Benjamin Baron

dblp:155/5164 · DBLP profile ↗
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4ranked-venue papers
4as first author
1since 2021 · last 2026
0000-0002-7144-0674ORCID · corroborated

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

Computer networks · 2 · 2 first-authorSystems, architecture and hardware · 1 · 1 first-author · 1 since 2021Databases, data management, data science and information retrieval · 1 · 1 first-author · 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 architecture, parallel and distributed computing, and storage systems
1 paper
Storage systems · 67% Distributed systems · 33%
Computer networks
1 paper
Vehicular, aerial and satellite networks · 30% Edge and fog computing · 30% Routing and switching · 30%

Topics — the 6 heaviest of 7, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Storage systems › distributed storage
geo-distributed storage
1.012026
ACOS: Apple's Geo-Distributed Object Store at Exabyte Scale · FAST 2026
Storage systems
object storage
1.012026
ACOS: Apple's Geo-Distributed Object Store at Exabyte Scale · FAST 2026
Edge and fog computing › offloading
data offloading
0.212016
Offloading Massive Data Onto Passenger Vehicles: Topology Simplification and Traffic Assignment · IEEE/ACM Trans. Netw. 2016
Routing and switching › traffic engineering
traffic allocation
0.212016
Offloading Massive Data Onto Passenger Vehicles: Topology Simplification and Traffic Assignment · IEEE/ACM Trans. Netw. 2016
Vehicular, aerial and satellite networks
vehicular networks
0.212016
Offloading Massive Data Onto Passenger Vehicles: Topology Simplification and Traffic Assignment · IEEE/ACM Trans. Netw. 2016
Internet of things and sensor networks
delay tolerant networks
0.112016
Offloading Massive Data Onto Passenger Vehicles: Topology Simplification and Traffic Assignment · IEEE/ACM Trans. Netw. 2016

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

linear programming · 0.2embedding algorithm · 0.2
YearPublicationVenuePosition
2026 ACOS: Apple's Geo-Distributed Object Store at Exabyte Scale
Benjamin Baron, Aline Bousquet, Eric Metens, Swapnil Pimpale, Nick Puz, Marc de Saint Sauveur, Varsha Muzumdar, Vinay Ari
FAST1
2017 Centrally Controlled Mass Data Offloading Using Vehicular Traffic
abstract
With over 300 billion vehicle trips made in the United States and 64 billion in France per year, network operators have the opportunity to utilize the existing road and highway network as an alternative data network to offload large amounts of delay-tolerant traffic. To enable the road network as a large-capacity transmission system, we exploit the existing mobility of vehicles equipped with wireless and storage capacities together with a collection of offloading spots. An offloading spot is a data storage equipment located where vehicles usually park. Data is transloaded from a conventional data network to the closest offloading spot and then shipped by vehicles along their line of travel. The subsequent offloading spots act as data relay boxes where vehicles can drop off data for later pick-up by other vehicles, depending on their direction of travel. The main challenges of this offloading system are how to compute the road path matching the performance requirements of a data transfer and how to configure the sequence of offloading spots involved in the transfer. We propose a scalable and adaptive centralized architecture built on software-defined networking that maximizes the utilization of the flow of vehicles connecting consecutive offloading spots. We simulate the performance of our system using real roads traffic counts for France. Results show that the centralized controlled offloading architecture can achieve an efficient and fair allocation of concurrent data transfers between major cities in France.
Benjamin Baron, Prométhée Spathis, Hervé Rivano, Marcelo Dias de Amorim, Yannis Viniotis, Mostafa H. Ammar
IEEE Trans. Netw. Serv. Manag.1
2016 Offloading Massive Data Onto Passenger Vehicles: Topology Simplification and Traffic Assignment
abstract
Offloading is a promising technique for alleviating the ever-growing traffic load from infrastructure-based networks such as the Internet. Offloading consists of using alternative methods of transmission as a cost-effective solution for network operators to extend their transport capacity. In this paper, we advocate the use of conventional vehicles equipped with storage devices as data carriers whilst being driven for daily routine journeys. The road network can be turned into a large-capacity transmission system to offload bulk transfers of delay-tolerant data from the Internet. One of the challenges we address is assigning data to flows of vehicles while coping with the complexity of the road network. We propose an embedding algorithm that computes an offloading overlay where each logical link spans over multiple stretches of road from the underlying road infrastructure. We then formulate the data transfer assignment problem as a novel linear programming model we solve to determine the optimal logical paths matching the performance requirements of a data transfer. We evaluate our road traffic allocation scheme using actual road traffic counts in France. The numerical results show that 20% of vehicles in circulation in France equipped with only one Terabyte of storage can offload Petabyte transfers in a week.
Benjamin Baron, Prométhée Spathis, Hervé Rivano, Marcelo Dias de Amorim
IEEE/ACM Trans. Netw.1
2014 Vehicles as Big Data Carriers: Road Map Space Reduction and Efficient Data Assignment
abstract
We advocate the use of a data shuttle service model to offload bulk transfers of delay-tolerant data from the Internet onto standard vehicles equipped with data storage capabilities. We first propose an embedding algorithm that computes an offloading overlay on top of the road infrastructure. The goal is to simplify the representation of the road infrastructure as raw maps are too complex to handle. In this overlay, each logical link maps multiple stretches of road from the underlying road infrastructure. We formulate then the data transfer assignment problem as a novel linear programming model that determines the most appropriate logical paths in the offloading overlay for a data transfer request. We evaluate our proposal using actual road traffic counts in France. Numerical results show that we can satisfy weekly aggregate requests in the petabyte range while achieving cumulative bandwidth above 10 Gbps with a market share of 20% and only one terabyte of storage per vehicle.
Benjamin Baron, Prométhée Spathis, Hervé Rivano, Marcelo Dias de Amorim
VTC Fall1