US9270350B2 - OFDM communication system, method and device for transceiving signal - Google Patents
OFDM communication system, method and device for transceiving signal Download PDFInfo
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- US9270350B2 US9270350B2 US14/432,469 US201314432469A US9270350B2 US 9270350 B2 US9270350 B2 US 9270350B2 US 201314432469 A US201314432469 A US 201314432469A US 9270350 B2 US9270350 B2 US 9270350B2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0413—MIMO systems
- H04B7/0456—Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/0632—Channel quality parameters, e.g. channel quality indicator [CQI]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/02—Arrangements for detecting or preventing errors in the information received by diversity reception
- H04L1/06—Arrangements for detecting or preventing errors in the information received by diversity reception using space diversity
- H04L1/0606—Space-frequency coding
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/02—Arrangements for detecting or preventing errors in the information received by diversity reception
- H04L1/06—Arrangements for detecting or preventing errors in the information received by diversity reception using space diversity
- H04L1/0618—Space-time coding
- H04L1/0637—Properties of the code
- H04L1/0668—Orthogonal systems, e.g. using Alamouti codes
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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) or DMT
Definitions
- the present disclosure generally relates to communication technology, and more particularly, to an OFDM communication system, a method and a system for transceiving signal.
- Orthogonal Frequency Division Multiplexing (OFDM) technology effectively improves spectrum utilization by utilizing orthogonal properties between subcarriers and allowing the subcarriers to overlap each other. Duration of data symbols on each subcarrier is greatly increased through a serial-parallel conversion of data flow, and Inter Symbol Interference (ISI) is effectively reduced by adding a cyclic prefix. Because each subcarrier has a narrow bandwidth, equalization operation can be performed on each subcarrier, which reduces complexity of receivers. OFDM technology has been widely used in Long Term Evolution (LTE) systems and WLAN systems.
- LTE Long Term Evolution
- MIMO Multiple-Input Multiple-Output
- MIMO a plurality of transmitting antennas and a plurality of receiving antennas are respectively used as a transmitting end and a receiving end. Its basic idea is that, multi-antennas are respectively used at the transmitting end and the receiving end to improve spectrum utilization, communication quality and system capacity by using space-time processing technology to make full use of independent characteristics between the channels.
- the MIMO technology makes full use of the independent wireless channels between the transmitting end and the receiving end.
- the plurality of different data flows transmitted from the transmitting antennas seems to have distinguishable spatial characteristics.
- a combined MIMO channel between the transmitting end and the receiving end can be recognized as including N (N represents the smaller one of the antenna numbers at the transmitting and receiving ends) parallel sub-channels, and the capacity of the MIMO channel equals to a sum of capacities of the N sub-channels.
- both the OFDM technology and the MIMO technology are used to improve spectrum utilization, reduce equalization complexity of receiver and improve the transmission rate of the system.
- each single physic resource unit is called a Resource Element (RE).
- the MIMO technology may multiplex N modulation symbols on a resource element, where N represents the number of data flows, which is greater than or equal to 2. Therefore, the spectrum efficiency can be multiplied by N times.
- N is determined by the number of antennas or ports at the transmitting end and the receiving end. The number of antennas or ports at both the transmitting end and the receiving end must be greater than or equal to N.
- the “Large delay CDD scheme” transmission mode, the “Closed-loop spatial multiplexing scheme” transmission mode and the “Dual layer scheme” transmission mode described in the standards of 3GPP TS 36.211 and 3GPP TS 36.123 are typical applications of MIMO technology in LTE system.
- SNR Signal to Noise Ratio
- BLER Block Error Ratio
- the present disclosure aims to solve the problem that BLER decreases slowly as the SNR increases, which affect data transmission rate in the conventional technology.
- a signal transmitting method for Orthogonal Frequency Division Multiplexing (OFDM) communication system is provided in embodiments of the present disclosure.
- the method includes:
- MIMO Multiple-Input Multiple-Output
- SFBC Space Frequency Block Code
- the one or more groups of transmitting antennas formed by dividing the M transmitting antennas constitute diversity antennas, one group or more than one group of antenna arrays.
- each group of transmitting antennas constitutes an antenna array, and forms one or more transmitting ports based on one or more pre-coding weights or one or more beam weights, where the number of the pre-coding weights or the number of the beam weights is equal to the number of the transmitting ports.
- mapping a group of 2P modulation symbols, including two modulation symbols of each data flow, to a resource element pair to form Space Frequency Block Code (SFBC) coding relationships with each other, and transmitting the group of 2P modulation symbols on the U transmitting ports includes: a first group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 11 on a first resource element and a modulation symbol s* 12 on a second resource element;
- SFBC Space Frequency Block Code
- a second group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 21 on a first resource element and a modulation symbol s* 22 on a second resource element;
- a third group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 12 on the first resource element and a modulation symbol ⁇ s* 11 on the second resource element;
- a fourth group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 22 on the first resource element and a modulation symbol ⁇ s* 21 on the second resource element,
- the modulation symbols s 11 and s 12 are data of a first data flow
- the modulation symbol ⁇ s* 11 is a negative conjugated form of the modulation symbol s 11
- the modulation symbol s* 12 is a conjugated form of the modulation symbol s 12
- the modulation symbols s 21 and s 22 are data of a second data flow
- the modulation symbol ⁇ s* 21 is a negative conjugated form of the modulation symbol s 21
- the modulation symbol s* 22 is a conjugated form of the modulation symbol s 22 .
