• 제목/요약/키워드: Learning cycle

검색결과 313건 처리시간 0.026초

야외지질답사 및 모델링 기반 순환 학습에서 학생들이 그린 그림의 목적과 기능에 대한 이해 (Understanding Purposes and Functions of Students' Drawing while on Geological Field Trips and during Modeling-Based Learning Cycle)

  • 최윤성
    • 한국지구과학회지
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    • 제42권1호
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    • pp.88-101
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    • 2021
  • 이 연구의 목적은 학생들이 그린 그림이 야외지질답사와 모델링 기반 순환 학습에서 어떤 의미를 갖는지 질적으로 탐색하는 것이다. 서울의 한 대학 부설 영재교육원에 재학 중인 10명의 학생이 참여하였다. 한탄강 형성과정이라는 것을 주제로 야외지질답사와 3차시 모델링 3차시 수업을 진행하였다. 각 차시별 학생들이 작성했던 모든 기록장(글, 그림), 연구자 필드노트, 학생들이 참여한 모든 영상 자료 및 음성 녹음, 전사한 인터뷰 자료 등을 연구진과 공유하였다. Hatisaru (2020) 그림 표상화를 야외지질학습의 맥락에 맞게 수정하여 그림의 유형을 분류하였다. 학생들의 글(text, memo)을 포함한 그림의 특징을 분석하기 위해 연연적 내용 분석(deductive content analysis)을 사용하였다. 또한, 그림이 모델링 기반 순환 과정(자료 수집 관찰, 모델 생성, 모델 발달, 자연현상의 구체화) 속에서 어떤 역할을 하는지 분석하였다. 그 결과 학생들의 그림 유형은 지질학적인 개념을 포함한 상징적 이미지, 지형학적으로 외형을 묘사한 외형적 이미지, 학생들의 심리적인 영역을 표현한 정의적 이미지가 있었다. 특징은 설명, 생산화, 정교화, 증거, 일치, 심상(心狀)으로 분류하였다. 그림의 유형과 특징은 모델링 기반 순환 학습 과정에서 연속적으로 나타나며 학생들의 모델 발달 과정 속에서 학생들의 인지적인 영역에 관한 특성과 학업에 대한 긍정적인 태도와 감정을 반영하였다. 학생들이 그린 그림은 야외지질답사와 모델링 과정 모두에 있어서 학생들의 사고와 의사표현을 반영할 수 있는 도구로써 의미를 있음을 밝힘으로써 과학교육 관계자들에게 학생들의 그림 그리기 활동의 중요성을 역설하였다.

전류 개념 변화를 위한 순환학습의 효과 (The Effects of Learning Cycle on Changing the Students' Conceptions of Electric Current)

  • 김영민;권성기
    • 한국과학교육학회지
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    • 제12권3호
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    • pp.61-76
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    • 1992
  • The purpose of this study was to develop the instructional model and teaching material to change the middle school students'conceptions of electric current into the scientific ones and to investigate the effects of the model in actual classrooms. We identified the students' ideas and their misunderstanding about the concept of eIectic current through reviewing the literatures and our in this study. Based on the above results, we developed the instructional model and designed the teaching sequence and prepare the learning materials about the unit of the electric current in middle school Our instructional model was based on 'learning cycle' developed by Lawson, but the new stage called "exploration through qualitative questions" to elicit the students' own conceptions was inserted to it. To investigate the effects or the new teaching model, the pre- and post-test using the POE type were administered to experimental group(52 students) taught with learning cycles and control group(52 students) taught with traditional styles. The results are as follows; 1) The rates of correct. predictions was varying according to the kinds of problems. And the rates of the correct. reasons of their predictions were lower than those of the predictions. 2) The mean scores of the post-test of both groups were significantly higher than those of the pre-test. We could not find statistically significant difference in theme an score between experimental group and control group after implementation of the model. But the experimental group gained higher scores than those of the control group on two problem. Therefore, although we cannot show the prominent effects of our teaching model based on learning cycles, there are some effects of our model on changing the middle school students' conceptions of electric current.

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창의력과 자기주도적 학습능력에 미치는 독서교육의 영향에 관한 연구 (A Study on the Effect of Reading Instruction on the Creative Ability and the Self-Directed Learning Ability)

