Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “ACOUSTICS”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,495 records · Page 83Linked to original sources

Prediction of conductive hearing loss based on acoustic ear-canal response using a multivariate clinical decision theory.

This study evaluated the accuracy of acoustic response tests in predicting conductive hearing loss in 161 ears of subjects from the age of 2 to 10 yr, using as a "gold standard" the air-bone gap to classify ears as normal or impaired. The acoustic tests included tympanometric peak-compensated static admittance magnitude (SA) and tympanometric gradient at 226 Hz, and admittance-reflectance (YR) measurements from 0.5 to 8 kHz. The performance of individual, frequency-specific, YR test variables as predictors was assessed. By applying logistic regression (LR) and discriminant analysis (DA) techniques to the multivariate YR response, two univariate functions were calculated as the linear combinations of YR variables across frequency that best separated normal and impaired ears. The tympanometric and YR tests were also combined in a multivariate manner to test whether predictive efficacy improved when 226-Hz tympanometry was added to the predictor set. Conductive hearing loss was predicted based on air-bone gap thresholds at 0.5 and 2 kHz, and on a maximum air-bone gap at any octave frequency from 0.5 to 4 kHz. Each air-bone gap threshold ranged from 5 to 30 dB in 5-dB steps. Areas under the relative operating characteristic curve for DA and LR were larger than for reflectance at 2 kHz, SA and Gr. For constant hit rates of 80% and 90%, both DA and LR scores had lower false-alarm rates than tympanometric tests-LR achieved a false-alarm rate of 6% for a sensitivity of 90%. In general, LR outperformed DA as the multivariate technique of choice. In predicting an impairment at 0.5 kHz, the reflectance scores at 0.5 kHz were less accurate predictors than reflectance at 2 and 4 kHz. This supports the hypothesis that the 2-4-kHz range is a particularly sensitive indicator of middle-ear status, in agreement with the spectral composition of the output predictor from the multivariate analyses. When tympanometric and YR tests were combined, the resulting predictor performed slightly better or the same as the predictor calculated from the use of the YR test alone. The main conclusion is that these multivariate acoustic tests of the middle ear, which are analyzed using a clinical decision theory, are effective predictors of conductive hearing loss.

Acoustic Impedance Tests↗

Acoustic reflex frequency selectivity in single stapedius motoneurons of the cat.

1. The sound frequency selectivities of single stapedius motoneurons were investigated in ketamine anesthetized and in decerebrate cats by recording from axons in the small nerve fascicles entering the stapedius muscle. 2. Stapedius motoneuron tuning curves (TCs) were very broad, similar to the tuning of the overall acoustic reflexes as determined by electromyographic recordings. The lowest thresholds were usually for sound frequencies between 1 and 2 kHz, although many TCs also had a second sensitive region in the 6- to 12-kHz range. The broad tuning of stapedius motoneurons implies that inputs derived from different cochlear frequency regions (which are narrowly tuned) must converge at a point central to the stapedius motoneuron outputs, possibly at the motoneuron somata. 3. There were only small differences in tuning among the four previously described groups of stapedius motoneurons categorized by sensitivity to ipsilateral and contralateral sound. The gradation in high-frequency versus low-frequency sensitivity across motoneurons suggests there are not distinct subgroups of stapedius motoneurons, based on their TCs. 4. The thresholds and shapes of stapedius motoneuron TCs support the hypothesis that the stapedius acoustic reflex is triggered by summed activity of low-spontaneous-rate auditory nerve fibers with both low and high characteristic frequencies (CFs). Excitation of high-CF auditory nerve fibers by sound in their TC "tails" is probably an important factor in eliciting the reflex. 5. In general, the most sensitive frequency for stapedius motoneurons is higher than the frequency at which stapedius contractions produce the greatest attenuation of middle ear transmission. We argue that this is true because the main function of the stapedius acoustic reflex is to reduce the masking of responses to high-frequency sounds produced by low-frequency sounds.

Acoustic Stimulation↗

Acoustic immittance findings in acute otitis media.

This study sought to evaluate the sensitivity of tympanometry and acoustic reflex measurement for identifying acute otitis media. Acute otitis media was diagnosed via case history and biphasic pneumo-otoscopy in 103 children (161 ears) ranging in age from four months to 17 years (mean age, 5.6 years) who had subjective complaints of only one to three days. Of the 161 ears with diagnosed acute otitis media, the tympanogram was categorized as flat in 102 ears (63%), shallow/rounded in 18 ears (11%) and negative in 17 ears (11%). Of particular interest was that 15 ears (9%) were classified tympanometrically as normal, and 19 ears exhibited a high positive pressure peak greater than + 100 mm H2O. Based on these findings, tympanometric sensitivity for identifying acute otitis media was only 74.5% which is considerably less than that reported for persistant middle ear effusion. When test sensitivity was recalculated after parceling out the 42 ears with segmental disease, however, accuracy for identification increased to 89%. Results for acoustic reflex measurement were equally discouraging with test sensitivity being only 71%. These results suggest that the use of acoustic immittance measures may be of limited value for identifying acute otitis media.

