Technology Trends/5G Networks
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Status | Published | ||||||
Initial release | May 23, 2019 | ||||||
Latest version | May 23, 2019 | ||||||
Official publication | Blockchain.pdf | ||||||
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5G Networksalso known as 5G NR (“new radio”), stands for 5th-Generation cellular wireless technology.[1] In the mobile universe, a generation (a ‘G’) usually indicates a compatibility break – meaning that users will need new equipment[2]. Although wireless generations have technically been defined by their data transmission speeds, each has also been marked by a break in encoding methods, or “air interfaces,” that make it incompatible with the previous generation.[3]
Business Brief
5G – Unlicensed Spectrum: a 5G network has three main advantages over its predecessor:
- It is set to offer between 10 and 20Gbps data download speed;
- It offers low latency, of less than a millisecond, which is crucial for applications that need to be updated in real-time; and
- Because the technology makes use of millimeter radio waves (mmWave) for transmission, it can provide higher bandwidth over current LTE networks, as well as much higher data rates.
In practical terms, this means that 5G networks will be able to provide access to cloud storage, the ability to run enterprise applications, and the power to run more complex tasks virtually. A 5G network also offers the possibility of 100x more device connections than 4G LTE. It may also offer a 90% reduction in energy consumption compared to 4G, while providing internet speeds currently only capable of being achieved through a direct network connection via fiber optic cable. 5G is also poised to transform the world of IoT devices. The use of mmWave and 5G core network not only allow for faster data transmission but also greater connection reliability. This means greater connectivity for new kinds of mobile applications, factory automation, autonomous vehicles and so forth. Essentially any IoT application currently using Low Power Wide Area (LPWA) will see incremental improvements. Many cellular vendors are set to release smartphones and other devices capable of connecting to 5G networks by the end of 2019. Currently, organizations such as AT&T have released 5G Evolution, which is a step up from 4G LTE but does not provide the full range of capabilities that 5G will.
Technology Brief
Much like current cellular networks, 5G divides a territory into small sectors in which devices connect to cell sites. These cell sites are then able to transmit encrypted data through the use of radio waves. Where 5G differs from its predecessor is in its ability to transmit these radio waves at much higher frequencies – which translates into faster data speeds, even faster than current fibre network speeds, which are 1Gbps. This minimal disruption has already seen real world application when Sprint released a similar feature with its LAA technology. In the millimeter wave (mmWave) spectrum, these frequencies are between 30 and 300 GHz.
There are two sets of frequencies being approved by the United States’ Federal Communications Commission (FCC). “Low-band 5G” and “Mid-band 5G” use frequencies from 600 MHz to 6 GHz, especially 3.5-4.2 GHz. Mid-Band waves will likely not affect existing wireless support hardware very much. Although there will be a need for boosters to avoid a lot of signal attenuation, mmWave will completely disrupt wireless technologies – requiring a whole new system of antennas, cabling, and amplifiers.
5G networks will be used with much smaller cell sites. Higher frequency radio waves are only capable of travelling short distances as compared to the lower frequency 4G LTE waves. Since the 5G signal can only be transmitted about the distance of a city block and cannot permeate buildings, there will be less need for large network towers and more need for small cell towers approximately every city block as well as within buildings. This also means that the speed on the individual networks will be greater than before.
An article written by professors from the University of Waterloo, Carleton and Ozyegin Universities explains that 5G networks could completely transform the current cellular architecture. They explain that for 5G to function with such a high demand for network bandwidth from IoT devices, the traditional cellular architecture may be divided into a two-tier architecture: 1) a macrocell layer, for base station-to-device communication, and 2) a device layer, for device-to-device (D2D) communication.
Industry Usage
Sprint and T-Mobile have invested in lower-frequency 5G, which provides slower speeds in exchange for more range. This will allow them to provide 5G to less-dense areas more economically. Sprint has invested in mid-band, 2.5 GHz 5G, while T-Mobile is planning to use “low-band” 600 MHz 4G in addition to higher-frequency 5G in denser areas. In comparison, Verizon and AT&T will mostly be using much higher-frequency bands, such as the 28-GHz range.
In Canada, widespread availability of 5G won’t be until sometime in 2020. Although 5G has a potential of reaching speeds of 20Gbps, it will likely be around 6Gbps when it is first deployed. As with similar technologies, it will take up to 10 years for this new technology to reach full maturity.
Canadian Government Use
5G (or 5th Generation) mobile networks are not yet available in Canada or most of the world for that matter. Despite this, the Government of Canada (GC) has been preparing for its arrival. Canada is on par in preparation for 5G compared to other developed countries.
