TECHNICAL FIELD
[0001] The present invention relates to a method and an arrangement in a first base station,
a method and an arrangement in a second base station and a method and an arrangement
in a user equipment. In particular, it relates to for supporting Discontinuous Transmission
(DTX) for power saving.
BACKGROUND
[0002] In a typical cellular system, also referred to as a radio communications system,
wireless terminals, also known as mobile stations and/or User Equipment units (UEs)
communicate via a Radio Access Network (RAN) to one or more core networks. The wireless
terminals can be mobile stations or user equipment units such as mobile telephones
also known as "cellular" telephones, and laptops with wireless capability, e.g., mobile
termination, and thus can be, for example, portable, pocket, hand-held, computer-included,
or car-mounted mobile devices which communicate voice and/or data with radio access
network.
[0003] The radio access network covers a geographical area which is divided into cell areas,
with each cell area being served by a base station, e.g., a Radio Base Station (RBS),
which in some networks is also called "NodeB" or "B node" and which in this document
also is referred to as a base station. A cell is a geographical area where radio coverage
is provided by the radio base station equipment at a base station site. Each cell
is identified by an identity within the local radio area, which is broadcast in the
cell. The base stations communicate over the air interface operating on radio frequencies
with the user equipment units within range of the base stations.
[0004] In some versions of the radio access network, several base stations are typically
connected, e.g., by landlines or microwave, to a Radio Network Controller (RNC). The
radio network controller, also sometimes termed a Base Station Controller (BSC), supervises
and coordinates various activities of the plural base stations connected thereto.
The radio network controllers are typically connected to one or more core networks.
[0005] The Universal Mobile Telecommunications System (UMTS) is a third generation mobile
communication system, which evolved from the Global System for Mobile Communications
(GSM), and is intended to provide improved mobile communication services based on
Wideband Code Division Multiple Access (WCDMA) access technology. UMTS Terrestrial
Radio Access Network (UTRAN) is essentially a radio access network using wideband
code division multiple access for user equipment units (UEs). The Third Generation
Partnership Project (3GPP) has undertaken to evolve further the UTRAN and GSM based
radio access network technologies.
[0006] Being "green" has quickly gone from just a marketing hype to a key requirement for
customers. This is true today for almost all sectors in society and the telecom market
is no exception. The world today is facing a global energy crisis as people start
to realize that our carbon based economy is no longer sustainable. Two areas that
will become significant parts of a future sustainable economy are energy savings and
telecommunications. Energy savings are by far the quickest and cheapest way of reducing
carbon dioxide emissions to the atmosphere and telecommunication can significantly
reduce the need for physical transportation of people and services. In 3rd Generation
Partnership Project (3GPP) the work on the first release of the 3G Long Term Evolution
(LTE) system, denoted LTE Rel-8 in 3GPP jargon, was finalized during 2008. The specifications
of the next releases (denoted LTE Rel-9 and LTE Rel-10) are expected to be available
2009 and 2010 respectively. In LTE Rel-8 the maximum bandwidth is 20 MHz while in
Rel-10 support for aggregation of multiple component carriers resulting in a total
bandwidth of up to 100MHz is expected to be specified, which LTE Rel-8 system and
later releases of the LTE system all consume power.
[0008] US 2007/066273 A1 discloses a wireless terminal for use with a multi-mode base station that supports
a transmit standby mode and an active mode. In this document a transmit standby mode
of a base station operation is a low power/low interference level of operation as
compared to active mode.
SUMMARY
[0009] In accordance to the present invention, methods as set forth in claims 1, 9 and 15
and apparatuses as set forth in claims 17-19 are provided. Embodiments of the invention
are claimed in the dependent claims.
[0010] It is therefore an objective of the present solution to provide a mechanism enabling
power saving base station operation based on DTX.
[0011] According to a first aspect of the present disclosure, the object is achieved by
a method in a first base station for supporting Discontinuous Transmission (DTX).
The first base station serves a first cell. The first cell is in an active mode. The
first base station communicates with a user equipment within the first cell over a
radio carrier. The first base station is comprised in a radio communications system.
The radio communications system further comprises the user equipment and a second
base station serving a second cell. The second cell state is in a non observable mode.
The first base station sends to the second base station, a request to switch the second
cell from a non observable mode to an observable mode for said user equipment 120.
The first base station further sends to the equipment or to the second base station,
a request to perform signalling between the user equipment and the second base station
for quality measurements. The first base station then obtains information that handover
is feasible. The information is based on quality measurement of the performed signalling.
Upon receiving this information, the first base station sends to the second base station,
a request to prepare handover of the user equipment from the first cell to the second
cell. The first base station then sends to the user equipment, a command to perform
handover to the second cell.
[0012] According to a second aspect of the present disclosure, the object is achieved by
a method in a second base station for supporting DTX. The second base station serves
a second cell. The second cell is in a non observable mode. The second base station
is comprised in a radio communications system. The radio communications system further
comprises a first base station communicating with a user equipment over a radio carrier
being active. After receiving from the first base station, a request to switch the
second cell state from a non observable mode to an observable mode for said user equipment
120, the second base station switching the second cell state to an observable mode
for said user equipment 120. After receiving from the first base station, a request
to perform signalling between the user equipment and the second base station for quality
measurements, the second base station signals to or from the user equipment. The second
base station receives from the first base station, a request to prepare a handover
of the user equipment from the first cell to the second cell. The handover request
is based on quality measurement performed on said signalling. When the second cell
state is in observable mode the second base station switches the second cell state
to active mode, and prepares handover of the user equipment from the first cell to
the second cell.
[0013] In some embodiments, base station DTX is performed within the second base station,
when the second cell is in a non observable mode.
[0014] According to a third aspect of the present disclosure, the object is achieved by
a method in a user equipment for supporting DTX. The user equipment is present in
a first cell communicating over a radio carrier with a first base station serving
the first cell. The first cell is set in an active mode. The user equipment and the
first base station are comprised in a radio communications system. The radio communications
system further comprises a second base station serving a second cell. The second cell
is set in a non observable mode. The user equipment receives from the first base station,
a request to perform channel sounding signalling to be observed by the second base
station for quality measurements. The second base station has been requested by the
first base station to switch the second cell state from a non observable mode to an
observable mode for said user equipment 120. The user equipment then signals channel
sounding to be observed by the second base station for quality measurements. After
receiving from the first base station, a command to perform handover to the second
cell, the user equipment performs the commanded handover from the first cell to the
second cell. The handover command is based on quality measurement performed by the
second base station on the signalled channel sounding observed by the second base
station.
[0015] According to a forth aspect of the present disclosure, the object is achieved by
an arrangement in a first base station for supporting DTX. The first base station
serves a first cell. The first cell is adapted to be in an active mode. The first
base station is arranged to communicate with a user equipment within the first cell
over a radio carrier. The first base station is comprised in a radio communications
system. The radio communications system further comprises the user equipment and a
second base station serving a second cell. The second cell is adapted to be in an
non observable mode. The first base station arrangement comprises a sending unit configured
to send to the second base station, a request to switch the second cell state from
a non observable mode to an observable mode for said user equipment 120. The sending
unit is further configured to send to the user equipment or to the second base station,
a request to perform signalling between the user equipment and the second base station
for quality measurements. The first base station arrangement further comprises an
obtaining unit configured to obtain information that handover is feasible, based on
quality measurement of the performed signalling. The sending unit is further configured
to send to the second base station, a request to prepare handover of the user equipment
from the first cell to the second cell. The sending unit is further configured to
send to the user equipment a command to perform handover to the second cell.
[0016] According to a fifth aspect of the present disclosure the object is achieved by an
arrangement in a second base station for supporting DTX. The second base station serves
a second cell. The second cell is adapted to be in an non observable mode. The second
base station is comprised in a radio communications system. The radio communications
system further comprises a first base station arranged to communicate with a user
equipment over a radio carrier being active. The second base station arrangement comprises
a receiving unit configured to receive from the first base station, a request to switch
the second cell state from a non observable mode to an observable mode for said user
equipment 120. The second base station arrangement further comprises a switching unit
configured to switch the second cell state from a non observable mode to an observable
mode for said user equipment 120. The receiving unit is further configured to receive
from the first base station, a request to perform signalling between the user equipment
and the second base station for quality measurements. The second base station arrangement
further comprises a signalling unit configured to signal to or from the user equipment,
which signal is to be used for quality measurement. The receiving unit is further
configured to receive from the first base station, a request to prepare a handover
of the user equipment from a first cell served by the first base station to a second
cell served by the second base station. The handover request is based on quality measurement
on said signalling. The switching unit is further configured to switch the second
cell state from observable mode to active mode, when the second cell state is in observable
mode. The second base station arrangement further comprises a preparing unit configured
to prepare handover of the user equipment from the first cell to the second cell.
[0017] According to a sixth aspect of the disclosure, the object is achieved by an arrangement
in a user equipment for supporting DTX. The user equipment is arranged to be in a
first cell and is adapted to communicate over a radio carrier with a first base station
serving the first cell. The first cell is adapted to be in active mode. The user equipment
and the first base station are comprised in a radio communications system. The radio
communications system further comprises a second base station adapted to serve a second
cell, the second cell being arranged to be in an non observable mode. The user equipment
arrangement comprises a signalling unit configured to receive from the first base
station, a request to perform channel sounding signalling to be observed by the second
base station for quality measurements. The second base station has been requested
by the first base station to switch the second cell state from a non observable mode
to observable mode. The signalling unit is further configured to signal channel sounding
to be observed by the second base station for quality measurements. The signalling
unit is further configured to receive from the first base station a command to perform
handover to the second cell. The handover command is based on quality measurement
performed by the second base station on the signalled channel sounding observed by
the second base station. The user equipment arrangement further comprises a performing
unit configured to perform a handover from the first cell to the second cell.
[0018] Since the first base station requests the second base station switch the second cell
state from a non observable mode to an observable mode for said user equipment 120,
and a requests the second base station or the user equipment to perform signalling
between the user equipment and the second base station for quality measurements, handover
to the second cell can be performed in spite of the second base station initially
being in non observable mode, in which non observable mode power saving base station
operation based on DTX is enabled.
[0019] An advantage with the present solution is that a network element can remain in low
power consuming mode for a longer time. Without then present solution, a base station
in DTX will have to periodically or pseudo randomly leave DTX mode to enable non-served
user equipments to measure.
[0020] A further advantage with the present solution is that the time to switch up from
a DTX mode to an active mode will be significantly shorter with the present solution.
Since, with the present solution, the mode switch of the second base station is event
triggered there is no need to wait for a periodic or pseudorandom timer to expire
before entering an observable mode. Instead the second base station can switch to
an observable mode for said user equipment 120 immediately after a request is received
from the first base station. To enable a fast switching time with a state of the art
timer based solution periodic or pseudorandom the DTX time would need to be reduced
significantly and that would limit the potential energy savings.
[0021] Also with the current invention it can be avoided that the second cell unnecessarily
enters an observable mode, i.e. non DTX mode, or an observing mode, i.e. non DRX mode.
