Literature DB >> 25796587

The application of data mining techniques to oral cancer prognosis.

Wan-Ting Tseng1, Wei-Fan Chiang, Shyun-Yeu Liu, Jinsheng Roan, Chun-Nan Lin.   

Abstract

This study adopted an integrated procedure that combines the clustering and classification features of data mining technology to determine the differences between the symptoms shown in past cases where patients died from or survived oral cancer. Two data mining tools, namely decision tree and artificial neural network, were used to analyze the historical cases of oral cancer, and their performance was compared with that of logistic regression, the popular statistical analysis tool. Both decision tree and artificial neural network models showed superiority to the traditional statistical model. However, as to clinician, the trees created by the decision tree models are relatively easier to interpret compared to that of the artificial neural network models. Cluster analysis also discovers that those stage 4 patients whose also possess the following four characteristics are having an extremely low survival rate: pN is N2b, level of RLNM is level I-III, AJCC-T is T4, and cells mutate situation (G) is moderate.

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Year:  2015        PMID: 25796587     DOI: 10.1007/s10916-015-0241-3

Source DB:  PubMed          Journal:  J Med Syst        ISSN: 0148-5598            Impact factor:   4.460


  12 in total

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Review 8.  Prognostic and predictive factors in oral cancer: the role of the invasive tumour front.

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Review 6.  Deep Learning in Head and Neck Tumor Multiomics Diagnosis and Analysis: Review of the Literature.

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7.  Machine learning based tissue analysis reveals Brachyury has a diagnosis value in breast cancer.

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Review 9.  Application and Performance of Artificial Intelligence Technology in Oral Cancer Diagnosis and Prediction of Prognosis: A Systematic Review.

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  10 in total

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