• Title/Summary/Keyword: Automatic Tagging

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Automatic Tagging for Social Images using Convolution Neural Networks (CNN을 이용한 소셜 이미지 자동 태깅)

  • Jang, Hyunwoong;Cho, Soosun
    • Journal of KIISE
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    • v.43 no.1
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    • pp.47-53
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    • 2016
  • While the Internet develops rapidly, a huge amount of image data collected from smart phones, digital cameras and black boxes are being shared through social media sites. Generally, social images are handled by tagging them with information. Due to the ease of sharing multimedia and the explosive increase in the amount of tag information, it may be considered too much hassle by some users to put the tags on images. Image retrieval is likely to be less accurate when tags are absent or mislabeled. In this paper, we suggest a method of extracting tags from social images by using image content. In this method, CNN(Convolutional Neural Network) is trained using ImageNet images with labels in the training set, and it extracts labels from instagram images. We use the extracted labels for automatic image tagging. The experimental results show that the accuracy is higher than that of instagram retrievals.

Word Sense Disambiguation using Meaning Groups (의미그룹을 이용한 단어 중의성 해소)

  • Kim, Eun-Jin;Lee, Soo-Won
    • Journal of KIISE:Computing Practices and Letters
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    • v.16 no.6
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    • pp.747-751
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    • 2010
  • This paper proposes the method that increases the accuracy for tagging word meaning by creating sense tagged data automatically using machine readable dictionaries. The concept of meaning group is applied here, where the meaning group for each meaning of a target word consists of neighbor words of the target word. To enhance the tagging accuracy, the notion of concentration is used for the weight of each word in a meaning group. The tagging result in SENSEVAL-2 data shows that accuracy of the proposed method is better than that of existing ones.

Efficient Storage and Retrieval for Automatic Indexing of Persons in Videos (동영상 등장인물의 자동색인을 위한 효율적인 저장과 검색 방법)

  • Kim, Jin-Seung;Han, Yong-Koo;Lee, Young-Koo
    • Journal of Korea Multimedia Society
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    • v.14 no.8
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    • pp.1050-1060
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    • 2011
  • With increasing need for indexing of persons in a large video database, automatic indexing has been attracting great interest which takes advantage of automatic tagging instead of the time-consuming and costly manual tagging. However, automatic indexing approach should provide a degree of recognition proximity because it cannot identify the persons with accuracy of 100%. In this paper, we propose an efficient storage method for storing posting lists efficiently and a novel ranking technique of ordering relevant videos for efficient retrieval. Through experiment evaluations we have shown that our storage method exhibits good performance in compressing the posting list. We have also shown that the proposed ranking method is effective for finding relevant videos.

Automatic Tagging Scheme for Plural Faces (다중 얼굴 태깅 자동화)

  • Lee, Chung-Yeon;Lee, Jae-Dong;Chin, Seong-Ah
    • Journal of the Institute of Electronics Engineers of Korea CI
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    • v.47 no.3
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    • pp.11-21
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    • 2010
  • To aim at improving performance and reflecting user's needs of retrieval, the number of researches has been actively conducted in recent year as the quantity of information and generation of the web pages exceedingly increase. One of alternative approaches can be a tagging system. It makes users be able to provide a representation of metadata including writings, pictures, and movies etc. called tag and be convenient in use of retrieval of internet resources. Tags similar to keywords play a critical role in maintaining target pages. However, they still needs time consuming labors to annotate tags, which sometimes are found to be a hinderance caused by overuse of tagging. In this paper, we present an automatic tagging scheme for a solution of current tagging system conveying drawbacks and inconveniences. To realize the approach, face recognition-based tagging system on SNS is proposed by building a face area detection procedure, linear-based classification and boosting algorithm. The proposed novel approach of tagging service can increase possibilities that utilized SNS more efficiently. Experimental results and performance analysis are shown as well.

Automatic Tag Classification from Sound Data for Graph-Based Music Recommendation (그래프 기반 음악 추천을 위한 소리 데이터를 통한 태그 자동 분류)

  • Kim, Taejin;Kim, Heechan;Lee, Soowon
    • KIPS Transactions on Software and Data Engineering
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    • v.10 no.10
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    • pp.399-406
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    • 2021
  • With the steady growth of the content industry, the need for research that automatically recommending content suitable for individual tastes is increasing. In order to improve the accuracy of automatic content recommendation, it is needed to fuse existing recommendation techniques using users' preference history for contents along with recommendation techniques using content metadata or features extracted from the content itself. In this work, we propose a new graph-based music recommendation method which learns an LSTM-based classification model to automatically extract appropriate tagging words from sound data and apply the extracted tagging words together with the users' preferred music lists and music metadata to graph-based music recommendation. Experimental results show that the proposed method outperforms existing recommendation methods in terms of the recommendation accuracy.