- any group of transmitting antennas comprises more than one transmitting antennas
- the transmitting antennas in that group form a single port based on one group of pre-coding weights or beam weights and transmit in an antenna array mode.
- the M transmitting antennas are divided into two groups to form antenna arrays respectively, and each group of transmitting antennas uses two groups of pre-coding weights or beam weights to form two transmitting ports;
- mapping a group of 2P modulation symbols, including two modulation symbols of each data flow, to a resource element pair to form Space Frequency Block Code (SFBC) coding relationships with each other, and transmitting the group of 2P modulation symbols on the U transmitting ports include:
- the first group of transmitting antennas using a first transmitting port thereof to transmit a modulation symbol s 11 on a first resource element, and transmit a modulation symbol s* 12 on a second resource element, and the first group of transmitting antennas using a second transmitting port thereof to transmit a modulation symbol s 21 on the first resource element, and transmit a modulation symbol s* 22 on the second resource element;
- the second group of transmitting antennas using a first transmitting port thereof to transmit a modulation symbol s 12 on the first resource element, and transmit the modulation symbol ⁇ s* 11 on the second resource element, and the second group of transmitting antennas using a second transmitting port thereof to transmit a modulation symbol s 22 on the first resource element, and transmit a modulation symbol ⁇ s* 21 on the second resource element,
- the modulation symbols s 11 and s 12 are data of a first data flow
- the modulation symbol ⁇ s* 11 is a negative conjugated form of the modulation symbol s 11
- the modulation symbol s* 12 is a conjugated form of the modulation symbol s 12
- the modulation symbols s 21 and s 22 are data of a second data flow
- the modulation symbol ⁇ s* 21 is a negative conjugated form of the modulation symbol s 21
- the modulation symbol s* 22 is a conjugated form of the modulation symbol s 22 .
- the M transmitting antennas are divided to form one group of transmitting antennas which constitute an antenna array, and the antenna array forms four transmitting ports based on four groups of pre-coding weights or beam weights;
- mapping a group of 2P modulation symbols, including two modulation symbols of each data flow, to a resource element pair to form Space Frequency Block Code (SFBC) coding relationships with each other, and transmitting the group of 2P modulation symbols on the U transmitting ports comprise:
- a first transmitting port transmitting a modulation symbol s 11 on a first resource element, and transmitting a modulation symbol s* 12 on a second resource element;
- a second transmitting port transmitting a modulation symbol s 21 on the first resource element, and transmitting a modulation symbol s* 22 on the second resource element;
- a third transmitting port transmitting a modulation symbol s 12 on the first resource element, and transmitting a modulation symbol ⁇ s* 11 on the second resource element;
- a fourth transmitting port transmitting a modulation symbol s 22 on the first resource element, and transmitting a modulation symbol ⁇ s* 21 on the second resource element
- the modulation symbols s 11 and s 12 are data of a first data flow
- the modulation symbol ⁇ s* 11 is a negative conjugated form of the modulation symbol s 11
- the modulation symbol s* 12 is a conjugated form of the modulation symbol s 12
- the modulation symbols s 21 and s 22 are data of a second data flow
- the modulation symbol ⁇ s* 21 is a negative conjugated form of the modulation symbol s 21
- the modulation symbol s* 22 is a conjugated form of the modulation symbol s 22 .
- the pre-coding weights or the beam weights are obtained based on a codebook or an estimation of uplink channels.
- a method for obtaining the pre-coding weights or the beam weights based on an estimation of uplink channels includes:
- the method further includes: allocating U pilot signals configured by the system to the U transmitting ports respectively.
- the OFDM communication system is an LTE system.
- a signal transmitting device for Orthogonal Frequency Division Multiplexing (OFDM) communication system is also provided in embodiments of the present disclosure.
- the device includes:
- a first grouping unit adapted for dividing M transmitting antennas into one or more groups to form U transmitting ports, wherein transmitting antennas in different groups are uncorrelated, and M is greater than or equal to U;
- MIMO Multiple Input Multiple Output
- mapping unit adapted for mapping a group of 2P modulation symbols, including two modulation symbols of each data flow, to a resource element pair to form Space Frequency Block Code (SFBC) coding relationships with each other, and transmitting the group of 2P modulation symbols on the U transmitting ports.
- SFBC Space Frequency Block Code
- a signal receiving method for Orthogonal Frequency Division Multiplexing (OFDM) communication system is also provided in embodiments of the present disclosure.
- the method includes:
- each group of receiving antennas corresponds to a receiving port, receiving antennas in different groups are uncorrelated, Q is greater than or equal to 2, and S is greater than or equal to 2;
- detaching modulation symbols of each data flow mapped to the resource element pair includes:
- r 11 w 11 h 11 s 11 +w 12 h 12 s 21 +w 21 h 13 s 12 +w 22 h 14 s 22 ;
- r 12 w 11 h 11 s* 12 +w 12 h 12 s* 22 ⁇ w 21 h 13 s* 11 ⁇ w 22 h 14 s* 21 ;
- r 21 w 11 h 11 s 11 +w 12 h 22 s 21 +w 21 h 23 s 12 +w 22 h 24 s 22 ;
- r 22 w 11 h 21 s* 12 +w 12 h 22 s* 22 ⁇ w 21 h 23 s* 11 ⁇ w 22 h 24 s* 21 ;
- s 11 s 12 s 21 and s 22 are modulation symbols of each data flow mapped to the resource element pair
- the modulation symbol ⁇ s* 11 is a negative conjugated form of the modulation symbol s 11
- the modulation symbol s* 12 is a conjugated form of the modulation symbol s 12
- the modulation symbol ⁇ s* 21 is a negative conjugated form of the modulation symbol s 21
- the modulation symbol s* 22 is a conjugated form of the modulation symbol s 22 ;
- [ r 11 r 12 * r 21 r 22 * ] [ h ⁇ 11 h ⁇ 13 h ⁇ 12 h ⁇ 14 - h ⁇ 13 * h ⁇ 11 * - h ⁇ 14 * h ⁇ 12 * h ⁇ 21 h ⁇ 23 h ⁇ 22 h ⁇ 24 - h ⁇ 23 * h ⁇ 21 * - h ⁇ 24 * h ⁇ 22 * ] ⁇ [ s 11 s 12 s 21 s 22 ] .
