• Title/Summary/Keyword: 기계부문

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Industrial Clusters and Their Boundaries: A Case Study for Plants in the Cincinnati metropolitan Area (씬씨내티 대도시지역의 산업군집과 경계설정)

  • Lee, Bo-Young
    • Journal of the Korean association of regional geographers
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    • v.6 no.3
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    • pp.169-184
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    • 2000
  • Industrial clusters and their boundaries are identified by factor and hot spot analyses for the greater Cincinnati metropolitan area in USA. While traditional input-output approach identified aspatial industrial clusters, this study combines traditional approach with GIS techniques to identify their boundaries. Combining the results of input-output industrial clusters with the leading industries groups, we have identified five leading industry clusters. They are food (20), chemicals (28), metal manufacturing (32), metal products (33), and machinery (35). We also used hot spot analysis to visualize each industry cluster on the research area by using Arcview software. Determining the degree to which such industries are associated spatially and their spatial delimitation may be an additional approach to measuring the efficiency of the spatial organization of an economy. It is hoped that the industrial clusters and industrial spatial clusters approaches may also proved the basis for the development of new models of the spatial arrangement of industry at a level more aggregated than that of the single plant or firm.

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A Study on the Backward and Forward Linkage Effects among Korea, China and Japan by International Input-Output Analysis (한·중·일 3국간 전후방연쇄 효과의 변화와 특징)

  • Kim, Hong-Youl;Cui, Hua-Wei
    • International Commerce and Information Review
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    • v.17 no.1
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    • pp.241-264
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    • 2015
  • This study analyzed backward and forward linkage effects among Korea, China and Japan by International Input-Output(I-O) tables. Index of dispersion power and sensitivity degrees were measured after making 'Korea, China and Japan International Input-Output(I-O) Table'. The study showed that the inter-dependency between Korea and China was increased while the influences of Japanese was decreased among the 3 countries. Under the de-industrialization, the 3 countries decreased influences over their domestic industry but increased the inter-dependency over the other countries. In addition, backward and forward linkage effects was significantly high in some industrial sectors such as petroleum, transportation, machinery equipment, service and public administration in 3 countries. In the case of service, the linkage effects among the 3 countries increased which means that the roles and inter-dependency of service was also gradually increasing in 3 countries.

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Using Thesaurus for Disambiguation and it's limit (동사의 애매성 해소를 위한 시소러스의 이용과 한계)

  • Song, Young-Bin;Choi, Key-Sun
    • Annual Conference on Human and Language Technology
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    • 2000.10d
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    • pp.255-261
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    • 2000
  • 동사의 애매성 해소는 언어학의 여러 부문 중에서도 가장 실체가 불명확한 의미를 다루는 것이기 때문에 언어학뿐만 아니라 자연언어처리에 있어서도 가장 해결하기 어려운 문제 중에 하나이다. 애매성은 언어학에서 말하는 동음이의어와 다의어를 동시에 포괄하는 개념으로 정의된다. 단일어를 대상으로 한 이와 같은 분류는 비교적 명확한 반면 두 개의 언어 이상의 다국어를 대상으로 하는 기계번역용 사전과 같은 대역사전에 있어서는 동음이의어와 다의어의 구변은 경계가 불명확하여 의미에 기반한 대역어의 작성에 도움이 되지 않는다. 그 원인은 의미를 구성하는 세 가지 요소인 [실체], [개념], [표현]의 관점에서 [실체]와 [개념]은 어느 언어를 막론하고 보편적인 반면 [실체]와 [개념]을 최종적으로 실현하는 형대인 [표현]의 경우 각각의 언어에 따라 그 형태가 다르게 표출된다고 하는 사실 때문이다. [나무]라는 [실체]가 있다고 할 때 [나무]에 대한 [실체]와 [개념]은 언어를 초월해서 공통적이라고 할 수 있다. 한편, [개념]을 표현하는 실체인 [표현]은 언어에 따라 [namu](한국어), [ki](일본어), [tree](영어) 등과 같이 언어에 따라 자의적으로 [개념]을 표현하고 있다. [namu], [ki], [tree]가 같은 뜻을 나타낸다고 인식할 수 있는 것은 [개념]이 같기 때문이지 이들 각각의 [표현]이 의미적 연관성을 갖고 있기 때문은 아니다. 지금까지 의미를 다루는 연구에서는 이와 같은 관점이 결여됨으로 인해 의미의 다양성을 정확히 파악하는 데 한계가 있었으며 애매성 해소에 관한 연구도 부분적 시도에 그친 면이 적지 않다. 본고에서는 다국어를 대상으로 한 대역사전의 구축에 있어서 다의어와 동음이의어에 대한 종래의 분류의 문제점을 지적하고 나아가 애매성 해소의 한 방법론으로 활발히 이용되고 있는 시소러스의 분류체계의 한계를 지적한다. 나아가 이의 해결책을 한국어와 일본어의 대역사전의 구축에서 얻어진 경험을 바탕으로 제시한다.

