Award Abstract # 1444060
EARS: Future Wireless Broadband Access: Cross-Optimizing Hardware, Physical and Network Layers

NSF Org: ECCS
Division of Electrical, Communications and Cyber Systems
Recipient: UNIVERSITY OF SOUTHERN CALIFORNIA
Initial Amendment Date: August 15, 2014
Latest Amendment Date: August 15, 2014
Award Number: 1444060
Award Instrument: Standard Grant
Program Manager: Mohammod Ali
ECCS
 Division of Electrical, Communications and Cyber Systems
ENG
 Directorate for Engineering
Start Date: November 1, 2014
End Date: October 31, 2019 (Estimated)
Total Intended Award Amount: $680,000.00
Total Awarded Amount to Date: $680,000.00
Funds Obligated to Date: FY 2014 = $680,000.00
History of Investigator:
  • Konstantinos Psounis (Principal Investigator)
    kpsounis@usc.edu
  • Hossein Hashemi (Co-Principal Investigator)
  • Giuseppe Caire (Co-Principal Investigator)
Recipient Sponsored Research Office: University of Southern California
3720 S FLOWER ST FL 3
LOS ANGELES
CA  US  90033
(213)740-7762
Sponsor Congressional District: 34
Primary Place of Performance: University of Southern California
3720 S. Flower St
Los Angeles
CA  US  90089-0001
Primary Place of Performance
Congressional District:
37
Unique Entity Identifier (UEI): G88KLJR3KYT5
Parent UEI:
NSF Program(s): EARS
Primary Program Source: 01001415DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 153E, 7976
Program Element Code(s): 797600
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.041

ABSTRACT

The availability of affordable and ubiquitous broadband connectivity is a necessary condition for prosperity since broadband wireless access impacts virtually all sectors of society and economy including education, healthcare, transportation, and security. In a vast and mixed urban/rural country such as the United States, providing high-speed broadband data access through the wired infrastructure can be costly. On the other hand, wireless can cover large areas and reach a large number of people very effectively. In addition, wireless is the preferred medium through which we connect to the Internet and enjoy a whole wealth of services such as entertainment, education, healthcare, e-commerce, social networking, and remote working. In this context, the ability to handle the predicted dramatic increase of demand for wireless data has become crucial not only for the wireless industry but, more in general, for the growth of our economy. While wireless connectivity has significantly improved over the past few decades, it is quite behind the theoretical and technological achievable limits and it cannot address future demand. With this in mind, this project develops an innovative multi-tier hierarchical infrastructure for next-generation cellular networks with densely deployed base stations, along with a set of well-integrated cross-layer design techniques for interference management and system optimization. This proposed approach may considerably improve the rate performance and user capacity, and is promising in bridging the gap between theory and practice for broadband wireless access.