- MMSE Minimum Mean Square Error
- R n is a matrix related to noise estimation
- H [ h ⁇ 11 h ⁇ 13 h ⁇ 12 h ⁇ 14 - h ⁇ 13 * h ⁇ 11 * - h ⁇ 14 * h ⁇ 12 * h ⁇ 21 h ⁇ 23 h ⁇ 22 h ⁇ 24 - h ⁇ 23 * h ⁇ 21 * - h ⁇ 24 * h ⁇ 22 * ] .
- a signal receiving device for Orthogonal Frequency Division Multiplexing (OFDM) communication system is also provided in embodiments of the present disclosure.
- the device includes:
- a second grouping unit adapted for dividing Q receiving antennas into S groups, wherein each group of receiving antennas corresponds to a receiving port, receiving antennas in different groups are uncorrelated, Q is greater than or equal to 2, and S is greater than or equal to 2;
- a receiving unit adapted for receiving signals transmitted by the signal transmitting device described above through each receiving port;
- a detaching unit adapted for detaching modulation symbols of each data flow mapped to the resource element pair.
- an Orthogonal Frequency Division Multiplexing (OFDM) communication system is also provided in embodiments of the present disclosure.
- the system includes the above signal transmitting device and the above signal receiving device.
- P data flows of MIMO are transmitted in an SFBC mode (P is determined by a number of the transmitting ports and a number of the receiving ports).
- P is determined by a number of the transmitting ports and a number of the receiving ports.
- a group of 2P modulation symbols constituted by two modulation symbols of each data flow are mapped to a resource element pair to form SFBC coding relationships, and then the group of 2P modulation symbols are transmitted on U transmitting ports obtained by dividing the M transmitting antennas. Therefore, high spectral efficiency of MIMO is inherited, and transmission accuracy of MIMO is improved by using diversity gain of SFBC.
- the problem of the slow decrease of BLER in the MIMO transmission is solved, the data transmission rate is improved, and transmission performance of the system is improved.
- embodiments of the present disclosure can improve data transmission rate and user experience effectively without increasing costs.
- the demodulation performance of the MIMO+SFBC manner is improved because instantaneous channel state information can be used to form closed-loop.
- the antennas themselves of the group have formed diversity gains. Transmitting antennas of each group only need to find a half of pre-coding weights or beam weights respectively (for example, if 4 beam forming weights are needed, transmitting antennas of each group only need to find two pre-coding weights or beam weights). Therefore, power of the strongest paths can be effectively used to obtain an excellent performance.
- FIG. 1 illustrates a schematic flow chart of a signal transmitting method according to one embodiment of the present disclosure
- FIG. 2 illustrates a schematic flow chart of a signal receiving method according to one embodiment of the present disclosure
- FIG. 3 illustrates a schematic diagram of a diversity antennas transmitting mode according to one embodiment of the present disclosure
- FIG. 4 illustrates a schematic diagram of a two groups of antenna arrays transmitting mode according to one embodiment of the present disclosure
- FIG. 5 illustrates a BLER performance comparison diagram between the signal transmitting and receiving methods of the present disclosure and a conventional MIMO transmission method.
- BLER In a transmission process of the conventional MIMO technology, BLER usually decreases slowly as SNR increases, which may affect the data transmission rate.
- SFBC Space Frequency Block Code
- a manner of SFBC transmitting modulation symbols is shown in Table 1.
- s1 and s2 represent two modulation symbols on a data flow
- ⁇ s1* represents a negative conjugated form of s1
- s2* represents a conjugated form of s2, wherein “*” represents a conjugated form of a complex-number.
- a SFBC coding relationship is formed by simultaneously mapping the two different forms of s1 and s2 to a first resource element 1 and a second resource element 2 .
- the SFBC technology is used to transmit one data flow and two modulation symbols on two resource elements, and its spectral efficiency is 1.
- the SFBC technology is generally used in a transmitting diversity technology and is only suitable for transmitting modulation symbols of one data flow, it is not easy for those skilled in the art to apply the SFBC technology in other technology besides the transmitting diversity technology.
- inventors of the present disclosure consider that: if N modulation symbols can be transmitted on one resource element in MIMO, by using SFBC, 2N modulation symbols transmitted on two resource elements can be still transmitted in different forms on these two resource elements (these two resource elements may be referred as a resource element pair), so that a coding relationship of SFBC can be formed.
- the benefit is that, high spectral efficiency of MIMO is inherited, and transmission accuracy of MIMO is improved by using diversity gain of SFBC. Therefore, the problem of the slow decrease of BLER in the MIMO transmission is solved, the data transmission rate is improved, and transmission performance of the system is improved.
