CA2798930A1 - Handover with carrier aggregation - Google Patents

Handover with carrier aggregation Download PDF

Info

Publication number
CA2798930A1
CA2798930A1 CA2798930A CA2798930A CA2798930A1 CA 2798930 A1 CA2798930 A1 CA 2798930A1 CA 2798930 A CA2798930 A CA 2798930A CA 2798930 A CA2798930 A CA 2798930A CA 2798930 A1 CA2798930 A1 CA 2798930A1
Authority
CA
Canada
Prior art keywords
user equipment
measurement
carrier
wireless access
carrier frequency
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CA2798930A
Other languages
French (fr)
Other versions
CA2798930C (en
Inventor
Gert Jan Van Lieshout
Himke Van Der Velde
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Samsung Electronics Co Ltd
Original Assignee
Samsung Electronics Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from GB1007869.9A external-priority patent/GB2479601B/en
Application filed by Samsung Electronics Co Ltd filed Critical Samsung Electronics Co Ltd
Publication of CA2798930A1 publication Critical patent/CA2798930A1/en
Application granted granted Critical
Publication of CA2798930C publication Critical patent/CA2798930C/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/06Reselecting a communication resource in the serving access point
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
    • H04L5/001Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0032Distributed allocation, i.e. involving a plurality of allocating devices, each making partial allocation
    • H04L5/0035Resource allocation in a cooperative multipoint environment
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0058Allocation criteria
    • H04L5/0073Allocation arrangements that take into account other cell interferences
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0096Indication of changes in allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/08Reselecting an access point
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/02Selection of wireless resources by user or terminal

Landscapes

  • Engineering & Computer Science (AREA)
  • Signal Processing (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

A handover with carrier aggregation is provided. A method of assisting handover of a user equipment from a source wireless access node to a target wireless access node, for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be aggregated for communication between the user equipment and the source wireless access node, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier comprises the step of selecting, at the source wireless access node, a first carrier frequency to be configured as a primary component carrier for communication with the target wireless access node after handover, and selecting, at the target wireless access node, a second carrier frequency to be configured as a secondary component carrier for communication with the target wireless access node after handover.

