Showing posts with label LTE. Show all posts
Showing posts with label LTE. Show all posts

Monday, 22 July 2019

LTE Equipment Market : Global Industry Competitive Landscape & Technological Breakthroughs Analysis For 2019-2025

ResearchMoz presents professional and in-depth study of "LTE Equipment Market - Global Industry Analysis, Size, Share, Growth, Trends and Forecast, 2017 - 2025".

The LTE Equipment Market study covers various perspectives of the market, including market dynamics, value chain, pricing analysis, competition analysis, regional and segmental growth comparison and macro-economic and industry growth analysis, along with segment-level projections in a comprehensive manner.

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The LTE equipment market report provides an in-depth analysis of the global LTE equipment market for the period 2017-2025, wherein 2016 is the base year and the years from 2017 to 2025 is the forecast period. Data for 2015 has been included as historical information. The report covers all the prevalent trends playing a major role in the growth of the LTE equipment market over the forecast period. It also highlights various drivers, restraints and opportunities expected to influence the market’s growth during the forecast period.

The study provides a holistic perspective on market growth in terms of revenue estimates (in US$ Bn) across different geographies, which include North America, Europe, Asia Pacific (APAC), Middle East & Africa (MEA) and South America. The report provides cross-sectional analysis of the global LTE equipment market in terms of market estimates and projections for all the segments across different geographic regions. The report also covers profiles of major players, their growth strategies, their market positioning, and various recent developments, and includes market positioning analysis of key players operating in the LTE equipment market. The report provides in depth analysis of supply chain of LTE equipment market. It also describes Porter’s Five Forces analysis for the market.

Global LTE Equipment Market: Scope of the Report

This research study on the global LTE equipment market provides a detailed analysis of various component and applications of LTE equipment available in the market. Based on the component, the market is divided into LTE infrastructure and LTE testing equipment. The various types of application of the LTE equipment includes commercial and government sector. Based on technology, the market has been segmented into TD-LTE, FDD-LTE and hybrid. The report includes a comprehensive coverage of the underlying economic development factors under the key trends analysis section.

The report aims to provide in-depth analysis of the global LTE equipment market across geographical regions, which are further segmented to country level analysis. North America region is segmented into the U.S., Canada and Rest of North America. Similarly, under Europe, analysis for UK, Germany, France and Rest of Europe LTE equipment market has been provided. Asia Pacific section includes analysis of the China, India and Rest of APAC LTE equipment market. Analysis of LTE equipment market for GCC countries, South Africa, and Rest of Middle East and Africa has been provided under MEA region, whereas under South America, LTE equipment markets across Brazil and Rest of South America have been analyzed. The revenue estimates for these regions and countries is also included in the report. The report also provides key trends analysis for all the regions and different policies and regulations implemented in countries across these regions.

Global LTE Equipment Market: Competitive Dynamics

The report also highlights the competition matrix of the LTE equipment market, positioning all the major players according to their geographic presence, market position, key recent developments, and segment growth. The report provides recommendations for various new entrants, small and medium and large market players in the global LTE equipment market.

Under the company profiles section, the report provides an overview of the players operating in the market, the strategies deployed by them to gain competitive advantage, annual revenue generated by them in the historical years and their relevant business segment revenue. The key players profiled in this report include, Ericsson AB, Fujitsu Limited, Huawei Technologies, Motorola, Nokia Corporation, NEC Corporation, AT&T Inc., Sprint Corporation, Telrad Networks and ZTE Corporation

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The Global LTE Equipment market has been segmented as follows:

LTE Equipment Market: By Component
  • LTE infrastructure
  • LTE Testing Equipment
LTE Equipment Market: By Technology
  • LTE FDD
  • TD-LTE
  • Hybrid
LTE Equipment Market: By Application
  • Commercial
  • Government
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Wednesday, 12 June 2019

LTE Testing Equipment Market Analysis, Segments, Growth And Value Chain 2019-2027

ResearchMoz presents professional and in-depth study of "LTE Testing Equipment Market: Global Industry Analysis 2013-2017 and Opportunity Assessment 2019-2027".

This Report offers a 8-year forecast for the LTE testing equipment market between 2019 and 2027. In terms of value, the LTE testing equipment market is expected to register a double-digit CAGR during the forecast period. The study provides the global market dynamics and trends across six regions: North America, Latin America, Europe, Japan, APEJ and MEA, which influence the current nature and the future status of the LTE testing equipment market over the forecast period.

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LTE Testing Equipment Market Report Description

This research report provides a detailed analysis of the LTE testing equipment market and offers insights on the various factors driving the popularity of LTE testing equipment. The LTE testing equipment market report includes an extensive analysis of the key industry drivers, challenges, market trends and market structure. The LTE testing equipment market study provides a comprehensive assessment of the stakeholder strategies and imperatives for succeeding in the business. The LTE testing equipment market report includes market segmentation on the basis of type, application, end-user and region.

The LTE testing equipment market is expected to witness significant value and volume growth during the forecast period, owing to the high penetration of LTE in various countries around the world and the increasing adoption of mobile phones. .   

The global LTE testing equipment market report starts with an overview of the LTE testing equipment market in terms of value and volume. In addition, this section includes an analysis of the key trends, drivers and challenges from the supply, demand and economy side, which are influencing the LTE testing equipment market.

On the basis of type, the LTE testing equipment market has been segmented into OTA Test, Carrier Test, Battery Test, Conformance Test and Field Test. On the basis of application, the LTE testing equipment market has been segmented into research and development, manufacturing, installation and monitoring. On the basis of end-user, the LTE testing equipment market has been segmented into network equipment manufacturer, mobile device manufacturer and telecommunication service provider.

A detailed analysis has been provided for every segment in terms of market size analysis for the LTE testing equipment market across different regions. This section provides a detailed analysis covering the key trends prevalent in the global LTE testing equipment market.         

The next section of the global LTE testing equipment market report covers a detailed analysis of the LTE testing equipment market across various countries in the region. It provides an outlook for the LTE testing equipment market for 2019–2027, and sets the forecast within the context of the LTE testing equipment market. This study discusses the key trends within the countries contributing to the growth of the LTE testing equipment market as well as analyses the degrees at which the drivers are influencing LTE testing equipment market in each region. The key regions and countries assessed in the LTE testing equipment market report include North America (the U.S. & Canada), Latin America (Brazil, Mexico & the rest of Latin America), Europe (Germany, U.K., Spain, France, Russia & the Rest of Europe), Japan, APEJ (China, India, Malaysia, Singapore, Australia & the rest of APEJ) and MEA (GCC Countries, Israel, South Africa & the rest of MEA). This report evaluates the present scenario and the growth prospects of the LTE testing equipment market across various regions globally for the period 2019 –2027. We have considered 2018 as the base year and provided data for the remaining 12 months.   

To offer an accurate forecast, we have started by sizing the current market, which forms the basis of how the LTE testing equipment market is expected to grow in the future. Given the characteristics of the global LTE testing equipment market, we have triangulated the outcomes of different types of analysis based on the technology trends.  

As previously highlighted, the global LTE testing equipment market has been split into a number of segments. All segments on the basis of type, end-user, application and region have been analysed in terms of basis points to understand the relative contribution of each individual segment to the growth of the LTE testing equipment market. This detailed information is important for the identification of various key trends in the global LTE testing equipment market.   

In addition, another key feature of the global LTE testing equipment market report includes the analysis of all the key segments in terms of absolute dollar opportunity. This is traditionally overlooked while forecasting the market, however, the absolute dollar opportunity is critical in assessing the level of opportunity that a provider can look to achieve as well as to identify the potential resources from a sales and delivery perspective in the global LTE testing equipment market.  

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In the final section of the global LTE testing equipment market report, we have included a competitive landscape to provide clients a dashboard view based on the categories of providers in the value chain, their presence in the LTE testing equipment market and key differentiators. This section is primarily designed to provide clients an objective and detailed comparative assessment of key providers specific to a segment of the LTE testing equipment supply chain and the potential players for the same. Report audiences can gain segment-specific vendor insights to identify and evaluate the key competitors based on an in-depth assessment of their capabilities and success in the LTE testing equipment market. Some of the key competitors covered in the LTE testing equipment market report are ROHDE&SCHWARZ; Anritsu; Agilent Technologies, Inc.; Spirent Communications; Aeroflex Inc.; Anite; Ixia; IDSU; EXFO; TEKTRONIX, INC.; Dana Ter; Fluke Corporation; Zhejiang Dingli Machinery Co, Ltd. and Keysight Technologies, Inc.

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Wednesday, 9 January 2019

Global Small Cells Industry : Insights, Development, Research and Forecast 2018-2024

ResearchMoz presents professional and in-depth study of "Small Cells: Market Shares, Strategy, and Forecasts, Worldwide, 2018 to 2024".

The 2018 study has 248 pages, 135 tables and figures.  The leading vendors in the small cell market have invested in high-quality technology and processes to develop leading edge monitoring and digital triggering activation capability.

Small Cell markets encompass virtualization, cloud, edge, and functional splits.  5G requires increasing sophistication from mobile operators. The challenge is to bring together a growing number of LTE and 5G radio access technologies.   A range of connectivity services are needed.  Associated APIs are needed in each small cell to manage connectivity to a number of customer segments. 

