• Title/Summary/Keyword: phonemic

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A Study on the Segmentation of Speech Signal into Phonemic Units (음성 신호의 음소 단위 구분화에 관한 연구)

  • Lee, Yeui-Cheon;Lee, Gang-Sung;Kim, Soon-Hyon
    • The Journal of the Acoustical Society of Korea
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    • v.10 no.4
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    • pp.5-11
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    • 1991
  • This paper suggests a segmentation method of speech signal into phonemic units. The suggested segmentation system is speaker-independent and performed without anyprior information of speech signal. In segmentation process, we first divide input speech signal into purevoiced region and not pure voiced speech regions. After then we apply the second algorithm which segments each region into the detailed phonemic units by using the voiced detection parameters, i.e., the time variation of 0th LPC cepstrum coefficient parameter and the ZCR parameter. Types of speech, used to prove the availability of segmentation algorithm suggested in this paper, are the vocabulary composed of isolated words and continuous words. According to the experiments, the successful segmentation rate for 507 phonemic units involved in the total vocabulary is 91.7%.

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Phonological Awareness Activities Using Story Books : Effects on Reading, Self-Concept, and Learning Motivation in an After-School Program for 1st and 2nd Grade Low Income Children (동화를 이용한 음운인식활동이 저소득층 초등 방과후 교실 1, 2 학년 아동의 읽기, 학습동기 및 자아개념에 미치는 영향)

  • Lee, Jeehyun;Kim, Youjung;Lee, Jung A
    • Korean Journal of Child Studies
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    • v.27 no.5
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    • pp.123-141
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    • 2006
  • The phonemic awareness program included construction of 45 activities emphasizing various sounds in speech and letter names using a storybook. The subjects were thirty 1st and 2nd grade low-income(15 experimental and 15 control group) children attending an after-school program in Seoul. Pre- and post-tests assessed children's reading, self-concept, and learning motivation. The experimental group children had rich opportunity to deal with and discuss sounds, syllables, phonemes, and the Korean alphabet names during storybook reading, games, and play over a 12 week period, while the control group children were provided with worksheets, subject tutoring, and homework guidance. Results showed that the phonemic activities were an effective and useful way to enhance children's reading ability, self-concept, and learning motivation.

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Unveiling and Addressing Pronunciation Challenges in English Consonantal Phonemes for Foreign Language Learners

  • Joo Hyun Chun
    • International Journal of Advanced Culture Technology
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    • v.12 no.2
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    • pp.151-160
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    • 2024
  • Through the utilization of a contrastive analysis of English consonantal phonemes and their Russian counterparts, the present study investigates the challenges faced by Russian EFL learners in pronouncing English consonantal phonemes, with a particular focus on phoneme substitution errors as a principal source of erroneous pronunciation. We comprehensively explore the characteristics of both the English and Russian consonant systems, highlighting the differences between them. Based on this examination, the study aims to present the detailed articulatory characteristics and phonetic variations of Russian speakers' common mispronunciations or improper substitutes of English consonants, rather than focusing on shared ones between the two languages. Furthermore, it seeks to provide strategies for error correction and effective pedagogical strategies to address specific phonemic challenges and enhance accuracy. Grounded in a comprehensive understanding of the objectives and advantages of comparative analysis within the context of phonemic awareness, the study emphasizes the significant importance of pronunciation instruction. It points out that this area still appears somewhat overlooked in specific EFL teaching situations within the context of English language education.

Spectral subtraction based on speech state and masking effect

  • 김우일;강선미;고한석
    • Proceedings of the IEEK Conference
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    • 1998.06a
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    • pp.599-602
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    • 1998
  • In this paper, a speech enhancement method based on phonemic properties and masking effect is propsoed. It is a modified type of spectral subtraction wherein the spectral sharpening process is exploited in unvoiced state considering the phonemic properties. The masking threshold is used to remove the residual noise. The proposed spectral subtraction shows similar performance as that of the classical spectral subtraction method in view of the SNR. But by the prposed scheme, the unvoiced sound region is shown to exhibit relatively less signal distortion in the enhanced speech.

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A Study on the Phonemic Segmentation by Likelihood Ratio (Likelihood Ratio에 의한 음소분류에 관한 연구)

  • Lee, Ki-Young;Bae, Chul-Soo;Choi, Kap-Seok
    • Proceedings of the KIEE Conference
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    • 1988.07a
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    • pp.20-24
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    • 1988
  • This paper proposed the phonemic segmentation method that employed two types of Likelihood Ratio that measures the change of spectral structure. By this method, isolated digits and words of VCV form are segmented into phoneme-unit and especially, first-burst part in an aspirated bilabial plosive is divided.

