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Jackson Welles

dblp:252/1057 · DBLP profile ↗
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4ranked-venue papers
0as first author
1since 2021 · last 2021
—ORCID · none

Domains — the database's venue-derived domains; a paper can count in several

Computer networks · 4 · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Computer networks
3 papers
Physical-layer communications · 57% Wireless networking · 39% Internet of things and sensor networks · 4%

Topics — the 6 heaviest of 6, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Wireless networking › wireless link
full-duplex wireless
1.232020
Remote experimentation with open-access full-duplex wireless in the COSMOS testbed · MobiCom 2020
Poster: Enabling Wideband Full-Duplex Wireless via Frequency-Domain Equalization · MobiCom 2019
Experimentation with Full-Duplex Wireless in the COSMOS Testbed · ICNP 2019
Physical-layer communications › interference cancellation
self-interference cancellation
1.232020
Remote experimentation with open-access full-duplex wireless in the COSMOS testbed · MobiCom 2020
Poster: Enabling Wideband Full-Duplex Wireless via Frequency-Domain Equalization · MobiCom 2019
Experimentation with Full-Duplex Wireless in the COSMOS Testbed · ICNP 2019
Physical-layer communications › equalization
frequency-domain equalization
0.522020
Poster: Enabling Wideband Full-Duplex Wireless via Frequency-Domain Equalization · MobiCom 2019
Remote experimentation with open-access full-duplex wireless in the COSMOS testbed · MobiCom 2020
Physical-layer communications
software-defined radio
0.222019
Poster: Enabling Wideband Full-Duplex Wireless via Frequency-Domain Equalization · MobiCom 2019
Experimentation with Full-Duplex Wireless in the COSMOS Testbed · ICNP 2019
Internet of things and sensor networks › wireless sensor network
testbed
0.112020
Remote experimentation with open-access full-duplex wireless in the COSMOS testbed · MobiCom 2020
Wireless networking
testbed experimentation
0.112019
Experimentation with Full-Duplex Wireless in the COSMOS Testbed · ICNP 2019

Methods — techniques the papers use, named apart from their topics

RF self-interference cancellation · 0.8frequency-domain equalization · 0.8software-defined radio · 0.4RF canceller optimization · 0.4
YearPublicationVenuePosition
2021 Open-access full-duplex wireless in the ORBIT and COSMOS testbeds
Manav Kohli, Tingjun Chen, Mahmood Baraani Dastjerdi, Jackson Welles, Ivan Seskar, Harish Krishnaswamy, Gil Zussman
Comput. Networks4
2020 Remote experimentation with open-access full-duplex wireless in the COSMOS testbed
abstract
To support experimentation with full-duplex (FD) wireless, we recently integrated two FlexICoN Gen-2 wideband FD radios in the open-access, city-scale NSF PAWR COSMOS testbed. Each integrated FD radio consists of an antenna, a customized Gen-2 RF self-interference (SI) canceller box, a USRP software-defined radio, and a remotely accessible compute node. The RF SI canceller box includes an RF canceller printed circuit board which emulates an integrated circuit implementation based on the technique of frequency-domain equalization. The Gen-2 canceller box can achieve up to 50 dB RF SI cancellation across 20MHz bandwidth. In this demo, we present the design and implementation of the open-acccess, remotely accessible FD radios that are integrated in the indoor COSMOS Sandbox 2 at Columbia University. We also demonstrate example experiments that are available to researchers, where demo participants can observe the visualized performance of the open-access FD radios.
Manav Kohli, Tingjun Chen, Jackson Welles, Mahmood Baraani Dastjerdi, Jakub Kolodziejski, Ivan Seskar, Harish Krishnaswamy, Gil Zussman
MobiCom3
2019 Experimentation with Full-Duplex Wireless in the COSMOS Testbed
abstract
In order to support experimentation with full-duplex (FD) wireless, we integrated the FlexICoN Gen-2 wideband FD radio with the city-scale PAWR COSMOS testbed [1]. In particular, the implemented FD radio consists of an antenna, a customized Gen-2 RF self-interference (SI) canceller box, a USRP software-defined radio (SDR), and a compute node. The RF canceller box includes an RF SI canceller implemented using discrete components on a printed circuit board (PCB), which emulates its RFIC canceller counterpart. The Gen-2 RF SI canceller achieves 50dB RF SI cancellation across 20MHz bandwidth using the technique of frequency-domain equalization (FDE) [2]. In this abstract, we present the design and implementation of the remotely accessible Gen-2 wideband FD radio integrated with the COSMOS sandbox at Columbia University. We also present an example real-time wideband FD wireless link demonstration using the GNU Radio software.
Tingjun Chen, Jackson Welles, Manav Kohli, Mahmood Baraani Dastjerdi, Jakub Kolodziejski, Ivan Seskar, Harish Krishnaswamy, Gil Zussman
ICNP2
2019 Poster: Enabling Wideband Full-Duplex Wireless via Frequency-Domain Equalization
abstract
Full-duplex (FD) wireless can significantly enhance spectrum efficiency but requires tremendous amount of self-interference (SI) cancellation. Recent advances in the RFIC community enabled wideband RF SI cancellation (SIC) in integrated circuits (ICs) via frequency-domain equalization (FDE), where reconfigurable RF filters are used to channelize the SI signal path. In [2], we designed and implemented an FDE-based RF canceller on a printed circuit board (PCB). We also presented an optimized canceller configuration scheme based on the derived canceller model, and extensively evaluated the performance of the FDE-based FD radios in a software-defined radio (SDR) testbed in different network settings.
Tingjun Chen, Mahmood Baraani Dastjerdi, Jackson Welles, Jin Zhou 0001, Harish Krishnaswamy, Gil Zussman
MobiCom3