Wcdma Arch, Channel, Handover
Wcdma Arch, Channel, Handover
Wcdma Arch, Channel, Handover
The UMTS network architecture is required to provide a greater level of performance to that of the
original GSM network. However as many networks had migrated through the use of GPRS and EDGE,
they already had the ability to carry data. Accordingly many of the elements required for the WCDMA /
UMTS network architecture were seen as a migration. This considerably reduced the cost of
implementing the UMTS network as many elements were in place or needed upgrading.
With one of the major aims of UMTS being to be able to carry data, the UMTS network architecture
was designed to enable a considerable improvement in data performance over that provided for GSM.
User Equipment (UE): The User Equipment or UE is the name given to what was previous
termed the mobile, or cellphone. The new name was chosen because the considerably greater
functionality that the UE could have. It could also be anything between a mobile phone used
for talking to a data terminal attached to a computer with no voice capability.
2.
Radio Network Subsystem (RNS): The RNS is the equivalent of the previous Base Station
Subsystem or BSS in GSM. It provides and manages the air interface for the overall network.
3.
Core Network: The core network provides all the central processing and management for
the system. It is the equivalent of the GSM Network Switching Subsystem or NSS.
The core network is then the overall entity that interfaces to external networks including the public
phone network and other cellular telecommunications networks.
User Equipment, UE
The USER Equipment or UE is a major element of the overall UMTS network architecture. It forms the
final interface with the user. In view of the far greater number of applications and facilities that it can
perform, the decision was made to call it a user equipment rather than a mobile. However it is
essentially the handset (in the broadest terminology), although having access to much higher speed
data communications, it can be much more versatile, containing many more applications. It consists of
a variety of different elements including RF circuitry, processing, antenna, battery, etc.
There are a number of elements within the UE that can be described separately:
UE RF circuitry:
The RF areas handle all elements of the signal, both for the receiver and
for the transmitter. One of the major challenges for the RF power amplifier was to reduce the
power consumption. The form of modulation used for W-CDMA requires the use of a linear
amplifier. These inherently take more current than non linear amplifiers which can be used for
the form of modulation used on GSM. Accordingly to maintain battery life, measures were
introduced into many of the designs to ensure the optimum efficiency.
Baseband processing:
This is considerably more complicated than that used in phones for previous generations.
Again this has been optimised to reduce the current consumption as far as possible.
Battery:
While current consumption has been minimised as far as possible within the
circuitry of the phone, there has been an increase in current drain on the battery. With users
expecting the same lifetime between charging batteries as experienced on the previous
generation phones, this has necessitated the use of new and improved battery technology.
Now Lithium Ion (Li-ion) batteries are used. These phones to remain small and relatively light
while still retaining or even improving the overall life between charges.
in the case of UMTS it is termed a USIM (Universal Subscriber Identity Module). This is a more
advanced version of the SIM card used in GSM and other systems, but embodies the same
types of information. It contains the International Mobile Subscriber Identity number (IMSI) as
well as the Mobile Station International ISDN Number (MSISDN). Other information that the
USIM holds includes the preferred language to enable the correct language information to be
displayed, especially when roaming, and a list of preferred and prohibited Public Land Mobile
Networks (PLMN).
The USIM also contains a short message storage area that allows messages to stay with the
user even when the phone is changed. Similarly "phone book" numbers and call information of
the numbers of incoming and outgoing calls are stored.
The UE can take a variety of forms, although the most common format is still a version of a "mobile
phone" although having many data capabilities. Other broadband dongles are also being widely used.
Node Bs that are connected to it. The RNC undertakes the radio resource management and
some of the mobility management functions, although not all. It is also the point at which the
data encryption / decryption is performed to protect the user data from eavesdropping.
Node B:
Node B is the term used within UMTS to denote the base station transceiver. It
contains the transmitter and receiver to communicate with the UEs within the cell.
In order to facilitate effective handover between Node Bs under the control of different RNCs, the RNC
not only communicates with the Core Network, but also with neighbouring RNCs.
entities and carry data in a circuit switched manner, i.e. a permanent channel for the duration
of the call.
enables much higher network usage as the capacity can be shared and data is carried as
packets which are routed according to their destination.
Some network elements, particularly those that are associated with registration are shared by both
domains and operate in the same way that they did with GSM.
