로치오 알고리즘에 기초한 통제어휘 자동색인 또는 텍스트 범주화에서 적용되어 온 여러 성능 요인들을 재검토하였고, 성능 향상을 위한 기본적인 방법을 찾아보았다. 또한, 동등한 조건에서 통제어휘 자동색인을 위한 로치오 알고리즘 기반 방법의 성능을 다른 학습기반 방법들의 성능과 비교하였다. 결과에 따르면, 통제어휘 자동색인을 위한 로치오 기반의 프로파일 방법은 구현의 용이성과 컴퓨터 처리시간 측면의 경제성이라는 기존의 장점을 그대로 유지하면서도, 다른 학습기반 방법들(SVM, VPT, NB)과 거의 동등하거나 더 나은 성능을 보여주었다. 특히, 색인전문가의 색인작업을 지원하는 반-자동 색인의 목적으로는 비교적 높은 수준의 재현율을 유지하면서 학습 데이터의 증가에 따라 정확률이 크게 향상되는 로치오 알고리즘을 이용한 방법을 우선적으로 고려할 수 있을 것이다.
Several performance factors which have applied to the automatic indexing with controlled vocabulary and text categorization based on Rocchio algorithm were examined, and the simple method for performance improvement of them were tried. Also, results of the methods using Rocchio algorithm were compared with those of other learning based methods on the same conditions. As a result, keeping with the strong points which are implementational easiness and computational efficiency, the methods based Rocchio algorithms showed equivalent or better results than other learning based methods(SVM, VPT, NB). Especially, for the semi-automatic indexing(computer-aided indexing), the methods using Rocchio algorithm with a high recall level could be used preferentially.
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