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An Adaptive Web Surfing System for Supporting Autonomous Navigation (자동항해를 지원하는 적응형 웹 서핑 시스템)

  • 국형준
    • Journal of KIISE:Software and Applications
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    • v.31 no.4
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    • pp.439-446
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    • 2004
  • To design a user-adaptive web surfing system, we nay take the approach to divide the whole process into three phases; collecting user data, processing the data to construct and improve the user profile, and adapting to the user by applying the user profile. We have designed three software agents. Each privately works in each phase and they collaboratively support adaptive web surfing. They are IIA(Interactive Interface Agent), UPA(User Profile Agent), and ANA(Autonomous Navigation Agent). IIA provides the user interface, which collects data and performs mechanical navigation support. UPA processes the collected user data to build and update the user profile while user is web-surfing. ANA provides an autonomous navigation mode in which it automatically recommends web pages that are selected based on the user profile. The proposed approach and design method, through extensions and refinements, may be used to build a practical adaptive web surfing system.

Evaluation of Records and Archives Management Innovation in 2017~2020 (2017~2020년 기록관리 혁신 평가 국가기록원을 중심으로)

  • Shim, Sungbo
    • The Korean Journal of Archival Studies
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    • no.65
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    • pp.7-46
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    • 2020
  • Since the launch of the Moon Jae-in government in May 2017, the records and archives community hoped to overcome the delays in records and archives management over the past nine years and to pursue record and archives management innovation. This article focuses on the record and archives management innovation that the National Archives of Korea has been pursuing in the public records and archives management sector for about 3 years until the first half of 2020, and evaluates the progress and contents focusing on the main agent, innovation plan, revision of laws, and major events.

Optimal design of a Linear Active Magnetic Bearing using Halbach magnet array for Magnetic levitation (자기부상용 Halbach 자석 배열을 이용한 선형 능동자기 베어링의 최적설계)

  • Lee, Hakjun;Ahn, Dahoon
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.22 no.1
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    • pp.792-800
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    • 2021
  • This paper presents a new structure for a linear active magnetic bearing using a Halbach magnet array. The proposed magnetic bearing consisted of a Halbach magnet array, center magnet, and single coil. The proposed linear active magnetic bearing has a high dynamic force compared to the previous study. The high dynamic force could be obtained by varying the thickness of a horizontally magnetized magnet. The new structure of Halbach linear active magnetic bearing has a high dynamic force. Therefore, the proposed linear active magnetic bearing increased the bandwidth of the system. Magnetic modeling and optimal design of the new structure of the Halbach linear active magnetic bearing were performed. The optimal design was executed on the geometric parameters of the proposed linear active magnetic bearing using Sequential Quadratic Programming. The proposed linear active magnetic bearing had a static force of 45.06 N and a Lorentz force constant of 19.54 N/A, which is higher than previous research.

A study on the construction of the quality prediction model by artificial neural intelligence through integrated learning of CAE-based data and experimental data in the injection molding process (사출성형공정에서 CAE 기반 품질 데이터와 실험 데이터의 통합 학습을 통한 인공지능 품질 예측 모델 구축에 대한 연구)

  • Lee, Jun-Han;Kim, Jong-Sun
    • Design & Manufacturing
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    • v.15 no.4
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    • pp.24-31
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    • 2021
  • In this study, an artificial neural network model was constructed to convert CAE analysis data into similar experimental data. In the analysis and experiment, the injection molding data for 50 conditions were acquired through the design of experiment and random selection method. The injection molding conditions and the weight, height, and diameter of the product derived from CAE results were used as the input parameters for learning of the convert model. Also the product qualities of experimental results were used as the output parameters for learning of the convert model. The accuracy of the convert model showed RMSE values of 0.06g, 0.03mm, and 0.03mm in weight, height, and diameter, respectively. As the next step, additional randomly selected conditions were created and CAE analysis was performed. Then, the additional CAE analysis data were converted to similar experimental data through the conversion model. An artificial neural network model was constructed to predict the quality of injection molded product by using converted similar experimental data and injection molding experiment data. The injection molding conditions were used as input parameters for learning of the predicted model and weight, height, and diameter of the product were used as output parameters for learning. As a result of evaluating the performance of the prediction model, the predicted weight, height, and diameter showed RMSE values of 0.11g, 0.03mm, and 0.05mm and in terms of quality criteria of the target product, all of them showed accurate results satisfying the criteria range.

