources in the same uplink component frequency band (step S101).
- the uplink control channel signal format is It is determined whether or not the format is the first format (step S102).
- the simultaneous transmission control unit 4051 is configured so that the survey reference signal and the uplink control channel signal are not set to radio resources in the same uplink element frequency band, that is, the survey reference signal and the uplink control channel signal are different.
- the radio resource of the link element frequency band is set (step S101: NO)
- the simultaneous transmission control unit 4051 has different uplink element frequencies based on the control information notified from the base station apparatus 3 and indicating whether simultaneous transmission of signals in different uplink element frequency bands is permitted or prohibited. It is determined whether or not simultaneous transmission of band signals is possible.
- step S102 when the simultaneous transmission control unit 4051 determines that the uplink control channel signal format is the first format (step S102: YES), the simultaneous transmission control unit 4051 does not transmit the survey reference signal and does not transmit the uplink control channel signal.
- the transmission processing unit 407 is controlled so as to transmit only the signal (step S104).
- step S102 when the simultaneous transmission control unit 4051 determines in step S102 that the uplink control channel signal format is not the first format, that is, the second format (step S102: NO), the survey reference signal And the transmission processing unit 407 are controlled so as to simultaneously transmit the signals of the uplink control channel (step S105).
- step S103 if the simultaneous transmission control unit 4051 determines that simultaneous transmission of signals in different uplink component frequency bands is possible (step S103: YES), the simultaneous reference control signal and the uplink control channel signal are simultaneously transmitted.
- the transmission processing unit 407 is controlled (step S105).
- step S103: NO if the simultaneous transmission control unit 4051 determines in step S103 that simultaneous transmission of signals in different uplink component frequency bands is not possible (step S103: NO), the signal format of the uplink control channel is the second. It is determined whether or not the format is (step S106).
- step S106 When determining that the format of the uplink control channel signal is the second format (step S106: YES), the simultaneous transmission control unit 4051 transmits the survey reference signal and the uplink control channel signal so as to be simultaneously transmitted.
- the processing unit 407 is controlled (step S105).
- step S104 the simultaneous transmission control unit 4051 determines that the uplink control channel signal format is not the second format, that is, the first format, the simultaneous transmission control unit 4051 does not transmit the survey reference signal.
- the transmission processing unit 407 is controlled so as to transmit only the signal (step S104).
- step S104 and step S105 the mobile station apparatus 5 finishes the process related to the control of the transmission process of the survey reference signal and the uplink control channel signal, and repeats the same process for the subsequent uplink subframes.
- the mobile station apparatus 5 uses the same uplink element frequency band.
- the survey reference signal is appropriately controlled by controlling the transmission process of the survey reference signal and the uplink control channel signal.
- uplink control channel signals can be transmitted.
- the format of the uplink control channel signal is a time domain radio resource to which a survey reference signal may be allocated, that is, a format in which an SC-FDMA symbol to which a survey reference signal may be allocated is used.
- the mobile station apparatus 5 does not transmit the survey reference signal when the radio resources of the survey reference signal and the uplink control channel signal are set to the same uplink element frequency band.
- the uplink control channel By controlling so that only the signal of the link control channel is transmitted, it is the same as the uplink control channel for different mobile station apparatuses 5 in which radio resources (uplink resource blocks) in the same frequency domain as the uplink control channel are used. Orthogonal sequences of sequence length are used appropriately and their uplink Orthogonalization between signals click the control channel can be reliably achieved.
- the mobile station apparatus 5 performs control so that the survey reference signal and the uplink control channel signal are simultaneously transmitted when the radio resources of the survey reference signal and the uplink control channel signal are set to different uplink element frequency bands. Accordingly, the base station apparatus 3 can ensure the orthogonalization between the uplink control channel signals for different mobile station apparatuses 5 that use radio resources in the same frequency domain as the uplink control channel, while the base station apparatus 3 can perform the survey reference signal. It is possible to measure the channel quality of the uplink in the uplink element frequency band to which is transmitted.
- the mobile station apparatus 5 reliably transmits a scheduling request to the base station apparatus 3 to maintain a small delay until data transmission is completed, and the base station apparatus 3 performs scheduling using the measured uplink channel quality,
- the efficiency of adaptive modulation and transmission power control can be improved.
- the mobile station apparatus 5 controls transmission processing suitable for each format by controlling transmission processing of the survey reference signal and the uplink control channel signal according to the format of the signal of the uplink control channel. Can do.
- the mobile station apparatus 5 uses a time domain radio resource to which a survey reference signal may be allocated, that is, a format in which an SC-FDMA symbol to which a survey reference signal may be allocated is not used.
- a second format is used.
- the mobile station apparatus 5 sets the radio resource of the survey reference signal and the uplink control channel signal to the same uplink element frequency band. In this case, by controlling so that the survey reference signal and the uplink control channel signal are transmitted at the same time, the uplink control channel for different mobile station apparatuses 5 that use radio resources in the same frequency domain as the uplink control channel are used.
- the base station apparatus 3 can measure the uplink channel quality of the uplink element frequency band in which the survey reference signal is transmitted while reliably realizing orthogonalization between the signals.
- the mobile station apparatus 5 performs control so that the survey reference signal and the uplink control channel signal are simultaneously transmitted when the radio resources of the survey reference signal and the uplink control channel signal are set to different uplink element frequency bands.
- the base station apparatus 3 can ensure that the survey reference signal is orthogonalized between the uplink control channel signals for different mobile station apparatuses 5 that use radio resources in the same frequency domain as the uplink control channel.
