• Title/Summary/Keyword: 학습 질문

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A Study on the effect of Learning organization activities on the Job burnout -Trustworthiness as a Moderating variable- (학습조직활동이 직무소진에 미치는 영향 -상사 신뢰성의 조절효과를 중심으로-)

  • Kim, Jin-Wook;Chang, Young-Chul
    • Management & Information Systems Review
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    • v.35 no.4
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    • pp.185-211
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    • 2016
  • This study examined the impact of learning organization activities on burnout and the moderating effect of supervisor trust in a learning organization. The results of the study shows that among the activities of a learning organization, independent variables in this study, promoting inquiry and dialogue as well as encouraging collaboration and team learning affect burnout. In other words, the dedication of an organization to creating a culture in which various learning approaches are experimented through questioning and giving feedback as well as collaborative learning that can reinforce the effective use of team resources have an impact on reducing emotional exhaustion, which is considered to be at the core of burnout. Plus, these factors reduce impersonalization, which is activated to prevent further emotional exhaustion by dealing with customers, colleagues and jobs in a cold, negative and perfunctory way. In this study, the dimensions of promoting inquiry and dialogue as well as encouraging collaboration and team learning were found to reduce the decline in personal sense of achievement of an employee with a negative assessment of himself or herself derived from a lack of achievement in his or her job. Supervisor trust (integrity, benevolence and ability) had a moderating effect on the relationship between strategic learning leadership and impersonalization/emotional exhaustion. This suggests that the trust of supervisor helps mediate and moderate the emotional exhaustion and impersonalization of organizational members by encouraging leaders to drive change and take the organization to a new direction. The study has provided implications that communication plays an important role in reducing burnout in the learning context such as positive, appreciative inquiry and feedback analysis to identify strength, and that supervisor trust is critical in order to ensure strategic learning leadership exerts greater influence on the organization.

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The Needs Assessment of Middle School Students for Practical Reasoning Home Economics Classes in the Distance Learning Environment (원격학습 환경에서 가정교과 실천적 추론 과정에 대한 중학생의 요구도 조사연구)

  • Choi, Seong-Youn
    • Journal of Korean Home Economics Education Association
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    • v.33 no.1
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    • pp.1-16
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    • 2021
  • The purpose of this study was to investigate the needs of middle school students for the practical reasoning in a distance learning environment, to verify the needs differences based on the learner's personal characteristics, student-teacher interaction, and student-student interaction, and to investigate the relationships among student-teacher interaction, voluntary participation of students, and the students' perception of the extent to which practical reasoning is implemented in distance learning. For this purpose, 1,842 middle school students from seven schools in Gyeonggi, Daejeon, Chungbuk, and Sejong areas were surveyed online to investigate the importance of the practical reasoning questions and the how much practical reasoning is implemented in current distance learning. Among them, 1,095 responses were used for final analysis and descriptive statistics, independent sample t-test, one-way ANOVA, and path analysis were conducted. As a result of the study, first, middle school students acknowledged that the practical reasoning was important with the importance average 3.76. Based on the locus for focus model, the priorities of the needs in home economics class were examined, and the values and importance of the problem, and the ramification of the solution were considered to be of high priority. Second, characteristics of middle school students, student-teacher interaction and student-student interaction were found to have positive influence on needs for practical reasoning, while no difference were found by gender or voluntary participation in distance learning. Third, the voluntary participation of students and the student-teacher interaction in distance learning had a positive (+) significant effect on perceived implementation of practical reasoning, yet negative (-) significant effect on needs for practical reasoning.

