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Kai Kim

1 accepted papers

2024

Multi-Fidelity Residual Neural Processes for Scalable Surrogate Modeling

ICML 2024poster

Multi-fidelity surrogate modeling aims to learn an accurate surrogate at the highest fidelity level by combining data from multiple sources. Traditional methods relying on Gaussian processes can hardly scale to high-dimensional data. Deep learning approaches utilize neural network based encoders and…