230 research outputs found
Future Wireless Networking Experiments Escaping Simulations
In computer networking, simulations are widely used to test and analyse new protocols and ideas. Currently, there are a number of open real testbeds available to test the new protocols. In the EU, for example, there are Fed4Fire testbeds, while in the US, there are POWDER and COSMOS testbeds. Several other countries, including Japan, Brazil, India, and China, have also developed next-generation testbeds. Compared to simulations, these testbeds offer a more realistic way to test protocols and prototypes. In this paper, we examine some available wireless testbeds from the EU and the US, which are part of an open-call EU project under the NGIAtlantic H2020 initiative to conduct Software-Defined Networking (SDN) experiments on intelligent Internet of Things (IoT) networks. Furthermore, the paper presents benchmarking results and failure recovery results from each of the considered testbeds using a variety of wireless network topologies. The paper compares the testbeds based on throughput, latency, jitter, resources available, and failure recovery time, by sending different types of traffic. The results demonstrate the feasibility of performing wireless experiments on different testbeds in the US and the EU. Further, issues faced during experimentation on EU and US testbeds are also reported
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Algorithms and Experimentation for Future Wireless Networks: From Internet-of-Things to Full-Duplex
Future and next-generation wireless networks are driven by the rapidly growing wireless traffic stemming from diverse services and applications, such as the Internet-of-Things (IoT), virtual reality, autonomous vehicles, and smart intersections. Many of these applications require massive connectivity between IoT devices as well as wireless access links with ultra-high bandwidth (Gbps or above) and ultra-low latency (10ms or less). Therefore, realizing the vision of future wireless networks requires significant research efforts across all layers of the network stack. In this thesis, we use a cross-layer approach and focus on several critical components of future wireless networks including IoT systems and full-duplex (FD) wireless, and on experimentation with advanced wireless technologies in the NSF PAWR COSMOS testbed.
First, we study tracking and monitoring applications in the IoT and focus on ultra-low-power energy harvesting networks. Based on realistic hardware characteristics, we design and optimize Panda, a centralized probabilistic protocol for maximizing the neighbor discovery rate between energy harvesting nodes under a power budget. Via testbed evaluation using commercial off-the-shelf energy harvesting nodes, we show that Panda outperforms existing protocols by up to 3x in terms of the neighbor discovery rate. We further explore this problem and consider a general throughput maximization problem among a set of heterogeneous energy-constrained ultra-low-power nodes. We analytically identify the theoretical fundamental limits of the rate at which data can be exchanged between these nodes, and design the distributed probabilistic protocol, EconCast, which approaches the maximum throughput in the limiting sense. Performance evaluations of EconCast using both simulations and real-world experiments show that it achieves up to an order of magnitude higher throughput than Panda and other known protocols.
We then study FD wireless - simultaneous transmission and reception at the same frequency - a key technology that can significantly improve the data rate and reduce communication latency by employing self-interference cancellation (SIC). In particular, we focus on enabling FD on small-form-factor devices leveraging the technique of frequency-domain equalization (FDE). We design, model, and optimize the FDE-based RF canceller, which can achieve >50dB RF SIC across 20MHz bandwidth, and experimentally show that our prototyped FD radios can achieve a link-level throughput gain of 1.85-1.91x. We also focus on combining FD with phased arrays, employing optimized transmit and receive beamforming, where the spatial degrees of freedom in multi-antenna systems are repurposed to achieve wideband RF SIC. Moving up in the network stack, we study heterogeneous networks with half-duplex and FD users, and develop the novel Hybrid-Greedy Maximum Scheduling (H-GMS) algorithm, which achieves throughput optimality in a distributed manner. Analytical and simulation results show that H-GMS achieves 5-10x better delay performance and improved fairness compared with state-of-the-art approaches.
