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Phonetic-acoustic and feature analyses by a neural networkto assess speech quality in patients treated for head and neck cancer

机译:神经网络评估头部颈部癌症患者语音质量的语音声学和特征分析

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Subjective speech evaluation is the gold standard to assess speech quality of head and neck cancer patients. This study investigates if conventional acoustic-phonetic and novel feature analysis contribute to the development of a multidimensional speech assessment protocol. Speech recordings of 51 patients 6 months post-treatment and of 18 control speakers were subjectively evaluated for intelligibility, nasal resonance and articulation. Self-evaluation of speech problems was assessed by the EORTC QLQ-H&N35 speech subscale. Feature analysis was performed to assess objectively nasality in vowels /a,i,u/. Results revealed that size of the vowel triangle, pressure release of /k/ and nasality in /i/ predict best intelligibility, articulation and nasal resonance and differentiated best between patients and controls. Within patients, /k/ and /x/ differentiated tumour site and tumour classification. Various objective variables were related to speech problems as reported by patients.
机译:主观演讲评估是评估头部和颈部癌症患者的语音质量的金标准。本研究调查了传统的声学语音和新颖特征分析有助于开发多维语音评估协议。治疗后6个月和18名控制扬声器的语音记录是可理解性,鼻共振和关节的主观评估。通过EORTC QLQ-H&N35语音子级评估了讲话问题的自我评估。进行特征分析,以评估元音/ a,i,u /的客观的鼻标。结果表明,元音三角形的大小,/ k / k / k / k / k和鼻腔的压力释放/预测最佳可理解性,关节和鼻腔共振,患者和对照之间的最佳状态。在患者内,/ K / AND / X /分化的肿瘤部位和肿瘤分类。各种客观变量与患者报道的言语问题有关。

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