Circuit
switched
elements
The circuit switched elements of the UMTS core network architecture include the following network
entities:
Packet
switched
elements
The packet switched elements of the UMTS core network architecture include the following network
entities:
when GPRS was introduced, and its use has been carried over into the UMTS network
architecture. The SGSN provides a number of functions within the UMTS network architecture.
o
Mobility management
UMTS Core Network, the SGSN generates MM information based on the mobile's
current location.
o
Session management:
quality of service and also managing what are termed the PDP (Packet data Protocol)
contexts, i.e. the pipes over which the data is sent.
o
elements within the network only by communicating with other areas of the network,
e.g. MSC and other circuit switched areas.
o
Billing:
The SGSN is also responsible billing. It achieves this by monitoring the flow of
user data across the GPRS network. CDRs (Call Detail Records) are generated by the
SGSN before being transferred to the charging entities (Charging Gateway Function,
CGF).
into the GPRS network. The Gateway GPRS Support Node (GGSN) is the central element within
the UMTS packet switched network. It handles inter-working between the UMTS packet
switched network and external packet switched networks, and can be considered as a very
sophisticated router. In operation, when the GGSN receives data addressed to a specific user,
it checks if the user is active and then forwards the data to the SGSN serving the particular
UE.
Shared
elements
The shared elements of the UMTS core network architecture include the following network entities:
about each subscriber along with their last known location. In this way, the UMTS network is
able to route calls to the relevant RNC / Node B. When a user switches on their UE, it registers
with the network and from this it is possible to determine which Node B it communicates with
so that incoming calls can be routed appropriately. Even when the UE is not active (but
switched on) it re-registers periodically to ensure that the network (HLR) is aware of its latest
position with their current or last known location on the network.
equipment may be allowed onto the network. Each UE equipment has a number known as the
International Mobile Equipment Identity. This number, as mentioned above, is installed in the
equipment and is checked by the network during registration.
Paging Control Channel (PCCH), (downlink). This channel is associated with the PICH and is
used for paging messages and notification information.
Dedicated Control Channel (DCCH), (up and downlinks) This channel is used to carry dedicated
control information in both directions.
Common Control Channel (CCCH), (up and downlinks). This bi-directional channel is used to
transfer control information.
Shared Channel Control Channel (SHCCH), (bi-directional). This channel is bi-directional and
only found in the TDD form of WCDMA / UMTS, where it is used to transport shared channel
control information.
2>traffic channel..
Dedicated Traffic Channel (DTCH), (up and downlinks). This is a bidirectional channel used to
carry user data or traffic.
Common Traffic Channel (CTCH), (downlink) A unidirectional channel used to transfer
dedicated user information to a group of UEs.
Transport Channels:
Dedicated Transport Channel (DCH), (up and downlink). This is used to transfer data to a
particular UE. Each UE has its own DCH in each direction.
Broadcast Channel (BCH), (downlink). This channel broadcasts information to the UEs in the
cell to enable them to identify the network and the cell.
Forward Access Channel (FACH),(down link). This is channel carries data or information to the
UEs that are registered on the system. There may be more than one FACH per cell as they may
carry packet data.
Paging Channel (PCH) (downlink). This channel carries messages that alert the UE to incoming
calls, SMS messages, data sessions or required maintenance such as re-registration.
Random Access Channel (RACH), (uplink). This channel carries requests for service from UEs
trying to access the system
Uplink Common Packet Channel (CPCH), (uplink). This channel provides additional capability
beyond that of the RACH and for fast power control.
Downlink Shared Channel (DSCH) (downlink).This channel can be shared by several users and
is used for data that is "bursty" in nature such as that obtained from web browsing etc.
Physical Channels:
Primary Common Control Physical Channel (PCCPCH) (downlink). This channel continuously
broadcasts system identification and access control information.
Secondary Common Control Physical Channel (SCCPCH) (downlink) This channel carries the
Forward Access Channel (FACH) providing control information, and the Paging Channel
(PACH) with messages for UEs that are registered on the network.
Physical Random Access Channel (PRACH) (uplink). This channel enables the UE to transmit
random access bursts in an attempt to access a network.
Dedicated Physical Data Channel (DPDCH) (up and downlink). This channel is used to transfer
user data.
Dedicated Physical Control Channel (DPCCH) (up and downlink). This channel carries control
information to and from the UE. In both directions the channel carries pilot bits and the
Transport Format Combination Identifier (TFCI). The downlink channel also includes the
Transmit Power Control and FeedBack Information (FBI) bits.
Physical Downlink Shared Channel (PDSCH) (downlink). This channel shares control
information to UEs within the coverage area of the node B.
