نتایج جستجو برای: Logistic Regression (LR)

تعداد نتایج: 337462  

Journal: :iranian journal of applied language studies 2012
mohammad salehi alireza tayebi

validation is an important enterprise especially when a test is a high stakes one. demographic variables like gender and field of study can affect test results and interpretations. differential item functioning (dif) is a way to make sure that a test does not favor one group of test takers over the others. this study investigated dif in terms of gender in the reading comprehension subtest (35 i...

2008
Michal Shimoni Dirk Borghys

Due to the low information content of individual SAR images, single-band SAR data do not provide highly accurate land cover classification. However, in areas under risk where rapid land cover mapping is required, the advantages of SAR which include cloud penetration and day/night acquisition, are evident in comparison to optical data. The main research goal of this study is to fuse different fr...

2016
You Zhu Chi Xie Bo Sun Gang-Jin Wang Xin-Guo Yan

Based on logistic regression (LR) and artificial neural network (ANN) methods, we construct an LR model, an ANN model and three types of a two-stage hybrid model. The two-stage hybrid model is integrated by the LR and ANN approaches. We predict the credit risk of China’s small and medium-sized enterprises (SMEs) for financial institutions (FIs) in the supply chain financing (SCF) by applying th...

2012
Phuc Xuan

In this paper, we extend the traditional logistic regression model(LR) to the bounded logistic regression model(BLR) and compare them. We also derive the update rules of both model using stochastic gradient desent(SGD). The effects of choosing different learning rate schedule, stopping conditions, parameters initialization and learning algorithm settings are also discussed. We get the accuracy ...

2015
Honggang Yi Hongmei Wo Yang Zhao Ruyang Zhang Junchen Dai Guangfu Jin Hongxia Ma Tangchun Wu Zhibin Hu Dongxin Lin Hongbing Shen Feng Chen

With recent advances in biotechnology, genome-wide association study (GWAS) has been widely used to identify genetic variants that underlie human complex diseases and traits. In case-control GWAS, typical statistical strategy is traditional logistical regression (LR) based on single-locus analysis. However, such a single-locus analysis leads to the well-known multiplicity problem, with a risk o...

Journal: :Journal of Korean Academy of Nursing 2013
Hyeoun Ae Park

PURPOSE The purpose of this article is twofold: 1) introducing logistic regression (LR), a multivariable method for modeling the relationship between multiple independent variables and a categorical dependent variable, and 2) examining use and reporting of LR in the nursing literature. METHODS Text books on LR and research articles employing LR as main statistical analysis were reviewed. Twen...

2016
Imen Triki

This paper compares, for a microfinance institution, the performance of two individual classification models: Logistic Regression (Logit) and Multi-Layer Perceptron Neural Network (MLP), to evaluate the credit risk problem and discriminate good creditors from bad ones. Credit scoring systems are currently in common use by numerous financial institutions worldwide. However, credit scoring using ...

2001
Steven C. Bagley Halbert White Beatrice A. Golomb

Logistic regression (LR) is a widely used multivariable method for modeling dichotomous outcomes. This article examines use and reporting of LR in the medical literature by comprehensively assessing its use in a selected area of medical study. Medline, followed by bibliography searches, identified 15 peer-reviewed English-language articles with original data, employing LR, published between 198...

2017
Andrzej Szwabe Pawel Misiorek Michal Ciesielczyk

In this paper we propose a simple tensor-based approach to temporal features modeling that is applicable as means for logistic regression (LR) enhancement. We evaluate experimentally the performance of an LR system based on the proposed model in the ClickThrough Rate (CTR) estimation scenario involving processing of very large multi-attribute data streams. We compare our approach to the existin...

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