Friday, April 2, 2010

What is TD-LTE and Why the sudden interest in TD-LTE?

TDD (time division duplex) version of LTE is known as TD-LTE. Recently operators and vendors across world have requested the 3GPP standards body to begin working on specifications that would enable TD-LTE to be deployed in the 2.6 GHz band of spectrum as well. This frequency band is currently used for WiMAX and would allow operators like Clearwire to make it possible to deploy TD-LTE at 2.6GHz in the US.

A recent article from Fierce broadband wireless puts reason of renewed interest as below

  • The FDD LTE and TD-LTE versions of the 3GPP standard are very similar. As a result, devices can support both the FDD and TDD interfaces through a single chipset--i.e., without any additional cost. This is a hugely important new development: TD-LTE will benefit from the wide availability of FDD LTE devices that will be able to support TD-LTE as well. Unlike WiMAX, TD-LTE does not need to prove to have a substantial market share to convince vendors to develop devices. Vendors do not need to develop new devices, they simply need to add TD-LTE support to the existing ones.
  • There is a lot of TDD spectrum available, and in most cases it is cheaper and under-utilized. 3G licenses frequently have TDD allocations and upcoming 2.5 GHz auction in most cases contemplate TDD bands.
  • The increasing availability of base stations that can be cost-effectively upgraded will make it possible and relatively inexpensive for WiMAX operators to transition to TD‑LTE using the same spectrum allocation. The transition will still require substantial efforts and be justified only in some cases, but it will make it easier for WiMAX operators to have roaming deals and to have access to the same devices that LTE operators have.
  • Industry commitment to WiMAX 16m, the ITU-Advanced version of WiMAX and successor to the current WiMAX 16e, is still limited.

The proposal is to adopt the 2496MHz-to-2690MHz frequency band in the US for TD-LTE. Part of the 2.6GHz band is already specified for TDD, namely the 2570MHz-to-2620MHz band.

Currently, the LTE standards support both FDD and TDD operation. Fifteen paired (for FDD operation) and eight unpaired (for TDD operation) spectrum bands have already been identified by the 3GPP for LTE as shown below.

E‑UTRA Operating Band

Uplink (UL) operating band
BS receive
UE transmit

Downlink (DL) operating band
BS transmit
UE receive

Duplex Mode

FUL_low – FUL_high

FDL_low – FDL_high

1

1920 MHz

–

1980 MHz

2110 MHz

–

2170 MHz

FDD

2

1850 MHz

–

1910 MHz

1930 MHz

–

1990 MHz

FDD

3

1710 MHz

–

1785 MHz

1805 MHz

–

1880 MHz

FDD

4

1710 MHz

–

1755 MHz

2110 MHz

–

2155 MHz

FDD

5

824 MHz

–

849 MHz

869 MHz

–

894MHz

FDD

6

830 MHz

–

840 MHz

875 MHz

–

885 MHz

FDD

7

2500 MHz

–

2570 MHz

2620 MHz

–

2690 MHz

FDD

8

880 MHz

–

915 MHz

925 MHz

–

960 MHz

FDD

9

1749.9 MHz

–

1784.9 MHz

1844.9 MHz

–

1879.9 MHz

FDD

10

1710 MHz

–

1770 MHz

2110 MHz

–

2170 MHz

FDD

11

1427.9 MHz

–

1447.9 MHz

1475.9 MHz

–

1495.9 MHz

FDD

12

698 MHz

–

716 MHz

728 MHz

–

746 MHz

FDD

13

777 MHz

–

787 MHz

746 MHz

–

756 MHz

FDD

14

788 MHz

–

798 MHz

758 MHz

–

768 MHz

FDD

…

17

704 MHz

–

716 MHz

734 MHz

–

746 MHz

FDD

...

