Method and system for the continuous ranking of competitors during a race of a slalom skiing sports discipline
11369859 · 2022-06-28
Assignee
Inventors
Cpc classification
A63C2203/22
HUMAN NECESSITIES
A63K3/00
HUMAN NECESSITIES
A63C2203/18
HUMAN NECESSITIES
International classification
A63K3/00
HUMAN NECESSITIES
A63B71/06
HUMAN NECESSITIES
Abstract
A method for the continuous ranking of a competitor during a race of a slalom skiing type sports discipline includes the following iterative steps: a step of measuring the variation in the lateral angle of the gliding board about a predefined axis, a step of detecting the moment when the angle passes through a predefined value, a step of recording the competitor's run time corresponding to the detected moment, a step of comparing the stored run time with those of the preceding competitors for the corresponding detected moment, and a step of ranking the competitor with respect to the preceding competitors as a function of the run time of each competitor. A ranking system implements the method.
Claims
1. A method for continuous ranking of competitors during a race of a slalom skiing sports discipline along a racing track, a competitor being provided with at least one gliding board, the method comprises the following iterative steps: measuring, by a sensor that includes a gyroscope and is arranged on a ski boot of the competitor, a variation in a lateral angle of the gliding board about a predefined axis; detecting, by a detector, a moment when the lateral angle passes through a predefined value; recording, by processing circuitry communicatively coupled to a plurality of base stations located along the racing track, a run time of the competitor corresponding to the detected moment; comparing, by the processing circuitry that is communicatively coupled to the plurality of base stations located along the racing track, the recorded run time with run times of preceding competitors for the corresponding detected moment; and ranking, by the processing circuitry that is communicatively coupled to the plurality of base stations located along the racing track, the competitor with respect to the preceding competitors as a function of the run time of each competitor.
2. The method according to claim 1, wherein, in the measuring, the predefined axis is chosen to be oriented along a longitudinal axis of the gliding board, the lateral angle being measured with respect to a plane of a piste of a slalom course.
3. The method according to claim 2, wherein, in the detecting, the value of the predefined angle is chosen to be zero, the gliding board being parallel to the plane of the piste.
4. The method according to claim 3, wherein, in the detecting, a sign of the value of the angle is detected.
5. The method according to claim 1, wherein, in the detecting, moments are detected for two angle values, a first type of moment when the angle value changes from a value less than to a value greater than or equal to a first predefined value, and a second type of moment when the angle changes from a greater value to a value less than or equal to a second predefined value.
6. The method according to claim 5, wherein, in the recording, the first types of moment are associated with a turn in a first direction, orthogonal to the predefined axis, and the second types of moment are associated with a turn in an opposite direction to the first turn.
7. The method according to claim 5, wherein the first predefined value is comprised in a range of 3° to 30°, and the second predefined value is comprised in a range of −30° to −3°.
8. The method according to claim 5, wherein the first predefined value is comprised in a range of 5° to 15°, and the second predefined value is comprised in a range of −15° to −5°.
9. The method according to claim 1, wherein, in the comparing, a mean run time is computed over a series of consecutive detected moments over last four detected moments.
10. The method according to claim 9, wherein, in the ranking, the competitor is ranked with respect to the preceding competitors as a function of the mean run time.
11. The method according to claim 1, wherein, the ranking is performed after a predefined number of detected moments after a fourth detected moment.
12. The method according to claim 1, further comprising transmitting the recorded run time, between the detecting and the recording.
13. The method according to claim 1, further comprising displaying the ranking of the competitor for the detected moment.
14. The method according to claim 13, wherein, in the displaying, the run time of the competitor for the detected moment is also displayed.
15. A system for continuous ranking of competitors during a race of a slalom skiing sports discipline along a racing track, a competitor being provided with at least one gliding board, the system comprising: a sensor that includes a gyroscope and is arranged on a ski boot of the competitor, configured to measure a variation in a lateral angle of the gliding board about a predefined axis; a detector configured to detect a moment when the lateral angle passes through a predefined value; a timer configured to time a run time of the competitor; and processing circuitry communicatively coupled to a plurality of base stations located along the racing track, the processing circuitry configured to record the run time of the competitor when the processing circuitry receives a detection signal, to compare the run time with run times of preceding competitors for the corresponding detected moment, and to rank the competitor with respect to the preceding competitors as a function of the run time of each competitor.
16. The system according to claim 15, wherein the sensor, the detector, and a transmitter configured to transmit the detection signal to the processing circuitry are included in a portable transponder.
17. The system according to claim 16, wherein the portable transponder, which includes the sensor, the detector, and the transmitter, is configured to be arranged on the ski boot of the competitor, and the processing circuitry is configured to transmit the detection signal to each of the plurality of base stations.