Each time the second cell becomes observable or starts to observe cost must paid in
terms of increased energy consumption. When a handover measurement is required then
that cost is well motivated, but if the second base station would enter an observable
mode, i.e. non DTX mode, or an observing mode, i.e. non DRX mode periodically as in
state of the art solutions then it will often be wasted energy by transmitting signals
from the second base station that no user terminal is measuring on or by performing
measurements in the second base station even though no user terminal is transmitting
anything for the second base station to measure on.
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The invention is described in more detail with reference to attached drawings illustrating
exemplary embodiments of the invention and in which:
- Figure 1
- is a schematic block diagram illustrating a radio frame according to prior art.
- Figure 2
- is a schematic block diagram illustrating embodiments of a radio communications system.
- Figure 3
- is a schematic block diagram illustrating embodiments of a radio communications system.
- Figure 4
- is a combined schematic block diagram and flowchart depicting embodiments of a method.
- Figure 5
- is a combined schematic block diagram and flowchart depicting embodiments of a method.
- Figure 6
- is a flowchart depicting embodiments of a method in a first base station.
- Figure 7
- is a schematic block diagram illustrating embodiments of a first base station arrangement.
- Figure 8
- is a flowchart depicting embodiments of a method in a second base station.
- Figure 9
- is a schematic block diagram illustrating embodiments of a second base station arrangement.
- Figure 10
- is a flowchart depicting embodiments of a method in a user equipment.
- Figure 11
- is a schematic block diagram illustrating embodiments of a user equipment arrangement.
DETAILED DESCRIPTION
[0023] As part of the present solution a problem will firstly be defined and discussed.
To introduce energy saving features, increased support for eNB Discontinuous Transmission
(DTX) is required in LTE Rel-10. Several different types of downlink DTX could be
considered. In the context of LTE 3 types of Down Link (DL) DTX modes could be defined:
Short DTX could be defined as DTX that is fully backwards compatible with LTE Rel-8.
Basically short DL DTX is then limited to one or a few OFDM symbols in which no cell
specific reference symbols need to be transmitted. Medium DTX could be defined as
DTX that is non backwards compatible with Rel-8, e.g. a DTX duration longer than one
sub-frame (1 ms) but shorter than a radio frame (10 ms). Finally long DTX could be
defined as a DTX duration that makes a carrier invisible also for Rel-10 UEs e.g.
a DTX duration equal to one or several radio frames. The long DL DTX might also be
denoted eNB sleep.
[0024] At a first glance it seems rather straightforward to introduce support for medium
or long eNB DTX in LTE Rel-10. Figure 1 shows a LTE radio frame with 72 center sub
carriers, introducing eNB DTX for four ms in subframe no. 1, 2, 3, 4, 6, 7, 8 and
9. For example, the LTE Rel-10 specification may be slightly changed so that when
there is little or no user plane data traffic, the eNB does not have to transmit Cell
Specific Reference Symbols (CSRS) in every subframe. In this example, CSRS may only
be mandatory in sub-frames 0 and 5 where also Primary Synchronization Signals (PSS)
and Secondary Synchronization Signals (SSS) and Broadcast CHannel (BCH) are transmitted.
CSRS also needs to be transmitted in those sub-frames that carry System Information
Blocks, (SIBs). SIB1 is transmitted in the fifth sub-frame of every radio frame, SIBx
where x>2 is configurable with very low duty cycle. In order for this to be allowed
the UE behavior that the standard specifies may for example be changed so that UEs
are only allowed to perform mobility measurements during sub-frames 0 and 5.
[0025] The fact that the CSRS are not transmitted in every sub-frame may also likely affect
the Channel Quality Indicator (CQI) measurements. However already in Rel-8 it is possible
to specify when in time the CQI measurements are to be performed. In Rel-8 the CQI
measurements are performed 4 sub-frames before the UE are scheduled to report the
CQI. No time domain filtering of CQI estimates are performed in the UE. It might be
necessary to reconsider if this mechanism is sufficient also for Rel-10 or if some
more flexibility is required.
[0026] In case UEs measure the CQI in sub-frames other than 0 and 5 then they can not assume
that there is any frequency correlation since the eNB may not always transmit CSRS
in all resource blocks. Alternatively the UEs could detect an "all zero CQI" measurement
as an indication that the eNB does not need any CQI report from the UE.
[0027] UE channel estimation is also affected. A slight degradation in channel estimation
accuracy is expected since UEs can not utilize time and frequency correlation between
resource blocks (unless they are adjacent to subframe 0 or 5). This however is already
the case for TDD, where one cannot do interpolation between all subframes as some
subframes are UL subframes. Hence this is not a fundamental problem.
[0028] There are many alternatives to the solution outlined in Figure 1. UE mobility measurements
can be limited to
- the centre 6 resource blocks; and/or
- a single antenna port (e.g. antenna port 0) and/or
- the PSS and SSS signals only; and/or
- subframe 0 only, i.e. not both sub-frame 0 and 5 as in Figure 1.
[0029] It is also possible that a future non legacy LTE release (e.g. Rel-10) defines a
new set of reference symbols for non backwards compatible extension carriers. Current
discussions in 3GPP mention two new sets of reference symbols: demodulation reference
symbols (DM-RS) and channel state information reference symbols (CSI-RS). If new reference
symbols are defined (e.g. a new set of mobility measurement reference signals of the
DM-RS or CSI RS mentioned above) then it is likely that UE mobility measurements are
defined on a sub-set of the new reference symbols.
[0030] To enable DTX periods longer than 4 ms one could imagine that an eNB sleep mode is
also defined for LTE Rel-9 or LTE Rel-10. Periodically a sleeping eNB could transmit
all signals needed for UEs to measure and attach to the cell, i.e. PSS, SSS, BCH,
SIB1, SIB2, CSRS during a short active period duration such as e.g. 50 ms. The active
period is then followed by a much longer inactive period such as e.g. 450 ms where
nothing is transmitted from the eNB. The active period can be compatible with LTE
Rel-8 or a later release, e.g. LTE Rel-10.
[0031] The problem with the energy saving solutions discussed above is that a user equipment
can not access a cell being in DTX mode since a cell being in a DTX mode is invisible
to this user equipment, and the serving base station will not receive any handover
measurements from the user equipment that can trigger a handover.
[0032] It is therefore a further objective of the present solution to provide the means
required to making it possible for a user equipment to access a cell being in a non
observable cell state and therefore is not transmitting anything, or access a cell
in a DTX mode not supported by the user equipment.
[0033] Figure 2 depicts a radio communications system 100, such as e.g. the E-UTRAN, also known as
LTE, LTE-Adv, 3rd Generation Partnership Project (3GPP) WCDMA system, Global System
for Mobile communications/Enhanced Data rate for GSM Evolution (GSM/EDGE), Wideband
Code Division Multiple Access (WCDMA), Worldwide Interoperability for Microwave Access
(WiMax), or Ultra Mobile Broadband (UMB). The radio communications system 100 supports
different releases of a standardized radio specification such as a standardized LTE
specification or a standardized High Speed Packet Access (HSPA) specification.
[0034] The radio communications system 100 comprises a first base station 110 serving a
first cell 115. The first base station 110 may be a base station such as a NodeB,
an eNodeB or any other network unit capable to communicate with a user equipment being
present in the fist cell over a radio carrier. The first base station 110 communicates
with a user equipment 120 being present within the first cell 115 over a radio carrier
125. The first cell 115 is in an
active mode, this means that the radio carrier 125 in the first cell 115 is up and running e.g.
with a DTX mode supported by the user equipment 120. With active mode in this context
is meant that the transmission mode of the serving cell, i.e. the first cell 115 is
such that data communication is possible between the user equipment 120 and the first
cell 115. Thus, as seen from the perspective of the user equipment 120, only the serving
cell, i.e. the first cell 115 can be in active mode and a non serving cell, i.e. the
second cell 135 can not. However a non serving cell, i.e. the second cell 135 can
be in a DTX mode that is either observable or non observable for the user equipment.
In the example of Figure 2 and only for illustration, the first base station 110 further
communicates with other user equipments 127 in the first cell 115 over other radio
carriers 129. The user equipment 120 may be a mobile phone, a Personal Digital Assistant
(PDA), or any other network unit capable to communicate with a base station over a
radio channel.
[0035] The radio communications system 100 further comprises a second base station 130 serving
a second cell 135. The second base station 130 may be a base station such as a NodeB,
an eNodeB or any other network unit capable to communicate with a user equipment present
in the second cell 135, over a radio carrier when the cell state is in active mode.
However, in Figure 2 the second cell is not in an active mode but in a non observable
mode which means that the carrier within the second cell 135, seen from the user equipment
120 perspective, is not transmitting anything or it is in a DTX mode not supported
by the user equipment 120. Note that it is possible to consider the case that a new
DTX mode is introduced in a new release of a standardized system specification, such
as 3GPP LTE. In that case only user equipments that comply with the new standard release
will be able to observe a cell that is operating using the new DTX mode. Thus a DTX
mode that is observable for one user equipment may be non observable for another user
equipment.
[0036] The general idea of the present solution will now be described. In an exemplary scenario
referred to in Figure 2, the user equipment 120 would be better served by second base
station 130 and the second cell 135. The second cell 135 being in a non observable
mode is not visible for the user equipment 120.
[0037] To start a hand over procedure to hand over the user equipment 120 to the second
cell 135, the first base station 110 requests the second base station 130 to switch
the second cell state from a non observable mode to an observable mode for said user
equipment 120. An observable mode means that from the perspective of the user equipment
120, the carrier in the second cell 135 is temporarily transmitting with a DTX mode
supported by the user equipment 120 for the sole purpose of allowing mobility measurements.
But neither the user equipment 120 nor any other user equipments present within the
second cell 135 are actively receiving user plane data on the carrier.
[0038] The second base station 130 switches the second cell state to an observable mode
for said user equipment 120. This switch makes the second cell 135 visible to the
user equipment 120.
[0039] The first base station 110 then requests the user equipment 120 or the second base
station 130 to perform signalling between the user equipment 120 and the second base
station 130 for quality measurements.
[0040] The first base station 110 obtains information that handover is feasible, based on
quality measurement of the performed signalling.
[0041] The first base station 110 then requests the second base station 130 to prepare handover
of the user equipment 120 to the second cell 135, and commands the user equipment
120 to perform handover to the second cell 135.
[0042] The handover to the second cell is performed by the user equipment 110 ending up
in the scenario illustrated in Figure 3. The second base station 130 switches to active
mode. The user equipment 110 and the second base station 130 may then start communicating
with each other over a radio carrier.
[0043] As a consequence of the present solution in methods described above and below, a
cell may request that a non observable neighboring cell becomes observable.
[0044] So e.g. when load is high a base station serving a cell may check if any neighboring
cells can take over some of the traffic.
[0045] In the present solution, the mode terminology is defined from the user equipment
120 point of view. Therefore it is only the serving cell, i.e. the first cell 115
that can be in an "active" mode. A non serving cell, i.e. the second cell 135, can
only be "observable" or "non observable" as far as this user equipment 120 is concerned.
