DocumentCode :
1775349
Title :
IMDE: An easy-to-use web server for missing data estimation
Author :
Chia-Chun Chiu ; Wei-Sheng Wu
Author_Institution :
Dept. of Electr. Eng., Nat. Cheng Kung Univ. Univ., Tainan, Taiwan
fYear :
2014
fDate :
18-20 June 2014
Firstpage :
511
Lastpage :
514
Abstract :
Missing value imputation is crucial for the microarray data analysis since the missing values would degrade the performance of the downstream analysis, e.g. differentially expressed genes identification, gene clustering or classification. Although many missing value imputation algorithms has been proposed, convenient software tools are still lacking. The existing tools are not easy to use and cannot tell users how to choose the optimal imputation algorithm for their dataset. In this paper, we present an easy-to-use web server named IMDE (Impute Missing Data Easily). IMDE has two unique features. First, it provides much more missing value imputation algorithms than any existing tool. Second, it can suggest the optimal imputation algorithm for users´ dataset after doing the performance evaluation.We used four different datasets to show that different optimal algorithms may be chosen for different datasets and for different selection schemes. We expect that IMDE will be a very useful server for solving the missing value problem in the microarray data.
Keywords :
Internet; biology computing; data analysis; file servers; genetics; pattern classification; pattern clustering; IMDE; Web server; differentially expressed genes identification; downstream analysis; gene classification; gene clustering; impute missing data easily; microarray data analysis; missing data estimation; missing value imputation; optimal imputation algorithm; performance evaluation; software tools; Algorithm design and analysis; Bioinformatics; DNA; Estimation; Gene expression; Performance evaluation; Web servers;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control & Automation (ICCA), 11th IEEE International Conference on
Conference_Location :
Taichung
Type :
conf
DOI :
10.1109/ICCA.2014.6870971
Filename :
6870971
Link To Document :
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