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Implementation of TTS Engine for Natural Voice (자연음 TTS(Text-To-Speech) 엔진 구현)

  • Cho Jung-Ho;Kim Tae-Eun;Lim Jae-Hwan
    • Journal of Digital Contents Society
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    • v.4 no.2
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    • pp.233-242
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    • 2003
  • A TTS(Text-To-Speech) System is a computer-based system that should be able to read any text aloud. To output a natural voice, we need a general knowledge of language, a lot of time, and effort. Furthermore, the sound pattern of english has a variable pattern, which consists of phonemic and morphological analysis. It is very difficult to maintain consistency of pattern. To handle these problems, we present a system based on phonemic analysis for vowel and consonant. By analyzing phonological variations frequently found in spoken english, we have derived about phonemic contexts that would trigger the multilevel application of the corresponding phonological process, which consists of phonemic and allophonic rules. In conclusion, we have a rule data which consists of phoneme, and a engine which economize in system. The proposed system can use not only communication system, but also utilize office automation and so on.

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Phoneme-Boundary-Detection and Phoneme Recognition Research using Neural Network (음소경계검출과 신경망을 이용한 음소인식 연구)

  • 임유두;강민구;최영호
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 1999.11a
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    • pp.224-229
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    • 1999
  • In the field of speech recognition, the research area can be classified into the following two categories: one which is concerned with the development of phoneme-level recognition system, the other with the efficiency of word-level recognition system. The resonable phoneme-level recognition system should detect the phonemic boundaries appropriately and have the improved recognition abilities all the more. The traditional LPC methods detect the phoneme boundaries using Itakura-Saito method which measures the distance between LPC of the standard phoneme data and that of the target speech frame. The MFCC methods which treat spectral transitions as the phonemic boundaries show the lack of adaptability. In this paper, we present new speech recognition system which uses auto-correlation method in the phonemic boundary detection process and the multi-layered Feed-Forward neural network in the recognition process respectively. The proposed system outperforms the traditional methods in the sense of adaptability and another advantage of the proposed system is that feature-extraction part is independent of the recognition process. The results show that frame-unit phonemic recognition system should be possibly implemented.

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A Visual Study of the Phonemic Awareness (음소인지에 관한 시각적 연구)

  • Park, Heesuk
    • Journal of Digital Contents Society
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    • v.16 no.2
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    • pp.219-225
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    • 2015
  • This experimental study aims at understanding the Korean subjects' phonemic awareness in the English minimal pairs. For the purpose of the experiment, English listening comprehension tests were designed using minimal pairs and conducted among subjects, and the results of the tests were analyzed with the help of spectrogram. From the results of this study, I could find out three important things: First, subjects have difficulty in understanding and distinguishing English vowel minimal pairs. Second, among the English vowel minimal pairs, they had much difficulty in distinguishing between /ə:/ and /ɔ:/. Third, subjects could recognize the semivowel /w/ in words without any difficulty. In addition to this, I tried to analyze the results using the spectrogram, which helps to educate students effectively.

Building a Morpheme-Based Pronunciation Lexicon for Korean Large Vocabulary Continuous Speech Recognition (한국어 대어휘 연속음성 인식용 발음사전 자동 생성 및 최적화)

  • Lee Kyong-Nim;Chung Minhwa
    • MALSORI
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    • v.55
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    • pp.103-118
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    • 2005
  • In this paper, we describe a morpheme-based pronunciation lexicon useful for Korean LVCSR. The phonemic-context-dependent multiple pronunciation lexicon improves the recognition accuracy when cross-morpheme pronunciation variations are distinguished from within-morpheme pronunciation variations. Since adding all possible pronunciation variants to the lexicon increases the lexicon size and confusability between lexical entries, we have developed a lexicon pruning scheme for optimal selection of pronunciation variants to improve the performance of Korean LVCSR. By building a proposed pronunciation lexicon, an absolute reduction of $0.56\%$ in WER from the baseline performance of $27.39\%$ WER is achieved by cross-morpheme pronunciation variations model with a phonemic-context-dependent multiple pronunciation lexicon. On the best performance, an additional reduction of the lexicon size by $5.36\%$ is achieved from the same lexical entries.

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Phoneme Recognition Using Frequency State Neural Network (주파수 상태 신경 회로망을 이용한 음소 인식)

  • Lee, Jun-Mo;Hwang, Yeong-Soo;Kim, Seong-Jong;Shin, In-Chul
    • The Journal of the Acoustical Society of Korea
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    • v.13 no.4
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    • pp.12-19
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    • 1994
  • This paper reports a new structure for phoneme recognition neural network. The proposed neural network is able to deal with the structure of the frequency bands as well as the temporal structure of phonemic features which used in the conventional TSNN. We trained this neural network using the phonetics (아, 이, 오, ㅅ, ㅊ, ㅍ, ㄱ, ㅇ, ㄹ, ㅁ) and the phoneme recognition of this neural network was a little better than those of conventional TDNN and TSNN using only temporal structure of phonemic features.

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