• Title/Summary/Keyword: 복합객체

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The Design and Implementation of Access Control framework for Collaborative System (협력시스템에서의 접근제어 프레임워크 설계 및 구현)

  • 정연일;이승룡
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.27 no.10C
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    • pp.1015-1026
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    • 2002
  • As per increasing research interest in the field of collaborative computing in recent year, the importance of security issues on that area is also incrementally growing. Generally, the persistency of collaborative system is facilitated with conventional authentication and cryptography schemes. It is however, hard to meet the access control requirements of distributed collaborative computing environments by means of merely apply the existing access control mechanisms. The distributed collaborative system must consider the network openness, and various type of subjects and objects while, the existing access control schemes consider only some of the access control elements such as identity, rule, and role. However, this may cause the state of security level alteration phenomenon. In order to handle proper access control in collaborative system, various types of access control elements such as identity, role, group, degree of security, degree of integrity, and permission should be taken into account. Futhermore, if we simply define all the necessary access control elements to implement access control algorithm, then collaborative system consequently should consider too many available objects which in consequence, may lead drastic degradation of system performance. In order to improve the state problems, we propose a novel access control framework that is suitable for the distributed collaborative computing environments. The proposed scheme defines several different types of object elements for the accessed objects and subjects, and use them to implement access control which allows us to guarantee more solid access control. Futhermore, the objects are distinguished by three categories based on the characteristics of the object elements, and the proposed algorithm is implemented by the classified objects which lead to improve the systems' performance. Also, the proposed method can support scalability compared to the conventional one. Our simulation study shows that the performance results are almost similar to the two cases; one for the collaborative system has the proposed access control scheme, and the other for it has not.

Real-Time Object Tracking Algorithm based on Adaptive Color Model in Surveillance Networks (서베일런스 네트워크에서 적응적 색상 모델을 기초로 한 실시간 객체 추적 알고리즘)

  • Kang, Sung-Kwan;Lee, Jung-Hyun
    • Journal of Digital Convergence
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    • v.13 no.9
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    • pp.183-189
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    • 2015
  • In this paper, we propose an object tracking method using the color information of the image in surveillance network. This method perform a object detection using of adaptive color model. Object contour detection plays an important role in application such as object recognition. Experimental results demonstrate successful object detection over a wide range of object's variation in color and scale. In applications to detect an object in real time, when transmitting a large amount of image data it is possible to find the mode of a color distribution. The specific color of an object is modified at dynamically changing color in image. So, this algorithm detects the tracking area information of object within relevant tracking area and only tracking the movement of that object.Through experiments, we show that proposed method is more robust than other methods under certain ideal situations.

Region Segmentation Technique Based on Active Contour for Object Segmentation (객체 분할을 위한 Active Contour 기반의 영역 분할 기법 연구)

  • Han, Hyeon-Ho;Lee, Gang-Seong;Lee, Jong-Yong;Lee, Sang-Hun
    • Journal of Digital Convergence
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    • v.10 no.3
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    • pp.167-172
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    • 2012
  • This paper presents the technique separating objects on the single frame image from the background using region segmentation technique based on active contour. Active contour is to extract contours of objects from the image, which is set to have multi-search starting point to extract each objects contours for multi-object segmentation. Initial rough object segments are generated from binary-coded image using object specific contour information, and then the hole filling is performed to compensate internal segmentation caused by the change of inner object hole area and pixels. This procedure complements the problems caused by the noise from the region segmentation and the errors of segmentation near by the contour. The proposed method and conventional method is compared to verify the superiority of the proposed method.

A Distributed Domain Document Object Management using Semantic Reference Relationship (SRR을 이용한 분산 도메인 문서 객체 관리)

  • Lee, Chong-Deuk
    • Journal of Digital Convergence
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    • v.10 no.5
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    • pp.267-273
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    • 2012
  • The semantic relationship structures hierarchically the huge amount of document objects which is usually not formatted. However, it is very difficult to structure relevant data from various distributed application domains. This paper proposed a new object management method to service the distributed domain objects by using semantic reference relationship. The proposed mechanism utilized the profile structure in order to extract the semantic similarity from application domain objects and utilized the joint matrix to decide the semantic relationship of the extracted objects. This paper performed the simulation to show the performance of the proposed method, and simulation results show that the proposed method has better retrieval performance than the existing text mining method and information extraction method.

Object Segmentation Using ESRGAN and Semantic Soft Segmentation (ESRGAN과 Semantic Soft Segmentation을 이용한 객체 분할)

  • Dongsik Yoon;Noyoon Kwak
    • Journal of Internet of Things and Convergence
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    • v.9 no.1
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    • pp.97-104
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    • 2023
  • This paper is related to object segmentation using ESRGAN(Enhanced Super Resolution GAN) and SSS(Semantic Soft Segmentation). The segmentation performance of the object segmentation method using Mask R-CNN and SSS proposed by the research team in this paper is generally good, but the segmentation performance is poor when the size of the objects is relatively small. This paper is to solve these problems. The proposed method aims to improve segmentation performance of small objects by performing super-resolution through ESRGAN and then performing SSS when the size of an object detected through Mask R-CNN is below a certain threshold. According to the proposed method, it was confirmed that the segmentation characteristics of small-sized objects can be improved more effectively than the previous method.

