The present invention relates generally to generation of demodulation reference signal (DM-RS) sequences and, more specifically, to dynamic configuration of a user equipment (UE) for DM-RS sequence generation.
Downlink reference signals are signals that do not carry user data but are used to aid a user equipment in channel estimation, position estimation, or other functions. One type of downlink reference signals is demodulation reference signals (DM-RS). DM-RS signals are UE-specific reference signals. DM-RS signals contain UE-specific reference symbols that are used to assist a UE in estimating channel conditions needed for coherent demodulation of downlink data.
In an LTE system, an Evolved Node B is configured to generate and transmit different DM-RS sequences. A UE must be informed beforehand of which DM-RS sequence to expect in an up-coming transmission. In practice, a UE is configured by the eNB with one or more configuration parameters that are used by the UE to generate a DM-RS sequence. The UE estimates the channel using one or more received DM-RS signals, which may be transmitted to a UE in a Physical Downlink Shared Channel (PDSCH).
Normally, the one or more configuration parameters used to configure a UE are transmitted via higher-layer signaling, e.g., Radio Resource Control (RRC) signaling. As such, the configuration parameters can't be changed dynamically, for example, on a Transmission Time Interval (TTI) basis. However, in many scenarios, dynamic configuration of a DM-RS sequence generation process is desired. For instance, if at a first time transmission interval, two UEs are configured to receive downlink transmissions on different antenna ports in the same time-frequency resource, the best performance is achieved if the DM-RS sequences of the two transmissions are the same. In this case, the two UEs may be configured to expect the same DM-RS sequence. Both UEs expect the same DM-RS sequence and use knowledge of the transmitted DM-RS sequence to process the DM-RS signal for channel estimation. In a different scenario, if at a second Transmission Time Interval (TTI) the two UEs are scheduled to receive downlink transmissions on the same antenna port and on the same time-frequency resource, in order to mitigate interference, different DM-RS sequences should be used in the DM-RS signals intended for these two UEs. In such case, the UEs should be re-configured to expect different DM-RS sequences. The current technique does not allow re-configuration of a UE to generate different DM-RS sequences on a TTI basis.
There is a need for improved methods and apparatus that can be used to dynamically configure UEs for DM-RS sequence generation.
The present invention provides methods and apparatus for dynamically configuring UEs with parameters for DM-RS sequence generation.
In some embodiments, a method for generating a demodulation reference signal (DM-RS) sequence is implemented at a user equipment in a wireless communications network. In the method, the user equipment receives a Physical Downlink Shared Channel (PDSCH) Resource Element (RE) Mapping and Quasi-Co-Location (PQL) indicator from an eNB. The user equipment generates a DM-RS sequence from the received PQL indicator. The generated DM-RS sequence is used by the UE to process one or more DM-RS signals that are received from the eNB. The one or more received DM-RS signals are used by the UE to estimate a channel. In some embodiments, the UE comprises a transceiver for communicating with an eNB, a memory for storing data, and processors configured to generate a DM-RS sequence based on a received PQL indicator.
In some embodiments, a method for configuring a UE for dynamic DM-RS sequence generation is implemented at an eNB. The eNB is configured with one or more PQL indicators. The eNB determines a PQL indicator for a UE. The PQL indicator is associated with one or more DM-RS sequences. The eNB transmits the PQL indicator to the UE and also generates a DM-RS signal using a DM-RS sequence associated with the determined PQL indicator. The DM-RS signal is then transmitted to the UE for channel estimation. In some embodiments, the eNB comprises a transceiver configured for communicating with user equipment, a memory configured for storing data, and a processor configured to send a PQL indicator to a UE for configuring the UE for dynamic DM-RS sequence generation.
Of course, the present invention is not limited to the features, advantages, and contexts summarized above, and those familiar with wireless communication technologies will recognize additional features and advantages upon reading the following detailed description and upon viewing the accompanying drawings.
Referring now to the drawings,
In an LTE system, one type of UE-specific reference signals is DM-RS signals. A DM-RS signal comprises a DM-RS sequence, which is generated as a pseudo-random sequence c(i). In one exemplary standard, the pseudo-random sequence generator is initialized as shown below:
cinit=([ns/2]+1)·(2nID(n
prior to generating the DMRS sequence for a specific radio subframe. Here:
Whether the parameter nSCID takes the value of 1 or 0 is signaled as part of the downlink scheduling information on the downlink control channel and can be reconfigured on a fast time scale, e.g., on a TTI basis.
The parameter nID(n
Both the eNB 102 and the UE 104 use the same mathematical formula shown above to generate DM-RS sequences. The eNB 102 generates a DM-RS sequence and transmits the generated sequence as a DM-RS signal. To inform the UE 104 what DM-RS sequence to expect, it is sufficient for the eNB 102 to send the UE 104 parameter nIDDMRS,i. However, nIDDMRS,i is usually sent to the UE 104 via signaling over higher layers, for example, radio link layer. As such, nIDDMRS,i normally can't be changed on a fast time scale.
