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Showing posts with label MEC LTE 5G ETSI 3GPP multi-access. Show all posts
Showing posts with label MEC LTE 5G ETSI 3GPP multi-access. Show all posts

Saturday, 24 February 2018

MEC Deployment challenges & scenarios - ETSI Whitepaper


ETSI has come up with its new whitepaper on MEC, a much curated technology for making 5G a true application defined network. MEC will be a consultative driven approach for selecting the right kind of scenarios and application deploment as looking obvious here below recommendations.

As per the GS MEC 011 [2] specification, a key baseline functionality of the MEC platform is to route IP packets to MEC applications which are meant to handle the traffic in the following different ways:
 In Breakout mode, the session connection is redirected to a MEC application which is either hosted locally on the MEC platform or on a remote server. Typical breakout applications include local CDN, gaming and media content services, and enterprise LAN.
 In In-line mode, the session connectivity is maintained with the original (Internet) server, while all traffic traverses the MEC application. In-line MEC applications include transparent content caching and security applications.  In Tap mode, specified traffic is duplicated and forwarded to the tap MEC application, for example, when deploying virtual network probes or security applications.
 In Independent mode, no traffic offloading function is needed, but still the MEC application is registered in the MEC platform and will receive other MEC services, such as DNS, Radio Network Information Service (RNIS), etc. Steering traffic to/from MEC applications is achieved by configuring the MEC’s local DNS and the MEC host’s data plane accordingly.

From the list above, it appears straightforward that the implementationspecific details of the data plane within the MEC host (as per the MEC architecture in GS MEC 003 [3]) and the MEC platform, which is meant to program the data plane through Mp2 interface, are impacted by the point where the MEC host is installed in the 4G architecture. Many choices are possible, but all in all they can be condensed down into some base scenarios.

Also going for 5G.

The common feature set of providing much-improved capabilities at the edge of the network, improved intelligence about resources needed at the edge, and the ability to charge for service delivered by cycles, memory, storage and bandwidth delivered, makes it very attractive to start the deployment now in early test sites, roll out to sites that show promise and need for MEC based applications, and then roll out as part of the 5G transition without losing any upfront investment from the earlier test deployments. Taking into account the above considerations, in the next sections we illustrate how MEC compatibility towards 5G networks may involve:
 Integrating the MEC data plane with the 5G system’s one for routing traffic to the local data network and steering to an application;
 An Application Function (AF) interacting with 5G control plane functions to influence traffic routing and steering, acquire 5G network capability information, and support application instance mobility;
 The possibility of reusing the edge computing resources and managing/orchestrating applications and/or 5G network functions, while MEC still orchestrates the application services (chaining). Go through Complete whitepaper of ETSI here below.
 

Friday, 21 July 2017

LTE-Advanced Pro is a new marker for LTE starting with Rel-13 onwards, by Marcin Dryjanski, Grandmetric.


LTE-Advanced Pro is a new marker for LTE starting with Rel-13 onwards. According to 3GPP, “the new term is intended to mark the point in time where the LTE platform has been dramatically enhanced to address new markets as well as adding functionality to improve efficiency”.



