Abstract:
Disclosed are a probe apparatus, a medical instrument having the same, and a method of controlling the probe apparatus, in which a medical probe apparatus includes a main body; and a head which is detachably provided in the main body, and includes a transducer array configured to output an ultrasound for diagnosis of an object, the main body including: a transceiver configured to transmit and receive a signal to and from the transducer array through a plurality of channels; and at least one processor configured to control the transceiver to transmit a predetermined test signal to the transducer array of the head mounted to the main body, determine a probe type corresponding to the transducer array of the mounted head based on a feedback signal received through the transceiver in response to the test signal, and make the probe apparatus operate corresponding to the determined probe type. Thus, a transducer having various shapes is selectively mounted to an ultrasound probe, and an operation automatically optimized to the mounted probe type is possible without additional parts or costs.
Abstract:
Disclosed is an electronic apparatus for measuring a biometric signal, the electronic apparatus including: a measurer comprising measuring circuitry configured to measure a biometric signal of a person to be examined, and to generate a measured signal having a waveform corresponding to a characteristic of the biometric signal; a signal processor configured to process the generated measured signal; and a controller configured to control the signal processor to generate a compressed signal by compressing the measured signal and at least one piece of characteristic information included in a waveform of the measured signal, when the measured signal is compressed. Thus, a measured biometric signal is efficiently compressed while reducing a loss of main characteristic information.
Abstract:
A stethoscope head, according to an embodiment of the present invention, may include: an auscultatory sound receiver; a support member configured to support the auscultatory sound receiver; and a moving member comprising a light source configured to emit ultraviolet rays for sterilization to the auscultatory sound receiver, and capable of moving a position thereof with respect to the auscultatory sound receiver and the support member in a first direction orienting to an object and a second direction opposite to the first direction.
Abstract:
A sensing device capable of detecting hardness includes a sensor array including a plurality of sensors, each of the plurality of sensors including a transmitter configured to emit a detection wave and a receiver configured to receive a reflected detection wave reflected by an object, the plurality of sensors arranged in a matrix form; and a controller configured to obtain image information and hardness information of each portion of the object from the reflected waves received by the plurality of sensors, and to form three-dimensional print data by mapping the image information and the hardness information.
Abstract:
A probe device is disclosed. The probe device comprises: a matrix array analog front end (AFE) comprising a plurality of cells and outputting an electrical signal corresponding to each of the plurality of cells; a transducer unit for transducing, into an ultrasound signal, the electrical signal outputted from each of the plurality of cells; and a processor for grouping the plurality of cells into at least one group corresponding to at least one diagnosis mode, and performing control such that cells corresponding to each group outputs, through the transducer unit, an ultrasound signal having a characteristic differing according to a corresponding diagnosis mode. Therefore, various functions can be supported while using one probe device.
Abstract:
An ultrasound diagnosis apparatus and method enabling general users to easily acquire ultrasound images even when the users are unskilled at using ultrasound diagnosis apparatuses, and a non-transitory computer-readable storage medium having the ultrasound diagnosis method recorded thereon are provided. The ultrasound diagnosis apparatus includes a probe configured to acquire ultrasound data of an object; an image generation unit configured to generate an ultrasound image of the object by using the ultrasound data; a probe location acquisition unit configured to acquire a location of the probe on the object; a display unit configured to display the location of the probe and a reference location on an image representing the object; and a control unit configured to determine whether the location of the probe corresponds to the reference location.
Abstract:
A conductive atomic force microscope including a plurality of probe structures each including a probe and a cantilever connected thereto, a power supplier applying a bias voltage, a current detector detecting a first current flowing between a sample object and each of the probes and a second current flowing between a measurement object and each of the probes, and calculating representative currents for the sample and measurement objects based on the first and second currents, respectively, and a controller calculating a ratio between representative currents of the sample object measured by each of the probe structures, calculating a scaling factor for scaling the representative current with respect to the measurement object measured by each of the probes, and determine a reproducible current measurement value based on the second measurement current and the scaling factor may be provided.
Abstract:
An ultrasonic probe includes a stimulation unit which stimulates an object so that particular waves are induced, a conversion unit which receives at least one of the particular waves and ultrasound including information about the particular waves, and a circuit board including a first circuit unit that drives the stimulation unit, and a second circuit unit that receives electrical signals corresponding to the ultrasound from the conversion unit.