Literature DB >> 25564182

Prediction of protein subcellular localization by incorporating multiobjective PSO-based feature subset selection into the general form of Chou's PseAAC.

Monalisa Mandal1, Anirban Mukhopadhyay, Ujjwal Maulik.   

Abstract

In this article, the possible subcellular location of a protein is predicted using multiobjective particle swarm optimization-based feature selection technique. In general form of pseudo-amino acid composition, the protein sequences are used for constructing protein features. Here, the different amino acids compositions are used to construct the feature sets. Therefore, the data are presented as sample of protein versus amino acid compositions as features. The proposed algorithm tries to maximize the feature relevance and minimize the feature redundancy simultaneously. After proposed algorithm is executed on the multiclass dataset, some features are selected. On this resultant feature subset, tenfold cross-validation is applied and corresponding accuracy, F score, entropy, representation entropy and average correlation are calculated. The performance of the proposed method is compared with that of its single objective versions, sequential forward search, sequential backward search, minimum redundancy maximum relevance with two schemes, CFS, CBFS, [Formula: see text], Fisher discriminant and a Cluster-based technique.

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Year:  2015        PMID: 25564182     DOI: 10.1007/s11517-014-1238-7

Source DB:  PubMed          Journal:  Med Biol Eng Comput        ISSN: 0140-0118            Impact factor:   2.602


  32 in total

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  13 in total

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Review 4.  Some illuminating remarks on molecular genetics and genomics as well as drug development.

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5.  Self-evoluting framework of deep convolutional neural network for multilocus protein subcellular localization.

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6.  Multiple Protein Subcellular Locations Prediction Based on Deep Convolutional Neural Networks with Self-Attention Mechanism.

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8.  Prediction of Metal Ion Binding Sites in Proteins from Amino Acid Sequences by Using Simplified Amino Acid Alphabets and Random Forest Model.

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9.  Predicting Presynaptic and Postsynaptic Neurotoxins by Developing Feature Selection Technique.

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10.  Protein Sub-Nuclear Localization Based on Effective Fusion Representations and Dimension Reduction Algorithm LDA.

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Journal:  Int J Mol Sci       Date:  2015-12-19       Impact factor: 5.923

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