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Tuesday, August 4, 2015
4G rollout in India - What to expect?
4G rollout in India - What to expect?
The 3GPP recomended LTE system essentially has FDD and TDD modes.After the introduction of 3G services, Indian consumers have been really demanding, especially for faster mobile internet speeds and improved connectivity. For India, operators are contemplating TD-LTE variant of the LTE standard. Frequency band also plays a crucial role. Multiple frequency/technology options are in the offing.
1. TDD-LTE on 2300 MHz spectrum (auctioned in 2010)
2. FDD-LTE on on 1800 MHz spectrum (auctioned recently)
3. FDD-LTE on 850 MHz spectrum
The operators are split among these bands.Therefore, most likely, India will see multi-band LTE roll-outs. Now, this requirement is going to be a headache for the handset vendors as it pushes the handset prices through the roof. For example, we know that the new iPhones (launched outside india) does not support the TDD version of LTE technology, but more globally trusted variant, FDD. As a result, the iPhones bought outside india may not support the LTE version in India.
So make sure the handset supports "Indian 4G-LTE" if you plan to migrate to 4G.
Tuesday, July 21, 2015
Embedded SIM (e-SIM) to usher next wave of connected devices
News: "Apple and Samsung are in talks with major network providers to adopt electronic SIM cards for smartphones".What is this e-Sim they are talking about?
e-SIM : Embedded SIM
The term "e-SIM" relates to a new standard being promoted by the GSMA - the association that represents network operators worldwide.The GSMA Embedded SIM has been proposed to
promote a common global SIM, enabling a the new era of mobile communications. The e-SIM has the same functionality of a normal,removable SIM, but in a different form factor.It resides as a chip, permanently soldered into your cell phones.The information on it will be rewritable by all operators. So, a user can decide to switch operator as and when he wishes so. A new SIM will not be required.The hassle of physical swapping over is also done away with.
Advantages
- Non-Removable SIM cards
- Downloadable operator profiles
- Simpler logistical processes:
- Removes the need for stocking and and shipping of physical SIM cards.
- Operational flexibility with no compromise on security.
- Lower cost for products
When will it be coming?
The e-SIM will require new hardware. So, we cannot expect to see them in mobile devices (Apple apparently have planned for next iPads) for at least a year. The technical specifications are being formalized.
Thursday, July 16, 2015
Wish you a "Happy following us"!!
Monday, November 8, 2010
IMT Advanced (4G) status for LTE
The 3GPP c andidate technology submission for IMT-Advanced developed as LTE Release 10 (LTE-Advanced) has been accepted as a 4G technology at the Chongqing meeting of ITU-R. The IMT-Advanced process complies with or exceeds the ITU established criteria in all aspects. This reinforces the global preeminence of the work of 3GPP which unites the leading mobile technology companies in developing market oriented high performance broadband mobile wireless systems. Final ratification of the full IMT-Advanced technology family will occur by November 2010. 3GPP in conjunction with its Organizational Partners, will provide the detailed technical specifications and standards to the ITU-R by 2011, for inclusion in the Recommendation ITU-R.
IMT-Advanced supports the evolving and expanding needs of the broad international base of mobile operators and allows the users of wireless mobile broadband to experience, on a global basis, a rich and innovative range of service and capabilities that is unparalleled by any other technology.
Ref : 3gpp.com
Saturday, July 24, 2010
Mobile TV
Mobile TV
Mobile TV means television contents that can be watched on small hand-held devices. It may be a pay TV service broadcast on mobile phone networks or received free-to-air via terrestrial television stations from either regular broadcast or a special mobile TV transmission format. Some mobile televisions can also download television shows from the internet, including recorded TV programs and podcasts.i.e. the content may be obtained either through an existing cellular network or a propriety network.
Standards
DVB-H (Digital Video Broadcasting - Handheld)
This is the major one of the mobile TV formats. DVB-H was formally adopted as ETSI standard as early as in November 2004. DVB-SH (Satellite to Handhelds), DVB-NGH (Next Generation Handheld) are possible enhancements to DVB-H, providing improved spectral efficiency and better modulation flexibility.
ATSC-M/H (Advanced Television Systems Committee - Mobile/Handheld)
This standard for mobile digital TV allows TV broadcasts to be received by mobile devices. ATSC-M/H is an extension to the available digital TV broadcasting standard ATSC A/53. ATSC is optimized for a fixed reception and uses 8VSB modulation.