- a signal transmitting method and a signal receiving method which are corresponded to each other, are provided in embodiments of the present disclosure.
- the signal transmitting method and the signal receiving method can be applied in an OFDM communication system.
- P data flows of MIMO are transmitted in an SFBC mode at the transmitting end, and the receiving end receives the signals transmitted by the transmitting end and obtains modulation symbols of each data flow mapped to the resource element pair, so that performance of the MIMO transmission is improved.
- the signal transmitting method of the present disclosure includes:
- step S 1 dividing M transmitting antennas into one or more groups to form U transmitting ports, wherein transmitting antennas in different groups are uncorrelated, and M is greater than or equal to U;
- MIMO Multiple-Input Multiple-Output
- step S 3 mapping a group of 2P modulation symbols, including two modulation symbols of each data flow, to a resource element pair to form Space Frequency Block Code (SFBC) coding relationships with each other, and transmitting the group of 2P modulation symbols on the U transmitting ports.
- SFBC Space Frequency Block Code
- the signal receiving method of the present disclosure includes:
- step S 4 dividing Q receiving antennas into S groups, wherein each group of receiving antennas corresponds to a receiving port, receiving antennas in different groups are uncorrelated, Q is greater than or equal to 2, and S is greater than or equal to 2;
- step S 5 receiving signals transmitted from the U transmitting ports through each receiving port respectively, and detaching modulation symbols of each data flow mapped to the resource element pair.
- a plurality of antennas form a kind of array and jointly transmit a sequence signal based on a plurality of pre-coding weights or a plurality of beam weights.
- the plurality of antennas combining the weights can be referred to as a port.
- this antenna can be considered as a port.
- an OFDM communication system particularly an LTE system
- LTE Long Term Evolution
- the signal transmitting method and the signal receiving method can be used in other OFDM communication systems.
- M transmitting antennas are configured at the transmitting end, wherein M ⁇ 4.
- the transmitting antennas can be arranged in a variety of forms.
- the M transmitting antennas are divided into groups in the step S 1 , so that all groups of transmitting antennas form four transmitting ports, and transmitting antennas in different groups are uncorrelated. It is suggested that the transmitting antennas can be arranged in three forms shown below:
- M transmitting antennas are divided into four groups. Transmitting antennas in different groups are uncorrelated. Transmitting antennas in a same group are arranged in a linear array or a circular array. It is better that the distance between two antennas is 0.5 ⁇ 0.6 times of a wavelength.
- Four groups of transmitting antennas (corresponding to each antenna at the receiving end) form four groups of uncorrelated wireless channels. As shown in FIG. 3 , a number of transmitting antennas M is four, and the four transmitting antennas are divided into four groups. Each group has one transmitting antenna. Transmitting antennas in different groups are far away from one another, and are uncorrelated.
- Two groups of antenna arrays M transmitting antennas are divided into two groups. Transmitting antennas in different groups are uncorrelated. Each group has at least two transmitting antennas. Transmitting antennas in a same group are arranged in a linear array or a circular array. It is better that the distance between two antennas is 0.5 ⁇ 0.6 times of the wavelength. As shown in FIG. 4 , a number of the transmitting antennas M is eight, and the eight transmitting antennas are divided into two groups. Each group has 4 transmitting antennas.
- M transmitting antennas are arranged in a linear array or a circular array. It is better that a distance between two antennas is 0.5 ⁇ 0.6 times of the wavelength.
- P data flows are formed using a MIMO mode in the step S 2 .
- Modulation symbols to be transmitted on two resource elements are defined as s 11 , s 12 , s 21 and s 22 .
- the two resource elements can be referred to as a first resource element and a second resource element respectively.
- the first resource element and the second resource element constitute a “resource element pair”.
- the modulation symbols s 11 and s 12 are data the first data flow mapped to the resource element pair.
- ⁇ s* 11 is a negative conjugated form of the modulation symbol s 11
- s* 12 is a conjugated form of s 12 .
- the modulation symbols s 21 and s 22 are data the second data flow mapped to the resource element pair.
- ⁇ s* 21 is a negative conjugated form of the modulation symbol s 21
- s* 22 is a conjugated form of s 22 .
- a group of 2P modulation symbols which is constituted by two modulation symbols of each of the P data flows, are mapped to a resource element pair to form SFBC coding relationships, and the SFBC coding relationships are transmitted on the four transmitting ports in the step S 3 .
- the modulation symbols s 11 and s 12 of the first data flow and the modulation symbols s 21 and s 22 of the second data flow are regarded as a group, and are mapped to a resource element pair to form two SFBC coding relationships.
- a transmitting method of the diversity antennas includes:
- step S 3 including:
- a first group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 11 on a first resource element and a modulation symbol s* 12 on a second resource element;
- a second group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 21 on a first resource element and a modulation symbol s* 22 on a second resource element;
- a third group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 12 on the first resource element and a modulation symbol ⁇ s* 11 on the second resource element;
- a fourth group of transmitting antennas transmitting, in a single antenna mode or a single port mode, a modulation symbol s 22 on the first resource element and a modulation symbol ⁇ s* 21 on the second resource element,
- the single antenna mode refers to that a number of the antennas in a group is one; the single port mode refers to that a number of the antennas in a group is greater than one; and a plurality of pre-coding weights or a plurality of beam weights can be used to transmit the modulation symbols in a small array mode.
