bioRxiv · 10.1101/2022.10.24.513498
DeepSelectNet: Deep Neural Network Based Selective Sequencing for Oxford Nanopore Sequencing
Abstract
BackgroundNanopore sequencing allows selective sequencing, the ability to programmatically reject unwanted reads in a sample. Selective sequencing has many present and future applications in genomics research and the classification of species from a pool of species is an example. Existing methods for selective sequencing for species classification are still immature and the accuracy highly varies depending on the datasets. For the five datasets we tested, the accuracy of existing methods varied in the range of ~77%-97% (average accuracy <89%). Here we present DeepSelectNet, an accurate deep-learning-based method that can directly classify nanopore current signals belonging to a particular species. DeepSelectNet utilizes novel data preprocessing techniques and improved neural network architecture for regularization. ResultsFor the five datasets tested, DeepSelectNets accuracy varied between ~91%-99% (average accuracy ~95%). At its best performance, DeepSelectNet achieved a nearly 12% accuracy increase compared to its deep learning-based predecessor SquiggleNet. Furthermore, precision and recall evaluated for DeepSelectNet on average were always >89% (average ~95%). In terms of execution performance, DeepSelectNet outperformed SquiggleNet by ~13% on average. Thus, DeepSelectNet is a practically viable method to improve the effectiveness of selective sequencing. ConclusionsCompared to base alignment and deep learning predecessors, DeepSelectNet can significantly improve the accuracy to enable real-time species classification using selective sequencing. The source code of DeepSelectNet is available at https://github.com/AnjanaSenanayake/DeepSelectNet.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Senanayake, A., Gamaarachchi, H., Herath, D., Ragel, R.. 2022-10-25. DeepSelectNet: Deep Neural Network Based Selective Sequencing for Oxford Nanopore Sequencing. https://doi.org/10.1101/2022.10.24.513498
Cite the original work for its findings. Save a collection to share your selection of sources.