Description

Description Title of Invention: HANDOVER WITH CARRIER AG-GREGATION
Technical Field [1] The present invention relates generally to wireless networks, and more specifically to a method and apparatus for assisting handover in systems in wireless networks employing carrier aggregation.
Background Art
[2] Wireless networks, in which a user equipment (UE) such as a mobile handset com-municates via wireless links to a network of base stations or other wireless access points connected to a telecommunications network, have undergone rapid development through a number of generations of radio access technology. The initial deployment of systems using analogue modulation has been superseded by second generation (2G) digital systems such as GSM (Global System for Mobile communications), typically using GERA (GSM Enhanced Data rates for GSM Evolution Radio Access) radio access technology, and these systems have themselves been replaced by or augmented by third generation (3G) digital systems such as UMTS (Universal Mobile Telecom-munications System), using the UTRA (Universal Terrestrial Radio Access) radio access technology. Third generation standards provide for a greater throughput of data than is provided by second generation systems; this trend is continued with the proposals by the Third Generation Partnership Project (3GPP) of the Long Term Evolution (LTE) system, using E-UTRA (Evolved UTRA) radio access technology, which offers potentially greater capacity and additional features compared with the previous standards. WiMax systems using radio access technology to IEEE 802.16 also offer improvements over previous standards.
Disclosure of Invention Technical Problem
[3] Modern wireless networks such as LTE and WiMax typically employ a modulation format such as Orthogonal Frequency Division Multiplexing (OFDM), which is applied to one or more carriers, and is used to provide radio resource that is allocated to links between a base station (in 3GPP terminology an eNB (E-UTRA Network Node B)) and one or more user equipments. Typically radio resource to connect a user equipment to a base station is allocated from one carrier. As an enhancement, it is proposed to aggregate two or more carriers to provide yet more capacity, and more flexible allocation of radio resource. Carrier aggregation may also be employed by wireless systems other than LTE or WiMax.
4 PCT/KR2011/003115 [4] Methods and apparatus are required to assist handover in wireless systems employing carrier aggregation.
Solution to Problem
[5] In accordance with a first aspect of the present invention, there is provided a method of assisting handover of a user equipment from a source wireless access node to a target wireless access node, for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be aggregated for communication between the user equipment and the source wireless access node, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier, the method comprising:
[6] selecting, at the source wireless access node, a first carrier frequency to be configured as a primary component carrier for communication with the target wireless access node after handover; and
[7] selecting, at the target wireless access node, a second carrier frequency to be configured as a secondary component carrier for communication with the target wireless access node after handover.
[8] An advantage of selecting, at the target wireless access node, a second carrier frequency to be configured as a secondary component carrier for communication with the target wireless access node after handover is that is that the target wireless access node may have information relating to resource availability at candidate frequencies and/or cells.
[9]
[10]
[11] Preferably the method comprises selecting, at the source wireless access node, a cell for configuration as the primary component carrier for communication with the target wireless access node after handover. An advantage of selecting a cell for configuration as the primary component carrier at the source wireless node is that the role of the primary component carrier with regard to security key derivation is facilitated.
[12] Preferably, the method comprises:
[13] selecting, at the source wireless access node, a cell for configuration as the secondary component carrier for communication with the target wireless access node after handover. This has the advantage that loading of the cell may be taken into con-sideration in the selection.
[14] Preferably, the method comprises:
[15] providing measurement information from the source wireless access node to the target wireless access node relating to the selected cell.
[16] Preferably, the method comprises:
[17] providing measurement information from the source wireless access node to the target wireless access node relating to the carrier frequency configured as the selected secondary component carrier.
[18] Preferably, the measurement information comprises a list of items of information, each item relating to a combination of a cell and a carrier frequency, and the method comprises:
[19] determining a signal measurement parameter for each item of information;
[20] arranging the items in the list in order, the order being dependent on the signal mea-surement parameter of each item.
[21] Preferably, the method comprises:
[22] selecting, at the target wireless access node, a cell for communication with the target wireless access node for configuration as the secondary component carrier after handover.
[23] Preferably, the method comprises:
[24] providing measurement information from the source wireless access node to the target wireless access node relating to a cell or cells at the second carrier frequency.
[25] In accordance with a second aspect of the invention there is provided a method of reporting measurements from a user equipment for use in a wireless access network having a plurality of carrier frequencies, the method comprising:
[26] receiving a first message at the user equipment comprising an indicator, said indicator comprising an indication that a measurement report is required by the wireless access network;
[27] generating a trigger at the user equipment in dependence on a measurement result relating to a first carrier frequency; and
[28] dependent on the trigger and receiving the first message, sending a second message from the user equipment to the wireless access network conveying said measurement report,
[29] wherein said measurement report relates at least to a carrier frequency other than the first carrier frequency.
[30] In an embodiment of the invention, said indicator indicates that the measurement report is required to relate to at least a carrier frequency other than the first carrier frequency.
[31] This has an advantage that the user equipment may operate in a mode appropriate to carrier aggregation in response to receipt of said indicator.
[32] Preferably, said measurement report comprises measurements of carrier frequencies that the user equipment is configured to measure. This has an advantage that extra measurements may not be required to be taken.
[33] In an embodiment of the invention, said measurement report excludes one or more carrier frequency at which it has been determined that a best cell may not be identified.
[34] This has an advantage that said measurement report may exclude measurements that may not be required by some aspects of a handover process, since they may not be as-sociated with an indication of a best cell.
[35] Preferably the exclusion is based on whether signals are measured at least in a neighbouring cell. It may be necessary to measure signals in a neighbouring cell to a serving cell in order to determine a best cell.
[36] In an embodiment of the invention, said measurement report excludes one or more carrier frequencies for which signals are measured only from a serving cell.
Carrier fre-quencies for which signals are measured only from a serving cell may not be suitable for determining a best cell.
[37] In an embodiment of the invention, said measurement report comprises mea-surements of all carrier frequencies that the user equipment is configured to measure.
This has an advantage that a simple indicator may indicate that all carrier frequencies that the user equipment is configured to measure should be included in a measurement report, without a need to use signalling resources listing required carrier frequencies.
[38] In an embodiment of the invention, the method comprises determining at the user equipment a selected cell for each carrier frequency included in said measurement report, and including in the measurement report each selected cell.
[39] Preferably, each selected cell is a best cell for a respective carrier frequency. This has an advantage that a best cell may be indicated to the network, which may be useful in support of handover.
[40] In embodiments of the invention, the method comprises determining at the user equipment the selected cell for each carrier frequency on the basis of a measurement of a determined measurement quantity, wherein the determined measurement quantity is a received signal power if more than one measurement quantity is configured at the user equipment for a respective carrier frequency. This has an advantage that it is clear which measurement quantity (that is to say typically a measure of signal quality or signal strength) should be used to select a selected cell, which may be a best cell.
[41] In embodiments of the invention, the method further comprises determining at the user equipment a plurality of selected cells for a carrier frequency on a basis of mea-surements of the determined measurement quantity, wherein the plurality of selected cells are included in said measurement report in an order derived from measurements of the determined measurement quantity. This has an advantage that the order may indicate to the network the relative merit of the selected cells, for example the best cell may appear first on the list. This information may be useful for example for handover preparation.
[42] In embodiments of the invention, said indicator comprises an indication of carrier frequencies for which the user equipment is required to include measurements in said measurement report. This has an advantage that the network may determine the content of the measurement report according to its requikerements.
[43] In embodiments of the invention, said indicator comprises a number of cells, and the user equipment is required to include measurements in said measurement report relating to selected cells, the number of selected cells for a respective carrier frequency being the number of cells or fewer.
[44] In an embodiment of the invention, the first carrier frequency is not configured for use for communication between the user equipment and the wireless access network.
[45] In an embodiment of the invention, the method comprises configuring the user equipment such that said measurement report comprises measurements of a first quantity and not of a second quantity. This has an advantage that the user equipment may be configured to include only a quantity that is required in a measurement report, if multiple quantities are available.
[46] In an embodiment of the invention, the method comprises using an existing con-figuration of the user equipment to determine whether the measurement report comprises measurements of a first quantity or a second quantity. This has the advantage that signalling to indicate a quantity for inclusion in the measurement report may not be required.
[47] In an embodiment of the invention, said indicator indicates a measurement quantity that is required by the wireless access network and said measurement report conveyed from the user equipment to the wireless access network comprises a measurement of a first quantity and not a measurement of a second quantity related to the first carrier frequency. This has an advantage that the network may indicate to the user equipment that it should include only the quantity that is required by the network in the mea-surement report, if multiple quantities are available.
[48] In an embodiment of the invention, the first quantity relates to received signal power, and the second quantity relates to received signal quality.
[49] In an alternative embodiment of the invention, the first quantity relates to received signal quality, and the second quantity relates to received signal power.
[50] In an embodiment of the invention, the method further comprises receiving a message at the user equipment comprising an indication of a threshold and sending the second message in dependence on the measurement result exceeding the threshold.
[51] According to a third aspect of the invention there is provided user equipment for use in a wireless access network having a plurality of carrier frequencies, the user equipment being arranged to:
[52] receive a first message comprising an indicator, said indicator comprising an in-dication that a measurement report is required by the wireless access network;
[53] generate a trigger in dependence on a measurement result relating to a first carrier frequency; and
[54] dependent on the trigger and receiving the first message, send a second message to the wireless access network conveying the measurement report indicated by the indicator,
[55] wherein the measurement report indicated by the indicator relates at least to a carrier frequency other than the first carrier frequency.
[56] In accordance with a fourth aspect of the invention there is provided a method of assisting handover, for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells, in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be aggregated for communication, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier, the method comprising:
[57] configuring the user equipment before handover to perform a measurement linked to a first measurement identification, the measurement comparing a quantity at a first carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at a second carrier frequency at a neighbour frequency of the first carrier frequency; and
[58] dependent on handover and dependent the second frequency being configured as the primary or secondary component carrier after handover,
[59] re-configuring the user equipment to perform a measurement linked to the first mea-surement identification, the measurement comparing a quantity at the second carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at the first carrier frequency. This has an advantage that recon-figuration may be performed autonomously, minimising signalling requirements.
[60] Preferably, the method comprises re-configuring the user equipment to perform a measurement at a carrier frequency other than the first carrier frequency dependent on communication from the wireless access network.
[61] In accordance with a fifth aspect of the invention, there is provided user equipment for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells, in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be aggregated for communication, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier, the method comprising:
[62] configuring the user equipment before handover to perform a measurement linked to a first measurement identification, the measurement comparing a quantity at a first carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at a second carrier frequency at a neighbour frequency of the first carrier frequency; and
[63] dependent on handover and dependent the second frequency being configured as the primary or secondary component carrier after handover,
[64] re-configuring the user equipment to perform a measurement linked to the first mea-surement identification, the measurement comparing a quantity at the second carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at the first carrier frequency.
[65] Further features and advantages of the invention will be apparent form the following description of preferred embodiments of the invention, which are given by way of example only.
Advantageous Effects of Invention
[66] An advantage of selecting, at the target wireless access node, a second carrier frequency to be configured as a secondary component carrier for communication with the target wireless access node after handover is that is that the target wireless access node may have information relating to resource availability at candidate frequencies and/or cells.
Brief Description of Drawings
[67] Figure 1 is a schematic diagram illustrating a wireless access network featuring component carrier aggregation;
[68] Figure 2 is a schematic diagram illustrating signalling steps during handover;
[69] Figure 3 is a schematic diagram illustrating linking of a measurement object and a reporting configuration to a measurement identification;
[70] Figure 4 is a schematic diagram showing an example of a measurement con-figuration;
[71] Figure 5 is a schematic diagram showing an example of a measurement configuration after an autonomous update;
[72] Figure 6 is a schematic diagram showing an example of a measurement configuration as an embodiment of the invention;
[73] Figure 7 is a schematic diagram showing an example of a measurement configuration after an autonomous update as an embodiment of the invention;
[74] Figure 8 is a schematic diagram showing signalling in an embodiment of the invention;
[75] Figure 9 is a schematic diagram showing signalling in an embodiment of the invention;
[76] Figure 10 is a schematic diagram showing functional blocks of a user equipment; and
[77] Figure 11 is a schematic diagram showing functional blocks of a wireless access node.
Mode for the Invention
[78] By way of example an embodiment of the invention will now be described in the context of a wireless network including a radio access network supporting commu-nication using E-UTRA/LTE radio access technology, as associated with E-UTRA
networks. However, it will be understood that this is by way of example only and that other embodiments may involve wireless networks using other radio access tech-nologies, such as IEEE802.16 WiMax systems; embodiments are not limited to the use of a particular radio access technology.
[79] Initial deployments of LTE systems (in the LTE specifications in Release 8/9), the User Equipment (UE) is typically only connected to one cell, on one frequency, i.e. on one carrier. With the arrival of carrier aggregation, this situation changes, and the user equipment may be connected to one Primary Component Carrier (PCC) and one or more Secondary Component Carriers (SCCs). Suitable continuation of the different component carrier needs to be arranged at intra-LTE handover, that is to say from one LTE cell to another LTE cell. It is preferable to determine whether the Primary Component Carrier should be changed, and if so, which node will decide which component carrier becomes the new Primary Component Carrier, what will be done with the Secondary Component Carriers, that is to say should they be continued, released or replaced by other component carriers, and what will be done with the mea-surement configuration that is configured at the user equipment at such a carrier ag-gregation handover.
[80] Figure 1 shows a wireless access network 2 featuring component carrier aggregation.
Two wireless access nodes are shown, typically eNBs (EUTRAN node B) in the LTE
system, a source wireless access node 6a, from which the user equipment 4 may be handed over, and a target wireless access node 6b, to which the wireless access node may be handed over. The source eNB 6a has an associated coverage sector 8a, shown, and target eNB 6b has associated coverage sectors 8b and 8c shown. In each coverage sector, a frequency f 1, f2, or f3 may be available. A cell may correspond to a coverage sector used at a particular frequency.
[81] In order to explain the advantages of embodiments of the invention when applied to a system employing carrier aggregation, handover procedures will first be described for systems not employing carrier aggregation, such as for example LTE release 8/9 systems. Typically, in conventional systems, the network controls the mobility of a user equipment that is in connected mode (or, to be precise in RRC_CONNECTED