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Figure 1. Small Cell Market Driving Forces

    Need for enabling evolution of local communications network
    Availability of fully virtualized, distributed, ultra-reliable software
    Effective software for controlling agile infrastructure
    Automation facilitates large-scale low-cost network densification
    Lowers cost by implementing network through third-party deployments
    Effective integration of base small cell technologies
     Systems integration achieved with open and interoperable standards
    Open and interoperable standards needed to ensure competition
    open and interoperable standards needed to ensure economies of scale
    Adoption of these 5G Era technologies will require culture shifts in processes

Small cells need infrastructure across a broad range of commercial and governmental organizations.  Each have a part to play in making small cells work along with tower infrastructure to create a broadband commercial network.  Service providers are focused on densification.  Small cells are a critical part of the infrastructure for several key 5G Era deployment scenarios:

Figure 2. Small Cell Infrastructure Critical Issues

    Service providers are focused on densification
    Small cells are a critical part of the infrastructure for key 5G implementations
    5G deployment needs small cells
    >6GHz spectrum propagation limits cell sizes
    Shared and license-exempt spectrum mandates lower power
    Areas of hyper-dense broadband traffic need small cells
    Small cells meet demand in cities, stadia, transport hubs
    Scalable deployment
    Low-cost deployment
    Using a low-skilled, third-party, or end-user workforce
    Small/medium enterprises requiring self-deployed indoor coverage
    Coverage extension in rural, remote, moving and temporary deployment
    Scenarios with equipment size, weight or power constraints.

View Complete TOC with tables & Figures @ https://www.researchmoz.us/small-cells-market-shares-strategy-and-forecasts-worldwide-2018-to-2024-report.html/toc

The total value of the small cell market is $12.5 billion in 2017, up from $10.35 billion in 2016.  Markets grow to $58.7 billion in 2024.  Growth is a result of the implementation of the tremendous amount of digital content from video on smart phones, from the digital economy, IoT, robots, drones, self-driving cars, and artificial intelligence.  The digital economy rides on the back of small cells 5G signal transmission which is a 10x improvement in capacity over existing broadband.  This is the new world aspect, everything is monitored and activated digitally.

The digital economy, self-driving cars, drones, traffic lights, and smart things all need more wireless coverage.  According to Susan Eustis, leader of the team that prepared the research, “Small cell suppliers have a focus on broadband improvement.  Power and performance are being improved.  Small cells improve the transmission coverage and density.”

This 5G coverage is needed as IoT, the Internet of things and smart phone video increase transmission needs.  “Everything will be connected,” said SoftBank Chief Executive Masayoshi Son, announcing a ARM processor deal in London. “Cows will be connected, chickens will be connected, the sheep will be connected.”
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WinterGreen Research supports various market segment programs; provides trusted technical services to the marketing departments.  It carries out accurate market share and forecast analysis services for a range of commercial and government customers globally.  These are all vital market research support solutions requiring trust and integrity.

Companies Profiled

Market Leaders

    Ericsson
    Huawei
    Nokia / Alcatel-Lucent
    NEC
    ZTE
    Samsung
    Fujitsu

Market Participants

    Airspan
    ANs
    ADRF
    AT&T
    Ciena
    Cisco Small Cells
    CommScope
    Corning Spidercloud
    ip.access
    NTSI
    Optimos
    Qualcomm
    Signal Booster.com
    Small Cell Forum
    Solid Technologies
    Zouk Capital / ip.access

Key Topics

    Small Cells
    Virtualization
    Cloud
    Edge
    Functional splits.
    LTE Small Cell
    5G
    Network Densification
    Hybrid Ethernet Based DAS
    DAS
    In Building Wireless
    Broadband Traffic
    In Air Interface Solutions
    Outdoor and Stadium Deployments
    Heterogeneous Network
    Hung On Aerial Coax, Fiber, Or Electricity Cables
    Distributed business
    Enterprise

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    End-To-End Integrated Small Cells
    Metro Cell Solution Signal Transmission
    ADRF Positioning
    Bandwidth Allocation
    Across enterprise boundaries

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ResearchMoz
Mr. Nachiket Ghumare,
90 State Street, Albany NY, United States - 12207
Tel: +1-518-621-2074
USA-Canada Toll Free: 866-997-4948
Email: sales@researchmoz.us
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Wednesday, 5 December 2018

Market Growth : The vRAN (Virtualized Radio Access Network) Ecosystem to 2030

ResearchMoz presents professional and in-depth study of "The vRAN (Virtualized Radio Access Network) Ecosystem: 2017 - 2030 - Opportunities, Challenges, Strategies & Forecasts".

vRAN (Virtualized Radio Access Network) refers to a RAN (Radio Access Network) implementation where some or all baseband functions are separated from the remote radio unit and run as VNFs (Virtualized Network Functions) on commodity hardware. This approach results in multiple operational benefits including but not limited to TCO (Total Cost of Ownership) reduction, performance gains and scalability. In addition, vRAN enables mobile operators to future-proof their networks for 5G upgrades.

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The vRAN market is presently at a nascent stage with most investments focused on virtualized small cells for targeted greenfield deployments and pilot engagements for macrocell coverage. However, as mobile operators realize the benefits of RAN virtualization, the market is expected to grow at a CAGR of approximately 125% over the next three year period. By the end of 2020, SNS Research estimates that vRAN deployments will account for a market worth $2.6 Billion.

The “vRAN (Virtualized Radio Access Network) Ecosystem: 2017 – 2030 – Opportunities, Challenges, Strategies & Forecasts” report presents an in-depth assessment of the vRAN ecosystem including enabling technologies, key trends, market drivers, challenges, standardization, collaborative initiatives, regulatory landscape, deployment models,  operator case studies, opportunities, future roadmap, value chain, ecosystem player profiles and strategies. The report also presents forecasts for vRAN investments from 2017 till 2030. The forecasts cover multiple submarkets and 6 regions.

The report comes with an associated Excel datasheet suite covering quantitative data from all numeric forecasts presented in the report.

The report covers the following topics:

    vRAN ecosystem
    Market drivers and barriers
    vRAN architecture and key functional elements
    Baseband functional splitting for vRAN implementation
    Fronthaul networking technologies and interface options
    Key trends including RAN slicing, RANaaS (RAN as a Service), neutral hosting and MEC (Mobile Edge Computing)
    TCO comparison between vRAN and conventional RAN architectures
    vRAN deployment models including Cloud RAN and virtualized small cells
    Mobile operator case studies
    Regulatory landscape, collaborative initiatives and standardization
    Industry roadmap and value chain
    Profiles and strategies of over 60 leading ecosystem players including vRAN solution providers
    Strategic recommendations for ecosystem players including vRAN solution providers and mobile operators
    Market analysis and forecasts from 2017 till 2030

View Complete TOC with tables & Figures @ https://www.researchmoz.us/the-vran-virtualized-radio-access-network-ecosystem-2017-2030-opportunities-challenges-strategies-forecasts-report.html/toc

Forecast Segmentation

Market forecasts are provided for each of the following submarkets and their subcategories:

Submarkets

    vRAN Radio Units
    vBBUs (Virtualized Baseband Units)

Air Interface Technology Segmentation

    LTE & 3G
    5G NR (New Radio)

Deployment Model Segmentation

    Virtualized Small Cells
    Virtualized Macrocells

Regional Markets

    Asia Pacific
    Eastern Europe
    Middle East & Africa
    Latin & Central America
    North America
    Western Europe

The report provides answers to the following key questions:

    How big is the vRAN opportunity?
    What trends, challenges and barriers are influencing its growth?
    How is the ecosystem evolving by segment and region?
    What will the market size be in 2020 and at what rate will it grow?
    Which submarkets will see the highest percentage of growth?
    Is centralization a pre-requisite for vRAN implementation?
    What are the benefits and drawbacks of each baseband functional split option?
    How can vRAN reduce the TCO of RAN deployments?
    How can mobile operators future-proof their RAN investments for 5G upgrades?
    Who are the key market players and what are their strategies?
    What strategies should vRAN solution providers and mobile operators adopt to remain competitive?

The report has the following key findings:

    vRAN investments are expected to grow at a CAGR of approximately 125% over the next three year period. By the end of 2020, SNS Research estimates that vRAN deployments will account for a market worth $2.6 Billion.
    At present, most vRAN investments are focused on virtualized small cells for targeted greenfield deployments and pilot engagements for macrocell coverage.
    Mobile operators are exploring multiple baseband functional split options for vRAN implementation, as they seek to ease the transition to 5G networks while reducing fronthaul costs.
    The ongoing 5G race is expected to significantly boost vRAN investments over the coming years. SNS Research estimates that approximately $900 Million of all vRAN investments will be directed towards 5G networks by the end of 2020.

