Residual Neural Network for Predicting Super-enhancers on Genome Scale

dc.contributor.authorSabba, Sara
dc.contributor.authorHamrelaine, Amina
dc.contributor.authorSmara, Maroua
dc.contributor.authorBenhacine, Mehdi
dc.date.accessioned2022-04-14T11:35:40Z
dc.date.available2022-04-14T11:35:40Z
dc.date.issued2022-01-24
dc.descriptionForum Intervention of Artificial Intelligence and Its Applications. Faculty of Exat science. University of Eloueden_US
dc.description.abstractResidual neural network (ResNet) is a Deep Learning model introduced by He et al. [13] in 2015 to enhance traditional Convolutional neural networks for computer vision problems. It uses skip connections over some layer blocks to avoid vanishing gradient problem. Currently, many researches are focused to test and prove the efficiency of the ResNet on different domains such as genomics. In this paper, we propose a new ResNet model for predicting super-enhancers on genome scale. In fact, the prediction of super-enhancers (SEs) has prominent roles in biological and pathological processes; especially that related to the detection and progression of tumors. The obtained results are very promising and they proved the performance of our proposal compared to the CNN results.en_US
dc.identifier.citationSabba, Sara • Hamrelaine, Amina • Smara, Maroua • Benhacine, Mehdi. Residual Neural Network for Predicting Super-enhancers on Genome Scale. Forum of Artificial Intelligence and Its Applications. 24-26 Jan 2022. Faculty of Exat science. University of Eloued. [visited in ../../….]. available from [copy the link here]en_US
dc.identifier.urihttps://dspace.univ-eloued.dz/handle/123456789/10835
dc.language.isoenen_US
dc.publisherUniversity of Eloued جامعة الواديen_US
dc.subjectDeep Learning · Residual Neural Network · Convolutional Neural Network · Bioinformatics · Transcriptional dysregulation · Super-Enhancers · Oncogene · Canceren_US
dc.titleResidual Neural Network for Predicting Super-enhancers on Genome Scaleen_US
dc.typeOtheren_US

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