state) i.e. the network decides with which cell the user equipment should maintain the radio connection (also referred to as the serving cell). The network typically applies the handover procedure to move the user equipment from one cell, the serving cell, to another cell, the target cell. The network typically decides the cell and the radio Access Technology (RAT) to which the user equipment should connect typically based on radio quality, but it may also take into account other factors e.g. cell load, user equipment capabilities, the type of bearers that are (being) established. To assist the handover decision process, the network normally configures the user equipment to perform measurements on the serving frequency, on other E-UTRA frequencies (referred to as inter-frequency measurements) and/ or on frequencies used by other Radio Access Technologies (referred to as inter-RAT measurements).
[82] In LTE networks, there may be two types of handover from one LTE cell to another LTE cell (i.e. intra-LTE handovers). X2 handover is a
[83] high performance and simple procedure, but requires a direct interface between source and target eNB. Alternatively, Si handover may offer somewhat lower per-formance and may be more complex, but can be used even if no direct interface exists between source and target eNB (for example via a Si link).
[84] The X2 handover will now be described in more detail, for a system not employing carrier aggregation in order to illustrate shortcomings that may arise if carrier ag-gregation is introduced. Similar shortcomings may be present in the Si handover case and thus embodiments of the invention may be applicable to both the X2 and Si handover.
[85] The overall X2 handover procedure is described by reference to Figure 2, which il-lustrates Intra-MME/Serving Gateway Handover. Particularly relevant steps of the handover procedure are as follows.
[86] At Step 2, the user equipment sends a measurement report to the source eNB that it has detected a neighbouring cell that meets the measurement report triggering criteria.
Based on the provided measurement information and other knowledge present in the source eNB, the source eNB can now decide whether to start a handover preparation or not.
[87] At step 4, if the source eNB starts handover preparation, it will send a HANDOVER
REQUEST message, to the target eNB. This message carries the handover preparation information within the HandoverPreparationlnformation message and includes:
the user equipment radio access capabilities; the current radio access (i.e.
access stratum, AS) configuration; the Radio Resource Management (RRM) configuration, i.e. in-formation kept only by the eNB that is used primarily for Radio Resource Management. Usage of the information is up to eNB implementation; the Radio Access (AS) context i.e. information kept only by the eNB and not exchanged across the radio interface, e.g. information needed to perform RRC connection re-establishment; and the target cell identification.
[88] At Step 6, if the target eNB accepts the handover, it reserves the radio resources and decides the details of the radio access configuration to be used by the user equipment in the target cell. This configuration is returned to the source eNB within the HANDOVER REQUEST ACK message. This message carries the radio access con-figuration within the HandoverCommand message. The HandoverCommand message again carries an RRCConnectionReconfiguration message.
[89] When used to perform a handover within E-UTRA, this message may include the radio access configuration to be used in the target cell. That is to say the message may include the measurement configuration, expressed by the delta, that is to say a difference, compared to the configuraton used in the source cell (i.e. the target eNB in-dicating changes in the measurement configuration). The message may also comprise mobility control information, which may specify the target cell identity (by means of an cell identity) and characteristics (a frequency, a bandwidth and additional spectrum emission information, preferably if different from what is used in the source cell that is to say as a delta), the new radio access identity to be used in the target cell, the cell specific radio resource configuration (common for all user equipments), dedicated resources used for initial access in the target cell and a timer to limit the duration the user equipment tries connecting to the target cell.
[90] The message may also include the user equipment-specific radio resource con-figuration (i.e. the dedicated radio configuration), also expressed as a delta, that is to say a difference, compared to the configuration used in the source cell, and the security configuration i.e. the algorithms, if different from the ones used in the source cell, as well as parameters affecting the derivation of radio access security keys (i.e. an in-dication whether a new base key is to be used and a counter that is incremented upon every handover).
[91] At Step 7, when the source proceeds with the handover, it may start the execution phase, which may include the source eNB transparently forwarding a RRCConnection-Reconfiguration message to the user equipment, that is to say it does not change the message contents. The source may however perform the integrity protection and ciphering of the message. The user equipment may attempt to connect to the target cell (steps 9, 10) and return the RRCConnectionReconfigurationComplete message.
[92] An explanation of the conventional measurement configuration in LTE and the handover of this configuration at handover will be given with reference to Figure 3.
Conventionally, the LTE measurement model consists of 3 main components:
firstly, a measurement identity, which links a measurement reporting configuration to a mea-surement object; secondly a measurement object, which may specify a set of cells of a certain RAT type (e.g. all cells on an LTE frequency, a list of cells on a UMTS
frequency, a list of GSM cells/ frequencies, etc.); and thirdly, a measurement report configuration, which may indicate when the user equipment should trigger a mea-surement report as well as which information the user equipment should include in this report. A measurement report configuration may indicate that a report should be triggered in case a particular event occurs e.g. event A3: a neighbour cell becomes a certain offset better than the current serving cell, or it may indicate that periodical reporting is applicable, in which case the user equipment provides at regular intervals (up to a configurable number of times) a configurable number of cells in order of mea-surement result i.e. best cell first.
[931 Figure 4 shows an example of a conventional measurement configuration at the user equipment, which demonstrates that it is possible to link multiple report configurations to the same object, and to link one report configuration to multiple objects.
By smartly linking measurement objects and measurement report configurations multiple times, the signalling overhead can be minimised, e.g. by only defining a new measurement identity which links an existing measurement object to an existing report configuration, a new measurement is defined.
[941 One conventional mechanism that may limit measurement configuration-related signalling at handover may be denoted as "object swapping". With object swapping it is meant that if the frequency of the serving cell changes, i.e. the serving cell was previously part of objectl and after the handover the new serving cell is part of object2, then before taking the measurement configuration update received in the handover command into account, the user equipment autonomously re-links. In particular, the user equipment may re-link all measurement identities previously referring to the old serving frequency to the new serving frequency, and all mea-surement identities previously referring to the new serving frequency to the old serving frequency.
[951 The result of this process is shown in Figure 5, which illustrates the measurement model of Figure 2, but now after the autonomous update of the user equipment, assuming that before the handover the serving cell corresponds with measurement object 1 (fregl), while after the handover it corresponds with measurement object 2 (freq2). Note that with this object swapping, it is possible to continue (without explicit signalling) the most important measurements i.e. the measurements for intra-frequency mobility on the serving frequency at the new serving frequency.
[961 Having described the conventional handover process in relation to systems not employing carrier aggregation, embodiments of the invention will now be described relating to a system employing carrier aggregation. With carrier aggregation (CA) a user equipment may be configured with multiple carriers. A user equipment may be configured with intra-frequency measurements on each of these 'serving frequencies'.
In addition, the user equipment may be configured with inter-frequency measurements e.g. comparing a configured Component Carrier (CC)/ serving frequency with a non-configured component carrier/ neighbouring frequency.
[97] For example, a user equipment may be configured to use the following configuration:
frequency fl is used as primary component carrier, while frequency f2 is used as secondary component carrier. The user equipment performs intra-frequency mea-surements on both f 1 and f2, and the user equipment performs an inter-frequency mea-surement on f3, i.e. comparing the serving cell on fl with neighbouring cells on B.
[98] Embodiments of the invention may relate to carrier aggregation (CA) as follows. A
link to two objects may be needed to indicate both the serving frequency and the neighbouring frequency. Since there are also other ways to indicate the serving frequency, a dotted line is used in the Figure 6 that illustrates this particular con-figuration. Figure 6 shows an example of an LTE measurement configuration with CA
as an embodiment of the invention.
[99] Without carrier aggregation, the user equipment is typically only connected to one cell, on one frequency, i.e. on one carrier. With the arrival of carrier aggregation this changes i.e. the user equipment may be connected to one Primary Component Carrier (PCC) and one or more Secondary Component Carriers (SCC's).
[100] Embodiments of the invention may address the following issues: whether the primary component carrier should be changed, and if so, which node will determine which component carrier becomes the new primary component carrier; what will be done with the secondary component carrier's, i.e. should they be continued, released or replaced by other component carriers; and what will be done with the measurement configuration that is configured at the user equipment at such a CA-handover.
[101] A conventional, non-carrier aggregation handover sequence has several limitations in relation to systems employing carrier aggregation.
[102] Firstly, regarding user equipment measurement reporting, in any measurement report (step 2 of the handover sequence shown above) the user equipment may report only measurement results related to cells on one object/ frequency/ component carrier. This may not provide the network with information necessary for deciding how to handle other component carriers.
[103] Secondly, regarding determination of target cells and carriers used after handover, the source-eNB may decide on the target cell and may provide no further measurement information to the target eNB in steps 4 & 6 of the handover sequence shown in figure 6. With carrier aggregation, it is conventionally not defined who/ how the target cell(s) are determined, who/how the new primary component carrier is determined, and who/
how the additional secondary component carrier's are determined.