List of Companies Mentioned

    3GPP (3rd Generation Partnership Project)
    6WIND
    ADLINK Technology
    Advantech
    Airspan Networks
    Altiostar Networks
    Amarisoft
    Argela
    Aricent
    ARM Holdings
    Artemis Networks
    Artesyn Embedded Technologies
    ASOCS
    ASTRI (Hong Kong Applied Science and Technology Research Institute)
    Broadband Forum
    Broadcom
    BT Group
    Casa Systems
    Cavium
    China Mobile
    China Unicom
    Cisco Systems
    Clavister
    Cobham Wireless
    Comcores
    CommAgility
    CommScope
    Contela
    Dali Wireless
    Dell Technologies
    DT (Deutsche Telekom)
    eASIC Corporation
    EBlink
    EE
    Ericsson
    ETSI (European Telecommunications Standards Institute)
    EURECOM
    Facebook
    Fujitsu
    Hitachi
    HPE (Hewlett Packard Enterprise)
    Huawei
    IBM Corporation
    IDT (Integrated Device Technology)
    IEEE (Institute of Electrical and Electronics Engineers)
    Intel Corporation
    ip.access
    IS-Wireless
    ITU (International Telecommunications Union)
    JMA Wireless
    Kathrein-Werke KG
    KT Corporation
    Linux Foundation
    MEF (Metro Ethernet Forum)
    Mellanox Technologies
    Microsemi Corporation
    Mitel Mobility
    Mobiveil
    MontaVista Software
    MTI Mobile
    NEC Corporation
    NGMN (Next Generation Mobile Networks) Alliance
    Nokia
    Nokia Networks
    Nokia Technologies
    NTT Communications
    NTT DoCoMo
    NXP Semiconductors
    Octasic
    ON.Lab (Open Networking Lab)
    ONF (Open Networking Foundation)
    Orange
    OSA (OpenAirInterface Software Alliance)
    Parallel Wireless
    Phluido
    Qualcomm
    Quortus
    Radisys Corporation
    Ranzure Networks
    Rearden
    Red Hat
    Samsung Electronics
    SCF (Small Cell Forum)
    SK Telecom
    SoftBank Group
    SOLiD (SOLiD Technologies)
    SpiderCloud Wireless
    Sprint Corporation
    Sumitomo Electric Industries
    Sunnada (Fujian Sunnada Communication Company)
    Sunwave Communications
    Telecom Italia Group
    Telefónica Group
    TI (Texas Instruments)
    TIM (Telecom Italia Mobile)
    Vodafone Group
    Vodafone Hutchison Australia
    Vodafone Italy
    Xilinx
    xRAN Consortium
    Xura
    ZTE

Countires Covered

    Afghanistan
    Albania
    Algeria
    Andorra
    Angola
    Anguilla
    Antigua & Barbuda
    Argentina
    Armenia
    Aruba
    Australia
    Austria
    Azerbaijan
    Bahamas
    Bahrain
    Bangladesh
    Barbados
    Belarus
    Belgium
    Belize
    Benin
    Bermuda
    Bhutan
    Bolivia
    Bosnia Herzegovina
    Botswana
    Brazil
    British Virgin Islands
    Brunei
    Bulgaria
    Burkina Faso
    Burundi
    Cambodia
    Cameroon
    Canada
    Cape Verde
    Cayman Islands
    Central African Republic
    Chad
    Chile
    China
    Cocos Islands
    Colombia
    Comoros Islands
    Congo
    Cook Islands
    Costa Rica
    Côte d'Ivoire
    Croatia
    Cuba
    Cyprus
    Czech Republic
    Democratic Rep of Congo (ex-Zaire)
    Denmark
    Djibouti
    Dominica
    Dominican Republic
    East Timor
    Ecuador
    Egypt
    El Salvador
    Equatorial Guinea
    Eritrea
    Estonia
    Ethiopia
    Faroe Islands
    Federated States of Micronesia
    Fiji
    Finland
    France
    French Guiana
    French Polynesia (ex-Tahiti)
    French West Indies
    Gabon
    Gambia
    Georgia
    Germany
    Ghana
    Gibraltar
    Greece
    Greenland
    Grenada
    Guam
    Guatemala
    Guernsey
    Guinea Republic
    Guinea-Bissau
    Guyana
    Haiti
    Honduras
    Hong Kong
    Hungary
    Iceland
    India
    Indonesia
    Iran
    Iraq
    Ireland
    Isle of Man
    Israel
    Italy
    Jamaica
    Japan
    Jersey
    Jordan
    Kazakhstan
    Kenya
    Kirghizstan
    Kiribati
    Korea
    Kosovo
    Kuwait
    Laos
    Latvia
    Lebanon
    Lesotho
    Liberia
    Libya
    Liechtenstein
    Lithuania
    Luxembourg
    Macau
    Macedonia
    Madagascar
    Malawi
    Malaysia
    Maldives
    Mali
    Malta
    Marshall Islands
    Mauritania
    Mauritius
    Mayotte
    Mexico
    Moldova
    Monaco
    Mongolia
    Montenegro
    Montserrat
    Morocco
    Mozambique
    Myanmar
    Namibia
    Nepal
    Netherlands
    Netherlands Antilles
    New Caledonia
    New Zealand
    Nicaragua
    Niger
    Nigeria
    Niue
    North Korea
    Northern Marianas
    Norway
    Oman
    Pakistan
    Palau
    Palestine
    Panama
    Papua New Guinea
    Paraguay
    Peru
    Philippines
    Poland
    Portugal
    Puerto Rico
    Qatar
    Réunion
    Romania
    Russia
    Rwanda
    Samoa
    Samoa (American)
    Sao Tomé & Principe
    Saudi Arabia
    Senegal
    Serbia
    Seychelles
    Sierra Leone
    Singapore
    Slovak Republic
    Slovenia
    Solomon Islands
    Somalia
    South Africa
    Spain
    Sri Lanka
    St Kitts & Nevis
    St Lucia
    St Vincent & The Grenadines
    Sudan
    Suriname
    Swaziland
    Sweden
    Switzerland
    Syria
    Tajikistan
    Taiwan
    Tanzania
    Thailand
    Togo
    Tonga

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    Trinidad & Tobago
    Tunisia
    Turkey
    Turkmenistan
    Turks & Caicos Islands
    UAE
    Uganda
    UK
    Ukraine
    Uruguay
    US Virgin Islands
    USA
    Uzbekistan
    Vanuatu
    Venezuela
    Vietnam
    Yemen
    Zambia
    Zimbabwe

For More Information Kindly Contact:

ResearchMoz
Mr. Nachiket Ghumare,
90 State Street, Albany NY, United States - 12207
Tel: +1-518-621-2074
USA-Canada Toll Free: 866-997-4948
Email: sales@researchmoz.us
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Latest Outlook : ProSe (Proximity Services) for LTE & 5G Networks Market to 2030

ResearchMoz presents professional and in-depth study of "ProSe (Proximity Services) for LTE & 5G Networks: 2017 - 2030 - Opportunities, Challenges, Strategies & Forecasts".

First introduced in Release 12 of the 3GPP specifications, ProSe (Proximity Services) is a D2D (Device-to-Device) technology that allows LTE devices to detect each other and to communicate directly. It relies on multiple enhancements to existing LTE standards including new functional elements and a ""sidelink"" air interface for direct connectivity between devices.

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In comparison to existing D2D and proximity networking technologies, ProSe offers several distinct benefits including but not limited to better scalability, manageability, privacy, security and battery-efficiency. At present, efforts to commercialize ProSe are being spearheaded by the public safety and critical communications sector, amid the ongoing transition from legacy LMR (Land Mobile Radio) systems to LTE networks.

Although initial investments in ProSe-enabled devices will be driven by the public safety and critical communications sector, there also exists a much larger opportunity in the commercial arena. Mobile operators can leverage ProSe to offer a range of B2B, B2B2C and B2C services that rely on proximity, including advertising, social networking, gaming, relaying traffic for wearables and V2X (Vehicle-to-Everything) connectivity.

By the end of 2025, SNS Research estimates that mobile operators can pocket as much $17 Billion in ProSe based annual service revenue. Up to 55% of this revenue figure will be attributable to proximity advertising.

The ""ProSe (Proximity Services) for LTE & 5G Networks: 2017 – 2030 – Opportunities, Challenges, Strategies & Forecasts"" report presents an in-depth assessment of the ProSe market including enabling technologies, key trends, market drivers, challenges, standardization, use cases, applications, business models, pre-commercial case studies, opportunities, future roadmap, value chain and strategic recommendations. The report also presents forecasts for ProSe-enabled device shipments and ProSe based mobile operator service revenue from 2018 till 2030. The forecasts cover multiple submarkets and 6 regions.

The report comes with an associated Excel datasheet suite covering quantitative data from all numeric forecasts presented in the report.

