1. Field of the Invention
The present invention relates to a biometric information measuring apparatus for measuring biometric information of pulse, heart beat or the like.
2. Description of the Prior Art
In a background art, there has been developed a biometric information measuring apparatus for detecting a biometric signal of a person, such as a pulse signal, a heart beat signal or the like, and for measuring biometric information in correspondence with the biometric signal, such as a pulse number, a heartbeat number or the like per unit time.
When the biometric signal is detected, noise by physical movement or the like of a measured person is brought about and therefore, a measurement error produced by the noise or the like needs to be restrained.
In a biometric information measuring apparatus of a pulsimeter, a heart beat meter or the like of a background art, when the pulse number or the heart beat number is calculated from the pulse signal or the heart beat signal, fast Fourier transformation (FFT) is utilized (refer to, for example, JP-A-2003-265441).
However, according to the invention described in JP-A-2003-265441, when the signal waveform is disturbed by the physical movement or the like, as a result of FFT processing, other than a base line intended to be calculated inherently, a noise baseline proximate to a direct current component emerges at a high level and accurate measurement becomes difficult.
In order to prevent this, as in the invention described in JP-A-2003-265422, a high degree algorism needs to be used and therefore, there poses a problem that the processing becomes complicated.
The invention has been carried out in view of the above-described problem and it is an object of the present invention to be able to measure biometric information utilizing a highly accurate and simple apparatus and process.
According to the invention, there is provided a biometric information measuring apparatus characterized in a biometric information measuring apparatus including biometric signal detecting means for detecting a biometric signal provided from the human body, biometric information outputting means for outputting biometric information, and controlling means for calculating the biometric information based on the biometric signal detected by the biometric signal detecting means and controlling the biometric information outputting means to output the biometric information, where, in the controlling means calculates the biometric information by using a biometric signal other than a noise portion included in the biometric signal within a predetermined time period and controlling the biometric information outputting means to output the biometric information.
The biometric signal detecting means detects the biometric signal provided from the human body. The controlling means calculates the biometric information by using the biometric signal other than the noise portion included in the biometric signal within the predetermined time period and controls the biometric information outputting means to output the biometric information. The biometric information outputting means outputs the biometric information.
Here, there may be constructed a constitution in which the controlling means uses a predetermined signal level with regard to the biometric signal as a threshold and calculates the biometric information by using a signal satisfying the threshold as the biometric signal other than the noise portion. Further, there may be constructed a constitution in which the threshold constitutes a first threshold with regard to a signal level in a first direction and constitutes a second threshold with regard to a signal level in a second direction of a direction inverse to the first direction, and the first threshold and the second threshold are constituted by being set to values different from each other, herein the controlling means constitutes a biometric signal satisfying the two thresholds as the biometric signal other than the noise portion and calculates the biometric information by using the biometric signal.
Further, there may be constructed a constitution in which the controlling means is constituted by including amplifying means for amplifying to output the biometric signal detected by the biometric signal detecting means, and gain controlling means for restraining an output signal level of the amplifying means within a predetermined range by controlling a gain of the amplifying means based on an output signal of the amplifying means, the gain controlling means controls the gain of the amplifying means based on a plurality of newest biometric signals included in the predetermined time period, and the controlling means calculates the biometric information based on the biometric signal other than the noise portion in signals outputted from the amplifying means.
Further, there may be constructed a constitution in which the controlling means calculates the biometric information by subjecting the biometric signal other than the noise portion to an FFT processing.
Further, there may be constructed a constitution in which the controlling means calculates the biometric information by calculating a number of biometric signals exceeding a predetermined signal level in the biometric signals other than the noise portion.
Further, there may be constructed a constitution in which the biometric signal is a pulse signal or a heart beat signal, and the biometric information is a pulse number or a heart beat number per unit time in correspondence with the biometric signal.
Further, there may be constructed a constitution in which the biometric information outputting means is displaying means.