- the uplink channel quality of the transmitted uplink element frequency band can be measured. Therefore, the mobile station apparatus 5 reliably transmits a scheduling request to the base station apparatus 3 to maintain a small delay until data transmission is completed, and the base station apparatus 3 performs scheduling using the measured uplink channel quality, The efficiency of adaptive modulation and transmission power control can be improved.
- the mobile station apparatus 5 that has a small remaining transmission power that can be transmitted, and in which the simultaneous transmission of signals in different uplink element frequency bands is basically prohibited by the base station apparatus 3,
- the survey reference signal is not transmitted for the reason of transmission power limitation. Only the uplink control channel signal is transmitted, but the second format is used for the uplink control channel signal, and the radio resources of the survey reference signal and the uplink control channel signal are set in different uplink element frequency bands. In this case, the survey reference signal and the uplink control channel signal are transmitted in the same uplink link without worrying about transmission power limitation. It can be simultaneous transmission in the sub-frame.
- the radio resource of the investigation reference signal and the uplink control channel signal in different uplink element frequency bands is set to different SC-FDMA symbols, and the mobile station apparatus 5 has signals in different uplink element frequency bands in units of SC-FDMA symbols. Are transmitted at the same time, and the transmission power necessary for each of the survey reference signal and the uplink control channel signal is not generated at the same time.
- the format of the uplink control channel signal is the second format, the survey reference signal in which radio resources are set in different uplink element frequency bands and the uplink control channel signal are simultaneously transmitted in the same uplink subframe. be able to.
- the format of the uplink control channel signal is the first format, and the investigation reference signal and the uplink control channel signal are in different uplink element frequency bands.
- the control signal is not transmitted, the uplink control channel signal is controlled to be transmitted, the uplink control channel signal format is the second format, and a different uplink is used.
- the transmission power limit is considered by controlling the survey reference signal and uplink control channel signal to be transmitted simultaneously.
- the uplink control channel signal and the survey reference signal can be appropriately transmitted.
- the radio resource of the survey reference signal and the uplink control channel signal is different in the uplink element frequency band.
- the uplink subframe of the uplink element frequency band to which the radio resource of the uplink control channel signal is allocated is not the survey reference signal subframe, the mobile station apparatus 5 having a small transmit power that can be transmitted is No investigation reference signal is transmitted, and only the uplink control channel signal is transmitted.
- the uplink subframe for the uplink element frequency band to which the radio resource of the survey reference signal is allocated is the survey reference signal subframe, and the uplink element to which the radio resource of the uplink control channel signal is allocated.
- the mobile station apparatus 5 having a small remaining transmission power that can be transmitted is allocated to uplink element frequency bands in which the radio resources of the survey reference signal and the uplink control channel signal are different and the radio resource of the uplink control channel signal is allocated
- the uplink subframe of the uplink component frequency band is a survey reference signal subframe
- either the survey reference signal and the uplink control channel signal are transmitted simultaneously according to the format of the uplink control channel signal, or the uplink It is determined whether to transmit only the control channel signal.
- the present invention is not limited to the uplink control channel signal for transmission of the scheduling request.
- the present invention can also be applied to an uplink control channel signal for transmission of an acknowledgment that uses the first format and the second format as shown in FIG.
- the mobile station apparatus 5 transmits a reception acknowledgment response to the downlink shared channel signal in the survey reference signal subframe using the uplink control channel of the first format or the second format.
- the mobile station apparatus 5 uses the first format for the uplink control channel signal format in the survey reference signal subframe, as in the case of the uplink control channel for transmitting the scheduling request described in the above embodiment. Or based on the control information indicating whether the second format is used, the signal format of the uplink control channel for transmission of the reception confirmation response is selected.
- FIG. 9 is a diagram illustrating a combination example of radio resources set in the uplink reference channel signal for transmission of the survey reference signal and the reception confirmation response in the embodiment of the present invention.
- a case where two uplink element frequency bands (a first uplink element frequency band and a second uplink element frequency band) are used will be described.
- a case will be described where a survey reference signal subframe is set for every two uplink subframes in the first uplink component frequency band and the second uplink component frequency band.
- a radio resource of the survey reference signal is allocated for every three survey reference signal subframes in the first uplink component frequency band and the second uplink component frequency band.
- the first format is set in the uplink control channel of the survey reference signal subframe up to uplink subframe # 4, and the survey reference signal after uplink subframe # 5 A case where the second format is set in the uplink control channel of the subframe will be described.
- the radio resource of the survey reference signal and the uplink control channel is set only in one uplink element frequency band.
- a case will be described where an uplink control channel of the first format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 is the same uplink subframe, and when the radio resources of the investigation reference signal and the uplink control channel signal are set in the first uplink element frequency band (Case # 5 in FIG. 9). No investigation reference signal is transmitted, and only the uplink control channel signal is transmitted.
- an uplink control channel of the second format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 has the same uplink subframe and the radio resources of the investigation reference signal and the uplink control channel signal are set in the first uplink element frequency band (Case # 6 in FIG. 9)
- the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the radio resources of the survey reference signal and the uplink control channel are set in different uplink element frequency bands.
- a case will be described where an uplink control channel of the first format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 has the same uplink subframe, the radio resource of the survey reference signal is set in the second uplink element frequency band, and the uplink control channel signal in the first uplink element frequency band.
- the radio resource is set (Case # 7 in FIG. 9)
- the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the mobile station device 5 with the small remaining transmission power that can be transmitted is based on an instruction from the base station device 3, and is the same uplink subframe, and the survey reference signal and the uplink control in different uplink element frequency bands.
- the survey reference signal is not transmitted, and only the uplink control channel signal is transmitted.
- an uplink control channel of the second format is set in the survey reference signal subframe of the first uplink element frequency band.
