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Voiced aspirates with mixed voicing in Yemba, a Grassfields Bantu language of Cameroon

Published online by Cambridge University Press:  07 November 2023

Matthew Faytak*
Affiliation:
University at Buffalo
Jeremy Steffman
Affiliation:
The University of Edinburgh
*
*Corresponding author. Email: faytak@buffalo.edu
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Abstract

Using electroglottography and acoustic measures, we characterize the strength and quality of voicing in voiced aspirated and unaspirated consonants (stops, fricatives, and approximants) in Yemba (Grassfields Bantu, Cameroon). We show that the Yemba voiced aspirates exhibit mixed voicing: modal voicing during the consonant constriction, but voiceless aspiration after release. Breathy or whispery phonation extends slightly into consonant constrictions preceding, and across the entire duration of vowels following, aspiration; this non-modal phonation extends further into prenasalized consonants. Mixed voicing has typically been excluded from the possible range of laryngeal–supralaryngeal coordinative patterns in consonants, and is thought to be unattested in the world’s languages; most previous work on this topic assumes that non-modal phonation after voiced consonant release is breathy-voiced. However, we argue that Yemba voiced aspirates differ from more commonly studied breathy-release aspirates only in the settings of some gestural parameters: the late glottal spread gesture is larger in magnitude and more resistant to coarticulation, yielding consistently devoiced aspiration which may even be more perceptually recoverable compared to breathiness.

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Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BYCreative Common License - NCCreative Common License - ND
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
© The Author(s), 2023. Published by Cambridge University Press on behalf of The International Phonetic Association
Figure 0

Figure 1. Approximate Yemba-speaking area within Cameroon, adapted from Nanfah (2003).

Figure 1

Table 1 Consonantal inventory of Yemba, adapted from Bird (1999) with post-nasal allophones included. Voiced aspirated-voiced unaspirated pairs examined in the present study are emboldened.

Figure 2

Figure 2. Audio (top) and EGG (bottom) signals from Bird (2003) for six items varying in consonant manner and aspiration. Note sustained lack of vocal fold vibration in the voiced aspirates on the right. The audio/EGG recordings pictured can be found in the Supplementary Materials.

Figure 3

Table 2 Derivation of Yemba voiced stops (aspirated and unaspirated) from approximants and /p/ by addition of a placeless nasal prefix /N/, which assimilates to the place of the following consonant. Morphemes glossed ‘nc#’ are overt noun class concord marking.

Figure 4

Table 3 Comparative data demonstrating the development of aspiration before Proto-Eastern Grassfields (PEG) high vowels in open syllables (A) and its blocking in closed syllables (B). In PEG reconstructions, <́> and <̀> indicate final floating high and low tones, respectively. Affixes are separated from stems with hyphens.

Figure 5

Figure 3. Sample segmentations of aspirated and unaspirated stops (top), approximants (middle), and fricatives (bottom). Clo denotes consonantal constriction; asp denotes aspiration. The audio recordings pictured can be found in the Supplementary Materials.

Figure 6

Figure 4. Range-normalized log SoE values for segment means in constrictions (left), aspiration (center), and vowels (right).

Figure 7

Figure 5. Strength of excitation (SoE) during constriction (left), aspiration (middle), and vowel intervals (right), split by aspiration. Fits pooled by manner shown in top row; bottom four rows show fits split by manner.

Figure 8

Figure 6. Segment means for constriction (C, left) and vowel (V, right) intervals: CQ (top), CPP (middle), and H1*–A3* (bottom). Consonant data is split by manner, while vowel measures are pooled for preceding consonant manner. Large points indicate grand means.

Figure 9

Figure 7. Modeled CQ timecourse during constriction (left) and vowel (right) intervals. The x axis shows normalized time. Fits pooled by manner are shown in the top row; the bottom four rows show fits split by manner.

Figure 10

Figure 8. Modeled CPP timecourse during constriction (left) and vowel (right) intervals. The x axis shows normalized time. Fits pooled by manner are shown in the top row; the bottom four rows show fits split by manner.

Figure 11

Figure 9. Modeled H1*–A3* time course during constriction (left) and vowel (right) intervals. The x axis shows normalized time. Fits pooled by manner are shown in the top row; the bottom four rows show fits split by manner.

Figure 12

Table 4 Mean (standard deviation in parentheses) for constriction duration (ms), split by manner and aspiration.

Figure 13

Figure 10. Gestural windows and simplified gestural scores for three types of voiced aspirates exemplified by Gujarati (a), Eastern Armenian (b), and Yemba (c), after Keating (1990). Solid lines indicate central tendency of the spread-glottis gesture; dashed lines indicate extent of variability.

Figure 14

Table A1 List of stimuli used for in-lab elicitation (Southern Yemba speakers) with the ad-hoc orthographic representations agreed upon by participants and used as prompts. Nouns and their obligatory noun class prefixes are separated by hyphens

Figure 15

Table B1 Summary for the SoE model for mean SoE across constriction, aspiration, and vowel: Reference level is the vowel interval

Figure 16

Table B2. Summary for the CQ, CPP and H1*–A3*, mixed effects models, for mean measures of consonant intervals

Figure 17

Table B3 Summary for mixed-effects models, for mean measures of vowel intervals

Supplementary material: File

Faytak and Steffman supplementary material

Faytak and Steffman supplementary material

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