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[김경화 연구정보]

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New index for the gifted students(G-Index) with EEG analysis [2005.3.29]
이름 김경화
첨부파일 해당 글에 첨부파일이 없습니다.

New index for the gifted students(G-Index) with EEG analysis

Kyung-Hwa Kim*, Kyu-Han Kim*, Sun-Kil Lee*, Myung Hur*, Yong-Jin Kim**
Ewha Womans University*, **Seowon University

 

ABSTRACT

In this study we investigated the adequacy of tools for distinction gifted students through the comparison these mutual relation on the basis of data, like paper test, the depths interview score, and the rest data((TTCT: Torrance Tests of Creative Thinking, IQ test, FASP: Find A Shape Puzzle, V.T: Visualization Tests and Exp: experimental ability test), and analysis data of EEG test for examining the adequacy of tools for identification gifted students. So, we developed Brain Wave gifted Index(G-Index) for finding another distinction ability as using brain waves data. The standard of index development use gifted brain characteristic in closed-eyes rest state which is judged like that characteristic of distinction between gifted and normal students is the most clear and consistence. That is, the degree of unified pattern between each object and gifted PCA pattern was defined by Pearson method which added spatial mutual index to weight concept. This refer to mean number of spatial PCA pattern. Searching for the possibility of distinction gifted gave distinction effect in 76%. The result of regression analysis on the basis of mutual relation between the rest data is <Logit(gifted or normal)=-57.510+ (-.018)TTCT+ (.057)IQ+ (1.916)FASP+ (.682)V.T+ (.088) experiment+ (.034)G-Index>. The probability formula for distinct gifted group is as follow.

P=

The result of this calculation showed that probability for distinct in gifted group was very good(95.0%). On the basis of upper result, tools for identification gifted students should be estimated as using many-sided estimation data whatever possible. And following study about development, and operation of tools for distinction suitable to gifted student in science should be progressed.

Key words :
Science Gifted Education, Identification data, EEG, multiple regression analysis, G-Index

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