IP Library Granted Patent US 12678062
Granted Patent B2
US 12678062 · App. 17/965,159 · Granted Jul 14, 2026

Display device and blood pressure measurement method using the same

Inventors: Gyeong Ub Moon (Suwon-si, KR); Bo Ram Choi (Asan-si, KR); Jong Yeop An (Hwaseong-si, KR); Hyeon Jun Lee (Hanam-si, KR)
Assignee: SAMSUNG DISPLAY CO., LTD.
A61B5/02116A61B5/02416A61B5/6897A61B5/7203A61B5/742A61B2562/0247
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Quick Facts
Patent No.
US 12678062
App. No.
17/965,159
Granted
Jul 14, 2026
Kind
B2
Abstract

The blood pressure measurement method using a display device includes generating a first pulse wave frequency signal having a magnitude of a pulse wave signal according to a frequency having a fundamental wave component and a harmonics component based on a pressure measurement value and a pulse wave signal, calculating a coefficient of a transfer function based on center frequencies and maximum gains at center frequencies of first harmonics to third harmonics of the first pulse wave frequency signal, generating a second pulse wave frequency signal by blocking noise components of the first harmonics to the third harmonics of the first pulse wave frequency signal based on the transfer function, generating a first pulse wave signal having a magnitude of a pulse wave signal according to a pressure based on the second pulse wave frequency signal, and calculating blood pressure information based on the first pulse wave signal.

Claims (262)

1 . A blood pressure measurement method using a display device, comprising:

generating a first pulse wave frequency signal by a main processor included in the display device, the first pulse wave frequency signal having a magnitude of a pulse wave signal according to a frequency having a fundamental wave component and a harmonics component based on a pressure measurement value that is sensed by a pressure sensor disposed on a display panel included in the display device and sensing a pressure applied from outside of the display device and a pulse wave signal that is sensed by a photo-sensor disposed on the display panel and sensing light;

calculating a coefficient of a transfer function by the main processor, the coefficient of the transfer function is based on center frequencies and maximum gains at center frequencies of first harmonics to third harmonics of the first pulse wave frequency signal;

generating a second pulse wave frequency signal by the main processor, the second pulse wave frequency signal is generated by blocking noise components of the first harmonics to the third harmonics of the first pulse wave frequency signal based on the transfer function;

generating a first pulse wave signal by the main processor, the first pulse wave signal having a magnitude of a pulse wave signal according to a pressure based on the second pulse wave frequency signal; and

calculating blood pressure information by the main processor based on the first pulse wave signal,

wherein the blood pressure information is displayed on a display panel of the display device,

wherein the calculating of the coefficient of the transfer function based on the center frequencies and the maximum gains at the center frequencies of the first harmonics to the third harmonics of the first pulse wave frequency signal includes:

detecting a first center frequency and a maximum gain at the first center frequency of the first harmonics of the first pulse wave frequency signal, a second center frequency and a maximum gain at the second center frequency of the second harmonics of the first pulse wave frequency signal, and a third center frequency and a maximum gain at the third center frequency of the third harmonics of the first pulse wave frequency signal; and

calculating cutoff frequencies based on the center frequencies,

wherein the calculating of the cutoff frequencies based on the center frequencies includes calculating a first cutoff frequency as corresponding to a half of the first center frequency,

wherein the transfer function includes a first transfer function blocking a noise component of the first harmonics in a section from the first cutoff frequency to the first center frequency,

wherein the first transfer function is calculated by

H

1

(

x

)

=

k

w

01

N

-

w

c

1

N

x

N

+

-

kw

c

1

N

w

01

N

-

w

c

1

N

in which H 1 ( x ) is the first transfer function, w o1 is the first center frequency, k is the maximum gain of the first center frequency, w c1 is the first cutoff frequency, and N is a natural number of 2 or more.

2 . The blood pressure measurement method using a display device of claim 1 , wherein the first transfer function has a waveform of a convex polynomial function.

3 . The blood pressure measurement method using a display device of claim 1 ,

wherein the calculating of the cutoff frequencies based on the center frequencies further includes calculating a second cutoff frequency corresponding to an intermediate value between the first center frequency and the second center frequency.