A preferred form of the present invention is illustrated in the accompanying drawings in which:
An explanation will be given of a biometric information measuring apparatus according to the embodiment of the invention as follows. Further, according to following respective embodiments, an explanation will be given by taking an example of a pulsimeter as a biometric information measuring apparatus.
In
Here, the biometric information detecting portion 101 constitutes biometric information detecting means, the display portion 111 constitutes biometric information outputting means. Controlling means is constituted by the filter portion 102, the amplifying portion 103 constituting amplifying means, the AD converting portion 104, the signal intensity determining portion 105, the gain control portion 106, the amplitude determining portion 107, the amplitude converting portion 108, the FFT operating portion 109 and the pulse number calculating portion 110. The signal intensity determining portion 105 and the gain control portion 106 constitute gain controlling means for restraining an output signal level of the amplifying portion 103 to a predetermined range by controlling the gain of the amplifying portion 103 based on the output signal of the amplifying portion 103. AGC amplifying means is constituted by the amplifying portion 103, the AD converting portion 104, the signal intensity determining portion 105 and the gain control portion 106. Further, calculating means is constituted by the FFT operating portion 109 and the pulse number calculating portion 110.
A detailed explanation will be given of an operation of, the first embodiment by using
First, when pulse measuring operation of the pulse detecting apparatus is started, the biometric signal detecting portion 101 starts operation of detecting the pulse signal constituting the biometric signal of the measured person to output the detected pulse signal (step S201 of
The pulse signal outputted from the biometric signal detecting portion 101 is reduced in high frequency noise by the filter portion 102, amplified by the amplifying portion 103, started to be converted from an analog signal to a digital signal by being subjected to AD conversion by the AD converting portion 104 (step S202), and the analog style pulse signal is converted into the digital style to be inputted (step S203).
Further, the signal intensity determining portion 105 determines the intensity of the pulse signal by comparing a value related to a plurality of newest pulse signal data supplied from the AD converting portion 104 in a predetermined time period (for example, an average value of a predetermined number of newest pulse data) and a predetermined reference value, and outputs a signal in accordance with the result of determination to the gain control portion 106. The gain control portion 106 controls a gain of the amplifying portion 103 such that the pulse signal outputted from the amplifying portion 103 is at a level of a predetermined range based on the signal from the signal intensity determining portion 105.
Operation of controlling the gain of the amplifying portion 103 is not carried out at each time of varying an output level thereof but is carried out based on the plurality of newest pulse signal data included in the predetermined time period and therefore, a response of the operation of controlling the gain is retarded relative to a variation in the output of the amplifying portion 103. Therefore, in
Next, after an elapse of a predetermined time period (according to the embodiment, 4n (n is positive integer) seconds), that is, after the AD converting portion 104 inputs the pulse signal of the digital style for 4n seconds (step S204), the signal intensity determining portion 105 carries out determination of the amplitude (periodic amplitude determination) of the inputted pulse signal (step S205). Here, the predetermined time period is constituted by a multiplication factor of integer (n) of 4 for facilitating to carry out FFT processing which is carried out at a later stage.
When the amplitude is out of the predetermined reference value (higher or lower than the predetermined value) as a result of determining the amplitude by the signal intensity determining portion 105 (step S206), after the gain control portion 106 changes the gain of the amplifying portion 103 such that the level of the pulse signal falls in the predetermined range (step S207), the amplitude determining portion 107 confirm the amplitude of the pulse signal outputted from the AD converting portion 104 (step S208). Further, at step S206, when the amplitude is within the predetermined reference value, the gain is not changed by the amplifying portion 103 and the operation proceeds to step S208.
Next, the amplitude determining portion 107 determines whether the amplitude of the pulse signal outputted from the AD converting portion 104 satisfies a predetermined threshold (step S209), when it is determined that the threshold is not satisfied, it is determined that noise by physical movement or the like is included, the amplitude converting portion 108 adjusts the amplitude of the pulse signal outputted from the AD converting portion 104 (step S210).
Next, the FFT operating portion 109 determines whether a predetermined time period (4n seconds according to the embodiment) has elapsed (step S211).
