Showing posts with label CSRS. Show all posts
Showing posts with label CSRS. Show all posts

Wednesday, 4 June 2014

All About Automatic Neighbor Relation (ANR)

Automatic Neighbor Relation (ANR):
- Automatic Neighbor Relation (ANR) function is to relieve the operator from the burden of
manually managing Neighbor Relations (NRs).
- The ANR function resides in the eNB and manages the conceptual Neighbor Relation Table (NRT).
- The Neighbor Detection Function finds new neighbors and adds them to the NRT.
- ANR also contains the Neighbor Removal Function which removes outdated NRs.
- An existing Neighbour Relation from a source cell to a target cell means that eNB controlling the source cell:

  • Knows the ECGI/CGI and PCI of the target cell.
  • Has an entry in the Neighbour Relation Table for the source cell identifying the target cell.
  • Has the attributes in this Neighbour Relation Table entry defined, either by O&M or set to default values.
- NRT contains : 
  • Target Cell Identifier (TCI)
  • Identifies the target cell. 
  • For E-UTRAN, the TCI corresponds to the E-UTAN Cell Global Identifier (ECGI) and Physical Cell Identifier (PCI) of the target cell. 
Each NR has three attributes: 
  • NoRemove : eNB shall not remove the Neighbor cell Relation from the NRT.
  • NoHO : Neighbor cell Relation shall not be used by the eNB for handover reasons.
  • NoX2 attribute : Neighbor Relation shall not use an X2 interface in order to initiate procedures towards the eNB parenting the target cell.



NR Table



- Part of Self-Configuring Networks in SON.
- Manual Addition of cells in the neighbor list is a tough task. It is becomes very difficult when there are exiting networks like 2G,3G.
- For LTE there can be Intra LTE, Inter LTE and Inter RAT neighbors.
- There can be:


  • Intra-Freq Automatic Neighbor Relations. 
  • Inter-Freq/Inter System Automatic Neighbor Relations. 

Intra-Freq Automatic Neighbor Relations:
- Intra-Frequency neighbors can be added automatically as part of Intra-Freq handover procedure.
-  As a process for Intra Frequency HO procedure the serving eNodeB instructs each UE  to perform Intra-Frequency Measurement on neighboring cell by sending RRC Connection Reconfiguration message with measurement control information.
Automatic Neighbour Relation Function
- Consider as in the above picture, Serving Cell is CellA(UE is in RRC Connected State) and Cell B is the Target Cell: 
1.

  • The UE sends a measurement report regarding cell B. 
  • This report contains Cell B’s PCI, but not its ECGI. 
  • eNodeB checks if the reported PCI is already included in the Neighbor Database, then the HO proceeds in the normal way.
  • If reported PCI is not included in the Neighbor Database then eNB proceeds to add the PCI to its NRT.

2.

  • Once eNB receives a UE measurement report containing the PCI, the eNB instructs the UE with another RRC Connection Reconfiguration Message, using the newly discovered PCI as parameter.
  • Instruct UE to read the ECGI, the TAC and all available PLMN ID(s) of the related neighbor cell. 
  • To do so, the eNB may need to schedule appropriate idle periods to allow the UE to read the ECGI from the SIB1 of the detected neighbor cell. 
  • The UE reads the requested information from SIB1 on PDSCH. UE needs to read MIB on PBCH, then DCI with SI-RNTI on PDCCH to read SIB1 on PDSCH.

3. 

  • When the UE has found out the new cell’s ECGI, the UE reports the detected ECGI to the serving cell eNB. 
  • In addition the UE reports the tracking area code and all PLMN IDs that have been detected. 
  • If the detected cell is a CSG or hybrid cell, the UE also reports the CSG ID to the serving cell eNB.


4. 
The eNB decides to add this neighbor relation, and can use PCI and ECGI to:

  • Look up a transport layer address to the new eNB.
  • Update the Neighbor Relation List.
  • If needed, setup a new X2 interface towards this eNB. 

