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Significant Gene Selection Using Integrated Microarray Data Set with Batch Effect
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  • Significant Gene Selection Using Integrated Microarray Data Set with Batch Effect
  • Significant Gene Selection Using Integrated Microarray Data Set with Batch Effect
저자명
Kim. Ki-Yeol,Chung. Hyun-Cheol,Jeung. Hei-Cheul,Shin. Ji-Hye,Kim. Tae-Soo,Rha. Sun-Young
간행물명
Genomics & informatics
권/호정보
2006년|4권 3호|pp.110-117 (8 pages)
발행정보
한국유전체학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

In microarray technology, many diverse experimental features can cause biases including RNA sources, microarray production or different platforms, diverse sample processing and various experiment protocols. These systematic effects cause a substantial obstacle in the analysis of microarray data. When such data sets derived from different experimental processes were used, the analysis result was almost inconsistent and it is not reliable. Therefore, one of the most pressing challenges in the microarray field is how to combine data that comes from two different groups. As the novel trial to integrate two data sets with batch effect, we simply applied standardization to microarray data before the significant gene selection. In the gene selection step, we used new defined measure that considers the distance between a gene and an ideal gene as well as the between-slide and within-slide variations. Also we discussed the association of biological functions and different expression patterns in selected discriminative gene set. As a result, we could confirm that batch effect was minimized by standardization and the selected genes from the standardized data included various expression pattems and the significant biological functions.