• 제목/요약/키워드: Isolated-word recognition system

검색결과 62건 처리시간 0.024초

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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Spatio-temporal방법을 이용한 지역명 인식에 관한 연구 (A Study on the recognition of local name using Spatio-Temporal method)

  • 지원우
    • 한국음향학회:학술대회논문집
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    • 한국음향학회 1993년도 학술논문발표회 논문집 제12권 1호
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    • pp.121-124
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    • 1993
  • This paper is a study on the word recognition using neural network. A limited vocabulary, speaker independent, isolated word recognition system has been built. This system recognizes isolated word without performing segmentation, phoneme identification, or dynamic time wrapping. It needs a static pattern approach to recognize a spatio-temporal pattern. The preprocessing only includes preceding and tailing silence removal, and word length determination. A LPC analysis is performed on each of 24 equally spaced frames. The PARCOR coefficients plus 3 other features from each frame is extracted. In order to simplify a structure of neural network, we composed binary code form to decrease output nodes.

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MFCC와 DTW에 알고리즘을 기반으로 한 디지털 고립단어 인식 시스템 (Digital Isolated Word Recognition System based on MFCC and DTW Algorithm)

  • 장한;정길도
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2008년도 학술대회 논문집 정보 및 제어부문
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    • pp.290-291
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    • 2008
  • The most popular speech feature used in speech recognition today is the Mel-Frequency Cepstral Coefficients (MFCC) algorithm, which could reflect the perception characteristics of the human ear more accurately than other parameters. This paper adopts MFCC and its first order difference, which could reflect the dynamic character of speech signal, as synthetical parametric representation. Furthermore, we quote Dynamic Time Warping (DTW) algorithm to search match paths in the pattern recognition process. We use the software "GoldWave" to record English digitals in the lab environments and the simulation results indicate the algorithm has higher recognition accuracy than others using LPCC, etc. as character parameters in the experiment for Digital Isolated Word Recognition (DIWR) system.

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초기화하지 않은 K-means iteration을 이용한 고립단어 인식 (Isolated Words Recognition using K-means iteration without Initialization)

  • 김진영;성굉모
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1988년도 전기.전자공학 학술대회 논문집
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    • pp.7-9
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    • 1988
  • K-means iteration method is generally used for creating the templates in speaker-independent isolated-word recognition system. In this paper the initialization method of initial centers is proposed. The concepts are sorting and trace segmentation. All the tokens are sorted and segmented by trace segmentation so that initial centers are decided. The performance of this method is evaluated by isolated-word recognition of Korean digits. The highest recognition rate is 97.6%.

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A New Endpoint Detection Method Based on Chaotic System Features for Digital Isolated Word Recognition System

  • 장한;정길도
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2009년도 정보 및 제어 심포지움 논문집
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    • pp.37-39
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    • 2009
  • In the research of speech recognition, locating the beginning and end of a speech utterance in a background of noise is of great importance. Since the background noise presenting to record will introduce disturbance while we just want to get the stationary parameters to represent the corresponding speech section, in particular, a major source of error in automatic recognition system of isolated words is the inaccurate detection of beginning and ending boundaries of test and reference templates, thus we must find potent method to remove the unnecessary regions of a speech signal. The conventional methods for speech endpoint detection are based on two simple time-domain measurements - short-time energy, and short-time zero-crossing rate, which couldn't guarantee the precise results if in the low signal-to-noise ratio environments. This paper proposes a novel approach that finds the Lyapunov exponent of time-domain waveform. This proposed method has no use for obtaining the frequency-domain parameters for endpoint detection process, e.g. Mel-Scale Features, which have been introduced in other paper. Comparing with the conventional methods based on short-time energy and short-time zero-crossing rate, the novel approach based on time-domain Lyapunov Exponents(LEs) is low complexity and suitable for Digital Isolated Word Recognition System.

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로봇 시스템에의 적용을 위한 음성 및 화자인식 알고리즘 (Implementation of the Auditory Sense for the Smart Robot: Speaker/Speech Recognition)

  • 조현;김경호;박영진
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2007년도 춘계학술대회논문집
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    • pp.1074-1079
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    • 2007
  • We will introduce speech/speaker recognition algorithm for the isolated word. In general case of speaker verification, Gaussian Mixture Model (GMM) is used to model the feature vectors of reference speech signals. On the other hand, Dynamic Time Warping (DTW) based template matching technique was proposed for the isolated word recognition in several years ago. We combine these two different concepts in a single method and then implement in a real time speaker/speech recognition system. Using our proposed method, it is guaranteed that a small number of reference speeches (5 or 6 times training) are enough to make reference model to satisfy 90% of recognition performance.

