High-throughput experimental technologies are generating increasingly massive and complex genomic data sets. The sheer enormity and heterogeneity of these data threaten to make the arising problems computationally infeasible. Fortunately, powerful algorithmic techniques lead to software that can answer important biomedical questions in practice. In this Review, we sample the algorithmic landscape, focusing on state-of-the-art techniques, the understanding of which will aid the bench biologist in analysing omics data. We spotlight specific examples that have facilitated and enriched analyses of sequence, transcriptomic and network data sets
In this paper, we discuss data sets that are being generated by microarray technology, which makes i...
This course is offered to both undergraduates and graduates. The undergraduate version of the course...
Multi-omics, variously called integrated omics, pan-omics, and trans-omics, aims to combine two or m...
High-throughput experimental technologies are generating increasingly massive and complex genomic da...
High-throughput experimental technologies are generating increasingly massive and complex genomic da...
International audienceNowadays, generating omics data is a common activity for laboratories in biolo...
Revolutionary improvements in high-throughput technologies, also called 'omics' technologies, enable...
High-throughput technologies are now widely used in the life sciences field and are producing ever-i...
Our understanding of biology has undergone a revolution in the past 20 years, driven by our ability ...
The world of Computational Biology and Bioinformatics presently integrates many different expertise,...
Multiple Omics datasets (for example, high throughput mRNA and protein measurements for the same set...
With the great progress of technology in genomics and proteomics generating an exponentially increas...
The rise of Big Data has enabled sophisticated analysis of the human genome in unprecedented detail....
Recent advances in sequencing and synthesis technologies have sparked extraordinary growth in large-...
Abstract In light of recent advances in biomedical computing, big data science, and p...
In this paper, we discuss data sets that are being generated by microarray technology, which makes i...
This course is offered to both undergraduates and graduates. The undergraduate version of the course...
Multi-omics, variously called integrated omics, pan-omics, and trans-omics, aims to combine two or m...
High-throughput experimental technologies are generating increasingly massive and complex genomic da...
High-throughput experimental technologies are generating increasingly massive and complex genomic da...
International audienceNowadays, generating omics data is a common activity for laboratories in biolo...
Revolutionary improvements in high-throughput technologies, also called 'omics' technologies, enable...
High-throughput technologies are now widely used in the life sciences field and are producing ever-i...
Our understanding of biology has undergone a revolution in the past 20 years, driven by our ability ...
The world of Computational Biology and Bioinformatics presently integrates many different expertise,...
Multiple Omics datasets (for example, high throughput mRNA and protein measurements for the same set...
With the great progress of technology in genomics and proteomics generating an exponentially increas...
The rise of Big Data has enabled sophisticated analysis of the human genome in unprecedented detail....
Recent advances in sequencing and synthesis technologies have sparked extraordinary growth in large-...
Abstract In light of recent advances in biomedical computing, big data science, and p...
In this paper, we discuss data sets that are being generated by microarray technology, which makes i...
This course is offered to both undergraduates and graduates. The undergraduate version of the course...
Multi-omics, variously called integrated omics, pan-omics, and trans-omics, aims to combine two or m...