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Quantum Computing Based Inference of GRNs

机译:基于量子计算的GRN推理

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The accurate reconstruction of gene regulatory networks from temporal gene expression data is crucial for the identification of genetic inter-regulations at the cellular level. This will help us to comprehend the working of living entities properly. Here, we have proposed a novel quantum computing based technique for the reverse engineering of gene regulatory networks from time-series genetic expression datasets. The dynamics of the temporal expression profiles have been modelled using the recurrent neural network formalism. The corresponding training of model parameters has been realised with the help of the proposed quantum computing methodology based concepts. This is based on entanglement and decoherence concepts. The application of quantum computing technique in this domain of research is comparatively new. The results obtained using this technique is highly satisfactory. We have applied it to a 4-gene artificial genetic network model, which was previously studied by other researchers. Also, a 10-gene and a 20-gene genetic network have been studied using the proposed technique. The obtained results suggest that quantum computing technique significantly reduces the computational time, retaining the accuracy of the inferred gene regulatory networks to a comparatively satisfactory level.
机译:从时间基因表达数据准确重建基因调控网络对于在细胞水平上鉴定基因间调控至关重要。这将有助于我们正确理解生物实体的工作。在这里,我们提出了一种基于量子计算的新技术,用于从时序基因表达数据集中进行基因调控网络的逆向工程。时间表达谱的动力学已使用递归神经网络形式主义进行了建模。借助于所提出的基于量子计算方法的概念,已经实现了对模型参数的相应训练。这是基于纠缠和退相干的概念。量子计算技术在这一研究领域中的应用是相对较新的。使用该技术获得的结果非常令人满意。我们已将其应用于4基因人工遗传网络模型,该模型先前已由其他研究人员进行了研究。而且,已经使用所提出的技术研究了10基因和20基因的遗传网络。获得的结果表明,量子计算技术显着减少了计算时间,将推断的基因调控网络的准确性保持在相对令人满意的水平。

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