• Title/Summary/Keyword: 최적객체선정

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A Study on Selection Method of COTS Component Based on the Software Quality Measurement (소프트웨어 품질측정에 의한 상용컴포넌트 선정방법에 관한 연구)

  • Oh, Kie-Sung;Lee, Nam-Yong;Rhew, Sung-Yul
    • The KIPS Transactions:PartD
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    • v.9D no.5
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    • pp.897-902
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    • 2002
  • Because of rapid evolution of software technique, numerous software professionals have been concerned with component based development methodologies. However, it is hard to find out a systematic technique for the selection of COTS (Commercial Off The Shelf) component in consumer position. Up to date, the major of component quality evaluation is object-oriented metric based evaluation methodology. But this paper present four step process and evaluation criteria based on MCDM (Multiple Criteria Decision Making) technique for optimal COTS component selection in consumer position. We considered funtionality, efficiency, usability based on IS0/IEC 9126 for Quality measurement and executed practical analysis about commercial EJB component in internet. This paper show that the proposed selection technique is applicable to optimal COTS component selection.

Analysis of Land Cover Characteristics with Object-Based Classification Method - Focusing on the DMZ in Inje-gun, Gangwon-do - (객체기반 분류기법을 이용한 토지피복 특성분석 - 강원도 인제군의 DMZ지역 일원을 대상으로 -)

  • Na, Hyun-Sup;Lee, Jung-Soo
    • Journal of the Korean Association of Geographic Information Studies
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    • v.17 no.2
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    • pp.121-135
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    • 2014
  • Object-based classification methods provide a valid alternative to traditional pixel-based methods. This study reports the results of an object-based classification to examine land cover in the demilitarized zones(DMZs) of Inje-gun. We used land cover classes(7 classes for main category and 13 classes for sub-category) selected from the criteria by Korea Ministry of Environment. The average and standard deviation of the spectrum values, and homogeneity of GLCM were chosen to map land cover types in an hierarchical approach using the nearest neighborhood method. We then identified the distributional characteristics of land cover by considering 3 topographic characteristics (altitude, slope gradient, distance from the Southern Limited Line(SLL)) within the DMZs. The results showed that scale 72, shape 0.2, color 0.8, compactness 0.5 and smoothness 0.5 were the optimum weight values while scale, shape and color were most influenced parameters in image segmentation. The forests (92%) were main land cover type in the DMZs; the grassland(5%), the urban area (2%) and the forests (broadleaf forest: 44%, mixed forest: 42%, coniferous forest: 6%) also occupied mostly in land cover classes for sub-category. The results also showed that facilities and roads had higher density within 2 km from the SLL, while paddy, field and bare land were distributed largely outside 6 km from the SLL. In addition, there was apparent distinction in land cover by topographic characteristics. The forest had higher density at above altitude 600m and above slope gradient $30^{\circ}$ while agriculture, bare land and grass land were distributed mainly at below altitude 600m and below slope gradient $30^{\circ}$.

Land Cover Classification Using UAV Imagery and Object-Based Image Analysis - Focusing on the Maseo-myeon, Seocheon-gun, Chungcheongnam-do - (UAV와 객체기반 영상분석 기법을 활용한 토지피복 분류 - 충청남도 서천군 마서면 일원을 대상으로 -)

  • MOON, Ho-Gyeong;LEE, Seon-Mi;CHA, Jae-Gyu
    • Journal of the Korean Association of Geographic Information Studies
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    • v.20 no.1
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    • pp.1-14
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    • 2017
  • A land cover map provides basic information to help understand the current state of a region, but its utilization in the ecological research field has deteriorated due to limited temporal and spatial resolutions. The purpose of this study was to investigate the possibility of using a land cover map with data based on high resolution images acquired by UAV. Using the UAV, 10.5 cm orthoimages were obtained from the $2.5km^2$ study area, and land cover maps were obtained from object-based and pixel-based classification for comparison and analysis. From accuracy verification, classification accuracy was shown to be high, with a Kappa of 0.77 for the pixel-based classification and a Kappa of 0.82 for the object-based classification. The overall area ratios were similar, and good classification results were found in grasslands and wetlands. The optimal image segmentation weights for object-based classification were Scale=150, Shape=0.5, Compactness=0.5, and Color=1. Scale was the most influential factor in the weight selection process. Compared with the pixel-based classification, the object-based classification provides results that are easy to read because there is a clear boundary between objects. Compared with the land cover map from the Ministry of Environment (subdivision), it was effective for natural areas (forests, grasslands, wetlands, etc.) but not developed areas (roads, buildings, etc.). The application of an object-based classification method for land cover using UAV images can contribute to the field of ecological research with its advantages of rapidly updated data, good accuracy, and economical efficiency.

