• 제목/요약/키워드: user ability parameter

검색결과 8건 처리시간 0.025초

A Structure of Personalized e-Learning System Using On/Off-line Mixed Estimations Based on Multiple-Choice Items

  • Oh, Yong-Sun
    • International Journal of Contents
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    • 제5권1호
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    • pp.51-55
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    • 2009
  • In this paper, we present a structure of personalized e-Learning system to study for a test formalized by uniform multiple-choice using on/off line mixed estimations as is the case of Driver :s License Test in Korea. Using the system a candidate can study toward the license through the Internet (and/or mobile instruments) within the personalized concept based on IRT(item response theory). The system accurately estimates user's ability parameter and dynamically offers optimal evaluation problems and learning contents according to the estimated ability so that the user can take possession of the license in shorter time. In order to establish the personalized e-Learning concepts, we build up 3 databases and 2 agents in this system. Content DB maintains learning contents for studying toward the license as the shape of objects separated by concept-unit. Item-bank DB manages items with their parameters such as difficulties, discriminations, and guessing factors, which are firmly related to the learning contents in Content DB through the concept of object parameters. User profile DB maintains users' status information, item responses, and ability parameters. With these DB formations, Interface agent processes user ID, password, status information, and various queries generated by learners. In addition, it hooks up user's item response with Selection & Feedback agent. On the other hand, Selection & Feedback agent offers problems and content objects according to the corresponding user's ability parameter, and re-estimates the ability parameter to activate dynamic personalized learning situation and so forth.

The gene expression programming method for estimating compressive strength of rocks

  • Ibrahim Albaijan;Daria K. Voronkova;Laith R. Flaih;Meshel Q. Alkahtani;Arsalan Mahmoodzadeh;Hawkar Hashim Ibrahim;Adil Hussein Mohammed
    • Geomechanics and Engineering
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    • 제36권5호
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    • pp.465-474
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    • 2024
  • Uniaxial compressive strength (UCS) is a critical geomechanical parameter that plays a significant role in the evaluation of rocks. The practice of indirectly estimating said characteristics is widespread due to the challenges associated with obtaining high-quality core samples. The primary aim of this study is to investigate the feasibility of utilizing the gene expression programming (GEP) technique for the purpose of forecasting the UCS for various rock categories, including Schist, Granite, Claystone, Travertine, Sandstone, Slate, Limestone, Marl, and Dolomite, which were sourced from a wide range of quarry sites. The present study utilized a total of 170 datasets, comprising Schmidt hammer (SH), porosity (n), point load index (Is(50)), and P-wave velocity (Vp), as the effective parameters in the model to determine their impact on the UCS. The UCS parameter was computed through the utilization of the GEP model, resulting in the generation of an equation. Subsequently, the efficacy of the GEP model and the resultant equation were assessed using various statistical evaluation metrics to determine their predictive capabilities. The outcomes indicate the prospective capacity of the GEP model and the resultant equation in forecasting the unconfined compressive strength (UCS). The significance of this study lies in its ability to enable geotechnical engineers to make estimations of the UCS of rocks, without the requirement of conducting expensive and time-consuming experimental tests. In particular, a user-friendly program was developed based on the GEP model to enable rapid and very accurate calculation of rock's UCS, doing away with the necessity for costly and time-consuming laboratory experiments.

Ratcheting assessment of austenitic steel samples at room and elevated temperatures through use of Ahmadzadeh-Varvani Hardening rule

  • Xiaohui Chen;Lang Lang;Hongru Liu
    • Structural Engineering and Mechanics
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    • 제87권6호
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    • pp.601-614
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    • 2023
  • In this study, the uniaxial ratcheting effect of Z2CND18.12N austenitic stainless steel at room and elevated temperatures is firstly simulated based on the Ahmadzadeh-Varvani hardening rule (A-V model), which is embedded into the finite element software ABAQUS by writing the user material subroutine UMAT. The results show that the predicted results of A-V model are lower than the experimental data, and the A-V model is difficult to control ratcheting strain rate. In order to improve the predictive ability of the A-V model, the parameter γ2 of the A-V model is modified using the isotropic hardening criterion, and the extended A-V model is proposed. Comparing the predicted results of the above two models with the experimental data, it is shown that the prediction results of the extended A-V model are in good agreement with the experimental data.

개인 맞춤형 운전면허 학습시스템 설계 (VA Design of Personalized e-Learning System for the Driver's License Test in Korea)

