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Ingmar Splitt

dblp:203/0944 · DBLP profile ↗
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2ranked-venue papers
0as first author
2since 2021 · last 2025
0009-0009-6594-0929ORCID · corroborated

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

Computer networks · 2 · 2 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
2 papers
Internet of things and sensor networks · 100%
Computer architecture, parallel and distributed computing, and storage systems
1 paper
Performance modeling and evaluation · 44% Distributed systems · 44% Embedded and real-time systems · 13%

Topics — the 5 heaviest of 6, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Internet of things and sensor networks › iot devices
battery-free devices
1.522025
Shepherd Nova: A Public Testbed for Rigorous Experiments Under Repeatable Energy-Harvesting Conditions · MobiSys 2025
Demo Abstract: Building Battery-free Devices with Riotee✱ · IPSN 2023
Internet of things and sensor networks › energy harvesting
energy harvesting iot
0.912025
Shepherd Nova: A Public Testbed for Rigorous Experiments Under Repeatable Energy-Harvesting Conditions · MobiSys 2025
Performance modeling and evaluation
benchmarking
0.912025
Shepherd Nova: A Public Testbed for Rigorous Experiments Under Repeatable Energy-Harvesting Conditions · MobiSys 2025
Distributed systems
testbed experimentation
0.912025
Shepherd Nova: A Public Testbed for Rigorous Experiments Under Repeatable Energy-Harvesting Conditions · MobiSys 2025
Embedded and real-time systems › energy harvesting systems
energy harvesting embedded systems
0.312025
Shepherd Nova: A Public Testbed for Rigorous Experiments Under Repeatable Energy-Harvesting Conditions · MobiSys 2025

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

sub-microsecond synchronization · 1.7power profiling · 1.7GPIO tracing · 1.7
YearPublicationVenuePosition
2025 Shepherd Nova: A Public Testbed for Rigorous Experiments Under Repeatable Energy-Harvesting Conditions
abstract
Public testbeds are essential for replicable experiments and meaningful comparisons on shared physical infrastructure. While many testbeds exist for battery-powered Internet of Things (IoT) systems, there is a lack of public testbeds for observing and profiling the distributed operation of energy-harvesting IoT systems, including battery-free devices. We fill this gap and present Shepherd Nova, the first public testbed designed to support experiments under repeatable energy-harvesting conditions. Shepherd Nova uses field-recorded harvesting data to supply power to devices, consistently replicating real-world spatio-temporal energy availability across multiple experiments. Its virtual power source supports diverse ambient energy sources, harvesting circuitry, and energy storage devices. Moreover, Shepherd Nova provides services like general-purpose input/output (GPIO) tracing, power profiling, and serial output logging, all of which can run synchronously and with high resolution. Sub-microsecond synchronization enables precise correlation between these observations and emulated energy-harvesting conditions, offering unprecedented insights into distributed energy-harvesting IoT systems. In this paper, we describe Shepherd Nova's design, characterize its performance, and demonstrate its capabilities through controlled experiments and an example test case. To access the testbed, documentation as well as open-source harvesting data, hardware designs, and code, visit https://testbed.nes-lab.org/.
Kai Geissdoerfer, Ingmar Splitt, Matthias Sokolowski, Carsten Herrmann, Jonas Kubicki, Jasper de Winkel, Marco Zimmerling
MobiSys2
2023 Demo Abstract: Building Battery-free Devices with Riotee✱
abstract
Battery-free devices eliminate the need for batteries, which are expensive, environmentally harmful, and require frequent replacement, thus reducing waste and making devices more cost-effective. We introduce Riotee, the next-generation platform for the battery-free Internet of Things. The platform comprises a base module, a debug probe that allows to conveniently update the firmware on the base module, and a number of expansion boards that extend the capabilities of the platform without the need to design a custom printed circuit board (PCB). We provide a brief overview of Riotee, and describe a demo setup that showcases the key functionality and how to get started with the platform in less than three minutes.
Kai Geissdoerfer, Ingmar Splitt, Marco Zimmerling
IPSN2