[104] Thirdly, regarding autonomous measurement configuration update by user equipment, "object swapping" may be specified for source and target frequencies in single-carrier operation.
[105] Embodiments of the inventions may address these indicated handover-related problems. In embodiments of the invention, swapping may take place in configurations with multiple carriers, while some might be continued, some might be added and some might be removed upon handover.
[106] Regarding user equipment measurement reporting, in embodiments of the invention, in addition to measurement results related to cells on the carrier that triggered the mea-surement report, also measurement results obtained on additional LTE carriers may be configured to be included in a measurement report.
[107] According to a first embodiment, EUTRAN may configure the user equipment by means of a single on/ off indicator within the reporting configuration of a measurement whether the user equipment may include all frequencies the user equipment is currently measuring. If set, the user equipment may include for each concerned frequency the best cell as well as the available measurement result for that cell. If multiple quantities are available for the concerned cell, the user equipment may simply include them all. If the user equipment is configured to perform multiple measurements for a particular frequency, with different trigger quantities, we still preferably need to define what quantity the user equipment uses to determine which cell is best. In the first em-bodiment the system employs a simple on/ off control to determine whether a mea-surement report should contain additional frequencies. The simplest would be to fix a measurement quantity (such as received signal power or received signal quality) in the configuration of the user equipment, for example by including a specification of the quantity in the equipment specification, for example for the case that different quantities are configured for the concerned frequency, the user equipment determines the best cell according to the Reference Signal Received Power (RSRP) quantity. It may also be specified that in such a case the user equipment reports the measurement result for the RSRP quantity only, that is to say the measurement quantity relates to received signal power, rather than for both quantities, the second quantity relating to received signal quality. According to the first embodiment, the user equipment may provide measurement information for all frequencies that the user equipment is currently measuring, so as to avoid the need for the user equipment to perform ad-ditional measurements, so that there is additional reporting, but may not be additional measurements performed. The additional measurement reporting may indicate the best cell(s) on each frequency that the user equipment has measured. If the user equipment performs a measurement on a frequency that does not allow the user equipment to determine the strongest cell on that frequency, the concerned frequency should, in an embodiment of the invention, not be part of the additional measurement reporting. This applies for example for measurements that only concern the serving cell, such as mea-surements known as an "event Al type".
[108] Measurements that allow the user equipment to determine the strongest cell on a frequency include the following, for example: firstly, measurements of type "A3", which may be used to determine if there are neighbouring cells on a particular frequency which measured quantity is an offset better than that of the source cell (i.e.
the configured cell) on the same frequency; secondly, measurements of type event "A4", which may be used to determine if there are neighbouring cells on a particular frequency for which the measured quantity is above a specified threshold configured for that component carrier; and thirdly, measurements of type event "A5", which may be used to determine if both the measured quantity of the serving cell (i.e.
the configured cell) on a particular frequency is below a first threshold while at the same time there is a neighbouring cell on the same frequency for which the measured quantity is above another threshold.
[109] A trigger may be generated at the user equipment in dependence on a measurement result relating to a carrier frequency that is measured by the user equipment.
Dependent on the trigger and receiving a message from the network comprising an indicator, a message containing a measurement report may be sent from the user equipment to the wireless access network. The measurement report may relate to at least to a carrier frequency other than the carrier frequency on which the trigger is based. That is to say, carrier frequencies used or potentially used for carrier ag-gregation may be included in the measurement report, but triggering of the report may be based on one of the carriers only in an embodiment of the invention.
[110] The indicator may indicate that the measurement report is required to relate to at least a carrier frequency other than the first carrier frequency, that is to say that the indicator may indicate that measurements relating to carrier aggregation may be required. The measurement report will typically comprise measurements of carrier frequencies that the user equipment is configured to measure, that is to say that typically the mea-surement report will make use of measurements that the user equipment is configured to measure before it received a request for a measurement report from the network.
The measurement report may exclude one or more carrier frequencies at which it has been determined that a best cell may not be identified, since it may be that the in-formation on such frequencies is not useful in support of handover. The exclusion may be based on whether signals are measured at least in a neighbouring cell, since if mea-surements are only performed on a serving cell it may not be possible to indentify a best cell. Accordingly, the measurement report may exclude one or more carrier fre-quencies for which signals are measured only from a serving cell.