18. The system according to claim 15, further comprising a display to display the ranking.
19. A method for continuous ranking of competitors during a race of a slalom skiing sports discipline along a racing track, a competitor being provided with at least one gliding board, the method comprising: receiving, by processing circuitry communicatively coupled to a plurality of base stations located along the racing track, a measurement of a variation in a lateral angle of the gliding board about a predefined axis, the measurement being measured by a sensor that includes a gyroscope and is arranged on a ski boot of the competitor; receiving, by the processing circuitry that is communicatively coupled to the plurality of base stations located along the racing track, a detection of a moment when the lateral angle passes through a predefined value; recording, by the processing circuitry that is communicatively coupled to the plurality of base stations located along the racing track, a run time of the competitor corresponding to the detected moment; comparing, by the processing circuitry that is communicatively coupled to the plurality of base stations located along the racing track, the recorded run time with run times of preceding competitors for the corresponding detected moment; and ranking, by the processing circuitry that is communicatively coupled to the plurality of base stations located along the racing track, the competitor with respect to the preceding competitors as a function of the run time of each competitor.
20. The system according to claim 15, further comprising: the plurality of base stations, which are spaced apart from each other by 200 to 400 m between a start and a finish of the racing track.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The objects, advantages and features of the ranking method and system according to the invention will appear more clearly in the following description of at least one non-limiting embodiment illustrated by the drawings, in which:
(2)
(3)
(4)
(5)
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DETAILED DESCRIPTION OF THE INVENTION
(8) According to the invention, the method is arranged to allow the continuous ranking of a competitor with respect to the preceding competitors during a race of a slalom ski type sports discipline. It concerns, for example, descending a slalom or giant slalom piste with skis or a snowboard. The invention can also be applied to any board sport which requires frequent turns to be made.
(9) The term ‘continuous’ means that the ranking is regularly updated, and that it is frequently repeated during the competitor's run. The competitor is provided with at least one gliding board, such as skis or a snowboard, which allow him to glide over the piste, which is covered with snow.
(10) During a slalom race 13, as represented in
(11) Detecting the moment at which the competitor has changed the lateral position of the skis determines the points of passage 5 on course 13 for which run times are measured, which the competitor's ranking to be updated with respect to the preceding competitors, at each point of passage 5 on course 13.
(12) To this end, method 1, represented in
(13) In a second step 7, the moment at which the angle passes through a predefined value is measured.
(14) According to a first embodiment of method 1, a zero angle value is chosen so that the gliding board is substantially parallel to the plane of the piste when this moment is detected. Thus, when the competitor changes the lateral orientation of his skis between two turns, he necessarily passes through a zero lateral angle value.
(15) According to a second embodiment of method 1, the sign of the angle value is also detected to determine whether the angle has passed through a zero value. Moreover, it is possible to deduce the type of turn from the sign. For example, when the angle becomes negative, a left turn is detected, and when the angle becomes positive, a right turn is detected. Each detection can thus be associated with the orientation of the turn, be it left or right. By associating the type of turn with each detection, it is possible to track whether the competitor is following the same course as the other competitors.
(16) According to a third embodiment of method 1, moments are detected for two angle values, a first type of moment when the angle value changes from a value less than a value greater than or equal to a first predefined value, and a second type of moment when the angle changes from a greater value to a value less than or equal to a second predefined value.
(17) The first types of moment are associated with a turn in a first direction, substantially orthogonal to the predefined axis, and the second types of moment are associated with a turn in the opposite direction to the first turn. For example, a right turn is detected when the angle has a value greater than or equal to the first predefined value and a left turn when the angle has a value less than or equal to a second predefined value.
(18) The first predefined value is comprised in a range of 3° to 30°, preferably of 5° to 15°, and the second predefined value is comprised in a range of −30° to −3°, preferably of −15° to −5°, to count all the turns. For example, an angle of 10° is chosen for the first value and −10° for the second value. In this example, a left turn is detected when the angle reaches −10°, even though it was greater than this value, and a right turn when the angle reaches 10° even though the angle was less than this angle.
(19) In this third embodiment, there is a hysteresis effect in detection, to avoid detecting small turns that the competitor makes, for example, to right himself, and which is not due to avoiding a gate. In the last example, turns are not detected for values less than 10° and more than −10°.
(20) In the example of
(21) Method 1 include a fourth step 9 of recording the competitor's run time corresponding to the detected moment. The competitor's run time is timed from the start by the usual timing means. Thus, as soon as a moment is detected, the current run time is instantaneously recorded to be associated with the detected moment.
(22) In the first embodiment, a run time is associated with each passage of the angle through the zero value.
(23) In the second embodiment, a run time is associated with each change of sign of the angle value. Further, the direction of the turn—right or left—is known. It is thus possible to check whether the competitors have made the same number of left and right turns.
(24) In the third embodiment, a run time is associated as soon as the angle is greater than or equal to the first predefined value, or as soon as the angle is less than or equal to the second predefined value. Further, the direction of the turn—left or right—is known, as in the second embodiment.