Finally, we described experimentation and measurements in the city-scale COSMOS testbed being deployed in West Harlem, New York City. COSMOS' key building blocks include software-defined radios, millimeter-wave radios, a programmable optical network, and edge cloud, and their convergence will enable researchers to remotely explore emerging technologies in a real world environment. We provide a brief overview of the testbed and focus on experimentation with advanced technologies, including the integrating of open-access FD radios in the testbed and a pilot study on converged optical-wireless x-haul networking for cloud radio access networks (C-RANs). We also present an extensive 28GHz channel measurements in the testbed area, which is a representative dense urban canyon environment, and study the corresponding signal-to-noise ratio (SNR) coverage and achievable data rates. The results of this part helped drive and validate the design of the COSMOS testbed, and can inform further deployment and experimentation in the testbed.
In this thesis, we make several theoretical and experimental contributions to ultra-low-power energy harvesting networks and the IoT, and FD wireless. We also contribute to the experimentation and measurements in the COSMOS advanced wireless testbed. We believe that these contributions are essential to connect fundamental theory to practical systems, and ultimately to real-world applications, in future wireless networks
Design and Testbed Deployment of Frequency-Domain Equalization Full Duplex Radios
Full-duplex (FD) wireless can significantly enhance spectrum efficiency but
requires effective self-interference (SI) cancellers. RF SI cancellation (SIC)
via frequency-domain equalization (FDE), where bandpass filters channelize the
SI, is suited for integrated circuits (ICs). In this paper, we explore the
limits and higher layer challenges associated with using such cancellers. We
evaluate the performance of a custom FDE-based canceller using two testbeds;
one with mobile FD radios and the other with upgraded, static FD radios in the
PAWR COSMOS testbed. The latter is a lasting artifact for the research
community, alongside a dataset containing baseband waveforms captured on the
COSMOS FD radios, facilitating FD-related experimentation at the higher
networking layers. We evaluate the performance of the FDE-based FD radios in
both testbeds, with experiments showing 95 dB overall achieved SIC (52 dB from
RF SIC) across 20 MHz bandwidth, and an average link-level FD rate gain of
1.87x. We also conduct experiments in (i) uplink-downlink networks with
inter-user interference, and (ii) heterogeneous networks with half-duplex and
FD users. The experimental FD gains in the two types of networks depend on the
users' SNR values and the number of FD users, and are 1.14x-1.25x and
1.25x-1.73x, respectively, confirming previous analytical results.Comment: 13 pages, 22 figures. arXiv admin note: substantial text overlap with
arXiv:1812.0112
Real-Time Waveform Prototyping
Mobile Netzwerke der fünften Generation zeichen sich aus durch vielfältigen Anforderungen und Einsatzszenarien. Drei unterschiedliche Anwendungsfälle sind hierbei besonders relevant: 1) Industrie-Applikationen fordern Echtzeitfunkübertragungen mit besonders niedrigen Ausfallraten. 2) Internet-of-things-Anwendungen erfordern die Anbindung einer Vielzahl von verteilten Sensoren. 3) Die Datenraten für Anwendung wie z.B. der Übermittlung von Videoinhalten sind massiv gestiegen.
Diese zum Teil gegensätzlichen Erwartungen veranlassen Forscher und Ingenieure dazu, neue Konzepte und Technologien für zukünftige drahtlose Kommunikationssysteme in Betracht zu ziehen. Ziel ist es, aus einer Vielzahl neuer Ideen vielversprechende Kandidatentechnologien zu identifizieren und zu entscheiden, welche für die Umsetzung in zukünftige Produkte geeignet sind. Die Herausforderungen, diese Anforderungen zu erreichen, liegen jedoch jenseits der Möglichkeiten, die eine einzelne Verarbeitungsschicht in einem drahtlosen Netzwerk bieten kann. Daher müssen mehrere Forschungsbereiche Forschungsideen gemeinsam nutzen.