[111] In some embodiments, the measurement report comprises measurements of all carrier frequencies that the user equipment is configured to measure, since this is a simple scheme to implement with a minimum of signalling. The user equipment may determine a selected cell, such as a best cell for each carrier frequency included in said measurement report. This information may be useful in support of handover. The selected cell for each carrier frequency may be determined on the basis of a mea-surement of a determined measurement quantity, typically received signal power or received signal quality. The quantity configured at the user equipment may be used, but if more than one measurement quantity is configured at the user equipment for a respective carrier frequency, then a quantity based on received signal power may be used as a default. This may be pre-set into the user equipment.
[112] Several selected cells for a carrier frequency may be determined on a basis of mea-surements of the determined measurement quantity, and the selected cells may be included in the measurement report in an order derived from measurements of the de-termined measurement quantity, for example, the best cells may be included first. This information may be useful in supporting handover.
[113] In embodiments of the invention, the indicator may comprise an indication of carrier frequencies for which the user equipment is required to include measurements in the measurement report.
[114] The indicator may include an indication of a number of selected cells to be included in the measurement report, the number of selected cells for a respective carrier frequency being the number of cells or fewer. That is to say, for example, the mea-surement report may be required to include up to some number of best cells per carrier frequency.
[115] A measured carrier frequency is not necessarily configured for use for commu-nication between the user equipment and the wireless access network. For example, a carrier frequency may be a candidate for future use for communication.
[116] The user equipment may be configured such that said measurement report comprises measurements of a first quantity and not of a second quantity, that is to say mea-surements may be for example of received power, or received signal quality.
This may be based on using an existing configuration of the user equipment to determine whether the measurement report comprises measurements of a first quantity or a second quantity. Alternatively, the indicator may indicates a measurement quantity that is required by the wireless access network.
[117] The user equipment may receive a message comprising an indication of a threshold and send a message including the measurement report in dependence on the mea-surement result exceeding the threshold.
[118] According to a second embodiment, when EUTRAN configures the user equipment, by means of an indicator in a message sent to the user equipment, to perform additional measurement reporting, the user equipment provides measurement information of the best cell(s) of each frequency on which the user equipment is configured to perform a measurement allowing the user equipment to determine the strongest cell of the frequency.
[119] In embodiments of the invention, some more enhanced control options may im-plemented, for example as follows. In each case, an indicator may be received at the user equipment indicating the measurement configuration required at the user equipment.
[120] According to a third embodiment, EUTRAN may configure which of the frequencies that the user equipment is configured to measure, should be included in a measurement report, that is to say which frequencies may provide the requested additional mea-surement information.
[121] According to a fourth embodiment, EUTRAN may configure a number N, in which case the user equipment may, if for a frequency measured results are available for multiple cells, only provide the additional measurement information for the N
best cells.
[122] According to a fifth embodiment, EUTRAN may configure a quantity, in which case the user equipment may, if multiple quantities are available, only provide the concerned quantity as part of the additional measurement information.
[123] According to a sixth embodiment, EUTRAN may configure a threshold, in which case the user equipment may only provide the additional measurement information for cells which measured result exceeds the threshold.
[124] It should be noted that the 'additional measurement reporting' may be useful in cases and scenarios other than intra-LTE handover.
[125] Considering determination of carriers used after handover, in systems not employing carrier aggregation, the target cell frequency and "L1" identity are typically inputs to the security key that the source eNB prepares for the target eNB. Since the source eNB
selects the target cell and thus knows the identity (specifically the "L1"
identity) and frequency of the target cell, this information is freely available to the source cell. In addition this information is also available to the user equipment after handover, so the user equipment can perform the same security derivation.
[126] In order to enable a similar derivation in systems employing carrier aggregation, it is preferable that the source eNB may be aware of at least one cell that is configured after handover so that it can use the L1 identity and frequency of that cell as input for the security key derivation. The user equipment should preferably also be aware of the selected cell so that it can use the same inputs for the security key derivation. It may not be preferable to use a L1 identity/frequency from a cell not configured after handover since this may enable a malicious source eNB to manipulate the key derivation for keys used in a target eNB.
[127] Handover is preferably triggered by the fact that the user equipment reports a better cell than currently configured which makes the source eNB decide that a handover needs to be performed. In systems not employing carrier aggregation, the eNB
may initiate handover based on a single measurement, reflecting that a neighbouring cell becomes better than the serving cell on one of the frequencies/ component carriers configured for the user equipment, i.e. the eNB may use one frequency/
component carrier as reference for handover. Furthermore, the eNB may configure the solutions listed in the previous discussion for problem 1, to obtain additional information regarding all frequencies/ component carriers. Thus, based on the user equipment mea-surement report(s), the source eNB should be in a good position to determine a sensible primary carrier after handover, i.e. continue on the current primary component carrier or change to another one.
[128] According to an embodiment of the invention, the source eNB may decide what the primary component carrier will be after handover and which cell will be used on that primary component carrier. The source eNB indicates the target cell and selected primary component carrier to the target eNB as part of the handover preparation.
[129] The source eNB might not have a complete overview of the resource situation and load of the potential handover target cells/ frequencies. It may not be beneficial for the source eNB to determine which carriers are to be configured as secondary component carrier's after handover.
[130] According to an embodiment of the invention, the target eNB may decide which fre-quencies to configure as secondary component carrier after handover.
[131] According to an embodiment of the invention, the source eNB may pass the mea-surement information obtained from the user equipment (as for example in the first to sixth embodiments described above) to the target eNB during handover preparation.
[132] With respect to which cell to select on the secondary component carriers, em-bodiments may employ at least two options: firstly, the source may select the target cell based on the measurement information reported by the user equipment; and secondly, the target may select the target cell, using measurement information forwarded by the source eNB.
[133] The first option may imply that the source eNB only needs to provide measurement information regarding the target cell, while the second option may imply that the source eNB needs to provide measurement information of multiple cells on the concerned frequencies. The latter also affects the measurement reporting by the user equipment, i.e. the user equipment may also need to report on multiple cells to ac-commodate the second option. Accordingly, the second option may involve additional signalling and additional complexity, but makes it possible to take, for example, cell load into account when deciding which cell to use. The first and second options may be embodied as follows.
[134] According to an embodiment of the invention, the source eNB selects the target cell also on frequencies that are measured by the user equipment other than the one that is assigned the role of primary component carrier. That is to say, for frequencies that are not allocated the role of primary component carrier, the source eNB may select the target cell.
[135] In this case the source eNB preferably only provides measurement information for the target cells on each frequency to assist the target to decide which frequencies to configure as secondary component carrier. The source may either forward the measured results provided by the user equipment, or provide the measurement in-formation implicitly i.e. by means of the order of the targets (frequency, cell com-binations) included in the handover preparation information e.g. best target first.
[136] In an embodiment of the invention, the source eNB may only provide measurement information, as obtained from the user equipment, for the selected target cell.
According to a second option, the target eNB may select the target cell on the fre-quencies that are measured by the user equipment other than the one that is assigned the role of primary component carrier, that is to say The source eNB may provide mea-surement information, as obtained from the user equipment, for one or more potential target cells on the concerned frequencies.
[137] According to the first or second options, the eNB may provide the measurement in-formation implicitly i.e. by ordering entries in the list of potential targets. In case of option b, the order would involve two levels i.e. first at the level of frequencies and next at the level of cells on a frequency.
[138] According to an embodiment of the invention, the source eNB may provide the mea-surement information implicitly i.e. by means of the order of the listed targets (frequency, cell combinations) included in the handover preparation information e.g.
the best target appears first in the list.
[139] It should be noted that the first and second options may be used alongside one another i.e. the source may select cells on some frequencies while the target select cells on other frequencies e.g. the ones on which no measurement information was provided by the user equipment.
[140] Regarding autonomous measurement configuration update by user equipment, the primary component carrier may be the most important component carrier for mobility management. This can be seen in view of an assumption that typically only when the radio connection on the primary component carrier is lost, the user equipment will perform a re-establishment. When the same happens for other component carriers (secondary component carriers), no drastic actions may be taken because commu-nication on the primary component carrier can still continue. To prevent loosing the connection on the primary component carrier, preferably the intra-frequency mea-surements on the primary component carrier, if configured, are continued immediately after the handover. In view of this, according to an embodiment of the invention, the user equipment and the target eNB preferably perform autonomous object swapping upon handover and re-establishment when multiple carriers are configured.
[1411 According to an embodiment of the invention, for intra-frequency measurements, upon handover and re-establishment, the UE and the target eNB preferably au-tonomously re-link any measurement identity linked to the measurement object corre-sponding with the primary component carrier before handover (i.e. "old primary component carrier"), to the measurement object corresponding with the primary component carrier after handover (i.e. "new primary component carrier").
[1421 As a variant of the above embodiment of the invention, for intra-frequency mea-surements, upon handover and re-establishment, the UE and the target eNB
preferably autonomously re-link any measurement identity linked to the object corresponding with the new primary component carrier, to the measurement object corresponding with the old primary component carrier.
[1431 For the inter-frequency measurements, object swapping may be performed in em-bodiments of the invention, that is to say for inter-frequency measurements on any component carrier for which the neighbour frequency becomes serving frequency object swapping is preferably performed i.e. the measurement is re-linked to the previous serving frequency. Preferably, the object swapping may be applied if the concerned frequencies are swapped, that is to say there was a measurement comparing a serving/ configured component carrier ('old serving') with a not-configured component carrier, the `old serving' becomes a not configured component carrier, and the old not-configured component carrier becomes a serving/ configured component carrier.
[1441 The combined embodiments can be illustrated by the example illustrated in Figure 6, for which the following typically applies.
[1451 Before handover, the user equipment is preferably configured to use the following configuration: frequency f 1 is used as primary component carrier, while frequency f2 is used as secondary component carrier; and the user equipment performs intra-frequency measurements on both f l and f2; and the user equipment performs an inter-frequency measurement on f3, i.e. comparing the serving on fl with f3.
[1461 A handover is performed, preferably resulting in the following configuration:
frequency f3 is used as primary component carrier, while frequency f2 remains configured as secondary component carrier; the user equipment performs intra-frequency measurements on both f2 and f3; and the user equipment performs an inter-frequency measurement on f 1, i.e. comparing the serving on f3 with neighbours on f 1.
[147] In this case, object swapping may be performed as follows: the intra-frequency mea-surement on f 1 (old primary component carrier) is re-linked to f3 (new primary component carrier), according to embodiments 3.2 and 3.3; and the inter-frequency measurements comparing the serving on f 1 with neighbours on f3 is re-linked so it compares the serving on f3 with neighbours on f 1.
[148] Figure 7 shows Example LTE measurement configuration with CA, after object swapping.
[149] It may be advantageous to limit further autonomous updating performed by the user equipment, i.e. there may be no need to specify re-linking related to other secondary component carriers or other carriers, that is to say the user equipment and the target eNB preferably do not perform autonomously re-linking other than covered by the previous embodiments. EUTRAN preferably applies explicit signalling to perform any reconfigurations for these frequencies/ carriers.
[150] Figure 8 provides an overview of an embodiment of a message exchange upon mea-surement configuration and the subsequent measurement reporting. It should be noted that this is for the purposes of illustration and other embodiments are possible, so that embodiments are not limited to the specific messages illustrated by figure 8.
[151] Referring to Figure 8, the source eNB preferably configures the user equipment to perform measurement reporting by sending the RRCConnectionReconfiguration message including the field measConfig, at step 1.
[152] Embodiments of the invention include part of an entry of the reportConfigToAd-dModList, as follows.
[153] Firtly, reportAdditionalFreqlnfo: this has a field indicating whether or not the user equipment may provide the additional measurement information of all frequencies the user equipment is configured to measure, as in the first or second embodiment, or a field indicate for which of the frequencies the user equipment is configured to measure, the user equipment may provide the additional measurement information, as in the third embodiment.
[154] Secondly, reportAdditionalMaxCells: if included the user equipment may report the N best cells, with the limit N indicated by this field. If not included, the user equipment may report the best cell only.
[155] Thirdly, reportAdditionalQuant: if included and if the user equipment has mea-surement results available for more than one quantity, the user equipment may only report the results for the quantity indicated by this field.
[156] Fourthly, reportAdditionalThresh: if included, the user equipment may only provide additional measurement information for cells of which the measured result exceeds the threshold indicated by this field.
[157] At step 2 of figure 8, when the triggering condition for a measurement for which ad-ditional measurement reporting is configured is met, the user equipment may send a MeasurementReport message including the additional information. Fields of the mea-surement report may include additionalMeaslnfo: the user equipment may includes measurement results for a list of frequencies, with the best frequency listed first, and for each frequency, the user equipment may include measurement results for a list of one or more cells, with the best frequency listed first. For each cell, the user equipment may include either nothing (i.e. when no measurement information is needed other than the order), or the available measured results for one or more quantities.
[158] Figure 9 provides an overview of the messages exchange upon handover in an em-bodiment of the invention. It should be noted that the messages shown are for il-lustrative purposes and embodiments of the invention are not limited to the use of the messages shown.
[159] The source eNB preferably initiates the handover procedure, at step 1, by sending the HANDOVER REQUEST message to the target eNB. The message preferably includes the HandoverPreparationlnformation message, which is extended in REL-10 to support continued use of multiple component carriers for user equipments configured with CA.
[160] The source eNB preferably decides which frequency to configure as primary component carrier as well as the target cell on this frequency.
[161] For other frequencies, the source eNB preferably either indicates the target cell or provides measurement information for the best cells on the frequency. The mea-surement results are provided per frequency, with the best frequency (i.e.
ranked according to the best cell on the frequency) listed first.
[162] The field of the first step of figure 9 "pcc-Info" preferably indicates which frequency is used as primary component carrier as well as the target cell on this frequency. This indication may be provided by existing field e.g. the Target cell ID (ECGI) as used in EUTRAN signalling;
[163] The field "otherCC-Info" may, according to the first option as referred to above, include the target cell, that is to say it provides for a number of frequencies.
Specifically, it may provide the target cell identity, and may provide measurement in-formation for the target cell, which could be implicitly i.e. by means of the order in which the frequencies are listed i.e. best target first.
[164] Alternatively, according to option 2 as described above, the field "otherCC-info"
may not include the target cell. It may provide for a number of frequencies.
The field may provide measurement information for one or more potential target cells, which could be implicitly i.e. by means of the order in which the frequencies are listed i.e.
best target first.

