| Literature DB >> 22666075 |
Finn Marsland1, Keith Lyons, Judith Anson, Gordon Waddington, Colin Macintosh, Dale Chapman.
Abstract
This study investigated the potential of micro-sensors for use in the identification of the main movement patterns used in cross-country skiing. Data were collected from four elite international and four Australian athletes in Europe and in Australia using a MinimaxX™ unit containing accelerometer, gyroscope and GPS sensors. Athletes performed four skating techniques and three classical techniques on snow at moderate velocity. Data from a single micro-sensor unit positioned in the centre of the upper back was sufficient to visually identify cyclical movement patterns for each technique. The general patterns for each technique were identified clearly across all athletes while at the same time distinctive characteristics for individual athletes were observed. Differences in speed, snow condition and gradient of terrain were not controlled in this study and these factors could have an effect on the data patterns. Development of algorithms to process the micro-sensor data into kinematic measurements would provide coaches and scientists with a valuable performance analysis tool. Further research is needed to develop such algorithms and to determine whether the patterns are consistent across a range of different speeds, snow conditions and terrain, and for skiers of differing ability.Entities:
Keywords: accelerometer; gyroscope; kinematics; technique analysis
Year: 2012 PMID: 22666075 PMCID: PMC3355458 DOI: 10.3390/s120405047
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.(a) Micro-sensor unit; (b) Modified bib with micro-sensor in pouch.
Figure 2.Orientation of accelerometer and gyroscope relative to the skier.
Figure 3.(a) Screenshot of Double Poling (DP) gyroscope and accelerometer traces against time; (b) DP body position for selection points.
Figure 9.(a) Screenshot of Free Skate (G5) gyroscope and accelerometer traces against time; (b) G5 body position for selection points.
Classical technique features common to all athletes.
| DP | 1 major peak each cycle (poling) | minimal; cycle visible for some athletes only | 1 small peak each cycle, coinciding with FwdA troughs | small but visible peaks <20 d/s each cycle | peak > 75d/s identifies poling | small but visible peaks <20 d/s each cycle |
| KDP | 1 minor peak each cycle (kick); 1 major peak each cycle (poling) | minimal | 1 peak each cycle, coinciding with minor FwdA peak | identifies kick left | peak >75 d/s identifies poling; slight hump identifies kick | identifies kick left |
| DS | 2 even peaks each cycle (left/right) | cycle visible for some athletes only | 2 peaks each cycle, slightly after FwdA | identifies kick left | smaller peak than DP & KDP, <50 d/s | identifies kick left |
Skating technique features common to all athletes.
| G2 | 1 double peak each cycle (for some athletes a minor+major peak) | regular cycle identifies skate left | asymmetric peak preceding FwdA peaks | clear Roll peak >50 d/s follows Yaw peak | peak >50 d/s identifies poling | clear Yaw peak/trough cycle following SideA |
| G3 | 2 even peaks each cycle (left/right) | regular cycle identifies skate left | one main peak, between FwdA peaks | irregular peaks <50 d/s | peak >75 d/s identifies poling; 2 Pitch peaks for every Yaw peak | clear Yaw peak/trough cycle following SideA |
| G4 | 1 minor peak each cycle (skate) 1 major peak each cycle (skate+poling) | regular cycle identifies skate left | one main peak, coinciding with minor FwdA peak | asymmetrical peaks generally < 50 d/s | peak >75 d/s identifies poling; 1 Pitch peak for every Yaw peak | clear Yaw peak/trough cycle following SideA |
| G5 | 2 even peaks each cycle (left/right) | regular cycle identifies skate left | minimal but rhythmic | clear Roll peak >50 d/s follows Yaw peak | peaks <40 d/s much less than G2-G4 (no poling) | clear Yaw peak/trough cycle following SideA |
Figure 4.(a) Screenshot of Kick Double Poling (KDP) gyroscope and accelerometer traces against time; (b) KDP body position for selection points.
Figure 10.Comparison of Double Pole (DP) gyroscope and accelerometer traces for four athletes (two from the IG and two from the AG).
Figure 16.Comparison of Free Skate (G5) gyroscope and accelerometer traces for four athletes (two from the IG and two from the AG).
Figure 12.Comparison of Diagonal Stride (DS) gyroscope and accelerometer traces for four athletes (two from the IG and two from the AG).
Figure 17.Differences between left and right kick in Diagonal Stride (DS).
Figure 13.Comparison of Offset Skate (G2) gyroscope and accelerometer traces for four athletes (two from the IG and two from the AG).
Figure 18.Longitudinal analysis of DP and KDP.
Figure 19.Longitudinal analysis of DS.