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강승호 교수

Seungho Kang

연세대학교 응용통계학과 · 수학

연구실 소개

강승호 교수의 연구실은 생물의학 및 보건 분야에서의 통계적 방법론 개발에 중점을 두고 있으며, 특히 연관된 이진 데이터 생성, 비모수적 추론, 생물유사성 평가, 다수준 임상시험 설계, 비열등성 검정의 통계적 성질 등에 대한 심층적인 연구를 수행하고 있습니다. 특히 유전자형과 대립유전자 빈도 간의 관계를 다루는 하디-바이너-웨인버그 검정의 유의수준 제어 문제나, 임상시험에서의 등가성 및 비열등성 검정의 정확도 분석 등 실제 의학 연구에 응용 가능한 통계적 기법의 유용성과 신뢰성을 검토하고 있습니다. 이와 더불어, 소비자 행동 예측 모델링과 같은 응용 분야에서도 데이터 마이닝 기법을 활용한 실생활 문제 해결에도 기여하고 있습니다.

비열등성 검정등가성 시험다층 선형 모델유의수준 제어몬테카를로 시뮬레이션

연구 현황

논문 수
65
총 인용 수
478
최근 5년 논문
12
주요 분야
수학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
12총합
2017
2018
2019
2020
2024
5개년 연도별 피인용 수
39총합
20172018201920202024

주요 논문

15
1
논문|인용수 93·2000
Incorporating Model Uncertainties along with Data Uncertainties in Microbial Risk Assessment
Seung-Ho Kang, Ralph L. Kodell, James J. Chen
SJR Q1Regulatory Toxicology and Pharmacology
Statistics, Probability and UncertaintyDecision Sciences
2
논문|인용수 32·2002
An Investigation of the Traditional Algorithm-Based Designs for Phase 1 Cancer Clinical Trials
Seung-Ho Kang, Chul Ahn
Drug Information Journal
Statistics and ProbabilityMathematics
3
논문|인용수 29·2001
The Expected Toxicity Rate at the Maximum Tolerated Dose in the Standard Phase I Cancer Clinical Trial Design
Seung-Ho Kang, Chul Ahn
Drug Information Journal
Statistics and ProbabilityMathematics
4
논문|인용수 27·2001
Generating Correlated Binary Variables with Complete Specification of the Joint Distribution
Seung-Ho Kang, Sin‐Ho Jung
SJR Q1Biometrical Journal

Most statistical methods for the analysis of correlated binary data are based on asymptotic theory. Therefore it is important to generate correlated binary data efficiently for Monte Carlo simulation studies to investigate the finite sample performance of these methods. This article provides a simple method for generating correlated binary data with a given joint distribution. The key idea is to consider k-variate binary data as a multinomial distribution with 2k possible outcomes.

Statistics and ProbabilityMathematics
5
논문|인용수 12·2004
The Size of the Chi-Square Test for the Hardy-Weinberg Law
Seung-Ho Kang, Dong‐Wan Shin
SJR Q3Human Heredity

Many scientific problems can be formulated in terms of a statistical model indexed by parameters, only some of which are of scientific interest and the other parameters, called nuisance parameters, are not of interest in themselves. For testing the Hardy-Weinberg law, a relation among genotype and allele probabilities is of interest and allele probabilities are of no interest and now nuisance parameters. In this paper we investigate how the size (the maximum of the type I error rate over the nui

Statistics and ProbabilityMathematics
6
논문|인용수 11·2014
Sample Size Calculations for the Development of Biosimilar Products
Seung-Ho Kang, Yongjo Kim
SJR Q2Journal of Biopharmaceutical Statistics

The most widely used design for a Phase III comparative study for demonstrating the biosimilarity between a biosimilar product and a renovator biological product is the equivalence trial, whose aim is to show that the difference between two population means of a primary endpoint is less than a prespecified equivalence margin. A well-known sample size formula for the equivalence trial is given by [Formula: see text] Since this formula is obtained based on the approximate power rather than the exa

ImmunologyImmunology and Microbiology
7
논문|인용수 10·2005
한국 성인 중 다빈도 외식소비자의 예측모형 개발: 데이터마이닝을 이용한 2001 국민건강·영양조사 자료 분석
강승호, 윤지현, 정상진, 송수민, 류시현