[165] Upon receiving the HANDOVER REQUEST message the target eNB preferably performs admission control, reserves resources in the target cell and prepares the RRC-ConnectionReconfiguration message. The target eNB includes the RRCConnectionRe-configuration message in the HANDOVER REQUEST ACK message, which it returns to the source eNB at step 2 of figure 9.
[166] According to embodiments of the invention, the target eNB configures the frequency (and the corresponding cell) indicated by the source as primary component carrier. The target eNB decides which frequencies to configure as secondary component carrier, taking into account the information provided by the source eNB.
[167] The target eNB may prepare a RRCConnectionReconfiguration message accordingly and forwards this to the source eNB which forwards it to the user equipment.
Upon receiving an RRCConnectionReconfiguration message the user equipment may initiate handover towards the indicated target cell on the primary component carrier as well as on secondary component carrier(s). As part of this procedure, the user equipment may perform a reconfiguration in accordance with the fields included by the target eNB in the RRCConnectionReconfiguration message. Preferably, the handover is considered successful if the user equipment successfully completes the random access procedure on the primary component carrier.
[168] Upon successfully establishing the connection with the target cell the user equipment preferably sends the RRCConnectionReconfigurationComplete message.
[169] Figure 10 shows a high level model of a user equipment. The following briefly describes the operation of functional blocks according to embodiments of the invention. General control may handle the layer 3 protocol i.e. receiving, processing as well as preparation and sending of Radio Resource Control (RRC) messages. The mea-surement unit may perform the measurements that are configured by EUTRAN. The security unit may perform the integrity protection for Signalling Radio Bearers (SRBs), the ciphering for all Radio Bearers (RBs) as well as the associated key derivations. The radio access unit may handle the layer 1 and 2 of the radio access protocols.
[170] Specifically, the functional blocks may operate as follows in embodiments of the invention. The general control unit may handle the reception of the new fields within the reportConfigToAddModList and may configure the Measurement unit to report ad-ditional measurement information. The measurement unit may be affected in terms of information reported towards the general control unit. In the case that additional mea-surement reporting is configured, the measurement unit may include measurement in-formation regarding additional frequencies in a report provided to the general control unit.
[171] Figure 11 shows a high level model of a eNB. The following briefly describes at least which functional blocks may be affected by embodiments of this invention: the user equipment control may handle the layer 3 radio access protocol i.e. receiving, processing as well as preparation and sending of Radio Resource Control (RRC) messages; the Network interface control may handle the similar functions for network interfaces; the measurement control may handle the configuration of the measurements functions in the user equipment and the eNB; the security control may handle the con-figuration of the security functions of the radio access i.e. integrity protection and the ciphering; and the radio resource control may handle the configuration of layer 1 and 2 of the radio access protocols.
[1721 Embodiments of the invention may affect a number of functional blocks of an eNB
as follows. The user equipment control unit may handle the sending of the new fields within the reportConfigToAddModList as well as the reception of the additional mea-surement information within a MeasurementReport message, as well as the associated interactions with the measurement control unit and the mobility control unit.
The network interface control may handle the sending of the new fields within the Han-doverPreparationlnformation message (source side) as well as the reception of these fields (target side), as well as the associated interactions with the Mobility control unit (e.g. target side: deciding which secondary component carriers to configure) and the measurement control unit (e.g. target side: object swapping). Regarding the mobility control unit, the source side may decide the primary component carrier and selects the target cell on the concerned frequency. Furthermore, the source provides additional in-formation regarding other component carriers (target cell, measurement information, possibly implicit). The target side decides which frequencies to configure as secondary component carrier (and possibly which cells to use on these frequencies). The target side also verifies the successful completion of the handover (primary component carrier is established successfully). Regarding the measurement control unit, the source side may decide when to configure the user equipment to provide additional mea-surement information. Furthermore, the target eNB performs the swapping of the mea-surement configuration.
[1731 Embodiments of the invention may relate to handover, as shown in the message sequence diagram of figure 9, but embodiments of the invention may also apply upon connection re-establishment. The handover preparation preceding connection re-establishment is similar to that for a handover. That is to say, the information provided from source to target with respect to primary component carrier and secondary component carrier is the same. The user equipment may initiate the re-establishment on any cell under the same target eNB i.e. including cells on a frequency that is not selected as primary component carrier by the source eNB. However, it may however be assumed that, like upon connection establishment, the target re-establishes radio communication on a single frequency only. The concerned frequency can be regarded as a primary component carrier. In this case, measurement and radio resource config-urations for other component carriers are temporarily suspended, and all related con-figuration parts remain kept and used as basis for the delta in the first subsequent re-configuration message. Similar measurement object swapping to that performed upon handover is also performed upon re-establishment. This also results in an updated mea-surement configuration for 'suspended' component carriers.
[174] Embodiments of the invention may have one or more of the following advantages.
Firstly, the option to make the user equipment include measurement information of other frequencies than the one that triggered the report introduces a general means for supporting a large variety of mobility scenario's without introducing any specifics e.g.
different triggering criteria optimized for specific deployment cases. The additional measurement reporting makes it possible to continue the use of multiple/ the most suitable component carriers immediately following a handover. Enhanced controls can be introduced to further tune/ optimize the information provided by the user equipment e.g. indication of the frequencies, the number of cells, the reporting quantity, a minimum threshold.
[175] Secondly, a mechanism may be specified that preserves the existing handover and security principles. Regarding the primary component carrier as the primary frequency/
cell (corresponding with a particular network node and defining the inputs used for security key derivation), that is to be decided by the source while the secondary component carrier is regarded as an additional radio resource and hence decided by the target eNB. Different signaling options are covered e.g. implicitly signaling the mea-surement information by the order within the list.
[176] Thirdly, embodiments of the invention may specify a mechanism covers Carrier Ag-gregation. The main aspect is that the intra-frequency measurements on the primary component carrier are continued, i.e. these measurements are regarded as most important since the concerned frequency plays an essential role in the communication.
For all component carriers a similar object swapping may be proposed as for non-carrier aggregation systems. This is less important for maintaining the radio connection, but may help to reduce the signalling overhead.
[177] In embodiments of the invention, the source eNB 6a may select the target cell on each frequency and decide which frequency becomes Primary Component Carrier.
The target eNB 6b may decide which frequencies to configure as Secondary Component Carrier. The source eNB 6a may provide measurement information for multiple fre-quencies to the target eNB 6b, which the target eNB 6b can use this when deciding which frequencies to configure as Secondary Component Carrier. The network, that is to say EUTRAN, may configure the user equipment 4 to include measurement results of measured frequencies other than the one that triggered the sending of the report, that is to say additional frequency results. The user equipment 4 and target eNB 6b may change the measurement configuration with respect to the linking of measurement objects, to facilitate continuation of measurements on the frequency assigned as primary component carrier with minimal signalling i.e. the user equipment may swap the objects of the previous and new primary component carrier, while the linking of other objects is unchanged (i.e. EUTRAN uses explicit signalling). The above enables EUTRAN to configure the UE with a suitable set of primary component carrier and secondary component carriers, which are applicable immediately after the handover.
[178] The above embodiments are to be understood as illustrative examples of the invention. It is to be understood that any feature described in relation to any one em-bodiment may be used alone, or in combination with other features described, and may also be used in combination with one or more features of any other of the em-bodiments, or any combination of any other of the embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the invention, which is defined in the accompanying claims.

