• Title/Summary/Keyword: 학습수행

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Web-based PBL Performance Assessment Management Model Through the Analysis of the Distance Teacher Training (초등 교원 원격연수의 인식도 분석을 통해 본 웹기반 문제중심 수행평가 운영 모형개발)

  • Kwon, Hyung-Kyu
    • Journal of The Korean Association of Information Education
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    • v.9 no.3
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    • pp.549-560
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    • 2005
  • Web-based distance teacher training should focus on increasing self-directed problem solving skills of trainers by problem-based instruction(PBL). Performance assessment evaluates achievement of learning goals through the practical performance learning to solve problems in the real situation. This study proposes a web-based performance assessment model for the distance teacher training. It reflects fairness and objectiveness issues of performance assessment which elementary teachers are concerned about through the survey on distance teacher training, and relieves instructors from overload of managing and scoring performance tests. The proposed model provides problem-based learning situations, interactions between individuals and groups, and web-based cooperative evaluation and the peer evaluation.

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Developing the Web Agent for Supporting and Facilitating Teaching and Learning on the Web (교수-학습 지원을 위한 웹 에이전트(web agent)의 개발)

  • Kang, Shin-Gheon;Han, Seung-Rok;Park, Jung-Whan
    • The Journal of Korean Association of Computer Education
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    • v.6 no.1
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    • pp.87-94
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    • 2003
  • Recently there are many tries and researches for using web agent in education. The agent is a computer program as a common name which takes a role like a proxy or a middle ware for accomplishing the given something on behalf of user. Lately the agent is being used in the various fields. The teaching and learning is the one of those. It is the web agent that support the teaching and learning on the web. It has a concept of the program or the engine is able to do teachers roles on the behalf of him on the web. Not only the web agent is able to do teachers roles on the behalf of him, but also it is a helper that helps learners on the web. The web based teaching and learning environment has the web agent offers the personal and the adaptive information, interface, or contents.

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Implementation of Intelligent Virtual Character Based on Reinforcement Learning and Emotion Model (강화학습과 감정모델 기반의 지능적인 가상 캐릭터의 구현)

  • Woo Jong-Ha;Park Jung-Eun;Oh Kyung-Whan
    • Journal of the Korean Institute of Intelligent Systems
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    • v.16 no.3
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    • pp.259-265
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    • 2006
  • Learning and emotions are very important parts to implement intelligent robots. In this paper, we implement intelligent virtual character based on reinforcement learning which interacts with user and have internal emotion model. Virtual character acts autonomously in 3D virtual environment by internal state. And user can learn virtual character specific behaviors by repeated directions. Mouse gesture is used to perceive such directions based on artificial neural network. Emotion-Mood-Personality model is proposed to express emotions. And we examine the change of emotion and learning behaviors when virtual character interact with user.

Efficient contrastive learning method through the effective hard negative sampling from DPR (DPR의 효과적인 하드 네거티브 샘플링을 통한 효율적인 대조학습 방법)

  • Seong-Heum Park;Hongjin Kim;Jin-Xia Huang;Oh-Woog Kwon;Harksoo Kim
    • Annual Conference on Human and Language Technology
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    • 2022.10a
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    • pp.348-353
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    • 2022
  • 최근 신경망 기반의 언어모델이 발전함에 따라 대부분의 검색 모델에서는 Bi-encoder를 기반으로한 Dense retrieval 모델에 대한 연구가 진행되고 있다. 특히 DPR은 BM25를 통해 정답 문서와 유사한 정보를 가진 하드 네거티브를 사용하여 대조학습을 통해 성능을 더욱 끌어올린다. 그러나 BM25로 검색된 하드 네거티브는 term-base의 유사도를 통해 뽑히기 때문에, 의미적으로 비슷한 내용을 갖는 하드 네거티브의 역할을 제대로 수행하지 못하고 대조학습의 효율성을 낮출 가능성이 있다. 따라서 DRP의 대조학습에서 하드 네거티브의 역할을 본질적으로 수행할 수 있는 문서를 샘플링 하는 방법을 제시하고, 이때 얻은 하드 네거티브의 집합을 주기적으로 업데이트 하여 효과적으로 대조학습을 진행하는 방법을 제안한다. 지식 기반 대화 데이터셋인 MultiDoc2Dial을 통해 평가를 수행하였으며, 실험 결과 기존 방식보다 더 높은 성능을 나타낸다.

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Distributed In-Memory Caching Method for ML Workload in Kubernetes (쿠버네티스에서 ML 워크로드를 위한 분산 인-메모리 캐싱 방법)

  • Dong-Hyeon Youn;Seokil Song
    • Journal of Platform Technology
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    • v.11 no.4
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    • pp.71-79
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    • 2023
  • In this paper, we analyze the characteristics of machine learning workloads and, based on them, propose a distributed in-memory caching technique to improve the performance of machine learning workloads. The core of machine learning workload is model training, and model training is a computationally intensive task. Performing machine learning workloads in a Kubernetes-based cloud environment in which the computing framework and storage are separated can effectively allocate resources, but delays can occur because IO must be performed through network communication. In this paper, we propose a distributed in-memory caching technique to improve the performance of machine learning workloads performed in such an environment. In particular, we propose a new method of precaching data required for machine learning workloads into the distributed in-memory cache by considering Kubflow pipelines, a Kubernetes-based machine learning pipeline management tool.