  • 오용선
    • 한국콘텐츠학회:학술대회논문집
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    • 한국콘텐츠학회 2009년도 춘계 종합학술대회 논문집
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    • pp.1055-1060
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    • 2009
  • 본 논문에서는 인터넷을 통한 운전면허 학과시험 학습시스템을 설계한다. 문항반응이론에 의거하여 학습자 능력모수를 정확히 측정하고, 측정된 학습자의 능력에 따라 최적의 평가문제와 학습콘텐츠를 동적으로 제공함으로써, 짧은 시간에 효과적으로 합격에 도달할 수 있도록 하는 개인 맞춤형 이러닝 시스템을 제안한다. 본 학습시스템은 콘텐츠 데이터베이스에 저장된 개념 단위 오브젝트 형태의 운전면허 학과시험용 학습콘텐츠들과 문제은행 데이터베이스에 저장된 운전면허 학과시험용 평가문제들을 연계하여, 학습자의 문항반응에 따라 최적의 문항과 콘텐츠를 제공할 수 있도록 설계된다. 각 문항들은 난이도, 변별도, 추측도의 문항모수를 보유한다. 또한 사용자 프로파일 데이터베이스에는 학습자들의 상태정보, 운전면허 학과시험용 평가문제들에 대한 피험자들의 문항반응을 유지 관리하고, 피험자들의 문항반응을 기초로 학습자 능력모수를 저장한다. 이들 데이터베이스는 인터페이스 에이전트, 콘텐츠 문항선택 & 피드백 에이전트 및 오프라인 추정기로 구성된 동작구조에 의하여 온라인 혹은 오프라인 형태의 동적 맞춤형 학습방식을 제공하여 최적의 학습과정을 제공한다.

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DoS 공격에 강한 무선 랜 인증 프로토콜 (DoS-Resistance Authentication Protocol for Wreless LAN)

  • 김민현;이재욱;최영근;김순자
    • 정보보호학회논문지
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    • 제14권5호
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    • pp.3-10
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    • 2004
  • 무선 랜은 액세스 포인트를 경유하여 인터넷을 사용할 수 있기 때문에 접근 제어의 중요성을 가지고 있다. 또한 무선 랜을 이용하기 위해서는 EAP의 인증과정을 거치게 된다. 이러한 액세스 포인트 접근과 인증 과정에 대한 치명적인 공격 중의 하나가 DoS(Denial of Service) 공격이다. 즉 악의적인 공격자가 액세스 포인트의 접근을 막거나 또는 인증 과정에서 서버의 메모리 및 중앙처리장치의 계산 능력 등을 강제적으로 소비시킴으로써 합법적인 사용자가 서비스를 받지 못하게 한다. 본 논문에서는 무선 랜에 대한 DoS 공격을 접근 제어, 자원의 할당, 인증프로토콜 상에서의 공격으로 나누어 각 공격에 대한 방어법을 제시하였다. 액세스 포인트 접근에 대한 문제는 사전 검증 단계 및 보안 수준 변수에 의해, 자원의 할당에 대한 공격은 부분적인 stateless 프로토콜에 의해, 프로토콜상의 약점은 타임스템프와 접근 제한 변수에 의해 개선하였다.

Uncertainty Analysis based on LENS-GRM

  • Lee, Sang Hyup;Seong, Yeon Jeong;Park, KiDoo;Jung, Young Hun
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2022년도 학술발표회
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    • pp.208-208
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    • 2022
  • Recently, the frequency of abnormal weather due to complex factors such as global warming is increasing frequently. From the past rainfall patterns, it is evident that climate change is causing irregular rainfall patterns. This phenomenon causes difficulty in predicting rainfall and makes it difficult to prevent and cope with natural disasters, casuing human and property damages. Therefore, accurate rainfall estimation and rainfall occurrence time prediction could be one of the ways to prevent and mitigate damage caused by flood and drought disasters. However, rainfall prediction has a lot of uncertainty, so it is necessary to understand and reduce this uncertainty. In addition, when accurate rainfall prediction is applied to the rainfall-runoff model, the accuracy of the runoff prediction can be improved. In this regard, this study aims to increase the reliability of rainfall prediction by analyzing the uncertainty of the Korean rainfall ensemble prediction data and the outflow analysis model using the Limited Area ENsemble (LENS) and the Grid based Rainfall-runoff Model (GRM) models. First, the possibility of improving rainfall prediction ability is reviewed using the QM (Quantile Mapping) technique among the bias correction techniques. Then, the GRM parameter calibration was performed twice, and the likelihood-parameter applicability evaluation and uncertainty analysis were performed using R2, NSE, PBIAS, and Log-normal. The rainfall prediction data were applied to the rainfall-runoff model and evaluated before and after calibration. It is expected that more reliable flood prediction will be possible by reducing uncertainty in rainfall ensemble data when applying to the runoff model in selecting behavioral models for user uncertainty analysis. Also, it can be used as a basis of flood prediction research by integrating other parameters such as geological characteristics and rainfall events.

