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Convention Paper

101 Mixes: A Statistical Analysis of Mix-Variation in a Dataset of Multi-Track Music Mixes

Authors: Wilson, Alex; Fazenda, Bruno

AES Convention 139 · Paper 9398 · October 2015

Abstract

The act of mix-engineering is a complex combination of creative and technical processes; analysis is often performed by studying the techniques of a few expert practitioners qualitatively. We propose to study the actions of a large group of mix-engineers of varying experience, introducing quantitative methodology to investigate mix-variation and the perception of quality. This paper describes the analysis of a dataset containing 101 alternate mixes generated by human mixers as part of an on-line mix competition. A varied selection of audio signal features is obtained from each mix and subsequent principal component analysis reveals four prominent dimensions of variation: dynamics, treble, width, and bass. An ordinal logistic regression model suggests that the ranking of each mix in the competition was significantly influenced by these four dimensions. The implications for the design of intelligent music production systems are discussed.

Details

Published in
AES Convention 139
AES Convention
139
Paper number
9398
Publication date
October 6, 2015
Session subject
Perception
Affiliation
University of Salford, Salford, Greater Manchester, UK (See document for exact affiliation information.)
Type
Convention Paper