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Supporting Effective Collaborative Workspaces over Moodle (Moodle에서의 효과적인 협업 워크스페이스 지원)

  • Jin, Jae-Hwan;Lee, Hong-Chang;Lee, Myung-Joon
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.16 no.12
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    • pp.2657-2664
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    • 2012
  • Web-based learning receives much attention as an effective learning method because users can use the learning service at any time from any space. A learning management system(LMS) provides online educational environment among teachers and students, supporting various facilities to deliver educational contents. Since most of the existing LMSs support one-way or limited two-way teaching services among teachers and students, there are a lot of difficulties in performing collaboration among students and/or collaboration among teachers and students. In this paper, we describe the development of collaborative workspaces which provides effective collaborative educational environment on Moodle which is widely accepted as a typical LMS. Through the provided various types of collaborative workspaces, users can easily perform group activities, sharing educational with appropriate access control mechanism.

Reinforcement Learning Algorithm using Domain Knowledge for MAV (초소형 비행체 운항방법에 대한 환경 지식을 이용한 강화학습 방법)

  • Kim, Bong-Oh;Kong, Sung-Hak;Jang, Si-Young;Suh, Il-Hong;Oh, Sang-Rok
    • Proceedings of the KIEE Conference
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    • 2002.07d
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    • pp.2407-2409
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    • 2002
  • 강화학습이란 에이전트가 알려지지 않은 미지의 환경에서 행위와 보답을 주고받으며, 임의의 상태에서 가장 적절한 행위를 학습하는 방법이다. 만약 강화학습 중에 에이전트가 과거 문제들을 해결하면서 학습한 환경에 대한 지식을 이용할 수 있는 능력이 있다면 새로운 문제를 빠르게 해결할 수 있다. 이런 문제를 풀기 위한 방법으로 에이전트가 과거에 학습한 여러 문제들에 대한 환경 지식(Domain Knowledge)을 Local state feature라는 기억공간에 학습한 후 행위함수론 학습할 때 지식을 활용하는 방법이 연구되었다. 그러나 기존의 연구들은 주로 2차원 공간에 대한 연구가 진행되어 왔다. 본 논문에서는 환경 지식을 이용한 강화학습 알고리즘을 3차원 공간에 대해서도 수행 할 수 있도록하는 개선된 알고리즘을 제안하였으며, 제안된 알고리즘의 유효성을 검증하기 위해 초소형 비행체의 항공운항 학습에 대해 모의실험을 수행하였다.

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Online Reinforcement Learning to Search the Shortest Path in Maze Environments (미로 환경에서 최단 경로 탐색을 위한 실시간 강화 학습)

  • Kim, Byeong-Cheon;Kim, Sam-Geun;Yun, Byeong-Ju
    • The KIPS Transactions:PartB
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    • v.9B no.2
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    • pp.155-162
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    • 2002
  • Reinforcement learning is a learning method that uses trial-and-error to perform Learning by interacting with dynamic environments. It is classified into online reinforcement learning and delayed reinforcement learning. In this paper, we propose an online reinforcement learning system (ONRELS : Outline REinforcement Learning System). ONRELS updates the estimate-value about all the selectable (state, action) pairs before making state-transition at the current state. The ONRELS learns by interacting with the compressed environments through trial-and-error after it compresses the state space of the mage environments. Through experiments, we can see that ONRELS can search the shortest path faster than Q-learning using TD-ewor and $Q(\lambda{)}$-learning using $TD(\lambda{)}$ in the maze environments.

A Case Study on Reflection Using Worksheets for Elementary School Students in Programming Learning (초등학생의 프로그래밍 학습에서 활동지를 사용한 성찰에 대한 사례 연구)

  • Kim, Yong-Cheon;Kim, Ja-Mee;Lee, Won-Gyu
    • Journal of The Korean Association of Information Education
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    • v.16 no.1
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    • pp.21-31
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    • 2012
  • Recently, reflection as a way of reducing the learners' cognitive burden in the programming learning process has been studied. In the present study, we examined the effects of reflection using worksheets to measure elementary students' project performance. The results of the study are that learners who have more reflective time over their learning process are performed creatively and diversely their project work. This study is significant in that it provides more learning opportunities for elementary students by reflection rather than by trial-and-error in programming learning.

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Fuzzy Inference System for the Synthesis Learning Evaluation (종합학습평가를 위한 퍼지추론 시스템)

  • Son, Chang-Sik;Kim, Jong-Uk;Jeong, Gu-Beom
    • Journal of the Korean Institute of Intelligent Systems
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    • v.16 no.6
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    • pp.742-746
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    • 2006
  • Evaluation of learning ability of students is classified a step of diagnostic, formative and summative evaluation. This step-by-step evaluation is the standard of synthesis judgement, from a student's prior learning of preparation state to devotion of learning process and even learning result. In this paper, we propose the method of synthesis learning evaluation which is considered evaluation of each step in using fuzzy inference. In order to get objective evaluation of learning ability, we applied to the weights by evaluation steps. And we reflected defuzzification values of final evaluation membership function interval obtained by fuzzy inference about diagnostic, formative and summative evaluation. As a result, it processes definite inference ensures objectivity and shows validity of the synthesis evaluation method.