• Title/Summary/Keyword: Question Retrieval System

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Survey of Temporal Information Extraction

  • Lim, Chae-Gyun;Jeong, Young-Seob;Choi, Ho-Jin
    • Journal of Information Processing Systems
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    • v.15 no.4
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    • pp.931-956
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    • 2019
  • Documents contain information that can be used for various applications, such as question answering (QA) system, information retrieval (IR) system, and recommendation system. To use the information, it is necessary to develop a method of extracting such information from the documents written in a form of natural language. There are several kinds of the information (e.g., temporal information, spatial information, semantic role information), where different kinds of information will be extracted with different methods. In this paper, the existing studies about the methods of extracting the temporal information are reported and several related issues are discussed. The issues are about the task boundary of the temporal information extraction, the history of the annotation languages and shared tasks, the research issues, the applications using the temporal information, and evaluation metrics. Although the history of the tasks of temporal information extraction is not long, there have been many studies that tried various methods. This paper gives which approach is known to be the better way of extracting a particular part of the temporal information, and also provides a future research direction.

Question Similarity Measurement of Chinese Crop Diseases and Insect Pests Based on Mixed Information Extraction

  • Zhou, Han;Guo, Xuchao;Liu, Chengqi;Tang, Zhan;Lu, Shuhan;Li, Lin
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.15 no.11
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    • pp.3991-4010
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    • 2021
  • The Question Similarity Measurement of Chinese Crop Diseases and Insect Pests (QSM-CCD&IP) aims to judge the user's tendency to ask questions regarding input problems. The measurement is the basis of the Agricultural Knowledge Question and Answering (Q & A) system, information retrieval, and other tasks. However, the corpus and measurement methods available in this field have some deficiencies. In addition, error propagation may occur when the word boundary features and local context information are ignored when the general method embeds sentences. Hence, these factors make the task challenging. To solve the above problems and tackle the Question Similarity Measurement task in this work, a corpus on Chinese crop diseases and insect pests(CCDIP), which contains 13 categories, was established. Then, taking the CCDIP as the research object, this study proposes a Chinese agricultural text similarity matching model, namely, the AgrCQS. This model is based on mixed information extraction. Specifically, the hybrid embedding layer can enrich character information and improve the recognition ability of the model on the word boundary. The multi-scale local information can be extracted by multi-core convolutional neural network based on multi-weight (MM-CNN). The self-attention mechanism can enhance the fusion ability of the model on global information. In this research, the performance of the AgrCQS on the CCDIP is verified, and three benchmark datasets, namely, AFQMC, LCQMC, and BQ, are used. The accuracy rates are 93.92%, 74.42%, 86.35%, and 83.05%, respectively, which are higher than that of baseline systems without using any external knowledge. Additionally, the proposed method module can be extracted separately and applied to other models, thus providing reference for related research.

The Design and Implementation of Item pool System using XML (XML을 이용한 문제은행 시스템 설계 및 구현)

  • 하명희;박남숙
    • KSCI Review
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    • v.8 no.2
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    • pp.33-42
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    • 2001
  • The purpose of this study was to help retrieve and assess only what learner wants. The multiple-choice and short-answer types were selected. and a sort of a question bank was organized in consideration of the degree of difficulty and frequency of being questioned in such a way to have a discriminating power. For item retrieval the stored information was converted into XML data, instead of simply searching information from database. and that data were retrieved through Xpath. And it's designed to show the retrieval output by using XML on browser. Concerning item evaluation. evaluation items were produced by inputting the degree of difficulty and frequency of being questioned of the subject and unit learner wants. and then by inputting the number of individual item type. The learning outcome was offered in real time to learner. and learner could repeatedly drill what they gave a wrong answer.