- a plurality of pre-coding weights or a plurality of beam weights can be used to transmit the modulation symbols in a small array mode. Namely, if any group of transmitting antennas includes more than one transmitting antennas, antennas in different groups form diversity antennas, and the antenna in that group may transmit on the single port in an antenna array mode, where the single port is formed based on a group of pre-coding weights or beam weights.
- a transmitting method of the two groups of antenna arrays includes:
- step S 3 including:
- a transmitting port of the first group of transmitting antennas (corresponding to the transmitting port 1 in FIG. 4 ) transmitting a modulation symbol s 11 on a first resource element, and transmitting a modulation symbol s* 12 on a second resource element, and the other transmitting port of the first group of transmitting antennas (corresponding to the transmitting port 2 in FIG. 4 ) transmitting a modulation symbol s 21 on the first resource element, and transmitting a modulation symbol s* 22 on the second resource element;
- a transmitting port of the second group of transmitting antennas (corresponding to the transmitting port 3 in FIG. 4 ) transmitting a modulation symbol s 12 on the first resource element, and transmits the modulation symbol ⁇ s* 11 on the second resource element, and the other transmitting port of the second group of transmitting antennas (corresponding to the transmitting port 4 in FIG. 4 ) transmitting a modulation symbol s 22 on the first resource element, and transmits a modulation symbol ⁇ s* 21 on the second resource element;
- a transmitting method of the one group of antenna array includes:
- step S 3 including:
- a first transmitting port transmitting a modulation symbol s 11 on a first resource element, and transmitting a modulation symbol s* 12 on a second resource element;
- a second transmitting port transmitting a modulation symbol s 21 on the first resource element, and transmitting a modulation symbol s* 22 on the second resource element;
- a third transmitting port transmitting a modulation symbol s 12 on the first resource element, and transmitting a modulation symbol ⁇ s* 11 on the second resource element;
- a fourth transmitting port transmitting a modulation symbol s 22 on the first resource element, and transmitting a modulation symbol ⁇ s* 21 on the second resource element
- the transmitting end usually arranges multi-antennas to form an array in order to improve performance, and transmits in a beam-forming manner to improve data transmitting accuracy.
- each group of transmitting antennas constituting the antenna array form a plurality of transmitting ports based on pre-coding weights or beam weights.
- a number of the pre-coding weights or the beam weights is equal to a number of the transmitting ports.
- the pre-coding weights or the beam weights are obtained based on a codebook, an estimation of uplink channels, or other ways.
- a method for obtaining the pre-coding weights or the beam weights based on an estimation of uplink channels includes: performing a channel estimation in frequency domain based on a pilot signal transmitted from an receiving end; converting a result of the channel estimation into time domain and estimating Direction Of Arrival (DOA) values of a plurality of resolvable paths in time domain; selecting DOA values corresponding to R strongest paths for each group of transmitting antennas and generating corresponding direction vectors as the pre-coding weights or the beam weights, wherein R is determined by a number of the groups of the transmitting antennas.
- DOA Direction Of Arrival
- SM Spatial Multiplexing
- SFBC Spatial Multiplexing
- the system has two kinds of operation modes, open-loop and closed-loop.
- Fixed beam-forming is used for transmitting in the open-loop, and by using Channel State Information (CSI), Singular Value Decomposition (SVD) beams (decomposing singular values of channel matrix, and selecting feature vectors corresponding to larger singular values to form beams) are used for transmitting in the closed-loop.
- CSI Channel State Information
- the CSI is feedback from the receiving end or is obtained from channel interaction at the transmitting end.
- the rank of the channel matrix can only be two which is limited by the dimension of the channel matrix.
- a number of effective SVD beams can only be two, so that a combination of two SFBC is not supported.
- the signal transmitting method of the present disclosure supports various transmitting mode including the diversity antennas transmitting mode, two groups of antenna arrays transmitting mode, one group of antenna array transmitting mode, etc.
- the diversity antennas transmitting mode and the one group of antenna array transmitting mode not only the fixed beam-forming transmission of the open-loop, but also the closed-loop is supported, namely, the beam transmission using CSI is supported.
- the method of the present disclosure solves the problem that the beam-forming is not enough because of a limitation of a number of the receiving antennas in the closed-loop mode.
- the transmitting end uses pilot signals to perform channel estimation in frequency domain, converts a channel estimation sequence into time domain, estimates DOA values of a plurality of resolvable paths in time domain by using a Multiple Signal Classification (MUSIC) method, an Estimation of Signal Parameters Via Rotational Invariance Techniques (ESPRIT) method, or other method, selects DOA values corresponding to R strongest paths for each group of transmitting antennas, and generates a plurality of direction vectors as beam-forming (namely, beam weights) for transmitting, wherein R is determined by a number of the groups of the transmitting antennas.
- MUSIC Multiple Signal Classification
- ESPRIT Rotational Invariance Techniques
- a number of the transmitting antennas is configured to be four and a number of the receiving antennas is configured to be two. If the transmitting end uses the two groups of antenna arrays transmitting mode, each group respectively estimates DOA values in time domain, selects two DOA values corresponding to two strongest paths, and generates direction vectors as beam-forming for transmitting. If the transmitting end uses the one group of antenna array transmitting mode, the group estimates DOA values in time domain, selects DOA values corresponding to four strongest paths, and generates direction vectors as beam forming for transmitting.
- the demodulation performance of the MIMO+SFBC manner is improved because instantaneous channel state information can be used to form closed-loop.
