Artificial neural networks on graded vector spaces

Shaska, T.

arXiv.org Artificial Intelligence 

We develop new artificial neural network models for graded vector spaces, which are suitable when different features in the data have different significance (weights). This is the first time that such models are designed mathematically and they are expected to perform better than neural networks over usual vector spaces, which are the special case when the gradings are all 1s.

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