Methods and Arrangements in a Telecommunications Network
20230120647 · 2023-04-20
Inventors
- Robert Baldemair (Solna, SE)
- David Astely (Bromma, SE)
- Erik Dahlman (Stockholm, SE)
- Ylva Jading (Stockholm, SE)
Cpc classification
H04W56/0045
ELECTRICITY
International classification
Abstract
The present invention relates to methods and arrangements in a base station and a user equipment for determining an uplink transmission timing correction for communication in a telecommunication system which aggregation of component carriers is applied. The base station receives a signal from the user equipment on an uplink (UL) component carrier and measures the arrival time of the signal. A timing correction of the UL transmission timing based on the arrival time of the signal is determined. Thereupon the base station determines for which of the uplink component carriers used by the user equipment the timing correction is valid. The timing correction and the validity information is sent to the user equipment. The user equipment adjusts the UL transmission timing for each UL component carrier the timing correction is valid for.
Claims
1. A method in a base station for determining an uplink transmission timing correction for communication in a telecommunication system in which aggregation of component carriers is applied, the method comprising: receiving a signal on a selected uplink component carrier from a user equipment; measuring an arrival time of the received signal; determining a timing correction of the uplink transmission timing based on the measured arrival time; determining for whether the timing correction is valid for a single UL component carrier or multiple UL component carriers; and sending the timing correction and information indicating whether the timing correction is valid for a single UL component carrier or multiple UL component carriers.
2. A method in a user equipment for determining an uplink transmission timing correction for communication in a telecommunication system in which aggregation of component carriers is applied, the method comprising: sending a signal on an uplink component carrier to a base station; receiving, from the base station, a timing correction of the uplink transmission timing and information indicating whether the timing correction is valid for a single UL component carrier or multiple UL component carriers; and adjusting the uplink transmission timing of either the single UL component carrier or the multiple UL component carriers, based on the timing correction.
3. A base station for determining an uplink transmission timing correction for communication in a telecommunication system in which aggregation of component carriers is applied, the base station comprising: a receiver for receiving a signal on a selected uplink component carrier from a user equipment; a unit for measuring an arrival time of the received signal; a unit for determining a timing correction of the uplink transmission timing based on the measured arrival time, and for determining whether the timing correction is valid for a single UL component carrier or multiple UL component carriers; and a transmitter for sending the timing correction and information whether the timing correction is valid for a single UL component carrier or multiple UL component carriers.
4. A user equipment for determining an uplink transmission timing correction for communication in a telecommunication system in which aggregation of component carriers is applied, the user equipment comprising: a transmitter for sending a signal on an uplink component carrier to a base station; a receiver for receiving, from the base station, a timing correction of the uplink transmission timing and information whether the timing correction is valid for a single UL component carrier or multiple UL component carriers; and a unit for adjusting the uplink transmission timing of either the single UL component carrier or the multiple UL component carriers based on the timing correction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] For a better understanding, reference is made to the following drawings and preferred embodiments of the invention.
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[0029]
DETAILED DESCRIPTION
[0030] In the following description, for purposes of explanation and not limitation, specific details are set forth, such as particular sequences of steps, signaling protocols and device configurations in order to provide a thorough understanding of the present invention. It will be apparent to one skilled in the art that the present invention may be practiced in other embodiments that depart from these specific details. In the drawings, like reference signs refer to like elements.
[0031] Moreover, those skilled in the art will appreciate that the means and functions explained herein below may be implemented using software functioning in conjunction with a programmed microprocessor or general-purpose computer, and/or using an application specific integrated circuit (ASIC). It will also be appreciated that while the current invention is primarily described in the form of methods and devices, the invention may also be embodied in a computer program product as well as a system comprising a computer processor and a memory coupled to the processor, wherein the memory is encoded with one or more programs that may perform the functions disclosed herein.
[0032] The present invention is described herein by way of reference to particular example scenarios. In particular embodiments of the invention are described in a non-limiting general context in relation to an E-UTRAN. It should though be noted that the invention and its exemplary embodiments are applicable to other types of radio access networks in which aggregation of component carriers is applied.
[0033] In a telecommunication system in which aggregation of UL component carriers is applied all UL signals within a component carrier and/or across contiguous component carriers need to be timing aligned in order to maintain orthogonality.
[0034] The arrival time of two or more UL component carriers at the base station influenced by the transmission timing of each respective UL carrier as well as the propagation delay experienced by each UL signal. However, in most cases, the arrival time of the UL component carrier is mainly determined by the transmission timing.
