Difference between revisions of "Telecommunications"
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* [https://www.gnuradio.org/ GNU Radio.org] | * [https://www.gnuradio.org/ GNU Radio.org] | ||
− | is a free & open-source software development toolkit that provides signal processing blocks to implement software radios. It can be used with readily-available low-cost external RF hardware to create software-defined radios, or without hardware in a simulation-like environment. | + | is a free & open-source software [[development]] toolkit that provides signal processing blocks to implement software radios. It can be used with readily-available low-cost external RF hardware to create software-defined radios, or without hardware in a simulation-like environment. |
<youtube>Dk3muvzIcMc</youtube> | <youtube>Dk3muvzIcMc</youtube> | ||
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=== [https://deepwavedigital.com/ Deepwave Digital Systems] === | === [https://deepwavedigital.com/ Deepwave Digital Systems] === | ||
− | Enabling deep learning and AI at the edge of wireless systems. GPUs are extremely well suited for processes that are highly parallel. The Fast Fourier Transform (FFT) is one of the most common techniques in signal processing and happens to be a highly parallel algorithm. In this blog post the Deepwave team walks you though how to leverage the embedded GPU built into the AIR-T to perform high-speed FFTs without the computational bottleneck of a CPU and without having to experience the long development cycle associated with writing VHDL code for FPGAs. By leveraging the GPU on the AIR-T, you get the best of both worlds: fast development time and high speed processing. A familiar tool to anyone working in the wireless domain, GNU Radio allows signal processing experts to tie together blocks of functionality using an intuitive GUI. Many of the “in the weeds” details regarding the software implementation are well abstracted so the user can focus on the algorithm instead.Once an algorithm has been optimized (or a pre-trained algorithm has been downloaded by a 3rd party), the user will reference it in Deepwave’s [https://essentials.news/ai/general/article/gr-wavelearner-45fe89566f GR-WAVELEARNER] software that provides a TensorRT Inference block for GNU Radio Companion (GRC) | + | Enabling deep learning and AI at the edge of wireless systems. GPUs are extremely well suited for processes that are highly parallel. The Fast Fourier Transform (FFT) is one of the most common techniques in signal processing and happens to be a highly parallel algorithm. In this blog post the Deepwave team walks you though how to leverage the embedded GPU built into the AIR-T to perform high-speed FFTs without the computational bottleneck of a CPU and without having to experience the long [[development]] cycle associated with writing VHDL code for FPGAs. By leveraging the GPU on the AIR-T, you get the best of both worlds: fast [[development]] time and high speed processing. A familiar tool to anyone working in the wireless domain, GNU Radio allows signal processing experts to tie together blocks of functionality using an intuitive GUI. Many of the “in the weeds” details regarding the software implementation are well abstracted so the user can focus on the algorithm instead.Once an algorithm has been optimized (or a pre-trained algorithm has been downloaded by a 3rd party), the user will reference it in Deepwave’s [https://essentials.news/ai/general/article/gr-wavelearner-45fe89566f GR-WAVELEARNER] software that provides a TensorRT Inference block for GNU Radio Companion (GRC) |
https://deepwavedigital.com/wp-content/uploads/2019/09/fft_gif.gif | https://deepwavedigital.com/wp-content/uploads/2019/09/fft_gif.gif | ||
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* [[Internet of Things (IoT)]] | * [[Internet of Things (IoT)]] | ||
− | * [https://www.3gpp.org/dynareport/SpecList.htm?release=Rel-15&tech=4 3rd Generation Partnership Project (3GPP)] ...unites [Seven] telecommunications standard development organizations: ARIB, ATIS, CCSA, ETSI, TSDSI, TTA, TTC | + | * [https://www.3gpp.org/dynareport/SpecList.htm?release=Rel-15&tech=4 3rd Generation Partnership Project (3GPP)] ...unites [Seven] telecommunications standard [[development]] organizations: ARIB, ATIS, CCSA, ETSI, TSDSI, TTA, TTC |
* [https://www.ietf.org/blog/5g-and-internet-technology/ Internet Engineering Taskforce (IETF)] | * [https://www.ietf.org/blog/5g-and-internet-technology/ Internet Engineering Taskforce (IETF)] | ||
* [https://www.nist.gov/topics/advanced-communications/what-5g What is 5G? | NIST] | * [https://www.nist.gov/topics/advanced-communications/what-5g What is 5G? | NIST] | ||
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<youtube>I1GiHXcrk94</youtube> | <youtube>I1GiHXcrk94</youtube> | ||
<b>5G: The perfect storm and enabler of the next wave of AI | <b>5G: The perfect storm and enabler of the next wave of AI | ||
