Integrated portable device and method implementing an accelerometer for analyzing biomechanical parameters of a stride
A method implementing an accelerometer for analyzing biomechanical parameters of a runner's stride. The method includes fastening a device ( 1 ) on the runner that has a triaxial accelerometer ( 17 ), a chronograph ( 16 ), a digital processor ( 19 ) and a display ( 11 ). The method measures a sequence of acceleration data in at least the vertical direction using the accelerometer, while the runner runs a certain distance (D) along a running course. During or at the end the running course, the processor calculates the biomechanical parameters of the stride, including lowering the center of gravity and/or the elevation (E) of the center of gravity and/or the sum of the lowering and of the elevation (E) and/or the vertical mechanical work of the center of gravity, based on the acceleration data, of the distance (D) and a period of time measured by the chronograph ( 16 ); and displays the parameters.
1. A method for analyzing biomechanical parameters of a runner's stride using an electrically autonomous device, said device comprising:
a self-sufficient electric power source;
a tri-axial accelerometer capable of supplying at least one sequence of acceleration data in at least the vertical direction whilst the runner travels a distance on a running course;
a chronograph;
a GPS receiver;
a digital processor;
the method comprising the steps of:
a) measuring a sequence of acceleration data according to at least the vertical direction by said tri-axial accelerometer while the runner travels said distance on said running course, said distance being measured by said tri-axial accelerometer or by said GPS receiver;
b) during or at the end of the run, computing by said digital processor biomechanical parameters of the stride on the basis of said acceleration data, said parameters comprising a regularity index of the stride calculated based on:
the dispersion of the stride length;
the dispersion of the flight time; or
the dispersion of the reactivity determined by means of said acceleration data,
wherein said biomechanical parameters include a stiffness, computed based on a maximum bearing force and a lowering of the center of mass of the runner.
2. The method according to claim 1 , said regularity index being computed based on the dispersion of the reactivity, said reactivity being computed as the ratio between the flight time and the contact time, the flight time corresponding to the time interval between the moments when one foot of the runner takes off and where the same foot is in contact with the ground, the contact time corresponding to the time interval between the moments when the foot is in contact with the ground and where the same foot re-takes off.
3. The method according to claim 1 , said regularity index being computed based on the dispersion of the reactivity, said reactivity being computed according to the formula
T v /T c
wherein
“T v ” indicates the flight time of the runner;
“T c ” indicates the contact time of the runner.
4. The method according to claim 1 , wherein said biomechanical parameters include a fatigue level indicator calculated on the basis of said regularity index.
5. The method according to claim 4 , wherein said fatigue level indicator is computed on the basis of the following formula:
F
atigue
=
1
-
∑
i
=
1
n
Re
gularit
e
′
(
i
)
n
·
Re
gularit
e
′
(
1
)
wherein
“Fatigue” indicates said fatigue level indicator;
“Regularité” indicates said regularity index;
“n” indicates the number of strides.
6. The method according to claim 1 , wherein said biomechanical parameters are computed at each stride.
7. The method according to claim 1 , wherein said reactivity is computed at each stride.
8. The method according to claim 1 , wherein said device comprises a display, wherein the method comprises displaying said parameters on said display.
9. The method according to claim 1 , wherein said device comprises a wireless interface, wherein the method comprises exchanging biomechanical parameters with another data processing device via said wireless interface.
10. The method according to claim 1 , comprising
measuring by said accelerometer a sequence of acceleration data in at least an anteroposterior direction;
processing said sequence of acceleration data in at least the anteroposterior direction separately from said sequence of acceleration data in the vertical direction, in order to calculate at least some of said parameters.
11. The method according to claim 1 , comprising:
measuring by said accelerometer a sequence of acceleration data in at least a lateral direction;
processing said sequence of acceleration data in at least the lateral direction separately from said sequence of acceleration data in the vertical direction, in order to calculate at least some of said parameters.
12. The method according to claim 1 , comprising:
determining the vertical direction on the basis of the acceleration data when the runner is at a standstill.