Physical Common Packet Channel (PCPCH). This channel is specifically intended to carry
packet data. In operation the UE monitors the system to check if it is busy, and if not it then
transmits a brief access burst. This is retransmitted if no acknowledgement is gained with a slight
increase in power each time. Once the node B acknowledges the request, the data is transmitted
on the channel.
Synchronisation Channel (SCH) The synchronisation channel is used in allowing UEs to
synchronise with the network.
Common Pilot Channel (CPICH) This channel is transmitted by every node B so that the UEs
are able estimate the timing for signal demodulation. Additionally they can be used as a beacon
for the UE to determine the best cell with which to communicate.
Acquisition Indicator Channel (AICH) The AICH is used to inform a UE about the Data Channel
(DCH) it can use to communicate with the node B. This channel assignment occurs as a result of
a successful random access service request from the UE.
Paging Indication Channel (PICH) This channel provides the information to the UE to be able to
operate its sleep mode to conserve its battery when listening on the Paging Channel (PCH). As
the UE needs to know when to monitor the PCH, data is provided on the PICH to assign a UE a
paging repetition ratio to enable it to determine how often it needs to 'wake up' and listen to the
PCH.
CPCH Status Indication Channel (CSICH) This channel, which only appears in the downlink
carries the status of the CPCH and may also be used to carry some intermittent, or "bursty" data.
It works in a similar fashion to PICH.
Collision Detection/Channel Assignment Indication Channel (CD/CA-ICH) This channel, present
in the downlink is used to indicate whether the channel assignment is active or inactive to the
UE.
Hard handover:
This form of handover is essentially the same as that used for 2G networks
Soft handover:
simultaneously with more than one Node B or base station during the handover process.
Softer handover:
Not a full form of UMTS handover, but the UE communicates with more
The network decides a handover is required dependent upon the signal strengths of the
existing link, and the strengths of broadcast channels of adjacent cells.
2.
3.
A new link is established between the new NodeB and the UE.
Although this is a simplification of the process, it is basically what happens. The major problem is that
any difficulties in re-establishing the link will cause the handover to fail and the call or connection to
be dropped.
UMTS hard handovers may be used in a number of instances:
When moving from one cell to an adjacent cell that may be on a different frequency.
When implementing a mode change, e.g. from FDD to TDD mode, for example.
When moving from one cell to another where there is no capacity on the existing channel, and
a change to a new frequency is required.
One of the issues facing UMTS hard handovers was also experienced in GSM. When usage levels are
high, the capacity of a particular cell that a UE is trying to enter may be insufficient to support a new
user. To overcome this, it may be necessary to reserve some capacity for new users. This may be
achieved by spreading the loading wherever possible - for example UEs that can receive a sufficiently
strong signal from a neighbouring cell may be transferred out as the original cell nears its capacity
level.
UMTS softer handover is only possible when a UE can hear the signals from two sectors served by the
same NodeB. This may occur as a result of the sectors overlapping, or more commonly as a result of
multipath propagation resulting from reflections from buildings, etc.
In the uplink, the signals received by the NodeB, the signals from the two sectors can be routed to the
same RAKE receiver and then combined to provide an enhanced signal.
In the downlink, it is a little more complicated because the different sectors of the NodeB use different
scrambling codes. To overcome this, different fingers of the RAKE receiver apply the appropriate despreading or de-scrambling codes to the received signals. Once this has been done, they can be
combined as before.
In view of the fact that a single transmitter is used within the UE, only one power control loop is
active. This may not be optimal for all instances but it simplifies the hardware and general operation.
The most common form of intersystem or inter-RAT handover is between UMTS and GSM. There are
two different types of inter-RAT handover:
gaps in transmission that occur to analyse the reception of local GSM base stations.
The UE uses the neighbour list provided by the UMTS network to monitor and select a
suitable candidate base station. Having selected a suitable base station the handover
takes place, but without any time synchronisation having occurred.
o
Blind handover:
This form of handover occurs when the base station hands off the UE
by passing it the details of the new cell to the UE without linking to it and setting the
timing, etc of the mobile for the new cell. In this mode, the network selects what it
believes to be the optimum GSM based station. The UE first locates the broadcast
channel of the new cell, gains timing synchronisation and then carries out nonsynchronised intercell handover.
"neighbour list" was established to enable this occur easily. As the GSM / 2G network is
normally more extensive than the 3G network, this type of handover does not normally occur
when the UE leaves a coverage area and must quickly find a new base station to maintain
contact. The handover from GSM to UMTS occurs to provide an improvement in performance
and can normally take place only when the conditions are right. The neighbour list will inform
the UE when this may happen.