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- W2903650147 abstract "Feature selection is widely used to overcome the problems caused by the curse of dimensionality, since it reduces data dimensionality by removing irrelevant and redundant features from a dataset. Moreover, it is an important pre-processing step usually mandatory in text mining tasks using Machine Learning techniques. In this paper, we propose a new feature selection method for text classification, named Statera, that selects a subset of features that guarantees the representativeness of all classes from a domain in a balanced way, and calculates such degree of representativeness based on information retrieval measures. We demonstrate the effectiveness of our method conducting experiments on nine real document collections. The result shows that the proposed approach can outperform state-of-art feature selection methods, achieving good classification results even with a very small number of features." @default.
- W2903650147 created "2018-12-22" @default.
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- W2903650147 date "2018-10-01" @default.
- W2903650147 modified "2023-10-16" @default.
- W2903650147 title "Statera: A Balanced Feature Selection Method for Text Classification" @default.
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- W2903650147 doi "https://doi.org/10.1109/bracis.2018.00052" @default.
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