- the mobile station apparatus 5 has the same uplink subframe, the radio resource of the survey reference signal is set in the second uplink element frequency band, and the uplink control channel signal in the first uplink element frequency band.
- radio resources are set (Case # 8 in FIG. 9)
- a survey reference signal and an uplink control channel signal are transmitted simultaneously.
- the mobile station apparatus 5 sets the radio resources of the investigation reference signal and the uplink control channel signal in the same uplink subframe and different uplink element frequency bands regardless of the remaining transmittable transmission power.
- the uplink control channel signal format is the second format, the survey reference signal and the uplink control channel signal are transmitted simultaneously.
- the radio resource of the uplink control channel signal for transmission of the acknowledgment response is, for example, four downlink subframes after a certain period from the downlink subframe to which the radio resource of the downlink shared channel signal is allocated. Assigned to uplink subframe after frame.
- the radio resource of the uplink control channel signal for transmitting the acknowledgment is different from the radio resource of the uplink control channel signal for transmitting the scheduling request, and periodic radio resources are allocated in advance from the base station apparatus 3. Instead, the radio resource allocation result of the uplink control channel signal is reported for each downlink subframe.
- the mobile station apparatus 5 when the mobile station apparatus 5 detects a downlink control channel addressed to itself including information on radio resource allocation of the downlink shared channel, the mobile station apparatus 5 has an uplink corresponding to the radio resource used for the signal of the downlink control channel. If it is determined that the radio resource of the control channel signal is allocated and no downlink control channel addressed to the own apparatus is detected, it is determined that the radio resource of the uplink control channel signal is not allocated. Note that radio resources that may be used for downlink control channel signals in the downlink system band and uplink control channel signals for transmission of reception acknowledgments in the uplink system band may be used. A certain radio resource is associated in advance, and the base station device 3 and the mobile station device 5 recognize the association.
- the mobile station apparatus 5 of the present invention can appropriately transmit the signal of the uplink control channel for transmitting the survey reference signal and the reception confirmation response.
- the format of the uplink control channel signal is the first format
- the mobile station apparatus 5 checks if the radio resources of the survey reference signal and the uplink control channel signal are set to the same uplink element frequency band.
- Different mobile station apparatuses 5 that use radio resources (uplink resource blocks) in the same frequency domain as the uplink control channel by controlling to transmit only the signal of the uplink control channel without transmitting the reference signal.
- the orthogonal sequence having the same sequence length as that of the uplink control channel is appropriately used, and orthogonalization between the signals of the uplink control channel can be reliably realized.
- the mobile station apparatus 5 performs control so that the survey reference signal and the uplink control channel signal are simultaneously transmitted when the radio resources of the survey reference signal and the uplink control channel signal are set to different uplink element frequency bands. Accordingly, the base station apparatus 3 can ensure the orthogonalization between the uplink control channel signals for different mobile station apparatuses 5 that use radio resources in the same frequency domain as the uplink control channel, while the base station apparatus 3 can perform the survey reference signal. It is possible to measure the channel quality of the uplink in the uplink element frequency band to which is transmitted. Therefore, the mobile station apparatus 5 reliably transmits the reception result for the downlink shared channel signal to the base station apparatus 3, and the base station apparatus 3 realizes efficient retransmission control while suppressing unnecessary retransmissions. Furthermore, the base station apparatus 3 can improve the efficiency of scheduling, adaptive modulation, and transmission power control using the measured uplink channel quality.
- the mobile station apparatus 5 checks if the radio resources of the survey reference signal and the uplink control channel signal are set to the same uplink element frequency band. By controlling so that the reference signal and the uplink control channel signal are transmitted simultaneously, the uplink control channel signals for different mobile station devices 5 that use radio resources in the same frequency domain as the uplink control channel are used. While reliably realizing orthogonalization, the base station apparatus 3 can measure the uplink channel quality of the uplink element frequency band in which the survey reference signal is transmitted.
- the mobile station apparatus 5 performs control so that the survey reference signal and the uplink control channel signal are simultaneously transmitted when the radio resources of the survey reference signal and the uplink control channel signal are set to different uplink element frequency bands. Accordingly, the base station apparatus 3 can ensure the orthogonalization between the uplink control channel signals for different mobile station apparatuses 5 that use radio resources in the same frequency domain as the uplink control channel, while the base station apparatus 3 can perform the survey reference signal. It is possible to measure the channel quality of the uplink in the uplink element frequency band to which is transmitted.
- the mobile station apparatus 5 reliably transmits the reception result for the downlink shared channel signal to the base station apparatus 3, and the base station apparatus 3 can realize unnecessary retransmission control while suppressing unnecessary retransmissions.
- the base station apparatus 3 can improve the efficiency of scheduling, adaptive modulation, and transmission power control using the measured uplink channel quality.
- the mobile station apparatus 5 that has a small remaining transmission power that can be transmitted, and in which the simultaneous transmission of signals in different uplink element frequency bands is basically prohibited by the base station apparatus 3,
- the survey reference signal is not transmitted for the reason of transmission power limitation. Only the signal of the uplink control channel is transmitted.
- the mobile station apparatus 5 uses the second format for the uplink control channel signal and radio resources of the survey reference signal and the uplink control channel signal are set in different uplink element frequency bands, the mobile station apparatus 5 transmits The survey reference signal and the uplink control channel signal can be simultaneously transmitted in the same uplink subframe without worrying about power limitation.
- the format of the uplink control channel signal is the first format, and the investigation reference signal and the uplink control channel signal are in different uplink element frequency bands.
- the control signal is not transmitted, the uplink control channel signal is controlled to be transmitted, the uplink control channel signal format is the second format, and a different uplink is used.