The second cell 135 may also be "observing" but it can not be "active", at least not
until the user equipment 120 has performed a handover to the second cell 130 after
which the second cell 135 is no longer referred to as the second cell 135. Furthermore,
note that the term "observable" denotes that the characteristics of the radio channel
between the user equipment 120 and the second base station 130 may be determined.
Thus the term "observable" is used to describe both the case that the second cell
135 transmits a reference signal on which said user equipment 120 can perform mobility
measurements; as well as the case that the second cell 135 is prepared for performing
measurements needed for mobility decisions on a reference signal transmitted by said
user equipment 120.
[0046] The user equipment 120 that is served by the first cell 115, i.e. the first cell
115 is thus in "active" mode, does not care if the second cell 135 happens to actively
serve some other user equipments 127 or not. That the second cell 135 is in active
mode is irrelevant unless we assume that any cell that is in active mode is automatically
also observable for all user equipments in neighboring cells. That might not be the
case since the second cell 135 might serve a LTE Rel-10 user equipment using a Rel-10
transmission format, hence it is in active mode as seen from this user equipment,
and the user equipment in the neighboring cell might be a Rel-8 user equipment that
is not capable of measuring on this format, hence the second cell is non observable
as seen from this user equipment. So when reading "observable" and "non observable"
it is from the viewpoint of the user equipment 120. What is observable for one user
equipment (e.g. a Rel-10 user equipment) can be non observable for another user equipment
(e.g. a Rel-8 user equipment). The term "observable" also refers to measuring on a
specific signal that the second cell knows is being transmitted from the user equipment
120 served by the first cell 115.
[0047] Thus...
"active mode" is used to describe the mode of the cell currently serving the user
equipment.
"non observable" or "observable" mode is used to describe if the characteristics of
the radio channel between the user equipment 120 and the second base station 130 can
be determined or not.
[0048] In case the second cell 135 is "non observable" the it can either be requested to
become "observable" i.e. start to send reference signals according to a format that
the user equipment 120 can measure on; or be prepared to measure on channel sounding
transmissions from the user equipment 120. It does not matter whether the second cell
135 is "active" or not until the user equipment 120 enters the second cell 135.
[0049] Note that for the sake of simplifying the description of this invention, only the
case when each cell transmits a single carrier described. In case several carriers
are transmitted from a base station then it is possible to view that arrangement as
several cells with one carrier allocated to each cell. Alternatively one the multicarrier
arrangement can be viewed as a single cell with several carriers that are allocated
to it. In the present solution, it is chosen to adopt the commonly used nomenclature
that a cell transmit only one carrier'and in case having multiple carrier arrangements
then the additional carriers are viewed as additional cells.
[0050] Currently carrier aggregation is being defined by 3GPP as a component technology
for LTE Rel-10. The idea is that a Rel-10 user equipment shall be able to aggregate
several component carriers transmitted from the same base station. In that case it
is not decided yet in 3GPP if a Rel-10 user equipment will view the component carriers
as one cell or several cells. In case the component carriers are visible to a Rel-8
user equipments they will however be viewed as different cells by the Rel-8 user equipments.
Therefore, the present solution also covers a multicarrier arrangement where a cell
has several carriers assigned to it.
[0051] Cell state changes may be exchanged for example directly between the first base station
110 and the second base station 130 e.g. over X2/S1 or over an O&M interface e.g.
according to a Listener/Reporter pattern. The X2 interface is, as defined in 3GPP,
a direct logical interface between two eNodeBs; the S1 interface is the interface
between the eNodeB and the mobility management entity (MME); the O&M interface is
the interface between the eNodeB and the operation and support system (OSS). Thus
a decision to enter a non observable mode may be taken locally in the base station
but when the non observable mode of a carrier is changed to an observable mode for
said user equipment 120, all neighboring cells, i.e. all listeners may be informed
by this transmission by the first cell 135, i.e. the reporter. Also component carrier
state information such as e.g. legacy / short DTX / long DTX may be exchanged between
the first base station 110 and the second base station 130 and other base stations
in case there are several component carriers in the first base station 110 and/or
second base station 130.
[0052] Some embodiments of the present solution will now be described.
[0053] A method according to some first embodiments is depicted in the combined flowchart
and signaling diagram in
Figure 4. The user equipment 120 may probably be better served by the second base station
130 and the second cell 135. The second cell 135 being in a non observable mode is
not visible for the user equipment 120.
[0054] The method steps below must not be taken in the order described below, but may be
taken in any suitable order.
Step 401
[0055] The first base station 110 requests the second base station 130 to switch to observable
mode to be able to start sending reference signals. This may be performed at the same
time as the next step, or implicitly be performed by the next step. This step may
e.g. be triggered by information received that the user equipment 120 requires a service
that not is provided by the first base station 110. This step may also e.g. be triggered
by high traffic load, such as the traffic load exceeding a predetermined threshold
value.
Step 402
[0056] The second base station switches to an observable mode for said user equipment 120.
Step 403
[0057] The first base station 110 further requests the second base station 130 to perform
signaling between the user equipment 120 and the second base station 130 for quality
measurements. In these first embodiments this is performed by requesting the second
base station 110 to start transmitting reference signals such as e.g. pilot signals.
Step 404
[0058] The second base station 130 sends reference signals.
Step 405
[0059] The user equipment 110 listens to the reference signals sent by the second base station
130 and performs quality measurements on said signals. These measurements are in LTE
denoted reference signal received power (RSRP) measurements and they are used to perform
handover decisions.
Step 406
[0060] When the user equipment 110 decides that handover to the second cell is feasible
based on said measurements in step 404, it sends a hand over request to the first
base station 110.
Step 407
[0061] The first base station 110 then requests the second base station 130 to prepare handover
of the user equipment 120 to the second cell.
Step 408
[0062] The first base station 110 then commands the user equipment 120 to perform handover
to the second cell 135.
Step 409
[0063] The user equipment 120 performs handover to the second cell 135 and may then start
to communicate with the second base station 130.
[0064] A method according to some second embodiments is depicted in the combined flowchart
and signaling diagram in
Figure 5. Also in these embodiments, the user equipment 120 may be better served by the second
base station 130 and the second cell 135. The second cell 135 being in a non observable
mode is not visible for the user equipment 120.
[0065] The method steps below must not be taken in the order described below, but may be
taken in any suitable order.
Step 501
[0066] The first base station 110 requests the second base station 130 to switch to observable
mode to be able to start sending reference signals. In these second embodiments this
may be performed by requesting the second base station 110 to start measuring on channel
sounding transmission e.g. on a particular channel sounding which is signalled by
the user equipment 120. This may be performed at the same time as the next step, or
implicitly be performed by the next step. This step may e.g. be triggered by information
received that the user equipment 120 requires a service that not is provided by the
first base station 110. This step may also e.g. be triggered by high traffic load,
such as the traffic load exceeding a predetermined threshold value.
[0067] Channel Sounding Reference Signal (SRS) transmission are defined in LTE for the purpose
of probing the uplink radio channel from the user equipment to the base station. The
purpose of introducing SRS in LTE is to enable channel dependent scheduling also in
the uplink.
Step 502
[0068] The second base station 130 switches to an observable mode for said user equipment
120, that in this case represented by an observing mode.
Step 503
[0069] The first base station 110 further requests the user equipment 120 to perform signaling
between the user equipment 120 and the second base station 130 for quality measurements.
In these embodiments this may be performed by commanding the user equipment 120 to
transmit channel sounding signals.
Step 504
[0070] The user equipment 120 transmits channel sounding signals.
Step 505
[0071] The second base station 130 listens to the channel sounding sent by the user equipment
120 and performs quality measurements on said channel sounding signals. The received
power on the channel sounding reference signal transmission from the user equipment
120 may be measured and the resulting measurement value is used by the radio network
for evaluating if the user equipment 120 shall perform a handover to the second base
station 130 or not.
Step 506
[0072] The second base station 130 sends measurement reports to the first base station 110,
regarding the results of the quality measurements on said channel sounding signals.
Step 507
[0073] The first base station 110 reads the measurement reports from the second base station
130 and decides when it is feasible to perform handover based on the measurement report,
i.e. information is obtained that it is feasible to perform handover.
Step 508
[0074] When decided that it is feasible to perform handover of the user equipment 120 to
the second cell 135, the first base station 110 requests the second base station 130
to prepare handover of the user equipment 120 to the second cell.
Step 509
[0075] The first base station 110 then commands the user equipment 120 to perform handover
to the second cell 135.
Step 510
[0076] The user equipment 120 performs handover to the second cell 135 and may then start
to communicate with the second base station 130.
[0077] The method steps in the first base station 110 for supporting DTX, according to some
embodiments will now be described with reference to a flowchart depicted in
Figure 6. As mentioned above the first base station 110 serves the first cell 115. The first
cell 115 is in active mode. The first base station 110 communicates with the user
equipment 120 within the first cell 115 over a radio carrier. The first base station
110 is comprised in a radio communications system, which radio communications system
further comprises the user equipment 120 and the second base station 130 serving the
second cell 135. The second cell state is in a non observable mode.
[0078] The method comprising the following steps, which steps may as well be carried out
in another suitable order than described below:
Step 601
[0079] This is an optional step. The first base station 110 may in some embodiments detect
or receive information from the user equipment 120, that the user equipment 120 requires
a service that not is provided by the first base station 110. It may e.g. include
subscription information such as e.g. that only high paying user equipments can wake
up a micro cell.
Step 602
[0080] This step is the first step, if optional step 601 is not performed. The first base
station 110 sends to the second base station 130, a request to switch the second cell
state from a non observable mode to an observable mode for said user equipment 120.
[0081] In some embodiments, this step is triggered when the traffic load within the first
cell exceeds a predetermined threshold value.
[0082] In some embodiments, wherein the optional step 601 is performed, this step is triggered
upon receiving the information that the user equipment 120 requires a service that
not is provided by the first base station 110.
Step 603
[0083] In this step the second base station 130 sends to the user equipment 120 or to the
second base station, a request to perform signalling between the user equipment 120
and the second base station 130 for quality measurements.
[0084] In some first embodiments, the request to perform signalling between the user equipment
120 and the second base station 130 for quality measurements, is sent to the second
base station 130, and is represented by a request to send reference signals to be
measured on by the user equipment 120.
[0085] In some second embodiments, the request to perform signalling between the user equipment
120 and the second base station 130 for quality measurements is represented by a request
to the user equipment 120 to transmit channel sounding signals, and a request to the
second base station 130 to measure on said channel sounding signal transmission.
Step 604
[0086] The second base station then obtains information that handover is feasible, based
on quality measurement of the performed signalling.
[0087] The obtained information that handover is feasible based on quality measurement of
the performed signalling, may in the first embodiments be represented by a handover
request from the user equipment 120 based on quality measurement of the reference
signal by the user equipment 120 .
[0088] In the other embodiments, the obtained information that handover is feasible based
on quality measurement of the performed signalling, may be represented by receiving
from the second base station 130 a measurement report based on quality measurement
performed by the second base station 130 on the channel sounding signals.