LTE-Advanced Pro Rel-13 Features[2]
The first release of LTE-Advanced Pro was frozen last month (March 2016). It was brought to reality with quite extensive set of new functionalities as compared to LTE-Advanced. They are summarized below.
LTE-WiFi Aggregation (LWA) – the Carrier Wi-Fi is serving as a capacity booster counterpart, using radio level integration with LTE serving as an anchor. In LWA, UE is configured by the eNB to utilize radio resources of both, LTE and WLAN.
Licensed Assisted Access (LAA) – aggregates the licensed LTE carrier (serving as a mobility and signaling anchor – PCell) with SCell using the new LTE frame format over the unlicensed 5GHz ISM band.
Device-to-device (D2D) – direct communication between devices assisted by network utilizing sideling exploiting new transport and physical channels.
Massive CA – extends carrier aggregation towards higher number of aggregated bands and towards the use of unlicensed spectrum for mobile networking. Massive CA enables up to 32CCs and thus theoretically provides up to 640MHz of aggregated bandwidth for a single device, while still fulfilling backwards compatibility with LTE Rel-8 channel bandwidths.
Dual Connectivity (DC) –spectrum aggregation in inter-site scenario, where a macro-cell serves as a mobility anchor, whereas the additional radio link provided by Small Cell acts as local capacity booster. DC enables to switch User Plane links among available SCs, whereas the user’s context is maintained by the overlay macro-cell. In contrary to CA, DC scheme, instead of aggregating MAC layer transport blocks, the PDCP Packet Data Units are combined, thus omitting the requirement for low latency and allowing non-ideal backhaul for SC connectivity.
MTC enhancements – addressing low complexity MTC with focus to define a low complexity UE category type that supports reduced bandwidth (operation with 1.4MHz), reduced transmit power, reduced support for downlink transmission modes, ultra-long battery life via power consumption reduction techniques and extended coverage operation (up to 15dB).
3D/Full Dimension-MIMO – allow to use elevation beamforming enhancing the horizontal beam steering, and using up to 64 antenna ports with further outlook towards high frequencies for 5G.
Multi-RAT Joint Coordination – addressing joint radio resource management between various RATs including “Dynamic Spectrum Access”, where the collocated LTE and GSM systems use dedicated bandwidth part which size depends on the actual traffic demands. It uses temporal traffic statistics: e.g. when GSM load on Traffic Channel is low, LTE is allowed to use shared part of the spectrum.

LTE-Advanced Pro v.2 – enhancements envisioned for Rel-14 [3]
As Rel-13 was frozen last month, the work on Rel-14 has already started, with the new SI/WIs targeting improvements and new features for LTE-Advanced Pro. Some of the interesting functionalities are summarized below with the target to be frozen in June 2017.
enhanced LAA (eLAA) – proposal extends LAA scheme with UL consideration to enable full DC-like capabilities for unlicensed spectrum.
enhanced LWA (eLWA) – as LWA standardized within Rel-13, considered DL-only operation, an enhanced LWA (eLWA) is proposed within Rel-14 to overcome this limitation. The new features in this enhancement include: addition of UL transmission via WLAN, support for 60GHz, PDCP optimizations for increased data rates, and SON-related features for WLANs under eNB coverage.
Vehicluar-to-Vehicular (V2V) – aims at specifying RAN support for V2V operation integrated with Uu interface within or without network coverage using sidelink including: PHY layer structure, RRM requirements, and L2/L3 protocol operation.
CP and UP latency enhancements – shortening TTI down to a single OFDMA symbol and more resource efficient UL scheduling timing are some examples of the proposed improvements targeting latency reduction.
Light connection – discussion on a new intermediate RRC state for keeping UE context alive during short active/inactive transitions (applicable for massive MTC use case with small data transmission);
Multi-connectivity – is expected to enhance DC, by providing multiple links for a UE in two options. First option considers configuration of multiple radio links per UE, where only limited, selected set of radio links is active at any given moment. Alternatively, all of the configured multiple radio links can be active.

To read complete article click HERE
MARCIN DRYJANSKI
Marcin Dryjanski received his M.Sc. degree in telecommunications from the Poznan University of Technology in Poland in June 2008. During the past 8 years, Marcin has served as R&D Engineer, Lead Researcher, R&D Consultant, Technical Trainer and Technical Leader. He has been providing expert level courses in the area of LTE/LTE-Advanced for leading mobile operators and vendors. Marcin provides consulting services to business projects in the area of 5G related topics. In addition to that, Marcin was a workpackage leader in EU-funded research projects aiming at radio interface design for 5G including FP-7 5GNOW and FP-7 SOLDER. He co-authored a number of research papers targeting 5G radio interface design. To contact Marcin please write to: marcin.dryjanski@grandmetric.com


Thursday, 20 July 2017

New 5G-PPP Projects Kick-off (5G PPP Phase2), by Agata Buczkowska, Grandmetric.


