• 제목/요약/키워드: Word Recognition

검색결과 792건 처리시간 0.029초

한국어 단음절 낱말 인식에 미치는 어휘적 특성의 영향 (Analysis of Lexical Effect on Spoken Word Recognition Test)

  • 윤미선;이봉원
    • 대한음성학회지:말소리
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    • 제54호
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    • pp.15-26
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    • 2005
  • The aim of this paper was to analyze the lexical effects on spoken word recognition of Korean monosyllabic word. The lexical factors chosen in this paper was frequency, density and lexical familiarity of words. Result of the analysis was as follows; frequency was the significant factor to predict spoken word recognition score of monosyllabic word. The other factors were not significant. This result suggest that word frequency should be considered in speech perception test.

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레벤스타인 거리에 기초한 위치 정확도를 이용한 고립 단어 인식 결과의 비유사 후보 단어 제외 (Exclusion of Non-similar Candidates using Positional Accuracy based on Levenstein Distance from N-best Recognition Results of Isolated Word Recognition)

  • 윤영선;강점자
    • 말소리와 음성과학
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    • 제1권3호
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    • pp.109-115
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    • 2009
  • Many isolated word recognition systems may generate non-similar words for recognition candidates because they use only acoustic information. In this paper, we investigate several techniques which can exclude non-similar words from N-best candidate words by applying Levenstein distance measure. At first, word distance method based on phone and syllable distances are considered. These methods use just Levenstein distance on phones or double Levenstein distance algorithm on syllables of candidates. Next, word similarity approaches are presented that they use characters' position information of word candidates. Each character's position is labeled to inserted, deleted, and correct position after alignment between source and target string. The word similarities are obtained from characters' positional probabilities which mean the frequency ratio of the same characters' observations on the position. From experimental results, we can find that the proposed methods are effective for removing non-similar words without loss of system performance from the N-best recognition candidates of the systems.

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청각단어 재인에서 나타난 한국어 단어 길이 효과 (The Korean Word Length Effect on AudWord Recognition)

  • 최원일;남기춘
    • 대한음성학회지:말소리
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    • 제44호
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    • pp.33-46
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    • 2002
  • This study was conducted to examine the effect of word length on auditory word recognition. Word length can be defined by several sublexical units, such as letters, phonemes, syllables, etc. To find out which sublexical units are influential in auditory word recognition, the auditory lexical decision task was used. In Experiment 1, we examined the partial correlation between the speed of reaction time and the number of sublexical units, and in Experiment 2, we executed ANOVA to find out which sublexical length variable was an influential unit. Through these two experiment, we concluded syllable length was the most important variable on auditory word recognition.

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말소리 단어 재인 시 높낮이와 장단의 역할: 서울 방언과 대구 방언의 비교 (The Role of Pitch and Length in Spoken Word Recognition: Differences between Seoul and Daegu Dialects)

  • 이윤형;박현수
    • 말소리와 음성과학
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    • 제1권2호
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    • pp.85-94
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    • 2009
  • The purpose of this study was to see the effects of pitch and length patterns on spoken word recognition. In Experiment 1, a syllable monitoring task was used to see the effects of pitch and length on the pre-lexical level of spoken word recognition. For both Seoul dialect speakers and Daegu dialect speakers, pitch and length did not affect the syllable detection processes. This result implies that there is little effect of pitch and length in pre-lexical processing. In Experiment 2, a lexical decision task was used to see the effect of pitch and length on the lexical access level of spoken word recognition. In this experiment, word frequency (low and high) as well as pitch and length was manipulated. The results showed that pitch and length information did not play an important role for Seoul dialect speakers, but that it did affect lexical decision processing for Daegu dialect speakers. Pitch and length seem to affect lexical access during the word recognition process of Daegu dialect speakers.

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단어 경계 검출 오류 보정을 위한 수정된 비터비 알고리즘 (A Modified Viterbi Algorithm for Word Boundary Detection Error Compensation)

  • 정훈;정익주
    • The Journal of the Acoustical Society of Korea
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    • 제26권1E호
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    • pp.21-26
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    • 2007
  • In this paper, we propose a modified Viterbi algorithm to compensate for endpoint detection error during the decoding phase of an isolated word recognition task. Since the conventional Viterbi algorithm explores only the search space whose boundaries are fixed to the endpoints of the segmented utterance by the endpoint detector, the recognition performance is highly dependent on the accuracy level of endpoint detection. Inaccurately segmented word boundaries lead directly to recognition error. In order to relax the degradation of recognition accuracy due to endpoint detection error, we describe an unconstrained search of word boundaries and present an algorithm to explore the search space with efficiency. The proposed algorithm was evaluated by performing a variety of simulated endpoint detection error cases on an isolated word recognition task. The proposed algorithm reduced the Word Error Rate (WER) considerably, from 84.4% to 10.6%, while consuming only a little more computation power.

