VLDB 2026 Research / reviewers in the wild / expert
Michael Rennie
dblp:253/3532
· DBLP profile ↗
7ranked-venue papers
1as first author
5since 2021 · last 2026
0000-0001-5472-2437ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 7 · 1 first-author · 5 since 2021Software engineering, systems software and programming languages · 1 · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | A Multi-Language Parser Pipeline for Software Analysis and Verification
Mete Isiksalan, Kostas Kontogiannis, Michael Rennie, Christophe Elek |
COMPSAC | 3 |
| 2021 | The Aeolus Data Innovation and Science ClusterabstractThe Data Innovation and Science Cluster (DISC) is a core element of ESA's data quality strategy for the Aeolus mission, which was launched in August 2018. Aeolus provides for the first-time global observations of vertical profiles of horizontal wind information by using the first Doppler wind lidar in space. The Aeolus DISC is responsible for monitoring and improving the quality of the Aeolus aerosol and wind products, for the upgrade of the operational processors as well as for impact studies and support of data usage. It has been responsible for multiple significant processor upgrades which reduced the systematic error of the Aeolus observations drastically. Only due to the efforts of the Aeolus DISC team members prior to and after launch, the systematic error of the Aeolus wind products could be reduced to a global average below 1 m/s which was an important pre-requisite for making the data available to the public in May 2020 and for its use in operational weather prediction. In 2020, the reprocessing of earlier acquired Aeolus data, another important task of the Aeolus DISC, also started. In this way, also observations from June to December 2019 with significantly better quality could be made available to the public, and more data will follow this and next year. Without the thorough preparations and close collaboration between ESA and the Aeolus DISC over the past decade, many of these achievements would not have been possible. Isabell Krisch, Oliver Reitebuch, Jonas von Bismarck, Tommaso Parrinello, Michael Rennie, Fabian Weiler, Dorit Huber, Jos de Kloe, Alain Dabas, Anne Grete Straume, Saleh Abdalla, Stefano Aprile, Sebastian Bley, Fabio Bracci, Simone Bucci, Massimo Cardaci, Werner Damman, Dave Donovan, Frithjof Ehlers, Frédéric Fabre, Peggy Fischer, Thomas Flament, Giacomo Gostinicchi, Lars Isaksen, Sebastian Jupin-Langlois, Thomas Kanitz, Adrien Lacour, Marta De Laurentis, Christian Lemmerz, Oliver Lux, Uwe Marksteiner, Gert-Jan Marseille, Nafiseh Masoumzadeh, Markus Meringer, Sander Niemeijer, Ines Nikolaus, Gaetan Perron, Bas J. Pijnacker Hordijk, Katja Reissig, Matic Savli, Ad Stoffelen, Dimitri Trapon, Michael Vaughan, Marcella Veneziani, Cristiano De Vincenti, Benjamin Witschas |
IGARSS | 5 |
| 2021 | Demonstrated Aeolus Benefits in Atmospheric SciencesabstractWe highlight some of the scientific benefits of the Aeolus Doppler Wind Lidar mission since its launch in August 2018. Its scientific objectives are to improve weather forecasts and to advance the understanding of atmospheric dynamics and its interaction with the atmospheric energy and water cycle. A number of meteorological and science institutes across the world are starting to demonstrate that the Aeolus mission objectives are being met. Its wind product is being operationally assimilated by four Numerical Weather Prediction (NWP) centres, thanks to demonstrated useful positive impact on NWP analyses and forecasts. Applications of its atmospheric optical properties product have been found, e.g., in the detection and tracking of smoke from the extreme Australian wildfires of 2020 and in atmospheric composition data assimilation. The winds are finding novel applications in atmospheric dynamics research, such as tropical phenomena (Quasi-Biennial Oscillation disruption events), detection of atmospheric gravity waves, and in the smoke generated vortex associated with the Australian wildfires. It has been applied in the assessment of other types of satellite derived wind information such as atmospheric motions vectors. Aeolus is already successful with hopefully more to come. Michael Rennie, Ad Stoffelen, Sergey Khaykin, Scott Osprey, Corwin Wright, Tim Banyard, Anne Grete Straume, Oliver Reitebuch, Isabell Krisch, Tommaso Parrinello, Jonas von Bismarck, Denny Wernham |
IGARSS | 1 |
| 2021 | Future Space-Based Doppler Wind Lidar WindsabstractThe unique European Space Agency (ESA) Earth Explorer Aeolus Doppler Wind Lidar (DWL) is a success with beneficial impacts in weather and climate. At the IGARSS ‘21 venue we will share our results internationally and present initial studies that look into an operational Aeolus follow-on mission and describe lessons learned on the instrument, data processing and application of the winds. The ESA Aeolus mission now demonstrates the unique benefits of direct measurements of the atmospheric wind fieldon atmospheric dynamical analyses and forecasts. The many lessons learned from the Aeolus instrument development, its operation and data processing development are being exploited to help develop the requirements and design of an Aeolus follow-on mission in order to further enhance its application benefit globally. An overview of preliminary Aeolus and future DWL requirements will be presented to initiate a discussion with the international community gathered at IGARSS ‘21. Ad Stoffelen, Gert-Jan Marseille, Tommaso Parrinello, Oliver Reitebuch, Michael Rennie, Anne Grete Straume |
