• Title/Summary/Keyword: user query

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A Context-Aware Cooperative Query for u-Shopping Systems (u-쇼핑 시스템을 위한 상황인식적이고 협력적인 질의 시스템 개발)

  • Kwon, Ohbyung;Shin, Myung Keun
    • Journal of Intelligence and Information Systems
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    • v.12 no.4
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    • pp.61-72
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    • 2006
  • Ubiquitous computing technologies become mature enough to be applied in acceptable ubiquitous services. In particular, in u-shopping area, personalized recommender systems which automatically collect the nomadic user-related context data and then provide them with products or shops in a flexible manner. However, legacy cooperative queries and context-aware queries so far do not come up with dynamically changing situations and ambiguous query commands, respectively. Hence, The purpose of this paper is to propose a personalized context-aware cooperative query that supports a multi-level data abstraction hierarchy and conceptual distance metric among node instances, while considering the user's context data. To show the feasibility of the methodology proposed in this paper, we have implemented a prototype system, CACO, in the area of site search in a large-scale shopping mall.

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Visualization of Path Expressions with Set Attributes and Methods in Graphical Object Query Languages (그래픽 객체 질의어에서 집합 속성과 메소드를 포함한 경로식의 시각화)

  • 조완섭
    • Journal of KIISE:Databases
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    • v.30 no.2
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    • pp.109-124
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    • 2003
  • Although most commercial relational DBMSs Provide a graphical query language for the user friendly interfaces of the databases, few research has been done for graphical query languages in object databases. Expressing complex query conditions in a concise and intuitive way has been an important issue in the design of graphical query languages. Since the object data model and object query languages are more complex than those of the relational ones, the graphical object query language should have a concise and intuitive representation method. We propose a graphical object query language called GOQL (Graphical Object Query Language) for object databases. By employing simple graphical notations, advanced features of the object queries such as path expressions including set attributes, quantifiers, and/or methods can be represented in a simple graphical notation. GOQL has an excellent expressive power compared with previous graphical object query languages. We show that path expressions in XSQL(1,2) can be represented by the simple graphical notations in GOQL. We also propose an algorithm that translates a graphical query in GOQL into the textual object query with the same semantics. We finally describe implementation results of GOQL in the Internet environments.

kNN Query Processing Algorithm based on the Encrypted Index for Hiding Data Access Patterns (데이터 접근 패턴 은닉을 지원하는 암호화 인덱스 기반 kNN 질의처리 알고리즘)

  • Kim, Hyeong-Il;Kim, Hyeong-Jin;Shin, Youngsung;Chang, Jae-woo
    • Journal of KIISE
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    • v.43 no.12
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    • pp.1437-1457
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    • 2016
  • In outsourced databases, the cloud provides an authorized user with querying services on the outsourced database. However, sensitive data, such as financial or medical records, should be encrypted before being outsourced to the cloud. Meanwhile, k-Nearest Neighbor (kNN) query is the typical query type which is widely used in many fields and the result of the kNN query is closely related to the interest and preference of the user. Therefore, studies on secure kNN query processing algorithms that preserve both the data privacy and the query privacy have been proposed. However, existing algorithms either suffer from high computation cost or leak data access patterns because retrieved index nodes and query results are disclosed. To solve these problems, in this paper we propose a new kNN query processing algorithm on the encrypted database. Our algorithm preserves both data privacy and query privacy. It also hides data access patterns while supporting efficient query processing. To achieve this, we devise an encrypted index search scheme which can perform data filtering without revealing data access patterns. Through the performance analysis, we verify that our proposed algorithm shows better performance than the existing algorithms in terms of query processing times.

Consideration of a Robust Search Methodology that could be used in Full-Text Information Retrieval Systems (퍼지 논리를 이용한 사용자 중심적인 Full-Text 검색방법에 관한 연구)

  • Lee, Won-Bu
    • Asia pacific journal of information systems
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    • v.1 no.1
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    • pp.87-101
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    • 1991
  • The primary purpose of this study was to investigate a robust search methodology that could be used in full-text information retrieval systems. A robust search methodology is one that can be easily used by a variety of users (particularly naive users) and it will give them comparable search performance regardless of their different expertise or interests In order to develop a possibly robust search methodology, a fully functional prototype of a fuzzy knowledge based information retrieval system was developed. Also, an experiment that used this prototype information retreival system was designed to investigate the performance of that search methodology over a small exploratory sample of user queries To probe the relatonships between the possibly robust search performance and the query organization using fuzzy inference logic, the search performance of a shallow query structure was analyzes. Consequently the following several noteworthy findings were obtained: 1) the hierachical(tree type) query structure might be a better query organization than the linear type query structure 2) comparing with the complex tree query structure, the simple tree query structure that has at most three levels of query might provide better search performance 3) the fuzzy search methodology that employs a proper levels of cut-off value might provide more efficient search performance than the boolean search methodology. Even though findings could not be statistically verified because the experiments were done using a single replication, it is worth noting however, that the research findings provided valuable information for developing a possibly robust search methodology in full-text information retrieval.

