Saturday, July 30, 2011

GSA: LTE user devices grow 155% in 6 months

According to recent GSA report 45 manufacturers have announced 161 LTE-enabled user devices, representing 155% growth in the number of products reported by GSA in early February 2011.

Most devices are designed to ensure ubiquitous mobile broadband coverage by supporting existing mobile network technologies – i.e. dual mode working. The report indicates for each device where complementary modes are supported e.g. HSPA, HSPA+ and/or EV-DO and TD-SCDMA as appropriate, in addition to the LTE mode. Around 100 products support LTE and HSPA (or HSPA+) modes.

Breakdown of 161 LTE user devices are shown below.

Source: GSA report Status of the LTE Ecosystem

Network Sharing in LTE

3GPP network sharing architecture allows different core network operators to connect to a shared radio access network. The operators do not only share the radio network elements, but may also share the radio resources themselves.

Network-sharing scenario allows operators without a UMTS/ LTE license to share the network and supply its customers with 3G/4G services. For example, a 2G operator may supply its subscribers with 3G/4G services using another operator’s allocated spectrum.

3GPP has identified two architectures for network sharing. In both architectures, the radio access network is shared.

In first architecture evolved packet core network element MME is also shared in addition of radio access network (E-UTRAN). This configuration is referred to as a Gateway Core Network (GWCN) configuration.

In second architecture only radio access network (E-UTRAN) is shared and is referred as the Multi-Operator Core Network (MOCN) configuration.

The UE behavior in both of these configurations is same. No information concerning the configuration of a shared network is indicated to the UE.

If the E-UTRAN is shared by multiple operators, the system information broadcasted in each shared cell contains the PLMN-id of each operator (up to 6) and a single tracking area code (TAC) valid within all the PLMNs sharing the radio access network resources.

Based on system broadcasts UE selects desired PLMN and reports it to eNB during RRC connection setup. eNB includes the selected PLMN is in the INITIAL UE MESSAGE message while sending it to MME. The MME indicates the selected core network operator PLMN-id to the UE in the GUTI during initial attach procedure.

source: LteWorld

Wednesday, July 20, 2011

GSA: 91 commercial LTE networks by 2012

The GSA (Global mobile Suppliers Association) has confirmed that 218 operators are now investing in LTE. According to GSA, 166 firm commercial LTE network deployments are in progress or planned in 62 countries, including 24 networks which have commercially launched. A further 52 operators in 19 additional countries are engaged in LTE technology trials, tests or studies.

The 62 countries and territories having firm LTE network commitments are Andorra, Armenia, Australia, Austria, Bahrain, Belgium, Brazil, Canada, Chile, China, Colombia, Croatia, Denmark, Estonia, Finland, France, Germany, Hong Kong, Hungary, India, Ireland, Italy, Jamaica, Japan, Jersey, Jordan, Kazakhstan, Kuwait, Latvia, Libya, Lithuania, Luxembourg, Malaysia, Moldova, Monaco, Namibia, Nepal, Netherlands, New Zealand, Nigeria, Norway, Philippines, Poland, Portugal, Qatar, Romania, Russia, Saudi Arabia, Singapore, Slovenia, South Africa, South Korea, Sri Lanka, Sweden, Switzerland, Taiwan, Tunisia, UAE, UK, Uruguay, USA, and Uzbekistan

24 LTE networks are commercially launched in 16 countries: Austria, Denmark, Estonia, Finland, Germany, Hong Kong, Japan, Lithuania, Norway, Philippines, Poland, Singapore, South Korea, Sweden, USA, and Uzbekistan.

source: GSA

Friday, June 24, 2011

LTE Weekly Update: Singapore's M1 deploys commercial LTE & Alaska Communications Announces LTE Network


Alaska Communications Announces LTE Wireless Network

Alaska Communications is building LTE network in Alaska.

Singapore's M1 deploys commercial LTE network

Singapore's telecom service provider, M1 has launched commercial LTE service.

3G Femtocells Outnumber Conventional 3G BTS

According to a recent Informa Telecoms & Media report, there are now in excess of 2.3 million 3G femtocells globally compared to 1.6 million 3G macrocells.

LightSquared offers Solution to GPS Issue

LightSquared has proposed a solution to the problem of interference with Global Positioning System (GPS) receivers.

KDDI picks Samsung for LTE

Samsung has been selected by Japan’s telecom operator KDDI to supply LTE solutions. KDDI plans to launch a commercial LTE service in 2012.

LightSquared & Sprint in 15-year network deal

LightSquared Inc. has reached a 15-year deal with Sprint to share network expansion costs and equipment, and to provide high-speed wireless service to the phone company.