The report covers the following topics:

    ProSe technology
    Market drivers and barriers
    Sidelink air interface and spectrum bands
    ProSe discovery and direct communication services
    ProSe coverage scenarios and modes of operation
    ProSe reference architecture, key functional elements and interfaces
    3GPP standardization efforts for ProSe
    Competing D2D and proximity networking technologies
    Key applications, business models and monetization strategies
    Case studies of pre-commercial ProSe engagements
    Industry roadmap and value chain
    Strategic recommendations for key ecosystem players including chipset suppliers, device OEMs, infrastructure vendors, public safety agencies and mobile operators
    Market analysis and forecasts from 2018 till 2030

View Complete TOC with tables & Figures @ https://www.researchmoz.us/prose-proximity-services-for-lte-5g-networks-2017-2030-opportunities-challenges-strategies-forecasts-report.html/toc

Forecast Segmentation

Market forecasts are provided for each of the following submarkets and their subcategories:

ProSe Device Shipments & Revenue

Submarkets

    Public Safety & Critical Communications
    Commercial Sector

Form Factor Segmentation

    Smartphones
    Tablets
    Wearables
    Vehicle Mount Devices
    V2X Devices
     Other Devices

Regional Markets

    Asia Pacific
    Eastern Europe
    Middle East & Africa
    Latin & Central America
    North America
    Western Europe

ProSe Based Mobile Operator Service Revenue

Submarkets

    Advertising
    Social Networking
    V2X Connectivity
    Public Safety & Critical Communications
    Other Applications

The report provides answers to the following key questions:

    How big is the ProSe opportunity?
    What trends, challenges and barriers are influencing its growth?
    How will the ecosystem evolve by segment and region?
    What will the market size be in 2020 and at what rate will it grow?
    How big is the ProSe service revenue opportunity for mobile operators?
    How will ProSe help public safety agencies in replacing legacy LMR systems with LTE and 5G networks?
    How will consolidation in the chipset ecosystem affect the adoption of ProSe?
    How can ProSe deliver localized V2X (Vehicle-to-Everything) connectivity?
    What strategies should chipset suppliers, device OEMs and mobile operators adopt to remain competitive?

The report has the following key findings:

    In comparison to existing D2D and proximity networking technologies, ProSe offers several distinct benefits including but not limited to better scalability, manageability, privacy, security and battery-efficiency.
    At present, efforts to commercialize ProSe are being spearheaded by the public safety and critical communications industry. The ongoing transition from legacy LMR  systems to LTE networks is expected to trigger the very first investments in ProSe-enabled devices, as direct communication between devices is an essential requirement for users in this domain.
    In the commercial area, mobile operators can leverage ProSe to offer a range of B2B, B2B2C and B2C services that rely on proximity including advertising, social networking, gaming, relaying traffic for wearables and V2X (Vehicle-to-Everything) connectivity.
    By the end of 2025, SNS Research estimates that mobile operators can pocket as much $17 Billion in ProSe based annual service revenue. Up to 55% of this revenue figure will be attributable to proximity advertising.

List of Companies Mentioned

    3GPP (Third Generation Partnership Project)
    Apple
    ASTRI (Hong Kong Applied Science and Technology Research Institute)
    Bluetooth SIG (Special Interest Group)
    Compass.To
    DT (Deutsche Telekom)
    EE
    Ericsson
    Facebook
    FirstNet (First Responder Network Authority)
    Home Office, UK
    Huawei
    IEEE (Institute of Electrical and Electronics Engineers)
    Intel Corporation
    KT Corporation
    M87
    MPSS (Ministry of Public Safety and Security, South Korea)
    NEC Corporation
    Nokia
    NTT DoCoMo
    NXP Semiconductors
    OnePlus
    Qualcomm
    Samsung Electronics
    TanTan
    Telecom Italia Group
    U.S. Department of Commerce
    U.S. NIST (National Institute of Standards and Technology)
    Wi-Fi Alliance
    Yahoo
    ZigBee Alliance

Countires Covered

    Afghanistan
    Albania
    Algeria
    Andorra
    Angola
    Anguilla
    Antigua & Barbuda
    Argentina
    Armenia
    Aruba
    Australia
    Austria
    Azerbaijan
    Bahamas
    Bahrain
    Bangladesh
    Barbados
    Belarus
    Belgium
    Belize
    Benin
    Bermuda
    Bhutan
    Bolivia
    Bosnia Herzegovina
    Botswana
    Brazil
    British Virgin Islands
    Brunei
    Bulgaria
    Burkina Faso
    Burundi
    Cambodia
    Cameroon
    Canada
    Cape Verde
    Cayman Islands
    Central African Republic
    Chad
    Chile
    China
    Cocos Islands
    Colombia
    Comoros Islands
    Congo
    Cook Islands
    Costa Rica
    Côte d'Ivoire
    Croatia
    Cuba
    Cyprus
    Czech Republic
    Democratic Rep of Congo (ex-Zaire)
    Denmark
    Djibouti
    Dominica
    Dominican Republic
    East Timor
    Ecuador
    Egypt
    El Salvador
    Equatorial Guinea
    Eritrea
    Estonia
    Ethiopia
    Faroe Islands
    Federated States of Micronesia
    Fiji
    Finland
    France
    French Guiana
    French Polynesia (ex-Tahiti)
    French West Indies
    Gabon
    Gambia
    Georgia
    Germany
    Ghana
    Gibraltar
    Greece
    Greenland
    Grenada
    Guam
    Guatemala
    Guernsey
    Guinea Republic
    Guinea-Bissau
    Guyana
    Haiti
    Honduras
    Hong Kong
    Hungary
    Iceland
    India
    Indonesia
    Iran
    Iraq
    Ireland
    Isle of Man
    Israel
    Italy
    Jamaica
    Japan
    Jersey
    Jordan
    Kazakhstan
    Kenya
    Kirghizstan
    Kiribati
    Korea
    Kosovo
    Kuwait
    Laos
    Latvia
    Lebanon
    Lesotho
    Liberia
    Libya
    Liechtenstein
    Lithuania
    Luxembourg
    Macau
    Macedonia
    Madagascar
    Malawi
    Malaysia
    Maldives
    Mali
    Malta
    Marshall Islands
    Mauritania
    Mauritius
    Mayotte
    Mexico
    Moldova
    Monaco
    Mongolia
    Montenegro
    Montserrat
    Morocco
    Mozambique
    Myanmar
    Namibia
    Nepal
    Netherlands
    Netherlands Antilles
    New Caledonia
    New Zealand
    Nicaragua
    Niger
    Nigeria
    Niue
    North Korea
    Northern Marianas
    Norway
    Oman
    Pakistan
    Palau
    Palestine
    Panama
    Papua New Guinea
    Paraguay
    Peru
    Philippines
    Poland
    Portugal
    Puerto Rico
    Qatar
    Réunion
    Romania
    Russia
    Rwanda
    Samoa
    Samoa (American)
    Sao Tomé & Principe
    Saudi Arabia
    Senegal
    Serbia
    Seychelles
    Sierra Leone
    Singapore
    Slovak Republic
    Slovenia
    Solomon Islands
    Somalia
    South Africa
    Spain
    Sri Lanka
    St Kitts & Nevis
    St Lucia

Make An Enquiry @ https://www.researchmoz.us/enquiry.php?type=E&repid=1170816

    St Vincent & The Grenadines
    Sudan
    Suriname
    Swaziland
    Sweden
    Switzerland
    Syria
    Tajikistan
    Taiwan
    Tanzania
    Thailand
    Togo
    Tonga
    Trinidad & Tobago
    Tunisia
    Turkey
    Turkmenistan
    Turks & Caicos Islands
    UAE
    Uganda
    UK
    Ukraine
    Uruguay
    US Virgin Islands
    USA
    Uzbekistan
    Vanuatu
    Venezuela
    Vietnam
    Yemen
    Zambia
    Zimbabwe

For More Information Kindly Contact:

ResearchMoz
Mr. Nachiket Ghumare,
90 State Street, Albany NY, United States - 12207
Tel: +1-518-621-2074
USA-Canada Toll Free: 866-997-4948
Email: sales@researchmoz.us
Follow us on LinkedIn @ http://bit.ly/1TBmnVG
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Monday, 18 June 2018

Public Safety LTE & Mobile Broadband Market Size : Technology, Applications, Growth and Status 2018-2030

ResearchMoz presents professional and in-depth study of "The Public Safety LTE & Mobile Broadband Market: 2016 - 2030 - Opportunities, Challenges, Strategies & Forecasts".

Due to the bandwidth limitations of their traditional voice-centric LMR (Land Mobile Radio) networks, public safety agencies are keen to leverage commercial cellular network technology to support their growing broadband application needs.

Get PDF for more Professional and Technical insights @ https://www.researchmoz.us/enquiry.php?type=S&repid=804859

Considering its thriving ecosystem, spectrum flexibility and performance metrics, LTE has emerged as the leading candidate for public safety mobile broadband networks.  In addition, with the recent approval of the MCPTT (Mission Critical Push to Talk) voice standard as part of 3GPP Release 13, LTE has also become an attractive substitute for providing LMR-like voice services.

The Qatar Ministry of Interior made headlines when it deployed a private 800 MHz LTE network in 2012. Since then, numerous public safety LTE networks have sprung up across the globe, including the UAE, China, Laos, Turkey and Kenya.  Several early adopter LTE deployments are also operational in the United States, as part of the planned FirstNet nationwide public safety broadband network. While most initial public safety LTE investments are limited to small-scale networks, nationwide rollouts in the United States and South Korea are expected to trigger significant large-scale investments throughout the globe.

The European market is largely dominated by MVNO arrangements, such as the UK Home Office’s ESN (Emergency Services Network) program that will use EE’s commercial LTE network to deliver prioritized mission critical voice and data services for the UK’s public safety agencies. As part of the program, EE is enhancing its existing network with additional sites, satellite backhaul and a dedicated mobile core for first responders, among other investments.

Driven by the thriving ecosystem, SNS Research estimates that annual investments on public safety LTE infrastructure will reach $600 Million by the end of 2016. The market, which includes base stations (eNBs), mobile core and transport networking gear, is further expected to grow at a CAGR of 33% over the next four years. By 2020, these infrastructure investments will be complemented by over 4.4 Million LTE device shipments, including smartphones, rugged handheld terminals and vehicular routers.