Step 605
[0089] After receiving the information, the first base station 110 sends to the second base
station 130, a request to prepare handover of the user equipment 120 from the first
cell 115 to the second cell 135.
Step 606
[0090] The first base station 110 also sends to the user equipment 120, a command to perform
handover to the second cell 135. The present method may end when this step and step
605 are performed.
Step 607
[0091] This is an optional step. In this step the first base station 110 may send to the
second base station 130, information about the current first cell state, and /or receive
from the second base station 110, information about the current second cell state.
[0092] To perform the method steps above for supporting DTX, the first base station 110
comprises an arrangement 700 depicted in Figure 7. As mentioned above, the first base
station 110 serves the first cell 115. The first cell state is adapted to be in active
mode. The first base station 110 is arranged to communicate with the user equipment
120 within the first cell 115 over a radio carrier. The first base station 110 is
comprised in the radio communications system 100. The radio communications system
100 further comprises the user equipment 120 and the second base station 130 serving
the second cell 135. The sate of the second cell 135 is adapted to be in a non observable
mode for the user equipment 120.
[0093] The first base station arrangement 700 comprising a sending unit 710 configured to
send to the second base station 130, a request to switch the second cell state from
a non observable mode to an observable mode for said user equipment 120.
[0094] The sending unit 710 is further configured to send to the user equipment 120 or to
the second base station 130, a request to perform signalling between the user equipment
120 and the second base station 130 for quality measurements.
[0095] According to some first embodiments, the request to perform signalling between the
user equipment 120 and the second base station 130 for quality measurements is represented
by a request to the second base station 130 to send reference signals to be measured
on by the user equipment 120.
[0096] According to some second embodiments, the request to perform signalling between the
user equipment 120 and the second base station 130 for quality measurements is represented
by a request to the user equipment 120 to transmit channel sounding signals, and a
request to the second base station 130 to measure on said channel sounding signal
transmission.
[0097] The sending unit 710 is further configured to send to the second base station 130,
a request to prepare handover of the user equipment 120 from the first cell 115 to
the second cell 135.
[0098] The sending unit 710 is further configured to send to the user equipment 120 a command
to perform handover to the second cell 135.
[0099] In some embodiments, the sending unit 710 may further be configured to send to the
second base station 130 information about the current first cell state.
[0100] The sending unit 710 may further be configured to be triggered to send to the second
base station 130, the request to switch the second cell state from a non observable
mode to observable mode, when the traffic load within the first cell exceeding a predetermined
threshold value.
[0101] The first base station arrangement 700 further comprises an obtaining unit 720 configured
to obtain information that handover is feasible, based on quality measurement of the
performed signalling.
[0102] According to the first embodiments, the obtained information that handover is feasible
based on quality measurement of the performed signalling, may be represented by a
handover request from the user equipment 120 based on quality measurement of the reference
signal by the user equipment 120 .
[0103] According to the second embodiments, the obtain of information that handover is feasible
based on quality measurement of the performed signalling, is represented by a measurement
report, based on quality measurement performed by the second base station 130 on the
channel sounding signals.
[0104] The first base station arrangement 700 may further comprise a receiving unit 730
configured to receive from the second base station 130 information about the current
second cell state.
[0105] In some embodiments, the receiving unit 730 further is configured to receive from
the user equipment 120, information that the user equipment 120 requires a service
that not is provided by the first base station 110. In these embodiments, the sending
unit 710 may further be configured to be triggered to send to the second base station
130, the request to switch the second cell state from a non observable mode to observable
mode, said information.
[0106] The method steps in the second base station 130 for supporting DTX according to some
embodiments will now be described with reference to a flowchart depicted in Figure
8. As mentioned above, the second base station 130 serves the second cell 135. The
cell second cell 135 is in a non observable mode. The second base station may perform
DTX, when the second cell state is in non observable mode. The second base station
130 is comprised in the radio communications system 100. The radio communications
system 100 further comprises the first base station 110 communicating with the user
equipment 120 over a radio carrier being active.
[0107] The method comprises the following steps that may as well be carried out in another
suitable order than described below:
Step 801
[0108] The second base station 130 receives from the first base station 110, a request to
switch the second cell state from a non observable mode to an observable mode for
said user equipment 120.
Step 802
[0109] The second base station 130 switches the second cell state from a non observable
mode to an observable mode for said user equipment 120.
Step 803
[0110] The second base station 130 receives from the first base station 110, a request to
perform signalling between the user equipment 120 and the second base station 130
for quality measurements.
[0111] In some first embodiments the request to perform signalling between the user equipment
120 and the second base station 130 for quality measurements, is represented by a
request to send reference signals to be measured on by the user equipment 120.
[0112] In some second embodiments, the request to perform signalling between the user equipment
120 and the second base station 130 for quality measurements is represented by a request
to the second base station 130 to measure on said channel sounding signal transmission.
Step 804
[0113] The second base station 130 signals with, i.e. to or from the user equipment 120.
The signal is to be used by the user equipment 120 for quality measurement.
[0114] In the first embodiments, the signalling to or from the user equipment 120, may be
represented by sending the requested reference signals.
Step 805
[0115] This is an optional step relating to the second embodiments. The second base station
may measure the quality on channel sounding signals observed from the user equipment
120.
Step 806
[0116] This is an optional step relating to the second embodiments. The second base station
130 sends to the first base station 110, a measurement report based on the quality
measurement performed on the channel sounding signals.
Step 807
[0117] The second base station 130 receives from the first base station 110, a request to
prepare a handover of the user equipment 120 from a first cell 115 served by the first
base station 110 to the second cell 135 served by the second base station 130. The
handover request is based on quality measurement on said signalling.
Step 808
[0118] When the second cell state is in observable mode, the second base station 130 switches
the second cell state from observable mode to active mode.
Step 809
[0119] As requested, the second base station prepares handover of the user equipment 120
from the first cell 115 to the second cell 135. The present method may end at this
step.
Step 810
[0120] This is an optional step. The second base station 130 may send to the first base
station 110 information about the current second cell state. The present method may
end at this step.
Step 811
[0121] This is also an optional step. The second base station 130 may receive from the first
base station 110, information about the current first cell state. The present method
may end at this step.
[0122] To perform the method steps above for supporting DTX, the second base station 130
comprises an arrangement 900 depicted in
Figure 9. As mentioned above, the second base station 130 serves the second cell 135. The
second cell 135 is adapted to be in a non observable mode for the user equipment 120.
Base station DTX may be arranged to be performed within the second base station 130,
when the second cell state is in a non observable mode. The second base station 130
is comprised in a radio communications system 100. The radio communications system
100 further comprises the first base station 110 arranged to communicate with the
user equipment 120 over a radio carrier being active.
[0123] The second base station arrangement 900 comprises
a receiving unit 910 configured to receive from the first base station 110, a request to switch the second
cell state from a non observable mode to an observable mode for said user equipment
120.
[0124] The receiving unit 910 is further configured to receive from the first base station
110, a request to perform signalling between the user equipment 120 and the second
base station 130 for quality measurements.
[0125] According to some first embodiments, the request to perform signalling between the
user equipment 120 and the second base station 130 for quality measurements may be
represented by a request to send reference signals to be measured on by the user equipment
120.
[0126] According to some second embodiments, the request to perform signalling between the
user equipment 120 and the second base station 130 for quality measurements, may be
represented by a request to the second base station 130 to measure on said channel
sounding signal transmission.
[0127] The receiving unit 910 is further configured to receive from the first base station
110, a request to prepare a handover of the user equipment 120 from a first cell 115
served by the first base station 110 to a second cell 135 served by the second base
station 130. The handover request is based on quality measurement on said signalling.
[0128] The second base station arrangement 900 further comprising a switching unit 920 configured
to switch the second cell state from a non observable mode to an observable mode for
said user equipment 120.
[0129] The switching unit 920 is further configured to switch the second cell state from
observable mode to active mode, when the second cell state is in observable mode.
[0130] The second base station arrangement 900 further comprises a signalling unit 930 configured
to signal to or from the user equipment 120, which signal is to be used for quality
measurement.
[0131] According to the second embodiments, the signalling to or from the user equipment
120, may be represented by sending the requested reference signals.
[0132] The signalling unit 930 may further be configured to send to the first base station
110, information about the current second cell state.
[0133] The signalling unit 930 may further be configured to receive from the first base
station 110, information about the current first cell state.
[0134] The second base station arrangement 900 further comprises a preparing unit 940 configured
to prepare handover of the user equipment 120 from the first cell 115 to the second
cell 135.
[0135] According to some of the second embodiments, the second base station arrangement
900 further comprises a measuring unit 950 configured to measure the quality on channel
sounding signals observed from the user equipment 120.
[0136] In these embodiments, the signalling unit 930 may further be configured to send to
the first base station 110, a measurement report based on the quality measurement
performed on the channel sounding signals.
[0137] The method steps in the user equipment 120 supporting DTX according to some embodiments,
will now be described with reference to a flowchart depicted in
Figure 10. As mentioned above, the user equipment 120 is present in the first cell 115 and
communicates over a radio carrier with the first base station 110. The first base
station 110 serves the first cell 115. The first cell 115 is in an active mode. The
user equipment 120 and the first base station 110 are comprised in a radio communications
system 100. The radio communications system 100 further comprises the second base
station 130 serving the second cell 135. The second cell 135 is in a non observable
mode. The method comprises the following steps that may as well be carried out in
another suitable order than described below:
Step 1001
[0138] This step is optional. According to a first embodiment, the user equipment 120 may
send to the first base station 110, information that the user equipment 120 requires
a service that not is provided by the first base station 110.
Step 1002
[0139] If optional step 1001 is not performed, this step starts the present method. The
user equipment receives from the first base station 110, a request to perform channel
sounding signalling to be observed by the second base station 130 for quality measurements.
The second base station 130 has been requested by the first base station 110 to switch
the second cell state from a non observable mode to observable mode.
[0140] According to the first embodiment, this step may be a response to the reception of
the information received in step 1001.
Step 1003
[0141] The user equipment 120 signals channel sounding to be observed by the second base
station 130 for quality measurements.
Step 1004
[0142] The user equipment 120 receives 1004 from the first base station 110 a command to
perform handover to the second cell 135, which handover command is based on quality
measurement performed by the second base station 130 on the signalled channel sounding
observed by the second base station 130.
Step 1005
[0143] The user equipment 120 performs the commanded handover from the first cell 115 to
the second cell 135.
[0144] To perform the method steps above for supporting DTX, the user equipment 120 comprises
an arrangement 1100 depicted in
Figure 11. As mentioned above. The user equipment 120 is arranged to be in the first cell 115.
The user equipment is adapted to communicate over a radio carrier with a first base
station 110 serving the first cell 115.The first cell 115 is adapted to be in active
mode. The user equipment 120 and the first base station 110 are comprised in a radio
communications system 100. The radio communications system 100 further comprises the
second base station 130 adapted to serve the second cell 135. The second cell 135
is arranged to be in a non observable mode for the user equipment 120.