ZTE Announces CDMA/LTE Dual-Mode Distributed NodeB System

Telecommunications equipment and network solutions provider ZTE has launched of the CDMA/LTE dual-mode distributed NodeB system with four transmitters and four receiver

Verizon Wireless Turns On 19 Additional 4G LTE Markets

Verizon Wireless has turned on the LTE in 19 additional metropolitan areas today, as well as expanding the 4G LTE network in San Francisco and Detroit.

Sunday, June 5, 2011

LTE Weekly Update: Commercial LTE launch in Germany Latvia


ABI Research: Mobile Operator CAPEX to Grow 5% in 2011

Mobile operator capital expenditure is expected to grow 5% in 2011, to reach $119 billion.

Ericsson wins LTE deal with NBN, Australia

Australian operator National Broadband Network (NBN) has selected Ericsson to build and operate a 2.3GHz fixed-wireless broadband network based on LTE technology.

Telekom launches LTE network in Cologne

Telekom has launched commercial LTE network in Cologne, Germany. It is Telekom's first LTE network in a city.

Latvian LMT offers commercial LTE

Latvian opertaor Latvian Mobile Telephone (LMT) has launched commercial LTE services.

O2 to launch commercial LTE in Germany

Telefónica Germany plans to start LTE services from July 1, 2011. Operator is offering mobile broadband services under the name "O2 LTE at Home".

LTE India 2011: India ready for 4G by 2012

India is all set to move on from 3G to 4G LTE, leading industry and technology experts said at LTE India 2011 international conference organized by Bharat Exhibitions t

AT&T reveals LTE markets

AT&T has announced the details of initial commercial LTE roll out.

Everything Everywhere and BT to trial LTE in UK

Everything Everywhere and BT Wholesale plan live trial of 4G LTE in UK.

Telstra switches on first LTE mobile equipment

Australian telco Telstra has switched on it's first 4G LTE base stations in Sydney, Perth, Melbourne and Brisbane.

Source: LteWorld

Saturday, April 30, 2011

Huawei & ZTE sue each other over LTE patents

First Huawei filed lawsuits in Germany, France, and Hungary against ZTE for patent and trade mark infringement on the basis that ZTE is infringing a series of Huawei’s patents relating to data card and LTE. As per Huawei, ZTE illegally used a Huawei-registered trademark on some of its data card products.

ZTE has fired back with it's own lawsuit against Huawei for patent infringement over its LTE technologies in China. In the lawsuit, ZTE requested that Huawei stops its violation, pays compensation to ZTE and takes up the legal responsibilities caused by the infringement.

ZTE also said that there will also be a series of legal action taken globally to protect ZTE’s rights on intellectual properties, ensuring its legitimate rights and interests will not be compromised.

Huawei had said earlier that These lawsuits were commenced after ZTE failed to respond to cease and desist letters requiring the company to stop carrying out the infringing acts that are the basis for these proceedings. Huawei had also actively invited ZTE on numerous occasions to enter into cross-patent licensing negotiations but was equally unsuccessful," company said in the statement.

Both companies claim to hold a large set of LTE related patents. As per ZTE, it has a 7% share of the total LTE essential patentsdeclared on the Intellectual Property Rights (IPR) online database of the European Telecommunications Standards Institute as of 30th November 2010.

Source: LteWorld

Sunday, April 17, 2011

Achieving Capital and Spectral Efficiency Beyond 4G Standards

The industry has come a long way towards developing the new platform for ICT communications:
Pre-4G networks that have demonstrated significant performance and capital efficiency improvements over 3G networks have been deployed.
The IMT-Advanced standards frameworks have been approved – LTE-Advanced and 802.16m, WiMAX 2, based on MIMO-OFDMA.
The preparation for widespread use of SDWN (Smart Distributed WBB Networks) technologies has taken place in the standards and early commercial implementations of SONs and distributed architecture deployments.

What differentiates 4G and beyond from prior network technologies is the use of frequency domain technologies that enable a new pathway for organization of networks. This will improve bandwidth density performance by a factor of up to ten times the level of 3G. It is good to witness the advanced MIMO-AAS, multi-carrier and architecture methods being pursued broadly across the industry: 802.16m, 3GPP Rel 10 LTE-Advanced and 802.11ac as well.

What confounds these efforts, particularly for 802.11 and 802.16, is gaining access to spectrum of sufficient BW and quality. The mobile industry has gained more access to spectrum and capital with which to deliver the vision of 4G networks. However, a significant contributor to the success of current wireless networks and devices is the off-load capability of 802.11 Wi-Fi.