Claims (33)

  1. [Claim 1] A method of assisting handover of a user equipment from a source wireless access node to a target wireless access node, for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be aggregated for communication between the user equipment and the source wireless access node, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier, the method comprising:
    selecting, at the source wireless access node, a first carrier frequency to be configured as a primary component carrier for communication with the target wireless access node after handover; and selecting, at the target wireless access node, a second carrier frequency to be configured as a secondary component carrier for communication with the target wireless access node after handover.
  2. [Claim 2] A method according to claim 1, the method comprising:
    selecting, at the source wireless access node, a cell for configuration as the primary component carrier for communication with the target wireless access node after handover.
  3. [Claim 3] A method according to claim 1 or claim 2, the method comprising:
    selecting, at the source wireless access node, a cell for configuration as the secondary component carrier for communication with the target wireless access node after handover.
  4. [Claim 4] A method according to claim 3, the method comprising:
    providing measurement information from the source wireless access node to the target wireless access node relating to the selected cell.
  5. [Claim 5] A method according to any one of claim 1 to claim 4, the method comprising:
    providing measurement information from the source wireless access node to the target wireless access node relating to the carrier frequency configured as the selected secondary component carrier.
  6. [Claim 6] A method according to claim 4 or claim 5, wherein the measurement information comprises a list of items of information, each item relating to a combination of a cell and a carrier frequency, and the method comprises:
    determining a signal measurement parameter for each item of in-formation;
    arranging the items in the list in order, the order being dependent on the signal measurement parameter of each item.
  7. [Claim 7] A method according to claim 1, the method comprising:
    selecting, at the target wireless access node, a cell for communication with the target wireless access node for configuration as the secondary component carrier after handover.
  8. [Claim 8] A method according to claim 7, the method comprising:
    providing measurement information from the source wireless access node to the target wireless access node relating to a cell or cells at the second carrier frequency.
  9. [Claim 9] A method of reporting measurements from a user equipment for use in a wireless access network having a plurality of carrier frequencies, the method comprising:
    receiving a first message at the user equipment comprising an indicator, said indicator comprising an indication that a measurement report is required by the wireless access network;
    generating a trigger at the user equipment in dependence on a mea-surement result relating to a first carrier frequency; and dependent on the trigger and receiving the first message, sending a second message from the user equipment to the wireless access network conveying said measurement report, wherein said measurement report relates at least to a carrier frequency other than the first carrier frequency.
  10. [Claim 10] A method according to claim 9, wherein said indicator indicates that the measurement report is required to relate to at least a carrier frequency other than the first carrier frequency.
  11. [Claim 11] A method according to claim 9 or claim 10, wherein said measurement report comprises measurements of carrier frequencies that the user equipment is configured to measure.
  12. [Claim 12] A method according to any one of claim 9 to claim 11, wherein said measurement report excludes one or more carrier frequency at which it has been determined that a best cell may not be identified.
  13. [Claim 13] A method according to any one of claim 9 to claim 11, wherein said measurement report excludes one or more carrier frequency at which it has been determined that a best cell may not be identified.
  14. [Claim 14] A method according to claim 12 or claim 13, wherein the exclusion is based on whether signals are measured at least in a neighbouring cell.
  15. [Claim 15] A method according to any one of claim 12 to claim 14, wherein said measurement report excludes one or more carrier frequencies for which signals are measured only from a serving cell.
  16. [Claim 16] A method according to any one of claim 9 to claim 11, wherein said measurement report comprises measurements of all carrier frequencies that the user equipment is configured to measure.
  17. [Claim 17] A method according to any one of claim 9 to claim 16, the method comprising:
    determining at the user equipment a selected cell for each carrier frequency included in said measurement report; and including in the measurement report each selected cell.
  18. [Claim 18] A method according to claim 17 wherein each selected cell is a best cell for a respective carrier frequency.
  19. [Claim 19] A method according to claim 17 or claim 18, the method comprising:
    determining at the user equipment the selected cell for each carrier frequency on the basis of a measurement of a determined measurement quantity, wherein the determined measurement quantity is a received signal power if more than one measurement quantity is configured at the user equipment for a respective carrier frequency.
  20. [Claim 20] A method according to claim 19, the method further comprising:
    determining at the user equipment a plurality of selected cells for a carrier frequency on a basis of measurements of the determined mea-surement quantity, wherein the plurality of selected cells are included in said measurement report in an order derived from measurements of the determined mea-surement quantity.
  21. [Claim 21] A method according to any one of claim 9 to claim 20, wherein said indicator comprises an indication of carrier frequencies for which the user equipment is required to include measurements in said mea-surement report.
  22. [Claim 22] A method according to any one of claim 9 to claim 21, wherein said indicator comprises a number of cells, and the user equipment is required to include measurements in said measurement report relating to selected cells, the number of selected cells for a respective carrier frequency being the number of cells or fewer.
  23. [Claim 23] A method according to any one of claim 9 to claim 22, wherein the first carrier frequency is not configured for use for communication between the user equipment and the wireless access network.
  24. [Claim 24] A method according to any one of claim 9 to claim 23, the method comprising configuring the user equipment such that said measurement report comprises measurements of a first quantity and not of a second quantity.
  25. [Claim 25] A method according to any one of claim 9 to claim 23, the method comprising using an existing configuration of the user equipment to determine whether the measurement report comprises measurements of a first quantity or a second quantity.
  26. [Claim 26] A method according to any of claims 9 to claim 23, wherein:
    said indicator indicates a measurement quantity that is required by the wireless access network; and said measurement report conveyed from the user equipment to the wireless access network comprises a measurement of a first quantity and not a measurement of a second quantity related to the first carrier frequency.
  27. [Claim 27] A method according to any one of claim 24 to claim 26, wherein the first quantity relates to received signal power, and the second quantity relates to received signal quality.
  28. [Claim 28] A method according to claim 24 or claim 26, wherein the first quantity relates to received signal quality, and the second quantity relates to received signal power.
  29. [Claim 29] A method according to any one of claim 9 to claim 28, wherein the method further comprises:
    receiving a message at the user equipment comprising an indication of a threshold;
    sending the second message in dependence on the measurement result exceeding the threshold.
  30. [Claim 30] User equipment for use in a wireless access network having a plurality of carrier frequencies, the user equipment being arranged to:
    receive a first message comprising an indicator, said indicator comprising an indication that a measurement report is required by the wireless access network;
    generate a trigger in dependence on a measurement result relating to a first carrier frequency; and dependent on the trigger and receiving the first message, send a second message to the wireless access network conveying the measurement report indicated by the indicator, wherein the measurement report indicated by the indicator relates at least to a carrier frequency other than the first carrier frequency.
  31. [Claim 31] A method of assisting handover, for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells, in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be ag-gregated for communication, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier, the method comprising:
    configuring the user equipment before handover to perform a mea-surement linked to a first measurement identification, the measurement comparing a quantity at a first carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at a second carrier frequency at a neighbour frequency of the first carrier frequency; and dependent on handover and dependent the second frequency being configured as the primary or secondary component carrier after handover, re-configuring the user equipment to perform a measurement linked to the first measurement identification, the measurement comparing a quantity at the second carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at the first carrier frequency.
  32. [Claim 32] A method according to claim 31, the method comprising re-configuring the user equipment to perform a measurement at a carrier frequency other than the first carrier frequency dependent on communication from the wireless access network.
  33. [Claim 33] User equipment for use in a wireless access network having a plurality of carrier frequencies and a plurality of cells, in which a cell and a carrier frequency may be configured as a component carrier, and in which at least two component carriers may be aggregated for commu-nication, the aggregated component carriers comprising a primary component carrier and at least one secondary component carrier, the method comprising:
    configuring the user equipment before handover to perform a mea-surement linked to a first measurement identification, the measurement comparing a quantity at a first carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at a second carrier frequency at a neighbour frequency of the first carrier frequency; and dependent on handover and dependent the second frequency being configured as the primary or secondary component carrier after handover, re-configuring the user equipment to perform a measurement linked to the first measurement identification, the measurement comparing a quantity at the second carrier frequency configured as the primary component carrier or the secondary component carrier with a quantity at the first carrier frequency.
CA2798930A 2010-05-11 2011-04-27 Handover with carrier aggregation Active CA2798930C (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
GB1007869.9 2010-05-11
GB1007869.9A GB2479601B (en) 2010-04-12 2010-05-11 Handover with carrier aggregation
PCT/KR2011/003115 WO2011142544A2 (en) 2010-05-11 2011-04-27 Handover with carrier aggregation

