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Information Fusion for Biological Prediction

並列摘要


Information fusion has become a powerful tool for challenging applications such as biological prediction problems. In this paper, we apply a new information-theoretical fusion technique to HIV-1 protease cleavage site prediction, which is a problem that has been in the focus of much interest and investigation of the machine learning community recently. It poses a difficult classification task due to its high dimensional feature space and a relatively small set of available training patterns. We also apply a new set of biophysical features to this problem and present experiments with neural networks, support vector machines, and decision trees. Application of our feature set results in high recognition rates and concise decision trees, producing manageable rule sets that can guide future experiments. In particular, we found a combination of neural networks and support vector machines to be beneficial for this problem.

被引用紀錄


Chang, P. S. (2014). Numerical methods for 1D strongly correlated system [master's thesis, National Tsing Hua University]. Airiti Library. https://doi.org/10.6843/NTHU.2014.00384
黃鈺婷(2012)。評估台灣簽署反仿冒貿易協定之必要性-從法制面切入〔碩士論文,國立清華大學〕。華藝線上圖書館。https://doi.org/10.6843/NTHU.2012.00429
Liang, S. H. (2006). 應用在燃料電池的甲醇濃度感測方法研究 [doctoral dissertation, National Tsing Hua University]. Airiti Library. https://doi.org/10.6843/NTHU.2006.00557
Wu, H. L. (2013). 一個基於車載隨意行動網路之行車導航系統的分析 [master's thesis, National Chiao Tung University]. Airiti Library. https://doi.org/10.6842/NCTU.2013.00365
Hsieh, C. T. (2007). 圖的有向路徑覆蓋 [master's thesis, National Chiao Tung University]. Airiti Library. https://doi.org/10.6842/NCTU.2007.00002

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