tn4ml: Tensor Network Training and Customization for Machine Learning

Puljak, Ema, Sanchez-Ramirez, Sergio, Masot-Llima, Sergi, Vallès-Muns, Jofre, Garcia-Saez, Artur, Pierini, Maurizio

arXiv.org Artificial Intelligence 

Tensor Networks have emerged as a prominent alternative to neural networks for addressing Machine Learning challenges in foundational sciences, paving the way for their applications to real-life problems. This paper introduces tn4ml, a novel library designed to seamlessly integrate Tensor Networks into optimization pipelines for Machine Learning tasks. Inspired by existing Machine Learning frameworks, the library offers a user-friendly structure with modules for data embedding, objective function definition, and model training using diverse optimization strategies. We demonstrate its versatility through two examples: supervised learning on tabular data and unsupervised learning on an image dataset. Additionally, we analyze how customizing the parts of the Machine Learning pipeline for Tensor Networks influences performance metrics.

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