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Tracking Ensemble Performance on Touch-Screens with Gesture Classification and Transition Matrices

Published 1 Dec 2020 in cs.HC, cs.SD, and eess.AS | (2012.00296v1)

Abstract: We present and evaluate a novel interface for tracking ensemble performances on touch-screens. The system uses a Random Forest classifier to extract touch-screen gestures and transition matrix statistics. It analyses the resulting gesture-state sequences across an ensemble of performers. A series of specially designed iPad apps respond to this real-time analysis of free-form gestural performances with calculated modifications to their musical interfaces. We describe our system and evaluate it through cross-validation and profiling as well as concert experience.

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