Development of the Remote-Educating Communication Tool using DCOM Voice Module (DCOM 음성 모듈을 이용한 원격 대화식 학습 도구의 개발)

  • Jang, Seung-Ju
    • The KIPS Transactions:PartA
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    • v.10A no.2
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    • pp.173-180
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    • 2003
  • This paper proposes Remote Educating Communication Tool (RECT) that allows students and teachers to communicate using Web-based Bulletin Board System. The distance teaching using DCOM (Distributed Component Object Model) voice module is used to enhance academic accomplishments for students in computer class. The DCOM voice module to be used in distance learning is designed, implemented and applied to teachers and students in the computer class in order to measure and analyze academic results. The RECT server provides Q&A sessions between students and teachers in the BBS using recording and playback functions. The client RECT includes recording and playback functions. The client module of RECT receives and uses DCOM module. When recording, the client transmits voice files with the recorded content to the server.

New Experimental Methods to Improve on the Understandings of Atmospheric Pressure for Middle School Students (중학생들의 대기압에 대한 개념을 향상시키기 위한 실험방법 개선안)

  • Lee, Hyun-Sook;Kim, Jae-Hwan
    • Journal of the Korean earth science society
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    • v.21 no.6
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    • pp.647-654
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    • 2000
  • The purpose of this study is to investigate the types of concepts about atmospheric pressure of middle school students and to design a new method to improve students' understandings on atmospheric pressure. The second grade students of the middle school has been selected and examined their pre-concepts on atmospheric pressure through questionnaires and interviews. Two groups of students have been taught using the second grade science textbooks and experimental methods designed from this study, respectively. The results suggest that we need to develope various teaching methods that can improve alternative concept as well as experimental tools that can help students understand difficult scientific concepts. The reason is that once alternative concept is occupied, it is extremely difficult to fix it. In addition, the proposed experimental methods are effective in establishing the concept and understanding on atmospheric pressure.

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Prediction of Citizens' Emotions on Home Mortgage Rates Using Machine Learning Algorithms (기계학습 알고리즘을 이용한 주택 모기지 금리에 대한 시민들의 감정예측)

  • Kim, Yun-Ki
    • Journal of Cadastre & Land InformatiX
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    • v.49 no.1
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    • pp.65-84
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    • 2019
  • This study attempted to predict citizens' emotions regarding mortgage rates using machine learning algorithms. To accomplish the research purpose, I reviewed the related literature and then set up two research questions. To find the answers to the research questions, I classified emotions according to Akman's classification and then predicted citizens' emotions on mortgage rates using six machine learning algorithms. The results showed that AdaBoost was the best classifier in all evaluation categories. However, the performance level of Naive Bayes was found to be lower than those of other classifiers. Also, this study conducted a ROC analysis to identify which classifier predicts each emotion category well. The results demonstrated that AdaBoost was the best predictor of the residents' emotions on home mortgage rates in all emotion categories. However, in the sadness class, the performance levels of the six algorithms used in this study were much lower than those in the other emotion categories.

Research cases and considerations in the field of hydrosystems using ChatGPT (ChatGPT를 활용한 수자원시스템분야 문제해결사례 소개 및 고찰)

  • Do Guen Yoo;Chan Wook Lee
    • Proceedings of the Korea Water Resources Association Conference
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    • 2023.05a
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    • pp.98-98
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    • 2023
  • ChatGPT(Chat과 Generative Pre-trained Transformer의 합성어)는 사용자와 주고받는 대화의 과정을 통해 질문에 답하도록 설계된 대형언어모델로, 지도학습과 강화학습을 모두 사용하여 세밀하게 조정된 인공지능 챗봇이다. ChatGPT는 주고받은 대화와 대화의 문맥을 기억할 수 있으며, 보고서나 실제로 작동하는 파이썬 코드를 비롯한 인간과 유사하게 상세하고 논리적인 글을 만들어 낼 수 있다고 알려져있다. 본 연구에서는 수자원시스템분야의 문제해결에 있어 ChatGPT의 적용가능성을 사례기반으로 확인하고, ChatGPT의 올바른 활용을 위해 필요한 사항에 대해 고찰하였다. 수자원시스템분야의 대표적인 연구주제인 상수관망시스템의 누수인지와 수리해석을 통한 문제해결에 ChatGPT를 활용하였다. 즉, 딥러닝 기반의 데이터분석을 활용한 누수인지와 오픈소스기반의 수리해석 모델을 활용한 관망시스템 적정 분석을 목표로 ChatGPT와 대화를 진행하고, ChatGPT에 의해 제안된 코드를 구동하여 결과를 분석하였다. ChatGPT가 제시한 코드의 구동결과를 사전에 연구자가 직접 구현한 코드구동 결과와 비교분석하였다. 분석결과 ChatGPT가 제시한 코드가 보다 더 간결할 수 있으며, 상대적으로 경쟁력 있는 결과를 도출하는 것을 확인하였다. 다만, 상대적으로 간결한 코드와 우수한 구동결과를 획득하기 위해서는 해당 도메인의 전문적 지식을 바탕으로 적절한 다수의 질문을 해야 하며, ChatGPT에 의해 작성된 코드의 의미를 명확히 해석하거나 비판적 분석을 하기 위해서는 전문가지식이 반드시 필요함을 알 수 있었다.