The “Public Safety LTE & Mobile Broadband Market: 2016 – 2030 – Opportunities, Challenges, Strategies & Forecasts” report presents an in-depth assessment of the global public safety LTE market, besides touching upon the wider LMR and mobile broadband industries. In addition to covering the business case, challenges, technology, spectrum allocation, industry roadmap, value chain, deployment case studies, vendor products, strategies, standardization initiatives and applications ecosystem for public safety LTE, the report also presents comprehensive forecasts for mobile broadband, LMR and public safety LTE subscriptions from 2016 till 2030. Also covered are public safety LTE service revenues, over both private and commercial networks. In addition, the report presents revenue forecasts for public safety LTE infrastructure, devices, integration services and management solutions.

View Complete TOC with tables & Figures @ https://www.researchmoz.us/the-public-safety-lte-mobile-broadband-market-2016-2030-opportunities-challenges-strategies-forecasts-report.html/toc

The report comes with an associated Excel datasheet suite covering quantitative data from all numeric forecasts presented in the report, as well as a list and associated details of over 90 global public safety LTE network commitments (as of Q2’2016).

Key Findings:

The report has the following key findings:

    SNS Research estimates that annual investments on public safety LTE infrastructure will reach $600 Million by the end of 2016. The market, which includes base stations (eNBs), mobile core and transport networking gear, is further expected to grow at a CAGR of 33% over the next four years.
    By 2020, these infrastructure investments will be complemented by over 4.4 Million LTE device shipments, including smartphones, rugged handheld terminals and vehicular routers.
    Following the Qatar Ministry of Interior’s private 800 MHz LTE network deployment in 2012, multiple private LTE rollouts are underway by security forces throughout the oil rich GCC (Gulf Cooperation Council) region, including the Abu Dhabi and Dubai police forces.
    Driven by nationwide public safety LTE network rollouts in the United States and South Korea, the North America and Asia Pacific regions will account for nearly 70% of all public safety LTE investments over the next four years.
    Almost all major LMR industry players are leveraging partnerships with established LTE infrastructure OEMs such as Ericsson, Nokia, Huawei and Samsung, to offer end-to-end LTE solutions.
    Consolidation efforts are continuing to take place throughout the industry, particularly among the largest LTE infrastructure OEMs and public safety system integrators.

Topics Covered:

The report covers the following topics:

    Business case for public safety LTE and mobile broadband services, including key benefits and challenges
    Technology, economics, trends, commercial commitments and deployment case studies
    List of public safety LTE engagements worldwide
    Public safety LTE infrastructure, devices and applications
    Industry roadmap, value chain and standardization initiatives
    Spectrum allocation, deployment models and funding strategies
    Profiles and strategies of over 260 ecosystem players including public safety system integrators and LTE infrastructure/device OEMs
    TCO analysis of private and commercial public safety LTE deployments
    Military and tactical LTE deployments
    Public safety LTE base station (eNB) form factor analysis
    Exclusive interview transcripts from 5 key ecosystem players: Ericsson, Airbus Defence and Space, Sepura, Aricent and Parallel Wireless
    Strategic recommendations for vendors, system integrators, public safety agencies and mobile operators
    Market analysis and forecasts from 2016 till 2030

Forecast Segmentation:

Market forecasts are provided for each of the following submarkets and their subcategories:

Public Safety LTE Infrastructure

    Submarkets
    RAN (Radio Access Network)
    EPC (Evolved Packet Core) and Policy
    Mobile Backhaul and Transport
    RAN Base Station (eNB) Mobility Categories
    Fixed Base Stations
    Transportable Base Stations
    RAN Base Station (eNB) Cell Size Categories
    Macrocells
    Small Cells
    Transportable RAN Base Station (eNB) Form Factor Categories
    NIB (Network-in-a-Box)
    VNS (Vehicle Network System)
    SOW (System-on-Wheels)
    Airborne Platform

Public Safety LTE Management & Integration Solutions

    Submarkets
    Network Integration & Testing
    Device Management & User Services
    Managed Services, Operations & Maintenance
    Cybersecurity

Public Safety LTE Devices

    Submarkets
    Private LTE
    Commercial LTE
    Form Factor Categories
    Smartphones & Handportable Terminals
    Vehicle Mount Routers & Terminals
    Tablets & Notebook PCs
    USB Dongles & Others

Public Safety LTE Subscriptions & Service Revenue

    Submarkets
    Private LTE
    Commercial LTE

Public Safety User Subscriptions over Private Mobile Broadband

    Submarkets
    Private LTE
    Private WiMAX

Public Safety User Subscriptions over Commercial Mobile Broadband

    Submarkets
    3G
    WiMAX
    LTE
    5G & Beyond

LMR Subscriptions

    Submarkets
    Analog
    DMR
    dPMR, NXDN & PDT
    P25
    TETRA
    Tetrapol
    Others

LMR Data Subscriptions

Submarkets

P25 - Phase 1

P25 - Phase 2

TETRA

TEDS

Tetrapol

Others

Public Safety LTE Applications

    Submarkets
    Video Applications
    zGIS, AVLS and Mapping
    Mobile VPN Access & Security
    CAD (Computer Aided Dispatching)
    Remote Database Access
    Telemetry and Remote Diagnostics
    Bulk Multimedia/Data Transfers
    PTT & Voice over LTE
    Situational Awareness Applications

Regional Segmentation

    Asia Pacific
    Eastern Europe
    Latin & Central America
    Middle East & Africa
    North America
    Western Europe

Key Questions Answered:

The report provides answers to the following key questions:

    How big is the public safety LTE opportunity?
    What trends, challenges and barriers are influencing its growth?
    How is the ecosystem evolving by segment and region?
    What will the market size be in 2020 and at what rate will it grow?
    Which regions and submarkets will see the highest percentage of growth?
    How does standardization impact the adoption of LTE for public safety applications?
    When will MCPTT and proximity services see large scale proliferation?
    What is the status of private LTE rollouts and public safety MVNO offerings across the globe?
    What opportunities exist for commercial mobile operators and MVNOs in the public safety LTE market?
    Is there a market for 400 MHz LTE networks?
    What are the prospects of tactical, vehicle-mounted and airborne LTE eNB platforms?
    How can public safety agencies leverage unused spectrum resources to fund private LTE networks?
    What strategies should system integrators and vendors adopt to remain competitive?

Make An Enquiry About TOC with tables & Figures @ https://www.researchmoz.us/enquiry.php?type=E&repid=804859

List of Companies Mentioned:

The following companies and organizations have been reviewed, discussed or mentioned in the report:

    3GPP (Third Generation Partnership Project)
    Aaeon
    Abu Dhabi Police
    Accelleran
    AceAxis
    ACMA (Australian Communications and Media Authority)
    Aculab
    Adax
    ADCOM911 (Adams County Communication Center)
    ADRF (Advanced RF Technologies)
    Advantech
    Advantech Wireless
    Aeroflex
    Affarii Technologies
    Affirmed Networks
    Agile Networks
    Airbus Defence and Space
    Airbus Group
    Air-Lynx
    Airspan Networks
    Airvana
    Airwave Solutions
    Ajman Police
    Alcatel-Lucent
    Altiostar Networks
    Amdocs
    Anite
    Anritsu Corporation
    APCO International (Association of Public-Safety Communications Officials)
    Apple
    ARASKOM
    Arcadyan
    Argela
    Aricent
    ARItel
    Arqiva
    Artemis Networks
    Aselsan
    ASOCS
    ASTRI (Hong Kong Applied Science and Technology Research Institute)
    ASTRID
    ASTRO Solutions
    Asus (ASUSTeK Computer)
    AT&T
    Athena Wireless Communications
    Athonet
    ATIS (Alliance for Telecommunications Industry Solutions)
    Atlas Telecom
    Avanti Communications Group
    Avaya
    AVI
    Aviat Networks
    Avtec
    Axell Wireless
    Axis Communications
    Axis Teknologies
    Axxcelera Broadband Wireless
    BAE Systems
    BandRich
    Barrett Communications
    BASE (Belgium)
    Baylin Technologies
    BayRICS (Bay Area Regional Interoperable Communications Systems Authority)
    BayWEB (Bay Area Wireless Enhanced Broadband system)
    BFDX
    Bilbao Metro
    Bird Technologies
    Bittium Corporation
    Black Box Corporation
    Blackhawk Imaging
    Blackned
    Bluebird
    Boise Police Department
    Bosch Security Systems
    Brazilian Army
    Bridgewater
    Broadcom
    Brocade Communications Systems
    BT Group
    BTI Wireless
    C4i
    CalAmp Corporation
    Calgary Police Service
    Camden County Public Safety
    Canadian Advanced Technology Alliance
    Casio Computer Company
    Catalyst Communications
    Caterpillar
    Cavium
    CCI (Communication Components Inc.)
    CCI (Competitive Companies, Inc.)
    CCI (Crown Castle International)
    CCSA (China Communications Standards Association)
    CCTI (Catalyst Communications Technologies, Inc.)
    Cellvine
    Ceragon
    China Mobile
    Ciena Corporation
    Cisco Systems
    CITIG (Canadian Interoperability Technology Interest Group)
    City of Charlotte
    City of Fort Worth
    City of Irving
    City of New Orleans
    City of Oakland
    City of Pembroke Pine
    Cobham
    Cobham Wireless
    Codan Radio Communications
    Colorado Parks and Wildlife
    Comba Telecom Systems Holdings
    CommAgility
    CommandWear Systems
    CommScope
    Comtech Telecommunications Corporation
    CONET Technologies
    Connectem
    Contela
    Core Network Dynamics
    Coriant
    Corning
    Covia Labs
    CPqD (Center for Research and Development in Telecommunications, Brazil)
    Cradlepoint
    CSI (Cellular Specialties, Inc.)
    Dali Wireless
    DAMM Cellular Systems
    DAP Technologies
    DAPage Notifications
    DataNet Software
    Datang Group
    Datang Mobile
    Dell
    DeltaNode
    Dish Network
    DNK (Norwegian Directorate for Emergency Communication)
    Dongwon T&I
    DragonWave
    DSC (Digital Special Communication)
    Dubai Police
    Durabook (Twinhead International Corporation)
    Dutch Police
    EA Networks (Electricity Ashburton)
    EADS
    Eastcom
    EchoStar Corporation
    Eden Rock Communications
    EE
    EENA (European Emergency Number Association)
    EF Johnson
    Elbit Systems
    Elta Systems
    EMC Corporation
    Ericsson
    Ericsson LG
    ETELM
    Etherstack
    Ethertronics
    ETRI (Electronics and Telecommunications Research Institute, South Korea)
    ETSI (European Telecommunications Standards Institute)
    Eventide
    EXACOM
    Exalt Communications
    Exelis
    EXFO
    ExteNet Systems
    Falu Municipality
    Federated Wireless
    FirstNet (First Responder Network Authority)
    Foxcom
    Fraunhofer Fokus
    French Armed Forces
    French MOI (Ministry of Interior)
    Frequentis
    Fujitsu
    Galtronics
    Gemtek Technology Company
    GENBAND
    General Dynamics Corporation
    General Dynamics Mission Systems
    Genesis Group
    German Armed Forces (Bundeswehr)
    Getac Technology Corporation
    Goodman Networks
    Goodmill Systems
    Google
    Governor's OIT (Office of Information Technology), State of Colorado
    Grant County Sheriff’s Office
    GrenTech (China GrenTech Corporation)
    GWT (Global Wireless Technologies)
    Harris Corporation
    Harris County
    HFRS (Hampshire Fire & Rescue Service)
    Hitachi
    Home Office, UK
    Honeywell
    Hong Kong Police Force
    HP (Hewlett-Packard Company)
    HQT Radio
    HTC
    Huawei
    Hughes Communications
    Hughes Network Systems
    Hytera Communications Company
    IAI (Israel Aerospace Industries)
    iBwave Solutions
    iCOM
    IDF (Israel Defense Forces)
    Imtradex
    Inmarsat
    InnerWireless
    Intel Corporation
    Intel Security
    InterDigital
    Intersec
    Intrepid Networks
    ip.access
    IPWireless
    ITELAZPI
    ITU (International Telecommunication Union)
    JDI (JING DENG INDUSTRIAL)
    JMA Wireless
    Jordanian Armed Forces
    JRC (Japan Radio Company)
    Juni Global
    Juniper Networks
    JVCKENWOOD Corporation
    Kapsch CarrierCom
    Kathrein-Werke KG
    KBR
    Kelrad Software
    Kenyan Police Service
    Keysight Technologies
    Kirisun Communications
    Kisan Telecom
    KMW
    Kodiak Networks
    KPN
    KT Corporation
    Kudelski Group
    Kyocera Communications
    L-3 Communication Systems-West
    L-3 Communications Holdings
    Laos Police
    LA-RICS (Los Angeles Regional Interoperable Communications System)
    Las Vegas Metropolitan Police Department
    Lemko Corporation
    Lenovo
    Leonardo-Finmeccanica
    LG CNS
    LG Electronics
    LG Group
    LGS Innovations
    Ligado Networks
    Lijiang Police
    LiveViewGPS
    Lockheed Martin Corporation
    Logic Instrument
    Mavenir Systems
    McWane
    MegaFon
    Mentura Group
    MER-CellO Wireless Solutions
    MetroPCS
    Miami Dade Police Department
    Miami-Dade County
    Microlab
    Milestone Systems
    MIMOon
    Ministry of Industry and Information Technology, China
    Mitel Networks Corporation
    Mitsubishi Electric Corporation
    MobileDemand
    Mobilicom
    Mobistar
    MODUCOM (MODULAR COMMUNICATION SYSTEMS)
    Moscow Police
    Moseley Associates
    Motorola Mobility
    Motorola Solutions
    MPS (Ministry of Public Security, China)
    MPSS (Ministry of Public Safety and Security, South Korea)
    MSB (Swedish Civil Contingencies Agency)
    MTI Mobile
    Mutualink
    National Rail, UK
    NATO (North Atlantic Treaty Organization)
    NCRIC (Northern California Regional Information Center)
    NEC Corporation
    Nedaa
    Neptune Mobile
    Net4Mobility
    Netas
    NetMotion Wireless
    Nevada Department of Transportation
    New Jersey ROIC (Regional Operations Intelligence Center)
    New Jersey State Police
    New Jersey Transit
    New Mexico DoIT (Department of Information Technology)
    New Postcom Equipment Company
    New Zealand Police
    NewCore Wireless
    Nexius
    NextG Networks
    NextNav
    NI (National Instruments) Corporation
    Nokia Corporation
    Nokia Networks
    Northrop Grumman Corporation
    nTerop Corporation
    NTT DoCoMo
    NuRAN Wireless
    Nutaq
    O3b Networks
    Oceus Networks
    Octasic
    OMA (Open Mobile Alliance)
    Oman Royal Office
    Ontario Ministry of Transportation
    ONTHEGODEVICES
    OpenSignal
    Optiway
    Panasonic Corporation
    Panda Electronics (Nanjing Panda Electronics Company)
    Panorama Antennas
    Parallel Wireless
    Pennsylvania State Police
    Pepro
    Philadelphia Police Department
    Phonak
    Piciorgros (Funk-Electronic Piciorgros),
    Pikewerks Corporation
    Polaris Networks
    Police Federation of Australia
    Portalify
    Potevio (China Potevio Company)
    PowerTrunk
    Productivity Commission, Australia
    Proximus
    Pryme Radio Products
    PSCR (Public Safety Communications Research)
    Public Wireless
    PureWave Networks
    Puxing Radio
    Pyramid Communications
    Qatar Armed Forces
    Qatar MOI (Ministry of Interior)
    Qigihar Municipal Public Security Bureau
    Qiqihar Police
    Qualcomm
    Quanta Computer
    Qucell
    Quortus
    RACOM
    Radio IP
    Radisys Corporation
    RADWIN
    RAVEN Electronics Corporation
    Raytheon Company
    RCMP (Royal Canadian Mounted Police)
    Reality Mobile
    Redline Communications
    RELM Wireless
    RF Window
    RFS (Radio Frequency Systems)
    Rio de Janeiro Fire Department
    Rivada Networks
    Rohde & Schwarz
    Rohill
    Roper Industries
    Rosenberger
    Safaricom
    SAIC (Science Applications International Corporation)
    Samji Electronics Company
    Samsung Electronics
    Samsung Group
    SANG (Saudi Arabian National Guard)
    Sao Paulo Military Police
    Sapura Secured Technologies
    Saudi MOI (Ministry of Interior)
    Savox Communications
    Selex ES
    Sepura
    SerComm Corporation
    SES
    SETAR
    Sevis Systems
    SFR
    Shanghai Police Department
    Siemens
    Siemens Convergence Creators
    Sierra Wireless
    Signalion
    Siklu
    Simoco
    SiRRAN
    SK Telecom
    SK Telesys
    SLA Corporation
    SLC (Secure Land Communications)
    Smith Micro Software
    SOLiD (SOLiD Technologies)
    Sonic Communications
    Sonim Technologies
    Sony Corporation
    Space Data
    Spectra Group
    SpiderCloud Wireless
    Spirent Communications
    Star Solutions
    State of Louisiana
    State of Minnesota
    State of Mississippi
    State of New Jersey
    State of New Mexico
    State of Oklahoma
    State of Texas
    State Security Networks Group, Finland
    Stop Noise
    Sumitomo Electric Industries
    Sunnada (Fujian Sunnada Communication Company)
    Surrey Police
    Swedish National Police
    Symantec
    Tait Communications
    Taqua
    TCCA (TETRA and Critical Communications Association)
    TCL Communication
    TCS (TeleCommunication Systems)
    TDIA (TD-Industry Alliance)
    TE Connectivity
    Techosonic Industries
    Tecore
    TEKTELIC Communications
    Telefónica
    Televate
    TELEX
    Telrad Networks
    Telstra
    Teltronic
    Telum
    TESSCO
    TETRAtab
    Thales
    TI (Texas Instruments)
    TIA (Telecommunications Industry Association)
    TITAN Communication Systems
    T-Mobile
    Toshiba Corporation
    Tropico
    Turk Telekom
    Turkish National Police Force
    Twisted Pair Solutions
    U.S. Army
    U.S. CBP (Customs and Border Protection)
    U.S. Cellular
    U.S. Coast Guard
    U.S. Department of Commerce
    U.S. Department of Defense
    U.S. Department of Homeland Security
    U.S. Department of State
    U.S. FCC (Federal Communications Commission)
    U.S. FEMA (Federal Emergency Management Agency)
    U.S. Navy
    U.S. NIST (National Institute of Standards and Technology)
    U.S. NPSTC (National Public Safety Telecommunications Council)
    U.S. NTIA (National Telecommunications and Information Administration)
    UAE MOI (Ministry of Interior)
    Ubidyne
    UIC (International Union of Railways)
    UNIMO Technology
    University of Ottawa
    Uppsala Ambulance Services
    US Digital Designs
    USPTO (U.S. Patent and Trademark Office)
    Utility Associates
    Verizon Communications
    ViaSat
    Viavi Solutions
    Vidyo
    Vientiane Municipal Government
    VIRVE
    Vision Technologies
    VMware
    Vodafone
    Vodafone New Zealand
    West Corporation
    Westell Technologies
    Western Australia Police
    Wildox
    Winmate
    WinMate Communication
    Wireless Telecom Group Company
    WNC (Wistron NeWeb Corporation)
    Wytec International
    xG Technology