4 . The blood pressure measurement method using a display device of claim 3 ,

wherein the transfer function includes a second transfer function blocking a noise component of the first harmonics in a section from the first center frequency to the second cutoff frequency, and the second transfer function is calculated by

H

2

(

x

)

=

-

k

w

c

2

N

-

w

01

N

x

N

+

-

kw

01

N

w

c

2

N

-

w

01

N

in which H 2 ( x ) is the second transfer function, w o1 is the first center frequency, k is the maximum gain of the first center frequency, wc 2 is the second cutoff frequency, and N is a natural number of 2 or more.

5 . The blood pressure measurement method using a display device of claim 4 ,

wherein a maximum gain of the first transfer function is the same as a maximum gain of the second transfer function.

6 . The blood pressure measurement method using a display device of claim 1 ,

wherein in the calculating of the blood pressure information based on the first pulse wave signal, a peak detection signal is generated using peak values of the first pulse wave signal, a pressure value corresponding to the peak value of the peak detection signal is calculated, and a diastolic blood pressure lower than the pressure value, a systolic blood pressure higher than the pressure value, and a mean blood pressure are calculated according to the pressure value.

7 . The blood pressure measurement method using a display device of claim 6 ,

wherein a first pressure value and a second pressure value are calculated, wherein the first pressure value is smaller than the pressure value corresponding to about 60% to about 80% of the peak value in the peak detection signal, and the second pressure value is greater than the pressure value, and

the first pressure value is calculated as the diastolic blood pressure, and the second pressure value is calculated as the systolic blood pressure.

8 . The blood pressure measurement method using a display device of claim 1 ,

further comprising generating a second pulse wave frequency signal by blocking noise of the fundamental wave component of the first pulse wave frequency signal.

9 . The blood pressure measurement method using a display device of claim 8 ,

wherein the fundamental wave component includes a signal having a frequency of 0 hz.

10 . The blood pressure measurement method using a display device of claim 8 ,

further comprising generating a third pulse wave frequency signal from which fourth harmonics greater than the third harmonics are removed by blocking a high-frequency noise component of the second pulse wave frequency signal.

11 . A blood pressure measurement method using a display device, comprising:

generating a first pulse wave frequency signal by a main processor included in the display device, the first pulse wave frequency signal having a magnitude of a pulse wave signal according to a frequency having a fundamental wave component and a harmonics component based on a pressure measurement value that is sensed by a pressure sensor disposed on a display panel included in the display device and sensing a pressure applied from outside of the display device and a pulse wave signal that is sensed by a photo-sensor disposed on the display panel and sensing light;

calculating a coefficient of a transfer function by the main processor, the coefficient of the transfer function is based on center frequencies and maximum gains at center frequencies of first harmonics to third harmonics of the first pulse wave frequency signal;

generating a second pulse wave frequency signal by the main processor, the second pulse wave frequency signal is generated by changing the maximum gains of the first harmonics to the third harmonics of the first pulse wave frequency signal based on the transfer function;

generating a second pulse wave signal by the main processor, the second pulse wave signal having a magnitude of a pulse wave signal according to a pressure based on the second pulse wave frequency signal; and

calculating blood pressure information by the main processor based on the second pulse wave signal and displaying the blood pressure information on a display panel of the display device,

wherein one cycle of the second pulse wave signal includes a plurality of waveforms having different amplitudes from each other, and a peak value of a first waveform of the plurality of waveforms is greater than a peak value of a second waveform of the plurality of waveforms,

wherein the calculating of the coefficient of the transfer function based on the center frequencies and the maximum gains at the center frequencies of the first harmonics to the third harmonics of the first pulse wave frequency signal includes:

calculating a first center frequency and a maximum gain at the first center frequency of the first harmonics of the first pulse wave frequency signal, a second center frequency and a maximum gain at the second center frequency of the second harmonics of the first pulse wave frequency signal, and a third center frequency and a maximum gain at the third center frequency of the third harmonics of the first pulse wave frequency signal; and

calculating cutoff frequencies based on the center frequencies,

wherein the calculating of the cutoff frequencies based on the center frequencies includes calculating a first cutoff frequency as corresponding to a half of the first center frequency,

wherein the transfer function includes a first transfer function blocking a noise component of the first harmonics in a section from the first cutoff frequency to the first center frequency,

wherein the first transfer function is calculated by

H

1

(

x

)

=

k

w

01

N

-

w

c

1

N

x

N

+

-

kw

c

1

N

w

01

N

-

w

c

1

N

in which H 1 ( x ) is the first transfer function, w o1 is the first center frequency, k is the maximum gain of the first center frequency, w c1 is the first cutoff frequency, and N is a natural number of 2 or more.

