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Fuelprop: Fuel property prediction from ATR-FTIR spectroscopic data

Fuelprop: Fuel property prediction from ATR-FTIR spectroscopic data

来源:Arxiv_logoArxiv
英文摘要

Synthetic fuels are crucial for decarbonizing the transportation sector. A significant challenge lies in the rapid and efficient characterization of these fuels. Chemometric methods using ATR-FTIR data offer a potential alternative to conventional techniques. This study expands the applicability and performance of chemometric models by providing an extensive ATR-FTIR spectral dataset and exploring various data enhancement strategies. Data enhancement was achieved by semi-supervised data generation, consistency enforcement through unsupervised data augmentation, and data imputation using synthetic spectra blending and pseudo-labeling. Models were trained on surrogate fuels and rigorously tested on real fuels, representing out-of-distribution testing conditions. We believe that this work will enhance the adoption of chemometric models for fuel characterization.

Mohammed Almomtan、Emad Al Ibrahim、Aamir Farooq

燃料化学工业

Mohammed Almomtan,Emad Al Ibrahim,Aamir Farooq.Fuelprop: Fuel property prediction from ATR-FTIR spectroscopic data[EB/OL].(2025-06-02)[2025-07-16].https://arxiv.org/abs/2506.01601.点此复制

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