Browse Report @ https://www.researchmoz.us/the-public-safety-lte-mobile-broadband-market-2016-2030-opportunities-challenges-strategies-forecasts-report.html

    Xplore Technologies Corporation
    Z-Com (ZDC Wireless)
    Zetron
    Zhengzhou Metro
    Zhengzhou Municipal Public Security Bureau
    Zhengzhou Police
    Zinwave
    ZTE

For More Information Kindly Contact:

ResearchMoz
Mr. Nachiket Ghumare,
90 State Street, Albany NY, United States - 12207
Tel: +1-518-621-2074
USA-Canada Toll Free: 866-997-4948
Email: sales@researchmoz.us
Follow us on LinkedIn @ http://bit.ly/1TBmnVG
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Thursday, 14 June 2018

Development of The Private LTE Network Market : Overview, Size and Share 2018-2030

ResearchMoz presents professional and in-depth study of "The Private LTE Network Ecosystem: 2016 - 2030 - Opportunities, Challenges, Strategies, Industry Verticals & Forecasts".

For years, the critical communications industry has relied on narrowband LMR (Land Mobile Radio) networks for mission-critical voice and basic data services.

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Due to the bandwidth limitations of these LMR networks, public safety agencies and other users within the critical communications industry have turned towards commercial LTE networks to support growing demands for mobile broadband services such as video transmission and bandwidth-intensive field applications.

However, most commercial LTE networks do not necessarily meet the priority, security, resilience and availability requirements of the critical communications industry. By providing authority over coverage and capacity, private LTE networks can alleviate these concerns while delivering guaranteed connectivity.

Expected to surpass $800 Million in global investments by the end of 2016, private LTE networks are increasingly becoming the preferred approach to deliver mobile broadband services in the critical communications industry. Fueled by large-scale rollouts in the public safety, energy and other sectors, the market is further expected to grow at a CAGR of 32% between 2016 and 2020.

The “Private LTE Network Ecosystem: 2016 – 2030 – Opportunities, Challenges, Strategies, Industry Verticals & Forecasts” report presents an in-depth assessment of the private LTE network ecosystem including technology, architectural components, operational models, key trends, market drivers, challenges, vertical market opportunities, applications, deployment case studies, spectrum allocation, standardization, regulatory landscape, future roadmap, value chain, ecosystem player profiles and strategies. The report also presents forecasts for private LTE network infrastructure investments from 2016 till 2030. The forecasts cover 3 submarkets, 5 vertical markets and 6 regions.

The report comes with an associated Excel datasheet suite covering quantitative data from all numeric forecasts presented in the report.

Topics Covered


The report covers the following topics:

    Private LTE network ecosystem
    Market drivers and barriers
    Technology, architectural components and operational models
    Analysis of vertical markets, applications and key trends
    Case studies of 20 private LTE network deployments
    Review of spectrum allocation for private LTE networks
    Regulatory landscape and standardization
    Industry roadmap and value chain
    Profiles and strategies of 190 ecosystem players including LTE infrastructure OEMs and system integrators
    Strategic recommendations for enterprises, LTE infrastructure OEMs, system integrators and mobile operators
    Market analysis and forecasts from 2016 till 2030

View Complete TOC with tables & Figures @ https://www.researchmoz.us/the-private-lte-network-ecosystem-2016-2030-opportunities-challenges-strategies-industry-verticals-forecasts-report.html/toc

Forecast Segmentation
Market forecasts are provided for each of the following submarkets and their subcategories:

Submarkets

    RAN (Radio Access Network)
    EPC (Evolved Packet Core) & Policy
    Mobile Backhaul & Transport

Vertical Markets

    Public Safety
    Military
    Energy & Utilities
    Transportation
    Others

Regional Markets

    Asia Pacific
    Eastern Europe
    Middle East & Africa
    Latin & Central America
    North America
    Western Europe

Key Questions Answered

The report provides answers to the following key questions:

    How big is the private LTE network opportunity?
    What trends, challenges and barriers are influencing its growth?
    How is the ecosystem evolving by segment and region?
    What will the market size be in 2020 and at what rate will it grow?
    Which submarkets will see the highest percentage of growth?
    How does standardization impact the adoption of LTE for critical communications?
    When will MCPTT (Mission-Critical Push-to-Talk) and proximity services see large-scale proliferation?
    What opportunities exist for commercial mobile operators in the private LTE network ecosystem?
    Will LTE replace GSM-R and other legacy technologies for railway communications and applications?
    Which spectrum band will be the most dominant choice for private LTE network deployments?
    What are the prospects of rapidly deployable tactical LTE networks in the military and public safety sectors?
    Who are the key market players and what are their strategies?
    What strategies should system integrators and vendors adopt to remain competitive?

Key Findings

The report has the following key findings:

    Expected to surpass $800 Million in global investments by the end of 2016, private LTE networks are increasingly becoming the preferred approach to deliver mobile broadband services in the critical communications industry. Fueled by large-scale rollouts in the public safety, energy and other sectors, the market is further expected to grow at a CAGR of 32% between 2016 and 2020.
    By the end of 2020, the North America region will account for over 35% of all private LTE investments worldwide. However, largely driven by South Korea’s rollout plans for public safety, railway and maritime LTE networks, the Asia Pacific region will continue to retain a strong position in the market.
    Several companies, such as TEN (Texas Energy Network) and INET (Infrastructure Networks) in the United States, have strategically deployed private LTE networks in remote, oil-rich areas, to exclusively provide mobile broadband services to energy companies.
    To alleviate large-scale infrastructure investments, several European countries are pairing dedicated private mobile core platforms with commercial LTE networks to deliver prioritized mobile broadband services to public safety subscribers.
    Conventional LMR industry players are leveraging partnerships with established LTE infrastructure OEMs such as Ericsson, Nokia, Huawei and Samsung, to offer end-to-end private LTE network solutions

Countires Covered

    Afghanistan
    Albania
    Algeria
    Andorra
    Angola
    Anguilla
    Antigua & Barbuda
    Argentina
    Armenia
    Aruba
    Australia
    Austria
    Azerbaijan
    Bahamas
    Bahrain
    Bangladesh
    Barbados
    Belarus
    Belgium
    Belize
    Benin
    Bermuda
    Bhutan
    Bolivia
    Bosnia Herzegovina
    Botswana
    Brazil
    British Virgin Islands
    Brunei
    Bulgaria
    Burkina Faso
    Burundi
    Cambodia
    Cameroon
    Canada
    Cape Verde
    Cayman Islands
    Central African Republic
    Chad
    Chile
    China
    Cocos Islands
    Colombia
    Comoros Islands
    Congo
    Cook Islands
    Costa Rica
    Côte d'Ivoire
    Croatia
    Cuba
    Cyprus
    Czech Republic
    Democratic Rep of Congo (ex-Zaire)
    Denmark
    Djibouti
    Dominica
    Dominican Republic
    East Timor
    Ecuador
    Egypt
    El Salvador
    Equatorial Guinea
    Eritrea
    Estonia
    Ethiopia
    Faroe Islands
    Federated States of Micronesia
    Fiji
    Finland
    France
    French Guiana
    French Polynesia (ex-Tahiti)
    French West Indies
    Gabon
    Gambia
    Georgia
    Germany
    Ghana
    Gibraltar
    Greece
    Greenland
    Grenada
    Guam
    Guatemala
    Guernsey
    Guinea Republic
    Guinea-Bissau
    Guyana
    Haiti
    Honduras
    Hong Kong
    Hungary
    Iceland
    India
    Indonesia
    Iran
    Iraq
    Ireland
    Isle of Man
    Israel
    Italy
    Jamaica
    Japan
    Jersey
    Jordan
    Kazakhstan
    Kenya
    Kirghizstan
    Kiribati
    Korea
    Kosovo
    Kuwait
    Laos
    Latvia
    Lebanon
    Lesotho
    Liberia
    Libya
    Liechtenstein
    Lithuania
    Luxembourg
    Macau
    Macedonia
    Madagascar
    Malawi
    Malaysia
    Maldives
    Mali
    Malta
    Marshall Islands
    Mauritania
    Mauritius
    Mayotte
    Mexico
    Moldova
    Monaco
    Mongolia
    Montenegro
    Montserrat
    Morocco
    Mozambique
    Myanmar
    Namibia
    Nepal
    Netherlands
    Netherlands Antilles
    New Caledonia
    New Zealand
    Nicaragua
    Niger
    Nigeria
    Niue
    North Korea
    Northern Marianas
    Norway
    Oman
    Pakistan
    Palau
    Palestine
    Panama
    Papua New Guinea
    Paraguay
    Peru
    Philippines
    Poland
    Portugal
    Puerto Rico
    Qatar
    Réunion
    Romania
    Russia
    Rwanda
    Samoa
    Samoa (American)
    Sao Tomé & Principe
    Saudi Arabia
    Senegal
    Serbia
    Seychelles
    Sierra Leone
    Singapore
    Slovak Republic