5G-PPP Phase 2 project undertaken

The 5G Infrastructure Public Private Partnership (5G – PPP, https://5g-ppp.eu/ ) is a joint initiative between the European ICT industry and the European Commission. The purpose of this initiative was to rethink the infrastructure and to create next generation of communication network.
The 5G-PPP Programme will consist of at least three phases of approximately 20 large projects working in parallel in each phase. These projects will have unique goals but together will answer the Key Performance Indicators of the Programme and fulfill the vision of a new network.
The Phase 2 of the Horizon-2020 5GPPP has started at the beginning of the June 2017 and will last up to August 2020. The short description of the projects is given below:
A Global Community-www.xgnlab.com
  • 5G ESSENCE: Embedded Network Services for 5G Experiences (https://5g-ppp.eu/5g-essence/, 06.2017 – 11.2019): devotes to the idea of Edge Cloud computing and Small Cell-as-a-Service (SCaaS). It will be done by improving the drivers and removing the barriers in the Small Cell (SC) market. 5G ESSENCE will provide a highly flexible and scalable platform, which will support new business models and incoming streams.

  • 5G CAR: Fifth Generation Communication Automotive Research and innovation (https://5g-ppp.eu/5gcar/, 06.2017 – 05.2019): will focus on V2X network aspects. It will develop 5G system architecture, optimize end-to-end V2X network connectivity for highly reliable and low-latency V2X services, which supports security and privacy, manages quality-of-service along with traffic flow in a multi-RAT and multi-link V2X communication system.
  • 5GCity (https://5g-ppp.eu/5g-city/, 06.2017 – 11.2019): will build, develop, deploy and test, in operational conditions, a distributed cloud and radio platform for municipalities and infrastructure owners acting as 5G neutral hosts. This multi-tenant open platform that extends the centralized cloud model to the extreme edge of the network will be demonstrated in three different cities. The main goal of the project is to maximize the refund the investment for the whole digital market chain (users, application, cloud providers) and to solve the open research challenges in the 5G-based edge virtualization domain, including the neutral host perspective in dense deployment environments.
  • 5G MEDIA: Programmable edge-to-cloud virtualization fabric for the 5G Media industry (https://5g-ppp.eu/5g-MEDIA/, 06.2017 – 11.2019): focuses on innovating media-related applications by investigating how applications and the underlying 5G network should interwork and be coupled. The main objectives are capitalizing and properly extending the valuable outcomes of the running 5G PPP projects to offer an agile programming, verification and orchestration platform for services, evolving network functions and applications and demonstrating them in large-scale deployments.
  • 5G-MoNArch: 5G Mobile Network Architecture for diverse services, use cases, and applications in 5G and beyond (https://5g-ppp.eu/5g-Monarch/, 07.2017 – 06.2019): brings into practice the concepts of the expected diversity of services where use cases and applications in 5G require a flexible, adaptable, and programmable architecture. This will include the functional innovations for the key technologies required for the identified use cases (resilience and security, resource elasticity) and deployment and experimental implementation of the architecture in two use cases (sea port and touristic city).
  • 5G-PHOS: 5G integrated Fiber-Wireless networks exploiting existing photonic technologies for high-density SDN-programmable network architectures (https://5g-ppp.eu/5g-phos/, 09.2017 – 08.2020): focuses on the development the novel 5G broadband fronthaul architectures. The goal is to evaluate them for Ultra-dense and Hot-Spot areas taking advantage of the recent advances in optical technologies towards producing a powerful photonic integrated circuit technology toolkit.
  • 5G PICTURE: 5G Programmable Infrastructure Converging disaggregated neTwork and compUte Resources (https://5g-ppp.eu/5g-picture/, 06.2017 – 11.2019): will develop the infrastructure that relies on a converged fronthaul and backhaul solution, integrating advanced wireless access and novel optical network domains. The concept of Disaggregated-Radio Access Networks (DA-RANs) will be adopted to allow any service to flexibly mix-and-match and to use compute, storage network resources through HW programmability.
  • 5Gtango: 5G Development and Validation Platform for global Industry – specific Network Services and Apps (5gtango.eu, 06.2017 – 11.2019): pays attention to the flexible programmability of 5G networks. The main goals within the project are:
    • reduction of the time-to-market for networked services by shortening the service development cycle and by qualifying those network services to be adopted,
    • decrease the entry barrier to third party developers along with supporting the creation and composition of Virtual Network Functions (VNFs) and application elements as “Network Services”,
    • also boost the NFV uptake in industry via an ‘extended’ DevOps model and
    • the validation at scale of Network Service capabilities of the 5GTANGO platform in vertical show cases.
  • 5G – Transformer: 5G Mobile Transport Platform for Verticals (http://5g-transformer.eu/, 06.2017 – 11.2017): will transform modern mobile transport networks into an SDN/NFV-based Mobile Transport and Computing Platform (MTP), which brings the “Network Slicing” concept into mobile transport networks by supplying and managing MTP slices tailored to the specific needs of vertical industries. The goal of the Project is to design, implement and show a 5G platform that addresses challenges such as:
    • enable vertical industries to meet their service requirements within customized MTP slices
    • unite transport networking and computing fabric, from the edge all the way to the core and cloud, and
    • to create and manage MTP slices throughout a federated virtualized infrastructure.
  • 5G-Xcast: Broadcast and Multicast Communication Enablers for the Fifth Generation of Wireless Systems (https://5g-ppp.eu/5g-xcast/, 06.2017 – 05.2019): the goal of the project is to develop broadcast and multicast point to multipoint (PTM) capabilities for 5G considering M&E automotive, IoT and PWS use cases and evaluate 5G spectrum allocation options for 5G Broadcast network deployments. The project assumes also a design of the 5G network architecture with layer independent network interfaces to dynamically and smoothly switch between unicast, multicast and broadcast modes or use their in parallel.
  • Global5G.org: Global vision, standardisation & stakeholder engagement in 5G (www.global5g.org, 07.2017 – 12.2019): will simplify a European-led contribution to the international vision of 5G networks, dealing with a large set of requirements from different vertical industries. The goal of the project is to implement a European “5G PPP Vision” in an international context, by involving all important stakeholders.
to read complete summary of projects click HERE 


