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Trapped Ion Quantum Computing Quantum Machine Learning Quantum Simulation

Comparing Quantum Encoding Techniques

arXiv
Authors: Nidhi Munikote

Year

2024

Paper ID

38237

Status

Preprint

Abstract Read

~2 min

Abstract Words

141

Citations

N/A

Abstract

As quantum computers continue to become more capable, the possibilities of their applications increase. For example, quantum techniques are being integrated with classical neural networks to perform machine learning. In order to be used in this way, or for any other widespread use like quantum chemistry simulations or cryptographic applications, classical data must be converted into quantum states through quantum encoding. There are three fundamental encoding methods: basis, amplitude, and rotation, as well as several proposed combinations. This study explores the encoding methods, specifically in the context of hybrid quantum-classical machine learning. Using the QuClassi quantum neural network architecture to perform binary classification of the `3' and `6' digits from the MNIST datasets, this study obtains several metrics such as accuracy, entropy, loss, and resistance to noise, while considering resource usage and computational complexity to compare the three main encoding methods.

Why This Paper Matters

  • This paper contributes to the Quantum Machine Learning research area in the Quantum Articles archive.
  • It adds a 2024 reference point for readers tracking recent quantum research.
  • As quantum computers continue to become more capable, the possibilities of their applications increase.

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