In some embodiments, all UEs associated with a given eNB or transmission entity may be assigned the same value for nIDDMRS,i, in effect making the DM-RS reference transmission-entity specific. All UEs associated with the same physical cell identifier will expect and indeed receive the same DM-RS signal. While planning is relatively easy when all UEs associated with the same transmission entity are given the same nIDDMRS,i, a UE can't dynamically switch from one eNB to another because switching from one eNB to another requires higher layer signaling that is utilized to transmit the value of nIDDMRS,i.
In some embodiments, nIDDMRS,i may be configured to be UE-specific. When generating a DM-RS sequence, the eNB 102 selects the nIDDMRS,i associated with the UE scheduled at that particular time interval. In these embodiments, the UEs do not require dynamic configuration. However, whenever reconfiguration of the UEs is required, for example, when the radio environment or traffic situation has changed, the reconfiguration process is complex and involves coordination among several eNBs.
In some embodiments, nIDDMRS,i may be signaled to a UE as part of the downlink control information. However, this approach has several drawbacks. First, without decoding the control information that is used by the UE to obtain the DM-RS sequence index, nIDDMRS,i, the UE will not be able to generate a DM-RS sequence and can't perform any computations that depend on the DM-RS sequence. Second, the DCI format used to transmit control information must be changed to add extra bits to hold nIDDMRS,i. Changing the DCI format in a downlink control message may render the downlink control message incompatible with the current standard.
In some embodiments, instead of downlink control information, the DM-RS sequence index nIDDMRS,i is transmitted to the UE 104 using Physical Downlink Shared Channel (PDSCH) Resource Element (RE) Mapping and Quasi-Co-Location Indicator (PQL Indicator). In an LTE-Advanced system, a Physical Downlink Shared Channel (PDSCH) carries user information and signaling originated from upper layers of protocol stack, e.g., a transport layer. PDSCH has different adaptation modes or transmission hypotheses that are defined by a set of parameters. Multiple PQL parameter sets may be transmitted to the UE 104 and stored at the UE 104 via higher-layer signaling. Because the eNB 102 may change its transmission mode dynamically, the eNB 102 must dynamically signal the UE 104 which transmission mode is used for an upcoming downlink transmission or which parameter set is associated with the upcoming downlink transmission. Downlink control information (DCI) is used for this purpose. DCI includes the modulation and coding scheme, the transport block size, etc., used in the upcoming transmission. DCI also includes a PQL indicator. The PQL indicator informs the UE 104 the parameter set associated with the upcoming downlink transmission over a Physical Downlink Shared Channel (PDSCH).
In some embodiments, a PQL indicator is used to indicate to the UE 104 which parameter set is associated with the scheduled PDSCH transmission. The PQL indicator is included in the DCI transmitted over a Physical Downlink Control Channel (PDCCH) or enhanced Physical Downlink Control Channel (ePDCCH). The PDCCH or the ePDCCH are transmitted in conjunction with the PDSCH transmission.
The PQL indicator or the associated PQL parameter set can be used to configure a UE for dynamic DM-RS sequence generation.
In some embodiments, parameter nSCID is fixed (0 or 1). It may be transmitted to the UE or simply disregarded for DM-RS sequence generation. In some embodiments, parameter nSCID may be removed from DCI altogether. When parameter nSCID is fixed, the initial value of a DM-RS sequence, cinit, can be computed using the following simplified expression:
([ns/2]+1)·(2nID+1)·216.
Here cinit depends on nID and ns only. But only nID needs to be signaled to the UE for DM-RS sequence generation. If the values of nID are mapped to the values of the PQL indicator, the UE 104 can retrieve the value of nID based on the PQL indicator included in the DCI received over the PDCCH channel. The UE 104 then uses the retrieved nID to compute cinit, and uses cinit to generate a DM-RS sequence.
It is noted that although only four parameter sets are shown in
In some embodiments, a parameter set may be expanded to include a field for holding the value of nIDDMRS,i. The UE 104 receives a PQL indicator in a DCI message over the PDCCH channel. The UE 104 maps the PQL indicator to a parameter set and retrieves the parameter set that has been previously configured. The retrieved parameter set includes a field that holds the value of nIDDMRS,i, which the UE uses to generate a DM-RS sequence.
As described above, downlink control information (DCI) associated with each downlink shared channel (DL-SCH) transmission is signaled to the UE 104 in conjunction with the DL-SCH transmission. The PQL indicator is included in the DCI to be dynamically signaled to the UE 104. By mapping the different values of the PQL indicator to different values of nIDDMRS,i, the UE 104, which generates DM-RS sequences using nIDDMRS,i, can be dynamically configured.