Acoustic Impedance Tests↗

Facial nerve dissection by use of acoustic (loudspeaker) facial EMG monitoring.

The development of the surgical microscope in 1953, and the subsequent development of microsurgical instrumentation, signaled the beginning of modern-day acoustic neuroma surgery. Preservation of facial nerve function and total tumor removal is the goal of all acoustic neuroma surgery. The refinement of the translabyrinthine removal of acoustic neuromas by Dr. William House significantly improved preservation of facial nerve function. This is made possible by the anatomic identification of the facial nerve at the lateral end of the internal auditory canal. When the surgery is accomplished from a suboccipital or retrosigmoid approach, the facial nerve may be identified at the brain stem or within the internal auditory canal. Identifying the facial nerve from the posterior approach is not as anatomically precise as from the lateral approach through the labyrinth. The use of a facial nerve stimulator can greatly facilitate identification of the facial nerve in these procedures.

Acoustics↗

Reflex modification audiometry: assessment of acoustic sensory processing in the term neonate.

Behavioral and physiological work in animals and adult humans have established the sensitivity of various procedures and allowed delineation of the neuroanatomical pathways involved in sensory processing. Herein we used the glabellar reflex and reflex modification procedures to assess acoustic sensory processing capabilities in the term newborn infant. The eyeblink-eliciting device consisted of a miniature solenoid which could deliver a controlled tap. A photoreflective densitometer attached to a TDH-39 earphone assessed the eyeblinks. A total of 98 term infants was studied to determine how a response to a reflex-eliciting event (tap) was modified (either augmented or inhibited) by a mild exteroceptive stimulus (tone) which was presented at an appropriate lead interval. Ninety adult subjects were given identical testing procedures and their data were compared to that of the infants. The results of this study showed that newborn infants reliably exhibited an eyeblink response after a tap to the glabella. With fixed intensity tones, frequencies from 1 to 4 kHz produced equivalent amounts of reflex augmentation in infants and adult subjects. Blink amplitude increased as a function of increased tap and tone intensity in both infants and adults. State change was shown to affect the amplitude of the reflexive eyeblink, but not the augmentation effect. However, neonates failed to show inhibition to either acoustic lactile stimuli at an interstimulus interval that produced significant inhibition in the adult. These data indicate that reflex modification procedures provide an objective assessment of acoustic sensory processing in the term neonate.(ABSTRACT TRUNCATED AT 250 WORDS)

Acoustic Stimulation↗

Mechanisms of hearing loss in acoustic neuroma: an otoacoustic emission study.

Evoked otoacoustic emissions (EOAE) are active mechanical responses from the cochlea which provide information about the integrity of the preneural cochlear receptor mechanisms. It may be hypothesised, therefore, that if a hearing impairment is neural in origin, normal EOAEs may be obtained from the cochlea, which, although dissociated, is functioning normally. This study examined the status of the cochlea with EOAE in patients with cochlear (Meniere's disease) and neural (surgically proven acoustic neuroma) disease. In patients with presumed cochlear lesions, no emissions were present with mean hearing worse than 40 dB across a frequency range of 0.5 to 4 kHz. Similarly, an EOAE was not present in any of the 26 acoustic neuroma patients studied when the average (0.5 to 4 kHz) hearing was greater than 40 dB. We conclude that dissociation of the cochlea in patients with acoustic neuroma appears to be rare and, in fact, cochlear involvement occurs in most cases. Possible mechanisms responsible for the effect on the cochlea in this group include degenerative changes due to chronic partial obstruction of the blood supply by the tumour, biochemical alterations in the inner ear fluids, loss of efferent control of active mechanical tuning, and hair cell degeneration secondary to neuronal loss in the eighth nerve.

Acoustic Stimulation↗

The acoustic reflex pattern studied by the averaging technique.