The objective of this study was to develop a model for predicting Korean adult consumers who frequently eat food-away-from-home. A total of 7,032 adults aged 19 years and older from the 2001 National Health and Nutrition Survey in Korea were used as subjects. The data were analyzed using a data mining procedure including logistic regression and decile analysis. The model developed in the study was proven to be valid in predicting the consumers who frequently eat food-away-from home(once a day or

8
논문|인용수 9·2019
Hierarchical Linear Models for Multiregional Clinical Trials
Saemina Kim, Seung-Ho Kang
SJR Q1Statistics in Biopharmaceutical Research

Data observed in multiregional clinical trials are structurally hierarchical in the sense that the patient population consists of several regions and patients are nested within their own regions. To reflect such hierarchical structure, in this article, we propose two-level hierarchical linear models in which the level-1 model is based on patient-level data such as treatment indicator and age, and the level-2 model is based on region-level data such as medical practices. The fixed effect model an

Statistics and ProbabilityMathematics
9
논문|인용수 8·2006
The size of the Cochran–Armitage trend test in contingency tables
Seung-Ho Kang, Jae‐Won Lee
SJR Q2Journal of Statistical Planning and Inference
Artificial IntelligenceComputer Science
11
논문|인용수 5·2013
Strength of Evidence of Noninferiority Trials with the Two Confidence Interval Method with Random Margin
So-Young Wang, Seung-Ho Kang
SJR Q2Journal of Biopharmaceutical Statistics

This article deals with the dependency(ies) of noninferiority test(s) when the two confidence interval method is employed. There are two different definitions of the two confidence interval method. One of the objectives of this article is to sort out some of the confusion in these two different definitions. In the first definition the two confidence interval method is considered as the fixed margin method that treats a noninferiority margin as a fixed constant after it is determined based on his

Statistics and ProbabilityMathematics
12
논문|인용수 4·2011
The Adjustment of the Type I Error Rate in Noninferiority Trials with λ-Margin Approach: Each of Two Different New Drugs is Approved with Two Independent Trials with the Same Active Control
Seung-Ho Kang, Yuman Ryu
SJR Q2Journal of Biopharmaceutical Statistics

A regulatory agency usually requires two independent positive trials of the same new drug for approval. If two different new drugs are approved with the λ-margin approach by using the same active control, it implies that four noninferiority trials share the same active control. Sharing the same active control generates dependencies among trials. In this paper we investigate how much such dependencies inflate the unconditional and conditional across-trial type I error rates, and we propose a new

Statistics and ProbabilityMathematics
13
논문|인용수 4·2005
Exact Tests for One Sample Correlated Binary Data
Seung-Ho Kang, Sang-Jin Chung, Chul Ahn
SJR Q1Biometrical Journal

In this paper we developed exact tests for one sample correlated binary data whose cluster sizes are at most two. Although significant progress has been made in the development and implementation of the exact tests for uncorrelated data, exact tests for correlated data are rare. Lack of a tractable likelihood function has made it difficult to develop exact tests for correlated binary data. However, when cluster sizes of binary data are at most two, only three parameters are needed to characteriz

Artificial IntelligenceComputer Science
14
논문|인용수 4·2020
Hierarchical Generalized Linear Models for Multiregional Clinical Trials
Junhui Park, Seung-Ho Kang
SJR Q1Statistics in Biopharmaceutical Research

Multiregional clinical trials have a hierarchical data structure because several regions form a patient population and individual patients are nested within their own regions. Data are obtained from two different levels: regions and patients. To incorporate such a hierarchical structure, hierarchical linear models were proposed for the response variables following a normal distribution by Kim and Kang. In this article, we extend the hierarchical linear models to propose hierarchical generalized

Statistics and ProbabilityMathematics
15
논문|인용수 4·2018
Statistical implications of extrapolating the overall result to the target region in multi-regional clinical trials
Seung-Ho Kang, Saemina Kim
SJR Q3Communications for Statistical Applications and MethodsOA

The one of the principles described in ICH E9 is that only results obtained from pre-specified statistical methods in a protocol are regarded as confirmatory evidence. However, in multi-regional clinical trials, even when results obtained from pre-specified statistical methods in protocol are significant, it does not guarantee that the test treatment is approved by regional regulatory agencies. In other words, there is no so-called global approval, and each regional regulatory agency makes its o

Statistics and ProbabilityMathematics

대표 연구 분야

Statistics and ProbabilityArtificial IntelligenceMolecular BiologyImmunologyComputer Networks and CommunicationsStatistics, Probability and Uncertainty

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