VLDB 2026 Research / reviewers in the wild / expert
Tomasz J. Kurowski
dblp:258/2826
· DBLP profile ↗
4ranked-venue papers
1as first author
2since 2021 · last 2026
0000-0002-7733-5808ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Applied, interdisciplinary, general and emerging computing · 4 · 1 first-author · 2 since 2021
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Interdisciplinary, comprehensive, and emerging computing
4 papers |
Bioinformatics and computational biology · 100% | |
| Computer graphics and multimedia
1 paper |
Visualization and visual analytics · 100% |
Topics — the 8 heaviest of 8, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Bioinformatics and computational biology
genomics |
1.9 | 3 | 2026 | Malaria-GENOMAP: a web-based tool for exploring genomic variation of malaria parasites · Bioinform. 2026 Tersect: a set theoretical utility for exploring sequence variant data · Bioinform. 2020 CRAMER: a lightweight, highly customizable web-based genome browser supporting multiple visualization instances · Bioinform. 2020 |
Bioinformatics and computational biology › genomics › genome visualization
genomic variant visualization |
1.0 | 1 | 2026 | Malaria-GENOMAP: a web-based tool for exploring genomic variation of malaria parasites · Bioinform. 2026 |
Bioinformatics and computational biology › sequence analysis › sequence assembly
genome assembly |
0.5 | 1 | 2021 | De novo genome assembly of Solanum sitiens reveals structural variation associated with drought and salinity tolerance · Bioinform. 2021 |
Bioinformatics and computational biology › genomics › genome visualization
genome browser |
0.4 | 1 | 2020 | CRAMER: a lightweight, highly customizable web-based genome browser supporting multiple visualization instances · Bioinform. 2020 |
Visualization and visual analytics
biological data visualization |
0.4 | 1 | 2020 | CRAMER: a lightweight, highly customizable web-based genome browser supporting multiple visualization instances · Bioinform. 2020 |
Visualization and visual analytics › biological data visualization
interactive genome visualization |
0.4 | 1 | 2020 | CRAMER: a lightweight, highly customizable web-based genome browser supporting multiple visualization instances · Bioinform. 2020 |
Bioinformatics and computational biology
comparative genomics |
0.1 | 1 | 2021 | De novo genome assembly of Solanum sitiens reveals structural variation associated with drought and salinity tolerance · Bioinform. 2021 |
Bioinformatics and computational biology › genomics › structural variation
structural variation detection |
0.1 | 1 | 2021 | De novo genome assembly of Solanum sitiens reveals structural variation associated with drought and salinity tolerance · Bioinform. 2021 |
Methods — techniques the papers use, named apart from their topics
web-based visualization · 1.0node.js · 0.9javascript · 0.9MongoDB · 0.9pacbio · 0.5illumina · 0.5hybrid assembly · 0.5set theory operations · 0.4indexing algorithms · 0.4
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Malaria-GENOMAP: a web-based tool for exploring genomic variation of malaria parasitesabstractMOTIVATION: Malaria, caused by Plasmodium parasites, imposes a significant public health burden. While Plasmodium falciparum remains the primary target of elimination strategies due to its high mortality rate, lesser-known species such as P. malariae, P. vivax, and P. knowlesi continue to contribute to substantial human morbidity. Genomic approaches, including whole-genome sequencing, offer powerful tools for understanding the biology, transmission, and emerging drug resistance of these neglected Plasmodium species. However, there is an urgent need for informatic tools to summarize and visualize the high-dimensional and complex genomic data generated. RESULTS: We developed Malaria-GENOMAP, a user-friendly web-based tool, which integrates genomic variant data, such as allele frequencies, with geographical maps and chromosome-wide to gene views for in-depth exploration. The tool includes variation from P. knowlesi (n = 139), P. malariae (n = 158), P. ovale curtisi (n = 36), P. ovale wallikeri (n = 47), P. simium (n = 38), and P. vivax (n = 1359). It enables the investigation of population structure, geographic associations of mutations, and putative drug resistance markers, offering valuable insights for malaria control efforts. AVAILABILITY AND IMPLEMENTATION: Malaria-GENOMAP is available online at https://genomics.lshtm.ac.uk/malaria-genomaps. Joseph Thorpe, Nina Billows, Gabrielle C. Ngwana-Joseph, Amy Ibrahim, Deborah Nolder, Colin J. Sutherland, Thi Hong Ngoc Nguyen, Thi Huong Binh Nguyen, Quang Thieu Nguyen, Jamille G. Dombrowski, Silvia Maria Di Santi, Claudio R. F. Marinho, Jody Phelan, Tomasz J. Kurowski, Fady R. Mohareb, Susana G. Campino, Taane G. Clark |
Bioinform. | 14 |