Blog Author: 

AGATA BUCZKOWSKA
Agata Buczkowska received her M.Sc. degree in Telecommunications from the Poznan University of Technology, Poland in October 2012. She spent 9 months at the Tampere University of Technology in Finland within LLP Erasmus Student Exchange Programme. Later on, to improve analytical skills she got also B.Sc. degree in Mathematics in 2014 from Adam Mickiewicz University in PoznaƄ. Since then she worked in different fields of communication, including networking and optical networks planning. In Grandmetric she is involved in wireless systems research.

Wednesday, 19 July 2017

5G ESSENCE - A very profound initiative from 5GPPP - HORIZON 2020


Friday, 7 July 2017

ETSI’s MEC plans were signified with a name change and expanded focus to include hetnets using LTE, 5G, fixed broadband and Wi-Fi technologies.



In addition to the name change, ETSI said the group’s focus will expand to “address multiple MEC hosts being deployed in many different networks, owned by various operators and running edge applications in a collaborative manner.” This expansion is set to include work on heterogeneous networks using LTE, “5G” technologies, fixed deployments and Wi-Fi technologies, with current work to simplify application programming interfaces, standards-based interfaces for multi-access hosts and an alignment with network functions virtualization architectures.

ETSI explained the move to “embrace the challenges in the second phase of work and better reflect non-cellular operators’ requirements.”

“In phase two, we are expanding our horizons and addressing challenges associated with the multiplicity of hosts and stakeholders,” explained Alex Reznik, who was recently elected chairman of the MEC ISG. “The goal is to enable a complete multi-access edge computing system able to address the wide range of use cases which require edge computing, including [internet of things]. We will continue to work closely with [Third Generation Partnership Project], ETSI NFV ISG and other SDOs as well as key industry organizations to ensure that edge computing applications can be developed to a standardized, broadly adopted platform.”
for Detail news click here - Source : RCRwireless

Thursday, 1 June 2017

NGMN : 5G E2E Architecture framework; more on 'large scale convergence' at data plane.