- the transmission power limit is considered by controlling the survey reference signal and uplink control channel signal to be transmitted simultaneously. Appropriately send the uplink control channel signal and the survey reference signal for transmitting the acknowledgment. It can be.
- the present invention is not limited to the wireless communication system 1 configured by the number of uplink component frequency bands used in the description of the above embodiment.
- the present invention can also be applied to the wireless communication system 1 configured from different numbers of uplink component frequency bands.
- the base station apparatus 3 determines whether or not to allocate the radio resource of the survey reference signal to the mobile station apparatus 5 for each downlink subframe, and determines to allocate the radio resource of the survey reference signal Transmits to the mobile station apparatus 5 including the radio resource allocation information of the investigation reference signal in the downlink control channel.
- the mobile station apparatus 5 performs the detection process of the downlink control channel signal addressed to itself including allocation of radio resources of the survey reference signal for each downlink subframe, and includes the allocation of radio resources of the survey reference signal.
- a downlink control channel signal addressed is detected, an uplink subframe corresponding to the downlink subframe in which the downlink control channel signal is detected, for example, an uplink subframe corresponding to a downlink subframe after four Or a survey reference signal radio signal in a survey reference signal subframe that is the closest in time after the downlink subframe in which the downlink control channel signal is detected, or a predetermined survey reference signal subframe. Recognizes that a resource has been allocated.
- the mobile station apparatus 5 uses the same uplink element frequency band. Depending on whether each radio resource is set or each radio resource is set in a different uplink element frequency band, transmission processing of the survey reference signal and the uplink control channel signal is controlled.
- the format of the downlink control channel signal including the radio resource allocation information of the survey reference signal may be different from the format of the downlink control channel signal including other information, or the same format may be used. Also good.
- the mobile station apparatus 5 changes the interpretation of different information fields according to the values of some information fields of the format, and the downlink control channel signal allocates the radio resource of the survey reference signal. It is judged whether the information is included or other information is included.
- a single downlink control channel may include information on radio resource allocation of survey reference signals of a single mobile station device 5, or information on radio resource allocation of survey reference signals of a plurality of mobile station devices 5. May be included.
- the mobile station device 5 is not limited to a moving terminal, and the present invention may be realized by mounting the function of the mobile station device 5 on a fixed terminal.
- the integrated circuit of the present invention is an integrated circuit that causes the mobile station apparatus 5 to perform a plurality of functions by being mounted on the mobile station apparatus 5, and has a predetermined frequency for the base station apparatus 3.
- a function of transmitting a signal using one or more element frequency bands having a bandwidth, a function of setting a radio resource of a reference signal and a radio resource of an uplink control channel, and a time when a radio resource of the reference signal is set When transmitting an uplink control channel signal in a frame, the signal transmission process is controlled depending on whether each radio resource is set in the same element frequency band or each radio resource is set in a different element frequency band.
- a series of functions including a function and a function of transmitting a reference signal and / or an uplink control channel signal based on control of signal transmission processing Wherein the exerting on the mobile station apparatus 5.
- the mobile station apparatus 5 using the integrated circuit of the present invention has the same uplink component frequency band when the radio resources of the survey reference signal and the uplink control channel signal are set in the same uplink subframe.
- the mobile station apparatus 5 is controlled by controlling the transmission processing of the survey reference signal and the uplink control channel signal. Can appropriately transmit the survey reference signal and the uplink control channel signal.
- the program that operates in the mobile station device 5 and the base station device 3 related to the present invention is a program (a program that causes a computer to function) that controls the CPU and the like so as to realize the functions of the above-described embodiments related to the present invention.
- Information handled by these devices is temporarily stored in the RAM at the time of processing, then stored in various ROMs and HDDs, read out by the CPU, and corrected and written as necessary.
- a recording medium for storing the program a semiconductor medium (for example, ROM, nonvolatile memory card, etc.), an optical recording medium (for example, DVD, MO, MD, CD, BD, etc.), a magnetic recording medium (for example, magnetic tape, Any of a flexible disk etc. may be sufficient.
- the processing is performed in cooperation with the operating system or other application programs.
- the functions of the invention may be realized.
- the program when distributing to the market, can be stored and distributed on a portable recording medium, or transferred to a server computer connected via a network such as the Internet.
- the storage device of the server computer is also included in the present invention.
- LSI which is typically an integrated circuit.
- Each functional block of the mobile station device 5 and the base station device 3 may be individually chipped, or a part or all of them may be integrated into a chip.
- the method of circuit integration is not limited to LSI, and may be realized by a dedicated circuit or a general-purpose processor.
- an integrated circuit based on the technology can also be used.