A Machine Learning-based Total Production Time Prediction Method for Customized-Manufacturing Companies (주문생산 기업을 위한 기계학습 기반 총생산시간 예측 기법)

  • Park, Do-Myung;Choi, HyungRim;Park, Byung-Kwon
    • Journal of Intelligence and Information Systems
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    • v.27 no.1
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    • pp.177-190
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    • 2021
  • Due to the development of the fourth industrial revolution technology, efforts are being made to improve areas that humans cannot handle by utilizing artificial intelligence techniques such as machine learning. Although on-demand production companies also want to reduce corporate risks such as delays in delivery by predicting total production time for orders, they are having difficulty predicting this because the total production time is all different for each order. The Theory of Constraints (TOC) theory was developed to find the least efficient areas to increase order throughput and reduce order total cost, but failed to provide a forecast of total production time. Order production varies from order to order due to various customer needs, so the total production time of individual orders can be measured postmortem, but it is difficult to predict in advance. The total measured production time of existing orders is also different, which has limitations that cannot be used as standard time. As a result, experienced managers rely on persimmons rather than on the use of the system, while inexperienced managers use simple management indicators (e.g., 60 days total production time for raw materials, 90 days total production time for steel plates, etc.). Too fast work instructions based on imperfections or indicators cause congestion, which leads to productivity degradation, and too late leads to increased production costs or failure to meet delivery dates due to emergency processing. Failure to meet the deadline will result in compensation for delayed compensation or adversely affect business and collection sectors. In this study, to address these problems, an entity that operates an order production system seeks to find a machine learning model that estimates the total production time of new orders. It uses orders, production, and process performance for materials used for machine learning. We compared and analyzed OLS, GLM Gamma, Extra Trees, and Random Forest algorithms as the best algorithms for estimating total production time and present the results.

Contract Farming Through a Cooperative to Boost Agricultural Sector Restructuring: Evidence from a Rural Commune in Central Vietnam (베트남 농업구조개혁과 협동조합의 계약영농: 중부베트남의 농촌을 사례로)

  • Duong, Thi Thu Ha;Kim, Doo-Chul
    • Journal of the Economic Geographical Society of Korea
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    • v.25 no.1
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    • pp.109-130
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    • 2022
  • The Vietnamese government has proposed contract farming through a new type of cooperative as an institutional innovation which aims to restructure the agricultural sector. However, policy changes often impact farmers, who bear the primary effects of the transition process. Understanding households' strategies for land use and livelihood is crucial for policymaking in the agricultural development field. This study was conducted in the rural Binh Dao commune in Central Vietnam. We analyzed household members' labor force changes and their livelihood behaviors after their participation in a contract farming scheme using qualitative analysis methods combined with geographic information system (GIS) support, based on secondary data and in-depth interviews of 190 farmers. Simultaneously, we created a digital map of the cooperative's production area to investigate changes in land use and production activities. The findings show that contract farming shaped the vertical coordination of the value chain from the farmers to the cooperative and agricultural product trading companies. Subsequently, it encouraged land use and labor efficiency due to mechanical support. In addition, it also increased productivity and protected farmers from market risks. However, despite its positive effects on agricultural productivity in this case, the contract farming scheme could not achieve the restructuring of the rural labor force toward non-agricultural sectors. Ironically, farmers in the Binh Dao commune tended to increase cultivable land during the agricultural restructuring program, rather than switching their labor forces to non-agricultural sectors. The lack of stable non-farming job opportunities in rural Vietnam results in challenges to the efficiency of agricultural restructuring programs. Consequently, farmers in the Binh Dao commune are still smallholder farmers, depending on the family labor force.

Defect Inspection and Physical-parameter Measurement for Silicon Carbide Large-aperture Optical Satellite Telescope Mirrors Made by the Liquid-silicon Infiltration Method (액상 실리콘 침투법으로 제작된 대구경 위성 망원경용 SiC 반사경의 결함 검사와 물성 계수 측정)

  • Bae, Jong In;Kim, Jeong Won;Lee, Haeng Bok;Kim, Myung-Whun
    • Korean Journal of Optics and Photonics
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    • v.33 no.5
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    • pp.218-229
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    • 2022
  • We have investigated reliable inspection methods for finding the defects generated during the manufacturing process of lightweight, large-aperture satellite telescope mirrors using silicon carbide, and we have measured the basic physical properties of the mirrors. We applied the advanced ceramic material (ACM) method, a combined method using liquid-silicon penetration sintering and chemical vapor deposition for the carbon molded body, to manufacture four SiC mirrors of different sizes and shapes. We have provided the defect standards for the reflectors systematically by classifying the defects according to the size and shape of the mirrors, and have suggested effective nondestructive methods for mirror surface inspection and internal defect detection. In addition, we have analyzed the measurements of 14 physical parameters (including density, modulus of elasticity, specific heat, and heat-transfer coefficient) that are required to design the mirrors and to predict the mechanical and thermal stability of the final products. In particular, we have studied the detailed measurement methods and results for the elastic modulus, thermal expansion coefficient, and flexural strength to improve the reliability of mechanical property tests.