• Title/Summary/Keyword: Semantic Error

검색결과 83건 처리시간 0.024초

Error Concealment Based on Semantic Prioritization with Hardware-Based Face Tracking

  • Lee, Jae-Beom;Park, Ju-Hyun;Lee, Hyuk-Jae;Lee, Woo-Chan
    • ETRI Journal
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    • 제26권6호
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    • pp.535-544
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    • 2004
  • With video compression standards such as MPEG-4, a transmission error happens in a video-packet basis, rather than in a macroblock basis. In this context, we propose a semantic error prioritization method that determines the size of a video packet based on the importance of its contents. A video packet length is made to be short for an important area such as a facial area in order to reduce the possibility of error accumulation. To facilitate the semantic error prioritization, an efficient hardware algorithm for face tracking is proposed. The increase of hardware complexity is minimal because a motion estimation engine is efficiently re-used for face tracking. Experimental results demonstrate that the facial area is well protected with the proposed scheme.

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이종 개념체계의 상호보완방안 연구 - 세종의미부류와 KorLexNoun 1.5 의 사상을 중심으로 (Cross-Enrichment of the Heterogenous Ontologies Through Mapping Their Conceptual Structures: the Case of Sejong Semantic Classes and KorLexNoun 1.5)

  • 배선미;윤애선
    • 한국언어정보학회지:언어와정보
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    • 제14권1호
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    • pp.165-196
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    • 2010
  • The primary goal of this paper is to propose methods of enriching two heterogeneous ontologies: Sejong Semantic Classes (SJSC) and KorLexNoun 1.5 (KLN). In order to achieve this goal, this study introduces the pros and cons of two ontologies, and analyzes the error patterns found during the fine-grained manual mapping processes between them. Error patterns can be classified into four types: (1) structural defectives involved in node branching, (2) errors in assigning the semantic classes, (3) deficiency in providing linguistic information, and (4) lack of the lexical units representing specific concepts. According to these error patterns, we propose different solutions in order to correct the node branching defectives and the semantic class assignment, to complement the deficiency of linguistic information, and to increase the number of lexical units suitably allotted to their corresponding concepts. Using the results of this study, we can obtain more enriched ontologies by correcting the defects and errors in each ontology, which will lead to the enhancement of practicality for syntactic and semantic analysis.

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의미 분석과 형태소 분석을 이용한 핵심어 인식 시스템 (Key-word Recognition System using Signification Analysis and Morphological Analysis)

  • 안찬식;오상엽
    • 한국멀티미디어학회논문지
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    • 제13권11호
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    • pp.1586-1593
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    • 2010
  • 확률적 패턴 매칭과 동적 패턴 매칭의 어휘 인식 오류 보정 방법에서는 핵심어를 기반으로 문장을 의미론적으로 분석하므로 형태론적 변형에 따른 핵심어 분석이 어려운 문제점을 가지고 있다. 이를 해결하기 위해 본 연구에서는 음절 복원 알고리즘에서 형태소 분석을 이용하여 인식된 음소 열을 의미 분석 과정을 통해 음소의 의미를 파악하고 형태론적 분석으로 문장을 복원하여 어휘 오인식률을 감소하였다. 시스템 분석을 위해 음소 유사률과 신뢰도를 이용하여 오류 보정률을 구하였으며, 어휘 인식 과정에서 오류로 판명된 어휘에 대하여 오류 보정을 수행하였다. 에러 패턴 학습을 이용한 방법과 오류 패턴 매칭 기반 방법, 어휘 의미 패턴 기반 방법의 성능 평가 결과 2.0%의 인식 향상률을 보였다.