[0145] The user equipment arrangement 1100 comprises a signalling unit 1110 configured to
receive from the first base station 110, a request to perform channel sounding signalling
to be observed by the second base station 130 for quality measurements. The second
base station 130 has been requested by the first base station 110 to switch the second
cell state from a non observable mode to observable mode.
[0146] The signalling unit 1110 is further configured to signal channel sounding to be observed
by the second base station 130 for quality measurements.
[0147] The signalling unit 1110 is further configured to receive from the first base station
110 a command to perform handover to the second cell 135. The handover command is
based on quality measurement performed by the second base station 130 on the signalled
channel sounding observed by the second base station 130.
[0148] In one embodiment, the signalling unit 1110 may further be configured to send to
the first base station 110, information that the user equipment 120 requires a service
that not is provided by the first base station 110.
[0149] The user equipment arrangement 1100 further comprises a performing unit 1120 configured
to perform a handover from the first cell 115 to the second cell 135.
[0150] The present mechanism for supporting DTX, may be implemented through one or more
processors, such as a processor 740 in the first base station arrangement 700 depicted
in Figure 7, a processor 960 in the second base station arrangement 900 depicted in
Figure 9, or a processor 1130 in the user equipment arrangement 1100 depicted in Figure
11, together with computer program code for performing the functions of the present
solution. The program code mentioned above may also be provided as a computer program
product, for instance in the form of a data carrier carrying computer program code
for performing the present solution when being loaded into the first base station
110, the second base station 130 or the user equipment 120. One such carrier may be
in the form of a CD ROM disc. It is however feasible with other data carriers such
as a memory stick. The computer program code can furthermore be provided as pure program
code on a server and downloaded to the first base station 110, the second base station
130 or the user equipment 120 remotely.
[0151] When using the word "comprise" or "comprising" it shall be interpreted as nonlimiting,
i.e. meaning "consist at least of".
[0152] The present invention is not limited to the above described preferred embodiments.
Various alternatives, modifications and equivalents may be used. Therefore, the above
embodiments should not be taken as limiting the scope of the invention, which is defined
by the appending claims.
1. A method in a first base station (110) for supporting Discontinuous Transmission "DTX",
the first base station (110) serving a first cell (115), the first cell (115) being
in an active mode, the first base station (110) communicating with a user equipment
(120) within the first cell (115) over a radio carrier, the first base station (110)
being comprised in a radio communications system (100) which radio communications
system further comprises the user equipment (120) and a second base station (130)
serving a second cell (135), the second cell (135) being in a non observable mode
for the user equipment (120), the method comprising:
sending (602) to the second base station (130), a request to switch the second cell
state from non observable mode to an observable mode for said user equipment (120),
sending to the user equipment (120) a request to transmit channel sounding signals
and sending to the second base station (130) a request to measure on said channel
sounding signal transmission,
obtaining (604) information that handover is feasible, based on quality measurement
of the performed signalling,
sending (605) to the second base station (130), a request to prepare handover of the
user equipment (120) from the first cell (115) to the second cell (135), and
sending (606) to the user equipment (120) a command to perform handover to the second
cell (135).
2. Method according to claim 1, further comprising:
sending (607) to the second base station (130) information about the current first
cell state.
3. Method according to any of the claims 1-2, further comprising:
receiving (607) from the second base station information about the current second
cell state.
4. Method according to any of the claims 1-3, wherein the step of sending (602) to the
second base station (130), a request to switch the second cell state from a non observable
mode to an observable mode for said user equipment (120) is triggered when the traffic
load within the first cell (115) exceeds a predetermined threshold value.
5. Method according to any of the claims 1-3, wherein the step of sending (602) to the
second base station (130), a request to switch the second cell state from a non observable
mode to an observable mode is triggered upon:
receiving (601) from the user equipment (120) information or detecting that the user
equipment (120) requires a service that not is provided by the first base station
(110).
6. Method according to any of the claims 1-5, wherein the request to perform signalling
between the user equipment (120) and the second base station (130) for quality measurements,
is sent to the second base station (130), and is represented by a request to send
reference signals to be measured by the user equipment (120).
7. Method according to claim 6, wherein the obtained information that handover is feasible
based on quality measurement of the performed signalling, is represented by a handover
request from the user equipment (120) based on quality measurement of the reference
signal by the user equipment (120).
8. Method according to claim 1, wherein the obtained information that handover is feasible
based on quality measurement of the performed signalling, is represented by receiving
from the second base station (130) a measurement report based on quality measurement
performed by the second base station (130) on the channel sounding signals.
9. A method in a second base station (130) for supporting Discontinuous Transmission
DTX the second base station (130) serving a second cell (135), the second base station
(130) being comprised in a radio communications system (100), which radio communications
system (100) further comprises a first base station (110) communicating with a user
equipment (120) over a radio carrier being active, the second cell (135) being in
an non observable mode for the user equipment (120), the method comprising:
receiving (801) from the first base station (110), a request to switch the second
cell state from non observable mode to an observable mode for said user equipment
120,
switching (802) the second cell state from a non observable mode to an observable
mode for said user equipment (120),
receiving (803) from the first base station (110), a request to measure on a channel
sounding signal transmission of the user equipment (120) and measuring (805) the quality
on channel sounding signals observed from the user equipment (120),
signalling (804) to or from the user equipment (120), which signal is to be used for
quality measurement,
receiving (807) from the first base station (110), a request to prepare a handover
of the user equipment (120) from the first cell (115) served by the first base station
(110) to the second cell (135) served by the second base station (130), which handover
request is based on quality measurement on said signalling,
switching (808) the second cell state from observable mode to active mode, and
preparing (809) handover of the user equipment (120) from the first cell (115) to
the second cell (135).
10. Method according to claim 9, wherein base station DTX is performed within the second
base station (130), when the second cell state is in the non observable mode.
11. Method according to any of the claims 9-10, further comprising:
sending (810) to the first base station (110) information about the current second
cell state.
12. Method according to any of the claims 9-11, further comprising:
receiving (811) from the first base station (110) information about the current first
cell state.
13. Method according to any of the claims 9-12, wherein the request to perform signalling
between the user equipment (120) and the second base station (130) for quality measurements,
is represented by a request to send reference signals to be measured on by the user
equipment (120), and wherein the signalling (804) to or from the user equipment (120),
is represented by sending the requested reference signals.
14. Method according to claim 9, further comprising:
sending (806) to the first base station (110), a measurement report based on the quality
measurement performed on the channel sounding signals.
15. A method in a user equipment (120) for supporting Discontinuous Transmission ,"DTX",
the user equipment (120) being in a first cell (115) communicating over a radio carrier
with a first base station (110) serving the first cell (115), the first cell (115)
being in an active mode, the user equipment and the first base station (110) being
comprised in a radio communications system (100), which radio communications system
(100) further comprises a second base station (130) serving a second cell (135), the
second cell (135) being in a non observable mode, the method comprising:
receiving (1002) from the first base station (110), a request to perform channel sounding
signalling to be observed by the second base station (130) for quality measurements,
which second base station (130) has been requested by the first base station (110)
to switch the second cell state from the non observable mode to an observable mode
for said user equipment (120),
signalling (1003) channel sounding to be observed by the second base station (130)
for quality measurements,
receiving (1004) from the first base station (110) a command to perform handover to
the second cell (135), which handover command is based on quality measurement performed
by the second base station (130) on the signalled channel sounding observed by the
second base station (130), and
performing (1005) the commanded handover from the first cell (115) to the second cell
(135).
16. Method according to claim 15, wherein the request to perform channel sounding signalling
is sent by the first base station as a response to:
sending (1001) to the first base station (110) information that the user equipment
(120) requires a service that is not provided by the first base station (110).
17. A first base station (110) comprising an arrangement (700) for supporting Discontinuous
Transmission, DTX, the first base station (110) serving a first cell (115), the first
cell (115) is adapted to be in an active mode, the first base station (110) being
arranged to communicating with a user equipment (120) within the first cell (115)
over a radio carrier, the first base station (110) being comprised in a radio communications
system (100) which radio communications system (100) further comprises the user equipment
(120) and a second base station (130) serving a second cell (135),
the first base station arrangement (700) comprising an obtaining unit (720) configured
to obtain information that handover is feasible, based on quality measurement of the
performed signalling,
the first base station arrangement further comprising a sending unit (710) further
being configured to send to the second base station (130), a request to prepare handover
of the user equipment (120) from the first cell (115) to the second cell (135), and
the sending unit (710) further is configured to send to the user equipment (120) a
command to perform handover to the second cell (135)
characterised in that the second cell (135) is adapted to be in a non observable mode,
the sending unit of the first base station arrangement (700) is configured to send
to the second base station (130), a request to switch the second cell state from the
non observable mode to an observable mode for said user equipment (120), and
which sending unit (710) further is configured to send to the user equipment (120)
a request to transmit channel sounding signals and sending to the second base station
(130) a request to measure on said channel sounding signal transmission.
18. A second base station (130) comprising an arrangement (900) for supporting Discontinuous
Transmission, DTX the second base station (130) serving a second cell (135), the second
base station (130) being comprised in a radio communications system (100), which radio
communications system (100) further comprises a first base station (110) arranged
to communicate with a user equipment (120) over a radio carrier being active,
the second base station arrangement (900) comprising a switching unit (920) configured
to switch the second cell state from a non observable mode to an observable mode for
said user equipment (120),
the second base station arrangement (900) further comprising a signalling unit (930)
configured to signal to or from the user equipment (120), which signal is to be used
for quality measurement,
the second base station arrangement (900) comprising a receiving unit (910) further
being configured to receive from the first base station (110), a request to prepare
a handover of the user equipment (120) from a first cell (115) served by the first
base station (110) to a second cell (135) served by the second base station (130),
which handover request is based on quality measurement on said signalling,
the switching unit (920) further being configured to switch the second cell state
from observable mode to active mode, when the second cell state is in observable mode,
the second base station arrangement (900) further comprising a preparing unit (940)
configured to prepare handover of the user equipment (120) from the first cell (115)
to the second cell (135),
characterized in that the second cell (135) is adapted to be in an non observable mode,
wherein the receiving unit (910) is configured to receive from the first base station
(110), a request to switch the second cell state from a non observable mode to an
observable mode for said user equipment (120),
wherein the receiving unit (910) further is configured to receive from the first base
station (110), a request to measure on said channel sounding signal transmission,
and
wherein the second base station arrangement (900) further comprises a measuring unit
(950) configured to measure the quality on channel sounding signals observed from
the user equipment (120).