- the antennas themselves of the group have formed diversity gains. Transmitting antennas of each group only need to find a half of pre-coding weights or beam weights respectively (for example, if 4 beam forming weights are needed, transmitting antennas of each group only need to find two pre-coding weights or beam weights). Therefore, power of the strongest paths can be effectively used to obtain an excellent performance.
- the signal transmitting method of the present disclosure further includes: allocating U pilot signals configured by the system to the U transmitting ports respectively. Specifically, the system allocates four resource elements for transmitting pilot signals, and the four resource elements correspond to four transmitting ports, so that two antennas at the receiving end can estimate 2 ⁇ 4 channel values.
- SFBC Space Frequency Block Code
- the grouping unit divides M transmitting antennas into a plurality of groups, and the one or more groups of transmitting antennas constitute diversity antennas, one group or more than one group of antenna arrays.
- each group of transmitting antennas constituting the antenna array forms a plurality of transmitting ports based on a plurality of pre-coding weights or a plurality of beam weights, and a number of the pre-coding weights or a number of the beam weights is equal to a number of the transmitting ports.
- the signal transmitting device further includes an obtaining unit, adapted for obtaining the pre-coding weights or the beam weights based on a codebook or an estimation of uplink channels.
- the obtaining unit includes: a first estimating unit, adapted for performing channel estimation in frequency domain based on a pilot signal transmitted from an receiving end; a second estimating unit, adapted for converting a result of the channel estimation into time domain and estimating Direction Of Arrival (DOA) values of a plurality of resolvable paths in time domain; a generating unit, adapted for selecting DOA values corresponding to R strongest paths for each group of transmitting antennas and generating corresponding direction vectors as the pre-coding weights or the beam weights, wherein R is determined by a number of the groups of the transmitting antennas.
- DOA Direction Of Arrival
- the signal transmitting device further includes an allocating unit, adapted for allocating U pilot signals configured by the system to the U transmitting ports respectively.
- the allocating unit allocates four pilot signals configured by the system to the four transmitting ports respectively.
- the implementation of the signal transmitting device is referred to the signal transmitting method in embodiments of the present disclosure, and is not described herein.
- the signal receiving method may include: configuring Q receiving antennas at the receiving end, wherein Q ⁇ 2; dividing Q receiving antennas into S groups in step S 4 , wherein S is greater than or equal to 2, each group of receiving antennas corresponds to a receiving port, receiving antennas in different groups are configured to be uncorrelated (a distance between two antennas is large enough, or antennas are cross polarization, or other modes).
- the minimum configuration of the receiving end is two receiving antennas, so that the two receiving antennas can be divided into two groups, and each group includes one receiving antenna. If a number of the receiving antennas is greater than two, the antennas can be divided into S groups, each group includes more than one receiving antenna, and antennas in different groups are uncorrelated.
- the minimum configuration of the receiving end is taken as an example to describe the signal receiving method of the present disclosure in detail.
- signals transmitted from the transmitting ports are received at each receiving port respectively, and modulation symbols of each data flow mapped to the resource element pair are detached.
- detaching modulation symbols of each data flow mapped to the resource element pair in step S 5 may include: obtaining channel estimation values of pilot signals transmitted from the four transmitting ports and received at each receiving port; forming a combined transmission equation based on the channel estimation values and the received modulation symbols mapped to the resource element pair; and solving the combined transmission equation to detach each modulation symbol.
- r 11 w 11 h 11 s 11 +w 12 h 12 s 21 +w 21 h 13 s 12 +w 22 h 14 s 22
- r 12 w 11 h 11 s* 12 +w 12 h 12 s* 22 ⁇ w 21 h 13 s* 11 ⁇ w 22 h 14 s* 21
- r 21 w 11 h 11 s 11 +w 12 h 22 s 21 +w 21 h 23 s 12 +w 22 h 24 s 22
- r 22 w 11 h 21 s* 12 +w 12 h 22 s* 22 ⁇ w 21 h 23 s* 11 ⁇ w 22 h 24 s* 21 (4)
- r 12 ⁇ tilde over (h) ⁇ 11 s* 12 + ⁇ tilde over (h) ⁇ 12 s* 22 ⁇ tilde over (h) ⁇ 13 s* 11 ⁇ tilde over (h) ⁇ 14 s* 21 (6)
- r 21 ⁇ tilde over (h) ⁇ 21 s 11 + ⁇ tilde over (h) ⁇ 22 s 21 + ⁇ tilde over (h) ⁇ 23 s 12 + ⁇ tilde over (h) ⁇ 24 s 22 (7)
- r 22 ⁇ tilde over (h) ⁇ 21 s* 12 + ⁇ tilde over (h) ⁇ 22 s* 22 ⁇ tilde over (h) ⁇ 23 s
- Combined transmission equation formed by the channel estimated values and the modulation symbols mapped to the resource element pair, can be represented by:
- [ r 11 r 12 * r 21 r 22 * ] [ h ⁇ 11 h ⁇ 13 h ⁇ 12 h ⁇ 14 - h ⁇ 13 * h ⁇ 11 * - h ⁇ 14 * h ⁇ 12 * h ⁇ 21 h ⁇ 23 h ⁇ 22 h ⁇ 24 - h ⁇ 23 * h ⁇ 21 * - h ⁇ 24 * h ⁇ 22 * ] ⁇ [ s 11 s 12 s 21 s 22 ] ( 9 )
- Equation (10) is a 4-dimensional matrix. Therefore, the four modulation symbols, mapped to the resource element pair using two SFBC, can be resolved.
