Wearable device and a method of using a wearable device
According to an aspect, there is provided a wearable device, the wearable device comprising: an inflatable body configured to be mounted to a torso of a user; a first sensing device, wherein the first sensing device comprises a first sensor and a first actuator coupling the first sensor to the inflatable body; and a memory storing computer-readable instructions that, when executed, cause the wearable device to: inflate the inflatable body from a first state of the inflatable body to a second state of the inflatable body; actuate the first actuator from a first state of the first actuator to a second state of the first actuator, wherein actuating the first actuator from the first state of the first actuator to the second state of the first actuator reduces a volume of a first air gap between the torso and the first sensor; and while the inflatable body is in the second state of the inflatable body and the first actuator is in the second state of the first actuator receive a first signal from the first sensor. There is also described a method of using the wearable device.
1 . A wearable device, the wearable device comprising:
an inflatable body configured to be mounted to a torso of a user;
an air pump configured to inflate the inflatable body and to drive chest wall oscillation therapy while the inflatable body is mounted to the user's torso;
a first sensing device, wherein the first sensing device comprises a first sensor and a first actuator coupling the first sensor to the inflatable body; and
a memory storing computer-readable instructions that, when executed, cause the wearable device to:
inflate the inflatable body from a first state of the inflatable body to a second state of the inflatable body;
after the inflatable body has been inflated to the second state, actuate the first actuator from a first state of the first actuator to a second state of the first actuator, wherein actuating the first actuator from the first state of the first actuator to the second state of the first actuator reduces a volume of a first air gap between the torso and the first sensor; and
while the inflatable body is in the second state of the inflatable body and the first actuator is in the second state of the first actuator, receive a first signal from the first sensor.
2 . The wearable device of claim 1 , further comprising a second sensing device, wherein the second sensing device comprises a second sensor and a second actuator coupling the second sensor to the inflatable body, wherein the computer-readable instructions, when executed, further cause the wearable device to actuate the second actuator from a first state of the second actuator to a second state of the second actuator and receive a second signal from the second sensor, wherein actuating the second actuator from the first state of the second actuator to the second state of the second actuator reduces a volume of a second air gap between the torso and the second sensor, wherein the second signal is received from the second sensor while the inflatable body is in the second state of the inflatable body and the second actuator is in the second state of the second actuator.
3 . The wearable device of claim 1 , wherein the first sensing device comprises a first housing that houses the first sensor and the first air gap is between the torso and the first housing, wherein the first actuator couples the first housing to the inflatable body and actuating the first actuator from the first state of the first actuator to the second state of the first actuator reduces the volume of the first air gap between the torso and the first housing, and wherein the second sensing device comprises a second housing that houses the second sensor and the second air gap is between the torso and the second housing, wherein the second actuator couples the second housing to the inflatable body and actuating the second actuator from the first state of the second actuator to the second state of the second actuator reduces the volume of the second air gap between the torso and the second housing.
4 . The wearable device of claim 1 , wherein the first sensor is a first acoustic sensor and wherein the second sensor is a second acoustic sensor.
5 . The wearable device of claim 1 , wherein the first actuator comprises a first inflatable bladder, wherein actuating the first actuator from the first state of the first actuator to the second state of the first actuator comprises inflating the first inflatable bladder, wherein the second actuator comprises a second inflatable bladder and wherein actuating the second actuator from the first state of the second actuator to the second state of the second actuator comprises inflating the second inflatable bladder.
6 . A method comprising:
inflating the inflatable body of the wearable device of claim 1 from the first state of the inflatable body to the second state of the inflatable body;
after the inflatable body has been inflated to a second state, actuating the first actuator from the first state of the first actuator to the second state of the first actuator, wherein actuating the first actuator from the first state of the first actuator to the second state of the first actuator reduces the volume of the first air gap; and
while the inflatable body is in the second state of the inflatable body and the first actuator is in the second state of the first actuator, receiving a first signal from the first sensor.
7 . The method of claim 6 , further comprising actuating a second actuator from a first state of the second actuator to a second state of the second actuator and receiving a second signal from a second sensor, wherein actuating the second actuator from the first state of the second actuator to the second state of the second actuator reduces a volume of a second air gap between the torso and the second sensor, wherein the second signal is received from the second sensor while the inflatable body is in the second state of the inflatable body and the second actuator is in the second state of the second actuator.
8 . The method of claim 6 , further comprising maintaining the first actuator in the second state of the first actuator for a first period of time and receiving the first signal from the first sensor while the first actuator is maintained in the second state of the first actuator, wherein the method further comprises maintaining the second actuator in the second state of the second actuator for a second period of time and receiving the second signal from the second sensor while the second actuator is maintained in the second state of the second actuator.
9 . The method of claim 7 , further comprising:
while the inflatable body is in the second state of the inflatable body, receiving a third signal from the first sensor;
determining a first value related to the volume of the first air gap based on the third signal;
actuating the first actuator from the first state of the first actuator to the second state of the first actuator based on the first value,
wherein the method further comprises receiving a fourth signal from the second sensor while the inflatable body is in the second state of the inflatable body, determining a second value related to the volume of the second air gap based on the fourth signal and actuating the second actuator from the first state of the second actuator to the second state of the second actuator based on the second value.
10 . The method of claim 9 , wherein the first value is a signal-to-noise ratio or a signal-to-noise ratio proxy of the third signal and wherein the second value is a signal-to-noise ratio or a signal-to-noise ratio proxy of the fourth signal.
11 . The method of claim 10 , further comprising the first sensor emitting a first sound pulse and producing the third signal based on a reflection of the first sound pulse and wherein the method further comprises the second sensor emitting a second sound pulse and producing the fourth signal based on a reflection of the second sound pulse.
12 . The method of claim 9 , wherein the torso comprises a heart and wherein the third signal is identified as being produced based on a sound emitted by a heartbeat of the heart and wherein the fourth signal is identified as being produced based on a sound emitted by a heartbeat of the heart.
13 . The method of claim 9 , wherein the torso comprises a lung, wherein the method further comprises determining a period of time in which the lung is not breathing, wherein the first value is determined based on the third signal produced during the period of time in which the lung is not breathing and wherein the second value is determined based on the fourth signal produced during the period of time in which the lung is not breathing.
14 . The method of claim 6 , further comprising:
actuating the first actuator from the first state of the first actuator to the second state of the first actuator based on a first value, wherein the first value is determined based on one or more predetermined characteristics of the torso,
wherein the method further comprises actuating the second actuator from the first state of the second actuator to the second state of the second actuator based on a second value, wherein the second value is determined based on one or more predetermined characteristics of the torso.