The present invention relates to the field of communications and particularly to a method and device for transmitting a downlink pilot.
In a 3GPP LTE-Advanced system (LTE stands for Long Term Evolution which is an evolved system of a third-generation mobile communication system, and an LTE-Advanced system is an upgraded LTE system), new technologies such as high-order MIMO, multi-cell coordinated transmission technology will be adopted to improve the performance of the system.
In view of these new technical features, the LTE-A system adopts a dedicated pilot to demodulate data, and pilots are kept orthogonal between respective streams. For a transmission scheme with the number of streams being 1 and 2, pilots of two streams are orthogonal in a CDM mode; for a transmission scheme with the number of streams being 3 and 4, pilots of four streams are in a hybrid FDM and CDM mode; and for a transmission scheme with the number of streams being 5, 6, 7 and 8, pilots of eight streams are in the hybrid FDM and CDM mode. As can be seen, the CDM orthogonal mode is involved for pilots in all the transmission schemes. However a Walsh code or a normalized Walsh code is adopted as a pilot in the CDM mode, thus resulting in different power over two adjacent OFDM symbols where the pilot is located.
Embodiments of the invention provide a method and device for transmitting a downlink pilot so as to address the problem in the prior art of different powers over OFDM symbols.
An embodiment of the invention provides a method for transmitting a downlink pilot, which includes:
transmitting a dedicated pilot in a Code Division Multiplexing, CDM, mode or in a hybrid CDM and Frequency Division Multiplexing, FDM, mode; and
configuring the dedicated pilot with an orthogonal sequence over a resource for transmission of the dedicated pilot according to a preset mapping rule.
An embodiment of the invention provides a device for transmitting a downlink pilot, which includes:
a configuring unit configured to configure a dedicated pilot with an orthogonal sequence over a resource for transmission of the dedicated pilot according to a preset mapping rule; and
a transmitting unit configured to transmit the dedicated pilot processed by the configuring unit in a Code Division Multiplexing, CDM, mode or in a hybrid CDM and Frequency Division Multiplexing, FDM, mode.
In the embodiments of the invention, a dedicated pilot is transmitted in a Code Division Multiplexing (CDM) mode or in a hybrid CDM and Frequency Division Multiplexing (FDM) mode, where the dedicated pilot is configured with an orthogonal sequence over a resource for transmission of the dedicated pilot according to a preset mapping rule to thereby address the problem of different power of OFDM symbols due to a Walsh code.
In embodiments of the invention, a dedicated pilot is transmitted in a Code Division Multiplexing (CDM) mode or in a hybrid CDM and Frequency Division Multiplexing (FDM) mode, where the dedicated pilot is configured with an orthogonal sequence over a resource for transmission of the dedicated pilot according to a preset mapping rule.
Referring to
Step 101: A dedicated pilot is mapped in a Code Division Multiplexing (CDM) mode or in a hybrid CDM and Frequency Division Multiplexing (FDM) mode, where the dedicated pilot is configured with an orthogonal sequence over a resource for transmission of the dedicated pilot according to a preset mapping rule, and furthermore the dedicated pilot can further be mapped to a port according to the preset mapping rule before it is configured with the orthogonal sequence.
Step 102: The mapped dedicated pilot is transmitted.
For a system at a transmission rank of 3 to 8, an orthogonal sequence and a mapping rule adopted for a first stream to be transmitted are the same as those at a transmission rank of 1 or 2, and an orthogonal sequence and a mapping rule adopted for a second stream to be transmitted are the same as those at a transmission rank of 2. For a system at a transmission rank of 5 to 8, an orthogonal sequence and a mapping rule adopted for a third stream to be transmitted are the same as those at a transmission rank of 3 or 4, and an orthogonal sequence and a mapping rule adopted for a fourth stream to be transmitted are the same as those at a transmission rank of 4.
The same set of orthogonal sequences is adopted for groups of ports mapped into different resources; or groups of ports mapped into different resources are configured respectively with different sets of orthogonal sequences.
In a recommended design, the groups of ports mapped into different resources are configured respectively with the sets of orthogonal sequences between which a cyclic shift relationship is satisfied. Preferably the value of a cyclic shift is 2.
Different orthogonal sequences in the same set of orthogonal sequences are adopted for ports mapped onto the same sub-carrier.
Adjacent sub-carriers, of each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences. In a recommended design, orthogonal sequences of adjacent sub-carriers, of each port, for transmission of a dedicated pilot are arranged in a reverse order to each other.
For a system at a transmission rank of 1 to 4, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences;
For a system at a transmission rank of 5 to 8, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences; or
For a system at a transmission rank of 5 to 8, four adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences
For a system at a transmission rank of 1 to 4, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences in a frequency order within a system bandwidth;
For a system at a transmission rank of 5 to 8, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences in a frequency order within a system bandwidth; or
For a system at a transmission rank of 5 to 8, four adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences in a frequency order within a system bandwidth.
