A chaotic viewpoint-based approach to solve haplotype assembly using hypergraph model

Abstract: Decreasing the cost of high-throughput DNA sequencing technologies, provides a huge amount of data that enables researchers to determine haplotypes for diploid and polyploid organisms. Although various methods have been developed to reconstruct haplotypes in diploid form, their accuracy is still a challenging task. Also, most of the current methods cannot be applied to polyploid form. In this paper, an iterative method is proposed, which employs hypergraph to reconstruct haplotype. The proposed method by utilizing chaotic viewpoint can enhance the obtained haplotypes. For this purpose, a haplotype set was randomly generated as an initial estimate, and its consistency with the input fragments was described by constructing a weighted hypergraph. Partitioning the hypergraph specifies those positions in the haplotype set that need to be corrected. This procedure is repeated until no further improvement could be achieved. Each element of the finalized haplotype set is mapped to a line by chaos game representation, and a coordinate series is defined based on the position of mapped points. Then, some positions with low qualities can be assessed by applying a local projection. Experimental results on both simulated and real datasets demonstrate that this method outperforms most other approaches, and is promising to perform the haplotype assembly

Location
Deutsche Nationalbibliothek Frankfurt am Main
Extent
Online-Ressource
Language
Englisch
Notes
PLOS ONE. - 15, 10 (2020) , e0241291, ISSN: 1932-6203

Event
Veröffentlichung
(where)
Freiburg
(who)
Universität
(when)
2024
Creator
Olyaee, Mohammad Hossein
Khanteymoori, Alireza
Khalifeh, Khosrow

DOI
10.1371/journal.pone.0241291
URN
urn:nbn:de:bsz:25-freidok-2600149
Rights
Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
Last update
15.08.2025, 7:22 AM CEST

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Associated

  • Olyaee, Mohammad Hossein
  • Khanteymoori, Alireza
  • Khalifeh, Khosrow
  • Universität

Time of origin

  • 2024

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