期刊
GENOMICS
卷 111, 期 3, 页码 457-464出版社
ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.ygeno.2018.03.003
关键词
Recombination hotspots; Property matrix; Diversity function; Support vector machine
资金
- National Natural Science Foundation of China [61602100]
- Natural Science Foundation of Hebei Province [F2016407082]
- Youth Foundation of Hebei Educational Committee [QN2015131]
- Doctoral Foundation of Northeastern University at Qinhuangdao [XNB201613]
Recombination spot identification plays an important role in revealing genome evolution and developing DNA function study. Although some computational methods have been proposed, extracting discriminatory information embedded in DNA properties has not received enough attention. The DNA properties include dinucleotide flexibility, structure and thermodynamic parameter, which are significant for genome evolution research. To explore the potential effect of DNA properties, a novel feature extraction method, called iRSpot-PDI, is proposed. A wrapper feature selection method with the best first search is used to identify the best feature set. To verify the effectiveness of the proposed method, support vector machine is employed on the obtained features. Prediction results are reported on two benchmark datasets. Compared with the recently reported methods, iRSpot-PDI achieves the highest values of individual specificity, Matthew's correlation coefficient and overall accuracy. The experimental results confirm that iRSpot-PDI is effective for accurate identification of recombination spots. The datasets can be downloaded from the following URL: http://stxy.neuq.edu.cn/info/ 1095/1157.htm.
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