19. A user equipment (120) comprising an arrangement (1100) for supporting Discontinuous
Transmission ,DTX, the user equipment (120) is arranged to be in a first cell (115)
and is adapted to communicate over a radio carrier with a first base station (110)
serving the first cell (115), the first cell (115) is adapted to be in active mode,
the user equipment 120 and the first base station (110) being comprised in a radio
communications system (100), which radio communications system (100) further comprises
a second base station (130) adapted to serve a second cell (135),
the user equipment arrangement (1100) comprising a signalling unit (1110) configured
to signal channel sounding to be observed by the second base station (130) for quality
measurements,
the signalling unit (1110) further being configured to receive from the first base
station (110) a command to perform handover to the second cell (135), which handover
command is based on quality measurement performed by the second base station (130)
on the signalled channel sounding observed by the second base station (130),
the user equipment arrangement (1100) comprising a performing unit (1120) configured
to perform a handover from the first cell (115) to the second cell (135)
characterised in that the second cell (135) is arranged to be in an non observable mode,
wherein the signalling unit (1110) configured to receive from the first base station
(110), a request to perform channel sounding signalling to be observed by the second
base station (130) for quality measurements, and
which second base station (130) has been requested by the first base station (110)
to switch the second cell state from the non observable mode to an observable mode
for said user equipment (120),
1. Verfahren in einer ersten Basisstation (110) zum Unterstützen einer diskontinuierlichen
Übertragung ("Discontinuous Transmission" - DTX), wobei die erste Basisstation (110)
eine erste Zelle (115) bedient, wobei die erste Zelle (115) in einem aktiven Modus
ist, wobei die erste Basisstation (110) mit einem Anwendergerät (120) innerhalb der
ersten Zelle (115) über einen Funkträger kommuniziert, wobei die erste Basisstation
(110) in einem Funkkommunikationssystem (100) enthalten ist, wobei das Funkkommunikationssystem
des Weiteren das Anwendergerät (120) und eine zweite Basisstation (130) umfasst, die
eine zweite Zelle (135) bedient, wobei die zweite Zelle (135) in einem für das Anwendergerät
(120) nicht beobachtbaren Modus ist, wobei das Verfahren umfasst:
Senden (602) einer Anfrage an die zweite Basisstation (130), den Zustand der zweiten
Zelle aus dem nicht beobachtbaren Modus in einen für das Anwendergerät (120) beobachtbaren
Modus zu schalten,
Senden eine Anfrage, Kanalmesssignale zu übertragen, an das Anwendergerät (120) und
Senden einer Anfrage, die Messsignalübertragung auf dem Kanal zu messen, an die zweite
Basisstation (130),
Erhalten (604) von Informationen, dass eine Übergabe durchführbar ist, auf der Basis
einer Qualitätsmessung der durchgeführten Signalleitung,
Senden (605) einer Anfrage an die zweite Basisstation (130), eine Übergabe des Anwendergeräts
(120) von der ersten Zelle (115) zur zweiten Zelle (135) vorzubereiten, und
Senden (606) eines Befehls an das Anwendergerät (120), eine Übergabe an die zweite
Zelle (135) durchzuführen.
2. Verfahren nach Anspruch 1, des Weiteren umfassend:
Senden (607) von Informationen über den aktuellen Zustand der ersten Zelle an die
zweite Basisstation (130).
3. Verfahren nach einem der Ansprüche 1 bis 2, des Weiteren umfassend:
Empfangen (607) von Informationen über den aktuellen Zustand der zweiten Zelle von
der zweiten Basisstation.
4. Verfahren nach einem der Ansprüche 1 bis 3, wobei der Schritt des Sendens (602) einer
Anfrage an die zweite Basisstation (130), den Zustand der zweiten Zelle aus dem nicht
beobachtbaren Modus in einen für das Anwendergerät (120) beobachtbaren Modus zu schalten,
ausgelöst wird, wenn die Verkehrslast innerhalb der ersten Zelle (115) einen vorgegebenen
Schwellenwert übersteigt.
5. Verfahren nach einem der Ansprüche 1 bis 3, wobei der Schritt des Sendens (602) einer
Anfrage an die zweite Basisstation (130), den Zustand der zweiten Zelle aus dem nicht
beobachtbaren Modus in einen beobachtbaren Modus zu schalten, ausgelöst wird beim:
Empfangen (601) von Information vom Anwendergerät (120) oder Erfassen, dass das Anwendergerät
(120) einen Dienst benötigt, der von der ersten Basisstation (110) nicht bereitgestellt
wird.
6. Verfahren nach einem der Ansprüche 1 bis 5, wobei die Anfrage, eine Signalleitung
zwischen dem Anwendergerät (120) und der zweiten Basisstation (130) für Qualitätsmessungen
durchzuführen, zur zweiten Basisstation (130) gesendet wird und durch eine Anfrage
dargestellt ist, Referenzsignale zu senden, die vom Anwendergerät (120) gemessen werden.
7. Verfahren nach Anspruch 6, wobei die erhaltenen Informationen, dass eine Übergabe
basierend auf einer Qualitätsmessung der durchgeführten Signalleitung durchführbar
ist, durch eine Übergabeanfrage vom Anwendergerät (120) dargestellt ist, die auf einer
Qualitätsmessung des Referenzsignals durch das Anwendergerät (120) basiert.
8. Verfahren nach Anspruch 1, wobei die erhaltenen Informationen, dass eine Übergabe
basierend auf einer Qualitätsmessung der durchgeführten Signalleitung durchführbar
ist, durch einen Empfang eines Messberichts basierend auf einer Qualitätsmessung,
die von der zweiten Basisstation (130) an den Kanalmesssignalen durchgeführt wurde,
von der zweiten Basisstation (130) dargestellt ist.
9. Verfahren in einer zweiten Basisstation (130) zum Unterstützen einer diskontinuierlichen
Übertragung (DTX), wobei die zweite Basisstation (130) eine zweite Zelle (135) bedient,
wobei die zweite Basisstation (130) in einem Funkkommunikationssystem (100) enthalten
ist, wobei das Funkkommunikationssystem (100) des Weiteren eine erste Basisstation
(110) umfasst, die mit einem Anwendergerät (120) über einen Funkträger kommuniziert,
der aktiv ist, wobei die zweite Zelle (135) in einem für das Anwendergerät (120) nicht
beobachtbaren Modus ist, wobei das Verfahren umfasst:
Empfangen (801) einer Anfrage von der ersten Basisstation (110), den Zustand der zweiten
Zelle aus einem nicht beobachtbaren Modus in einen für das Anwendergerät (120) beobachtbaren
Modus zu schalten,
Umschalten (802) des Zustandes der zweiten Zelle aus einem nicht beobachtbaren Modus
in einen für das Anwendergerät (120) beobachtbaren Modus,
Empfangen (803) einer Anfrage von der ersten Basisstation (110), auf einem Kanal eine
Messsignalübertragung des Anwendergeräts (120) zu messen, und Messen (805) der Qualität
von Kanalmesssignalen, die vom Anwendergerät (120) beobachtet werden,
Signalleitung (804) zum oder vom Anwendergerät (120), welches Signal für eine Qualitätsmessung
verwendet wird,
Empfangen (807) einer Anfrage von der ersten Basisstation (110), eine Übergabe des
Anwendergeräts (120) von der ersten Zelle (115), die von der ersten Basisstation (110)
bedient wird, zur zweiten Zelle (135), die von der zweiten Basisstation (130) bedient
wird, vorzubereiten, wobei die Übergabeanfrage auf einer Qualitätsmessung der Signalleitung
basiert,
Umschalten (808) des Zustandes der zweiten Zelle von einem beobachtbaren Modus in
einen aktiven Modus und
Vorbereiten (809) einer Übergabe des Anwendergeräts (120) von der ersten Zelle (115)
zur zweiten Zelle (135).
10. Verfahren nach Anspruch 9, wobei die Basisstation DTX innerhalb der zweiten Basisstation
(130) durchgeführt wird, wenn der Zustand der zweiten Zelle im nicht beobachtbaren
Modus ist.
11. Verfahren nach einem der Ansprüche 9 bis 10, des Weiteren umfassend:
Senden (810) von Informationen über den aktuellen Zustand der zweiten Zelle zur ersten
Basisstation (110).
12. Verfahren nach einem der Ansprüche 9 bis 11, des Weiteren umfassend:
Empfangen (811) von Informationen über den aktuellen Zustand der ersten Zelle von
der ersten Basisstation (110).
13. Verfahren nach einem der Ansprüche 9 bis 12, wobei die Anfrage, eine Signalleitung
zwischen dem Anwendergerät (120) und der zweiten Basisstation (130) für Qualitätsmessungen
durchzuführen, durch eine Anfrage, zu messende Referenzsignale von dem Anwendergerät
(120) zu senden, dargestellt ist und wobei die Signalleitung (804) zum oder vom Anwendergerät
(120) durch Senden der angefragten Referenzsignale dargestellt ist.
14. Verfahren nach Anspruch 9, des Weiteren umfassend:
Senden (806) eines Messberichts basierend auf der Qualitätsmessung, die an den Kanalmesssignalen
durchgeführt wurde, zur ersten Basisstation (110).
15. Verfahren in einem Anwendergerät (120) zum Unterstützen einer diskontinuierlichen
Übertragung (DTX), wobei sich das Anwendergerät (120) in einer ersten Zelle (115)
befindet, die über einen Funkträger mit einer ersten Basisstation (110) kommuniziert,
die die erste Zelle (115) bedient, wobei die erste Zelle (115) in einem aktiven Modus
ist, wobei das Anwendergerät und die erste Basisstation (110) in einem Funkkommunikationssystem
(100) enthalten sind, wobei das Funkkommunikationssystem (100) des Weiteren eine zweite
Basisstation (130) umfasst, die eine zweite Zelle (135) bedient, wobei die zweite
Zelle (135) in einem nicht beobachtbaren Modus ist, wobei das Verfahren umfasst:
Empfangen (1002) einer Anfrage von der ersten Basisstation (110), eine Kanalmesssignalleitung,
die von der zweiten Basisstation (130) zu Qualitätsmessungen beobachtet wird, durchzuführen,
wobei von der ersten Basisstation (110) eine Anfrage an die zweite Basisstation (130)
gestellt wurde, den Zustand der zweiten Zelle aus dem nicht beobachtbaren Modus in
einen für das Anwendergerät (120) beobachtbaren Modus zu stellen,
Kanalmesssignalleitung (1003), die von der zweiten Basisstation (130) für Qualitätsmessungen
beobachtet wird,
Empfangen (1004) eines Befehls von der ersten Basisstation (110), eine Übergabe zur
zweiten Zelle (135) durchzuführen, wobei der Übergabebefehl auf einer Qualitätsmessung
basiert, die von der zweiten Basisstation (130) an den Kanalmesssignalen durchgeführt
wurde, die von der zweiten Basisstation (130) beobachtet wurden, und
Durchführen (1005) der befohlenen Übergabe von der ersten Zelle (115) an die zweite
Zelle (135).
16. Verfahren nach Anspruch 15, wobei die Anfrage, eine Kanalmesssignalleitung durchzuführen
von der ersten Basisstation als Reaktion auf
das Senden (1001) von Informationen an die erste Basisstation (110), dass das Anwendergerät
(120) einen Dienst benötigt, der von der ersten Basisstation (110) nicht bereitgestellt
wird,
gesendet wird.
