HECIL: A Hybrid Error Correction Algorithm for Long Reads with Iterative Learning.

Journal: Scientific reports
PMID:

Abstract

Second-generation DNA sequencing techniques generate short reads that can result in fragmented genome assemblies. Third-generation sequencing platforms mitigate this limitation by producing longer reads that span across complex and repetitive regions. However, the usefulness of such long reads is limited because of high sequencing error rates. To exploit the full potential of these longer reads, it is imperative to correct the underlying errors. We propose HECIL-Hybrid Error Correction with Iterative Learning-a hybrid error correction framework that determines a correction policy for erroneous long reads, based on optimal combinations of decision weights obtained from short read alignments. We demonstrate that HECIL outperforms state-of-the-art error correction algorithms for an overwhelming majority of evaluation metrics on diverse, real-world data sets including E. coli, S. cerevisiae, and the malaria vector mosquito A. funestus. Additionally, we provide an optional avenue of improving the performance of HECIL's core algorithm by introducing an iterative learning paradigm that enhances the correction policy at each iteration by incorporating knowledge gathered from previous iterations via data-driven confidence metrics assigned to prior corrections.

Authors

  • Olivia Choudhury
    Postdoctoral Researcher, IBM Research, Cambridge, MA, 02142, USA. olivia.choudhury1@ibm.com.
  • Ankush Chakrabarty
    Visiting Research Scientist, Mitsubishi Electric Research Laboratories, Cambridge, MA, 02139, USA.
  • Scott J Emrich
    Associate Professor, Department of Electrical Engineering and Computer Science, University of Tennessee, Knoxville, TN, 37996, USA.