청각 단어 재인에서 나타난 한국어 단어길이 효과 (The Korean Word Length Effect on Auditory Word Recognition)

  • 최원일;남기춘
    • 대한음성학회:학술대회논문집
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    • 대한음성학회 2002년도 11월 학술대회지
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    • pp.137-140
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    • 2002
  • This study was conducted to examine the korean word length effects on auditory word recognition. Linguistically, word length can be defined by several sublexical units such as letters, phonemes, syllables, and so on. In order to investigate which units are used in auditory word recognition, lexical decision task was used. Experiment 1 and 2 showed that syllable length affected response time, and syllable length interacted with word frequency. As a result, in recognizing auditory word syllable length was important variable.

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Sub-word Based Offline Handwritten Farsi Word Recognition Using Recurrent Neural Network

  • Ghadikolaie, Mohammad Fazel Younessy;Kabir, Ehsanolah;Razzazi, Farbod
    • ETRI Journal
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    • 제38권4호
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    • pp.703-713
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    • 2016
  • In this paper, we present a segmentation-based method for offline Farsi handwritten word recognition. Although most segmentation-based systems suffer from segmentation errors within the first stages of recognition, using the inherent features of the Farsi writing script, we have segmented the words into sub-words. Instead of using a single complex classifier with many (N) output classes, we have created N simple recurrent neural network classifiers, each having only true/false outputs with the ability to recognize sub-words. Through the extraction of the number of sub-words in each word, and labeling the position of each sub-word (beginning/middle/end), many of the sub-word classifiers can be pruned, and a few remaining sub-word classifiers can be evaluated during the sub-word recognition stage. The candidate sub-words are then joined together and the closest word from the lexicon is chosen. The proposed method was evaluated using the Iranshahr database, which consists of 17,000 samples of Iranian handwritten city names. The results show the high recognition accuracy of the proposed method.

고립단어 인식에 유사단어 정보를 이용한 단어의 검증 (Speech Verification using Similar Word Information in Isolated Word Recognition)

  • 백창흠;이기정홍재근
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 1998년도 추계종합학술대회 논문집
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    • pp.1255-1258
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    • 1998
  • Hidden Markov Model (HMM) is the most widely used method in speech recognition. In general, HMM parameters are trained to have maximum likelihood (ML) for training data. This method doesn't take account of discrimination to other words. To complement this problem, this paper proposes a word verification method by re-recognition of the recognized word and its similar word using the discriminative function between two words. The similar word is selected by calculating the probability of other words to each HMM. The recognizer haveing discrimination to each word is realized using the weighting to each state and the weighting is calculated by genetic algorithm.

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한국어 단어재인에 있어서 빈도와 길이 효과 탐색 (The exploration of the effects of word frequency and word length on Korean word recognition)

  • 이창환;이윤형;김태훈
    • 한국산학기술학회논문지
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    • 제17권1호
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    • pp.54-61
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    • 2016
  • 단어는 언어의 기초적인 의미 단위이기 때문에 단어재인에 대한 연구는 언어 연구에서 중요하며 단어처리에 기여하는 변인이 무엇인지에 관한 연구가 이루어져 왔다. 본 연구에서는 한국어 단어재인 과정의 주요 변인 중 단어 빈도와 단어길이의 영향을 탐색하였다. 먼저 단어 빈도와 관련하여, 한국어의 특징 중 하나인 한자어로 이루어진 단어에서도 기존의 연구와 동일한 양상의 빈도 효과가 나타나는지를 탐색하였다. 이를 위해 순 한글 단어와 한자어로 이루어진 단어를 비교하였으며, 그 결과 한자어로 이루어진 단어에서는 빈도 효과가 나타나지 않았다. 한편 단어 길이 효과의 경우, 단음절로 구성된 단어의 양상을 확인해 보고자, 음절의 개수를 변화시켜 단어 길이 효과를 측정하였다. 그 결과 단음절 단어는 이음절 단어에 비해 느리게 처리되었다. 특정 유형의 단어에 대한 빈도 효과의 부재 및 단음절 단어의 느린 처리는 한국어의 특징을 반영한 결과라 할 수 있으며 추후 연구를 통해 이에 대한 좀더 자세한 탐색이 필요할 것이다.

낱말 인식 검사에 대한 어휘적 특성의 영향 분석 (Analysis of Lexical Effect on Spoken Word Recognition Test)

  • 윤미선;이봉원
    • 대한음성학회:학술대회논문집
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    • 대한음성학회 2005년도 춘계 학술대회 발표논문집
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    • pp.77-80
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    • 2005
  • The aim of this paper was to analyze the lexical effects on spoken word recognition of Korean monosyllabic word. The lexical factors chosen in this paper was frequency, density and lexical familiarity of words. Result of the analysis was as follows; frequency was the significant factor to predict spoken word recognition score of monosyllabic word. The other factors were not significant. This result suggest that word frequency should be considered in speech perception test.

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