33

1900 MHz

–

1920 MHz

1900 MHz

–

1920 MHz

TDD

34

2010 MHz

–

2025 MHz

2010 MHz

–

2025 MHz

TDD

35

1850 MHz

–

1910 MHz

1850 MHz

–

1910 MHz

TDD

36

1930 MHz

–

1990 MHz

1930 MHz

–

1990 MHz

TDD

37

1910 MHz

–

1930 MHz

1910 MHz

–

1930 MHz

TDD

38

2570 MHz

–

2620 MHz

2570 MHz

–

2620 MHz

TDD

39

1880 MHz

–

1920 MHz

1880 MHz

–

1920 MHz

TDD

40

2300 MHz

–

2400 MHz

2300 MHz

–

2400 MHz

TDD

What is difference in between LTE FDD & TDD?

In both LTE FDD and LTE TDD, the transmitted signal is organized into subframes of 1 millisecond (ms) duration and 10 subframes constitute a radio frame. Each subframe normally consists of 14 OFDM symbols (12 OFDM symbols in case of the so-called “Extended Cyclic Prefix”).

Although the frame structure is, in most respects, the same for LTE FDD and LTE TDD, there are some differences between the two, most notably the use of special subframes in TDD. Another difference is the other subframes are allocated either for uplink transmission or for downlink transmission.

In case of FDD operation, there are two carrier frequencies, one for uplink transmission (fUL) and one for downlink transmission (fDL). During each frame, there are consequently 10 uplink subframes and 10 downlink subframes and uplink and downlink transmission can occur simultaneously within a cell.

In case of TDD operation, there is only one single carrier frequency and uplink and downlink transmissions in the cell are always separated in time. As the same carrier frequency is used for uplink and downlink transmission, both the base station and the mobile terminals must switch from transmission to reception and vice versa. Thus, as a subframe is either an uplink subframe or a downlink subframe, the number of subframes per radio frame in each direction is less than 10.

Further readings: 3GPP LTE for TDD Spectrum in the Americas, 3GPP standards

Friday, March 26, 2010

Measurements in LTE E-UTRAN

In LTE E-UTRAN, measurements to be performed by a UE for mobility are classified as below CFFEE77MB3M8
  • Intra-frequency E-UTRAN measurements
  • Inter-frequency E-UTRAN measurements
  • Inter-RAT measurements for UTRAN and GERAN
  • Inter-RAT measurements of CDMA2000 HRPD or 1xRTT frequencies
For each measurement type a measurement identity is used by E-UTRAN when configuring measurements as well as by the UE when reporting results of the measurements. Measurement quantities and reporting events are considered separately for each measurement type.

Measurement commands are used by E-UTRAN to order the UE to start measurements, modify measurements or stop measurements. Three reporting criteria are used: event triggered reporting, periodic reporting and event triggered periodic reporting.

For measurements within E-UTRAN at least two basic UE measurement quantities shall be supported:
  • Reference symbol received power (RSRP)
  • E-UTRA carrier received signal strength indicator (RSSI)
In LTE E-UTRAN measurements performed by a UE for intra/inter-frequency mobility can be controlled by eNB, using broadcast or dedicated control. In RRC_IDLE state, a UE follows the measurement parameters defined for cell reselection specified by the E-UTRAN broadcast. In RRC_CONNECTED state, a UE follows the measurement configurations specified by RRC directed from the eNB (e.g. as in UTRAN MEASUREMENT_CONTROL).

Intra-frequency neighbour (cell) measurements are performed by the UE when the current and target cell operates on the same carrier frequency. The UE should be able to carry out such measurements without measurement gaps. See below some intra frequency scenarios without measurement gaps


Inter-frequency neighbour (cell) measurements are performed by the UE are when the neighbour cell operates on a different carrier frequency, compared to the current cell. The UE should not be assumed to be able to carry out such measurements without measurement gaps. UE may need to perform neighbour cell measurements during DL/UL idle periods that are provided by DRX or packet scheduling (i.e. gap assisted measurements). See below some inter frequency scenarios with measurement gaps


The UE determines whether a particular cell measurement needs to be performed in a transmission/reception gap and the scheduler needs to know whether gaps are needed. Measurement gaps patterns are configured and activated by RRC.