The 5G system will also support flexible RAN structures including implementations based on Cloud principles and the placement of context awareness at the RAN edges (i.e. mobile edge computing). Both centralized and distributed implementation of RAN functions should be enabled to facilitate the realization of various RAN implementations. In addition, support for various coverage layers and cell sizes spanning extreme long-distance covering macro cells to small cell radio access deployments is required.

An open Perspective for LARGE SCALE CONVERGENCE, specially in case of data plane.

RAN Decomposition, Functional decomposition of the radio network is required to meet the diverse information transport demands (high performance to low performance) and align them with the demands of next-generation service categories of eMBB, mIoT, and URLLC. To accommodate these, a decomposition of the radio network protocol layer functions, across layer-1, layer-2, and layer-3 is required, in terms of the degree of centralisation or distribution.

This decomposition consists of placing more functions of the upper layers of the radio network protocol stack in distributed entities for high performance transport demands (e.g. high bandwidth, high-capacity, low-latency, low jitter etc.,) relative to a centralized entity. Scheduling optimisation at a centralized entity, for high performance transport across multiple distributed entities (e.g. base stations, remote radio heads etc.) for fast coordination is critical requirement.

For relatively low performance transport, more of the upper layer of the radio network protocol stack is placed at a centralized entity to optimize the cost/performance trade-off, associated with the distributed entities. This choice of functional split will determine the x-haul capacity requirement and associated latency specifications and performance. This will impact the network architecture as it could determine the placement of nodes and distance between them or, in the case of a higher layer split, will be tolerant of a large latency from a RAN perspective which may be excessive when low-latency services are considered, therefore bounds must be applied within the network architecture to enable a service provider to support low latency services.

A distributed RAN (D-RAN) with several functional splits will be supported by 5G. Figure 1 illustrates the configuration with co-located centralised unit (CU) and distributed (DU). All radio protocol layers are terminated within the cell site.




The connection from the cell site towards the core network is traditional mobile backhaul which will be scaled and optimised to support 5G data rates and performance targets such as low-latency, low PELR, low and very deterministic PDV etc. The D-RAN configuration does not constrain the ability of the local CU to support remote DU; in fact the cell site could become a CU for other cells sub-tended as illustrated in Figure 2.



A 5G C-RAN can be implemented with a higher layer split with the protocols stack with PDCP being located in the CU while the remainder of the stack is in the DU, as shown in Figure 3. This is one example; other splits will result in a different distribution of functionality between CU and DU.




This configuration has similar x-haul capacity requirements when compared with traditional backhaul, the latency and performance requirements of the RAN are not stringent and therefore consideration must be given to engineer the x-haul link in accordance with service-based latency and performance targets.





Wednesday, 19 October 2016

Multi Access -MEC, with local break-outs and hyper dense spectrum for enterprise traffic engineering

Earlier this month, the MEC industry standards group received an updated mandate from ETSI, extending work for a further two years. This was done, in part, to the need to make MEC available across all access networks, from today’s LTE to tomorrow’s 5G, as well as wireline and wireless LANs. And speaking of cellular, at some point the 3GPP will no doubt be looking to subsume MEC into its ongoing cellular standardisation work – so what can the MEC group do now to prepare for the inevitable, and how can it help 3GPP and not duplicate work activities?

Meanwhile, vendors from the telecoms and enterprise sectors are developing edge computing solutions today. The enterprise remains a lucrative market for telcos, but they don’t want to repeat the approach originally made with small cells – i.e. buy small cells from us and help us alleviate network congestion. Enterprise IT buyers are savvy customers and they will only play ball if they get true benefits. This then leads into a discussion about where the “edge” actually is, and how far it extends into the core network.

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