IGARSS | 5 |
| 2021 | ESA'S Wind Mission Aeolus - Overview, Status and OutlookabstractThe European Space Agency's (ESA) wind mission, Aeolus, hosts the first space-based Doppler Wind Lidar (DWL) world-wide. Its scientific objectives are to improve weather forecasts and to advance the understanding of atmospheric dynamics and its interaction with the atmospheric energy and water cycle. The primary data product is profiles of horizontally projected line-of-sight winds from the surface up to about 30 km, and spin-off products are profiles of cloud and aerosol optical properties. Aeolus was launched on 22 August 2018, and the Atmospheric LAser Doppler INstrument (ALADIN) switch-on was completed with first high energy output in wind mode on 4 September 2018. The on-ground data processing facility worked excellent, allowing L2 product output in near-real-time (within 3 hours of sensing) from the start of the mission. During the first 20 months in orbit, ESA, the Aeolus Data Innovation and Science Cluster (DISC), Aeolus calibration and validation (CAL/VAL) teams and industry worked on the instrument commissioning, calibration, validation and product improvements, leading to the public release of the Level 2B (L2B) wind product in May 2020. The Aeolus L2B wind data were then of such good quality that four weather centers started to use the product in their daily forecasts during 2020, and more have plans to follow in 2021. As of May 2020, the biases of the near-real-time data were on average close to the mission requirements, although the random errors were higher than expected due to lower than expected atmospheric return signal on orbit. Other issues encountered in-flight were for example drifts in the instrument alignment and nonoptimal telescope focus and temperature control, leading to drifts in the laser emitted output energy and/or internal and atmospheric path signal strength and long term evolutions on the wind product bias. A further issue encountered was a gradually increasing number of “hot pixels”, i.e. pixels with elevated background signals, appearing on the ALADIN ACCDs over time. Mitigation strategies for these issues arebeing implemented, or are considered for a potential follow-on mission. The Aeolus optical properties spin-off product (L2A) has been further improved after launch, including methods for improved aerosol and cloud backscatter discrimination. The product has been used to study smoke emissions, e.g. from the early 2020 Australian fires, and has been successfully experimentally assimilated in Copernicus Atmosphere Monitoring Service (CAMS) model C-IFS. After two and a half years in orbit, and despite of some performance issues related to the ALADIN instrument, Aeolus has already achieved most of its scientific objectives. Finally, the mission was recently extended until end 2022. Anne Grete Straume, Tommaso Parrinello, Jonas von Bismarck, Sebastian Bley, Denny Wernham, Thomas Kanitz, Emilio Alvarez, Peggy Fischey, Marta De Laurentis, Thorsten Fehr, Frithjof Ehlers, Viet Duc Tran, Isabell Krisch, Oliver Reitebuch, Michael Rennie |
IGARSS | 15 |
| 2020 | Aeolus - ESA'S Wind Lidar Mission, A Brief StatusabstractESA deployed the first Doppler wind lidar in space within its Earth Explorer Mission Aeolus in August 2018. Since then global wind profiles have been acquired for the improvement of weather forecasts on short and medium term. Current calibration and validation activities indicate the demanded positive impact from different forecast centers. In addition, Aeolus provides profiles of atmospheric backscatter and extinction coefficients that are supposed to become input for air quality models. The talk will provide an overview of the encountered technical challenges in flight and some preliminary results from impact studies. Thomas Kanitz, Denny Wernham, Emilio Alvarez, Georgios Tzeremes, Tommaso Parrinello, Jonathan Marshall, John Brewster, Olivier Le Crenier, Marc Schillinger, Valeria De Sanctis, Alessandro D'Ottavi, Oliver Reitebuch, Fabian Weiler, Oliver Lux, Michael Rennie, Lars Isaksen |
IGARSS | 15 |
| 2019 | Aeolus - 1 Year After LaunchabstractESA deployed the first Doppler Wind lidar in space within its Earth Explorer Mission Aeolus. The objective of Aeolus is to provide tropospheric and lower stratospheric wind profiles globally for the improvement of weather forecasts on short and medium term. Spin-off products are profiles of atmospheric backscatter and extinction coefficients and lidar ratio that can input for air quality models. After the successful launch in late August 2018 and following commissioning phase, the Calibration and Validation phase started in Decemeber 2018. The talk will recap the highlights of these phases and present the status of the mission. Thomas Kanitz, Anne Grete Straume, Jonathan Marshall, Olivier Le Crenier, Valentina Sachhieri, Oliver Reitebuch, Michael Rennie, Michael Wernham |
IGARSS | 7 |