Inter-Freq/System Automatic Neighbor Relations:
- Can be done as a part of the normal inter-frequency and inter-system handover procedure.
- Inter-frequency and Inter-RAT measurement requires compressed mode to be configured.
- The eNodeB instructs UE to start inter-frequency and inter-RAT measurement using RRC Connection Reconfiguration message.
- The UE searches for the neighbor cells, identifies and reports them to eNodeB.
- The format of PCI depends upon the RAT of the Cell being measured.
Measurement Info Reported By UE
- Neighbor cell addition procedure:

Automatic Neighbour Relation Function in case of Inter Frequency/System Neighbor
- Once UE receives the Measurement Report for the Inter Frequency/RAT cell, 
  • eNodeB checks if the reported PCI is already included in the Neighbor Database, then the HO proceeds in the normal way.
  • If reported PCI is not included in the Neighbor Database then eNB proceeds to add the PCI to its NRT
- eNodeB instruct UE using another RRC Connection Reconfiguration message to decode the Global Cell Identity (CGI) from the system information.
- The UE may be required to report additional information depending on the system being measured.
- The eNB updates its inter-RAT/inter-frequency Neighbour Relation Table.
- In the inter-frequency case and if needed, the eNB can use the PCI and ECGI for a new X2 interface setup towards the new eNB.

Friday, 30 May 2014

All About Self Organizing Network (SON)

Self Organizing Network : 
- Aims to reduce the network operational cost and improve user experience.
- Addition of new network element should be in Plug and Play mode.
- SON introduced in Rel 8 version of the 3GPP specification.
- Fully implemented in Rel 9 and Rel 10.
- 3 main concepts :

  • Self - Configuring Network
  • Self - Optimizing Network
  • Self - Healing Network
Self Configuring Network :

- Aimed at automating the deployment of new eNodeB.
- eNodeB should be added to the Network as Plug and Play.
- Introducing a new eNodeB to the system should be automatic and eNodeB will be able to allocate appropriate Physical Layer Cell Identity.
- ANR is part of Self Configuring Network.
- Should be easy to deploy and should be less sensitive to error.
- Most used during initial network deployment.

Self - Optimizing Network :

- Aimed at automating network performance improvement.
- Includes 
  • Coverage and capacity optimization
  • Handover optimization
  • RACH optimization
  • Reduce inter-cell interference between eNodeB.
- Aimed at reducing the requirement of drive test.
- Useful throughout the life of the network

Self - Healing Network :

- Aimed at automating the fault handling.
- Faults should be automatically detected and corrected.
- Reduces outage time.
- Improves network performance
- Improves end-user experience.
- If one the eNodeB goes bad then self - healing allows neighboring eNodeBs to compensate by using their unused power headroom.
- It also uses redundancy within the network. 
- Useful throughout the life of the network

Wednesday, 18 December 2013

All About Cell Search In LTE

Cell Search In LTE : 
- eNodeB broadcasts Primary Synchronization Signal (PSS) and Secondary Synchronization Signal (SSS) to help UE with the Cell Search Process and Cell Id detection.
- There is total 504 Cell Ids (0 - 503) defined in LTE.
- These 504 Cell IDs are grouped in 168 Physical Layer Cell Identity Group.
- Each Physical Layer Cell Identity Group Consists of 3 Physical Layer Cell Identity.
- PSS and SSS is transmitted using central 62 sub carriers around the DC. The 5 REs above and below the Synchronization Signals are not used for transmission, i.e. they represents DTX periods.

Primary Synchronization Signal (PSS):
- PSS is allocated to Central 62 subcarriers.
- Belonging to the "Last Symbol" of slot 0 and slot 10 of every radio frame.
- So PSS is transmitted twice every 10 ms.
- Both Transmissions are Identical.
- PSS is used for :
          - Achieve SYMBOL, SLOT, and SUBFRAME synchronization.
          - Determine the Physical Layer Cell Identity (PCI) within the Physical Layer Cell Identity Group.
- There are 3 Physical Layer Cell Identity in each Group So PSS is generated using 1 of 3 different Sequences.