The acoustic reflex threshold and its pattern in response to stimuli of different intensities, were investigated by means of the signal-averaging technique in 20 normal, 20 sensorineural-impaired and 10 successfully stapedectomized ears. Trains of tone bursts between 110 and 0 dB HL were used. The frequencies tested were 500, 1 000, 2 000 and 4 000 Hz. In all normal subjects, the pattern of the acoustic reflex for stimuli between 110 and 100 dB HL was biphasic with an initial positive plateau followed by a longer negative one. For stimuli below 80 dB HL, the pattern of the reflex was monophasic with a single positive peak. In the sensorineural-impaired ears, the same double pattern of the waveform was obtained. In the stapedectomized ears, no compliance changes were observed for any sound stimuli. By the averaging technique, the difference between the acoustic reflex threshold and the auditory threshold was found to be between 7.5 and 32.5 dB, in normal and sensorineural-impaired ears.

Acoustic Impedance Tests↗

Effect of signal bandwidth upon threshold of the acoustic reflex and upon loudness.

The effect of activating-signal bandwidth upon the threshold of the acoustic reflex (TAR) was measured. Subsequently, loudness measurements were made for the same signals at the same intensity levels that were required to elicit an acoustic-reflex response. When loudness and TAR are compared at comparable levels, similar trends emerged. Results from this experiment provide evidence for both qualitative and quantitative similarities between acoustic reflex and the perception of loudness. This, in turn, suggest that signals at TAR may be equally loud for listeners with normal hearing.

Acoustic Stimulation↗

PB rollover and the acoustic reflex.

We present the results of a retrospective study of the speech understanding of 52 subjects with surgically confirmed acoustic neurinoma. Subjects were divided into three groups, depending on whether acoustic reflexes were all present, all absent, or present with abnormalities in the pathological ear. Results indicated that the three groups were homogeneous with respect to pure-tone sensitivity and PBmax. Subjects who lacked all acoustic reflexes, however, experienced significantly greater rollover of speech intelligibility at high intensities than did subjects with all or some reflexes intact. A neural-mechanical interaction is suggested as a basis for the rollover phenomenon in subjects with retrocochlear eight-nerve disorder.

Humans↗

Phasor admittance measurements of the middle ear. II. Normal phasor tympanograms and acoustic reflexes.

Phasor admittance trajectories obtained during tympanometry and acoustic reflex measurements at 220 and 660 Hz were obtained from 67 normal ears. The distributions of natural frequency and resistance derived from these phasor trajectories provide normative data for the technique. Median values of 817 and 714 Hz for natural frequency were obtained respectively for tympanometry and acoustic reflexes. Median resistances were 139 and 555 ohms. The distributions of these parameters from tympanometry and acoustic reflexes were significantly different for both resistance and natural frequency, supporting the assumption that the two procedures measure different aspects of middle-ear vibration, which we have attributed to ossicular chain vibration and to uncoupled vibration of the tympanic membrane. Correlation data are also consistent with this assumption.

Acoustic Impedance Tests↗

Evaluation of acoustic reflectometry in detecting otitis media in children.

Accurate detection of middle-ear effusion in children is not only useful but also necessary for diagnosis, management and follow-up of otitis media. A relatively new device, the Acoustic Otoscope (model 101, ENT Medical Devices) has been introduced for detecting middle-ear fluid in children. We tested 158 ears and the diagnosis was confirmed by acoustic admittance, acoustic reflex and pneumatic otoscopy. We propose 4.5 as a better breakpoint (the number on the vertical scale of the instrument which is the lower limit indicating middle-ear effusion) than 4.0 which is proposed by the manufacturer. In our results the 4.5 breakpoint maximizes both positive and negative predictive values (83 and 82% respectively) with satisfactory sensitivity and specificity (86 and 79% respectively) in detection of otitis media. Our clinical experience with this instrument, during the past 2 years, has led us to conclude that it is simple, non-invasive and objective. Unlike tympanometry, it requires no hermetic seal and is effective even if the child is crying. However, it is not sensitive enough when there are bubbles or negative pressure in the middle ear. When the user is aware of the flexibility of the instrument's breakpoints (in our opinion this is an advantage of the device) for different uses and different populations, the reflectometer often reduces the need for tympanometry and confirms the otoscopic examination.

Acoustic Impedance Tests↗

The use of electro-acoustic impedance measurements in detecting early clinical otosclerosis.

The first evidence that sodium fluoride (NaFl) can stop the otosclerotic process was recently presented. This development has placed new emphasis on the early detection of clinical otosclerosis. Electro-acoustic impedance measurements often detect minute changes in absolute impedance and compliance of the ossicular chain. The most valuable diagnostic information, however, is a negative on-off (biphasic) type of acoustic reflex. These results are often evident prior to the detection of positive clinical signs of otosclerosis. The negative on-off acoustic reflex is reviewed in this paper along with case discussions involving medical/surgical management of early otosclerosis.