Diese Arbeit beschreibt daher eine Plattform als Basis für zukünftige experimentelle Erforschung von drahtlosen Netzwerken unter reellen Bedingungen. Es werden folgende drei Aspekte näher vorgestellt:
Zunächst erfolgt ein Überblick über moderne Prototypen und Testbed-Lösungen, die auf großes Interesse, Nachfrage, aber auch Förderungsmöglichkeiten stoßen. Allerdings ist der Entwicklungsaufwand nicht unerheblich und richtet sich stark nach den gewählten Eigenschaften der Plattform. Der Auswahlprozess ist jedoch aufgrund der Menge der verfügbaren Optionen und ihrer jeweiligen (versteckten) Implikationen komplex. Daher wird ein Leitfaden anhand verschiedener Beispiele vorgestellt, mit dem Ziel Erwartungen im Vergleich zu den für den Prototyp erforderlichen Aufwänden zu bewerten.
Zweitens wird ein flexibler, aber echtzeitfähiger Signalprozessor eingeführt, der auf einer software-programmierbaren Funkplattform läuft. Der Prozessor ermöglicht die Rekonfiguration wichtiger Parameter der physikalischen Schicht während der Laufzeit, um eine Vielzahl moderner Wellenformen zu erzeugen. Es werden vier Parametereinstellungen 'LLC', 'WiFi', 'eMBB' und 'IoT' vorgestellt, um die Anforderungen der verschiedenen drahtlosen Anwendungen widerzuspiegeln. Diese werden dann zur Evaluierung der die in dieser Arbeit vorgestellte Implementierung herangezogen.
Drittens wird durch die Einführung einer generischen Testinfrastruktur die Einbeziehung externer Partner aus der Ferne ermöglicht. Das Testfeld kann hier für verschiedenste Experimente flexibel auf die Anforderungen drahtloser Technologien zugeschnitten werden. Mit Hilfe der Testinfrastruktur wird die Leistung des vorgestellten Transceivers hinsichtlich Latenz, erreichbarem Durchsatz und Paketfehlerraten bewertet. Die öffentliche Demonstration eines taktilen Internet-Prototypen, unter Verwendung von Roboterarmen in einer Mehrbenutzerumgebung, konnte erfolgreich durchgeführt und bei mehreren Gelegenheiten präsentiert werden.:List of figures
List of tables
Abbreviations
Notations
1 Introduction
1.1 Wireless applications
1.2 Motivation
1.3 Software-Defined Radio
1.4 State of the art
1.5 Testbed
1.6 Summary
2 Background
2.1 System Model
2.2 PHY Layer Structure
2.3 Generalized Frequency Division Multiplexing
2.4 Wireless Standards
2.4.1 IEEE 802.15.4
2.4.2 802.11 WLAN
2.4.3 LTE
2.4.4 Low Latency Industrial Wireless Communications
2.4.5 Summary
3 Wireless Prototyping
3.1 Testbed Examples
3.1.1 PHY - focused Testbeds
3.1.2 MAC - focused Testbeds
3.1.3 Network - focused testbeds
3.1.4 Generic testbeds
3.2 Considerations
3.3 Use cases and Scenarios
3.4 Requirements
3.5 Methodology
3.6 Hardware Platform
3.6.1 Host
3.6.2 FPGA
3.6.3 Hybrid
3.6.4 ASIC
3.7 Software Platform
3.7.1 Testbed Management Frameworks
3.7.2 Development Frameworks
3.7.3 Software Implementations
3.8 Deployment
3.9 Discussion
3.10 Conclusion
4 Flexible Transceiver
4.1 Signal Processing Modules
4.1.1 MAC interface
4.1.2 Encoding and Mapping
4.1.3 Modem
4.1.4 Post modem processing
4.1.5 Synchronization
4.1.6 Channel Estimation and Equalization
4.1.7 Demapping
4.1.8 Flexible Configuration
4.2 Analysis
4.2.1 Numerical Precision
4.2.2 Spectral analysis
4.2.3 Latency
4.2.4 Resource Consumption
4.3 Discussion
4.3.1 Extension to MIMO
4.4 Summary
5 Testbed
5.1 Infrastructure
5.2 Automation
5.3 Software Defined Radio Platform
5.4 Radio Frequency Front-end
5.4.1 Sub 6 GHz front-end
5.4.2 26 GHz mmWave front-end
5.5 Performance evaluation
5.6 Summary
6 Experiments
6.1 Single Link
6.1.1 Infrastructure
6.1.2 Single Link Experiments
6.1.3 End-to-End
6.2 Multi-User
6.3 26 GHz mmWave experimentation
6.4 Summary
7 Key lessons
