The pitch elicited by unmodulated and amplitude modulated electrical pulse trains was examined with six adult cochlear implantees. In addition, for three of those subjects who had some hearing in their contralateral ear, the pitch of unmodulated electrical pulse trains was compared to that of complex harmonic acoustic tones. In the first experiment, pulse rate discrimination and the effects of place and level differences on pitch were examined for unmodulated pulse trains. General results were consistent with previous studies showing that variations in pulse rate, while holding loudness fixed, elicit changes in pitch at low rates, but become progressively harder to discriminate as rates approach approximately 300 pulses-per-second. Variations in place or level of stimulation generally produced changes in pitch consistent with tonotopic place and spread of excitation. In the second experiment, pitch and loudness of unmodulated pulse trains were compared with those of amplitude modulated stimuli as a function of modulation depth, rate, and shape, and presentation level. The pitch elicited by an amplitude modulated pulse train was generally higher than that of an unmodulated pulse train with a pulse rate equal to the modulation rate, and generally decreased toward that of the unmodulated pulse train as modulation depth or rate increased, or as presentation level decreased. Sharper/narrower modulation produced lower pitch. In the final experiment, the pitch heights of acoustic complex harmonic tones and unmodulated pulse trains were compared. When electrical pulse rate was equal to the fundamental frequency of the acoustic tone, similar pitch heights were elicited. The results from these experiments indicate that F0 rate pitch derived from the temporal envelope in existing clinical cochlear implant strategies may often be higher than that of acoustic harmonic tones at the same F0 in normal hearing, and that pitch growth with increasing F0 may be shallower. The relationship between F0 and rate pitch is expected to be more similar to acoustic stimulation for low F0 rates when using new pitch coding strategies that code F0 information via deep (narrow) amplitude modulation of the stimulus envelope. Although that similarity reduces as F0 approaches the upper limit of rate-pitch discrimination, that limit is reached sooner for the shallow (or broad) modulators used in existing clinical strategies.
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http://dx.doi.org/10.1016/j.heares.2013.05.004 | DOI Listing |
Am J Sports Med
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Department of Orthopedic Surgery, Kangnam Sacred Heart Hospital, Hallym University College of Medicine, Seoul, Republic of Korea.
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Department of Cardiac Surgery, Southwest Hospital, Third Military Medical University (Army Medical University), Chongqing, 400038, China.
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January 2025
Minnesota Regional Poison Center, Department of Pharmacy, Hennepin Healthcare, Minneapolis, MN, USA; Department of Family Medicine and Biobehavioral Health, University of Minnesota Medical School, Duluth Campus, Duluth, MN, USA. Electronic address:
Acute digoxin poisoning is increasingly uncommon in emergency medicine. Furthermore, controversy exists regarding indications for antidotal digoxin immune fab in acute poisoning. In healthy adults, the fab prescribing information recommends administration based on "known consumption of fatal doses of digoxin: ≥10mg," while many emergency medicine textbooks suggest fab administration be driven by clinical features or potassium concentration.
View Article and Find Full Text PDFPsychoneuroendocrinology
January 2025
School of Sport, Exercise and Health Sciences, Loughborough University, United Kingdom.
Dysregulation of hypothalamic-pituitary-adrenal axis (HPA axis) and of the autonomic nervous system may link stress throughout the life course with poorer health. This study aims to investigate whether multiple adverse childhood experiences have a long-term impact on markers of these systems - cortisol secretion and heart rate variability - in adulthood. Data were from the Whitehall II cohort study.
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January 2025
Department of Physical Education, Tongji University, Shanghai, 200000, China.
Background: While the effects of sleep deprivation on cognitive function are well-documented, its impact on high-intensity endurance performance and underlying neural mechanisms remains underexplored, especially in the context of search and rescue operations where both physical and mental performance are essential. This study examines the neurophysiological basis of sleep deprivation on high-intensity endurance using electroencephalography (EEG). In this crossover study, twenty firefighters were subjected to both sleep deprivation (SD) and normal sleep conditions, with each participant performing endurance treadmill exercise the following morning after each condition.
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