13. The method according to claim 10 , comprising:
determining the spatial direction in which the displacement is greatest;
determining the anteroposterior direction based on said spatial direction in which the displacement is greatest.
14. The method according to claim 10 , comprising:
checking if the axes of said accelerometer coincide with said vertical respectively anteroposterior axes,
if the axes of said accelerometer do not coincide with said vertical respectively anteroposterior axes, performing a transformation of a frame of reference.
15. The method according to claim 1 , said lowering of the center of mass of the runner being computed at each stride.
16. The method according to claim 1 , said maximum bearing force being computed based on the mass of the runner, the flight time and of the contact time.
17. The method according to claim 1 , said lowering of the center of mass being computed based on the maximum bearing force, the contact time and the mass of the runner.
18. The method according to claim 1 , said lowering of the center of mass being computed based on the following formula
A=f ( F max ,T c ,M )=|−( F max *T c 2 )/( M*π 2 )+( G*T c 2 )/8|
wherein
“F max ” indicates the maximum bearing force;
“T c ” indicates the contact time;
“M” indicates the mass of the runner.
19. The method according to claim 1 , wherein said biomechanical parameters include the asymmetry between at least one parameter of the left leg and at least one corresponding parameter of the right leg.
20. The method according to claim 19 , wherein said asymmetry between at least one parameter of the left leg and at least one corresponding parameter of the right leg is computed based on the formula
asymmetry=( T c max− T c min)/ T c min
wherein
“asymmetry” indicates said asymmetry between at least one parameter of the left leg and at least one corresponding parameter of the right leg;
“T c max” indicates the maximum contact time;
“T c min” indicates the minimum contact time.
21. The method according to claim 19 , wherein said biomechanical parameters include an injury risk indicator calculated on the basis of said asymmetry.
22. The method according to claim 21 , wherein said injury risk indicator is computed based on the formula:
R
·
injury
=
1
-
∑
i
=
1
n
Asy
(
i
)
n
·
Asy
max
Wherein
“Rinjury” indicates said injury risk indicator;
“Asy” indicates said asymmetry between at least one parameter of the left leg and at least one corresponding parameter of the right leg;
“n” indicates the number of strides.
23. The method according to claim 1 , wherein said biomechanical parameters include a takeoff angle of the centre of gravity at the moment when the foot leaves the ground, obtained from an average speed and a vertical speed at the moment of takeoff.
24. The method according to claim 23 , wherein said average speed is calculated on the basis of said travelled distance and said duration counted by said chronograph, whilst said vertical speed at the moment of takeoff is obtained by integration of said acceleration data.
25. The method according to claim 1 , wherein said biomechanical parameters include the landing angle of a leg of the runner on the ground.
26. The method according to claim 1 , wherein said biomechanical parameters include the distance travelled by the runner's center of mass during the duration when a foot of the runner is in contact with the ground.
27. A device designed for analysing the biomechanical parameters of the stride of a runner, comprising:
a self-sufficient electric power source;
a tri-axial accelerometer capable of supplying at least one sequence of acceleration data in at least the vertical direction whilst the runner travels a distance on a running course;
a GPS receiver;
a chronograph;
a digital processor programmed for calculating, during or at the end of the run, biomechanical parameters of the stride of said runner, on the basis of said acceleration data, of a distance measured by said GPS receiver and/or by said accelerometer, and of a duration counted by said chronograph, wherein the biomechanical parameters of the stride comprises a regularity index, said regularity index being calculated on the basis of:
the stride length dispersion,
the flight time dispersion, or
the reactivity dispersion,
wherein said biomechanical parameters include a stiffness, computed based on a maximum bearing force and a lowering of the center of mass of the runner.
28. The device according to claim 27 , comprising a display, the digital processor programmed for displaying said parameters on said display.
29. The device according to claim 27 , the device further comprising a wireless interface for the exchange data with another data processing device.
30. The device according to claim 27 , comprising a belt or a clip for fixing the device on the runner's torso, the center of mass of the runner being located at the place where the device and/or the accelerometer is fastened.