12 . The blood pressure measurement method using a display device of claim 11 ,

wherein the transfer function includes a third transfer function in which the peak value of the first waveform is greater than the peak value of the second waveform, and

the third transfer function is calculated by

H

3

(

x

)

=

k

2

(

w

01

-

w

02

)

x

+

k

(

w

01

-

2

w

02

)

2

(

w

01

-

w

02

)

in which w o1 is the first center frequency, k is a maximum gain of the first center frequency, and w o2 the second center frequency.

13 . The blood pressure measurement method using a display device of claim 12 ,

wherein RI=Rp/Sp

in which RI is a reflected pulse wave ratio, Sp is a pulse wave contraction value, Rp is a reflected pulse wave value, wherein the pulse wave contraction value is the peak value of the first waveform of the plurality of waveforms, and the reflected pulse wave value is the peak value of the second waveform of the plurality of waveforms.

14 . The blood pressure measurement method using a display device of claim 13 ,

wherein the reflected pulse wave ratio includes a first period in which the reflected pulse wave ratio fluctuates within a first range, a second period in which the reflected pulse wave ratio fluctuates within a second range, and a third period in which the reflected pulse wave ratio fluctuates within a third range, and wherein a width of the first range and a width of the third range are smaller than a width of the second range.

15 . The blood pressure measurement method using a display device of claim 14 ,

wherein the reflected pulse wave ratio is analyzed to detect a start point in time of the second period, wherein a third pressure value corresponding to the second pulse wave signal at the start point in time of the second period is calculated and set as a diastolic blood pressure, and wherein a fourth pressure value corresponding to the second pulse wave signal at a start point in time of the third period after the second period is calculated and set as a systolic blood pressure.

16 . An electronic device, comprising:

a display device comprising:

a display panel including pixels displaying an image;

a pressure sensor disposed on the display panel and sensing a pressure applied from outside of the display device;

a photo-sensor disposed on the display panel and sensing light; and

a main processor receiving a pressure measurement value that is sensed by the pressure sensor and a pulse wave signal that is sensed by the photo-sensor,

wherein the main processor generates a first pulse wave frequency signal having a fundamental wave component and a harmonics component according to the pressure measurement value and the pulse wave signal, generates a second pulse wave frequency signal by blocking noise of the harmonics component of the first pulse wave frequency signal, generates a first pulse wave signal based on the second pulse wave frequency signal, and calculates blood pressure information based on the first pulse wave signal,

wherein each of the first pulse wave frequency signal and the second pulse wave frequency signal is a magnitude of the pulse wave signal according to a frequency, and the first pulse wave signal is a magnitude of the pulse wave signal according to the pressure measurement value,

wherein the main processor calculates a coefficient of a transfer function based on center frequencies and maximum gains at center frequencies of first harmonics to third harmonics of the first pulse wave frequency signal,

wherein the calculating of the coefficient of the transfer function based on the center frequencies and the maximum gains at the center frequencies of the first harmonics to the third harmonics of the first pulse wave frequency signal includes:

detecting a first center frequency and a maximum gain at the first center frequency of the first harmonics of the first pulse wave frequency signal, a second center frequency and a maximum gain at the second center frequency of the second harmonics of the first pulse wave frequency signal, and a third center frequency and a maximum gain at the third center frequency of the third harmonics of the first pulse wave frequency signal; and

calculating cutoff frequencies based on the center frequencies,

wherein the calculating of the cutoff frequencies based on the center frequencies includes calculating a first cutoff frequency as corresponding to a half of the first center frequency,

wherein the transfer function includes a first transfer function blocking a noise component of the first harmonics in a section from the first cutoff frequency to the first center frequency,

wherein the first transfer function is calculated by

H

1

(

x

)

=

k

w

01

N

-

w

c

1

N

x

N

+

-

kw

c

1

N

w

01

N

-

w

c

1

N

in which H 1 ( x ) is the first transfer function, war is the first center frequency, k is the maximum gain of the first center frequency, w c1 is the first cutoff frequency, and N is a natural number of 2 or more.