• 제목/요약/키워드: Graph-based

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Cross-architecture Binary Function Similarity Detection based on Composite Feature Model

  • Xiaonan Li;Guimin Zhang;Qingbao Li;Ping Zhang;Zhifeng Chen;Jinjin Liu;Shudan Yue
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제17권8호
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    • pp.2101-2123
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    • 2023
  • Recent studies have shown that the neural network-based binary code similarity detection technology performs well in vulnerability mining, plagiarism detection, and malicious code analysis. However, existing cross-architecture methods still suffer from insufficient feature characterization and low discrimination accuracy. To address these issues, this paper proposes a cross-architecture binary function similarity detection method based on composite feature model (SDCFM). Firstly, the binary function is converted into vector representation according to the proposed composite feature model, which is composed of instruction statistical features, control flow graph structural features, and application program interface calling behavioral features. Then, the composite features are embedded by the proposed hierarchical embedding network based on a graph neural network. In which, the block-level features and the function-level features are processed separately and finally fused into the embedding. In addition, to make the trained model more accurate and stable, our method utilizes the embeddings of predecessor nodes to modify the node embedding in the iterative updating process of the graph neural network. To assess the effectiveness of composite feature model, we contrast SDCFM with the state of art method on benchmark datasets. The experimental results show that SDCFM has good performance both on the area under the curve in the binary function similarity detection task and the vulnerable candidate function ranking in vulnerability search task.

소셜 네트워크에서 사용자 관심도를 고려한 그래프 기반 이벤트 검출 기법 (Graph-based Event Detection Scheme Considering User Interest in Social Networks)

  • 김이나;김민영;임종태;복경수;유재수
    • 한국콘텐츠학회논문지
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    • 제18권7호
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    • pp.449-458
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    • 2018
  • 소셜 네트워크 서비스의 사용량이 증가함에 따라 오프라인에서 발생한 이벤트 정보가 더욱 빠르게 확산되고 있다. 이에 따라 소셜 데이터를 분석하여 이벤트를 검출하기 위한 연구들이 진행되고 있다. 본 논문에서는 소셜 네트워크 환경에서 사용자 관심도를 고려한 그래프 기반 이벤트 검출 기법을 제안한다. 제안하는 기법은 사용자들이 게시한 글을 분석하여 키워드 그래프를 구축한다. 사용자의 소셜 행위로부터 관심도를 계산하고 관심도의 변화를 고려하여 이벤트 판별에 이용한다. 따라서 의미 없이 반복 게시되어 이벤트로 검출된 결과를 제거하고 결과의 신뢰성을 향상시킬 수 있다. 제안하는 이벤트 검출 기법의 우수성을 입증하기 위해 다양한 성능평가를 수행한다.

그래프의 분석과 병합을 이용한 기하학적제약조건 해결에 관한 연구 (A Study on the Geometric Constraint Solving with Graph Analysis and Reduction)

  • 권오환;이규열;이재열
    • 한국CDE학회논문집
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    • 제6권2호
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    • pp.78-88
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    • 2001
  • In order to adopt feature-based parametric modeling, CAD/CAM applications must have a geometric constraint solver that can handle a large set of geometric configurations efficiently and robustly. In this paper, we describe a graph constructive approach to solving geometric constraint problems. Usually, a graph constructive approach is efficient, however it has its limitation in scope; it cannot handle ruler-and-compass non-constructible configurations and under-constrained problems. To overcome these limitations. we propose an algorithm that isolates ruler-and-compass non-constructible configurations from ruler-and-compass constructible configurations and applies numerical calculation methods to solve them separately. This separation can maximize the efficiency and robustness of a geometric constraint solver. Moreover, the solver can handle under-constrained problems by classifying under-constrained subgraphs to simplified cases by applying classification rules. Then, it decides the calculating sequence of geometric entities in each classified case and calculates geometric entities by adding appropriate assumptions or constraints. By extending the clustering types and defining several rules, the proposed approach can overcome limitations of previous graph constructive approaches which makes it possible to develop an efficient and robust geometric constraint solver.

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격자기반 역할그래프 보안 관리 모델 (Role Graph Security Management Model based on Lattice)

  • 최은복;박주기;김재훈
    • 인터넷정보학회논문지
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    • 제7권5호
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    • pp.109-121
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    • 2006
  • 컴퓨터 시스템이 다양화된 분산시스템 환경으로 발전하면서 시스템에 존재하는 정보를 부적절한 사용자로부터 보호하기 위한 접근통제 정책이 매우 중요하게 되었다 본 논문에서는 강제적 접근통제모델의 등급과 역할기반 접근통제 모델의 제약조건과 역할계층을 체계적으로 변경함으로서 격자기반 역할그래프 보안 관리 모델을 제안한다. 이 모델에서는 기존의 역할그래프 모델의 역할계층에서 상위역할의 권한남용 문제를 해결하였으며 권한간의 충돌발생시 제약조건을 통해 주체의 등급을 재조정함으로서 정보의 무결성을 유지할 수 있다. 또한 역할계층에 의한 권한상속 뿐만 아니라 사용자의 보안레벨에 의해서 통제되도록 함으로서 강화된 보안기능을 제공한다. 그리고 본 모델을 운영하기 위해 역할그래프 보안 관리 알고리즘을 제시하였다.