- Base station apparatus 5 (A to C) Mobile station apparatus 101 Reception processing section 103 Radio resource control section 105 Control section 107 Transmission processing section 109 Reception antenna 111 Transmission antenna 201 Downlink shared channel processing section 203 Downlink control channel processing section 205 Downlink pilot channel processing unit 207 Multiplexing unit 209 IFFT unit 211 GI insertion unit 213 D / A unit 215 Transmission RF unit 219 Turbo coding unit 221 Data modulation unit 223 Convolution coding unit 225 QPSK modulation unit 301 Reception RF unit 303 A / D unit 305 Element frequency band separation unit 307 Uplink element frequency band reception processing unit 309 Symbol timing detection unit 311 GI removal unit 313 FFT unit 315 Subcarrier demapping unit 317 Channel estimation unit 319 Channel equalization unit (uplink shared channel) ) 321 Channel equalization unit (for uplink control channel) 323 IDFT unit 325 Data demodulation unit 327 Turbo decoding unit 329 Uplink control channel detection unit 331 Uplink channel quality measurement unit 401 Reception processing
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Abstract
Description
E-UTRAでは、例えば、基地局装置が上りリンクのチャネル品質を測定するために、調査参照信号SRS:Sounding Reference Signalが仕様化されている。移動局装置は、基地局装置によって予め設定された無線リソースを用いて調査参照信号を送信する。移動局装置は、周期的に調査参照信号を送信するための無線リソースを割り当てられ、または1回のみ調査参照信号を送信するための無線リソースを割り当てられる。調査参照信号は、基地局装置によって予め設定された、上りリンクの周期的なサブフレーム(調査参照信号サブフレームSRS subframeと呼称する。)のみで送信される。また、調査参照信号は、上りリンクのサブフレームの最後のSC-FDMA:Single Carrier-Frequency Division Multiple Accessシンボルを用いて送信される。
E-UTRAでは、例えば、移動局装置がスケジューリング要求を送信するために、上りリンク制御チャネルPUCCH:Physical Uplink Control Channelが仕様化されている。スケジューリング要求とは、移動局装置が上りリンク共用チャネルPUSCH:Physical Uplink Shared Channelの無線リソースの割り当てを基地局装置に要求することを意味する。移動局装置は、スケジューリング要求を行なう場合に、基地局装置によって予め設定された周期的な無線リソースを用いて上りリンク制御チャネルの信号を送信する。移動局装置は、スケジューリング要求を行なわない場合、無線リソースが割り当てられていてもスケジューリング要求の信号を送信しない。
E-UTRAでは、移動局装置が調査参照信号と上りリンク制御チャネルの信号を同時送信できるモードと、移動局装置が上りリンク制御チャネルの信号を送信する場合、調査参照信号を送信できないモードが基地局装置によって切り替えられて、用いられる。調査参照信号と上りリンク制御チャネルの信号が同一サブフレームで同時送信される場合、上りリンク制御チャネルの信号のフォーマットは、第2のフォーマットが用いられる。
一方、A-EUTRAでは、EUTRAよりも広い周波数帯域に対応すること、およびEUTRAとの互換性(compatibility)を確保することが検討されている。このため、A-EUTRAでは、基地局装置がEUTRAの周波数帯域を一単位(要素周波数帯域)として、複数の要素周波数帯域から構成されるシステム帯域を用いた通信を行なう技術(周波数帯域集約:Spectrum aggregation、または、キャリア集約:Carrier aggregationと呼称することがある。)が検討されている(なお、要素周波数帯域をキャリア要素:Carrier Component、または、コンポーネントキャリア:Component carrierと呼称することもある。)(非特許文献1)。この技術では、基地局装置は、EUTRAに対応した移動局装置と上りリンクおよび下りリンク各々において何れか1個の要素周波数帯域を用いて通信を行ない、A-EUTRAに対応した移動局装置と上りリンクおよび下りリンク各々において1個以上の要素周波数帯域を用いて通信を行なう。
図10は、本発明の実施形態に係る無線通信システムの全体像についての概略を説明する図である。この図が示す無線通信システム1は、基地局装置3と、複数の移動局装置5A、5B、5Cとが無線通信を行なう。また、この図は、基地局装置3から移動局装置5A、5B、5Cへの通信方向である下りリンクが、下りリンクパイロットチャネル、下りリンク制御チャネル(PDCCH:Physical Downlink Control CHannelとも呼称する。)、および下りリンク共用チャネル(PDSCH:Physical Downlink Shared CHannelとも呼称する。)を含んで構成されることを示す。また、この図は、移動局装置5A、5B、5Cから基地局装置3への通信方向である上りリンクが、上りリンク共用チャネル(PUSCH:PhysicalUplink Shared CHannelとも呼称する。)、上りリンクパイロットチャネル、および上りリンク制御チャネル(PUCCH:Physical Uplink Control CHannelとも呼称する。)を含んで構成されることを示す。また、基地局装置3が管轄するエリアのことをセルと呼ぶ。以下、本実施形態において、移動局装置5A、5B、5Cを移動局装置5と呼び、説明を行なう。
