Zesen Zhang

dblp:214/6089 · DBLP profile ↗
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8ranked-venue papers
2as first author
6since 2021 · last 2026
0000-0002-8996-162XORCID · corroborated

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

Computer networks · 5 · 1 first-author · 3 since 2021Security and privacy · 3 · 1 first-author · 3 since 2021
YearPublicationVenuePosition
2026 Different Policies for Different NodeBs: Comparing Downlink Schedulers in Cellular Base Stations
Zesen Zhang, Jon Larrea, Jarrett Huddleston, Haoran Wan, Ricky K. P. Mok, Bradley Huffaker, K. C. Claffy, Kyle Jamieson, Alexander Marder, Aaron Schulman
PAM1
2025 Marionette Measurement: Measurement Support Under the PacketLab Model
Tzu-Bin Yan, Zesen Zhang, Bradley Huffaker, Ricky K. P. Mok, K. C. Claffy, Kirill Levchenko
PAM2
2023 Poster: Empirically Testing the PacketLab Model
abstract
PacketLab is a recently proposed model for accessing remote vantage points. The core design is for the vantage points to export low-level network operations that measurement researchers could rely on to construct more complex measurements. Motivating the model is the assumption that such an approach can overcome persistent challenges such as the operational cost and security concerns of vantage point sharing that researchers face in launching distributed active Internet measurement experiments. However, the limitations imposed by the core design merit a deeper analysis of the applicability of such model to real-world measurements of interest. We undertook this analysis based on a survey of recent Internet measurement studies, followed by an empirical comparison of PacketLab-based versus native implementations of common measurement methods. We showed that for several canonical measurement types common in past studies, PacketLab yielded similar results to native versions of the same measurements. Our results suggest that PacketLab could help reproduce or extend around 16.4% (28 out of 171) of all surveyed studies and accommodate a variety of measurements from latency, throughput, network path, to non-timing data.
Tzu-Bin Yan, Zesen Zhang, Bradley Huffaker, Ricky K. P. Mok, K. C. Claffy, Kirill Levchenko
IMC2
2023 Access Denied: Assessing Physical Risks to Internet Access Networks
Alexander Marder, Zesen Zhang, Ricky K. P. Mok, Ramakrishna Padmanabhan, Bradley Huffaker, Matthew J. Luckie, Alberto Dainotti, K. C. Claffy, Alex C. Snoeren, Aaron Schulman
USENIX Security Symposium2
2022 PacketLab: tools alpha release and demo
abstract
The PacketLab universal measurement endpoint interface design facilitates vantage point sharing among experimenters and measurement endpoint operators [1]. We have continued working on fleshing out the design details of PacketLab components and adding enhancements to facilitate adoption. These include designing the PacketLab certificate system, adding support for measurement creation via a wrapper tool and a C library module, enhancement of reference endpoint ability for measurement flexibility and experiment scheduling, and devising a proxy program to accommodate experimenters without a public IP address. With the code base stabilizing, we are ready to announce our first open release of the PacketLab software package (available at pktlab.github.io). We invite network measurement researchers to try out our tools and welcome any feedback from the research community.
Tzu-Bin Yan, Anthea Chen, Zesen Zhang, Bradley Huffaker, Ricky K. P. Mok, Kirill Levchenko, K. C. Claffy
IMC4
2021 Inferring regional access network topologies: methods and applications
abstract
Using a toolbox of Internet cartography methods, and new ways of applying them, we have undertaken a comprehensive active measurement-driven study of the topology of U.S. regional access ISPs. We used state-of-the-art approaches in various combinations to accommodate the geographic scope, scale, and architectural richness of U.S. regional access ISPs. In addition to vantage points from research platforms, we used public WiFi hotspots and public transit of mobile devices to acquire the visibility needed to thoroughly map access networks across regions. We observed many different approaches to aggregation and redundancy, across links, nodes, buildings, and at different levels of the hierarchy. One result is substantial disparity in latency from some Edge COs to their backbone COs, with implications for end users of cloud services. Our methods and results can inform future analysis of critical infrastructure, including resilience to disasters, persistence of the digital divide, and challenges for the future of 5G and edge computing.