− | </b><br>Webinar hosted by Norwegian Cognitive Center on September 16 2020. How does 5G relate and accelerate new and emerging technologies, AI, ML and industry 4.0? 5G will come as a service offering, but it is also a technology. Both will, for a number of reasons, be disruptive and can be utilized for new and enhanced services. 5G will bring us and our IoT devices closer and more connected. It will also change the way we work, play, think and plan. Join us at this webinar to further understand the changes, enhancements and opportunities 5G will bring. Speaker: Ingebrigt Lunde is Project Manager at Nordic 5G Consortium: Ingebrigt holds a M.Sc. in Computer Science. He has previously worked with research and development for 10 years in Digital Equipment Corporation (DEC), University of Bergen, establishing commercial internet in Norway and for the last 25 years in TV 2 Norway, designing and building the IP infrastructure and production and lately new production models. He was the project manager for the groundbreaking and award nominated TV 2 Hockey national wide NDI based production network system. | + | </b><br>Webinar hosted by Norwegian Cognitive Center on September 16 2020. How does 5G relate and accelerate new and emerging technologies, AI, ML and industry 4.0? 5G will come as a service offering, but it is also a technology. Both will, for a number of reasons, be disruptive and can be utilized for new and enhanced services. 5G will bring us and our IoT devices closer and more connected. It will also change the way we work, play, think and plan. Join us at this webinar to further understand the changes, enhancements and opportunities 5G will bring. Speaker: Ingebrigt Lunde is Project Manager at Nordic 5G Consortium: Ingebrigt holds a M.Sc. in Computer Science. He has previously worked with research and [[development]] for 10 years in Digital Equipment Corporation (DEC), University of Bergen, establishing commercial internet in Norway and for the last 25 years in TV 2 Norway, designing and building the IP infrastructure and production and lately new production models. He was the project manager for the groundbreaking and award nominated TV 2 Hockey national wide NDI based production network system. |
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<youtube>InPzlUE5Qck</youtube> | <youtube>InPzlUE5Qck</youtube> | ||
<b>Why [[Government Services#China|China]] can take a lead in 5G and AI technology application | <b>Why [[Government Services#China|China]] can take a lead in 5G and AI technology application | ||
− | </b><br>[[Government Services#China|China]] is among the world’s first countries to apply 5G to business services. [[Government Services#China|China]]’s telecommunications guides the global 5G-technology trend. An open [[Government Services#China|China]] is becoming the “playground” for global AI businesses and a key landmark for a joint exploration of AI’s direction of end development. Check out this video and have a look at why [[Government Services#China|China]] can take a lead in 5G and AI technology application. Subscribe to us on YouTube: https://goo.gl/lP12gA | + | </b><br>[[Government Services#China|China]] is among the world’s first countries to apply 5G to business services. [[Government Services#China|China]]’s telecommunications guides the global 5G-technology trend. An open [[Government Services#China|China]] is becoming the “playground” for global AI businesses and a key landmark for a joint exploration of AI’s direction of end [[development]]. Check out this video and have a look at why [[Government Services#China|China]] can take a lead in 5G and AI technology application. Subscribe to us on YouTube: https://goo.gl/lP12gA |
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Revision as of 13:19, 17 March 2023
Youtube search... ...Google search
- Case Studies
- Global Positioning System (GPS)
- Ericsson launches unique AI functionality to boost radio access networks
- Deepsig pioneering the application of deep learning to wireless
- How Machine Learning Is Creating New Opportunities In The Telecommunications Industry | Julie Stoughton - Digitalist Magazine
- Top 10 Data Science Use cases in Telecom | Igor Bobriakov - Medium
Contents
Cognitive Radio (CR) / Software-defined radio (SDR)
Software-defined radio (SDR) is a radio communication system where components that have been traditionally implemented in hardware (e.g. mixers, filters, amplifiers, modulators/demodulators, detectors, etc.) are instead implemented by means of software on a personal computer or embedded system. Software radios have significant utility for the military and cell phone services, both of which must serve a wide variety of changing radio protocols in real time. In the long term, software-defined radios are to become the dominant technology in radio communications. SDRs, along with software defined antennas are the enablers of the cognitive radio.
GNU Radio
is a free & open-source software development toolkit that provides signal processing blocks to implement software radios. It can be used with readily-available low-cost external RF hardware to create software-defined radios, or without hardware in a simulation-like environment.
