Skilog: A Smart Sensor System for Performance Analysis and Biofeedback in Ski Jumping
Lukas Schulthess, Thorir Mar Ingolfsson, Marc N\"olke, Michele Magno,, Luca Benini, Christoph Leitner

TL;DR
This paper introduces a compact, energy-efficient wireless sensor system for ski jumping that provides real-time performance analysis and biofeedback using foot pressure data and machine learning, enhancing training effectiveness.
Contribution
The paper presents a novel smart sensor system with real-time feedback capabilities, optimized ML models, and low power consumption for improved ski jumping training.
Findings
Achieved 92.7% accuracy in center of mass prediction
Real-time inference at 0.0109ms per prediction
System operates continuously for up to 300 hours
Abstract
In ski jumping, low repetition rates of jumps limit the effectiveness of training. Thus, increasing learning rate within every single jump is key to success. A critical element of athlete training is motor learning, which has been shown to be accelerated by feedback methods. In particular, a fine-grained control of the center of gravity in the in-run is essential. This is because the actual takeoff occurs within a blink of an eye (300ms), thus any unbalanced body posture during the in-run will affect flight. This paper presents a smart, compact, and energy-efficient wireless sensor system for real-time performance analysis and biofeedback during ski jumping. The system operates by gauging foot pressures at three distinct points on the insoles of the ski boot at 100Hz. Foot pressure data can either be directly sent to coaches to improve their feedback, or fed into a ML model to…
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Taxonomy
TopicsWinter Sports Injuries and Performance · Advanced MEMS and NEMS Technologies · Sports Performance and Training
MethodsGravity