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    Slovenia
    Solomon Islands
    Somalia
    South Africa
    Spain
    Sri Lanka
    St Kitts & Nevis
    St Lucia
    St Vincent & The Grenadines
    Sudan
    Suriname
    Swaziland
    Sweden
    Switzerland
    Syria
    Tajikistan
    Taiwan
    Tanzania
    Thailand
    Togo
    Tonga
    Trinidad & Tobago
    Tunisia
    Turkey
    Turkmenistan
    Turks & Caicos Islands
    UAE
    Uganda
    UK
    Ukraine
    Uruguay
    US Virgin Islands
    USA
    Uzbekistan
    Vanuatu
    Venezuela
    Vietnam
    Yemen
    Zambia
    Zimbabwe

List of Companies Mentioned

    3GPP (3rd Generation Partnership Project)
    Abu Dhabi Police
    Accelleran
    Adax
    ADCOM-911 (Adams County Communications Center)
    Addis Ababa Light Rail
    Advantech
    Advantech Wireless
    Affirmed Networks
    Airbus Defence and Space
    Airbus Group
    Air-Lynx
    Airspan Networks
    Airwave
    Alcatel-Lucent
    Alstom
    Altiostar Networks
    Ambulance Victoria
    Amdocs
    Anritsu Corporation
    Ansaldo STS
    Arcadyan Technology Corporation
    Argela
    Aricent
    ARItel
    Arqiva
    Artemis Networks
    Aselsan
    ASOCS
    ASTRI (Hong Kong Applied Science and Technology Research Institute)
    ASTRID
    AT&T
    Athena Wireless Communications
    Athonet
    Atlas Telecom
    Avanti Communications Group
    Aviat Networks
    Axis Teknologies
    Axxcelera Broadband Wireless (Moseley Associates)
    Barrett Communications
    Beach Energy
    Bilbao Metro
    Black Box Corporation
    Blackned
    Bombardier Transportation
    Broadcom
    Brocade Communications Systems
    BT Group
    BTI Wireless
    Busan Transportation Corporation
    CalAmp Corporation
    Cavium
    CCI (Communication Components Inc.)
    CCI (Competitive Companies, Inc.)
    Ceragon
    Challenge Networks
    China Southern Power Grid
    Ciena Corporation
    Cisco Systems
    Cobham
    Codan Radio Communications
    Comba Telecom Systems Holdings
    CommAgility
    CommScope
    Contela
    Core Network Dynamics
    Coriant
    Corning
    County of Los Angeles
    Crown Castle
    Cybertel Bridge
    Cygnus Satellite
    Dali Wireless
    Datang Mobile
    DeltaNode (Bird Technologies)
    DNK (Norwegian Directorate for Emergency Communication)
    Dongwon T&I
    DragonWave
    Dubai Police
    EA Networks (Electricity Ashburton)
    EchoStar Corporation
    EE
    Elbit Systems
    Elta Systems
    Ericsson
    Esharah Etisalat Security Solutions
    ETELM
    Etherstack
    Ethertronics
    ETRI (Electronics and Telecommunications Research Institute, South Korea)
    ETSI (European Telecommunications Standards Institute)
    EUAR (European Union Agency for Railways)
    Exalt Communications
    Exelis
    EXFO
    Expway
    ExteNet Systems
    Federated Wireless
    FirstNet (First Responder Network Authority)
    Fraunhofer Fokus
    French Army
    Fujitsu
    Galtronics Corporation
    Gemtek Technology Company
    GENBAND
    General Dynamics Corporation
    General Dynamics Mission Systems
    German Armed Forces (Bundeswehr)
    Goodman Networks
    Google
    Grant County Sheriff's Department
    GWT (Global Wireless Technologies)
    Harris Corporation
    Harris County
    Hitachi
    Home Office, UK
    HPE (Hewlett Packard Enterprise)
    Huawei
    Hytera Communications Company
    IAI (Israel Aerospace Industries)
    INET (Infrastructure Networks)
    InfoVista
    Inmarsat
    Intel Corporation
    InterDigital
    ip.access
    Itelazpi
    ITU (International Telecommunication Union)
    JMA Wireless
    JRC (Japan Radio Company)
    Juni Global
    Juniper Networks
    JVCKENWOOD Corporation
    Kapsch CarrierCom
    Kathrein-Werke KG
    Kenyan Police Service
    Keysight Technologies
    Kodiak Networks
    Koning & Hartman
    Korail (Korea Railroad)
    Korea Rail Network Authority
    KT Corporation
    Kudelski Group
    L-3 Communications Holdings
    LA-RICS (Los Angeles Regional Interoperable Communications System)
    Lemko Corporation
    Leonardo-Finmeccanica
    LG CNS
    LGS Innovations
    Ligado Networks
    Lijiang Police
    Lockheed Martin Corporation
    Marlink
    MER-CellO Wireless Solutions
    Mitel Networks Corporation
    Mitsubishi Electric Corporation
    MOF (Ministry of Oceans and Fisheries, South Korea)
    MOLIT (Ministry of Land, Infrastructure and Transport, South Korea)
    Motorola Solutions
    MPS (Ministry of Public Security, China)
    MPSS (Ministry of Public Safety and Security, South Korea)
    MSB (Swedish Civil Contingencies Agency)
    Mutualink
    Nanjing Municipal Government
    NEC Corporation
    Nedaa
    Nemergent
    Netas
    New Postcom Equipment Company
    NI (National Instruments) Corporation
    Nokia Networks
    Northrop Grumman Corporation
    NTT DoCoMo
    Nutaq
    O3b Networks
    Oceus Networks
    Octasic
    Panda Electronics (Nanjing Panda Electronics Company)
    Panorama Antennas
    Parallel Wireless
    Pepro
    PetroChina
    PMN (Private Mobile Networks)
    Polaris Networks
    Port of Tianjin
    Potevio (China Potevio Company)
    Public Wireless
    Qatar MOI (Ministry of Interior)
    Qualcomm
    Quanta Computer
    Qucell
    Queensland Police Service
    Quortus
    Radisys Corporation
    Raytheon Company
    Redline Communications
    RFS (Radio Frequency Systems)
    Rio Tinto Group
    Rivada Networks
    Rohill
    Royal Dutch Shell
    Safaricom
    Samji Electronics Company
    Samsung Electronics
    Selex
    Sepura
    SerComm Corporation
    SES
    Shanghai Police Department
    Shuohuang Railway
    Siemens
    Sierra Wireless
    Siklu
    Simoco
    SiRRAN
    SK Telecom
    SK Telesys
    SLA Corporation
    SLC (Secure Land Communications)
    SOLiD (SOLiD Technologies)
    Sonim Technologies
    Southern Company
    SouthernLINC Wireless
    Space Data
    Spectra Group
    SpiderCloud Wireless
    Spirent Communications
    Star Solutions
    State of New Jersey
    State of New Mexico
    State of Texas
    State Security Networks Group, Finland
    Statoil
    Sunnada (Fujian Sunnada Communication Company)
    Tait Communications
    Tampnet
    Taqua
    TCCA (TETRA and Critical Communications Association)
    TCL Communication
    Tecom
    Tecore
    TEKTELIC Communications
    Telefónica
    Telenor Maritime
    Telrad Networks
    Telstra
    Teltronic
    Telum
    TEN (Texas Energy Network)
    Thales
    TI (Texas Instruments)
    Tropico
    TrustComm
    TTA (Telecommunications Technology Association, South Korea)
    TxDPS (Texas Department of Public Safety)
    U.S. Department of Commerce
    U.S. FCC (Federal Communications Commission)
    U.S. Navy
    U.S. NPSTC (National Public Safety Telecommunications Council)
    UANGEL
    UIC (International Union of Railways)
    URSYS

Browse Report @ https://www.researchmoz.us/the-private-lte-network-ecosystem-2016-2030-opportunities-challenges-strategies-industry-verticals-forecasts-report.html

    Utility Associates
    Verizon Communications
    ViaSat
    Viavi Solutions
    Vientiane Municipal Police
    VIRVE
    Vodafone
    Weijiamao Coal Mine
    WNC (Wistron NeWeb Corporation)
    xG Technology
    Z-Com (ZDC Wireless)
    Zetel Solutions
    Zhengzhou Metro
    Zinwave
    ZTE

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Mr. Nachiket Ghumare,
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