CRAN/E | miRNAss

miRNAss

Genome-Wide Discovery of Pre-miRNAs with few Labeled Examples

Installation

About

Machine learning method specifically designed for pre-miRNA prediction. It takes advantage of unlabeled sequences to improve the prediction rates even when there are just a few positive examples, when the negative examples are unreliable or are not good representatives of its class. Furthermore, the method can automatically search for negative examples if the user is unable to provide them. MiRNAss can find a good boundary to divide the pre-miRNAs from other groups of sequences; it automatically optimizes the threshold that defines the classes boundaries, and thus, it is robust to high class imbalance. Each step of the method is scalable and can handle large volumes of data.

Key Metrics

Version 1.5
Published 2020-10-20 1287 days ago
Needs compilation? yes
License Apache License 2.0
CRAN checks miRNAss results

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Maintainer

Maintainer

Cristian Yones

cyones@sinc.unl.edu.ar

Authors

Cristian Yones

Material

README
NEWS
Reference manual
Package source

Vignettes

miRNAss usage

macOS

r-release

arm64

r-oldrel

arm64

r-release

x86_64

r-oldrel

x86_64

Windows

r-devel

x86_64

r-release

x86_64

r-oldrel

x86_64

Old Sources

miRNAss archive

Imports

Matrix
stats
Rcpp
CORElearn
RSpectra

LinkingTo

Rcpp