Ritu Kundu

dblp:163/1868 · DBLP profile ↗
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7ranked-venue papers
0as first author
1since 2021 · last 2021
0000-0003-1353-4004ORCID · verified

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Theory of computation · 5 · 1 since 2021Artificial intelligence and machine learning · 1Databases, data management, data science and information retrieval · 1
YearPublicationVenuePosition
2021 Efficient pattern matching in elastic-degenerate strings
Costas S. Iliopoulos, Ritu Kundu, Solon P. Pissis
Inf. Comput.2
2018 Longest Unbordered Factor in Quasilinear Time
abstract
A border u of a word w is a proper factor of w occurring both as a prefix and as a suffix. The maximal unbordered factor of w is the longest factor of w which does not have a border. Here an O(n log n)-time with high probability (or O(n log n log^2 log n)-time deterministic) algorithm to compute the Longest Unbordered Factor Array of w for general alphabets is presented, where n is the length of w. This array specifies the length of the maximal unbordered factor starting at each position of w. This is a major improvement on the running time of the currently best worst-case algorithm working in O(n^{1.5}) time for integer alphabets [Gawrychowski et al., 2015].
Tomasz Kociumaka, Ritu Kundu, Manal Mohamed 0001, Solon P. Pissis
ISAAC2
2017 Efficient Pattern Matching in Elastic-Degenerate Texts
Costas S. Iliopoulos, Ritu Kundu, Solon P. Pissis
LATA2
2016 Near-Optimal Computation of Runs over General Alphabet via Non-Crossing LCE Queries
Maxime Crochemore, Costas S. Iliopoulos, Tomasz Kociumaka, Ritu Kundu, Solon P. Pissis, Jakub Radoszewski, Wojciech Rytter, Tomasz Walen
SPIRE4
2016 Linear algorithm for conservative degenerate pattern matching
Maxime Crochemore, Costas S. Iliopoulos, Ritu Kundu, Manal Mohamed 0001, Fatima Vayani
Eng. Appl. Artif. Intell.3
2016 Linear-time superbubble identification algorithm for genome assembly
abstract
DNA sequencing is the process of determining the exact order of the nucleotide bases of an individual's genome in order to catalogue sequence variation and understand its biological implications. Whole-genome sequencing techniques produce masses of data in the form of short sequences known as reads. Assembling these reads into a whole genome constitutes a major algorithmic challenge. Most assembly algorithms utilise de Bruijn graphs constructed from reads for this purpose. A critical step of these algorithms is to detect typical motif structures in the graph caused by sequencing errors and genome repeats, and filter them out; one such complex subgraph class is a so-called superbubble. In this paper, we propose an O(n+m)-time algorithm to detect all superbubbles in a directed acyclic graph with n vertices and m (directed) edges, improving the best-known O(mlog⁡m)-time algorithm by Sung et al.
Ljiljana Brankovic, Costas S. Iliopoulos, Ritu Kundu, Manal Mohamed 0001, Solon P. Pissis, Fatima Vayani
Theor. Comput. Sci.3
2015 Accurate and Efficient Methods to Improve Multiple Circular Sequence Alignment
Carl Barton, Costas S. Iliopoulos, Ritu Kundu, Solon P. Pissis, Ahmad Retha, Fatima Vayani
SEA3