MediaFLO
This technology transmits video and data to portable devices. In the United States, the service powered by this technology is branded as FLO TV. Broadcast data transmitted via MediaFLO includes live, real time audio and video streams, as well as scheduled video and audio clips and shows. The technology can also carry Internet Protocol data-cast application data.
Tuesday, May 11, 2010
WiMax 2
What is WiMax 2?
WiMAX 2 is the next phase of WiMAX technology which is based on the IEEE 802.16m standard. This standard has been built upon the existing 802.16e standard by adding new capabilities while maintaining backward compatibility. Yes, WiMax 2 will be backward compatible to the existing WiMax standard. WiMAX 2 offers higher system capacity with peak rates of more than 300 Mbps, lower latency and increased VoIP capacity, meeting the International Telecommunications Union (ITU) requirements for 4G technology.WiMAX forum vice president Mohammad Shakouri says the goal is for the new WiMAX standard to deliver average downlink speeds of more than 100Mbps to users. 802.16m amendment will provide the basis for WiMAX System Release 2 and provide existing WiMAX operators a graceful migration path to gain performance enhancements and add new services. IEEE 802.16m specification is expected to be completed by end of the in the 3rd quarter of 2010.
Improvements
WiMax 2 is expected to offer improved performance in areas like
• Coverage and Spectral Efficiency
• Power Conservation
• Data Capacity and VoIP capabilities
• Lower Latency and QoS Enhancements
• Inter-working with other Wireless Networks
• Multi-carrier support
• GPS based services
• Self-Organizing network features
Future of WiMAX
According to WiMAX forum, nearly 45 companies have actively supported IEEE 802.16m as an IMT-Advanced technology alternative. It is widely expected that both LTE-Advanced and 802.16m will be included. The performance enhancements defined in IEEE 802.16m build on the capabilities established with IEEE 802.16e-2005, which has 4 years of worldwide, field-proven experience. This assures backwards compatibility, hence WiMAX System Release 2 will provide a graceful migration path for today’s WiMAX operators. This also provides them the confidence that they have selected a proven technology that is structured to meet current and future network demands. With this evolutionary growth path, the WiMAX technology is well-positioned to
meet the challenges and demands anticipated for the next generation of mobile networks.
Ref: www.wimaxforum.org
Thursday, April 29, 2010
Femtocell : Devices on offer and Companies
picoChip was one of the the first companies in the world to offer a femtocell modem. picoChip claims to have the industry's broadest portfolio of femtocell solutions. They have a family of Socs (PC3xx) all aimed at femtocell configurations in one form or other.
Percello is another company that offers integrated, low-cost digital baseband processors for WCDMA and LTE Femtocells. Percello provides many customized solutions that reduce the design challenges of Femtocell equipment vendors in the market.
DesignArt’s DAN2xxx series of SoCs provide a platform specifically targeted at WiMAX femtocell and repeater designs. These are optimized for low-cost, high performance indoor access point applications. The key features include high level of functional integration, complete PHY and MAC baseband solution, control plane, networking and home gateway application processing.
Analog Devices offers a 3G integrated Radio transceiver aimed at offering high-performance 3G femtocell solutions. Another offering is a from the MxFE family of integrated converters for the communications market. Analog devices claim that the device is ideally suited for low-cost, high-performance femtocell applications.AD also has a range of devices including accurate clock references, RF amplifiers and an evaluation board too.
There are several other companies like Qualcomm Inc. and Runcom Technologies Ltd who are working on the dvelopment of a femto-chip.
Wednesday, April 28, 2010
HSPA, HSDPA, HSUPA: confused?
Evolution of Mobile Broadband
One of the most important features of a 3G mobile service is the high speed data access. As the market expands, requirement also increases, thereby bringing in the necessity for new standards. Most of the data access traffic is downlink oriented or just like in an internet access biased towards the end user. Improving this will result in a better user experience.
HSDPA, HSUPA, HSPA
HSDPA (High-Speed Downlink Packet Access) is a 3G mobile communications protocol in which the networks can offer higher data transfer speeds and capacity. Currently HSDPA deployments support down-link speeds of 1.8, 3.6, 7.2 and 14.0 Mbit/s. Its true that most of the traffic is downlink oriented, still,there are a few applications that will benefit from an improved uplink. Typical examples are large pictures, movies etc. The 3G service which provides an enhanced uplink is the HSUPA (High-Speed Uplink Packet Access). So whats HSPA then? HSDPA and Enhanced Uplink are together known as High Speed Packet Access (HSPA)! Another term you might encounter in the near future is HSPA+ (also called Evolved HSPA). This is an upcoming wireless broadband standard which is expected to provide data rates up to 42 Mbps in the downlink and 11 Mbps in the uplink. A post on HSPA+ is already there in this blog.