Secondary Synchronization Signal (SSS):
- SSS is allocated to Central 62 subcarriers.
- Belonging to the "Second Last Symbol" of slot 0 and slot 10 of every radio frame.
- So SSS is also transmitted twice every 10 ms.
- The 2 SSS transmissions within each radio frame use Different Sequences.
- This is to allow UE to differentiate between the 1st and 2nd transmission.
- This helps UE to determine the starting of each radio frame, i.e. to achive the Frame Synchronization.
- SSS is used for :
          - Achieve FRAME synchronization.
          - Determine the Physical Layer Cell Identity Group.
- There are 168 Physical Layer Cell Identity Group So SSS is generated using 1 of 168 different pairs of Sequences.

Cell Id Identification:
- Once UE read the PSS and SSS, UE will be able to get the Cell ID from the  Physical Layer Cell Identity and Physical Layer Cell Identity Group.
- Cell ID = 3 * Physical Layer Cell Identity Group + Physical Layer Cell Identity.

All About LTE Radio Frame (FDD and TDD)

LTE Radio Frame: 
- Two Radio Frame Structures Supported.
- Type 1, applicable to FDD
- Type 2, applicable to TDD

Frame structure type 1:
- Applicable to both full duplex and half duplex FDD.
- Each radio frame is Tf = 307200 * Ts = 10ms long.
- Consists of 20 slots of lengthTslot = 15360*Ts = 0.5ms
- Numbered from 0 to 19
- A subframe is defined as two consecutive slots.
- Subframe i consists of slots 2i and 2i + 1.

Frame structure type 2:
- Each radio frame of length Tf  = 307200*Ts = 10ms long.
- Consists of two half-frames of length 153600*Ts = 5ms each
- Each half-frame consists of five subframes.

- The supported uplink-downlink configurations are listed below:
- Each subframe in a radio frame, “D” denotes the subframe is reserved for Downlink Transmissions.
- Each subframe in a radio frame, “U” denotes the subframe is reserved for Uplink Transmissions.
- Each subframe in a radio frame, “S” denotes the subframe is reserved for Special Subframe.
- Special Subframe consists of three fields DwPTS, GP and UpPTS.
- Both 5 ms and 10 ms downlink-to-uplink switch-point periodicity are supported.
- In case of 5 ms downlink-to-uplink switch-point periodicity, the special subframe exists in both half-frames.
- In case of 10 ms downlink-to-uplink switch-point periodicity, the special subframe exists in the first half-frame only.
- Subframes 0 and 5 and DwPTS are always reserved for downlink transmission.
- UpPTS and the subframe immediately following the special subframe are always reserved for uplink transmission.


Tuesday, 17 December 2013

All About Cell Specific Reference Signal

Cell Specific Reference Signal: (36.211)

- Transmitted in all downlink subframes in a cell supporting PDSCH transmission
- eNodeB transmit as Downlink Reference Signal.
- Equivalent to CPICH in UMTS network.
- Used by UE for Channel Estimation, Cell Selection, Cell Re-selection, and Handover.
- Allocated REs are distributed both in Time Domain and Frequency Domain.
- REs allocated to the Cell Specific Reference Signal are dependent update Physical Layer Cell Identity.
- RE allocation cycles once every 6 Physical Layer Cell Identities. E.g. Physical Layer Cell ID 6 has the same RE allocation as Physical Layer Cell ID 0.
- REs allocated to Cell Specific Reference Signal also depends on No Of Transmit Antenna.
- Once UE read the PSS and SSS, and consequently identified the Physical Layer Cell ID, then UE can find out the REs allocated to the Cell Specific Reference Signal and the Sequence used to generate the Cell Specific Reference Signal.
- If a RE is allocated to the Cell Specific Reference Signal on One Antenna Port, the corresponding RE on the other Antenna Ports are left Empty.

According to 36.211