• Title/Summary/Keyword: Weight map

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An Optimized Partner Searching System for B2B Marketplace Applying Clustering Techniques (군집화 기법을 이용한 B2B Marketplace상의 최적 파트너 검색 시스템)

  • Kim Shin-Young;Kim Soo-Young
    • Proceedings of the Korean Operations and Management Science Society Conference
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    • 2003.05a
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    • pp.572-579
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    • 2003
  • With the expansion of e-commerce, E-marketplace has become one of the most discussed topics in recent years. Limited theoretical works, however, have been done to optimize the practical use of e-marketplace systems. Other potential issues aside, this research has focused on this problem: 'the participants waste too much time, effort and cost to find out their best partner in B2B marketplace.' To solve this problem, this paper proposes a system which provides the user-company with the automated and customized brokering service. The system proposed in this paper assesses the weight on the priorities of a user-company, runs the two-stage clustering algorithm with self-organizing map and K-means clustering technique. Subsequently, the system shows the clustering result and user guide-line. This system enables B2B marketplace to have more efficiency on transaction with smaller pool of partners to be searched.

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Real-time Vehicle Tracking Algorithm According to Eigenvector Centrality of Weighted Graph (가중치 그래프의 고유벡터 중심성에 따른 실시간 차량추적 알고리즘)

  • Kim, Seonhyeong;Kim, Sangwook
    • Journal of Korea Multimedia Society
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    • v.23 no.4
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    • pp.517-524
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    • 2020
  • Recently, many researches have been conducted to automatically recognize license plates of vehicles and use the analyzed information to manage stolen vehicles and track the vehicle. However, such a system must eventually be investigated by people through direct monitoring. Therefore, in this paper, the system of tracking a vehicle is implemented by sharing the information analyzed by the vehicle image among cameras registered in the IoT environment to minimize the human intervention. The distance between cameras is indicated by the node and the weight value of the weighted-graph, and the eigenvector centrality is used to select the camera to search. It demonstrates efficiency by comparing the time between analyzing data using weighted graph searching algorithm and analyzing all data stored in databse. Finally, the path of the vehicle is indicated on the map using parsed json data.

The Effects of Aerobic Exercise on Health Status of the Patients with Essential Hypertension (유산소운동이 본태성 고혈압 대상자의 건강상태에 미치는 효과)

  • Jeon, Eun-Young
    • The Korean Journal of Rehabilitation Nursing
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    • v.6 no.2
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    • pp.173-182
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    • 2003
  • Purpose: This study was conducted to evaluate the effects of aerobic exercise on health status with essential hypertension. Method: A non-equivalent control group design was used. For the experimental group, aerobic exercise was given by researcher at one health center in Daegu. Test for hypothesis was done by $X^2$-test t-test, paired t-test, and unpaired t-test. Result: There were significant differences in systolic, diastolic, and MAP between two groups. There were significant differences in body weight, BMI, and body composition between two groups. Hypothesis 3 was partially supported that the score of health status and physical function of experimental group were significantly higher than that of control group. Conclusion: Findings indicated that this study would contribute to application of aerobic exercise as nursing intervention for the people with high blood pressure.

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A Local Weight Learning Neural Network Architecture for Fast and Accurate Mapping (빠르고 정확한 변환을 위한 국부 가중치 학습 신경회로)

  • 이인숙;오세영
    • Journal of the Korean Institute of Telematics and Electronics B
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    • v.28B no.9
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    • pp.739-746
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    • 1991
  • This paper develops a modified multilayer perceptron architecture which speeds up learning as well as the net's mapping accuracy. In Phase I, a cluster partitioning algorithm like the Kohonen's self-organizing feature map or the leader clustering algorithm is used as the front end that determines the cluster to which the input data belongs. In Phase II, this cluster selects a subset of the hidden layer nodes that combines the input and outputs nodes into a subnet of the full scale backpropagation network. The proposed net has been applied to two mapping problems, one rather smooth and the other highly nonlinear. Namely, the inverse kinematic problem for a 3-link robot manipulator and the 5-bit parity mapping have been chosen as examples. The results demonstrate the proposed net's superior accuracy and convergence properties over the original backpropagation network or its existing improvement techniques.