So be armed with the knowledge next time you step into a phone store!!!!
Thursday, April 22, 2010
3GPP release 10: What to expect
The detailed overview of the specification is available from 3GPP.
Wednesday, April 21, 2010
3GPP Picks Femtocell Standards
Femtocells
The term has already been introduced to in one of the earlier posts. Femtocells are low-power wireless access points that operate in licensed spectrum to connect standard mobile devices to a mobile operator’s network using residential DSL or cable broadband connections.A Home Node B (HNB), is the 3GPP's term for a 3G femtocell. A Node B is an element of a 3G macro Radio Access Network (RAN). A femtocell performs many of the function of a Node B, but is optimized for deployment in the home.
The new standard
The new standard covers the following main areas:
- Network architecture
- Radio & interference aspects
- Femtocell management / provisioning and security
Saturday, April 10, 2010
LTE SON
Why SON
Newer and better classes of mobile devices are coming out to the market thereby providing a push to the total wireless data usage. Consequently, the wireless service providers are forced to offer support to a growing number of higher-bandwidth data applications and services on their networks,while simultaneously keeping the delivery cost as low as possible. This growth in wireless data demand is so rapid that it is also expected to increase Radio Access Network complexity through additions of femtocells, picocells, as well as WiFi access points in order to drive increases in coverage and capacity. All these demands put a lot of pressure upon service providers in the areas of network performance and operations. The traditional network management has been proved to be quite inadequate for managing the growing data volume and network complexity in a cost-effective manner.
SON
Self-Configuration by itself is quite a broad concept.It involves several distinct functions that are covered through specific features like the Automatic Software Management,Self Test and Automatic Neighbor Relation configuration. Self-Configuration of networks are expected to reduce the amount of manual processes involved in the planning, integration and configuration of new eNodeBs. This helps in faster network deployment and also paves way for reduced costs for the operator. SON provides a more integral inventory management system that has lesser volume of human errors. The Self - Configuration actions takes place after the eNodeB is installed, and plugged to the power line and to the transport link.On power on, it will boot and perform a Self Test, followed by a set of self-discovery functions. After the self-discovery,auto-configuration of the transport link happens and connections are established with the corresponding servers. After the node is self-configured one more self-test covering all hardware and software functions is run and report is presented to the network management node.
Current status
Current LTE standards do incorporate functionality related to the self- configuration, including Automatic Software Management Self Test, Automatic Neighbor Relation and Automatic Inventory Management.3GPP has not fully specified a standardized self-configuration functionality as of now. So it is natural that the first versions of the eNodeB self-configuration functionality will be basically having vendor dependent aspects, as .
Monday, April 5, 2010
Universal Charging Solution
- reduce standby energy consumption
- eliminate thousands of tonnes of duplicate chargers
- enhance the end-user experience for mobile customers
UCS advantage
UCS is based on a Common Power Supply (CPS) having atleast a 4-star or higher energy rating. It will meet all efficiency regulations. With UCS in place, fewer chargers need to be manufactured each year which helps in reducing greenhouse gases produced in making and delivery of the replacement chargers. The widespread adoption of a Universal Charging Solution (UCS) is expected to result in:
- up to 50% reduction in standby energy consumption
- elimination of up to 51,000 tonnes of duplicate chargers
- enhance the end user experience and simplify the charging of mobile devices
For the consumer, charging a mobile device will simplify the end-user experience. Consumers will be able to carry fewer chargers and charge mobile phones anywhere from any available charger. Consumers will also be able to re-use chargers even when they upgrade their phone or if they have different mobile phones from different manufacturers but still want to carry and use a single charger.
The inititative was launched in 2009 and the group expects a UCS world by 2012.
For a product overview, visit GSMA site.
Friday, March 26, 2010
Telecom - 10 years from Now...
Its fascinating that our limitations are mostly due to our limited vision of future. Not everyone can predict the opportunities available to our industry. The vast possibilities of a great future will only become a reality if we make ourselves responsible for that future.