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LUKE based Korean Dense Passage Retriever (LUKE 기반의 한국어 문서 검색 모델 )

  • Dongryul Ko;Changwon Kim;Jaieun Kim;Sanghyun Park
    • Annual Conference on Human and Language Technology
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    • 2022.10a
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    • pp.131-134
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    • 2022
  • 자연어처리 분야 중 질의응답 태스크는 전통적으로 많은 연구가 이뤄지고 있는 분야이며, 최근 밀집 벡터를 사용한 리트리버(Dense Retriever)가 성공함에 따라 위키피디아와 같은 방대한 정보를 활용하여 답변하는 오픈 도메인 QA(Open-domain Question Answering) 연구가 활발하게 진행되고 있다. 대표적인 검색 모델인 DPR(Dense Passage Retriever)은 바이 인코더(Bi-encoder) 구조의 리트리버로서, BERT 모델 기반의 질의 인코더(Query Encoder) 및 문단 인코더(Passage Encoder)를 통해 임베딩한 벡터 간의 유사도를 비교하여 문서를 검색한다. 하지만, BERT와 같이 엔티티(Entity) 정보에 대해 추가적인 학습을 하지 않은 언어모델을 기반으로 한 리트리버는 엔티티 정보가 중요한 질문에 대한 답변 성능이 저조하다. 본 논문에서는 엔티티 중심의 질문에 대한 답변 성능 향상을 위해, 엔티티를 잘 이해할 수 있는 LUKE 모델 기반의 리트리버를 제안한다. KorQuAD 1.0 데이터셋을 활용하여 한국어 리트리버의 학습 데이터셋을 구축하고, 모델별 리트리버의 검색 성능을 비교하여 제안하는 방법의 성능 향상을 입증한다.

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Changes in the Teaching Expertise of Teachers Participating in an In-School Professional Learning Community for Elementary Science Instructional Research (초등과학 수업 연구를 위한 학교 안 전문적 학습공동체 참여 교사들의 수업 전문성 변화 양상)

  • Kim, Eun Seo;Lee, Sun-Kyung
    • Journal of Korean Elementary Science Education
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    • v.43 no.1
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    • pp.185-200
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    • 2024
  • This study explored the changes in the elementary science teaching expertise of teachers who participated in an in-school professional learning community for elementary science instructional research. Six elementary school teachers from grades 4, 5, and 6 at an 18-class S elementary school in a medium-sized city in Chungcheongbuk-do conducted collaborative instructional research on elementary science lessons as part of an in-school professional learning community, which was held 26 times over 7 months in 2020. During the professional learning community, video and audio recordings of the activities, research lessons, course materials, and professional learning community reflection activities were collected for analysis. The collected data were analyzed using qualitative research methods; data processing, reading, note-taking, description, classification, interpretation, reporting, and visualization; and the instructional professionalism elements were extracted based on the instructional professionalism framework. In the early professional learning community activity stages, the participating teachers first discussed their teaching perspectives, their experiences, and their goals for teaching science, which resulted in a selection of research questions. The teachers then collaboratively designed and implemented research lessons for each grade level, after which lesson reflections were conducted. The teachers' abilities to engage in qualitative reflection on the research questions improved after each reflection iteration. It was found that this professional learning community collaborative lesson study experience positively contributed to teaching expertise development. Based on the study findings, the implications for using professional learning communities to improve elementary teachers' science teaching expertise are given.