The number of sets of orthogonal sequences is consistent with the code length of an orthogonal code used for the dedicated pilot.
A cyclic shift relationship is satisfied between the sets of orthogonal sequences.
Referring to
The configuring unit 21 is configured to configure a dedicated pilot with an orthogonal sequence over a resource for transmission of the dedicated pilot according to a preset mapping rule, and furthermore the configuring unit 21 can further map the dedicated pilot to a port according to the preset mapping rule before the dedicated pilot is configured with the orthogonal sequence.
The transmitting unit 22 is configured to transmit the dedicated pilot in a Code Division Multiplexing (CDM) mode or in a hybrid CDM and Frequency Division Multiplexing (FDM) mode.
For a system at a transmission rank of 3 to 8, an orthogonal sequence and a mapping rule adopted for a first stream are the same as those at a transmission rank of 1 or 2, and an orthogonal sequence and a mapping rule adopted for a second stream are the same as those at a transmission rank of 2.
For a system at a transmission rank of 5 to 8, an orthogonal sequence and a mapping rule adopted for a third stream are the same as those at a transmission rank of 3 or 4, and an orthogonal sequence and a mapping rule adopted for a transmitted stream are the same as those at a transmission rank of 4.
The same set of orthogonal sequences is adopted for groups of ports mapped into different resources; or groups of ports mapped into different resources are configured respectively with different sets of orthogonal sequences.
In a recommended design, groups of ports mapped into different resources are configured respectively with different sets of orthogonal sequences between which a cyclic shift relationship is satisfied. Preferably the value of a cyclic shill is 2.
Different orthogonal sequences in the same set of orthogonal sequences are adopted for ports mapped onto the same sub-carrier.
Adjacent sub-carriers, of each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences. In a recommended design, orthogonal sequences of adjacent sub-carriers, of each port, for transmission of a dedicated pilot are arranged in a reverse order to each other.
For a system at a transmission rank of 1 to 4, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences; for a system at a transmission rank of 5 to 8, two adjacent sub-carriers corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences; or for a system at a transmission rank of 5 to 8, four adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences
For a system at a transmission rank of 1 to 4, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences in a frequency order within a system bandwidth;
For a system at a transmission rank of 5 to 8, two adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences in a frequency order within a system bandwidth; or
For a system at a transmission rank of 5 to 8, four adjacent sub-carriers, corresponding to each port, for transmission of a dedicated pilot have their orthogonal sequences selected from different sets of orthogonal sequences in a frequency order within a system bandwidth.
The number of sets of orthogonal sequences is consistent with the code length of an orthogonal code used for the dedicated pilot.
A cyclic drift relationship is satisfied between the sets of orthogonal sequences.
A specific implementation solution at the rank3-rank4 will be detailed below particular embodiments.
in view of the structural characteristic of the dedicated pilots at the rank3-rank4, a set of orthogonal sequences is inverted (selected) particularly in two modes: sub-carrier based and sub-carrier group based.
An orthogonal sequence a left-directed arrow is Code index0: [1 1] [1 −1]; and
An orthogonal sequence with a right-directed arrow is Code index0: [1 1] [−11].
An orthogonal sequence with a left-directed arrow is Code index0: [1 1] [1 −1]; and
An orthogonal sequence with right-directed arrow is Code index0: [1 1] [−1 1].
A specific implementation solution at the rank5-rank8 will be detailed below in particular embodiments.
Referring to
A scheme in the scenario at the rank5-rank8 is the same as that at the rank3-rank4 with the length of an orthogonal sequence being 2 except for different ports to which respective sequences correspond, and a repeated description thereof will be omitted here.
Four sets of orthogonal sequences are adopted and mapped according to a predetermined rule in the scenario at the rank5-rank8 with the length of an orthogonal sequence being 4.
For backward compatibility, that is, full consistency of a sequence mapping solution for streams 1 to 4 at the rank 8 with that at the rank 4, the mapping scheme of
In the embodiments of the invention, a power balance can be ensured, orthogonality in the time and frequency domains can be ensured and backward compatibility can be ensured for a design of orthogonal sequences at the rank3-rank8. Furthermore a sequence mapping solution for streams 1 to 4 at the rank 8 can made consist completely with that at the rank 4. Therefore both backward compatibility and orthogonality in the time and frequency domains can be ensured in the embodiments of the invention.
Evidently those skilled in the art can make various modifications and variations to the invention without departing from the spirit and the scope of the invention. Thus the invention is also intended to encompass these modifications and variations thereto as long as these modifications and variations come into the scope of the claims appended to the invention and their equivalents.
Number | Date | Country | Kind |
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201010002542.4 | Jan 2010 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN11/70149 | 1/11/2011 | WO | 00 | 7/11/2012 |