[0035] According to the basic concept of the present invention, the base station receives a signal from a user equipment on an UL component carrier and measures the arrival time of the signal. A timing correction of the UL transmission timing based on the arrival time of the signal is determined. Thereupon the base station determines for which of the uplink component carriers used by the user equipment the timing correction is valid. The timing correction and the validity information are sent to the user equipment. The user equipment adjusts the UL transmission timing for each UL component carrier the timing correction is valid for.
[0036] A message carrying the information for which UL component carrier the timing correction is valid can either be an independent message or it can be sent together with the timing correction. An independent signaling of validity information can for example be signaled via RRC (Radio Resource Control) signaling or MAC (Media Access Control) control elements. A combined message carrying both timing correction and validity information is typically signaled as MAC control element but other signaling schemes are possible as well. In one embodiment of the present invention the timing correction is sent in a timing advance command to the user equipment.
[0037] In one embodiment of the present invention the UL component carriers used by a user equipment are associated with a common DL timing reference—and thus should have the same UL transmit timing—and should have the same UL receive timing, one timing advance command is sufficient for all UL component carriers used by the user equipment. The same also applies if they use different—but well defined with respect to each other—DL timing references. The UL transmit timings and thus also the UL receive timings will have the same relationship to each other as the DL timing references.
[0038] A common DL timing reference could be for example the synchronization signal or the reference signals of one DL component carrier. Another example of a common DL timing reference could be synchronization signals on different component carriers if they are synchronized. DL timing references that are not the same but anyway share a well-defined relation with each other could be synchronization signals on DL component carriers where the transmit timings are not the same but have a clearly defined offset relative to each other.
[0039] In another embodiment of the present invention the DL timing references are not related to each other.
[0040] An example where an UL timing advance command for each UL component carrier should be used is in a case with aggregation of multiple time-division duplex (TDD) component carriers with different DL and UL allocations across them. Since TDD DL transmitters are typically timing aligned with neighboring TDD DL transmitters to mitigate interference it is necessary that each of the TDD component carriers can set their DL timing references individually. Due to possible different DL and UL allocations, individual UL receive timings are required which makes individual UL timing advance commands necessary.
[0041] In the following the above embodiments will be further explained with reference to
[0042]
[0043] In a step 54, the timing correction and the information on which of the uplink component carriers the timing correction is valid for are sent to the user equipment. This could be executed in different ways. A message carrying the information for which UL component carrier the timing correction is valid can either be an independent message or it can be sent together with the timing correction. An independent signaling of the information on which component carrier the timing correction is valid for could be done with RRC signaling or with MAC control elements. A combined message carrying both timing correction and validity information is typically signaled as MAC control element but other signaling schemes are possible as well. In one embodiment of the present invention the timing correction is sent in a timing advance command to the laser equipment.
[0044] In one embodiment, the timing correction could be determined to be valid for the uplink component carrier of the aggregated component carriers which has an associated downlink timing reference aligned with the downlink timing reference associated with the selected uplink component carrier. In such a case the downlink timing reference could be a synchronization signal or reference signal of one of the downlink component carrier used by the user equipment.
[0045] In another embodiment were the downlink timing reference associated with a component carrier is not the same but has a well-defined relation with the downlink timing reference associated with the selected component carrier, the timing correction could be determined to be valid for said uplink component carrier. That is, the timing correction is determined to be valid for all uplink component carriers which have an associated downlink timing reference with a defined offset relative to the downlink timing reference associated with the selected uplink component carrier on which the signal is received from the user equipment in step 50. In this case, the downlink timing references could be synchronization signals or reference signals on different downlink component carriers.
[0046] It should be pointed out that the validity information, i.e. the validity of the timing correction, is in one embodiment of the present invention determined during setup of the base station and sent to the UE when an UL component carrier is added. Thus, the validity information could be sent to the UE before the timing correction is sent to the UE and also less frequent than the timing correction.
[0047] In an exemplary embodiment of the present invention the base station measures the arrival time of the signal received from the UE and relates the measured time to an arrival time reference. The arrival time reference could be the arrival time that the base station desires to receive a signal from the UE. Thus, the timing correction determined by the base station could be based on the measured arrival time of the received signal and the arrival time reference.
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[0049] In another embodiment when the component carriers are time division duplex carriers with different downlink or uplink allocations across the carriers, the timing correction is determined to be valid for only the selected component carrier.
[0050] Schematically illustrated in
[0051] Schematically illustrated in
[0052] It should be noted that the units illustrated in
[0053] The present invention is not limited to the above-described preferred embodiments. Various alternatives, modifications and equivalents may be used. Therefore, the above embodiments should not be taken as limiting the scope of the invention, which is defined by the appending claims.