At step S211, when the predetermined time period has not elapsed, the operation returns to step S203, when the predetermined time period has elapsed, the FFT operating portion 109 carries out the FFT processing based on the pulse signal from the amplitude converting portion 108 (step S212), and the pulse number calculating portion 110 carries out a processing of calculating the pulse number (step 213). Thereby, the FFT operating portion 109 calculates the biometric information by using the biometric signal other than the noise portion included in the biometric signal within the predetermined time period.
In contrast thereto,
As is apparent by comparing
The display portion 111 displays the pulse number calculated by the pulse number calculating portion 110 (step S214).
Thereafter, when a finish instruction is not inputted by operating an operating portion (not illustrated) of the pulsimeter, the operation returns to step S203 to repeat the above-described processings (step S215).
On the other hand, when the finish instruction is inputted at step S215, the biometric signal detecting portion is stopped to be driven (step S216), the AD converting operation by the AD converting portion 104 is stopped (step S217), and the operation is finished.
As described above, according to the first embodiment, the biometric information is calculated by using the biometric signal other than the noise portion included in the biometric signal within the predetermined time period and therefore, the pulse can be measured highly accurately by a simple processing.
Further, there is constructed a constitution in which the predetermined signal level is used as the threshold for the biometric signal, the biometric information is calculated by using the signal satisfying the threshold of the biometric signal at other than the noise portion, there is constructed a constitution in which the threshold in the first direction and the threshold in the second direction of the direction inverse to the first direction are set to values different from each other in accordance with a characteristic of the pulse signal in which the pulse signal is large in the first direction and is small in the second direction inverse thereto, the biometric signal satisfying the two thresholds is made to constitute the biometric signal at other than the noise portion, and the biometric information is calculated by using the biometric signal and therefore, the pulse can be measured highly accurately.
Further, the gain of the amplifying portion 103 is controlled based on the plurality of newest biometric signals included in the predetermined time period and therefore, gradual and pertinent gain controlling operation is carried out without excessively in response to external noise and the pulse can be measured further highly accurately.
Further, the pulse number can be measured highly accurately by subjecting the biometric signal at other than the noise portion to the FFT processing.
That is, in an example of
As is apparent by comparing
Further,
A point of the third embodiment which differs from the first embodiment resides in that the third embodiment is constituted to calculate the biometric information by calculating a number of pulse signals exceeding a predetermined signal level in pulse signals other than a noise portion included in pulse signals in a predetermined time period without carrying out the FFT processing.
An explanation will be given of operation of a portion of the third embodiment which differs from the first embodiment in reference to
In
Next, it is determined whether a predetermined time period (according to the embodiment, 4n seconds) has elapsed (step S211).
At step S211, when the predetermined time period has elapsed, a pulse number calculating portion 901 carries out a processing of calculating a pulse number (step S1001).
Next, the display portion 111 displays the pulse number calculated by the pulse number calculating portion 901 (step S214) and processings similar to those of the first embodiment are carried out as follows.
As described above, also according to the third embodiment, the pulse number calculating portion 901 calculates the biometric information by using the pulse signals other than the noise portion included in the pulse signal in the predetermined time period, in this case, particularly, the biometric information is calculated by calculating a number of the pulse signals exceeding the predetermined thresholds in the pulse signal other than the noise portion.
Therefore, the measurement error by the noise of the physical movement or the like can be restrained and the pulse number can accurately be calculated by carrying out a simple processing without being subjected to a complicated processing as in FFT.
Further, although according to the respective embodiments, an explanation has been given by taking an example of the pulse as the biometric information, there can be constructed a constitution of measuring biometric information of the human body which is periodically generated such as heart beat, walk or the like.
According to the invention, the biometric information of the pulse, the heart beat or the like can be measured highly accurately by a simple processing.
The invention is applicable not only to a pulsimeter but also to a biometric information measuring apparatus for measuring biometric information of pulse, heart beat, walk or the like of a person such as a heart beat meter, a walk number meter or the like.
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