図11は、本発明の実施形態に係る基地局装置3から移動局装置5への下りリンクの無線フレーム(下りリンク無線フレームと呼称する。)の概略構成を示す図である。この図において、横軸は周波数領域、縦軸は時間領域を表している。下りリンク無線フレームは、無線リソース割り当てなどの単位であり、下りリンクの予め決められた幅の周波数帯および時間帯からなるリソースブロックのペア(下りリンクリソースブロックペアと呼称する。)から構成される。1個の下りリンクリソースブロックペアは下りリンクの時間領域で連続する2個のリソースブロック(下りリンクリソースブロックと呼称する。)から構成される。
図12は、本発明の実施形態に係る移動局装置5から基地局装置3への上りリンクの無線フレーム(上りリンク無線フレームと呼称する。)の概略構成を示す図である。この図において、横軸は周波数領域、縦軸は時間領域を表している。上りリンク無線フレームは、無線リソース割り当てなどの単位であり、上りリンクの予め決められた幅の周波数帯および時間帯からなるリソースブロックのペア(上りリンクリソースブロックペアと呼称する。)から構成される。1個の上りリンクリソースブロックペアは、上りリンクの時間領域で連続する2個のリソースブロック(上りリンクリソースブロックと呼称する。)から構成される。
<基地局装置3の全体構成>
以下、図1、図2、図3を用いて、本実施形態に係る基地局装置3の構成について説明する。図1は、本発明の実施形態に係る基地局装置3の構成を示す概略ブロック図である。この図に示すように、基地局装置3は、受信処理部101、無線リソース制御部103、制御部105、および、送信処理部107を含んで構成される。
以下、基地局装置3の送信処理部107の詳細について説明する。図2は、本発明の実施形態に係る基地局装置3の送信処理部107の構成を示す概略ブロック図である。この図に示すように、送信処理部107は、複数の下りリンク共用チャネル処理部201-1~201-M(以下、下りリンク共用チャネル処理部201-1~201-Mを合わせて下りリンク共用チャネル処理部201と表す)、複数の下りリンク制御チャネル処理部203-1~203-M(以下、下りリンク制御チャネル処理部203-1~203-Mを合わせて下りリンク制御チャネル処理部203と表す)、下りリンクパイロットチャネル処理部205、多重部207、IFFT(Inverse Fast Fourier Transform;高速逆フーリエ変換)部209、GI(Guard Interval;ガードインターバル)挿入部211、D/A(Digital/Analog;ディジタルアナログ変換)部213、送信RF(Radio Frequency;無線周波数)部215、および、送信アンテナ111を含んで構成される。なお、各下りリンク共用チャネル処理部201、各下りリンク制御チャネル処理部203は、それぞれ、同様の構成および機能を有するので、その一つを代表して説明する。
以下、基地局装置3の受信処理部101の詳細について説明する。図3は、本発明の実施形態に係る基地局装置3の受信処理部101の構成を示す概略ブロック図である。この図に示すように、受信処理部101は、受信RF部301、A/D(Analog/Digital;アナログディジタル変換)部303、要素周波数帯域分離部305、複数の上りリンク要素周波数帯域毎受信処理部307-1~307-M(以下、上りリンク要素周波数帯域毎受信処理部307-1~307-Mを上りリンク要素周波数帯域毎受信処理部307と表す)、を含んで構成される。また、この図に示すように、上りリンク要素周波数帯域毎受信処理部307は、シンボルタイミング検出部309、GI除去部311、FFT部313、サブキャリアデマッピング部315、伝搬路推定部317、上りリンク共用チャネル用の伝搬路等化部319、上りリンク制御チャネル用の伝搬路等化部321、IDFT部323、データ復調部325、ターボ復号部327、上りリンク制御チャネル検出部329、および上りリンクチャネル品質測定部331を備える。なお、各上りリンク要素周波数帯域毎受信処理部307は、同様の構成および機能を有するので、その一つを代表して説明する。
以下、図4、図5、図6を用いて、本実施形態に係る移動局装置5の構成について説明する。図4は、本発明の実施形態に係る移動局装置5の構成を示す概略ブロック図である。この図に示すように、移動局装置5は、受信処理部401、無線リソース制御部403、制御部405、送信処理部407を含んで構成される。また、制御部405は、同時送信制御部4051を備える。
以下、移動局装置5の受信処理部401の詳細について説明する。図5は、本発明の実施形態に係る移動局装置5の受信処理部401の構成を示す概略ブロック図である。この図に示すように、受信処理部401は、受信RF部501、A/D部503、シンボルタイミング検出部505、GI除去部507、FFT部509、多重分離部511、伝搬路推定部513、下りリンクチャネル品質測定部515、下りリンク共用チャネル用の伝搬路補償部516、下りリンク共用チャネル復号部517、下りリンク制御チャネル用の伝搬路補償部519、および、下りリンク制御チャネル復号部521、を含んで構成される。また、この図に示すように、下りリンク共用チャネル復号部517は、データ復調部523、および、ターボ復号部525、を備える。また、この図に示すように、下りリンク制御チャネル復号部521は、QPSK復調部527、および、ビタビデコーダ部529、を備える。