(25) The next step is a step 10 of comparing the stored run time with those of the preceding competitors for the corresponding detected moment. Advantageously, the stored run times of the competitor are tallied and the last run time stored is compared with the stored run times of the preceding competitors of the same order.
(26) According to a particular embodiment, during the comparison step, a mean run time is computed over a series of consecutive detected moments. To increase the ranking reliability, the mean value is, for example, computed over the last four detected moments. This thus avoid an erroneous ranking due to an anomaly in the course of the competitor
(27) Using the recorded run time, there is then a step 11 of ranking the competitor with respect to the preceding competitors as a function of the run time of each competitor. In the embodiment wherein a mean run time is computed over several moments, the competitor is ranked with respect to the preceding competitors as a function of the mean run time.
(28) Advantageously, the ranking step is performed after a predefined number of detected moments, for example after the fourth detected moment. This therefore avoids creating a ranking over the first detected moments since there is a risk of error.
(29) In
(30) The continuous ranking method 1 described above is implemented in an iterative manner throughout the competitor's run. Method 1 is repeated in the order of steps described above to update the ranking frequently, here at each turn change of the competitor.
(31) In graph 14 of
(32)
(33) An example ranking between several competitors, three in the example, is shown in Table 25 of
(34)
(35) Thus, from the computed means [T31], [T32], [T33], [T41], [T42], [T43], the competitors are ranked from the lowest mean to the highest mean for moments G3 and G4. For moment G3, the third competitor is the fastest, ahead of the first and second, while at detected moment G4, the second competitor is faster than the first, with the third still the slowest.
(36) The invention also relates to a system 30 for the continuous ranking of a competitor during a race of a slalom skiing sports discipline. System 30 is, in particular, suitable for implementing the method described above.
(37) System 30 includes one or more transponder modules 31, which are each intended to be worn by a competitor, who wears it to measure, in particular, the variation in lateral angle of the gliding board. Each transponder module 31 for the competition is disposed, for example, on one of the competitor's boots. Transponder module 31 includes a transmitter 32 provided with an antenna for transmitting a data signal, in particular a detection signal of a moment when the angle passes through the predefined value. For data signal transmission, the signal carrier frequency may be comprised between 300 MHz and 3,000 MHz, and especially, for example, at 433 MHz, 868 MHz or 915 MHz. Data modulation is achieved by amplitude modulation or frequency or phase modulation. It may be chosen from several carrier frequencies for transmission of the data signal. Thus, various transmission channels may be selected.
(38) Each transponder module includes a measurement unit 33 for measuring the variation in the lateral angle of the gliding board about the predefined axis. Measurement unit 33 is, for example, an inertial measurement unit, which is a motion sensor generally formed of a 3-axis accelerometer, a 3-axis gyroscope and a 3-axis magnetometer. The gyroscope measures the angle variation about the predefined axis. It is to be noted that a sensor provided simply with a gyroscope is sufficient to measure the angular variation according to the method.
(39) Transponder module 31 also includes a detection unit 34 configured to detect the moment when the measured angle passes through the predefined value or values, and the sign of the angle if necessary. Consequently, as soon as the angle value is detected, the module instantaneously transmits a detection signal.
(40) System 30 also includes one or more base stations 35, 36, 37 which can each receive a signal transmitted by the antenna of transmitter 32 of the transponder module 31 in the race, particularly a detection signal of the moment when the competitor passes through the predefined value or values. Each base station 35, 36, 37 can receive the signal from transponder module 31, separately or together via a receiving antenna 41, 42, 43. It is to be noted that each base station 35, 36, 37 of the device can be placed at a specific location on the racing track. For example, in a ski or snowboard race, base stations 35, 36, 37 could be placed spaced apart from each other by 200 to 400 m between the start and finish of the course. Each base station 35, 36, 37 or at least one base station can receive a data signal from the transponder module 31 worn by the competitor during his run.
(41) System 30 is also equipped with a timing device 38 and a display unit 39. Timing device 38 controls the timing of each competitor's run, and thus measures the run time of the competitors from the start until the competitor finishes. Display unit 39 displays the ranking in real time or continuously on at least one screen for spectators or television viewers via television broadcast devices or on the Internet.
(42) System 30 further includes a processing unit 40 connected to the various base stations 35, 36, 37 and to timing device 38. The various base stations 35, 36, 37 can be connected by cable or also by wireless communication in order to transmit the signal to processing unit 40 by cable or also by wireless transmission. Processing unit 40 is configured to record the competitor's run time when it receives a detection signal from transmitter 32 of transponder module 31, transmitted by bases 35, 36, 37. Processing unit 40 stores the run time for the detected moment and compares the run time with those of the preceding competitors for the corresponding detected moment. Processing unit 40 then performs a ranking of the competitor with respect to the preceding competitors as a function of the run time of each competitor, according to any of the embodiments of the method described above. The ranking is simultaneously transmitted to display unit 39 for the spectators or television viewers.