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REDUCING X-ray BRIGHT GALAXY GROUPS IMAGES WITH THELI PIPELINE

  • NIKAKHTAR, FARNIK
    • Publications of The Korean Astronomical Society
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    • v.30 no.2
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    • pp.671-673
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    • 2015
  • Before analyzing the images taken with a Mosaic CCD imager, the images have to reach a state which can be used for further scientific analysis. The transformation of raw images into calibrated images is called data reduction. Transforming HEavely Light into Images (THELI) is a nearly fully automated reduction pipeline software (Erben et al., 2005). This pipeline works on raw images to remove instrumental signatures, mask unwanted signals, and perform photometric and astrometric calibration. Finally THELI constructs a deep co-added mosaic image and a weight map. In this poster, THELI data reduction procedures will be reviewed and the reduction process for raw images of seven X-ray bright groups, extracted from GEMS groups (Osmond & Ponman, 2004) obtained by the Wide Field Imager (WFI) mounted on MPG/ESO telescope at La Silla in March 2006 will be discussed.

Learning City Performance Measurement and Performance Measure Weighting Decision based on DEA Method (DEA를 활용한 성과평가 지표의 가중치 결정모형 구축 : 평생학습도시 성과평가 지표 적용 사례를 중심으로)

  • Lim, Hwan;Sohn, Myung-Ho
    • Journal of Information Technology Services
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    • v.9 no.4
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    • pp.109-121
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    • 2010
  • Most organizations adopt their own performance measurement systems. Those organizations select performance measures to meet their goals. Organizations can give only limited description of what performance measures are. Kaplan and Norton suggest that the Balanced Scorecard (BSC) to complement the conventional performance measures. The BSC can provide management system with a comprehensive strategic vision and integrates non-financial measures with financial measures. The BSC is widely used for measuring corporate performance. This paper investigates how the BSC-based performance measures can be applied to Learning City. The Learning City's performance measures and strategy map on the basis of the BSC are suggested in this research. This paper adopt the AR(assurance region)-DEA model which could limit the range of weight on performance measures to prevent each viewpoint of BSC from having unlimited elasticity. The proposed model is based on CCR model including a property of unit invariance to use the data without normalization process.

Texture Transfer Based on Video (비디오 기반의 질감 전이 기법)

  • Kong, Phutphalla;Lee, Ho-Chang;Yoon, Kyung-Hyun
    • Proceedings of the Korean Information Science Society Conference
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    • 2012.06c
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    • pp.406-407
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    • 2012
  • Texture transfer is a NPR technique for expressing various styles according to source (reference) image. By late 2000s, there are many texture transfer researches. But video base researchers are not active. Moreover, they didn't use important feature like directional information which need to express detail characteristics of target. So, we propose a new method to generate texture transfer animation (using video) with directional effect for maintaining temporal coherence and controlling coherence direction of texture. For maintaining temporal coherence, we use optical flow and confidence map to adapt for occlusion/disocclusion boundaries. And we control direction of texture for taking structure of input. For expressing various texture effects according to different regions, we calculate gradient based on directional weight. With these techniques, our algorithm can make animation result that maintain temporal coherence and express directional texture effect. It is reflect the characteristics of source and target image well. And our result can express various texture directions automatically.

Stereo Matching Algorithm Using TAD-Adaptive Census Transform Based on Multi Sparse Windows (Multi Sparse Windows 기반의 TAD-Adaptive Census Transform을 이용한 스테레오 정합 알고리즘)