2020 shaping Ideas
What will life be like in 2020? What will consumers, enterprises and society want from communications in 2020? How will the world evolve? What habits and needs will people have? What kinds of technologies will they use to make life easier? Life in 2020 reflects Ericsson’s view of what the world of communications might look like in the future.
2020-shaping ideas is an Ericsson initiative worth following. It reflects the views of different thinkers, prominent personalities on how broadband and 24-hr connectivity will shape our life in the future. The site itself has an interesting design with lot of clips attached each one presenting a different view of the life 2020. The one by Adrian Bowyer on the Rep Rap machine using which you can download physical objects is very interesting. The concept itself is an amazing one.
More on this at the Ericsson site "2020-shaping ideas"
Check it out. The future is really promising!!!!
Friday, March 19, 2010
VoLTE - Voice over LTE
Approaches
LTE (Long-Term Evolution) is shaping up as the choice of most mobile operators worldwide for next-generation networks, but it is not designed currently to carry voice or SMS traffic in the same way today's carrier networks do. This is basically because it uses a packet-based IP (Internet Protocol) data network. When looking at the options for ways of carrying voice over LTE, a number of possible solutions were arrived at. Equipment vendors and carriers have been lining up around two approaches to handle voice on LTE, called VoLGA (Voice over LTE via Generic Access) and One Voice.CSFB, Circuit Switched Fall Back is a less popular alternative.
Nokia Siemens Networks claims to have carried out a voice call over LTE networks at its research and development centers, recently. The call used the company's Fast Track VoLTE technology, which it said is aligned with the One Voice initiative. Meanwhile, Deutsche Telekom also claimed it had completed an LTE voice call using VoLGA technology, using independent VoLGA-based systems from Kineto Wireless and Alcatel-Lucent. Kineto has announced a new release of software for its access gateway that the company said supports the VoLGA Forum's specification.
The One Voice
The One Voice profile for Voice over LTE is proposed by a collaboration between over forty operators including: AT&T, Verizon Wireless, Nokia and Alcatel-Lucent. At the 2010 GSMA Mobile World Congress, GSMA announced that they were supporting the One Voice solution to provide Voice over LTE. VoLTE, Voice over LTE is an IMS-based specification. Adopting this approach will enable it to integrate into the suite of applications that will become available on LTE.
VoLGA
The VoLGA standard is based on the existing 3GPP Generic Access Network (GAN) standard. It aims at enabling LTE users to receive a consistent set of voice, SMS (and other circuit-switched) services as they transition between GSM, UMTS and LTE access networks.
CSFB, Circuit Switched Fall Back
The circuit switched fallback(CSFB) LTE has been standardised under 3GPP specification 23.272. LTE CSFB uses a variety of processes and network elements to enable the circuit to fall back to the 2G or 3G connection before a circuit switched call is initiated. It also allows for SMS to be carried since it is essential for set-up procedures for cellular telecommunications. The handset uses an interface known as SGs which allows messages to be sent over an LTE channel.
In the future, mobile operators with LTE will have to carry voice and SMS traffic alongside data on a single network using LTE. This will make more efficient use of radio spectrum. But the transition to that point is still very far!
Monday, March 1, 2010
Evolving HSPA : HSPA+
HSPA+
HSPA+ is a simple upgrade to HSPA networks existing today. HSPA+ provides a performance advantage for the GSM-HSPA operators providing OFDMA equivalent performance in 5X5 MHz spectrum allocations
with only incremental investment.HSPA+ doubles the data capacity over HSPA and over WCDMA, it offers more than double voice capacity. Lower latency is being projected as one of the key advantages. Higher order modulation schemes are utilized to enhance the data rates. HSPA+ networks are likely to co-exist with LTE networks during the initial years, after which the oprerators may want to shift to the next level of efficiency. The discontinuous transmit/receive feature allows the device to gate off the control channels when there is no user data to send. Similarly the receiver is turned off at certain agreed intervals when there is no downlink information to the device. Such a synchronized operation allows the device to shut off its transmitter and receiver blocks completely, which significantly improves the device battery life for voice over HSPA services.
HSPA+ thus provides an excellent technology evolution path from HSPA, enabling operators to maximize their return on existing investments.