  • 조미아
    • 한국문헌정보학회지
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    • 제40권3호
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    • pp.53-71
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    • 2006
  • 본 연구는 독서교육 프로그램의 유형과 독서방식에 따라 창의력과 자기주도적 학습능력이 어떻게 나타나는지 그리고 교육 기간에 따라 창의력과 자기주도적 학습능력에 미치는 영향에는 어떠한 차이가 있는지를 파악하기 위한 것이다. 2005년 4월부터 12월까지 초등학교 6학년 2개 반을 대상으로 한 반은 쓰기 중심 독서프로그램 모형인 'Author-Reader-Inquirer Cycle'을 실시하고, 다른 한 반은 말하기 듣기 프로그램중심 독서프로그램 모형인 'Literature Circles'를 실시하였다. 창의력과 자기주도적 학습능력을 검증하기 위해 사전 1회차 검사, 7월에 단기 교육 사후검사. 2학기말인 12월에 장기 교육 사후검사를 실시하였다. 연구 결과 독서교육은 어린이들의 창의력과 자기주도적 학습능력을 향상시키는 것으로 나타났다. 또한 쓰기 중심의 독서교육 프로그램이 말하기 듣기 프로그램에 비해 효과적이고, 단기 독서교육 보다는 장기 독서교육이 효과적인 것으로 나타났으며, 독서 방식 중에서는 음독, 묵독, 다독, 통독, 발췌독에 비해 정독을 통한 독서방식이 창의력과 자기주도적 학습능력을 향상시킬 수 있는 것으로 나타났다.

초등과학에서 그리기 중점의 사고지도를 활용한 수업 전략의 효과 (The Effects of Instructional Strategy using Thinking Maps focused on Drawing in Elementary School Science)

  • 김정선;박재근
    • 한국초등과학교육학회지:초등과학교육
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    • 제35권1호
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    • pp.54-64
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    • 2016
  • The purpose of this study is to develop instructional strategy which utilizes thinking maps focused on drawing as a measure to enhance science learning motivation, self-directed learning activity and science academic achievement of learners, and to examine the effects of its application. The target unit for this study is 'life cycle of plants' in the fourth grade of elementary school. Two classes of 4th grades of elementary school were selected and divided into two groups. The learners of experimental group have completed thinking map by drawing a picture to express the results to be observed and measured, and used it to arrange the learning contents. The result of this study is as follows. First, it is proven that using thinking maps focused on drawing actually helped improving the motivation of learners to study science. Second, it is proven that this strategy was effective to change their self-directed learning ability in positive ways. Third, it contributed to the improvement of learners' science academic achievement. We found out that the application of this strategy enabled them to enjoy the mapping using drawing, to be immersed in learning, to better recognize the scientific concepts and the structure of learning contents, and to have a positive awareness of the usefulness of thinking maps focused on drawing.

Machine Learning Methodology for Management of Shipbuilding Master Data

  • Jeong, Ju Hyeon;Woo, Jong Hun;Park, JungGoo
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제12권1호
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    • pp.428-439
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    • 2020
  • The continuous development of information and communication technologies has resulted in an exponential increase in data. Consequently, technologies related to data analysis are growing in importance. The shipbuilding industry has high production uncertainty and variability, which has created an urgent need for data analysis techniques, such as machine learning. In particular, the industry cannot effectively respond to changes in the production-related standard time information systems, such as the basic cycle time and lead time. Improvement measures are necessary to enable the industry to respond swiftly to changes in the production environment. In this study, the lead times for fabrication, assembly of ship block, spool fabrication and painting were predicted using machine learning technology to propose a new management method for the process lead time using a master data system for the time element in the production data. Data preprocessing was performed in various ways using R and Python, which are open source programming languages, and process variables were selected considering their relationships with the lead time through correlation analysis and analysis of variables. Various machine learning, deep learning, and ensemble learning algorithms were applied to create the lead time prediction models. In addition, the applicability of the proposed machine learning methodology to standard work hour prediction was verified by evaluating the prediction models using the evaluation criteria, such as the Mean Absolute Percentage Error (MAPE) and Root Mean Squared Logarithmic Error (RMSLE).

Re-engineering Adult Education Programme-an Online Learning Curricular Perspective

  • Mathai, K.J.;Karaulia, D.S.
    • 한국멀티미디어학회논문지
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    • 제6권4호
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    • pp.685-697
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    • 2003
  • The Web based multimedia programmes/courses are becoming widely available in recent years. Most of these courses focus on Behaviorist way of learning, which does not promote deep learning in any way. For Adults this approach further incapacitated, as it does not satisfy Andragogical needs. The search for Constructivist way of learning through the web applied to Indian conditions led to need for developing a curriculum development approach that would promote construction of knowledge through web based collaboration. This paper attempts to reengineer existing curriculum development processes and lays out a framework of‘Problem Based Online Learning (PBOL)’curriculum design. In this context, entire curriculum development life cycle is evolved and explained. This is a part of doctoral work (Ph.D), which is in progress and being undertaken by K.James Mathai, and guided of Dr.D.S.Karaulia.

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강화학습과 메니폴드 제어기법을 이용한 걷는 로봇의 제어 (Control of Walking Robot based on Reinforcement Learning and Manifold Control)

  • 문영준;박주영
    • 한국지능시스템학회:학술대회논문집
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    • 한국지능시스템학회 2008년도 춘계학술대회 학술발표회 논문집
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    • pp.135-138
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    • 2008
  • 최근 인간을 모방하는 휴머노이드 로봇(Humanoid robot)에 대한 관심이 증가함에 따라, 기계공학, 생체공학, 제어이론 등 여러 분야에서 관련 연구가 활발히 진행되고 있다. 이에 본 논문에서는 액츄에이터(Actuator)가 없이 경사진 지면을 걸을 수 있는 두 발을 가진 패시브 로봇(Passive robot)을 대상으로 강화학습과 메니폴드(Manifold control) 기법을 사용하여 안정적으로 걸을 수 있도록 제어기(Controller)를 설계하는 방안을 고려한다.