  • Lee, Ingyu;Moon, Byungin
    • Proceedings of the Korea Information Processing Society Conference
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    • 2015.10a
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    • pp.1559-1562
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    • 2015
  • 최근 3 차원 깊이 정보를 활용하는 분야가 많아짐에 따라, 정확한 깊이 정보를 추출하기 위한 연구가 계속 진행되고 있다. 특히 ASW(Adaptive Support Weight)는 기존의 영역 기반 알고리즘의 정확도를 향상시키기 위한 방법으로 많이 이용되고 있다. 그 중에서 ACT(Adaptive Census Transform)는 폐백 영역이나 경계 영역에서 정확도가 낮다는 단점이 있었다. 본 논문에서는 정확한 깊이 맵 (depth map)을 추출하기 위해, 기존의 ACT를 개선한 스테레오 정합 알고리즘을 제안한다. 이는 잡음에 강하고 재사용성이 높은 MSW(Multiple Sparse Windows)를 기반으로, TAD(Truncated Absolute Difference)와 ACT 두 개의 정합 알고리즘을 동시에 사용하여 폐색 영역과 울체의 경계 영역에서 정확도가 낮은 기존의 방법을 개선한다. Middlebury에서 제공하는 영상을 사용한 시뮬레이션 결과는 제안한 방법이 기존의 방법보다 평균적으로 약 1.9% 낮은 에러율(error rate)을 가짐을 보여준다.

Optimal Weight Initialization of Structure-Adaptive Self-Organizing Map with Genetic Algorithm (유전자 알고리즘을 이용한 구조 적응형 자기구성 지도의 자식 노드 가중치 초기화)

  • Kim, Hyun-Don;Cho, Sung-Bae
    • Proceedings of the Korea Information Processing Society Conference
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    • 2000.04a
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    • pp.89-93
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    • 2000
  • 구조 적응형 자기구성 지도는 일반적으로 자기구성 지도의 구조가 초기에 결정되어 학습이 끝날 때까지 변하지 않기 때문에 발생하는 문제를 해결하기 위해 지도의 구조를 학습 중에 적절하게 변경시킨다. 이때, 변화된 구조의 가중치를 어떻게 초기화시킬 것인가 하는 것이 중요한 문제이다. 이 논문에서는 기존의 비교사 학습방법에 LVQ 알고리즘을 이용한 교사 학습방법을 결합한 구조 적응형 자기구성 지도 모델에서 유전자 알고리즘을 이용하여 분화된 노드의 가중치를 결정하는 방법을 제안한다. 이 방법은 기존의 구조 적응형 자기구성 지도 알고리즘보다 빠르게 학습되었고, 인식률 면에서도 기존의 방법보다 높은 값을 나타내었으며, 자기구성 지도의 특성인 위상 보존도 잘 이루어졌다. 오프라인 필기 숫자 데이터로 실험한 결과, 제안한 방법이 유용함을 알 수 있었다.

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Adaptive Face Blending for Face Replacement System (얼굴교체 시스템을 위한 적응적 블렌딩 방법)

  • Zhang, Xingjie;Kim, Changseob;Park, Jong-IL
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2018.06a
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    • pp.133-135
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    • 2018
  • 본 논문에서는 포즈에 적응적인 가중치 맵 (weight map)에 기반한, 얼굴 교체시스템을 위한 블렌딩 기법을 제안한다. 우선 얼굴교체를 진행하기 위해 목표얼굴이 들어있는 영상으로부터 실시간으로 얼굴의 기하학적 특징점 (land mark)을 검출한다. 다음 검출된 특징점의 분포에 따라 얼굴영역에 대해 삼각화 (triangulation)를 진행한다. 참조영상에 대해서도 같은 과정을 적용하고 대응되는 영역끼리 워핑 (warping) 변환을 시키면 목표 얼굴과 같은 포즈의 참조얼굴을 얻을 수 있다. 그 다음 두 영상의 피부색 톤을 일치시켜주고 안면교체를 진행한다. 하지만 교체된 영역과 목표 얼굴 사이에 부자연스러운 경계가 발생하게 되는데 블렌딩 기법을 통해 이런 경계를 제거한다. 본 논문에서는 사전에 표준얼굴형태모델을 이용하여 정면 얼굴의 가중치 맵을 생성하고, 표준얼굴형태모델과 목표 얼굴사이 변환관계를 이용하여 포즈에 대응되는 가중치지도를 생성하였다. 이렇게 얻어진 가중치 맵은 일관되게 정해진 가중치 맵에 비해 포즈변화에 적응적으로 대처할 수 있어 보다 자연스러운 얼굴교체 효과를 얻을 수 있다.

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