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Quantum Machine Learning Quantum Chemistry

A Dataset of Benchmark Boolean Models for Gene Regulatory Networks.

PubMed
Authors: Hotstegs CLO, Llano JP, Kestler HA

Year

2026

Paper ID

68622

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

133

Citations

0

Abstract

Gene regulatory networks (GRNs) capture the processes involved in gene regulation. Boolean network (BN) modeling provides a simple but effective framework for understanding the dynamical behavior of GRNs. Although BNs have been widely studied and applied, algorithms and theoretical analyses are usually tested on ad hoc selected or artificially constructed models, which may introduce bias and fail to capture the essential structural and dynamical properties of real GRNs for which they are ultimately intended. Benchmarking offers standardized models for validation and comparison of computational methods and analyses. We construct benchmark BN models for GRNs of four major biological kingdoms: animals, bacteria, fungi, and plants. All models are built from empirically observed recurrent properties and motifs in GRNs. The proposed benchmark BNs provide a systematical and unbiased basis for evaluating algorithms and theoretical analyses.

Why This Paper Matters

  • This paper contributes to the Quantum Machine Learning research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Gene regulatory networks (GRNs) capture the processes involved in gene regulation.

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Current Paper #68622 #69042 Simultaneous Fragment Docking f... #69037 Spin dynamics and ortho-para co... #69034 Hardware-aware Low-latency Quan... #69025 Machine-Learning Optimization a...

External citation index: OpenAlex citation signal • updated 2026-06-15 09:27:00

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