The Method to Process Nearest Neighbor Queries Using an Optimal Search Distance (최적탐색거리를 이용한 최근접질의의 처리 방법)

  • Seon, Hwi-Joon;Hwang, Bu-Hyun;Ryu, Keun-Ho
    • The Transactions of the Korea Information Processing Society
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    • v.4 no.9
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    • pp.2173-2184
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    • 1997
  • Among spatial queries handled in spatial database systems, nearest neighbor queries to find the nearest spatial object from the given locaion occur frequently. The number of searched nodes in an index must be minimized in order to increase the performance of nearest neighbor queries. An Existing approach considered only the processing of an nearest neighbor query in a two-dimensional search space and could not optimize the number of searched nodes accurately. In this paper, we propose the optimal search distance and prove its properties. The proposed optimal search distance is the measurement of a new search distance for accurately selecting the nodes which will be searched in processing nearest neighbor queries. We present an algorithm for processing the nearest neighbor query by applying the optimal search distance to R-trees and prove that the result of query processing is correcter than the existing approach.

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An Experiment for Determining Threshold of Defect Prediction Models using Object Oriented Metrics (객체지향 메트릭을 이용한 결함 예측 모형의 임계치 설정에 관한 실험)

  • Kim, Yun-Kyu;Chae, Heung-Seok
    • Journal of KIISE:Computing Practices and Letters
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    • v.15 no.12
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    • pp.943-947
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    • 2009
  • To support an efficient management of software verification and validation activities, many defect prediction models have been proposed based on object oriented metrics. In order to apply defect prediction models, we need to determine a threshold value. Because we cannot know actually where defects are, it is difficult to determine threshold. Therefore, we performed a series of experiments to explore the issue of determining a threshold. In the experiments, we applied defect prediction models to other systems different from the system used in building the prediction model. Specifically, we have applied three models - Olague model, Zhou model, and Gyimothy model - to four different systems. As a result, we found that the prediction capabilities varied considerably with a chosen threshold value. Therefore, we need to perform a study on the determination of an appropriate threshold value to improve the applicably of defect prediction models.

Optimization of Deep Learning Model Based on Genetic Algorithm for Facial Expression Recognition (얼굴 표정 인식을 위한 유전자 알고리즘 기반 심층학습 모델 최적화)

  • Park, Jang-Sik
    • The Journal of the Korea institute of electronic communication sciences
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    • v.15 no.1
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    • pp.85-92
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    • 2020
  • Deep learning shows outstanding performance in image and video analysis, such as object classification, object detection and semantic segmentation. In this paper, it is analyzed that the performances of deep learning models can be affected by characteristics of train dataset. It is proposed as a method for selecting activation function and optimization algorithm of deep learning to classify facial expression. Classification performances are compared and analyzed by applying various algorithms of each component of deep learning model for CK+, MMI, and KDEF datasets. As results of simulation, it is shown that genetic algorithm can be an effective solution for optimizing components of deep learning model.

Landcover classification by coherence analysis from multi-temporal SAR images (다중시기 SAR 영상자료 긴밀도 분석을 통한 토지피복 분류)

  • Yoon, Bo-Yeol;Kim, Youn-Soo
    • Aerospace Engineering and Technology
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    • v.8 no.1
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    • pp.132-137
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    • 2009
  • This study has regard to classification by using multi-temporal SAR data. Multi-temporal JERS-1 SAR images are used for extract the land cover information and possibility. So far, land cover information extracted by high resolution aerial photo, satellite images, and field survey. This study developed on multi-temporal land cover status monitoring and coherence information mapping can be processing by L band SAR image. From July, 1997 to October, 1998 JERS SAR images (9 scenes) coherence values are analyzed and then extracted land cover information factors, so on. This technique which forms the basis of what is called SAR Interferometry or InSAR for short has also been employed in spaceborne systems. In such systems the separation of the antennas, called the baseline is obtained by utilizing a single antenna in a repeat pass.

