A continuum among logarithmic, linear, and exponential functions, and its potential to improve generalization in neural networks
February 03, 2016 ยท Declared Dead ยท ๐ International Joint Conference on Knowledge Discovery, Knowledge Engineering and Knowledge Management
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Authors
Luke B. Godfrey, Michael S. Gashler
arXiv ID
1602.01321
Category
cs.NE: Neural & Evolutionary
Citations
38
Venue
International Joint Conference on Knowledge Discovery, Knowledge Engineering and Knowledge Management
Last Checked
3 months ago
Abstract
We present the soft exponential activation function for artificial neural networks that continuously interpolates between logarithmic, linear, and exponential functions. This activation function is simple, differentiable, and parameterized so that it can be trained as the rest of the network is trained. We hypothesize that soft exponential has the potential to improve neural network learning, as it can exactly calculate many natural operations that typical neural networks can only approximate, including addition, multiplication, inner product, distance, polynomials, and sinusoids.
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