Innovation, Science and Economic Development Canada (ISED) & the Management of Mobile Spectrum
All global radio spectrum is allocated by The International Telecommunication Union (ITU). In Canada, cell phones and radio frequencies are regulated by Innovation, Science, and Economic Development (ISED), which forms part of the ITU. This department also oversees licensing and placement of cell phone towers, conducts environmental impact and land use assessments regarding the installation of cell phone towers or other cell phone infrastructure, and ensures that this equipment meets all regulatory requirements. It is also responsible for the provision and licensing of spectrum to wireless carriers in Canada. In 2015, after consultations with telecommunications carriers and television broadcasters, it was decided that Canada will repurpose the 600 MHz portion of the TV spectrum band for mobile use. The auctioning of this spectrum to mobile carriers was completed in April 2019 and demonstrates the Government of Canada’s (GC) awareness of the constantly increasing importance of mobile technology and the need for greater frequency bands.
In June 2017, ISED launched consultations regarding the future release of additional spectrum, beyond the current used 648 MHz. ISED wanted to consider the quantities most likely required, as well as the need for possible policy and regulatory considerations, as new business models and network applications emerge. Various stakeholders took part in the consultations and showed support for the GC’s proposal for the release of 28GHz, 37 to 40GHz and 64 to 71GHz frequency bands. The Minister of ISED, the Honourable Navdeep Bains, has said that more conclusive decisions will not take place before the World Radiocommunication Conference in the Fall of 2019 and that consultations around such issues generally take two years. However, some major stakeholders would like to see the speed of this process increased. A representative from Telus has said, “Immediate and decisive regulatory action is required to allow Canada to reap early mover advantages in the new global digital economy.”
Public Safety & Concerns Regarding Espionage
As of May 2019, the GC is conducting a cybersecurity review of 5G technology and potential equipment suppliers. Currently, the main suppliers globally include Nokia, Ericsson, Samsung, Qualcomm, and Huawei, with the greatest concerns involving the latter company. In 2018, Australia, New Zealand, and the United States all banned the use of Huawei telecom equipment in its 5G networks after concerns that the company had ties to the Chinese government, which could potentially use Huawei to help it perform espionage or to attack vital public infrastructure by the deployment of malicious code. Huawei has vehemently denied these allegations to date. The United Kingdom has ordered a partial ban of Huawei in the core of its 5G network. Other European countries have so far refrained from doing so.
Other Investments & Initiatives
The Canadian Government has announced the investment of up to $40 million to support Nokia’s research on 5G technology in Canada. Nokia has launched multiple projects regarding data routing in optical networks, as well as the development of cybersecurity tools that will protect telecommunication networks as they move toward 5G.
Implications for Government Agencies
SSC will have an important role to play in ensuring that the GC departments have the tools, infrastructure, and architecture available when 5G launches on a large scale in the next few years. Thus, the rollout of 5G will have major implications for SSC.
Value Proposition
As mentioned in the Business Brief, 5G offers three main advantages over the current 4G network: greater speed, lower latency, and the ability to connect many more devices at once. In practical terms, this means that 5G networks will be able to provide better access to cloud storage (and edge computing), the ability to run enterprise applications with greater “real-time” response, and the power to run more complex tasks virtually. These advantages couple well with the GC’s ongoing commitment to open-government and greater data sharing and collaboration from any device (including mobile) as elaborated in the Digital Operations Strategic Plan 2018-2022.
Challenges
First, compatible devices will need to be re-issued to all GC employees throughout Canada. Current devices will not be compatible with 5G networks nor will automatic updates be available. Only 5G compatible devices can be used on 5G networks (they can also be used on 4G networks). However, an immediate update will probably not be required. Initially, 5G launches will use 4G networks and equipment and not standalone. Regardless, a complete renewal of all GC devices over roughly the same time period will be a massive logistical and financial undertaking. Nonetheless, to maintain itself as a digitally-enabled government that can best serve Canadians, one of the main strategic themes outlined in the Digital Operations Strategic Plan 2018-2022 and also outlined in Blueprint 2020, this investment will be critical.
Second, 5G will in part be broadcast using millimeter waves, which have frequencies between 30 and 300 GHz. The problem with mmWaves is that they typically have poor range and are susceptible to interference and blockage by objects, such as buildings, trees, even rain and clouds. This presents an obstacle in terms of ensuring adequate device coverage. Moreover, interference and range problems can prevent certain vital systems from working at all, such as weather forecasting, SmartCities initiatives, medical procedures, and military and policing operations. To get around this, “small cells”, the term devised to describe the use of many small antennas, towers, and transmitters in a dense area, will need to be deployed. This will significantly alter the current network structures that we have now and may prove difficult in some remote or rural areas.
