Logistic Regression for Fuzzy Covariates: Modeling, Inference, and Applications
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作者:
Salmani, Fatemeh
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Shahid Beheshti Univ Med Sci, Dept Biostat, Fac Paramed Sci, Tehran, IranShahid Beheshti Univ Med Sci, Dept Biostat, Fac Paramed Sci, Tehran, Iran
Salmani, Fatemeh
[1
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Taheri, S. Mahmoud
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Univ Tehran, Coll Engn, Fac Engn Sci, Tehran, IranShahid Beheshti Univ Med Sci, Dept Biostat, Fac Paramed Sci, Tehran, Iran
Taheri, S. Mahmoud
[2
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Yoon, Jin Hee
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Sejong Univ, Sch Math & Stat, Seoul, South KoreaShahid Beheshti Univ Med Sci, Dept Biostat, Fac Paramed Sci, Tehran, Iran
Yoon, Jin Hee
[3
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Abadi, Alireza
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Shahid Beheshti Univ Med Sci, Social Determinants Hlth Res Ctr, Dept Community Med, Fac Med, Tehran, IranShahid Beheshti Univ Med Sci, Dept Biostat, Fac Paramed Sci, Tehran, Iran
Abadi, Alireza
[4
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Majd, Hamid Alavi
[1
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Abbaszadeh, Abbas
[5
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机构:
[1] Shahid Beheshti Univ Med Sci, Dept Biostat, Fac Paramed Sci, Tehran, Iran
[2] Univ Tehran, Coll Engn, Fac Engn Sci, Tehran, Iran
[3] Sejong Univ, Sch Math & Stat, Seoul, South Korea
[4] Shahid Beheshti Univ Med Sci, Social Determinants Hlth Res Ctr, Dept Community Med, Fac Med, Tehran, Iran
Logistic regression is an important tool to evaluate the functional relationship between a binary response variable and a set of predictors. However, in clinical studies, often there is insufficient precision or indefiniteness of state. Therefore, we need to explore some soft methods for inference when the variables are reported as imprecise quantities. In this regard, we propose a fuzzy regression model with fuzzy covariates for imprecise binary-based response. We apply a least-squares method to estimate the model parameters and a bootstrap method for both computing confidence intervals and testing the hypotheses for the model parameters. The proposed model is then applied for verification to a numerical example based on a real clinical study of the effect of beloved person's voice on reducing patient pain during the chest tube removal after an open heart surgery. Finally, the proposed model is evaluated by a well-known goodness-of-fit index.
机构:
Shenzhen Technol Univ, Coll Big Data & Internet, Shenzhen, Peoples R ChinaShenzhen Technol Univ, Coll Big Data & Internet, Shenzhen, Peoples R China
Cao, Zhiqiang
Wong, Man Yu
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Hong Kong Univ Sci & Technol, Dept Math, Hong Kong, Peoples R ChinaShenzhen Technol Univ, Coll Big Data & Internet, Shenzhen, Peoples R China
Wong, Man Yu
Cheng, Garvin H. L.
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Hong Kong Univ Sci & Technol, Dept Math, Hong Kong, Peoples R ChinaShenzhen Technol Univ, Coll Big Data & Internet, Shenzhen, Peoples R China