Telecommunications Blog: OFDMA

A blog for mobile communications systems GSM , UMTS and LTE

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Showing posts with label OFDMA. Show all posts
Showing posts with label OFDMA. Show all posts

Wednesday, March 14, 2012

what is 4G LTE cellular technology ?

3/14/2012 02:20:00 PM 0
what is 4G LTE cellular  technology ?
Its full name is 3GPP Long Term Evolution for the Universal Mobile Telecommunications System, or 3GPP UMTS LTE for short. LTE (Long Term Evolution) is a wireless broadband technology designed to support roaming Internet access via cell phones and handheld devices.


Where the current generation of mobile telecommunication networks are collectively known as 3G, LTE is marketed as 4G.


Requirements :

  • Reduced cost per bit
  • Increased service provisioning – more services at lower cost with better user experience
  • Flexibility of use of existing and new frequency bands
  • Simplified architecture, Open interfaces
  • Allow for reasonable terminal power consumption

LTE Specifications :



 LTE uses two different types of air interfaces (radio links), one for downlink (from tower to device), and one for uplink (from device to tower).For the downlink, LTE uses an OFDMA (orthogonal frequency division multiple access) air interface For the uplink (from device to tower), LTE uses the DFTS-OFDMA (discrete Fourier transform spread orthogonal frequency division multiple access) scheme of generating a SC-FDMA (single carrier frequency division multiple access) signal. 

The major difference between the OFDMA signal for downlink and the SC-FDMA signal for uplink is that it uses a discrete Fourier transform function on the data to convert it into a form that can be used to transmit.

Monday, February 27, 2012

4G LTE air interface - Radio Frequency Aspects

2/27/2012 08:50:00 AM 0
4G LTE air interface - Radio Frequency Aspects
LTE air interface adopts OFDMA (orthogonal frequency division multiple access) for the downlink and SC-FDMA (single-carrier frequency domain multiple access) for the uplink. It employs AMC (adaptive modulation and coding) as well as a number of optional MIMO (multiple-input multiple-output) antenna techniques and interference management methods for potential performance enhancements.

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One of the first things to note about LTE is the integration between the Frequency Division Duplex (FDD) and Time Division Duplex (TDD) radio access modes. In the previous Universal Mobile Telephone System (UMTS) specifications, which also supported FDD and TDD, the RF specifications for the UE FDD, UE TDD, base station FDD and base station TDD modes were covered in separate documents.

However, the early decision by 3GPP to fully integrate FDD and TDD modes for LTE has resulted in only one RF specification document each for the UE and the eNB. With the higher level of integration between the two modes, the effort required to support them should be less than it was in the past.

Channel Bandwidths:

LTE was designed from the start to support six different channel bandwidths. These are 1.4 MHz, 3 MHz, 5 MHz, 10 MHz, 15 MHz and 20 MHz. In addition to this the subcarriers are spaced 15 kHz apart from each other. To maintain orthogonality, this gives a symbol rate of 1 / 15 kHz = of 66.7 µs.

Earlier versions of the specifications also supported 1.6 MHz and 3.2 MHz for interworking with LCR TDD, but these were removed when the LTE TDD frame structure was aligned with the FDD frame structure rather than the TD-SCDMA frame structure from UMTS.

Wednesday, January 12, 2011

Using SC-FDMA in LTE

1/12/2011 02:51:00 AM 0
Using SC-FDMA in  LTE

     Single carrier frequency division multiple access (SC-FDMA) has been adopted by the third generation partnership project (3GPP) for uplink transmission in technology standardized for long term evolution (LTE) of cellular systems.SC-FDMA was chosen because it combines the low PAPR techniques of single-carrier transmission systems, such as GSM and CDMA, with the multi-path resistance and flexible frequency allocation of OFDMA. 
 
     Data symbols in the time domain are converted to the frequency domain using a discrete Fourier transform (DFT).Then in the frequency domain they are mapped to the desired location in the overall channel bandwidth before being converted back to the time domain using an inverse FFT (IFFT).