Cristin-resultat-ID: 990887
Sist endret: 17. januar 2013, 11:42
Resultat
Doktorgradsavhandling
2013

Methods and Technologies for Analysing Links Between Musical Sound and Body Motion

Bidragsytere:
  • Kristian Nymoen

Utgiver/serie

Utgiver

Akademisk Forlag
NVI-nivå 1

Serie

Series of dissertations submitted to the Faculty of Mathematics and Natural Sciences, University of Oslo.
ISSN 1501-7710
NVI-nivå 0

Om resultatet

Doktorgradsavhandling
Publiseringsår: 2013
Hefte: 1291
Antall sider: 208

Beskrivelse Beskrivelse

Tittel

Methods and Technologies for Analysing Links Between Musical Sound and Body Motion

Sammendrag

There are strong indications that musical sound and body motion are related. For instance, musical sound is often the result of body motion in the form of sound-producing actions, and musical sound may lead to body motion such as dance. The research presented in this dissertation is focused on technologies and methods of studying lower-level features of motion, and how people relate motion to sound. Two experiments on so-called sound-tracing, meaning representation of perceptual sound features through body motion, have been carried out and analysed quantitatively. The motion of a number of participants has been recorded using state-of- the-art motion capture technologies. In order to determine the quality of the data that has been recorded, these technologies themselves are also a subject of research in this thesis. A toolbox for storing and streaming music-related data is presented. This toolbox allows synchronised recording of motion capture data from several systems, independently of system-specific characteristics like data types or sampling rates. The thesis presents evaluations of four motion tracking systems used in research on music-related body motion. They include the Xsens motion capture suit, optical infrared marker-based systems from NaturalPoint and Qualisys, as well as the inertial sensors of an iPod Touch. These systems cover a range of motion tracking technologies, from state-of-the-art to low-cost and ubiquitous mobile devices. Weaknesses and strengths of the various systems are pointed out, with a focus on applications for music performance and analysis of music-related motion. The process of extracting features from motion data is discussed in the thesis, along with motion features used in analysis of sound-tracing experiments, including time-varying features and global features. Features for realtime use are also discussed related to the development of a new motion-based musical instrument: The SoundSaber. Finally, four papers on sound-tracing experiments present results and methods of analysing people’s bodily responses to short sound objects. These papers cover two experiments, presenting various analytical approaches. In the first experiment participants moved a rod in the air to mimic the sound qualities in the motion of the rod. In the second experiment the participants held two handles and a different selection of sound stimuli was used. In both experiments optical infrared marker-based motion capture technology was used to record the motion. The links between sound and motion were analysed using four approaches. (1) A pattern recognition classifier was trained to classify sound-tracings, and the performance of the classifier was analysed to search for similarity in motion patterns exhibited by participants. (2) Spearman’s p correlation was applied to analyse the correlation between individual sound and motion features. (3) Canonical correlation analysis was applied in order to analyse correlations between combinations of sound features and motion features in the sound-tracing experiments. (4) Traditional statistical tests were applied to compare sound-tracing strategies between a variety of sounds and participants differing in levels of musical training. Since the individual analysis methods provide different perspectives on the links between sound and motion, the use of several methods of analysis is recommended to obtain a broad understanding of how sound may evoke bodily responses.

Bidragsytere

Inaktiv cristin-person

Kristian Nymoen

  • Tilknyttet:
    Forfatter
    ved Det matematisk-naturvitenskapelige fakultet ved Universitetet i Oslo

Jim Tørresen

  • Tilknyttet:
    Veileder
    ved Institutt for informatikk ved Universitetet i Oslo
Aktiv cristin-person

Rolf Inge Godøy

  • Tilknyttet:
    Veileder
    ved Musikkvitenskap fag ved Universitetet i Oslo
Aktiv cristin-person

Alexander Refsum Jensenius

  • Tilknyttet:
    Veileder
    ved Musikkvitenskap fag ved Universitetet i Oslo

Mats Erling Høvin

  • Tilknyttet:
    Veileder
    ved Institutt for informatikk ved Universitetet i Oslo
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