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Design and Implementation of Web-Based Self-directed Learning System for Word Processor Qualifying Exams (워드프로세서 자격증 시험을 위한 웹 기반 자기 주도적 학습 시스템 설계 및 구현)

  • Yang, Yun-Jeong;Kim, Chang-Suk
    • Journal of the Korean Institute of Intelligent Systems
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    • v.16 no.1
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    • pp.43-48
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    • 2006
  • The educational system has been changed owing to Web, which is most actively used on internet and has the characteristics of providing suitable environments for implementing constructivism study theory. WBI(Web Based Instruction), web-mediated teaching form for students at a long distance, has the advantages of possible interact between instructors and learners, offering a great variety of learning materials, and overcome the spatiotemporal restriction. This paper focuces on the construction of learning surroundings where the learner-centered, active learning can be done by design and Implementation of web based instruct system providing a sham examination with an item pool system. The web based Self-directed Learning system for word processor qualifying exams on this paper, can be mentioned as a real item pool that the question is not setting each time by the instructors but can be reused by reference on item pool bank, designed the number of question. It helps the learner Self-directed Learning study with evaluation during the web based instruct process and immediate feedback. It also provides the chance to research some similar using keyword. To sum up, this system can amplify the efficiency of study.

Biaffine Dependency Parser for Korean (Biaffine 한국어 의존파서)

  • Shadikhodjaev, Uygun;Min, Tae Hong;Youn, Junyoung;Lee, Jae Sung
    • Annual Conference on Human and Language Technology
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    • 2018.10a
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    • pp.678-681
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    • 2018
  • Dependency parsing is an important task in natural language processing whose results are used in many downstream tasks such as machine translation, information retrieval, relation extraction, question answering and many others. Most of the dependency parsing literature focuses on using end-to-end and sequence-to-sequence neural architectures as the core of the system. One such system, namely Biaffine dependency parser is explored in the current paper for effective dependency parsing of Korean language.

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A Study on Smart Knowledge Sharing System with Friends (지인 기반의 스마트 지식공유 시스템에 관한 연구)

  • Yoon, Won-Beom;Park, Kinam;Lim, Heui-Seok
    • Journal of Digital Convergence
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    • v.11 no.2
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    • pp.279-285
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    • 2013
  • The development of information networks and computer technology has become a foundation to open up a sea of information and knowledge. The recent popularization of smart devices has been used as a tool to easily obtain the desired information and knowledge. In this paper, a knowledge-sharing system using information and social networks based on smart devices is proposed. The proposed system consists of functions of an Internet information search for user queries, accumulated knowledge, and social network response from acquaintances. An evaluation for user satisfaction was conducted to analyze the efficacy of the proposed system. According to the experiment, the knowledge-sharing system using smart device information results in significant satisfaction compared to the general information search engines.

Natural language based Information Retrieval System considering the focus of the question (의문의 초점을 고려한 자연어 기반의 정보검색 시스템)

  • Park, Hong-Won
    • Annual Conference on Human and Language Technology
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    • 1997.10a
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    • pp.37-43
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    • 1997
  • 본 논문에서는 기존의 키워드 검색 시스템의 불편함과 비효율성을 지적하고 이를 극복하기 위해 한국어 의문문 자체를 질의어로 채택하여 정보를 검색하는 자연어 기반의 정보검색 시스템을 제안하였다. 본 시스템은 주격 주제어와 서술격 주제어는 물론 의문의 초점과 초점 관련 어구에 대해서도 질의어 분석단계에서 분석하여 검색자의 요구에 부응하는 응답문 검색이 가능하도록 설계하였다. 본 논문에서는 의문문 질의 시스템에 적합하도록 의문사를 5형태로 분류하고 실제 한국어 문장에서 이들 각각에 대한 처리를 규칙화시켜 질의어의 체계적인 분석을 시도하였다. 한편, 후보 문장 검색을 위한 색인어로 사용되는 주격 주제어와 서술격 주제어를 정해진 규칙을 통해 추출함으로써 체계적이고 정확도 높은 질의어 분석이 이루어지도록 했다. 뿐만 아니라 의문의 초점과 초점 관련 어구또한 정해진 규칙을 통해 분석 추출함으로써 응답문 검색의 정확성을 높였다.

