High variability phonetic training facilitates perception-to-production transfer in Mandarin-speaking children with cochlear implants: An acoustic investigation.
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引用次数: 0
Abstract
This study primarily aimed to evaluate the effectiveness of high variability phonetic training (HVPT) for children with cochlear implants (CIs) via the cross-modal transfer of perceptual learning to lexical tone production, a scope that has been largely neglected by previous training research. Sixteen CI participants received a five-session HVPT within a period of three weeks, whereas another 16 CI children were recruited without receiving any formal training. Lexical tone production was assessed with a picture naming task before the provision (pretest) and immediately after (posttest) and ten weeks after (follow-up test) the completion of the training protocol. The production samples were coded and analyzed acoustically. Despite considerable distinctions from the typical baselines of normal-hearing peers, the trained CI children exhibited significant improvements in Mandarin tone production from pretest to posttest in pitch height of T1, pitch slope of T2, and pitch curvature of T3. Moreover, the training-induced acoustic changes in the concave characteristic of the T3 contour was retained ten weeks after training termination. This study represents an initial acoustic investigation on HVPT-induced benefits in lexical tone production for the pediatric CI population, which provides valuable insights into applying this perceptual training technique as a viable tool in clinical practices.
本研究的主要目的是评估高变异性语音训练(HVPT)通过将感知学习跨模态迁移到词性音调生成方面对人工耳蜗(CI)儿童的有效性。16 名 CI 参与者在三周内接受了为期五节的 HVPT 训练,而另外 16 名 CI 儿童则未接受任何正式训练。在提供训练之前(前测)、训练之后(后测)和训练完成十周之后(跟进测试),通过图片命名任务对词汇语调的产生进行了评估。对发音样本进行了编码和声学分析。尽管与正常听力儿童的典型基线有很大差异,但从测试前到测试后,经过训练的 CI 儿童在 T1 的音高、T2 的音高斜率和 T3 的音高弧度方面的普通话发音都有显著改善。此外,训练引起的 T3 轮廓凹陷特征的声学变化在训练结束十周后仍得以保留。本研究是对 HVPT 诱导的小儿 CI 人群词性音调产生益处的初步声学调查,为将这种感知训练技术作为一种可行的工具应用于临床实践提供了宝贵的见解。
期刊介绍:
Since 1929 The Journal of the Acoustical Society of America has been the leading source of theoretical and experimental research results in the broad interdisciplinary study of sound. Subject coverage includes: linear and nonlinear acoustics; aeroacoustics, underwater sound and acoustical oceanography; ultrasonics and quantum acoustics; architectural and structural acoustics and vibration; speech, music and noise; psychology and physiology of hearing; engineering acoustics, transduction; bioacoustics, animal bioacoustics.