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SOLO 분류법과 van Hiele의 기하학습 수준 이론의 관련성에 대한 고찰 (A Study on the Relation Between SOLO Taxonomy and van Hele Theory)

  • 류성림
    • 한국수학교육학회지시리즈A:수학교육
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    • 제39권2호
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    • pp.151-166
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    • 2000
  • The purpose of this study is to understand what two models of SOLO taxonomy and van Hiele theory suggest and find out what relation there is between the category system of the SOLO taxonomy and the thinking level of the van Hiele theory. The van Hiele theory describes in line of ranking level so that it may increase the teaching effects by putting together a class, which takes into consideration the students thoughts. The SOLO taxonomy focused on the response mode of the students rather than the thinking level or the developmental stage of them to pursuit the method that can describe the students understanding in depth quality-wise. Although the SOLO taxonomy and the van Hiele model seem to have different form and character from outside in terms of their goals, a closer examination reveals that the two stances have much in common and that the models are complementary. Although the van Hiele placed more focus on the thoughts, because the conclusion was based on the students responses, the van Hiele theory can be interpreted within the structure identified in the SOLO model. In this study, we have tried to understand how the response structure form the SOLO taxonomy and the thinking level of the van Hiele theory are related, based on the studies of Pegg and Davery1998). If you briefly look at them, there are following corresponding relation between the SOLO taxonomy and the van Hiele theory. a) The relational level(R) in iconic moe is van Hiele level 1. b) The multisturctural level(M$_2$) in the second cycle of concrete-symbolic mode is van Hiel level 2. c) The relation level(R$_2$) in the second cycle of concrete-symbolic mode is van Hiele level 3. d) The unistructural level(U$_2$) in the second cycle of formal mode is van Hiele level 4. e) The postformal mode is van Hiele levle 5. Though it would be difficult to conclude that these correspondences were perfectly done, if you look at their relation, you can see that the learning process of the students were not carried out uniformly. Therefore, by studying the students response structure, using the SOLO taxonomy, and identifying the learning cycle and understand the geometrical concept more in depth.

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Dog-Species Classification through CycleGAN and Standard Data Augmentation

  • Chan, Park;Nammee, Moon
    • Journal of Information Processing Systems
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    • 제19권1호
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    • pp.67-79
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    • 2023
  • In the image field, data augmentation refers to increasing the amount of data through an editing method such as rotating or cropping a photo. In this study, a generative adversarial network (GAN) image was created using CycleGAN, and various colors of dogs were reflected through data augmentation. In particular, dog data from the Stanford Dogs Dataset and Oxford-IIIT Pet Dataset were used, and 10 breeds of dog, corresponding to 300 images each, were selected. Subsequently, a GAN image was generated using CycleGAN, and four learning groups were established: 2,000 original photos (group I); 2,000 original photos + 1,000 GAN images (group II); 3,000 original photos (group III); and 3,000 original photos + 1,000 GAN images (group IV). The amount of data in each learning group was augmented using existing data augmentation methods such as rotating, cropping, erasing, and distorting. The augmented photo data were used to train the MobileNet_v3_Large, ResNet-152, InceptionResNet_v2, and NASNet_Large frameworks to evaluate the classification accuracy and loss. The top-3 accuracy for each deep neural network model was as follows: MobileNet_v3_Large of 86.4% (group I), 85.4% (group II), 90.4% (group III), and 89.2% (group IV); ResNet-152 of 82.4% (group I), 83.7% (group II), 84.7% (group III), and 84.9% (group IV); InceptionResNet_v2 of 90.7% (group I), 88.4% (group II), 93.3% (group III), and 93.1% (group IV); and NASNet_Large of 85% (group I), 88.1% (group II), 91.8% (group III), and 92% (group IV). The InceptionResNet_v2 model exhibited the highest image classification accuracy, and the NASNet_Large model exhibited the highest increase in the accuracy owing to data augmentation.

퍼지학습법을 이용한 크레인 시스템의 다변수 제어 (Control for Multi-variable in Crane System using Fuzzy Learning Method)

  • 임윤규;정병묵
    • 한국정밀공학회지
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    • 제16권7호
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    • pp.144-150
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    • 1999
  • n active control for the swing of crane systems is very important for increasing the productivity. This article introduces the control for the position and the swing of a crane using the fuzzy learning method. Because the crane is a multi-variable system, learning is done to control both position and swing of the crane. Also the fuzzy control rules are separately acquired with the loading and unloading situation of the crane for more accurate control. The result of simulations shows that the crane is just controlled for a very large swing angle of 1 radian within nearly one cycle.

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