Acoustic Impedance Tests↗

The application of acoustic impedance measurements to pediatric clinical practice.

This article provides background information on acoustic impedance testing and illustrates utilization of test results in pediatric clinical practice. Acoustic impedance measurement devices are presently being used successfully by hearing screening programs and by otorhinolaryngologists in clinical and hospital settings. As a diagnostic tool, the acoustic impedance bridge can have particular applicability in dealing withe young children and other difficult-to-test populations. Impedance measurements can provide physicians with objective information about the condition of the middle ear, oftentimes more accurately than either otoscopic examination or standard audiometry. The technique described can assist physicians in diagnosing middle-ear diseases and in monitoring the effects of otological treatment.

Acoustic Stimulation↗

Recall in acoustically similar and dissimilar letters by normal and deaf subjects.

Stimulus matrices with 4 X 3 letters from an acoustically similar and dissimilar alphabet were presented tachystoscopically for 5 secs to 41 Ss divided into three groups, i.e. normal and deaf apprentices and deaf children. Each S was administered 42 stimulus matrices. While the difference in the number of errors between the acoustically similar and dissimilar alphabets proved significant in the hearing Ss, it was nonsignificant in the deaf, and in contrast to these two groups, in the children the number of errors with the acoustically similar alphabet was lower than with the dissimilar one. The error matrices indicate a systematic course of errors and their different pattern for the hearing and the deaf Ss. A visual and an articulating code which is reinforced by the length of oral training, may be presumed particularly in the deaf.

Acoustic Stimulation↗

[Contribution and Cost-Effectiveness of ABR and MRI in Acoustic Neuroma screening. Retrospective Study of 151 Cases].

The aim of this study was to retrospectively assess during two periods (1991-1995 and 1996-2000) if MRI spreading had changed: (1) private ENT physicians screening habits; (2) the average tumor size at the time of diagnosis and the diagnostic delay of acoustic neuroma; and (3) the cost of acoustic neuroma diagnosis. In addition, the sensibility of each diagnostic test was calculated on 151 tumors. Our results show no significant change neither in the screening strategy (except a mild decrease in CT-scan utilization) nor in the tumor size, diagnostic delay or diagnostic cost between the two periods. Even if MRI is the gold standard for acoustic neuroma diagnosis, our 86%-sensibility of ABR, increased to 99% if combined with stapedial reflex and caloric test may still incline to use ABR in selected cases.

Adolescent↗

Acoustic pattern recognition and short-term memory in normal adults and young children.

Our experiments were aimed at determining if the delayed matching-to-sample paradigm (DMS) could be used to study short-term acoustic recognition memory in young children and whether or not differences exist between children and adults. Our results indicate that the DMS paradigm can produce reliable data in young children. The decay of acoustic information over time was equivalent in both children and adults, beginning at about 1 s and lasting for longer than 10 s. With 7-element acoustic frequency-pattern sequences, a performance difference between children and adults was observed which appears explicable on the basis of longer memory spans in the adult subjects. When we equated for span length, this effect was no longer apparent.

Acoustic Stimulation↗

Recovery characteristics of the acoustic reflex.

Acoustic-reflex recovery time was measured as a function of activator intensity level and duration for broad-band noise and a 500-Hz tone in 10 normal-hearing subjects. The activating signals were presented at 5 and 10 dB above individual acoustic reflex thresholds for durations ranging from 0.25 to 100 sec. Reflex-recovery times were similar across both activators and across activator intensity levels. Recovery time was relatively constant for activators of 2 sec or less and increased for longer activator durations. Portions of the results from temporary threshold shift experiments are explained on the basis of acoustic reflex recovery characteristics.

Acoustic Stimulation↗

Properties of acoustic reflex adaptation to pure tones and one-third octave bands of noise.

Acoustic reflex thresholds were obtained by a computerized threshold search procedure for two pure tones (500 and 2000 Hz) and two one-third octave bands of noise (436--553 and 1752--2253 Hz). The stimuli were presented at 5- and 10-dB sensation level (re: reflex threshold) with an interstimulus interval of at least 80 sec. Acoustic reflex adaptation was measured at predetermined stimulus durations of 15, 30, 45, and 60 sec. For the pure tone stimuli, reflex adaptation was found to be frequency dependent, with the 2000-Hz tone producing significantly greater adaptation than the 500-Hz pure tone. The main effects of sensation level and duration were not statistically significant for the pure tone stimuli. Results for the noise stimuli revealed no significant differences in reflex adaptation for the effects of frequency, sensation level, and duration. The overall intersubject variability of acoustic reflex adaptation was greater for the noise stimuli.

Acoustic Impedance Tests↗