The mapping between the different values of the PQL indicator and the different values of nIDDMRS,i can be provided to the UE using higher-layer signaling on a relatively slow time scale, for example, over a radio link control layer. The mapping can be updated or revised to associate different DM-RS sequences with a given UE.
In some embodiments, a mapping table is transmitted to the UE by the eNB serving the UE. The mapping table provides the mapping between the different values of the PQL indicator and the different values of nIDDMRS,i. In some embodiments, the mapping table may be provided to the UE by a network node other than the serving eNB.
In some embodiments, two UEs may be provided with the same mapping between the PQL indicator and the DM-RS sequence index nIDDMRS,i. Depending on whether the two UEs are receiving on different ports, the eNB 102 may configure the two UEs to generate the same DM-RS sequence or different DM-RS sequences by selecting the PQL indicator transmitted in the DCI.
Also depending on whether the two UEs are receiving on the same time-frequency resource block, the eNB 102 may configure the two UEs to generate the same DM-RS sequence or different DM-RS sequences by selecting the PQL indicator transmitted in the DCI. Co-scheduling of two UEs on the same time-frequency resource are dependent on various factors, e.g., traffic patterns, radio channel conditions, etc. As such, co-scheduling is highly dynamic and dynamic configuration of a DM-RS sequence generation process at a UE 104 makes co-scheduling possible. In some embodiments, the eNB 102 coordinates with other network nodes in configuring the DM-RS sequence generation process at a UE. The coordination among different nodes can be utilized to implement other features, such as dynamic point selection, joint transmission, and Coordinated Multiple-Point (CoMP).
In some embodiments, the eNB 102 selects a PQL indicator for the UE 104 in order to generate an optimal DM-RS sequence for the UE 104. An optimal DM-RS sequence for the UE 104 may be different under different scenarios, depending on whether it is joint transmission or CoMP, etc. For example, the eNB 102 may generate a DM-RS sequence for the UE 104 that is orthogonal to the DM-RS sequences generated for all the other UEs in the same network. In some embodiments, the same network may refer to the network of the eNB 102. In other embodiments, the same network may refer to the network comprising the network nodes with which the eNB 102 is coordinating. For another example, the eNB 102 may generate a DM-RS sequence for the UE 104 that is identical to the DM-RS sequence generated for another UE.
In
The processors 406 further comprise a control channel decoder 408, an extraction processor 410, and a DM-RS channel estimation processor 412. The control channel decoder 408 decodes the PDCCH or ePDCCH and retrieves a PQL indicator. The retrieved PQL indicator is input to the extraction processor 410, which maps the retrieved PQL indicator to a DM-RS sequence index. The DM-RS sequence index is input to the DM-RS channel estimation processor 412. The DM-RS channel estimation processor 412 uses the DM-RS sequence index to generate a DM-RS sequence which is used to process the one or more DM-RS signals transmitted by the eNB to the UE. The detected DM-RS signals are used for channel estimation.
DM-RS sequence from the received PQL indicator (step 504). The processors 406 then processes one or more DM-RS signals based on the generated DM-RS sequence (step 506). The one or more DM-RS signals are transmitted by the eNB 102 and received by the mobile device 400. The processors 406 estimate a channel based on the one or more detected DM-RS signals (step 508).
The scheduling processor 608 schedules downlink transmissions for different mobile devices. The downlink scheduling information (DCI) is transmitted to a UE 400 via the PDCCH or ePDCCH. The DCI may include a PQL indicator informing the UE 400 which PQL parameter set is associated with the PDSCH transmission. The PQL indicator is input into the extraction processor 610, which maps the PQL indicator to a DM-RS sequence index. In one embodiment, the PQL indicator may be mapped to one or more DM-RS sequence indices. The DM-RS sequence indices are input into the DMRS generation processor 612, which may select one DM-RS sequence index to generate a DM-RS sequence. The generated DM-RS sequence is transmitted as a DM-RS signal to the UE 400.
PQL indicator (step 704). The PQL indicator and the generated DM-RS signal are transmitted to the UE (step 706). In some embodiments, the PQL indicator and the generated DM-RS signal may be transmitted separately. In some embodiments, the PQL indicator and the generated DM-RS signal may be transmitted in a same OFDM symbol.
The foregoing description and the accompanying drawings represent non-limiting examples of the methods and apparatus taught herein. As such, the present invention is not limited by the foregoing description and accompanying drawings. Instead, the present invention is limited only by the following claims and their legal equivalents.
The present invention may, of course, be carried out in other ways than those specifically set forth herein without departing from essential characteristics of the invention. The present embodiments are to be considered in all respects as illustrative and not restrictive, and all changes coming within the meaning and equivalency range of the appended claims are intended to be embraced therein.
Filing Document | Filing Date | Country | Kind |
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PCT/SE2013/051368 | 11/20/2013 | WO | 00 |