17. Erste Basisstation (110), die eine Anordnung (700) zum Unterstützen einer diskontinuierlichen
Übertragung (DTX) umfasst, wobei die erste Basisstation (110) eine erste Zelle (115)
bedient, wobei die erste Zelle (115) dazu ausgebildet ist, in einem aktiven Modus
zu sein, wobei die erste Basisstation (110) zur Kommunikation mit einem Anwendergerät
(120) innerhalb der ersten Zelle (115) über einen Funkträger angeordnet ist, wobei
die erste Basisstation (110) in einem Funkkommunikationssystem (100) enthalten ist,
wobei das Funkkommunikationssystem (100) des Weiteren das Anwendergerät (120) und
eine zweite Basisstation (130) umfasst, die eine zweite Zelle (135) bedient,
wobei die erste Basisstationsanordnung (700) eine Gewinnungseinheit (720) umfasst,
die zum Gewinnen von Informationen konfiguriert ist, dass eine Übergabe durchführbar
ist, basierend auf einer Qualitätsmessung der durchgeführten Signalleitung,
wobei die erste Basisstationsanordnung des Weiteren eine Sendeeinheit (710) umfasst,
die des Weiteren zum Senden einer Anfrage zur zweiten Basisstation (130), eine Übergabe
des Anwendergeräts (120) von der ersten Zelle (115) zur zweiten Zelle (135) vorzubereiten,
konfiguriert ist, und
die Sendeeinheit (710) des Weiteren zum Senden eines Befehls zum Anwendergerät (120),
die Übergabe zur zweiten Zelle (135) durchzuführen, konfiguriert ist,
dadurch gekennzeichnet, dass die zweite Zelle (135) dazu ausgebildet ist, in einem nicht beobachtbaren Modus zu
sein,
wobei die Sendeeinheit der ersten Basisstationsanordnung (700) zum Senden einer Anfrage
zur zweiten Basisstation (130), den Zustand der zweiten Zelle aus einem nicht beobachtbaren
Modus in einen für das Anwendergerät (120) beobachtbaren Modus umzuschalten, konfiguriert
ist und
wobei die Sendeeinheit (710) des Weitern zum Senden einer Anfrage an das Anwendergerät
(120), Kanalmesssignale zu senden, sowie zum Senden einer Anfrage an die zweite Basisstation
(130), die Messsignalübertragung auf dem Kanal zu messen, konfiguriert ist.
18. Zweite Basisstation (130), die eine Anordnung (900) zum Unterstützen einer diskontinuierlichen
Übertragung (DTX) umfasst, wobei die zweite Basisstation (130) eine zweite Zelle (135)
bedient, wobei die zweite Basisstation (130) in einem Funkkommunikationssystem (100)
enthalten ist, wobei das Funkkommunikationssystem des Weiteren eine erste Basisstation
(110) umfasst, die dazu ausgebildet ist, mit einem Anwendergerät (120) über einen
Funkträger zu kommunizieren, der aktiv ist,
wobei die zweite Basisstationsanordnung (900) eine Schalteinheit (920) umfasst, die
zum Umschalten des Zustandes der zweiten Zelle aus einem nicht beobachtbaren Modus
in einen für das Anwendergerät (120) beobachtbaren Modus konfiguriert ist,
wobei die zweite Basisstationsanordnung (900) des Weiteren eine Signalleitungseinheit
(930) umfasst, die zur Signalleitung zum oder vom Anwendergerät (120) konfiguriert
ist, wobei das Signal für eine Qualitätsmessung verwendet wird,
wobei die zweite Basisstationsanordnung (900) eine Empfangseinheit (910) umfasst,
die des Weiteren zum Empfangen einer Anfrage von der ersten Basisstation (110), eine
Übergabe des Anwendergeräts (120) von der ersten Zelle (115), die von der ersten Basisstation
(110) bedient wird, zur zweiten Zelle (135), die von der zweiten Basisstation (130)
bedient wird, vorzubereiten, konfiguriert ist, wobei die angefragte Übergabe auf einer
Qualitätsmessung der Signalleitung basiert,
wobei die Schalteinheit (920) des Weiteren zum Umschalten des Zustandes der zweiten
Zelle aus einem beobachtbaren Modus in einen aktiven Modus konfiguriert ist, wenn
der Zustand der zweiten Zelle im beobachtbaren Modus ist,
wobei die zweite Basisstationsanordnung (900) des Weiteren eine Vorbereitungseinheit
(940) umfasst, die zum Vorbereiten einer Übergabe des Anwendergeräts (120) von der
ersten Zelle (115) zur zweiten Zelle (135) konfiguriert ist,
dadurch gekennzeichnet, dass die zweite Zelle (135) dazu ausgebildet ist, in einem nicht beobachtbaren Modus zu
sein,
wobei die Empfangseinheit (910) zum Empfangen einer Anfrage von der ersten Basisstation
(110), den Zustand der zweiten Zelle aus einem nicht beobachtbaren Modus in einen
für das Anwendergerät (120) beobachtbaren Modus umzuschalten, konfiguriert ist,
wobei die Empfangseinheit (910) des Weiteren zum Empfangen einer Anfrage von der ersten
Basisstation (110), auf dem Kanal die Messsignalübertragung zu messen, konfiguriert
ist, und
wobei die zweite Basisstationsanordnung (900) des Weiteren eine Messeinheit (950)
umfasst, die zum Messen der Qualität von Kanalmesssignalen konfiguriert ist, die vom
Anwendergerät (120) beobachtet werden.
19. Anwendergerät (120) umfassend eine Anordnung (1100) zum Unterstützen einer diskontinuierlichen
Übertragung (DTX), wobei das Anwendergerät (120) so angeordnet ist, dass es sich in
einer ersten Zelle (115) befindet, und zum Kommunizieren über einen Funkträger mit
einer ersten Basisstation (110) ausgebildet ist, die die erste Zelle (115) bedient,
wobei die erste Zelle (115) dazu ausgebildet ist, in einem aktiven Modus zu sein,
wobei das Anwendergerät (120) und die erste Basisstation (110) in einem Funkkommunikationssystem
(100) enthalten sind, wobei das Funkkommunikationssystem (100) des Weiteren eine zweite
Basisstation (130) umfasst, die dazu ausgebildet ist, eine zweite Zelle (135) zu bedienen,
wobei die Anwendergerätanordnung (1100) eine Signalleitungseinheit (1110) umfasst,
die zum Leiten von Kanalmesssignalen, die von der zweiten Basisstation (130) für Qualitätsmessungen
beobachtet werden, konfiguriert ist,
wobei die Signalleitungseinheit (1110) des Weiteren zum Empfangen eines Befehls von
der ersten Basisstation (110), eine Übergabe an die zweite Zelle (135) durchzuführen,
konfiguriert ist, wobei der Übergabebefehl auf Qualitätsmessungen basiert, die von
der zweiten Basisstation (130) an den Kanalmesssignalen durchgeführt werden, die von
der zweiten Basisstation (130) beobachtet werden,
wobei die Anwendergerätanordnung (1100) eine Durchführungseinheit (1120) umfasst,
die zum Durchführen einer Übergabe von der ersten Zelle (115) zur zweiten Zelle (135)
konfiguriert ist,
dadurch gekennzeichnet, dass die zweite Zelle (135) so angeordnet ist, dass sie in einem nicht beobachtbaren Modus
ist,
wobei die Signalisierungseinheit (1110) zum Empfangen einer Anfrage von der ersten
Basisstation (110), eine Kanalmesssignalisierung durchzuführen, die von der zweiten
Basisstation (130) für Qualitätsmessungen beobachtet wird, konfiguriert ist, und
wobei an die zweite Basisstation (130) eine Anfrage von der ersten Basisstation (110)
gestellt wurde, den Zustand der zweiten Zelle aus dem nicht beobachteten Modus in
einen für das Anwendergerät (120) beobachtbaren Modus umzuschalten.
1. Procédé destiné à prendre en charge, dans une première station de base (110), une
transmission discontinue, DTX pour « Discontinuous Transmission », la première station
de base (110) desservant une première cellule (115), la première cellule (115) étant
en mode actif, la première station de base (110) communiquant avec un équipement utilisateur
(120) dans la première cellule (115) par l'intermédiaire d'une porteuse radio, la
première station de base (110) faisant partie d'un système de communication radio
(100), lequel système de communication radio comprenant en outre un équipement utilisateur
(120) et une seconde station de base (130) desservant une seconde cellule (135), la
seconde cellule (135) étant dans un mode non observable pour l'équipement utilisateur
(120), le procédé comprenant :
l'envoi (602) à la seconde station de base (130) d'une demande de commutation de l'état
de la seconde cellule du mode non observable à un mode observable pour ledit équipement
utilisateur (120),
l'envoi à l'équipement utilisateur (120) d'une demande de signaux de sondage de canal
de transmission et l'envoi à la seconde station de base (130) d'une demande de mesure
portant sur ladite transmission d'un signal de sondage de canal,
l'obtention (604) d'informations indiquant qu'un transfert est réalisable sur la base
de la mesure de qualité de la signalisation effectuée,
l'envoi (605) à la seconde station de base (130) d'une demande de préparation du transfert
de l'équipement utilisateur (120) de la première cellule (115) à la seconde cellule
(135), et
l'envoi (606) à l'équipement utilisateur (120) d'une commande d'exécution du transfert
à la seconde cellule (135).
2. Procédé selon la revendication 1, comprenant en outre :
l'envoi (607) à la seconde station de base (130) d'informations concernant l'état
courant de la première cellule.
3. Procédé selon l'une quelconque des revendications 1 et 2, comprenant en outre :
la réception (607), en provenance de la seconde station de base, des informations
concernant l'état courant de la seconde cellule.
4. Procédé selon l'une quelconque des revendications 1 à 3, dans lequel l'étape d'envoi
(602) à la seconde station de base (130) d'une demande de commutation de l'état de
la seconde cellule d'un mode non observable à un mode observable pour ledit équipement
utilisateur (120), est déclenchée lorsque la charge de trafic dans la première cellule
(115) dépasse une valeur de seuil prédéterminée.
5. Procédé selon l'une quelconque des revendications 1 à 3, dans lequel l'étape d'envoi
(602) à la seconde station de base (130) d'une demande de commutation de l'état de
la seconde cellule d'un mode non observable à un mode observable, est déclenchée lors
:
de la réception (601) en provenance de l'équipement utilisateur (120) d'informations
ou de la détection du fait que l'équipement utilisateur (120) nécessite un service
qui n'est pas fourni par la première station de base (110).
6. Procédé selon l'une quelconque des revendications 1 à 5, dans lequel la demande d'une
signalisation entre l'équipement utilisateur (120) et la seconde station de base (130)
pour des mesures de qualité, est envoyée à la seconde station de base (130) et est
représentée par une demande d'envoi de signaux de référence devant être mesurés par
l'équipement utilisateur (120).
7. Procédé selon la revendication 6, dans lequel les informations obtenues selon lesquelles
un transfert est réalisable sur la base de la mesure de qualité de la signalisation
effectuée, sont représentées par une demande de transfert provenant de l'équipement
utilisateur (120) sur la base d'une mesure de qualité du signal de référence par l'équipement
utilisateur (120).