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Web Information Retrieval based on Natural Language Query Analysis and Keyword Expansion (자연어 질의 분석과 검색어 확장에 기반한 웹 정보 검색)

  • 윤성희;장혜진
    • Journal of the Korean Society for information Management
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    • v.21 no.2
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    • pp.235-248
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    • 2004
  • For the users of information retrieval systems, natural language query is the more ideal interface, compared with keyword and boolean expressions. This paper proposes a retrieval technique with expanded keyword from syntactically-analyzed structures of natural language query as user input. Through the steps combining or splitting the compound nouns based on syntactic tree traversal of the query, and expanding the other-formed or shorten-formed into multiple keyword, it can enhance the precision and correctness of the retrieval system.

Applying Metricized Knowledge Abstraction Hierarchy for Securely Personalized Context-Aware Cooperative Query

  • Kwon Oh-Byung;Shin Myung-Geun;Kim In-Jun
    • Proceedings of the Korea Inteligent Information System Society Conference
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    • 2006.06a
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    • pp.354-360
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    • 2006
  • The purpose of this paper is to propose a securely personalized context-aware cooperative query that supports a multi-level data abstraction hierarchy and conceptual distance metric among data values, while considering privacy concerns around user context awareness. The conceptual distance expresses a semantic similarity among data values with a quantitative measure, and thus the conceptual distance enables query results to be ranked. To show the feasibility of the methodology proposed in this paper we have implemented a prototype system in the area of site search in a large-scale shopping mall.

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A Brief Survey into the Field of Automatic Image Dataset Generation through Web Scraping and Query Expansion

  • Bart Dikmans;Dongwann Kang
    • Journal of Information Processing Systems
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    • v.19 no.5
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    • pp.602-613
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    • 2023
  • High-quality image datasets are in high demand for various applications. With many online sources providing manually collected datasets, a persisting challenge is to fully automate the dataset collection process. In this study, we surveyed an automatic image dataset generation field through analyzing a collection of existing studies. Moreover, we examined fields that are closely related to automated dataset generation, such as query expansion, web scraping, and dataset quality. We assess how both noise and regional search engine differences can be addressed using an automated search query expansion focused on hypernyms, allowing for user-specific manual query expansion. Combining these aspects provides an outline of how a modern web scraping application can produce large-scale image datasets.

SemFilter: A Simple and Efficient Semantic XML Message Filtering (SemFilter: 단순하며 효율적인 시맨틱 XML 메시지 필터링)

  • Kim, Jae-Hoon;Park, Seog
    • Journal of KIISE:Computing Practices and Letters
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    • v.14 no.7
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    • pp.680-693
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    • 2008
  • Recent studies on XML filtering assume that all data sources follow a single global schema defined in a filtering system. However, beyond this simple assumption, a filtering system can provide a service that allows data publishers to have their own schema; hence, the data sources will become heterogeneous. The number of data sources is expected to be large in a filtering system and the data sources are frequently published, updated, and disappeared, that is, dynamic. In this paper, we introduce implementing a simple and efficient XPath query translation method for such a dynamic environment. The method is especially targeted for a query which is composed based only on users' knowledge and experience without a graphical guidance of the global schema. When a user queries a large number of heterogeneous data, there is a high possibility that the query is not consistent with the same local schema assumed by the user. Our query translation method also supports a function for this problem. Some experimental results for query translation performance have shown that our method has reasonable performance, and is more practical than the existing method.

Query Rewriting and Indexing Schemes for Distributed Systems based on the Semantic Web (시맨틱 웹 기반의 분산 시스템을 위한 질의 변환 및 인덱싱 기법)

  • Chae, Kwang-Ju;Kim, Youn-Hee;Lim, Hae-Chull
    • Journal of KIISE:Computing Practices and Letters
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    • v.14 no.7
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    • pp.718-722
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    • 2008
  • Ontology plays an important role of the Semantic Web to describe meaning and reasoning of resources. Ontology has more rich expressive power through OWL that is a next standard representation language recommended by W3C. As the Semantic Web is widely known, an amount of information resources on the Web is growing rapidly and the related information resources are placed in distributed systems on the Web. So, for providing seamless services without the awareness of far distance, efficient management of the distributed information resources is required. Especially, sear ching fast for local repositories that include data related to user's queries is important to the performance of systems in the distributed environment. In this paper, first, we propose an index structure to search local repositories related to queries in the distributed Semantic Web. Second, we propose a query rewriting strategy to extend given user's query using various expression of OWL. Through the proposed index and query strategy, we can utilize various expressions of OWL and find local repositories related to all query patterns on the Semantic Web.

Query Extension of Retrieve System Using Hangul Word Embedding and Apriori (한글 워드임베딩과 아프리오리를 이용한 검색 시스템의 질의어 확장)

  • Shin, Dong-Ha;Kim, Chang-Bok
    • Journal of Advanced Navigation Technology
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    • v.20 no.6
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    • pp.617-624
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    • 2016
  • The hangul word embedding should be performed certainly process for noun extraction. Otherwise, it should be trained words that are not necessary, and it can not be derived efficient embedding results. In this paper, we propose model that can retrieve more efficiently by query language expansion using hangul word embedded, apriori, and text mining. The word embedding and apriori is a step expanding query language by extracting association words according to meaning and context for query language. The hangul text mining is a step of extracting similar answer and responding to the user using noun extraction, TF-IDF, and cosine similarity. The proposed model can improve accuracy of answer by learning the answer of specific domain and expanding high correlation query language. As future research, it needs to extract more correlation query language by analysis of user queries stored in database.