Paper
2 October 1998 Model-based approach to partial tracking for musical transcription
Andrew Sterian, Gregory H. Wakefield
Author Affiliations +
Abstract
We present a new method for musical partial tracking in the context of musical transcription using a time-frequency Kalman filter structure. The filter is based upon a model for the evolution of a partial behavior across a wide range of pitch from four brass instruments. Statistics are computed independently for the partial attributes of frequency and log-power first differences. We present observed power spectral density shapes, total powers, and histograms, as well as least-squares approximations to these. We demonstrate that a Kalman filter tracker using this partial model is capable of tracking partials in music. We discuss how the filter structure naturally provides quality-of-fit information about the data for use in further processing and how this information can be used to perform partial track initiation and termination within a common framework. We propose that a model-based approach to partial tracking is preferable to existing approaches which generally use heuristic rules or birth/death notions over a small time neighborhood. The advantages include better performance in the presence of cluttered data and simplified tracking over missed observations.
© (1998) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Andrew Sterian and Gregory H. Wakefield "Model-based approach to partial tracking for musical transcription", Proc. SPIE 3461, Advanced Signal Processing Algorithms, Architectures, and Implementations VIII, (2 October 1998); https://doi.org/10.1117/12.325677
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CITATIONS
Cited by 14 scholarly publications.
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KEYWORDS
Filtering (signal processing)

Time-frequency analysis

Electronic filtering

Instrument modeling

Model-based design

Statistical analysis

Detection and tracking algorithms

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