Path: Top -> Journal -> Telkomnika -> 2017 -> Vol.15, No.2, June

Prediction of Bioprocess Production Using Deep Neural Network Method

Journal from gdlhub / 2017-08-15 11:21:43
Oleh : Amirah Baharin, Afnizanfaizal Abdullah, Siti Noorain Mohmad Yousoff, Telkomnika
Dibuat : 2017-06-12, dengan 1 file

Keyword : deep learning, deep neural network, bioprocess production, metabolic engineering, gene deletion
Url : http://journal.uad.ac.id/index.php/TELKOMNIKA/article/view/6124
Sumber pengambilan dokumen : web

Deep learning enhanced the state-of-the-art methods in genomics allows it to be used in analysing the biological data with high prediction. The training process of neural network with several hidden layers which has been facilitated by deep learning has been subjected into increased interest in achieving remarkable results in various fields. Thus, the extraction of bioprocess production can be implemented by pathway prediction in genomic metabolic network in eschericia coli. As metabolic engineering involves the manipulation of genes which have the potential to increase the yield of metabolite production. A mathematical model of this network is the foundation for the development of computational procedure that directs genetic manipulations that would eventually lead to optimized bioprocess production. Due to the ability of deep learning to be well suited in terms of genomics, modelling for biological network can be implemented. Each layer reveal the insight of biological network which enable pathway analysis to be implemented in order to extract the target bioprocess production. In this study, deep neural network has been to identify any set of gene deletion models that offers optimal results in xylitol production and its growth yield.

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PropertiNilai Properti
ID Publishergdlhub
OrganisasiTelkomnika
Nama KontakHerti Yani, S.Kom
AlamatJln. Jenderal Sudirman
KotaJambi
DaerahJambi
NegaraIndonesia
Telepon0741-35095
Fax0741-35093
E-mail Administratorelibrarystikom@gmail.com
E-mail CKOelibrarystikom@gmail.com

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