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Nian-Feng Tzeng

3 accepted papers

2023

MMST-ViT: Climate Change-aware Crop Yield Prediction via Multi-Modal Spatial-Temporal Vision Transformer

ICCV 2023poster

Precise crop yield prediction provides valuable information for agricultural planning and decision-making processes. However, timely predicting crop yields remains challenging as crop growth is sensitive to growing season weather variation and climate change. In this work, we develop a deep learning…

Cited by 45PDFcodeScholar
2020

Learning Interpretable Representations with Informative Entanglements

IJCAI 2020poster

Learning interpretable representations in an unsupervised setting is an important yet a challenging task. Existing unsupervised interpretable methods focus on extracting independent salient features from data. However they miss out the fact that the entanglement of salient features may also be infor…

Cited by 0SourcePDFScholar