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Residency demo #1178
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EmilianoG-byte
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Residency demo #1178
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Co-authored-by: Jorge J. Martínez de Lejarza <[email protected]>
Co-authored-by: serene <[email protected]>
Co-authored-by: serene <[email protected]>
Co-authored-by: serene <[email protected]> Co-authored-by: Jorge J. Martínez de Lejarza <[email protected]>
Refactored the training code and added more explanation to several functions.
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Title: Quantum Circuit Born Machine with Tensor Network Ansätze
Summary:
In this tutorial we employ the NISQ-friendly generative model known as the Quantum Circuit Born Machine (QCBM) introduced in https://arxiv.org/abs/1801.07686 to obtain the probability distribution of the bars and stripes data set. To this end, we use the tensor-network inspired templates available in Pennylane to construct the model's ansatz.
Relevant references:
Possible Drawbacks:
Might have some overlap with this other demo
GOALS — Why are we working on this now?
Showcase the use of built-in PennyLane features within the context of quantum machine learning, particularly for a problem formulated in a paper, with some slight differences.
AUDIENCE — Who is this for?
Quantum Machine Learning researches, and people with intermediate experience in quantum computing
KEYWORDS — What words should be included in the marketing post?
Quantum Circuit Born Machine, Tensor Networks Ansatz, Quantum Machine Learning.
Which of the following types of documentation is most similar to your file?
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