철자오류에 기인한 가의미 오류의 검출 및 교정 방법 (A Method for Detection and Correction of Pseudo-Semantic Errors Due to Typographical Errors)

  • 김동주
    • 한국컴퓨터정보학회논문지
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    • 제18권10호
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    • pp.173-182
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    • 2013
  • 전자 문서의 초안 작성과정에서 추가되는 철자오류는 다른 유형의 오류보다 압도적으로 높은 비율을 차지한다. 입력 실수로 인한 이들 오류는 결과적으로 여전히 철자오류일 수도 있지만 상당수는 구문오류나 의미오류로 발전한다. 이러한 오류들 중 철자오류에서 발전된 가의미 오류는 순수 의미오류에 비해 문장 내에서 주변 단어의 의미에 대해 두드러진 상이성을 갖게된다. 따라서 이러한 의미 오류는 그것이 가지는 두드러진 문맥 상이성으로 인해 간단한 동시발생 빈도에 기초한 알고리즘으로 검출 및 교정이 가능하다. 본 논문에서는 이러한 오류들을 검출하고 교정하기 위한 동시발생 빈도에 기초한 알고리즘을 제안한다. 제안하는 방법에서 동시발생 빈도는 의존 구조상에서 직접 의존관계에 놓인 단어만을 대상으로 계산하며, 가의미 오류 여부를 판단하기 위해서 코사인 유사도 측정 방법을 사용한다. 제시하는 실험으로부터 제안한 방법은 전체 맞춤법 검사기 검출율을 약 2~3% 수준까지 향상 시킬 수 있을 것으로 예측하였다.

Semantic-Oriented Error Correction for Voice-Activated Information Retrieval System

  • Yoon, Yong-Wook;Kim, Byeong-Chang;Lee, Gary-Geunbae
    • 대한음성학회지:말소리
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    • 제44호
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    • pp.115-130
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    • 2002
  • Voice input is often required in many new application environments, but the low rate of speech recognition makes it difficult to extend its application. Previous approaches were to raise the accuracy of the recognition by post-processing of the recognition results, which were all lexical-oriented. We suggest a new semantic-oriented approach in speech recognition error correction. Through experiments using a speech-driven in-vehicle telematics information application, we show the excellent performance of our approach and some advantages it has as a semantic-oriented approach over a pure lexical-oriented approach.

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음성 질의 처리를 위한 의미 기반 오류 수정 (Semantic-oriented Error Correction for Spoken Query Processing)

  • 정민우;김병창;이근배
    • 대한음성학회:학술대회논문집
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    • 대한음성학회 2003년도 10월 학술대회지
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    • pp.153-156
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    • 2003
  • Voice input is often required in many new application environments such as telephone-based information retrieval, car navigation systems, and user-friendly interfaces, but the low success rate of speech recognition makes it difficult to extend its application to new fields. Popular approaches to increase the accuracy of the recognition rate have been researched by post-processing of the recognition results, but previous approaches were mainly lexical-oriented ones in post error correction. We suggest a new semantic-oriented approach to correct both semantic level and lexical errors, which is also more accurate for especially domain-specific speech error correction. Through extensive experiments using a speech-driven in-vehicle telematics information application, we demonstrate the superior performance of our approach and some advantages over previous lexical-oriented approaches.

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주관적 기억장애 및 경도인지장애 노인의 의미연상과제 수행 특성 (The Characteristics of semantic association task performance in elderly with subjective memory impairment and mild cognitive impairment)

  • 강서정;박성현;김정완
    • 디지털융복합연구
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    • 제17권2호
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    • pp.283-292
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    • 2019
  • 초기의 인지 감퇴를 판단하는 요소로 의미지식 및 의미 연관관계의 범주별 손상 유무가 주목을 받고 있다. 본 연구에서는 정상 및 주관적 기억장애, 경도인지장애 노인을 대상으로 의미연상과제를 사용하여 인지 감퇴의 정도에 따라 관찰되는 의미 하위범주별 수행과 오류유형의 차이를 살펴보고자 하였다. 연구 결과, 의미연상과제 범주별 정반응 점수와 반응시간에서 세 군 간 유의한 차이를 보였으며, 하위범주 중, '기능'에서 가장 높은 수행력을, '상위'와 '부분/전체'에서 가장 낮은 수행력을 보였다. 또한, 오류유형별 산출 횟수는 정상에서 경도인지장애 노인으로 갈수록 유의하게 높아졌으며, 무반응은 주관적 기억장애 노인부터 유의하게 증가하였다. 결론적으로, 인지 감퇴가 진행될수록 의미연결망에서 범주별 손상의 정도와 과정이 다르므로, 기억장애 노인의 인지적 감퇴를 확인하고 추적 관찰하기 위한 지표로 의미연상과제 수행력을 활용할 수 있을 것이다.