図6は、本発明の実施形態に係る移動局装置5の送信処理部407の構成を示す概略ブロック図である。この図に示すように、送信処理部407は、複数の上りリンク要素周波数帯域毎送信処理部601-1~601-M(以下、上りリンク要素周波数帯域毎送信処理部601-1~601-Mを合わせて上りリンク要素周波数帯域毎送信処理部601と表す)、要素周波数帯域合成部603、D/A部605、送信RF部607、および、送信アンテナ411を含んで構成される。また、この図に示すように、上りリンク要素周波数帯域毎送信処理部601は、ターボ符号部611、データ変調部613、DFT部615、上りリンクパイロットチャネル処理部617、上りリンク制御チャネル処理部619、サブキャリアマッピング部621、IFFT部623、乗算部624、および、GI挿入部625、を備える。移動局装置5は、対応する数の上りリンク要素周波数帯域分の上りリンク要素周波数帯域毎送信処理部601を有する。なお、各上りリンク要素周波数帯域毎送信処理部601は、同様の構成および機能を有するので、その一つを代表して説明する。
調査参照信号と上りリンク制御チャネルの信号の送信処理について説明する。2個の上りリンク要素周波数帯域(第1の上りリンク要素周波数帯域、第2の上りリンク要素周波数帯域)が用いられる場合について説明する。図7は、本発明の実施形態における調査参照信号と上りリンク制御チャネルの信号に設定される無線リソースの組合せ例を示す図である。第1の上りリンク要素周波数帯域と第2の上りリンク要素周波数帯域において2個の上りリンクサブフレーム毎に調査参照信号サブフレームが設定された場合について説明する。また、第1の上りリンク要素周波数帯域において2個の調査参照信号サブフレーム毎に調査参照信号の無線リソースが割り当てられ、第2の上りリンク要素周波数帯域において4個の調査参照信号サブフレーム毎に調査参照信号の無線リソースが割り当てられた場合について説明する。また、第1の上りリンク要素周波数帯域に2個の上りリンクサブフレーム毎に上りリンク制御チャネルの信号の無線リソースが割り当てられた場合について説明する。また、第1の上りリンク要素周波数帯域において、上りリンクサブフレーム#4までの調査参照信号サブフレームの上りリンク制御チャネルに第1のフォーマットが設定され、上りリンクサブフレーム#5以降の調査参照信号サブフレームの上りリンク制御チャネルに第2のフォーマットが設定される場合について説明する。なお、調査参照信号サブフレームではない上りリンクサブフレームの上りリンク制御チャネルに対しては第1のフォーマットが設定されている。
図8は、本発明の実施形態に係る移動局装置5の調査参照信号と上りリンク制御チャネルの信号の無線リソースが同一上りリンクサブフレームに設定された場合の送信処理の一例を示すフローチャートである。図8は、上りリンクサブフレーム単位の処理を示す。同時送信制御部4051は、調査参照信号と上りリンク制御チャネルの信号が同じ上りリンク要素周波数帯域の無線リソースに設定されたか否かを判定する(ステップS101)。同時送信制御部4051は、調査参照信号と上りリンク制御チャネルの信号が同じ上りリンク要素周波数帯域の無線リソースに設定されたと判定した場合(ステップS101:YES)、上りリンク制御チャネルの信号のフォーマットは第1のフォーマットか否かを判定する(ステップS102)。一方、同時送信制御部4051は、調査参照信号と上りリンク制御チャネルの信号が同じ上りリンク要素周波数帯域の無線リソースに設定されていない、つまり、調査参照信号と上りリンク制御チャネルの信号が異なる上りリンク要素周波数帯域の無線リソースに設定されたと判定した場合(ステップS101:NO)、異なる上りリンク要素周波数帯域の信号の同時送信が可能か否かを判定する(ステップS103)。なお、同時送信制御部4051は、基地局装置3より通知された、異なる上りリンク要素周波数帯域の信号の同時送信を許可するか、禁止するかを示す制御情報に基づいて、異なる上りリンク要素周波数帯域の信号の同時送信が可能か否かを判定する。
5(A~C) 移動局装置
101 受信処理部
103 無線リソース制御部
105 制御部
107 送信処理部
109 受信アンテナ
111 送信アンテナ
201 下りリンク共用チャネル処理部
203 下りリンク制御チャネル処理部
205 下りリンクパイロットチャネル処理部
207 多重部
209 IFFT部
211 GI挿入部
213 D/A部
215 送信RF部
219 ターボ符号部
221 データ変調部
223 畳み込み符号部
225 QPSK変調部
301 受信RF部
303 A/D部
305 要素周波数帯域分離部
307 上りリンク要素周波数帯域毎受信処理部
309 シンボルタイミング検出部
311 GI除去部
313 FFT部
315 サブキャリアデマッピング部
317 伝搬路推定部
319 伝搬路等化部(上りリンク共用チャネル用)
321 伝搬路等化部(上りリンク制御チャネル用)
323 IDFT部
325 データ復調部
327 ターボ復号部
329 上りリンク制御チャネル検出部
331 上りリンクチャネル品質測定部
401 受信処理部
403 無線リソース制御部
405 制御部
407 送信処理部
409 受信アンテナ
501 受信RF部
503 A/D部
505 シンボルタイミング検出部
507 GI除去部
509 FFT部
511 多重分離部
513 伝搬路推定部
515 下りリンクチャネル品質測定部
516 伝搬路補償部(下りリンク共用チャネル用)
517 下りリンク共用チャネル復号部
519 伝搬路補償部(下りリンク制御チャネル用)
521 下りリンク制御チャネル復号部
523 データ復調部
525 ターボ復号部
527 QPSK復調部
529 ビタビデコーダ部
601 上りリンク要素周波数帯域毎送信処理部
603 要素周波数帯域合成部
605 D/A部
607 送信RF部
611 ターボ符号部
613 データ変調部
615 DFT部
617 上りリンクパイロットチャネル処理部
619 上りリンク制御チャネル処理部
621 サブキャリアマッピング部
623 IFFT部
624 乗算部
625 GI挿入部
4051 同時送信制御部
Claims (10)
- 複数の移動局装置および前記複数の移動局装置と信号の送受信を行なう基地局装置から構成される無線通信システムに適用され、予め定められた周波数帯域幅を有する要素周波数帯域を1個以上用いて信号の送信を行なう移動局装置であって、
チャネル品質を測定するための参照信号の無線リソースと上りリンク制御チャネルの無線リソースを設定する無線リソース制御部と、
前記参照信号の無線リソースが設定された時間フレームで前記上りリンク制御チャネルの信号を送信する場合、同じ要素周波数帯域に各無線リソースが設定されたか、または異なる要素周波数帯域に各無線リソースが設定されたかに応じて、信号の送信処理を制御する同時送信制御部と、