8. Procédé selon la revendication 1, dans lequel les informations obtenues selon lesquelles
un transfert est réalisable sur la base d'une mesure de qualité de la signalisation
effectuée, sont représentées par la réception en provenance de la seconde station
de base (130) d'un rapport de mesure basé sur une mesure de qualité effectuée par
la seconde station de base (130) sur les signaux de sondage de canal.
9. Procédé destiné à prendre en charge, dans une seconde station de base (130), une transmission
discontinue, DTX pour « Discontinuous Transmission », la seconde station de base (130)
desservant une seconde cellule (135), la seconde station de base (130) faisant partie
d'un système de communication radio (100), lequel système de communication radio (100)
comprenant en outre une première station de base (110) communiquant avec un équipement
utilisateur (120) par l'intermédiaire d'une porteuse radio qui est active, la seconde
cellule (135) étant dans un mode non observable pour l'équipement utilisateur (120),
le procédé comprenant :
la réception (801) en provenance de la première station de base (110) d'une demande
de commutation de l'état de la seconde cellule d'un mode non observable à un mode
observable pour ledit équipement utilisateur (120),
la commutation (802) de l'état de la seconde cellule d'un mode non observable à un
mode observable pour ledit équipement utilisateur (120),
la réception (803) en provenance de la première station de base (110) d'une demande
de mesure portant sur une transmission de signaux de sondage de canal à l'équipement
utilisateur (120) et la mesure (805) de la qualité sur les signaux de sondage de canal
observés en provenance de l'équipement utilisateur (120),
la signalisation (804) vers ou en provenance de l'équipement utilisateur (120) du
signal devant être utilisé pour la mesure de qualité,
la réception (807) en provenance de la première station de base (110) d'une demande
de préparation d'un transfert de l'équipement utilisateur (120) de la première cellule
(115) desservie par la première station de base (110) à la seconde cellule (135) desservie
par la seconde station de base (130), laquelle demande de transfert est basée sur
la mesure de qualité portant sur ladite signalisation,
la commutation (808) de l'état de la seconde cellule d'un mode observable à un mode
actif, et
la préparation (809) du transfert de l'équipement utilisateur (120) de la première
cellule (115) à la seconde cellule (135).
10. Procédé selon la revendication 9, dans lequel une DTX de station de base est effectuée
dans la seconde station de base (130) lorsque l'état de la seconde cellule est le
mode non observable.
11. Procédé selon l'une quelconque des revendications 9 et 10, comprenant en outre :
l'envoi (810) à la premières station de base (110) d'informations concernant l'état
courant de la seconde cellule.
12. Procédé selon l'une quelconque des revendications 9 à 11, comprenant en outre :
la réception (811) en provenance de la première station de base (110) d'informations
concernant l'état courant de la première cellule.
13. Procédé selon l'une quelconque des revendications 9 à 12, dans lequel la demande d'exécution
d'une signalisation entre l'équipement utilisateur (120) et la seconde station de
base (130) pour effectuer des mesures de qualité, est représentée par une demande
d'envoi de signaux de référence devant être mesurés par l'équipement utilisateur (120),
et dans lequel la signalisation (804) vers ou en provenance de l'équipement utilisateur
(120) est représentée par l'envoi des signaux de référence demandés.
14. Procédé selon la revendication 9, comprenant en outre :
l'envoi (806) à la première station de base (110), d'un rapport de mesure basé sur
la mesure de qualité effectuée sur les signaux de sondage de canal.
15. Procédé destiné à prendre en charge, dans un équipement utilisateur (120), une transmission
discontinue, DTX pour « Discontinuous Transmission », l'équipement utilisateur (120)
étant dans une première cellule (115) communiquant par l'intermédiaire d'une porteuse
radio avec une première station de base (110) desservant la première cellule (115),
la première cellule (115) étant dans un mode actif, l'équipement utilisateur et la
première station de base (110) faisant partie d'un système de communication radio
(100), lequel système de communication radio (100) comprenant en outre une seconde
station de base (130) desservant une seconde cellule (135), la seconde cellule (135)
étant dans un mode non observable, le procédé comprenant :
la réception (1002) en provenance de la première station de base (110) d'une demande
d'exécution d'une signalisation de sondage de canal devant être observée par la seconde
station de base (130) pour des mesures de qualité, laquelle seconde station de base
(130) a reçu de la première station de base (110) une demande de commutation de l'état
de la seconde cellule du mode non observable à un mode observable pour ledit équipement
utilisateur (120),
la signalisation (1003) du sondage de canal devant être observé par la seconde station
de base (130) pour des mesures de qualité,
la réception (1004) en provenance de la première station de base (110) d'une commande
d'exécution d'un transfert vers la seconde cellule (135), ladite commande de transfert
étant basée sur une mesure de qualité effectuée par la seconde station de base (130)
sur le sondage de canal signalisé observé par la seconde station de base (130), et
l'exécution (1005) du transfert ordonné de la première cellule (115) à la seconde
cellule (135).
16. Procédé selon la revendication 15, dans lequel la demande d'exécution d'une signalisation
de sondage de canal est envoyée par la première station de base en réponse à :
l'envoi (1001) à la première station de base (110) d'informations indiquant que l'équipement
utilisateur (120) nécessite un service qui n'est pas fourni par la première station
de base (110).
17. Station de base (110) comprenant un agencement (700) destiné à prendre en charge une
transmission discontinue, DTX pour « Discontinuous Transmission », la première station
de base (110) desservant une première cellule (115), la première cellule (115) étant
apte à être en mode actif, la première station de base (110) étant conçue pour communiquer
avec un équipement utilisateur (120) dans la première cellule (115) par l'intermédiaire
d'une porteuse radio, la première station de base (110) faisant partie d'un système
de communication radio (100), lequel système de communication radio (100) comprenant
en outre l'équipement utilisateur (120) et une seconde station de base (130) desservant
une seconde cellule (135),
le premier agencement de station de base (700) comprenant une unité d'obtention (720)
configurée pour obtenir des informations indiquant qu'un transfert est réalisable,
sur la base d'une mesure de qualité de la signalisation effectuée,
le premier agencement de station de base comprenant en outre une unité d'envoi (710)
qui est en outre configurée pour envoyer à la seconde station de base (130) une demande
de préparation d'un transfert de l'équipement utilisateur (120) de la première cellule
(115) à la seconde cellule (135), et
l'unité d'envoi (710) est en outre configurée pour envoyer à l'équipement utilisateur
(120) une commande d'exécution d'un transfert à la seconde cellule (135),
caractérisée en ce que la seconde cellule (135) est conçue pour être dans un mode non observable,
l'unité d'envoi du premier agencement de station de base (700) est configurée pour
envoyer à la seconde station de base (130) une demande de commutation de l'état de
la seconde cellule du mode non observable à un mode observable pour ledit équipement
utilisateur (120), et
laquelle unité d'envoi (710) est en outre configurée pour envoyer à l'équipement utilisateur
(120) une demande de transmission de signaux de sondage de canal et pour envoyer à
la seconde station de base (130) une demande de mesure portant sur ladite transmission
de signaux de sondage de canal.
18. Seconde station de base (130) comprenant un agencement (900) destiné à prendre en
charge une transmission discontinue, DTX pour « Discontinuous Transmission », la seconde
station de base (130) desservant une seconde cellule (135), la seconde station de
base (130) faisant partie d'un système de communication radio (100), lequel système
de communication radio (100) comprenant en outre une première station de base (110)
conçue pour communiquer avec un équipement utilisateur (120) par l'intermédiaire d'une
porteuse radio qui est active,
le second agencement de station de base (900) comprenant une unité de commutation
(920) configurée pour commuter l'état de la seconde cellule d'un mode non observable
à un mode observable pour ledit équipement utilisateur (120),
le second agencement de station de base (900) comprenant en outre une unité de signalisation
(930) configurée pour effectuer une signalisation vers ou en provenance de l'équipement
utilisateur (120), lequel signal doit être utilisé pour la mesure de qualité,
le second agencement de station de base (900) comprenant une unité de réception (910)
qui est en outre configurée pour recevoir de la première station de base (110) une
demande de préparation d'un transfert de l'équipement utilisateur (120) d'une première
cellule (115) desservie par la première station de base (110) à une seconde cellule
(135) desservie par la seconde station de base (130), laquelle demande de transfert
est basée sur une mesure de qualité portant sur ladite signalisation,
l'unité de commutation (120) étant en outre configurée pour commuter l'état de la
seconde cellule du mode observable à un mode actif lorsque l'état de la seconde cellule
est le mode observable,
le second agencement de station de base (900) comprenant en outre une unité de préparation
(940) configurée pour préparer un transfert de l'équipement utilisateur (120) de la
première cellule (115) à la seconde cellule (135),
caractérisée en ce que la seconde cellule (135) est apte à être dans un état non observable,
dans laquelle l'unité de réception (910) est configurée pour recevoir de la première
station de base (110) une demande de commutation de l'état de la seconde cellule d'un
mode non observable à un mode observable pour ledit équipement utilisateur (120),
dans laquelle l'unité de réception (910) est en outre configurée pour recevoir de
la première station de base (110), une demande de mesure portant sur ladite transmission
du signal de sondage de canal, et
dans laquelle le second agencement de station de base (900) comprend en outre une
unité de mesure (950) configurée pour mesurer la qualité de signaux de sondage de
canal observés depuis l'équipement utilisateur (120).
19. Équipement utilisateur (120) comprenant un agencement (1100) destiné à prendre en
charge une transmission discontinue, DTX pour « Discontinuous Transmission », l'équipement
utilisateur (120) étant conçu pour être dans une première cellule (115 ) et étant
apte à communiquer par l'intermédiaire d'une porteuse radio avec une première station
de base (110) desservant la première cellule (115), la première cellule (115) étant
apte à être en mode actif, l'équipement utilisateur (120) et la première station de
base (110) faisant partie d'un système de communication radio (100), lequel système
de communication radio (100) comprenant en outre une seconde station de base (130)
apte à desservir une seconde cellule (135),
l'agencement d'équipement utilisateur (1100) comprenant une unité de signalisation
(1110) configurée pour signaliser un sondage de canal devant être observé par la seconde
station de base (130) pour des mesures de qualité,
l'unité de signalisation (1110) étant en outre configurée pour recevoir de la première
station de base (110) une commande d'exécution d'un transfert vers la seconde cellule
(135), laquelle commande de transfert étant basée sur une mesure de qualité effectuée
par la seconde station de base (130) sur le sondage de canal signalisé observé par
la seconde station de base (130),
l'agencement d'équipement utilisateur (1100) comprenant une unité d'exécution (1120)
configurée pour exécuter un transfert de la première cellule (115) à la seconde cellule
(135),
caractérisé en ce que la seconde cellule (135) est conçue pour être dans un mode non observable,
dans lequel l'unité de signalisation (1110) est configurée pour recevoir de la première
station de base (110) une demande d'exécution d'une signalisation de sondage de canal
devant être observée par la seconde station de base (130) pour des mesures de qualité,
et
laquelle seconde station de base (130) a reçu de la première station de base (110)
une demande de commutation de l'état de la seconde cellule du mode non observable
à un mode observable pour ledit équipement utilisateur (120).