The audiometer is a machine used by audiology centers and ENT specialists to measure hearing loss in patients. More often than not, it is a part of the audiometry test equipment used for administering various tests. Audiometers now available in the market come in both hardware and software form.
Audiometers built as a physical device emit audio tones at varying intensities. During the hearing loss evaluation test, the machine's output is fed to headphones and heard in each ear separately by the subject. A feedback button that can be pressed enables the subject to acknowledge each tone as they hear it.
The device can be a standalone machine or hooked up to a computer that controls the output and records all the feedback. These machines are made using different kinds of technologies, depending on the intended usage. Some are portable, others handhelds, and still others may be full-fledged systems that are meant to be used in one place. All of them are either bone-conduction or air-conduction audiometers.
The software-based device generates the same tone that is heard and responded to subjects in pretty much the same way. The only difference is that the tones in this case are prerecorded sounds stored in the computer. The audio output from the computer's sound card is sent to the headphones.
Audiometers built as a physical machine are more expensive, but provide the high degree of accuracy that hospitals, researchers and audiology centers need. Regular calibration is still essential to ensure the tone heard and the level shown in the display match each other. Proper calibration is also necessary to ensure a global standard for testing and measurement of hearing levels.
Audiometry software is much more affordable by comparison, and can be used by anyone even at home. Calibration is not so easy for the software, which means there will be some accuracy loss. It's still quite useful for regular self-testing, and will let the subject know if any further checkups and medical treatment are needed.
The purpose of this arrangement, regardless of whether it is software or a physical device, is to pinpoint the exact audio level at which the subject stops responding. This allows the physician to diagnose the problem, if any, and provide treatment. Apart from actual ear cleaning to clear obstructions, the subject may also need to take ear drops. If the problem is more serious, a hearing-aid or surgery (or both) may be needed.
Industrial audiometric testing also needs the same audiometers, and the process followed is about the same as described above. However, subjects are not required to go the clinic or audiology center. Rather, a mobile lab packed with all the equipment and technicians is dispatched to the industrial facility to evaluate how workers are being affected by the onsite noise.
The results are not only used to evaluate hearing loss, but also to decide whether the facility needs to implement noise muffling mechanisms. Such regular on-site checkups may also be required in group health plans in order to protect workers from any further loss in their hearing ability. An audiometer used in such applications must be extremely accurate, calibrated to within fractions of a decibel.
Audiometers built as a physical device emit audio tones at varying intensities. During the hearing loss evaluation test, the machine's output is fed to headphones and heard in each ear separately by the subject. A feedback button that can be pressed enables the subject to acknowledge each tone as they hear it.
The device can be a standalone machine or hooked up to a computer that controls the output and records all the feedback. These machines are made using different kinds of technologies, depending on the intended usage. Some are portable, others handhelds, and still others may be full-fledged systems that are meant to be used in one place. All of them are either bone-conduction or air-conduction audiometers.
The software-based device generates the same tone that is heard and responded to subjects in pretty much the same way. The only difference is that the tones in this case are prerecorded sounds stored in the computer. The audio output from the computer's sound card is sent to the headphones.
Audiometers built as a physical machine are more expensive, but provide the high degree of accuracy that hospitals, researchers and audiology centers need. Regular calibration is still essential to ensure the tone heard and the level shown in the display match each other. Proper calibration is also necessary to ensure a global standard for testing and measurement of hearing levels.
Audiometry software is much more affordable by comparison, and can be used by anyone even at home. Calibration is not so easy for the software, which means there will be some accuracy loss. It's still quite useful for regular self-testing, and will let the subject know if any further checkups and medical treatment are needed.
The purpose of this arrangement, regardless of whether it is software or a physical device, is to pinpoint the exact audio level at which the subject stops responding. This allows the physician to diagnose the problem, if any, and provide treatment. Apart from actual ear cleaning to clear obstructions, the subject may also need to take ear drops. If the problem is more serious, a hearing-aid or surgery (or both) may be needed.
Industrial audiometric testing also needs the same audiometers, and the process followed is about the same as described above. However, subjects are not required to go the clinic or audiology center. Rather, a mobile lab packed with all the equipment and technicians is dispatched to the industrial facility to evaluate how workers are being affected by the onsite noise.
The results are not only used to evaluate hearing loss, but also to decide whether the facility needs to implement noise muffling mechanisms. Such regular on-site checkups may also be required in group health plans in order to protect workers from any further loss in their hearing ability. An audiometer used in such applications must be extremely accurate, calibrated to within fractions of a decibel.
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