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Question Answering System that Combines Deep Learning and Information Retrieval (딥러닝과 정보검색을 결합한 질의응답 시스템)

  • Lee, Hyeon-gu;Kim, Harksoo
    • 한국어정보학회:학술대회논문집
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    • 2016.10a
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    • pp.134-138
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    • 2016
  • 정보의 양이 빠르게 증가함으로 인해 필요한 정보만을 효율적으로 얻기 위한 질의응답 시스템의 중요도가 늘어나고 있다. 그 중에서도 질의 문장에서 주어와 관계를 추출하여 정답을 찾는 지식베이스 기반 질의응답 시스템이 활발히 연구되고 있다. 그러나 기존 지식베이스 기반 질의응답 시스템은 하나의 질의 문장만을 사용하므로 정보가 부족한 단점이 있다. 본 논문에서는 이러한 단점을 해결하고자 정보검색을 통해 질의와 유사한 문장을 찾고 Recurrent Neural Encoder-Decoder에 검색된 문장과 질의를 함께 활용하여 주어와 관계를 찾는 모델을 제안한다. bAbI SimpleQuestions v2 데이터를 이용한 실험에서 제안 모델은 질의만 사용하여 주어와 관계를 찾는 모델보다 좋은 성능(정확도 주어:33.2%, 관계:56.4%)을 보였다.

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Question Answering System that Combines Deep Learning and Information Retrieval (딥러닝과 정보검색을 결합한 질의응답 시스템)

  • Lee, Hyeon-gu;Kim, Harksoo
    • Annual Conference on Human and Language Technology
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    • 2016.10a
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    • pp.134-138
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    • 2016
  • 정보의 양이 빠르게 증가함으로 인해 필요한 정보만을 효율적으로 얻기 위한 질의응답 시스템의 중요도가 늘어나고 있다. 그 중에서도 질의 문장에서 주어와 관계를 추출하여 정답을 찾는 지식베이스 기반 질의응답 시스템이 활발히 연구되고 있다. 그러나 기존 지식베이스 기반 질의응답 시스템은 하나의 질의 문장만을 사용하므로 정보가 부족한 단점이 있다. 본 논문에서는 이러한 단점을 해결하고자 정보검색을 통해 질의와 유사한 문장을 찾고 Recurrent Neural Encoder-Decoder에 검색된 문장과 질의를 함께 활용하여 주어와 관계를 찾는 모델을 제안한다. bAbI SimpleQuestions v2 데이터를 이용한 실험에서 제안 모델은 질의만 사용하여 주어와 관계를 찾는 모델보다 좋은 성능(정확도 주어:33.2%, 관계:56.4%)을 보였다.

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A Semantic Similarity Decision Using Ontology Model Base On New N-ary Relation Design (새로운 N-ary 관계 디자인 기반의 온톨로지 모델을 이용한 문장의미결정)

  • Kim, Su-Kyoung;Ahn, Kee-Hong;Choi, Ho-Jin
    • Journal of the Korean Society for information Management
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    • v.25 no.4
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    • pp.43-66
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    • 2008
  • Currently be proceeded a lot of researchers for 'user information demand description' for interface of an information retrieval system or Web search engines, but user information demand description for a natural language form is a difficult situation. These reasons are as they cannot provide the semantic similarity that an information retrieval model can be completely satisfied with variety regarding an information demand expression and semantic relevance for user information description. Therefore, this study using the description logic that is a knowledge representation base of OWL and a vector model-based weight between concept, and to be able to satisfy variety regarding an information demand expression and semantic relevance proposes a decision way for perfect assistances of user information demand description. The experiment results by proposed method, semantic similarity of a polyseme and a synonym showed with excellent performance in decision.