To support the drastically increased mobile data traffic in wireless broadband services, this work focuses on a systematic cross-layer system optimization approach that relies on three major pillars: 1) at the physical layer, base stations with massive multiple-input multiple-output antenna systems are used; 2) at the wireless network architecture level, a multi-tier heterogeneous network approach is selected, achieving unprecedented spatial spectrum reuse; 3) at the cross-layer optimization level, a holistic network utility maximization approach is proposed, that systematically obtains layered protocol architectures from the structure of the global optimization solution. In relation to the above pillars, the fundamental challenges that will be addressed in this project are: 1) the design of integrated and power-efficient reconfigurable massive multiple-input multiple-output front-end antenna systems based on the concept of hybrid beamforming, i.e., on the optimal splitting of multiuser precoding and inter-cell interference management functions between digital baseband processing and analog radio frequency beamforming; 2) the design of hybrid beamforming schemes that exploit long-term channel statistics for inter-cell coordinated interference management, and instantaneous channel state information to achieve spatial multiplexing gain in each cell; 3) a user partitioning and scheduling approach based on clustering the user space according to quality of experience requirements, channel statistics and mobility, assigning network utility functions to the different user groups, solving the combined network utility maximization problem and systematically deriving a layered protocol architecture from the structural properties of the optimization solution. In addition, the work will significantly extend current mathematical performance analysis of wireless networks, based on advanced tools from stochastic geometry and random matrix theory, in order to assess quantitatively the performance gains over current technology of the proposed approach. Last, small-scale experiments will be conducted with software-defined radios equipped with the front end that will be developed.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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(Showing: 1 - 10 of 22)
Adhikary, A.; Dhillon, H.S.; Caire, G. "Massive-MIMO Meets HetNet: Interference Coordination Through Spatial Blanking" IEEE Journal on Selected Areas in Communications , v.33 , 2015 , p.1171 10.1109/JSAC.2015.2416986
A. Michaloliakos, W. C. Ao, K. Psounis and Y. Zhang "Asynchronously Coordinated Multi-timescale beamforming architecture for multi-cell networks" IEEE/ACM Transactions on Networking , v.26 , 2018
Antonios Michaloliakos, Ryan Rogalin, Yonglong Zhang, Konstantinos Psounis and Giuseppe Caire "Performance Modeling of Next-Generation WiFi Networks" Computer Networks Journal , v.105 , 2016
Dhillon, H.S.; Caire, G. "Wireless Backhaul Networks: Capacity Bound, Scalability Analysis and Design Guidelines" IEEE Transactions on Wireless Communications , v.PP , 2015 10.1109/TWC.2015.2447534
G. Zois, A. Michaloliakos, K. Psounis, V. Vassalos and I. Mourtos "Non-asymptotic performance bounds for downlink MU-MIMO scheduling" IEEE/IFIP WONS , 2016
Haghighatshoar, S. and Caire, G. "Channel vector subspace estimation from low-dimensional projections" arXiv:1509.07469v2 , 2016
Haghighatshoar, S. and Caire, G. "Low-Complexity Massive MIMO Subspace Estimation and Tracking from Low-Dimensional Projections" IEEE Transactions on Signal Processing , v.66 , 2018
Hang Qiu, Konstantinos Psounis, Giuseppe Caire, Keith Chugg and Kaidong Wang "High-Rate WiFi Broadcasting in Crowded Scenarios via Lightweight Coordination of Multiple Access Points" ACM MobiHoc , 2016
Lim, Y.; Chae, C.; Caire, G. "Performance Analysis of Massive MIMO for Cell-Boundary Users" IEEE Transactions on Wireless Communications , v.PP , 2015 10.1109/TWC.2015.2460751
P. Huang and K. Psounis "Optimal Backhauling for Dense Small-Cell Deployments Using mmWave Links" Computer Communications Journal, Elsevier , v.138 , 2019
Po-Han Huang and K. Psounis "Efficient mmwave wireless backhauling for dense small-cell deployments" In Proceedings of the 13th Annual Conference on Wireless On-Demand Network Systems and Services (IFIP WONS) , 2017
(Showing: 1 - 10 of 22)

PROJECT OUTCOMES REPORT

Disclaimer

This Project Outcomes Report for the General Public is displayed verbatim as submitted by the Principal Investigator (PI) for this award. Any opinions, findings, and conclusions or recommendations expressed in this Report are those of the PI and do not necessarily reflect the views of the National Science Foundation; NSF has not approved or endorsed its content.

This proposal has considered a radical innovative approach to the problem of broadband wireless access with the goal of significantly improving the cellular coverage and data speeds across the US in the context of the upcoming 5G cellular technology. We have considered a multi-tier heterogeneous wireless network architecture, achieving unprecedented spatial spectrum reuse aided by highly efficient physical layer technology (large-scale massive MIMO achieved via innovative antenna technology) and highly sophisticated cross-layer optimization. The later puts the user quality of experience at the center of the optimization, and systematically obtains layered protocol architectures from the structure of the global optimization solution itself, rather than combining heuristic solutions at each layer.

In a total of 25 papers published in highly prestigious conferences and journals, we have presented the required technological innovations ranging from novel hardware designs of power-efficient reconfigurable massive MIMO front-ends, to efficient higher layer algorithms and protocols which optimize the user experience and network utilization through sophisticated user clustering and resource allocation across all the layers of the networking stack. The combined effect of the aforementioned technologies may yield a 5x improvement on network capacity. In addition to significantly extending current mathematical performance analysis of wireless networks establishing the above performance gains, we have also run real world experiments with software defined radios equipped with advanced front ends to confirm our findings in practice.

 


Last Modified: 12/30/2019
Modified by: Konstantinos Psounis

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