Wednesday, February 17, 2010
3GPP networks : shrinking the globe further
On the wireless broadband front the UMTS Forum confirms that subscriptions to 3G/UMTS networks have reached 500 million. The milestone has been achieved in just eight years after the world’s first commercial 3G/WCDMA network was deployed by Japanese operator NTT DOCOMO. According to data from wireless Intelligence (http://www.wirelessintelligence.com), there are now over 300 UMTS family networks worldwide.The total includes almost 40% of 3G/UMTS subscribers who are enjoying an enhanced mobile broadband experience via HSPA networks. Over 35 HSPA+ networks are now commercialized, boosting theoretical peak data rates as high as 28 Mb/sec.It is amazing to note that it took fixed telephone networks over a century to reach their first half billion customers. GSM networks have achieved the same milestone in only a decade!. This clearly is a reflection of the modern world's ever-growing need to stay connected. WCDMA and now HSPA are delivering the same services at a cost that made GSM a global success. Building on the success of the WCDMA/HSPA systems, LTE is expected to offer end-users an even faster, more satisfying mobile Internet experience, while attracting a new wave of players from new frontiers.
Wednesday, February 3, 2010
LTE is IMT advanced - 3GPP
Wednesday, January 27, 2010
Single Carrier FDMA - for 4G wireleess
TDMA and CDMA has been the major technologies in multiple access. The highest bit rates in commercially deployed wireless systems are achieved by means of Orthogonal Frequency Division Multiplexing (OFDM). The next advance in cellular systems, under investigation by the Third Generation Partnership Project (3GPP), also anticipates the adoption of OFDMA to achieve higher bit rates. Single carrier frequency division multiple access (SC-FDMA), a modified form of Orthogonal FDMA (OFDMA), is a promising technique for high data rate up-link communications in future cellular systems.
SC FDMA
An SC system transmits a single carrier, modulated, for example, with QAM, at a high symbol rate. The transmitters use different orthogonal subcarriers to transmit information symbols. The transmission is sequential, which reduces the variations in the transmitted signal envelope. This results in a lower peak-to-average-power ratio. Frequency domain equalization os carried out to counter the severe delay spreads the signal might encounter. The advantages may be listed as:
- Small variations in the instantaneous power of the transmitted signal
- Possibility for low-complexity high-quality equalization in the frequency domain.
- Possibility for FDMA with flexible bandwidth assignment.
- SC-FDMA can be seen as normal OFDM with a DFT-based precoding
SC-FDMA transmitter and receiver

The block diagram of the SC-FDMA receiver and transmitter is given the figure. The figure is self-explanatory. Similar to OFDM modulation, DFTS-OFDM relies on block-based signal generation.
By adjusting the transmitter DFT size and the size of the block of modulation symbols the nominal bandwidth of the DFTS-OFDM signal can be dynamically adjusted.
Throughput
Information throughput is another indication of the system performance. Here the throughput depends on the manner in which information is applied to the subcarriers. The two main methods are localized and distributed. The benefit of distributed system, compared to localized, is the possibility for additional frequency diversity as even a low-rate distributed signal can be spread over a potentially very large overall transmission bandwidth. It has been shown that the SC-FDMA can be tuned to achieve data rates in excess of 40Mbps.
Future
Within a specific SC-FDMA system configuration, there are many design and operational choices that affect performance in a complex manner . The impact of channel estimation error on the throughput performance of SC-FDMA is still not understood clearly. Still, SC-FDMA is a promising technique for high data rate
uplink communication in future cellular systems.
Tuesday, January 5, 2010
Operator ID for WMAN
IEEE 802.16 Operator ID & Base station ID
The IEEE 802.16 Operator ID is a sequence of 24 bits. It is administered by the IEEE Registration Authority. A Base Station ID is defined as a sequence of 48 bits. The first 24 bits take the values of the 24 bits of the Operator ID.
Operator ID Usage
The Operator ID referenced in the assignee's IEEE Registration Authority Assignment is described as a 24-bit globally assigned Operator ID and as an integral part of a 48-bit globally assigned Base Station ID. An Operator ID assignment allows the operator to generate approximately 16 million Base Station IDs, by varying the last three octets.
The method that an operator uses to ensure that no two of its Base Stations carry the same ID will, of course, depend on the assignment process and the operator's philosophy. However, the network selection algorithms may expect Base Stations to have unique IDs. The ultimate responsibility for assuring that expectations and requirements are met, therefore, lies with the operator of the Base Station.
