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PHRP : Osong Public Health and Research Perspectives

OPEN ACCESS. pISSN: 2210-9099. eISSN: 2233-6052

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"Maryam Farhadian"

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"Maryam Farhadian"

Original Article
Predicting 5-Year Survival Status of Patients with Breast Cancer based on Supervised Wavelet Method
Maryam Farhadian, Hossein Mahjub, Jalal Poorolajal, Abbas Moghimbeigi, Muharram Mansoorizadeh
Osong Public Health Res Perspect 2014;5(6):324-332.
Published online December 31, 2014
DOI: https://doi.org/10.1016/j.phrp.2014.09.002
Objectives
Classification of breast cancer patients into different risk classes is very important in clinical applications. It is estimated that the advent of high-dimensional gene expression data could improve patient classification. In this study, a new method for transforming the high-dimensional gene expression data in a low-dimensional space based on wavelet transform (WT) is presented.
Methods
The proposed method was applied to three publicly available microarray data sets. After dimensionality reduction using supervised wavelet, a predictive support vector machine (SVM) model was built upon the reduced dimensional space. In addition, the proposed method was compared with the supervised principal component analysis (PCA).
Results
The performance of supervised wavelet and supervised PCA based on selected genes were better than the signature genes identified in the other studies. Furthermore, the supervised wavelet method generally performed better than the supervised PCA for predicting the 5-year survival status of patients with breast cancer based on microarray data. In addition, the proposed method had a relatively acceptable performance compared with the other studies.
Conclusion
The results suggest the possibility of developing a new tool using wavelets for the dimension reduction of microarray data sets in the classification framework.

Citations

Citations to this article as recorded by  Crossref logo
  • Role of machine learning in molecular pathology for breast cancer: A review on gene expression profiling and RNA sequencing application
    Sahar Rezaei, Zeinab Hamedani, Kousar Ahmadi, Parna Ghannadikhosh, Alireza Motamedi, Maedeh Athari, Hengameh Yousefi, Amir Hossein Rajabi, Alireza Abbasi, Hossein Arabi
    Critical Reviews in Oncology/Hematology.2025; 213: 104780.     CrossRef
  • Diagnosing thyroid disorders: Comparison of logistic regression and neural network models
    Shiva Borzouei, Hossein Mahjub, NegarAsaad Sajadi, Maryam Farhadian
    Journal of Family Medicine and Primary Care.2020; 9(3): 1470.     CrossRef
  • Thyroid disorder diagnosis based on Mamdani fuzzy inference system classifier
    Negar Asaad Sajadi, Hossein Mahjub, Shiva Borzouei, Maryam Farhadian
    Koomesh Journal.2020; 22(1): 107.     CrossRef
  • Diagnosis of hypothyroidism using a fuzzy rule-based expert system
    Negar Asaad Sajadi, Shiva Borzouei, Hossein Mahjub, Maryam Farhadian
    Clinical Epidemiology and Global Health.2019; 7(4): 519.     CrossRef
  • WaveICA: A novel algorithm to remove batch effects for large-scale untargeted metabolomics data based on wavelet analysis
    Kui Deng, Fan Zhang, Qilong Tan, Yue Huang, Wei Song, Zhiwei Rong, Zheng-Jiang Zhu, Kang Li, Zhenzi Li
    Analytica Chimica Acta.2019; 1061: 60.     CrossRef
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