Publication | Closed Access
Observing Pianist Accuracy and Form with Computer Vision
17
Citations
26
References
2019
Year
Unknown Venue
MusicInteractive PianoHigh AccuracyMachine VisionMachine LearningImage AnalysisEngineeringPattern RecognitionGesture RecognitionOptical Music RecognitionEye TrackingPressed Piano KeysPerceptual User InterfaceComputer ScienceVideo UnderstandingDeep LearningMultimodal Human Computer InterfaceComputer Vision
We present a first step towards developing an interactive piano tutoring system that can observe a student playing the piano and give feedback about hand movements and musical accuracy. In particular, we have two primary aims: 1) to determine which notes on a piano are being played at any moment in time, 2) to identify which finger is pressing each note. We introduce a novel two-stream convolutional neural network that takes video and audio inputs together for detecting pressed notes and finger presses. We formulate our two problems in terms of multi-task learning and extend a state-of-the-art object detection model to incorporate both audio and visual features. In addition, we introduce a novel finger identification solution based on pressed piano note information. We experimentally confirm that our approach is able to detect pressed piano keys and the piano player's fingers with a high accuracy.
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