Considerations
5G will also transform the traditional cellular architecture. Having a two-tier architecture as explained in the technological brief requires heightened security. This is because using devices to connect to each other to establish a network connection means there isn’t only one central base station to protect. Now, the provider will have to also focus on protecting against the devices that establish the connections themselves. Security will be a vital concern for SSC moving into the 5G era as IoT devices will all be connected. This increased number of IoT devices brings forth a high amount of network traffic.
Companies like Cisco and Ericsson have begun using software-defined-networks (SDNs) and network functions virtualization (NFV) because they are more flexible and can dynamically support a growing number of devices. SDNs decouples the hardware from the software, meaning tasks can be performed in the cloud or in clusters of servers. NFVs, which are usually used in combination with SDNs, shift network functions from being hardware-specific to being able to run in virtual machines. These are viable options for SSC moving forward as the department migrates to the cloud while entering the 5G era.
Despite the advantages of 5G, there will be initial upfront financial and human resources costs. Not only will updating and deployment of current infrastructure and devices be required, but densification of infrastructure will also be an inevitable result of 5G technology. Due to the challenges in transmission distances and interference, small cell deployments of radio towers and antennas, possibly on each government building throughout the country, may be necessary. This has impacts on budgets and manpower.
Finally, lessons can be learned from the early 5G adopters. At present, 5G technology is still very much immature and not deployed on a wide scale globally. However, in April 2019, South Korea became the first country to fully adopt 5G and expect close to 1 million users by the end of June 2019. Within these early months of its launch, complaints arose from users regarding coverage issues and speed, mostly as a result of a lack of base stations (towers and antennas) outside of densely populated urban areas. Carriers have responded by installing 3,000-4,000 new stations weekly in order to meet the demand and resolve issues. This highlights the importance of needing key infrastructure in place prior to launch in order to prevent the alienation and frustration of clients.
Hype Cycle
English | Français |
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Figure 1. Hype Cycle for Blockchain Technologies, 2018 | Figure 1. Rapport Hype Cycle sur les technologies de la chaîne de blocs, 2018 |
Expectations | Attentes |
Time | Temps |
Blockchain Wallet Platform | Plate-forme de portefeuille de la chaîne de blocs |
Blockchain Interoperability | Interopérabilité de la chaîne de blocs |
Postquantum Blockchain | Chaîne de blocs post-quantique |
Smart Contract Oracle | Oracle des contrats intelligents |
Zero Knowledge Proofs | Preuve à divulgation nulle de connaissance |
Distributed Storage in Blockchain | Stockage distribué dans la chaîne de blocs |
Smart Contracts | Contrats intelligents |
Blockchain for IAM | Chaîne de blocs pour la gestion des identités et de l’accès |
Blockchain PaaS | Chaîne de blocs à titre de PaaS |
Blockchain for Data Security | Chaîne de blocs pour la sécurité des données |
Decentralized Applications | Applications décentralisées |
Consensus Mechanisms | Mécanismes de consensus |
Metacoin Platforms | Plates-formes de Metacoin |
Sidechains/Channels | Chaînes latérales/canaux |
Multiparty Computing | Calcul multipartite |
Cryptocurrency Hardware Wallets | Portefeuilles matériels de cryptomonnaie |
Cryptocurrency Software Wallets | Portefeuilles logiciels de cryptomonnaie |
Blockchain | Chaîne de blocs |
Distributed Ledgers | Grands livres distribués |
Cryptocurrency Mining | Minage de cryptomonnaie |
Innovation Trigger | Déclencheur d’innovation |
Peak of Inflated Exepctations | Pic des attentes exagérées |
Trough of Disillusionment | Gouffre des désillusions |
Slope of Enlightenment | Pente de l’illumination |
Plateau of Productivity | Plateau de productivité |
As of July 2018 | En date de juillet 2018 |
Plateau will be reached: | Le plateau sera atteint : |
Less than 2 years | dans moins de 2 ans |
2 to 5 years | dans 2 à 5 ans |
5 to 10 years | dans 5 à 10 ans |
More than 10 years | dans plus de 10 ans |
Obsolete before plateau | Désuet avant le plateau |
Source: Gartner (July 2018) | Source : Gartner (juillet 2018) |
References