Deepwave Digital Systems
Enabling deep learning and AI at the edge of wireless systems. GPUs are extremely well suited for processes that are highly parallel. The Fast Fourier Transform (FFT) is one of the most common techniques in signal processing and happens to be a highly parallel algorithm. In this blog post the Deepwave team walks you though how to leverage the embedded GPU built into the AIR-T to perform high-speed FFTs without the computational bottleneck of a CPU and without having to experience the long development cycle associated with writing VHDL code for FPGAs. By leveraging the GPU on the AIR-T, you get the best of both worlds: fast development time and high speed processing. A familiar tool to anyone working in the wireless domain, GNU Radio allows signal processing experts to tie together blocks of functionality using an intuitive GUI. Many of the “in the weeds” details regarding the software implementation are well abstracted so the user can focus on the algorithm instead.Once an algorithm has been optimized (or a pre-trained algorithm has been downloaded by a 3rd party), the user will reference it in Deepwave’s GR-WAVELEARNER software that provides a TensorRT Inference block for GNU Radio Companion (GRC)
Machine learning solving practical problems in Communications
Physical Layer Security (PLS)
Youtube search... ...Google search
Physical layer security (PLS) has emerged as a new concept and powerful alternative that can complement and may even replace encryption-based approaches, which entail many hurdles and practical problems for future wireless systems. The basic idea of PLS is to exploit the characteristics of the wireless channel and its impairments including noise, fading, interference, dispersion, diversity, etc. in order to ensure the ability of the intended user to successfully perform data decoding while preventing eavesdroppers from doing so. Thus, the main design goal of PLS is to increase the performance difference between the link of the legitimate receiver and that of the eavesdropper by using well-designed transmission schemes. Physical Layer Security for Downlink NOMA: Requirements, Merits, Challenges, and Recommendations | H. Furqan, J. Hamamreh, and H. Arslan
Waveform
Youtube search... ...Google search
5G
YouTube search... ...Google search
- Internet of Things (IoT)
- 3rd Generation Partnership Project (3GPP) ...unites [Seven] telecommunications standard development organizations: ARIB, ATIS, CCSA, ETSI, TSDSI, TTA, TTC
- Internet Engineering Taskforce (IETF)
- What is 5G? | NIST
- European Telecommunications Standards Institute (ETSI) ISG Network Functions Virtualisation (NFV) - ETSI Industry Specification Group
- China Global Television Network (CGTN) | Wikipedia
- 5G + Cloud + AI: Huawei Works with Carriers to Power New ICT Infrastructure | Huawei - PR Newswire
- Armed Forces Communications and Electronics Association ...communications, information technology, intelligence and security
- MIMO | Wikipedia
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5G Security
YouTube search... ...Google search
Three-step approach to reach a high level of intelligent security management. How to master E2E network security when introducing 5G core | Kari-Pekka Perttula - Ericsson
- Dynamic: Introduce automated security policy configuration and compliance monitoring
- Cognitive: Automated threat and vulnerability detection assisted with ML /AI
- Intelligent: Repeatable, adaptive and holistic security management with threat intelligence. This provides end-to-end visibility for business-related security risks, and actions can be directed via automated workflows to mitigate risks faster.
Threat Model: STRIDE | Wikipedia The threats are:
- Spoofing
- Tampering
- Repudiation
- Information disclosure (breach or data leak)
- Denial of service
- Elevation of privilege]
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5G Testing
YouTube search... ...Google search
- Model_Monitoring
- DOD Kicks Off World’s Largest Dual-Use 5G Testing Effort | C. Todd Lopez - DOD News ...AT&T, Booz Allen Hamilton, Deloitte Consulting LLP, Ericsson, Federated Wireless, GBL System Corp., General Dynamics Mission Systems, Inc., GE Research, Key Bridge Wireless LLC, KPMG LLP, Nokia, Oceus Networks, Scientific Research Corporation, Shared Spectrum Company and Vectrus Mission Solutions Corporation.
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Virtualization - Dynamic Spectrum Sharing (DSS)
Youtube search... ...Google search ...Google News
- Telecommunications
- Computer Networks
- Defense
- How to Know if You’re Ready to Deploy a Dark Fiber Network | Rob Coenen - Lightwave ...unused or under-utilized fiber infrastructure (including fibers, cabling, and repeaters) that was laid as part of a hedge against exponential growth in data use.
Spectrum Sharing utilizes virtualization to partition optical spectrum
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