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arXiv (Cornell University)
Shape complexity estimation using VAE
April 2023 • Markus Rothgaenger, Andrew Melnik, Helge Ritter
In this paper, we compare methods for estimating the complexity of two-dimensional shapes and introduce a method that exploits reconstruction loss of Variational Autoencoders with different sizes of latent vectors. Although complexity of a shape is not a well defined attribute, different aspects of it can be estimated. We demonstrate that our methods captures some aspects of shape complexity. Code and training details will be publicly available.
Artificial Intelligence
Computer Science
Machine Learning
Management
Computer Security
Economics
Algorithm
Programming Language
Estimation
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