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Function Organization of nD CAD System for Plant Project by Linking Cost and Resource Information (비용과 자원을 연계한 플랜트공사 nD CAD 시스템 기능 구성 방안)

  • Kang, Leen-Seok;Ji, Sang-Bok;Moon, Hyoun-Seok;An, Jae-Kyu
    • Proceedings of the Korean Institute Of Construction Engineering and Management
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    • 2007.11a
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    • pp.809-812
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    • 2007
  • This study suggests a methodology for organizing functions of nD CAD model which 4D object is linked with cost and resource information. And the suggested model is composed of process analysis function of plant project based on visualized scenario analysis. That is, it is possible to manage effectively not only construction schedule plan, but also resource and cost information by integrating construction management information into nD CAD object. And the suggested model can be utilized as information of a effective decision-making tool through analyzing of optimal process scenario and sharing of an analyzed information.

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The Analysis of Children's Logical Thinking Improvements with Dolittle Programming Learning (Dolittle 프로그래밍 학습을 통한 초등학생의 논리적 사고력 신장에 관한 분석)

  • Hong, Jae-Un;Lee, Soo-Jung
    • 한국정보교육학회:학술대회논문집
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    • 2007.08a
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    • pp.201-206
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    • 2007
  • 현재 컴퓨터 교육은 흥미와 실용위주의 컴퓨터 활용교육과 컴퓨터 소양교육에 치우쳐 있어 컴퓨터의 작동원리 등의 컴퓨터 과학을 이해하기에는 부족함이 많다. 특히 컴퓨터과학 분야 중 문제해결력, 논리적 사고력을 향상시키기 위한 프로그래밍 기초 교육은 보다 강조해야 한다. 본 연구에서는 객체지향형 교육용프로그래밍언어 두리틀을 초등학생들에게 프로그래밍을 지도할 수 있는 최적의 언어로 선정하고 다른 프로그래밍 언어와 비교 분석해 보았다. 그리고 자기 자신의 학습상황을 감독 관리하는 능력인 메타인지 수준에 따라 학습자를 분류한 후, 두리틀 프로그래밍 학습 후 논리적 사고와 그 하위논리의 효과, 그리고 메타인지 수준에 따른 논리적 사고와 그 하위 논리별로 미치는 영향을 분석하였다.

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Integrated GA-VRP Model for Multi-Supply Centers, Dongeui GA-VRP Solver (통합차량 운송경로계획모델)

  • 황흥석
    • Proceedings of the Korea Society for Simulation Conference
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    • 2000.04a
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    • pp.12-17
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    • 2000
  • 본 연구에서는 다 물류센터 문제를 해결하기 위한 통합 차량운송계획모델의 연구로서 다음과 같은 3단계모델을 개발하였다. 첫 번째 단계로서 다 물류센터의 문제를 단일 물류센터 문제로 변환하는 단계로서 물류센터별 공급 가능한 수요지를 선정하기 위한 방법인 구역할당모델(Sector-Clustering Model)을 개발하였으며, 두 번째 단계에서는 구역할당이 이루어진 단일 물류센터별로 차량경로 계획문제를 해결하기 위하여 개선된 Saving 알고리즘을 개발하여 차량종류 및 운송능력 등을 고려한 차량경로계획모델 (VRP)을 개발하였다. 세 번째 단계에서는 차량경로별 차량운송거리 및 시간을 최소화하는 최적차량운송순서계획 모델 GA-TSP을 개발하였다. 또한 객체지향 프로그래밍기법(Object Oriented Programming)을 기반으로 하여 사용자를 위한 GUI-Type 프로그램을 개발하고 다 물류센터의 통합차량운송계획을 위한 실 예를 들어 본 모델의 우수성을 보였다.

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