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사이드 스캔 소나 기반 Pose-graph SLAM (Side Scan Sonar based Pose-graph SLAM)

  • 권대현;김주완;김문환;박호규;김태영;김아영
    • 로봇학회논문지
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    • 제12권4호
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    • pp.385-394
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    • 2017
  • Side scanning sonar (SSS) provides valuable information for robot navigation. However using the side scanning sonar images in the navigation was not fully studied. In this paper, we use range data, and side scanning sonar images from UnderWater Simulator (UWSim) and propose measurement models in a feature based simultaneous localization and mapping (SLAM) framework. The range data is obtained by echosounder and sidescanning sonar images from side scan sonar module for UWSim. For the feature, we used the A-KAZE feature for the SSS image matching and adjusting the relative robot pose by SSS bundle adjustment (BA) with Ceres solver. We use BA for the loop closure constraint of pose-graph SLAM. We used the Incremental Smoothing and Mapping (iSAM) to optimize the graph. The optimized trajectory was compared against the dead reckoning (DR).

작업시간이 순서 의존적인 경우 조립상태를 나타내는 유방향그래프를 이용한 최적 제품 분해순서 결정 (Optimal Disassembly Sequencing with Sequence-Dependent Operation Times Based on the Directed Graph of Assembly States)

  • 강준규;이동호
    • 대한산업공학회지
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    • 제28권3호
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    • pp.264-273
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    • 2002
  • This paper focuses on disassembly sequencing, which is the problem of determining the optimum disassembly level and the corresponding disassembly sequence for a product at its end-of-life with the objective of maximizing the overall profit. In particular, sequence-dependent operation times, which frequently occur in practice due to tool-changeover, part reorientation, etc, are considered in the parallel disassembly environment. To represent the problem, a modified directed graph of assembly states is suggested as an extension of the existing extended process graph. Based on the directed graph, the problem is transformed into the shortest path problem and formulated as a linear programming model that can be solved straightforwardly with standard techniques. A case study on a photocopier was done and the results are reported.

A UML-based Approach towards Test Case Generation and Optimization

  • Shahid Saleem;Saif U. R. Malik;Bilal Mehboob;Roobaea Alroobaea;Sultan Algarni;Abdullah M. Baqasah;Naveed Ahmad;Muhammad Hasnain
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제18권3호
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    • pp.633-652
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    • 2024
  • Software testing is an important phase as it ensures the software quality. The software testing process comprises of three steps: generation, execution, and evaluation of test cases. Literature claims the usage of single and multiple 'Unified Modeling Language' (UML) diagrams to generate test cases. Using multiple UML diagrams increases test case coverage. However, the existing approaches show limitations in test case generation from UML diagrams. Therefore, in this research study, we propose an approach to generate the test cases using UML State Chart Diagram (SCD), Activity Diagram (AD), and Sequence Diagram (SD). The proposed approach transforms UML diagrams into intermediate forms: SCD Graph, AD Graph, and SD Graph respectively. Furthermore, by integrating these three graphs, a System Testing Graph (STG) is formed. Finally, test cases are identified from STG by using a traversal algorithm such as Depth First Search (DFS) that is an optimization method. The results show that the proposed approach is better compared to existing approaches in terms of coverage and performance. Moreover, the generated test cases have the ability to detect faults at the unit level, integration, and system level testing.

Knowledge Conversion between Conceptual Graph Model and Resource Description Framework

  • 김진성
    • 한국지능시스템학회논문지
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    • 제17권1호
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    • pp.123-129
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    • 2007
  • On the Semantic Web, the content of the documents must be explicitly represented through metadata in order to enable contents-based inference. In this study, we propose a mechanism to convert the Conceptual Graph (CG) into Resource Description Framework (RDF). Quite a large number or representation languages for representing knowledge on the Web have been established over the last decade. Most of these researches are focused on design of independent knowledge description. On the Semantic Web, however, a knowledge conversion mechanism will be needed to exchange the knowledge used in independent devices. In this study, the CG could give an entire conceptual view of knowledge and RDF can represent that knowledge on the Semantic Web. Then the CG-based object oriented PROLOG could support the natural inference based on that knowledge. Therefore, our proposed knowledge conversion mechanism will be used in the designing of Semantic Web-based knowledge representation and inference systems.

영역 보로노이 그래프를 기반한 위상 지도 작성 (Topological Map Building Based on Areal Voronoi Graph)

  • 손영준;박귀태
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2004년도 하계학술대회 논문집 D
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    • pp.2450-2452
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    • 2004
  • Map building is essential to a mobile robot navigation system. Localization and path planning methods depend on map building strategies. A topological map is commonly constructed using the GVG(Generalized Voronoi Graph). The advantage of the GVG based topological map is compactness. But the GVG method have many difficulties because it consists of collision-free path. In this paper, we proposed an extended map building method, the AVG (Areal Voronoi Graph) based topological map. The AVG based topological map consists of collision-free area. This feature can improve map building, localization and path planning performance.

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Robust Similarity Measure for Spectral Clustering Based on Shared Neighbors

  • Ye, Xiucai;Sakurai, Tetsuya
    • ETRI Journal
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    • 제38권3호
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    • pp.540-550
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    • 2016
  • Spectral clustering is a powerful tool for exploratory data analysis. Many existing spectral clustering algorithms typically measure the similarity by using a Gaussian kernel function or an undirected k-nearest neighbor (kNN) graph, which cannot reveal the real clusters when the data are not well separated. In this paper, to improve the spectral clustering, we consider a robust similarity measure based on the shared nearest neighbors in a directed kNN graph. We propose two novel algorithms for spectral clustering: one based on the number of shared nearest neighbors, and one based on their closeness. The proposed algorithms are able to explore the underlying similarity relationships between data points, and are robust to datasets that are not well separated. Moreover, the proposed algorithms have only one parameter, k. We evaluated the proposed algorithms using synthetic and real-world datasets. The experimental results demonstrate that the proposed algorithms not only achieve a good level of performance, they also outperform the traditional spectral clustering algorithms.