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사용자의 음장선호도에 따른 오디오 콘텐츠 적응 기술 (Audio Contents Adaptation Technology According to User′s Preference on Sound Fields)

  • 강경옥;홍재근;서정일
    • 한국음향학회지
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    • 제23권6호
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    • pp.437-445
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    • 2004
  • 본 논문에서는 사용자의 음장 선호도를 이용하여 오디오 콘텐츠를 사용자가 원하는 음장으로 변환하는 기술에 대하여 설명한다. 오디오 신호가 재생되는 공간의 음장을 사용자가 원하는 음장으로 변환시켜주는 음장효과 기술은 실감있고 현장감있는 음악재생에 필수적인 요소이다. 그러나, 음장효과를 실시간으로 처리하기 위해서는 막대한 연산량이 필요하므로 MP3 플레이어와 같은 휴대용 오디오 단말에서는 구현하기 힘들다. 본 논문에서는 사용자로부터 전달된 음장 선호도를 이용하여 서버에서 음장효과를 처리하도록 하여, 단말의 성능에 구애받지 않고 음장효과를 제공할 수 있는 기술을 제안한다. 사용자가 선호하는 음장을 표현하기 위하여 선호하는 음장을 실내응답신호의 URI 주소를 이용하여 표현하는 방법 뿐만 아니라 음향공간에 대한 심리적 파라미터를 이용할 수 있게 하였다. 또한, 실내응답신호와 복적분 연산을 통한 음장효과 처리 방법을 실시간 응용에 적용하기 위하여 고속 복적분 알고리즘을 제안하였으며, 실험을 통하여 실시간 응용에도 적용이 가능함을 확인하였다. 본 논문에서 제안한 음장 선호도 서술구조의 효용성을 검증하기 위하여, 일반인을 대상으로 음장을 구분하는 능력과 음장효과가 처리된 음악에 대한 선호도에 대한 주관듣기평가를 실시하여 제안된 음장 선호도가 일반인들에게 적용이 가능함을 확인하였다.

국내 MIS 연구에서 구조방정식모형 활용에 관한 메타분석 (A Meta Analysis of Using Structural Equation Model on the Korean MIS Research)

  • 김종기;전진환
    • Asia pacific journal of information systems
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    • 제19권4호
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    • pp.47-75
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    • 2009
  • Recently, researches on Management Information Systems (MIS) have laid out theoretical foundation and academic paradigms by introducing diverse theories, themes, and methodologies. Especially, academic paradigms of MIS encourage a user-friendly approach by developing the technologies from the users' perspectives, which reflects the existence of strong causal relationships between information systems and user's behavior. As in other areas in social science the use of structural equation modeling (SEM) has rapidly increased in recent years especially in the MIS area. The SEM technique is important because it provides powerful ways to address key IS research problems. It also has a unique ability to simultaneously examine a series of casual relationships while analyzing multiple independent and dependent variables all at the same time. In spite of providing many benefits to the MIS researchers, there are some potential pitfalls with the analytical technique. The research objective of this study is to provide some guidelines for an appropriate use of SEM based on the assessment of current practice of using SEM in the MIS research. This study focuses on several statistical issues related to the use of SEM in the MIS research. Selected articles are assessed in three parts through the meta analysis. The first part is related to the initial specification of theoretical model of interest. The second is about data screening prior to model estimation and testing. And the last part concerns estimation and testing of theoretical models based on empirical data. This study reviewed the use of SEM in 164 empirical research articles published in four major MIS journals in Korea (APJIS, ISR, JIS and JITAM) from 1991 to 2007. APJIS, ISR, JIS and JITAM accounted for 73, 17, 58, and 16 of the total number of applications, respectively. The number of published applications has been increased over time. LISREL was the most frequently used SEM software among MIS researchers (97 studies (59.15%)), followed by AMOS (45 studies (27.44%)). In the first part, regarding issues related to the initial specification of theoretical model of interest, all of the studies have used cross-sectional data. The studies that use cross-sectional data may be able to better explain their structural model as a set of relationships. Most of SEM studies, meanwhile, have employed. confirmatory-type analysis (146 articles (89%)). For the model specification issue about model formulation, 159 (96.9%) of the studies were the full structural equation model. For only 5 researches, SEM was used for the measurement model with a set of observed variables. The average sample size for all models was 365.41, with some models retaining a sample as small as 50 and as large as 500. The second part of the issue is related to data screening prior to model estimation and testing. Data screening is important for researchers particularly in defining how they deal with missing values. Overall, discussion of data screening was reported in 118 (71.95%) of the studies while there was no study discussing evidence of multivariate normality for the models. On the third part, issues related to the estimation and testing of theoretical models on empirical data, assessing model fit is one of most important issues because it provides adequate statistical power for research models. There were multiple fit indices used in the SEM applications. The test was reported in the most of studies (146 (89%)), whereas normed-test was reported less frequently (65 studies (39.64%)). It is important that normed- of 3 or lower is required for adequate model fit. The most popular model fit indices were GFI (109 (66.46%)), AGFI (84 (51.22%)), NFI (44 (47.56%)), RMR (42 (25.61%)), CFI (59 (35.98%)), RMSEA (62 (37.80)), and NNFI (48 (29.27%)). Regarding the test of construct validity, convergent validity has been examined in 109 studies (66.46%) and discriminant validity in 98 (59.76%). 81 studies (49.39%) have reported the average variance extracted (AVE). However, there was little discussion of direct (47 (28.66%)), indirect, and total effect in the SEM models. Based on these findings, we suggest general guidelines for the use of SEM and propose some recommendations on concerning issues of latent variables models, raw data, sample size, data screening, reporting parameter estimated, model fit statistics, multivariate normality, confirmatory factor analysis, reliabilities and the decomposition of effects.