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2026
Journal Article
Title
Uncertainty propagation in financial models of photovoltaic systems
Abstract
Financial analysis has a long history of capturing the stochasticity of real-world phenomena. For informed investment decisions, it is crucial to understand and quantify uncertainty propagation from financial model input to output. Yet to that end, in the photovoltaics sector one has so far relied on coarse-grained approximations or extensive simulations. Here we present a numerically inexpensive approach that exactly traces uncertainty propagation on the level of probability distributions. It leverages analytic shortcuts through switching between different distribution representations, and only assumes independent input variables. With the financial analysis of a typical photovoltaic system as a case study, we use the approach to compute key financial metrics and demonstrate that their values can differ significantly from those obtained by standard approximations.
Open Access
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Rights
CC BY 4.0: Creative Commons Attribution
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Language
English
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