7.1 Limitations Experienced During Development
7.2 Prototyping Future
7.3 Open points
7.4 Workflow
7.5 Summary
8 Conclusions
8.1 Future Work
8.1.1 Prototyping Workflow
8.1.2 Flexible Transceiver Core
8.1.3 Experimental Data-sets
8.1.4 Evolved Access Point Prototype For Industrial Networks
8.1.5 Testbed Standardization
A Additional Resources
A.1 Fourier Transform Blocks
A.2 Resource Consumption
A.3 Channel Sounding using Chirp sequences
A.3.1 SNR Estimation
A.3.2 Channel Estimation
A.4 Hardware part listThe demand to achieve higher data rates for the Enhanced Mobile Broadband scenario and novel fifth generation use cases like Ultra-Reliable Low-Latency and Massive Machine-type Communications drive researchers and engineers to consider new concepts and technologies for future wireless communication systems. The goal is to identify promising candidate technologies
among a vast number of new ideas and to decide, which are suitable for implementation in future products. However, the challenges to achieve those demands are beyond the capabilities a single processing layer in a wireless network can offer. Therefore, several research domains have to collaboratively exploit research ideas.
This thesis presents a platform to provide a base for future applied research on wireless networks. Firstly, by giving an overview of state-of-the-art prototypes and testbed solutions. Secondly by introducing a flexible, yet real-time physical layer signal processor running on a software defined radio platform. The processor enables reconfiguring important parameters of the physical layer during run-time in order to create a multitude of modern waveforms. Thirdly, by introducing a generic test infrastructure, which can be tailored to prototype diverse wireless technology and which is remotely accessible in order to invite new ideas by third parties. Using the test infrastructure, the performance of the flexible transceiver is evaluated regarding latency, achievable throughput and packet error rates.:List of figures
List of tables
Abbreviations
Notations
1 Introduction
1.1 Wireless applications
1.2 Motivation
1.3 Software-Defined Radio
1.4 State of the art
1.5 Testbed
1.6 Summary
2 Background
2.1 System Model
2.2 PHY Layer Structure
2.3 Generalized Frequency Division Multiplexing
2.4 Wireless Standards
2.4.1 IEEE 802.15.4
2.4.2 802.11 WLAN
2.4.3 LTE
2.4.4 Low Latency Industrial Wireless Communications
2.4.5 Summary
3 Wireless Prototyping
3.1 Testbed Examples
3.1.1 PHY - focused Testbeds
3.1.2 MAC - focused Testbeds
3.1.3 Network - focused testbeds
3.1.4 Generic testbeds
3.2 Considerations
3.3 Use cases and Scenarios
3.4 Requirements
3.5 Methodology
3.6 Hardware Platform
3.6.1 Host
3.6.2 FPGA
3.6.3 Hybrid
3.6.4 ASIC
3.7 Software Platform
3.7.1 Testbed Management Frameworks
3.7.2 Development Frameworks
3.7.3 Software Implementations
3.8 Deployment
3.9 Discussion
3.10 Conclusion
4 Flexible Transceiver
4.1 Signal Processing Modules
4.1.1 MAC interface
4.1.2 Encoding and Mapping
4.1.3 Modem
4.1.4 Post modem processing
4.1.5 Synchronization
4.1.6 Channel Estimation and Equalization
4.1.7 Demapping
4.1.8 Flexible Configuration
4.2 Analysis
4.2.1 Numerical Precision
4.2.2 Spectral analysis
4.2.3 Latency
4.2.4 Resource Consumption
4.3 Discussion
4.3.1 Extension to MIMO
4.4 Summary
5 Testbed
5.1 Infrastructure
5.2 Automation
5.3 Software Defined Radio Platform
5.4 Radio Frequency Front-end
5.4.1 Sub 6 GHz front-end
5.4.2 26 GHz mmWave front-end
5.5 Performance evaluation
5.6 Summary
6 Experiments
6.1 Single Link
6.1.1 Infrastructure
6.1.2 Single Link Experiments
6.1.3 End-to-End
6.2 Multi-User
6.3 26 GHz mmWave experimentation
6.4 Summary
7 Key lessons