Zesen Zhang, Alexander Marder, Ricky K. P. Mok, Bradley Huffaker, Matthew J. Luckie, K. C. Claffy, Aaron Schulman
Internet Measurement Conference1
2020 Unraveling Impact of Critical Sensing Range on Mobile Camera Sensor Networks
abstract
In camera sensor networks (CSNs), full view coverage, meaning that any direction of any point in the operational region is covered by at least one camera sensor, plays a significant role in object identification. While prior work is dedicated to static CSNs for the sake of critical condition to achieve full view coverage, such performance still remains unknown in mobile CSNs. In this paper, we take the initiative to address this issue, where a centralized parameter, i.e., equivalent sensing radius (ESR), is defined to unravel the critical requirement for asymptotic full view coverage in mobile heterogeneous CSNs in the sense that camera sensors of different sensing capabilities are moving around in target area. Specifically, we derive ESR under three different mobilities, i.e., 1-dimensional and 2-dimensional random walks and random rotating model, and then explore respectively the corresponding critical conditions to achieve almost surely coverage.1 The static network is introduced as a baseline in order to gain a clear understanding of how mobility affects coverage performance differently. Interestingly, we find that both 1-dimensional and 2-dimensional random walks exhibit a smaller ESR than static one whereas ESR is even larger in random rotating mobility than that in static CSNs. Moreover, the almost surely coverage is found to be around 1.225 times of the critical condition to achieve coverage with high probability,2 and therefore turns out to be a stronger result compared to the traditional coverage with high probability. We then turn to the impact of various mobility patterns on sensing energy consumption, a metric that is closely related to ESR, and show that it can be decreased by random walks under certain delay tolerance. The relationship between ESR and percentage of full view coverage is also discussed and the results unify those under homogeneous CSNs.
Xiaoying Gan, Zesen Zhang, Luoyi Fu, Xinbing Wang
IEEE Trans. Mob. Comput.2
2018 Joint Optimization of Multicast Energy in Delay-Constrained Mobile Wireless Networks
abstract
This paper studies the problem of optimizing multicast energy consumption in delay-constrained mobile wireless networks, where information from the source needs to be delivered to all the k destinations within an imposed delay constraint. Most existing works simply focus on deriving transmission schemes with the minimum transmitting energy, overlooking the energy consumption at the receiver side. Therefore, in this paper, we propose ConMap, a novel and general framework for efficient transmission scheme design that jointly optimizes both the transmitting and receiving energy. In doing so, we formulate our problem of designing minimum energy transmission scheme, called DeMEM, as a combinatorial optimization one, and prove that the approximation ratio of any polynomial time algorithm for DeMEM cannot be better than (1/4) lnk. Aiming to provide more efficient approximation schemes, the proposed ConMap first converts DeMEM into an equivalent directed Steiner tree problem through creating auxiliary graph gadgets to capture energy consumption, then maps the computed tree back into a transmission scheme. The advantages of ConMap are threefolded: 1) Generality- ConMap exhibits strong applicability to a wide range of energy models; 2) Flexibility- Any algorithm designed for the problem of directed Steiner tree can be embedded into our ConMap framework to achieve different performance guarantees and complexities; 3) Efficiency- ConMap preserves the approximation ratio of the embedded Steiner tree algorithm, to which only slight overhead will be incurred. The three features are then empirically validated, with ConMap also yielding near-optimal transmission schemes compared to a brute-force exact algorithm. To our best knowledge, this is the first work that jointly considers both the transmitting and receiving energy in the design of multicast transmission schemes in mobile wireless networks.
Luoyi Fu, Xinzhe Fu, Zesen Zhang, Zhiying Xu, Xinbing Wang, Songwu Lu
IEEE/ACM Trans. Netw.3