2018
DOI: 10.1007/s11277-018-5909-9
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A Survey on Long Term Evolution Scheduling in Data Mining

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Cited by 5 publications
(2 citation statements)
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“…Although feature selection is a good technique to improve clustering effectiveness and to reduce its processing time, it may suppress some relevant system information owing to its characteristics. However, if feature selection is ignored and too much information is included, this may cause the clustering algorithm to perform poorly owing to the curse of dimensionality .…”
Section: Introductionmentioning
confidence: 99%
“…Although feature selection is a good technique to improve clustering effectiveness and to reduce its processing time, it may suppress some relevant system information owing to its characteristics. However, if feature selection is ignored and too much information is included, this may cause the clustering algorithm to perform poorly owing to the curse of dimensionality .…”
Section: Introductionmentioning
confidence: 99%
“…Para reduzir a quantidade de características, recorre-se muitas vezes ao procedimento de seleção de características ou feature selection (Seção 4.2.1), assim como realizado em [21][22][23][24] e [28], por exemplo, em que elegem-se as características mais importantes para o modelo e problema analisados. A seleção de característicasé bastante conveniente para melhorar a eficiência do clustering e também para reduzir seu tempo de processamento [44]. Entretanto, embora os diferentes tipos de seleção de características disponíveis sejam sempre orientados ao modelo empregado [45], eles podem suprimir informações relevantes para o algoritmo de Aprendizado de Máquina [46], restringindo a capacidade do CBRA.…”
Section: Definição Do Problemaunclassified