7.1 Limitations Experienced During Development
7.2 Prototyping Future
7.3 Open points
7.4 Workflow
7.5 Summary
8 Conclusions
8.1 Future Work
8.1.1 Prototyping Workflow
8.1.2 Flexible Transceiver Core
8.1.3 Experimental Data-sets
8.1.4 Evolved Access Point Prototype For Industrial Networks
8.1.5 Testbed Standardization
A Additional Resources
A.1 Fourier Transform Blocks
A.2 Resource Consumption
A.3 Channel Sounding using Chirp sequences
A.3.1 SNR Estimation
A.3.2 Channel Estimation
A.4 Hardware part lis
Colosseum as a Digital Twin: Bridging Real-World Experimentation and Wireless Network Emulation
Wireless network emulators are being increasingly used for developing and
evaluating new solutions for Next Generation (NextG) wireless networks.
However, the reliability of the solutions tested on emulation platforms heavily
depends on the precision of the emulation process, model design, and parameter
settings. To address, obviate or minimize the impact of errors of emulation
models, in this work we apply the concept of Digital Twin (DT) to large-scale
wireless systems. Specifically, we demonstrate the use of Colosseum, the
world's largest wireless network emulator with hardware-in-the-loop, as a DT
for NextG experimental wireless research at scale. As proof of concept, we
leverage the Channel emulation scenario generator and Sounder Toolchain (CaST)
to create the DT of a publicly-available over-the-air indoor testbed for sub-6
GHz research, namely, Arena. Then, we validate the Colosseum DT through
experimental campaigns on emulated wireless environments, including scenarios
concerning cellular networks and jamming of Wi-Fi nodes, on both the real and
digital systems. Our experiments show that the DT is able to provide a faithful
representation of the real-world setup, obtaining an average accuracy of up to
92.5% in throughput and 80% in Signal to Interference plus Noise Ratio (SINR).Comment: 15 pages, 21 figures, 1 tabl
Understanding O-RAN: Architecture, Interfaces, Algorithms, Security, and Research Challenges
The Open Radio Access Network (RAN) and its embodiment through the O-RAN
Alliance specifications are poised to revolutionize the telecom ecosystem.
O-RAN promotes virtualized RANs where disaggregated components are connected
via open interfaces and optimized by intelligent controllers. The result is a
new paradigm for the RAN design, deployment, and operations: O-RAN networks can
be built with multi-vendor, interoperable components, and can be
programmatically optimized through a centralized abstraction layer and
data-driven closed-loop control. Therefore, understanding O-RAN, its
architecture, its interfaces, and workflows is key for researchers and
practitioners in the wireless community. In this article, we present the first
detailed tutorial on O-RAN. We also discuss the main research challenges and
review early research results. We provide a deep dive of the O-RAN
specifications, describing its architecture, design principles, and the O-RAN
interfaces. We then describe how the O-RAN RAN Intelligent Controllers (RICs)
can be used to effectively control and manage 3GPP-defined RANs. Based on this,
we discuss innovations and challenges of O-RAN networks, including the
Artificial Intelligence (AI) and Machine Learning (ML) workflows that the
architecture and interfaces enable, security and standardization issues.
Finally, we review experimental research platforms that can be used to design
and test O-RAN networks, along with recent research results, and we outline
future directions for O-RAN development.Comment: 33 pages, 16 figures, 3 tables. Submitted for publication to the IEE
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