Nonlinear approximation via compositions.
Where this comes from
- Record sourced from PubMed, PMID 31401528.
- Also identified by DOI 10.1016/j.neunet.2019.07.011.
- No licence information is recorded for this record.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
Given a function dictionary D and an approximation budget N∈N, nonlinear approximation seeks the linear combination of the best N terms [Formula: see text] to approximate a given function f with the minimum approximation error [Formula: see text] Motivated by recent success of deep learning, we propose dictionaries with functions in a form of compositions, i.e., [Formula: see text] for all T∈D, and implement T using ReLU feed-forward neural networks (FNNs) with L hidden layers. We further quantify the improvement of the best N-term approximation rate in terms of N when L is increased from 1 to 2 or 3 to show the power of compositions. In the case when L>3, our analysis shows that increasing L cannot improve the approximation rate in terms of N. In particular, for any function f on [0,1], regardless of its smoothness and even the continuity, if f can be approximated using a dictionary when L=1 with the best N-term approximation rate ε<sub>L,f</sub>=O(N<sup>-η</sup>), we show that dictionaries with L=2 can improve the best N-term approximation rate to ε<sub>L,f</sub>=O(N<sup>-2η</sup>). We also show that for Hölder continuous functions of order α on [0,1]<sup>d</sup>, the application of a dictionary with L=3 in nonlinear approximation can achieve an essentially tight best N-term approximation rate ε<sub>L,f</sub>=O(N<sup>-2α∕d</sup>). Finally, we show that dictionaries consisting of wide FNNs with a few hidden layers are more attractive in terms of computational efficiency than dictionaries with narrow and very deep FNNs for approximating Hölder continuous functions if the number of computer cores is larger than N in parallel computing.
Medical subject headings
- Neural Networks, Computer
- Nonlinear Dynamics