For Intra-frequency neighbouring cells, there is no need to indicate neighbouring cell in the serving cell system information to enable the UE to search and measure a cell i.e. E-UTRAN relies on the UE to detect the neighbouring cells. Where as for the search and measurement of inter-frequency neighbouring cells, only the carrier frequencies need to be indicated.

For a UE to search and measure neighbouring GERAN cells, the ARFCNs of the BCCH carriers need to be indicated in the serving cell system information . For a UE to search and measure neighbouring UTRAN cells, the serving cell indicates a list of carrier frequencies and scrambling codes.

Source : 3GPP TS 36.300

Thursday, March 18, 2010

Tuesday, March 9, 2010

3GPP and Broadband Forum Collaborate on Fixed Mobile Convergence Standards

3GPP and the Broadband Forum worked together for their first joint workshop on Fixed/Mobile Convergence (FMC). Workshop was held on February 18-19 in San Francisco. The two-day workshop was attended by 120 industry experts, who reviewed over 40 contributions focused primarily on use cases and joint requirements.

Primarily 3GPP and Broadband Forum members attended this workshop. It also included representatives from ETSI TISPAN, ATIS and other standards bodies. The diverse group came together with a shared goal; to start the process of aligning new FMC work in each organization to best address both fixed and wireless management requirements. The two days spent together allowed the group to identify the key issues at hand and the work that needs to be done. With words of appreciation and encouragement from workshop co-chairs, Stephen Hayes of 3GPP and Dave Allan of the Broadband Forum, each organization took away work items that address both near term and long term next steps for both 3GPP and the Broadband Forum.

Through liaison communications and technical contributions into each organization, joint requirements will be shared, and another workshop is envisioned for the future after a scope and gap analysis is performed by the organizations.

Workshop documents and presentations are at available at following links

§ Beyond FMC Interworking UDC for FMC

§ Proposed Use Case and Requirement based on Policy Control in FMC

§ Proposed Architecture for Policy Control in FMC

§ Seamless WLAN offload

§ 3GPP EPC Overview

§ Broadband Forum Status (Revised version)

§ 3GPP-BBF Interworking - Mobility-Roaming-Nomadism (See Workshop docs for various revisions of this document – Last version)

§ 3GPP-BBF Interworking - Authentication/Authorization/Accounting

§ 3GPP-BBF Interworking Policy & QoS

§ High level analysis of Interworking between fixed NW access and 3GPP domain

§ ATIS’ Organizational Efforts on FMC

§ ATIS Exploratory Group on Convergence (EGC) Report & Recommendations

§ 3GPP-BBF Interworking - Use Cases for Public and Enterprise Wireline Interworking

§ 3GPP-BBF Interworking - S9 Interface: Requirements and Protocol Selection Criteria

§ 3GPP-BBF Interworking - Proposal for PCRF Based BPCF

§ Media and Codec policies architecture with converged Next Generation Networks

§ Focus on working procedures for the policy control aspect of FMC

§ PCRF-BPCF Functional Split and Information Exchange

§ View on FMC – Policy Control

§ ETSI TISPANPolicy Management Overview

§ 3GPP Work Item Description - Support for BBF Accesses Interworking

§ WT-203 - Interworking between next Generation Fixed and 3gpp wireless access

§ Fixed Mobile Interworking - QoS Control via S9

§ Policy Interworking – How to setup QoS for a 3GPP UE in a BBF domain

§ Fixed Mobile Interworking - Establishing the s9 Session

§ Connectivity and Mobility Considerations

§ Authenticaton Conundrum

§ TISPAN Policy Management Overview

§ 3GPP-BBF Architecture - Mobility aspects

§ Change Request to 3GPP Technical Specification 22.278 - Addition of operational Requirements for Fixed Mobile Convergence

§ Key Workshop findings

    Saturday, March 6, 2010

    The contribution of 4G in automotive

    An interesting video about 4G possibilities from Alcatel-Lucent.

    Clip presentation of future inflows mobile network 4G in several sectors, including automotive.




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