The huge success of the mobile phone industry and need for access to licensed spectrum and capital to build nationwide managed networks has led to consolidation in the hands of a few operators in most parts of the world. The situation in the US shows that despite efforts by the FCC to set rules on licensing and encourage smaller operators and aggregations, spectrum has nonetheless been acquired in the initial auctions or later consolidated by the top four operators. This may soon be reduced to the top three as a result of AT&T's acquisition of T-Mobile.

This has raised a high level of concern and should instigate some fresh thinking regarding how to go about making spectrum available in the most efficient and thorough way, while increasingly innovation and broad economic opportunity.

Incumbents Strongly Argue the Case for Licensed Network Dominance

Operators argue that their control over spectrum has resulted in widespread use and industry development. The role of consolidated licensed operators has been necessary to assemble the skills, organized operation, and the several tens of billions of dollars of capital needed for large-scale deployments. Furthermore, past auction results show that small or localized operators have not developed the critical mass needed to deliver similar levels of products and services. Large national operators are needed to deliver the broad fabric of increasingly complex services that will be developed on the 4G ICT platform.

On the other hand, practical experience and detailed studies show that while mobile networks occupy the majority of available spectrum, the results in terms of both utilization of capital and spectrum has been sub-par compared to Wi-Fi. This is, perhaps, a startling claim: mobile/ICT networks and Wi-Fi are very different types of networks. Nonetheless, Wi-Fi has come to be almost universally adopted because it has proven of great benefit.

Considering that Wi-Fi has been allocated a band of global spectrum that has been called 'junk spectrum' because it falls in with use of portable phones, microwave ovens, and other interferers, and studies show that managed spectrum access is technically more efficient (less signaling overhead than collision based MACs), Wi-Fi has delivered incredible performance. The simplified reasons for this are: 1) the cost of installing Wi-Fi is low due to low equipment cost and low-cost deployment. 2) The use is naturally organized on a microcell architecture that makes extended reuse of the spectrum. 3) Management and maintenance costs are low compared to large-scale networks despite their size advantage. It can be argued that some costs of Wi-Fi are hidden: people may spend considerable personal/company time that is ignored in a comparison. However, costs are significantly counter-balanced by the similar time spent for 3G-4G.

Wi-Fi also stands out in efficiency of spectrum utilization, particularly when measured on a bit/Hz/area saturation/time duty cycle basis. Studies in the US by the FCC as well as overseas demonstrate that Wi-Fi achieves 2X-5X better utilization of spectrum. What makes this even more remarkable is that the spectrum used is 2.4GHz: while good for implementing MIMO and having high reuse factors due to limited penetration of signals and range, the use is conflicted by short range, signal loss due to foliage, precipitation, and low power limits.

Technology advancements will help to achieve higher bandwidth throughput, extended range/multi-hop range, and self-organized and ‘smart networking’ capabilities that increase the range of applications for Wi-Fi and 4G network technologies.

While we appreciate the benefits delivered to operators and users by Wi-Fi, we think the industry can go beyond that in the use of paired licensed-unlicensed network technologies using specifically allocated spectrum and clear rules.

What we hope to see is more spectrum to be ordained by regulators for unlicensed/quasi-unlicensed use. What makes the most sense is for a new paradigm of spectrum licensing to develop: co-allocation and development of joint licensed and unlicensed bands. A crude but effective precedent for this is the harnessing of Wi-Fi as the low cost, prolific, and easiest way operators have found to offload the tremendous ramp in broadband demand. If only regulators and industry would plan for similar availability of spectrum and development with the unlicensed portion serving longer range, say up to 2-5 kilometers in normal operation, this would address problems we now face in rural access, achieving world-competitive rates and bandwidths, and stimulating high level of innovation. This would assure a higher level of competition and openness of access with less need to for detailed regulation and policing. The licensed portion of spectrum could be allowed to use aggressive QoS mechanisms and higher specialization needed to fulfill needs of vertical markets and applications while the quasi-unlicensed portion can be commercially ‘self-organized,’ with fundamental open access as the frontier for new stakeholders.

The development of framework technologies for use dual-MAC networks and devices has come far enough to make this a near-term possibility under enhanced LTE-Advanced and WiMAX 2 standards.

The benefit of this approach has more to do with the harnessing of business and user models than technology. The technology is here. While we face many opportunities, government regulators and the industry must figure out the best way to further all segments of ICT industries, and fan the flames capital and spectrum efficiency that are foundational to US and worldwide prosperity and ecology.
MARAVEDIS is a leading analyst firm focusing on 4G and broadband wireless technologies and markets.
Author: Robert Syputa, Partner & Strategic Analyst

Source: LteWorld