- MMSE Minimum Mean Square Error
- ⁇ 11 ⁇ 12 ⁇ 21 and ⁇ 22 represent resolved modulation symbols
- R n is a matrix related to noise estimation.
- the noise estimation is known to those skilled in the art, and is not described in detail herein.
- other methods for example, least squares estimation method
- a signal receiving system is also provided in embodiments of the present disclosure.
- the system may include: a second grouping unit, adapted for dividing Q receiving antennas into S groups, wherein each group of receiving antennas corresponds to a receiving port, receiving antennas in different groups are uncorrelated, Q is greater than or equal to 2, and S is greater than or equal to 2; a receiving unit, adapted for receiving signals transmitted by the signal transmitting device according to any one of claims 12 to 17 through each receiving port; and a detaching unit, adapted for detaching modulation symbols of each data flow mapped to the resource element pair.
- the detaching unit includes: an acquisition unit, adapted for obtaining channel estimation values of pilot signals transmitted from the four transmitting ports and received at the receiving ports; a forming unit, adapted for forming a combined transmission equation based on the channel estimation values and the received modulation symbols mapped to the resource element pair; and a solving unit, adapted for solving the combined transmission equation to detach each of the modulation symbols.
- the implementation of the signal receiving device is referred to the signal receiving method of the present disclosure, and is not described in detail herein.
- an OFDM communication system is provided in embodiments of the present disclosure.
- the ODM communication system includes the above signal transmitting device and the above signal receiving device.
- the OFDM communication system of the present disclosure is described in two implementations hereunder.
- the OFDM communication system uses the signal transmitting device and the signal receiving device shown in FIG. 3 .
- Four transmitting antennas at the transmitting side are disposed in different positions respectively, so that channels between antennas are completely uncorrelated.
- a user terminal A is a receiving end
- two receiving antennas are configured at the user terminal A for cost consideration, and the two receiving antennas are disposed in a cross polarization mode.
- Two data flow sequences the system allocates to the user terminal A are: s 11 , s 12 , s 13 , s 14 , . . . s 1N , and s 21 , s 22 , s 23 , s 24 , . . . s 2N .
- the system allocates N resource elements to the user terminal A, where N is a multiple of two, and every two resource elements are defined as a resource element pair.
- s 11 , s 12 and s 21 , s 22 as a group are mapped to a resource element pair
- s 13 , s 14 and s 23 , s 24 as a group are mapped to a resource element pair, and so on until all the modulation symbols are mapped.
- Modulation symbols to be transmitted at the transmitting end are divided into groups to form an SFBC mode for transmitting, wherein each of the groups includes two modulation symbols of every data flow, altogether four modulation symbols, and the pre-coding weight of each transmitting antenna is one. Then, the modulation symbols are transmitted using a method shown in FIG. 3 .
- the detail of the method can refer to the above diversity antennas transmission method. Meanwhile, using every transmitting antenna, the transmitting end transmits pilot signals on four pilot positions defined by the system.
- the user terminal A sequentially processes received signals which have every two resource elements as a pair.
- the k th pair of received signals is processed as below:
- the user terminal A based on pilot signals arranged by the system, the user terminal A estimating a 2 ⁇ 4 channel value:
- the User terminal A solving the estimating values of the transmitted signals according to a method shown in Equation (11), namely, detaching the modulation symbols.
- the OFDM communication system uses the signal transmitting device and the signal receiving device shown in FIG. 4 .
- Eight transmitting antennas at the transmitting end are divided into two groups. Transmitting antennas in a group are arranged in a linear array. The distance between two antennas is 0.5 ⁇ 0.6 times of the wavelength.
- a user terminal B is a receiving end
- two receiving antennas are configured at the user terminal A for cost consideration, and the two receiving antennas are disposed in a cross polarization mode.
- Two data flow sequences the system allocates to the user terminal B are: s 11 , s 12 , s 13 , s 14 , . . . s 1N , and s 21 , s 22 , s 23 , s 24 , . . . s 2N .
- the system allocates N resource elements to the user terminal B, where N is a multiple of two, and every two resource elements are defined as a resource element pair.
- Modulation symbols to be transmitted at the transmitting end are divided into groups to form an SFBC mode for transmitting, wherein each of the groups includes two modulation symbols of every data flow, altogether four modulation symbols.
- Each group of antennas at the transmitting end forms two transmitting ports using two groups of pre-coding weights or beam weights (the weights can be obtained based on a codebook, an estimation of uplink channels, or other ways). Then, the modulation symbols are transmitted using a method shown in FIG. 4 .
- the detail of the method can refer to the above two groups of antenna arrays transmission method. Meanwhile, using every transmitting antenna, the transmitting end transmits pilot signals on four pilot positions defined by the system.
- the user terminal B sequentially processes received signals which have every two resource elements as a pair.
- the k th pair of received signals is processed as below:
- the user terminal B estimates a 2 ⁇ 4 channel value:
- the User terminal B solving estimating values of the transmitted signals according to a method shown in Equation (11), namely, detaching the modulation symbols.
- FIG. 5 A BLER performance comparison between the signal transmitting and receiving method of the present disclosure and a conventional MIMO transmission is illustrated in FIG. 5 .
- ITU-3A,CC,1/2,16QAM indicates that the relevant performance curves are obtained by a simulation on an ITU-3A channel, convolution coding and 1/2 coding rate are adopted, and modulation mode is 16QAM.