Development of a Baseline Platform for Spoken Dialog Recognition System (대화음성인식 시스템 구현을 위한 기본 플랫폼 개발)

  • Chung Minhwa;Seo Jungyun;Lee Yong-Jo;Han Myungsoo
    • Proceedings of the KSPS conference
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    • 2003.05a
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    • pp.32-35
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    • 2003
  • This paper describes our recent work for developing a baseline platform for Korean spoken dialog recognition. In our work, We have collected about 65 hour speech corpus with auditory transcriptions. Linguistic information on various levels such as mophology, syntax, semantics, and discourse is attached to the speech database by using automatic or semi-automatic tools for tagging linguistic information.

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Toward Automatic Probabilistic Syntactic Tagging (확률통계적 구문태깅의 자동화)

  • 김형근
    • Proceedings of the Acoustical Society of Korea Conference
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    • 1994.06c
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    • pp.253-257
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    • 1994
  • 언어처리에 통계 확률적인 방법이 도입되면서 현실적으로 상당한 진전이 있었지만 한국어의 경우에는 대부분 형태소 해석과 품사 태깅에 그치고 있다. 본 논문에서는 구문분석 수준에서의 통계적인 한국어 분석에 쓰일 자료 구축으로서의 구문 태깅의 방법론과 그 자동화에 대해 보고한다.

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Chinese Segmentation and POS-Tagging by Automat ic POS Dictionary Training (품사 사전 자동 학습을 통한 중국어 단어 분할 및 품사 태깅)

  • Ha, Ju-Hong;Zheng, Yu;Lee, Gary G.
    • Annual Conference on Human and Language Technology
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    • 2002.10e
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    • pp.33-39
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    • 2002
  • 중국어의 품사 태깅(part-of-speech tagging)을 위해서는 중국어 문장들은 내부 단어간의 명확한 분리가 없기 때문에 단어 분할(word segmentation)과 품사 태깅을 동시에 처리해야 한다. 본 논문은 규칙 기반(rule base)과 사전 기반(dictionary base) 기법을 혼합하여 구현한 단어 분할 시스템을 사용하여 입력 문장을 단어 단위로 분할하고, HMM(hidden Markov model) 기반 통계적 품사 태깅 기법을 사용한다. 특히, 본 논문에서는 주어진 말뭉치(corpus)로부터 자동 학습(automatic training)을 통해 품사 사전을 구축하여 구현된 시스템과 말뭉치간의 독립성을 유지한다. 말뭉치는 중국어 간체와 번체 모두를 대상으로 하고, 각 말뭉치로부터 자동 학습을 통해 얻어진 품사 사전으로 단어 분할과 품사 태깅을 한다. 실험결과들은 간체, 번체 각각의 단어 분할 성능과 품사 태깅 성능을 보여준다.

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The Language Change and Language Processing (언어 변화와 언어 처리 - '는게/는데' 문법 화와 자동 태깅 시스템-)

  • 최운호
    • Korean Journal of Cognitive Science
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    • v.10 no.2
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    • pp.35-43
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    • 1999
  • This paper aims to research the language changes in modern Korean and its effect to the language processing systems. In modern Korean. the syntactic constructions l like [Adnominal Ending + Bound Noun ( + Postposition)] are changing into the morphological constructions, and some of these constructions are reflected in the written language. For example. the syntactic construction [Ad nominal Ending + '-de (Bound N Noun)' (+ Postposition) ) co-exists with the mixed form '-neunde' and [Adnominal Ending + 'geot' (Bound Noun) + '-j' (Postposition)) does with ' neunge'. These constructions are used frequently in the spoken language. As like other verbal endings, these forms also participate in the construction of the complex sentence, and these forms have its own case function fused into themselves So, the analytic approach to these forms can make great effect on the automatic morphological analysis systems. automatic tagging systems. and the syntactic analysis systems. So. in the design phase of a language processing systems, the language change phenomena like these must be taken l into consideration.

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A Research on Automatic Image Tagging (자동 이미지 태깅에 관한 연구)

  • Jun, Woo-Gyoung;Lee, Yill-Byung
    • Proceedings of the Korean Information Science Society Conference
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    • 2012.06d
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    • pp.85-87
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    • 2012
  • 최근 모바일 기기는 물론 디지털 카메라, SNS의 발전으로 인하여 매일 방대한 양의 디지털 이미지가 생성된다. 따라서 효과적이고 신뢰도 있는 인덱싱 기법과 탐색 기법이 요구되고 있다. 이미지 태깅은 효과적이고 신뢰도 있는 이미지 탐색에 큰 연관관계가 있다. 본 연구에서는 여러가지 이미지 태깅 기법들을 서베이하고 자동 및 반 자동 이미지 태깅 기법들에 대하여 알아본다.