Denoising Response Generation for Learning Korean Conversational Model (한국어 대화 모델 학습을 위한 디노이징 응답 생성)

  • Kim, Tae-Hyeong;Noh, Yunseok;Park, Seong-Bae;Park, Se-Yeong
    • Annual Conference on Human and Language Technology
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    • 2017.10a
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    • pp.29-34
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    • 2017
  • 챗봇 혹은 대화 시스템은 특정 질문이나 발화에 대해 적절한 응답을 해주는 시스템으로 자연어처리 분야에서 활발히 연구되고 있는 주제 중 하나이다. 최근에는 대화 모델 학습에 딥러닝 방식의 시퀀스-투-시퀀스 프레임워크가 많이 이용되고 있다. 하지만 해당 방식을 적용한 모델의 경우 학습 데이터에 나타나지 않은 다양한 형태의 질의문에 대해 응답을 잘 못해주는 문제가 있다. 이 논문에서는 이러한 문제점을 해결하기 위하여 디노이징 응답 생성 모델을 제안한다. 제안하는 방법은 다양한 형태의 노이즈가 임의로 가미된 질의문을 모델 학습 시에 경험시킴으로써 강건한 응답 생성이 가능한 모델을 얻을 수 있게 한다. 제안하는 방법의 우수성을 보이기 위해 9만 건의 질의-응답 쌍으로 구성된 한국어 대화 데이터에 대해 실험을 수행하였다. 실험 결과 제안하는 방법이 비교 모델에 비해 정량 평가인 ROUGE 점수와 사람이 직접 평가한 정성 평가 모두에서 더 우수한 결과를 보이는 것을 확인할 수 있었다.

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Denoising Response Generation for Learning Korean Conversational Model (한국어 대화 모델 학습을 위한 디노이징 응답 생성)

  • Kim, Tae-Hyeong;Noh, Yunseok;Park, Seong-Bae;Park, Se-Yeong
    • 한국어정보학회:학술대회논문집
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    • 2017.10a
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    • pp.29-34
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    • 2017
  • 챗봇 혹은 대화 시스템은 특정 질문이나 발화에 대해 적절한 응답을 해주는 시스템으로 자연어처리 분야에서 활발히 연구되고 있는 주제 중 하나이다. 최근에는 대화 모델 학습에 딥러닝 방식의 시퀀스-투-시퀀스 프레임워크가 많이 이용되고 있다. 하지만 해당 방식을 적용한 모델의 경우 학습 데이터에 나타나지 않은 다양한 형태의 질의문에 대해 응답을 잘 못해주는 문제가 있다. 이 논문에서는 이러한 문제점을 해결하기 위하여 디노이징 응답 생성 모델을 제안한다. 제안하는 방법은 다양한 형태의 노이즈가 임의로 가미된 질의문을 모델 학습 시에 경험시킴으로써 강건한 응답 생성이 가능한 모델을 얻을 수 있게 한다. 제안하는 방법의 우수성을 보이기 위해 9만 건의 질의-응답 쌍으로 구성된 한국어 대화 데이터에 대해 실험을 수행하였다. 실험 결과 제안하는 방법이 비교 모델에 비해 정량 평가인 ROUGE 점수와 사람이 직접 평가한 정성 평가 모두에서 더 우수한 결과를 보이는 것을 확인할 수 있었다.

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