Indexing Techniques or Nested Attributes of OODB Using a Multidimensional Index Structure (다차원 파일구조를 이용한 객체지향 데이터베이스의 중포속성 색인기법)

  • Lee, Jong-Hak
    • The Transactions of the Korea Information Processing Society
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    • v.7 no.8
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    • pp.2298-2309
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    • 2000
  • This paper proposes the multidimensioa! nested attribute indexing techniques (MD- NAI) in object-oriented databases using a multidimensional index structure. Since most conventional indexing techniques for object oriented databases use a one-dimensional index stnlcture such as the B-tree, they do not often handle complex qUlTies involving both nested attributes and class hierarchies. We extend a tunable two dimensional class hierachy indexing technique(2D-CHI) for nested attributes. The 2D-CHI is an indexing scheme that deals with the problem of clustering ohjects in a two dimensional domain space that consists of a kev attribute dOI11'lin and a class idmtifier domain for a simple attribute in a class hierachy. In our extended scheme, we construct indexes using multidimensional file organizations that include one class identifier domain per class hierarchy on a path expression that defines the indexed nested attribute. This scheme efficiently suppoI1s queries that involve search conditions on the nested attribute represcnted by an extcnded path expression. An extended path expression is a one in which a class hierarchy can be substituted by an indivisual class or a subclass hierarchy in the class hierarchy.

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Hybrid Estimation Method for Selecting Heterogeneous Image Databases on the Web (웹상의 이질적 이미지 데이터베이스를 선택하기 위한 복합 추정 방법)

  • 김덕환;이석룡;정진완
    • Journal of KIISE:Databases
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    • v.30 no.5
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    • pp.464-475
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    • 2003
  • few sample objects and compressed histogram information of image databases. The histogram information is used to estimate the selectivity of spherical range queries and a small number of sample objects is used to compensate the selectivity error due to the difference of the similarity measures between meta server and local image databases. An extensive experiment on a large number of image data demonstrates that our proposed method performs well in the distributed heterogeneous environment.

Design and Implementation of Object-Oriented class Library for Supporting Understanding and Reusing the Programs (프로그램 이해 지원과 재사용을 위한 객체 지향 클래스 라이브러리 설계 및 구현)

  • Jeong, Gye-Dong;Gwon, O-Jin;Choe, Yeong-Geun
    • The Transactions of the Korea Information Processing Society
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    • v.5 no.6
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    • pp.1507-1521
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    • 1998
  • 본 논문에서는 프로그램의 이해와 재사용에 초점을 둔 객체 지향 클래스 라이브러리 설계 방법 및 객체를 효율적으로 재사용하여 프로그래밍 할 수 있도록 객체에 대한 정보 추출 방법을 제시한다. 프로그램의 재사용을 위한 부품을 모듈 단위로 생성하여 각 정보를 테이블에 저장하며, 모듈간에 참조할 수 있는 인터페이스 플래스를 추출한다. 프로그램의 이해를 쉽게 하기 위하여 프로그램 코드를 기반으로 하여 클래스 관계성을 그래프로 표현하고 노드 클래스를 아이콘화하여 볼 수 있도록 하였다. 각 모듈 안에서의 참조 관계, 상속 관계, 복합 관계를 추출 및 세부적인 다형성 관계, 프랜드 관계등의 추가적인 정보를 생성할 수 있다. 본 논문에서 제시하는 방법은 프로그램 개발 및 유지보수시에 프로그램의 이해력을 높여 재사용 시스템 구축을 용이하게 한다.

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Life protection system development using CCTV video analysis on Deep learning (딥러닝 기반 CCTV 영상분석을 통한 인명지킴이 시스템 개발)

  • Song, Hyok;Choi, In-Kyu;Ko, Min-Soo;Lee, Dae-Sung
    • Proceedings of the Korean Society of Disaster Information Conference
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    • 2017.11a
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    • pp.327-328
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    • 2017
  • 본 논문에서는 사회재난 안전사고 중 수상 안전사고를 예방 및 사고 발생시 즉각 대응을 위한 센서 융복합 상황인지 기술을 개발하였다. 실제 현장에서의 위험상황을 전문가 컨설팅을 통하여 정의하였으며 이를 영상 분석을 이용한 객체의 검출 및 객체의 추적을 통한 위험상황 검출을 개발하였다. 기존 패턴인식 기술에 비하여 우수한 성능을 보이는 인공지능 기반 딥러닝 기술을 적용하였으며 딥러닝 기술을 적용하기 위하여는 많은 수의 데이터베이스 확보가 필수적이고 이를 위하여 기존 데이터베이스의 확보 및 현장에서의 실제 데이터베이스 구축을 위한 작업을 통하여 충분한 데이터베이스를 확보하였다. 객체 검출은 최적의 속도를 확보하기 위하여 SSD 구조를 이용하였으며 객체 추적을 위해서는 Re-identification 기법을 적용하여 Tied convolution 구조를 이용하였다.

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Manintaining Join Materialized View For Data Warehouses using Referential Integrity (참조무결성을 이용한 데이터웨어하우스의 조인 실체뷰 관리)

  • Lee, U-Gi
    • Journal of KIISE:Databases
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    • v.28 no.1
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    • pp.42-47
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    • 2001
  • 실체뷰는 대량의 데이터웨어하우스에서 질의처리를 효과적으로 수행하기위한 대안으로서, 그 핵심은 각 데이터 원천에서의 데이터변화에 대응한 복합적인 뷰의 효과적인 관리 문제이다. 본 연구에서는 우선 실체뷰 관리에 관한 기존의 연구들을 일별함에 있어서 즉, 갱신의 주체문제, 갱신객체, 및 갱신시간 문제의 세가지 관점에서 본 연구의 위치를 결정한 다음, 대수적 접근법으로 복합뷰 갱신문제가 복잡해지는 원인을 규명하였다. 그 해법으로서 참조무결성을 활용한 복합 조인뷰의 갱신 알고리즘을 제안하면서, 여러 가지 참조무결성 제약조건과 트랜잭션과 관련된 자체갱신적 새로운 해법을 제시했다.

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