前記同時送信制御部の制御に基づき、前記参照信号および/または上りリンク制御チャネルの信号を送信する送信処理部と、を備えることを特徴とする移動局装置。 - 前記同時送信制御部は、前記上りリンク制御チャネルの信号のフォーマットに応じて送信処理を制御することを特徴とする請求項1記載の移動局装置。
- 前記上りリンク制御チャネルの信号のフォーマットは、前記参照信号の無線リソースが割り当てられる可能性のある時間領域の無線リソースが用いられる第1のフォーマット、または前記参照信号の無線リソースが割り当てられる可能性のある時間領域の無線リソースが用いられない第2のフォーマットのいずれか一方であることを特徴とする請求項2記載の移動局装置。
- 前記同時送信制御部は、
前記上りリンク制御チャネルの信号のフォーマットが第1のフォーマットであり、前記無線リソース制御部において同じ要素周波数帯域に前記参照信号と前記上りリンク制御チャネルの無線リソースが設定された場合、前記参照信号は送信せず、前記上りリンク制御チャネルの信号を送信するように制御する一方、
前記上りリンク制御チャネルの信号のフォーマットが第1のフォーマットであり、前記無線リソース制御部において異なる要素周波数帯域に前記参照信号と前記上りリンク制御チャネルの無線リソースが設定された場合、前記参照信号と前記上りリンク制御チャネルの信号を同時に送信するように制御することを特徴とする請求項3記載の移動局装置。 - 前記同時送信制御部は、
前記上りリンク制御チャネルの信号のフォーマットが第2のフォーマットであり、前記無線リソース制御部において同じ要素周波数帯域に前記参照信号と前記上りリンク制御チャネルの無線リソースが設定された場合、前記参照信号と前記上りリンク制御チャネルの信号を同時に送信するように制御する一方、
前記上りリンク制御チャネルの信号のフォーマットが第2のフォーマットであり、前記無線リソース制御部において異なる要素周波数帯域に前記参照信号と前記上りリンク制御チャネルの無線リソースが設定された場合、前記参照信号と前記上りリンク制御チャネルの信号を同時に送信するように制御することを特徴とする請求項3記載の移動局装置。 - 前記同時送信制御部は、
前記上りリンク制御チャネルの信号のフォーマットが第1のフォーマットであり、前記無線リソース制御部において異なる要素周波数帯域に前記参照信号と前記上りリンク制御チャネルの無線リソースが設定された場合、前記参照信号は送信せず、前記上りリンク制御チャネルの信号を送信するように制御する一方、
前記上りリンク制御チャネルの信号のフォーマットが第2のフォーマットであり、前記無線リソース制御部において異なる要素周波数帯域に前記参照信号と前記上りリンク制御チャネルの無線リソースが設定された場合、前記参照信号と前記上りリンク制御チャネルの信号を同時に送信するように制御することを特徴とする請求項3記載の移動局装置。 - 複数の移動局装置および前記複数の移動局装置と信号の送受信を行なう基地局装置から構成される無線通信システムに適用され、予め定められた周波数帯域幅を有する要素周波数帯域を1個以上用いて信号の送信を行なう通信方法であって、
前記移動局装置において、
チャネル品質を測定するための参照信号の無線リソースと上りリンク制御チャネルの無線リソースを設定するステップと、
前記参照信号の無線リソースが設定された時間フレームで前記上りリンク制御チャネルの信号を送信する場合、同じ要素周波数帯域に各無線リソースが設定されたか、または異なる要素周波数帯域に各無線リソースが設定されたかに応じて、信号の送信処理を制御するステップと、
信号の送信処理の制御に基づき、前記参照信号および/または上りリンク制御チャネルの信号を送信するステップと、を少なくとも含むことを特徴とする通信方法。 - 移動局装置に実装されることにより、前記移動局装置に複数の機能を発揮させる集積回路であって、
基地局装置に対して、予め定められた周波数帯域幅を有する要素周波数帯域を1個以上用いて信号の送信を行なう機能と、
チャネル品質を測定するための参照信号の無線リソースと上りリンク制御チャネルの無線リソースを設定する機能と、
前記参照信号の無線リソースが設定された時間フレームで前記上りリンク制御チャネルの信号を送信する場合、同じ要素周波数帯域に各無線リソースが設定されたか、または異なる要素周波数帯域に各無線リソースが設定されたかに応じて、信号の送信処理を制御する機能と、
信号の送信処理の制御に基づき、前記参照信号および/または上りリンク制御チャネルの信号を送信する機能と、を含む一連の機能を、前記移動局装置に発揮させることを特徴とする集積回路。 - 複数の移動局装置および前記複数の移動局装置と予め定められた周波数帯域幅を有する要素周波数帯域を1個以上用いて信号の送受信を行なう基地局装置から構成される無線通信システムであって、
前記基地局装置は、
前記移動局装置から送信された信号を受信する受信処理部を備え、
前記移動局装置は、
チャネル品質を測定するための参照信号の無線リソースと上りリンク制御チャネルの無線リソースを設定する無線リソース制御部と、
前記参照信号の無線リソースが設定された時間フレームで前記上りリンク制御チャネルの信号を送信する場合、同じ要素周波数帯域に各無線リソースが設定されたか、または異なる要素周波数帯域に各無線リソースが設定されたかに応じて、信号の送信処理を制御する同時送信制御部と、
前記同時送信制御部の制御に基づき、前記参照信号および/または上りリンク制御チャネルの信号を送信する送信処理部と、を備えることを特徴とする無線通信システム。 - 複数の移動局装置および前記複数の移動局装置と信号の送受信を行なう基地局装置から構成される無線通信システムに適用され、予め定められた周波数帯域幅を有する要素周波数帯域を1個以上用いて信号の送信を行なう移動局装置の制御プログラムであって、
チャネル品質を測定するための参照信号の無線リソースと上りリンク制御チャネルの無線リソースを設定する処理と、
前記参照信号の無線リソースが設定された時間フレームで前記上りリンク制御チャネルの信号を送信する場合、同じ要素周波数帯域に各無線リソースが設定されたか、または異なる要素周波数帯域に各無線リソースが設定されたかに応じて、信号の送信処理を制御する処理と、
信号の送信処理の制御に基づき、前記参照信号および/または上りリンク制御チャネルの信号を送信する処理と、を含む一連の処理を、コンピュータに読み取り可能および実行可能にコマンド化したことを特徴とする制御プログラム。
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