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E-MIND II를 이용한 고립 단어 인식 시스템의 설계 (Isolated Word Recognition with the E-MIND II Neurocomputer)

  • 김준우;정홍;김명원
    • 전자공학회논문지B
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    • 제32B권11호
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    • pp.1527-1535
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    • 1995
  • This paper introduces an isolated word recognition system realized on a neurocomputer called E-MIND II, which is a 2-D torus wavefront array processor consisting of 256 DNP IIs. The DNP II is an all digital VLSI unit processor for the EMIND II featuring the emulation capability of more than thousands of neurons, the 40 MHz clock speed, and the on-chip learning. Built by these PEs in 2-D toroidal mesh architecture, the E- MIND II can be accelerated over 2 Gcps computation speed. In this light, the advantages of the E-MIND II in its capability of computing speed, scalability, computer interface, and learning are especially suitable for real time application such as speech recognition. We show how to map a TDNN structure on this array and how to code the learning and recognition algorithms for a user independent isolated word recognition. Through hardware simulation, we show that recognition rate of this system is about 97% for 30 command words for a robot control.

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한국어 고립 단어 음성의 자음/모음/유성자음 음가 분할 및 인식에 관한 연구 (A Study on Consonant/Vowel/Unvoiced Consonant Phonetic Value Segmentation and Recognition of Korean Isolated Word Speech)

  • 이준환;이상범
    • 한국정보처리학회논문지
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    • 제7권6호
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    • pp.1964-1972
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    • 2000
  • For the Korean language, on acoustics, it creates a different form of phonetic value not a phoneme by its own peculiar property. Therefore, the construction of extended recognition system for understanding Korean language should be created with a study of the Korean rule-based system, before it can be used as post-processing of the Korean recognition system. In this paper, text-based Korean rule-based system featuring Korean peculiar vocal sound changing rule is constructed. and based on the text-based phonetic value result of the system constructed, a preliminary phonetic value segmentation border points with non-uniform blocks are extracted in Korean isolated word speech. Through the way of merge and recognition of the non-uniform blocks between the extracted border points, recognition possibility of Korean voice as the form of the phonetic vale has been investigated.

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Polo-Zero 모델을 이용한 한국어 단독 숫자음 인식 (Recognition of Korean Isolated Digits Using a Pole-Zero Model)

  • 김순협;박규태
    • 대한전자공학회논문지
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    • 제25권4호
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    • pp.356-365
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    • 1988
  • In this paper, we describe an isolated words recognition system for Korean isolated digits based on a voiced -unvoiced decision algorithm and a frequency domain analysis. The algorithm first performs a voiced-unvoiced decision procedure for the begtinning part of each uttered work using the normalized log energy and zero crossing rate as decision parameters. Based on this decision,. each word is assigned to one of two classes. In order to identify the uttered word within each class, a dynamic time warping algorithm is applied using formant frequencies as the basis for the distance measure. We exploit a pole-zero analysis to measure formant frequencies in each frame. We have observed that pole-zero analysis can provide more accurate estimation of formant frequencies than analysis based on poles only. Experimental recognition rates of 97.3% illustrating the performance of the recognition system was achieved.

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고립단어 인식 시스템에서의 거절기능 구현 (An Implementation of Rejection Capabilities in the Isolated Word Recognition System)

  • 김동화;김형순;김영호
    • 한국음향학회지
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    • 제16권6호
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    • pp.106-109
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    • 1997
  • 고립단어 음성인식 시스템이 실용적이 되려면 인식 대상 이외의 단어를 거절할 수 있는 기능이 요구된다. 본 논문에서는 집단화된 음소 모델과 likelihood ratio에 의한 후처리 방법을 사용하여 거절기능을 구현하는 방법을 제안하였다. 기본적인 음성인식 시스템은 단어 단위 연속 HMM을 사용하였고, 6개의 집단화된 음소 모델들은 음성학적으로 균형잡힌 음성 데이터베이스를 이용하여 훈련된 45개의 문맥독립 음소 모델들로부터 통계적 방법에 의하여 생성되었다. 22개의 부서 명칭을 대상으로 한 화자독립 고립단어 인식시스템에서 거절성능을 시험하여 본 결과, 가장 높은 확률값과 두 번째 높은 확률값을 가지는 후보단어들 간의 차이값에 의하여 거절기능을 수행하는 기존의 후처리 방법보다 성능이 향상됨을 알 수 있었다. 또한 이 집단화된 음소모델은 인식 대상 어휘가 다른 고립단어 인식 시스템에도 재훈련 없이 그대로 사용될 수 있다.

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