| 2021 | De novo genome assembly of Solanum sitiens reveals structural variation associated with drought and salinity toleranceabstractMOTIVATION: Solanum sitiens is a self-incompatible wild relative of tomato, characterised by salt and drought resistance traits, with the potential to contribute through breeding programmes to crop improvement in cultivated tomato. This species has a distinct morphology, classification and ecotype compared to other stress resistant wild tomato relatives such as S. pennellii and S. chilense. Therefore, the availability of a reference genome for S. sitiens will facilitate the genetic and molecular understanding of salt and drought resistance. RESULTS: A high-quality de novo genome and transcriptome assembly for S. sitiens (Accession LA1974) has been developed. A hybrid assembly strategy was followed using Illumina short reads (∼159X coverage) and PacBio long reads (∼44X coverage), generating a total of ∼262 Gbp of DNA sequence. A reference genome of 1,245 Mbp, arranged in 1,483 scaffolds with a N50 of 1.826 Mbp was generated. Genome completeness was estimated at 95% using the Benchmarking Universal Single-Copy Orthologs (BUSCO) and the K-mer Analysis Tool (KAT). In addition, ∼63 Gbp of RNA-Seq were generated to support the prediction of 31,164 genes from the assembly, and to perform a de novo transcriptome. Lastly, we identified three large inversions compared to S. lycopersicum, containing several drought resistance related genes, such as beta-amylase 1 and YUCCA7. AVAILABILITY: S. sitiens (LA1974) raw sequencing, transcriptome and genome assembly have been deposited at the NCBI's Sequence Read Archive, under the BioProject number "PRJNA633104".All the commands and scripts necessary to generate the assembly are available at the following github repository: https://github.com/MCorentin/Solanum_sitiens_assembly. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online. Corentin Molitor, Tomasz J. Kurowski, Pedro M. Fidalgo de Almeida, Pramod Eerolla, Daniel J. Spindlow, Sarvesh P. Kashyap, Bijendra Singh, H. C. Prasanna, Andrew J. Thompson, Fady R. Mohareb |
Bioinform. | 2 |
| 2020 | CRAMER: a lightweight, highly customizable web-based genome browser supporting multiple visualization instancesabstractSUMMARY: In recent years, the ability to generate genomic data has increased dramatically along with the demand for easily personalized and customizable genome browsers for effective visualization of diverse types of data. Despite the large number of web-based genome browsers available nowadays, none of the existing tools provides means for creating multiple visualization instances without manual set up on the deployment server side. The Cranfield Genome Browser (CRAMER) is an open-source, lightweight and highly customizable web application for interactive visualization of genomic data. Once deployed, CRAMER supports seamless creation of multiple visualization instances in parallel while allowing users to control and customize multiple tracks. The application is deployed on a Node.js server and is supported by a MongoDB database which stored all customizations made by the users allowing quick navigation between instances. Currently, the browser supports visualizing a large number of file formats for genome annotation, variant calling, reads coverage and gene expression. Additionally, the browser supports direct Javascript coding for personalized tracks, providing a whole new level of customization both functionally and visually. Tracks can be added via direct file upload or processed in real-time via links to files stored remotely on an FTP repository. Furthermore, additional tracks can be added by users via simple drag and drop to an existing visualization instance. AVAILABILITY AND IMPLEMENTATION: CRAMER is implemented in JavaScript and is publicly available on GitHub on https://github.com/FadyMohareb/cramer. The application is released under an MIT licence and can be deployed on any server running Linux or Mac OS. CONTACT: [email protected]. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online. Maria Anastasiadi, E. Bragin, P. Biojoux, Alisha Ahamed, Josephine Burgin, K. de Castro Cogle, Sergio-Llaneza Lago, R. Muvunyi, M. Scislak, I Aktan, Corentin Molitor, Tomasz J. Kurowski, Fady R. Mohareb |
Bioinform. | 12 |
| 2020 | Tersect: a set theoretical utility for exploring sequence variant dataabstractSUMMARY: Comparing genomic features among a large panel of individuals across the same species is considered nowadays a core part of the bioinformatics analyses. This typically involves a series of complex theoretical expressions to compare, intersect, extract symmetric differences between individuals within a large set of genotypes. Several publically available tools are capable of performing such tasks; however, due to the sheer size of variants being queried, such tasks can be computationally expensive with a runtime ranging from few minutes up to several hours depending on the dataset size. This makes existing tools unsuitable for interactive data query or as part of genomic data visualization platforms such as genome browsers. Tersect is a lightweight, high-performance command-line utility which interprets and applies flexible set theoretical expressions to sets of sequence variant data. It can be used both for interactive data exploration and as part of a larger pipeline thanks to its highly optimized storage and indexing algorithms for variant data. AVAILABILITY AND IMPLEMENTATION: Tersect was implemented in C and released under the MIT license. Tersect is freely available at https://github.com/tomkurowski/tersect. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online. Tomasz J. Kurowski, Fady R. Mohareb |
Bioinform. | 1 |