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The development and validation of the Closed-set Mandarin Sentence (CMS) test

机译:封闭式普通话句子(CMS)测试的开发和验证

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摘要

Matrix-styled sentence tests offer a closed-set paradigm that may be useful when evaluating speech intelligibility. Ideally, sentence test materials should reflect the distribution of phonemes within the target language. We developed and validated the Closed-set Mandarin Sentence (CMS) test to assess Mandarin speech intelligibility in noise. CMS test materials were selected to be familiar words and to represent the natural distribution of vowels, consonants, and lexical tones found in Mandarin Chinese. Ten key words in each of five categories (Name, Verb, Number, Color, and Fruit) were produced by a native Mandarin talker, resulting in a total of 50 words that could be combined to produce 100,000 unique sentences. Normative data were collected in 10 normal-hearing, adult Mandarin-speaking Chinese listeners using a closed-set test paradigm. Two test runs were conducted for each subject, and 20 sentences per run were randomly generated while ensuring that each word was presented only twice in each run. First, the level of the words in each category were adjusted to produce equal intelligibility in noise. Test-retest reliability for word-in-sentence recognition was excellent according to Cronbach’s alpha (0.952). After the category level adjustments, speech reception thresholds (SRTs) for sentences in noise, defined as the signal-to-noise ratio (SNR) that produced 50% correct whole sentence recognition, were adaptively measured by adjusting the SNR according to the correctness of response. The mean SRT was −7.9 (SE=0.41) and −8.1 (SE=0.34) dB for runs 1 and 2, respectively. The mean standard deviation across runs was 0.93 dB, and paired t-tests showed no significant difference between runs 1 and 2 (p=0.74) despite random sentences being generated for each run and each subject. The results suggest that the CMS provides large stimulus set with which to repeatedly and reliably measure Mandarin-speaking listeners’ speech understanding in noise using a closed-set paradigm.
机译:矩阵样式的句子测试提供了一个封闭式范例,在评估语音清晰度时可能会有用。理想情况下,句子测试材料应反映目标语言内音素的分布。我们开发并验证了封闭式普通话句子(CMS)测试,以评估噪声中普通话语音的清晰度。选择CMS测试材料作为熟悉的单词,并代表普通话中元音,辅音和词汇声调的自然分布。母语为普通话的人说出五个类别(名称,动词,数字,颜色和水果)中的十个关键词,结果总共有50个单词,可以组合起来产生100,000个独特的句子。使用封闭式测试范式,从10名正常听觉,成年普通话的中国听众中收集了规范性数据。对每个主题进行两次测试,每次运行随机生成20个句子,同时确保每个单词在每次运行中仅出现两次。首先,调整每个类别中单词的级别,以产生相同的噪声清晰度。根据克朗巴赫(Cronbach)的alpha(0.952),用于句子中单词识别的重测可靠性非常好。在类别级别调整之后,针对噪声中句子的语音接收阈值(SRT)(定义为产生50%正确整个句子识别的信噪比),通过根据噪声的正确性调整SNR来自适应地进行测量。响应。运行1和2的平均SRT分别为-7.9(SE = 0.41)和-8.1(SE = 0.34)dB。各个跑步的平均标准偏差为0.93 dB,尽管每个跑步和每个受试者都生成了随机句子,但配对t检验显示,跑步1和跑步2之间没有显着差异(p = 0.74)。结果表明,CMS提供了大的刺激集,通过使用封闭集范式可以重复可靠地测量讲普通话的听众在语音中的语音理解。

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