Publications (2)

Publication Number Publication Date
CA2798930A1 true CA2798930A1 (en) 2011-11-17
CA2798930C CA2798930C (en) 2020-01-21

Family

ID=44924757

Family Applications (1)

Application Number Title Priority Date Filing Date
CA2798930A Active CA2798930C (en) 2010-05-11 2011-04-27 Handover with carrier aggregation

Country Status (8)

Country Link
EP (1) EP2569979A4 (en)
JP (1) JP2013526794A (en)
KR (1) KR101783289B1 (en)
CN (1) CN102948214B (en)
AU (1) AU2011251152B2 (en)
CA (1) CA2798930C (en)
RU (1) RU2576385C2 (en)
WO (1) WO2011142544A2 (en)

Families Citing this family (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2479534B (en) 2010-04-12 2014-11-12 Samsung Electronics Co Ltd Handover with carrier aggregation
WO2014015474A1 (en) * 2012-07-24 2014-01-30 Empire Technology Development Llc Cell switching strategy for an lte-advanced system based on carrier aggregation technology
CN102917396B (en) * 2012-09-17 2016-01-20 电信科学技术研究院 A kind of measurement report method based on carrier aggregation system and equipment
US9516512B2 (en) * 2012-09-25 2016-12-06 Lg Electronics Inc. Method and apparatus for supporting a control plane and a user plane in a wireless communication system
CN103338518B (en) * 2012-12-31 2016-12-28 上海华为技术有限公司 A kind of send the method for RRC signaling, base station and system
WO2015037926A1 (en) * 2013-09-11 2015-03-19 Samsung Electronics Co., Ltd. Method and system to enable secure communication for inter-enb transmission
US9386460B2 (en) * 2013-12-02 2016-07-05 Apple Inc. Systems and methods for carrier aggregation deployment and organization in unlicensed bands
US9603074B2 (en) * 2013-12-16 2017-03-21 Apple Inc. Systems and methods for carrier channel selection in carrier aggregation enabled networks
KR102170402B1 (en) 2014-01-29 2020-10-27 삼성전자 주식회사 Method and apparatus for performing a handover in wireless communication system supporting a dual connectivity
CN105991255B (en) * 2015-01-28 2019-04-23 中国移动通信集团广东有限公司 A kind of configuration method and device of carrier wave polymerization
US10484979B2 (en) * 2015-02-27 2019-11-19 Qualcomm Incorporated Fast enhanced component carrier activation
WO2017148535A1 (en) * 2016-03-04 2017-09-08 Telefonaktiebolaget Lm Ericsson (Publ) Inter-frequency load balancing
CN109792307B (en) * 2016-10-28 2021-02-26 华为技术有限公司 Switching from one OFDM mode to another OFDM mode
CN108243450B (en) * 2016-12-27 2021-07-16 中国移动通信集团浙江有限公司 Network switching method and device
CA3080152A1 (en) * 2019-05-02 2020-11-02 Comcast Cable Communications, Llc Wireless resource configuration for simultaneous connectivity
CN112203331B (en) * 2019-07-08 2021-11-16 大唐移动通信设备有限公司 Cell switching method and device
CN114073033A (en) * 2019-07-10 2022-02-18 诺基亚通信公司 Method and apparatus for carrier aggregation optimization
US12052626B2 (en) 2021-12-23 2024-07-30 T-Mobile Usa, Inc. Steering non-mobile connected-mode user equipment to higher capacity radio cells

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE60235844D1 (en) * 2002-09-10 2010-05-12 Spyder Navigations Llc MEASUREMENTS IN COMMUNICATION SYSTEMS
US7212821B2 (en) * 2003-12-05 2007-05-01 Qualcomm Incorporated Methods and apparatus for performing handoffs in a multi-carrier wireless communications system
US7453912B2 (en) * 2004-04-15 2008-11-18 Qualcomm Incorporated Methods and apparatus for selecting between multiple carriers based on signal energy measurements
KR100696401B1 (en) * 2004-11-29 2007-03-19 연세대학교 산학협력단 Method and system for subcarrier separated handover in multicarrier based mobile cellular communication system
JP4762680B2 (en) * 2005-11-04 2011-08-31 株式会社エヌ・ティ・ティ・ドコモ Carrier method notification method, neighboring cell measurement method, base station apparatus and mobile station apparatus
US8620328B2 (en) * 2006-03-21 2013-12-31 Qualcomm Incorporated Handover procedures in a wireless communications system
CN101547486B (en) * 2008-03-24 2011-02-02 华为技术有限公司 Method, system and device for processing switch
US8676208B2 (en) * 2008-06-11 2014-03-18 Mediatek Inc. Scanning and handover operation in multi-carrier wireless communications systems
EP2410792B1 (en) * 2009-03-16 2020-12-16 Sun Patent Trust Wireless communication system, terminal apparatus, base station apparatus, and wireless communication method
EP2538725A1 (en) * 2010-02-15 2012-12-26 Ntt Docomo, Inc. Wireless base station and communication control method
WO2011122045A1 (en) * 2010-03-31 2011-10-06 パナソニック株式会社 Wireless communication base station, wireless communication device and wireless communication system

Also Published As

Publication number Publication date
CN102948214A (en) 2013-02-27
AU2011251152B2 (en) 2015-09-17
KR20130094707A (en) 2013-08-26
CN102948214B (en) 2016-11-23
JP2013526794A (en) 2013-06-24
WO2011142544A2 (en) 2011-11-17
CA2798930C (en) 2020-01-21
RU2012147810A (en) 2014-05-20
AU2011251152A1 (en) 2012-11-29
EP2569979A2 (en) 2013-03-20
KR101783289B1 (en) 2017-09-29
WO2011142544A3 (en) 2012-03-01
EP2569979A4 (en) 2017-09-13
RU2576385C2 (en) 2016-03-10

Similar Documents

Publication Publication Date Title
US9661533B2 (en) Handover with carrier aggregation
CA2798930C (en) Handover with carrier aggregation
US20220408323A1 (en) Validity of stored conditional handover configurations
US10111150B2 (en) Mobile terminal handover in an LTE network
JP5878935B2 (en) Method and apparatus for reporting measurement results between radio access technologies
WO2020001575A1 (en) Iab node switching method, iab node and host base station
US20120250562A1 (en) Measurement evaluation method, system and device for multi-carrier system
EP2654338B1 (en) Method and system for reporting terminal measurement and inter-operating between systems
EP2696624B1 (en) Control mechanism for autonomous mobility of terminal device
EP2884798B1 (en) Method, system and device for cell management
JP5522267B2 (en) Radio base station, relay base station, mobile terminal, mobile communication system, and operation control method
US20130163454A1 (en) Measurement configuration and reporting method for multi-carrier system and device thereof
US20140045494A1 (en) Control Mechanism for Autonomous Mobility of Terminal Device
EP3361772B1 (en) Method for cell measurement report and user equipment
JP5624154B2 (en) Method for micro base station reconfiguration and corresponding micro base station
CN113647194A (en) Handling Secondary cell group configuration
GB2507821A (en) Generating measurement reports in a wireless communications network employing coordinated multi-point transmissions
WO2020117118A1 (en) A wireless device and method performed by the wireless device when accessing a cell

Legal Events

Date Code Title Description
EEER Examination request

Effective date: 20160224