Monday, December 21, 2009
OFDM - Accelerating data rates
Orthogonality
In OFDM, the sub-carrier frequencies are chosen so that the sub-carriers are orthogonal to each other, meaning that cross-talk between the sub-channels is eliminated and inter-carrier guard bands are not required. This greatly simplifies the design of both the transmitter and the receiver. A separate requirement for different filters is thus eliminated. This results in high spectral efficiency, resiliency to RF interference, and lower multi-path distortion. But this also means high accuracies in synchronization between transmitter and receiver is required.
OFDM exhibits lower multi-path distortion (delay spread), since the sub-signals are sent at lower data rates. Because of the lower data rate transmissions, multi-path-based delays are not nearly as significant as they would be with a single-channel high-rate system. For example, a narrow band signal sent at a high rate over a single channel will likely experience greater negative effects from delay spread because the transmitted symbols are closer together. In fact, the information content of a narrow band signal can be completely lost at the receiver if the multi path distortion causes the frequency response to have a null at the transmission frequency. The use of the multi-carrier OFDM significantly reduces this problem.
Simple Implementation
The orthogonality allows for efficient modulator and demodulator implementation using the FFT algorithm on the receiver side, and inverse FFT on the sender side. Although the principles and some of the benefits have been known since the 1960s, OFDM is popular for wideband communications today by way of low-cost digital signal processing components that can efficiently calculate the FFT.
Elimination of intersymbol interference
One key principle of OFDM is that since low symbol rate modulation schemes i.e. where the symbols are relatively long compared to the channel time characteristics suffer less from inter symbol interference caused by multi path propagation, it is advantageous to transmit a number of low-rate streams in parallel instead of a single high-rate stream. Since the duration of each symbol is long, it is feasible to insert a guard interval between the OFDM symbols, thus eliminating the inter symbol interference. The cyclic prefix, which is transmitted during the guard interval, consists of the end of the OFDM symbol copied into the guard interval, and the guard interval is transmitted followed by the OFDM symbol. The reason that the guard interval consists of a copy of the end of the OFDM symbol is so that the receiver will integrate over an integer number of sinusoid cycles for each of the multi paths when it performs OFDM demodulation with the FFT.
Simplified equalization
The effects of frequency-selective channel conditions, for example fading caused by multipath propagation, can be considered as constant (flat) over an OFDM sub-channel if the sub-channel is sufficiently narrow-banded, i.e. if the number of sub-channels is sufficiently large. This makes equalization far simpler at the receiver in OFDM in comparison to conventional single-carrier modulation. The equalizer only has to multiply each detected sub-carrier (each Fourier coefficient) by a constant complex number, or a rarely changed value.
Importance of channel coding
Channel coding is used in most cases of digital communication and especially in case of mobile communication. Channel coding implies that each bit of information to be transmitted is spread over several, often very many, code bits. If these coded bits are then, via modulation symbols, mapped to a set of OFDM subcarriers that are well distributed over the overall transmission bandwidth of the OFDM signal, each information bit will experience frequency diversity in case of transmission over a radio channel that is frequency selective over the transmission bandwidth, despite the fact that the subcarriers, and thus also the code bits, will not experience any frequency diversity. Thus, in contrast to the transmission of a single wideband carrier, channel coding (combined with frequency interleaving) is an essential component in order for OFDM transmission to be able to benefit from frequency diversity on a frequency-selective channel.
OFDM for Access control
OFDM can also be used as a user-multiplexing or multiple-access scheme, allowing for simultaneous frequency-separated transmissions to/from multiple mobile terminals. In the downlink direction, OFDM as a user-multiplexing scheme implies that, in each OFDM symbol interval, different subsets of the overall set of available subcarriers are used for transmission to different mobile terminals. Similarly, in the uplink direction, OFDM as a user-multiplexing or multiple access scheme implies that, in each OFDM symbol interval, different subsets of the overall set of subcarriers are used for data transmission from different mobile terminals.
Issues
A drawback of OFDM modulation, as well as any kind of multi-carrier transmission, is the large variations in the instantaneous power of the transmitted signal. Such power variations imply a
reduced power-amplifier efficiency and higher power-amplifier cost. This is especially critical for the uplink, due to the high importance of low mobile-terminal power consumption and cost. Several methods have been proposed on how to reducethe large power variations of an OFDM signal. However, most of these methods have limitations in terms of to what extent the power variations can be reduced. Furthermore, most of the methods also imply a significant computational complexity and/or a reduced link performance.