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Defined as hearing loss that is permanent, bilateral or unilateral, sensor or conductive, and averaging loss of 30 decibels or more in the frequency range important for speech recognition.
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We have demonstrated that with this approach a highly sensitive, portable, unilateral NMR sensor can be built.
In this work, we present a design procedure whereby the size, shape, field strength, homogeneity, and gradients in the sensitive spot of a unilateral NMR sensor can be controlled.
Nowadays, the unilateral NMR sensors available can be categorized into two classes.
An actual breakthrough for the low-field NMR application to food science has certainly been the development of unilateral NMR sensors.
Research applications described above illustrate that unilateral NMR sensors present an attractive option for non-invasive assessment of compositional and microstructure of food materials.
In these sensors, the unilateral magnet array consisted of three block magnets all magnetized along the same directions, see Fig. 1b.
Because of inertial sensor drifting, the unilateral range of motion (from one side to neutral posture) derived from the Rift is more erroneous.
In view of the potential for distortion and effacement of the ventricular system owing to intracerebral unilateral or bilateral lesions, insertion of sensors into the lateral ventricle is often extremely difficult.
Figure 4c studies the lateral movement (experiment 2) of the same 15 μm-long NW, while the PZT provides slow (at ~50 nm/s) unilateral displacement ΔL, where the QTF is now used as a force sensor.
In the current study, transient and significant gradients in pressure of the order of 10 20 mmHg were reported between two sensors when positioned bilaterally in a small number of patients with unilateral mass lesions.
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