에러 분석을 통한 사용자 중심의 메뉴 기반 인터페이스 설계 (Design of Menu Driven Interface using Error Analysis)

  • 한상윤;명노해
    • 대한인간공학회지
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    • 제23권4호
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    • pp.9-21
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    • 2004
  • As menu structure of household appliance is complicated, user's cognitive workload frequently occurs errors. In existing studies, errors didn't present that interpretation for cognitive factors and alternatives, but are only considered as statistical frequency. Therefore, error classification and analysis in tasks is inevitable in usability evaluation. This study classified human error throughout information process model and navigation behavior. Human error is defined as incorrect decision and behavior reducing performance. And navigation is defined as unrelated behavior with target item searching. We searched and analyzed human errors and its causes as a case study, using mobile phone which could control appliances in near future. In this study, semantic problems in menu structure were elicited by SAT. Scenarios were constructed by those. Error analysis tests were performed twice to search and analyze errors. In 1st prototype test, we searched errors occurred in process of each scenario. Menu structure was revised to be based on results of error analysis. Henceforth, 2nd Prototype test was performed to compare with 1st. Error analysis method could detect not only mistakes, problems occurred by semantic structure, but also slips by physical structure. These results can be applied to analyze cognitive causes of human errors and to solve their problems in menu structure of electronic products.

A Hybrid Semantic-Geometric Approach for Clutter-Resistant Floorplan Generation from Building Point Clouds

  • Kim, Seongyong;Yajima, Yosuke;Park, Jisoo;Chen, Jingdao;Cho, Yong K.
    • 국제학술발표논문집
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    • The 9th International Conference on Construction Engineering and Project Management
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    • pp.792-799
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    • 2022
  • Building Information Modeling (BIM) technology is a key component of modern construction engineering and project management workflows. As-is BIM models that represent the spatial reality of a project site can offer crucial information to stakeholders for construction progress monitoring, error checking, and building maintenance purposes. Geometric methods for automatically converting raw scan data into BIM models (Scan-to-BIM) often fail to make use of higher-level semantic information in the data. Whereas, semantic segmentation methods only output labels at the point level without creating object level models that is necessary for BIM. To address these issues, this research proposes a hybrid semantic-geometric approach for clutter-resistant floorplan generation from laser-scanned building point clouds. The input point clouds are first pre-processed by normalizing the coordinate system and removing outliers. Then, a semantic segmentation network based on PointNet++ is used to label each point as ceiling, floor, wall, door, stair, and clutter. The clutter points are removed whereas the wall, door, and stair points are used for 2D floorplan generation. A region-growing segmentation algorithm paired with geometric reasoning rules is applied to group the points together into individual building elements. Finally, a 2-fold Random Sample Consensus (RANSAC) algorithm is applied to parameterize the building elements into 2D lines which are used to create the output floorplan. The proposed method is evaluated using the metrics of precision, recall, Intersection-over-Union (IOU), Betti error, and warping error.

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개념격자를 이용한 온톨로지 오류검출기법 (An Approach for Error Detection in Ontologies Using Concept Lattices)

  • 황석형
    • 한국IT서비스학회지
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    • 제7권3호
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    • pp.271-286
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    • 2008
  • The core of the semantic web is ontology, which supports interoperability among semantic web applications and enables developer to reuse and share domain knowledge. It used a variety of fields such as Information Retrieval, E-commerce, Software Engineering, Artificial Intelligence and Bio-informatics. However, the reality is that various errors might be included in conceptual hierarchy when developing ontologies. Therefore, methodologies and supporting tools are essential to help the developer construct suitable ontologies for the given purposes and to detect and analyze errors in order to verify the inconsistency in the ontologies. In this paper we propose a new approach for ontology error detection based on the Concept Lattices of Formal Concept Analysis. By using the tool that we developed in this research, we can extract core elements from the source code of Ontology and then detect some structural errors based on the concept lattices. The results of this research can be helpful for ontology engineers to support error detection and construction of "well-defined" and "good" ontologies.