- “4 ⁇ 2,mimo” and “8 ⁇ 2,mimo” correspond to BLER curves which only use MIMO transmission.
- “4 ⁇ 2,misf” and “(4+4) ⁇ 2,misf” correspond to BLER curves which used the transmission technology of the present disclosure combining MIMO and SFBC. It can be seen from FIG. 5 , compared with the technology only using MIMO, the BLER curve of the technology combining MIMO and SFBC decreases faster as SNR increases.
- the signal transmitting method and device, and the signal receiving method and device have following advantages. If the user terminal only configured with two receiving antennas for cost reasons, MIMO transmission may be adapted when surrounding transmission environments is good. However, MIMO can only transmit two data flow by a limitation of antenna number, and the two data flow transmitted by MIMO may form a mutual interference. Therefore, BLER is great and decreases slowly as SNR increases, which affects the data transmission rate. If the scheme of the present disclosure is used, these problems can be significant improved, and a high transmission rate can be achieved without increasing costs.
- the program may be stored in a computer-readable storage medium.
- the storage medium may be a Read-Only Memory (ROM), a Random Access Memory (RAM), a magnetic disk, or an optical disk, etc.
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Abstract
Description
r 11 =w 11 h 11 s 11 +w 12 h 12 s 21 +w 21 h 13 s 12 +w 22 h 14 s 22;
r 12 =w 11 h 11 s* 12 +w 12 h 12 s* 22 −w 21 h 13 s* 11 −w 22 h 14 s* 21;
r 21 =w 11 h 11 s 11 +w 12 h 22 s 21 +w 21 h 23 s 12 +w 22 h 24 s 22;
r 22 =w 11 h 21 s* 12 +w 12 h 22 s* 22 −w 21 h 23 s* 11 −w 22 h 24 s* 21;
-
- p=1, 2 represents receiving port number, and q=1, 2 represents resource element number;
| TABLE 1 | ||||
| Physical | Transmitting Port | 1 | |
|
| |
s1 | | ||
| Resource Element | ||||
| 2 | s2* | −s1* | ||
r 11 =w 11 h 11 s 11 +w 12 h 12 s 21 +w 21 h 13 s 12 +w 22 h 14 s 22 (1)
r 12 =w 11 h 11 s* 12 +w 12 h 12 s* 22 −w 21 h 13 s* 11 −w 22 h 14 s* 21 (2)
r 21 =w 11 h 11 s 11 +w 12 h 22 s 21 +w 21 h 23 s 12 +w 22 h 24 s 22 (3)
r 22 =w 11 h 21 s* 12 +w 12 h 22 s* 22 −w 21 h 23 s* 11 −w 22 h 24 s* 21 (4)
r 11 ={tilde over (h)} 11 s 11 +{tilde over (h)} 12 s 21 +{tilde over (h)} 13 s 12 +{tilde over (h)} 14 s 22 (5)
r 12 ={tilde over (h)} 11 s* 12 +{tilde over (h)} 12 s* 22 −{tilde over (h)} 13 s* 11 −{tilde over (h)} 14 s* 21 (6)
r 21 ={tilde over (h)} 21 s 11 +{tilde over (h)} 22 s 21 +{tilde over (h)} 23 s 12 +{tilde over (h)} 24 s 22 (7)
r 22 ={tilde over (h)} 21 s* 12 +{tilde over (h)} 22 s* 22 −{tilde over (h)} 23 s* 11 −{tilde over (h)} 24 s* 22 (8).
Claims (6)
r 11 =w 11 h 11 s 11 +w 12 h 12 s 21 +w 21 h 13 s 12 +w 22 h 14 s 22;
r 12 =w 11 h 11 s* 12 +w 12 h 12 s* 22 −w 21 h 13 s* 11 −w 22 h 14 s* 21;
r 21 =w 11 h 11 s 11 +w 12 h 22 s 21 +w 21 h 23 s 12 +w 22 h 24 s 22;
r 22 =w 11 h 21 s* 12 +w 12 h 22 s* 22 −w 21 h 23 s* 11 −w 22 h 24 s* 21;
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| PCT/CN2013/091125 WO2015100620A1 (en) | 2013-12-31 | 2013-12-31 | Ofdm communication system and method and device for receiving and transmitting signals |
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| US11212141B2 (en) * | 2016-01-07 | 2021-12-28 | Qualcomm Incorporated | Methods and apparatus for a data transmission scheme for Narrow-Band Internet of Things (NB-IoT) |
| WO2018126446A1 (en) * | 2017-01-06 | 2018-07-12 | Qualcomm Incorporated | Transparent demodulation reference signal design |
| WO2019019149A1 (en) * | 2017-07-28 | 2019-01-31 | 华为技术有限公司 | Data dimension reduction method, device and system, computer device, and storage medium |
| US10742283B2 (en) * | 2017-07-28 | 2020-08-11 | Qualcomm Incorporated | Transmit diversity schemes for uplink sequence transmissions |
| CN110166092B (en) * | 2018-02-14 | 2022-10-04 | 上海华为技术有限公司 | Method and device for generating mapping vector from data port to antenna |
| CN110971276B (en) * | 2018-09-29 | 2021-12-10 | 华为技术有限公司 | Communication method and device |
| WO2021028006A1 (en) * | 2019-08-09 | 2021-02-18 | Telefonaktiebolaget Lm Ericsson (Publ) | Technique for precoding a radio transmission |
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| WO2015100620A1 (en) | 2015-07-09 |
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