Abstract:
A blood pressure measurement device includes an annular bracelet that comes into contact with the user's wrist; a display that is disposed on the outer surface of the bracelet and includes a display surface; a camera that is disposed on the outer surface of the bracelet, has an optical axis tilted from the direction of a normal to the display surface, and captures images of the user; a pulse wave sensor that is disposed on an inner surface of the bracelet and detects a pulse wave at the user's wrist; and a processing circuit that estimates the user's blood pressure. The processing circuit calculates a first pulse wave timing from a temporal change in luminance in the cheek region in the images, determines a second pulse wave timing from the detected pulse wave, and estimates the blood pressure from a time difference between the first and second pulse wave timings.
Abstract:
An alert information presenting apparatus includes an undressing condition determiner that determines, by using a movement speed of the user, a second time period indicating a time period before undressing, and a third time period indicating a time period after undressing, a heartbeat acquirer that acquires a heartbeat timing in the second time period and a heartbeat timing in the third time period, a pulse wave acquirer that acquires a pulse wave timing in the second time period and a pulse wave timing in the third time period, a blood pressure calculator that calculates a pre-undressing blood pressure by using a pre-undressing heartbeat timing and a pre-undressing pulse wave timing, and calculates a post-undressing blood pressure by using a post-undressing heartbeat timing and a post-undressing pulse wave timing, and an information presenter that presents the user with alert information based on a difference between the pre-undressing and post-undressing blood pressures.
Abstract:
A muscle fatigue output device is provided with a myoelectric measurement unit that acquires myoelectricity of a user, and a main control unit that determines fatigue of a muscle of the user on the basis of the myoelectricity. The main control unit (a) uses the myoelectricity to acquire a value for a frequency characteristic of the myoelectricity, (b) uses the myoelectricity to acquire a value for an amplitude characteristic of the myoelectricity, (c) acquires a ratio between the value for the frequency characteristic and the value for the amplitude characteristic as an index for the fatigue of the muscle of the user, and (d) outputs information regarding the fatigue of the muscle of the user, on the basis of the index for the fatigue of the muscle of the user.
Abstract:
A non-contact blood-pressure measuring device includes: an image acquiring section that acquires a skin image obtained by capturing skin of a user; a pulse-wave timing calculating section that calculates, as a pulse-wave timing, time information indicative of a time at which time-varying luminance in the skin image reaches a peak; a millimeter-wave acquiring section that acquires a signal of a radio wave reflected by the user; a heartbeat timing calculating section that calculates, as a heartbeat timing, time information indicative of a time at which a time-varying distance to the user obtained on the basis of the signal of the radio wave acquired by the millimeter-wave acquiring section reaches a peak; and a blood-pressure determining section that determines blood pressure of the user on the basis of a time difference between the pulse-wave timing and the heartbeat timing.
Abstract:
A training apparatus includes a display that displays a video image including an image of a moving object, a rotation speed acquirer that acquires a rotation speed of a pedal driven by a user, and a control circuit that changes a moving speed of the object in the video image. The control circuit controls the moving speed as follows. The moving speed of the object in the video image is increased at an acceleration α1 (>0). If an increase in the pedal rotation speed occurs after the moving speed of the object is increased, the moving speed of the object is increased at an acceleration α2 (
Abstract:
Provided is a myoelectric potential measurement device that recognizes a user arm movement, including a bracelet having a plurality of electrodes, at least one memory, and a processor. The processor: uses the bracelet having the plurality of electrodes, which come into contact with the arm of the user, to measure a myoelectric potential at each of the plurality of electrodes; detects a measurement state when the each myoelectric potential is being measured; specifies at least one preferred electrode, which has a portion of the arm of the user positioned vertically thereunder, from among the plurality of electrodes in accordance with the measurement state, and weights the each myoelectric potential measured by the specified at least one preferred electrode, with respect to the each myoelectric potential measured by electrodes other than the preferred electrode from among the plurality of electrodes; and uses the weighted myoelectric potential to recognize the movement of the user, and outputs a recognition result.
Abstract:
A pulse wave measuring apparatus includes a light emitter that illuminates with light having an amount an area containing a part of skin of a user staying in a vehicle, an imager that captures an image of the area, a controller that obtains a driving route from a departure point of the vehicle to a destination point of the vehicle, obtains an estimated time at which the vehicle passes through a location along the driving route, predicts an incident amount of sun light that enters the vehicle at the location at the estimated time, and calculates the amount under a condition that a sum of the predicted incident amount and the amount is a constant value, and a pulse wave calculator that calculates a pulse wave of the user using the image, and outputs pulse wave information of the user.
Abstract:
A pulse wave measuring apparatus includes a visible light receiver having a first surface and a pulse wave calculator. When a vehicle with the visible light receiver is viewed from a side, the first surface is in a first region between a first optical path of first reflection light and a second optical path of second reflection light, first light comes from an eye of a user on a seat of the vehicle, second light comes from a cheek of the user, an upper end of a rearview mirror of the vehicle reflects the first light to produce the first reflection light and reflects the second light to produce the second reflection light, and the pulse wave calculator calculates a pulse wave of the user on the basis of a waveform of visible light received by the visible light receiver via the first surface and outputs the calculated pulse wave.
Abstract:
A pulse wave measuring apparatus includes a processor and a memory. The processor instructs a lighting device outside thereof to cause the amplitude of a first hue waveform obtained from first visible light images to fall within a certain hue range, calculates a degree of correlation between a first visible light waveform obtained from first visible light images and a first infrared waveform obtained from first infrared images, outputs an infrared control signal and a visible light control signal for adjusting the amount of light of an infrared light source and the lighting device, respectively, in accordance with the degree of correlation, extracts a second visible light waveform and a second infrared waveform from second visible light images and second infrared images, respectively, calculates first biological information from feature values of at least either the second visible light waveform or the second infrared waveform, and outputs the first biological information.
Abstract:
A pulse wave measuring device includes a processor and a memory. The processor obtains a visible light image, in a visible light wavelength range, of a user irradiated with visible light by a visible light source, obtains an infrared light image, in an infrared light wavelength range, of the user irradiated with infrared light by an infrared light source, extracts a visible light wave indicative of a user's pulse wave from the visible light image, extracts an infrared light wave indicative of a user's pulse wave from the infrared light image, computes a correlation value between the visible and infrared light waves, supplies a control signal for controlling the amount of infrared light emitted from the infrared light source to the infrared light source in accordance with the correlation value, calculates biological information by using at least one of the visible and infrared light waves, and outputs the biological information.