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Sandrine Charousset

Publications and source records attributed to Sandrine Charousset.

2 recordsLinked to original sources

Stochastic inflows and seasonal water value at Manantali

Seasonal hydropower operation requires release decisions that account for uncertain future inflows and the opportunity cost of stored water. We assess the Modelling and Optimisation of Stochastic Seasonal Hydropower Storage (MOSSHOOS) framework for the Manantali reservoir using 660 monthly energy-inflow observations from 1961--2015. The framework combines multiscale inflow representation, blocked resampling and scenario reduction with stochastic dual dynamic programming, and uses a seasonal square-root diffusion and Hamilton--Jacobi--Bellman formulation as a continuous-time interpretation of marginal water value. Scenario reduction improves the energy score by 47.6\% relative to independent monthly sampling, but the marginal distribution is rejected by a Kolmogorov--Smirnov test and the lower-tail p10 error remains 103.9\%, indicating inadequate dry-tail calibration. Consistent with that limitation, 50 paired Monte Carlo evaluations show no detectable cost or deficit advantage of the stochastic policy over its deterministic-equivalent counterpart at the archived operating configuration. As an independent benchmark, the repaired open-source \texttt{plan4res} seasonal storage valuation chain yields a dominant marginal value of 81.66~USD/MWh, within 3\% of the MOSSHOOS mean of 79.25~USD/MWh. These results support a coherent stochastic inflow-to-water-value methodology while showing that hydrological tail representation, rather than economic scaling, is the principal limitation to address before operational application.

math.OC↗

A User-oriented Portable, Reproducible, and Scalable Software Ecosystem

It is normal for scientists to perform their research on a diverse set of hardware, ranging from laptops and workstations to supercomputers and cloud resources. The standard scenario requires a mix of these resources. In this paper we describe a software ecosystem that enables users to rely on the same development environment for running their workflows across the different computational resources. We describe a modular, unified command-line interface that allows for the interaction with a user-workflow across diverse hardware platform. The software ecosystem has been successfully tested as part of the plan4res EU H2020 project. It can be extended to other projects with similar requirements, so that they can benefit from the same approach for executing computational workflows.

cs.DC↗