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Affective music recommendation system using input images

Published: 21 July 2013 Publication History

Abstract

Music that matches our current mood can create a deep impression, which we usually want to enjoy when we listen to music. However, we do not know which music best matches our present mood. We have to listen to each song, searching for music that matches our mood. As it is difficult to select music manually, we need a recommendation system that can operate affectively. Most recommendation methods, such as collaborative filtering or content similarity, do not target a specific mood. In addition, there may be no word exactly specifying the mood. Therefore, textual retrieval is not effective. In this paper, we assume that there exists a relationship between our mood and images because visual information affects our mood when we listen to music. We now present an affective music recommendation system using an input image without textual information.

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References

[1]
Russell, J., 1980. A Circumplex Model of Affect, Journal of Personality and Social Psychology 1980, pp.1161--1178
[2]
Valdez, P., and Mehrabian, A. 1994. Effects of Color on Emotions, Journal of Experimental Psychology 1994, pp.394--409
[3]
Eerola, T., Lartillot, O., and Toiviainen, P. 2009. Prediction of Multidimensional Emotional Ratings in Music from Audio Using Multivariate Regression Models, Proc. International Society for Music Information Retrieval Conference 2009, pp.621--626

Cited By

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  • (2021)Analyzing Images for Music Recommendation2021 IEEE International Conference on Consumer Electronics (ICCE)10.1109/ICCE50685.2021.9427619(1-6)Online publication date: 10-Jan-2021
  • (2019)Detecting and Adapting to Users’ Cognitive and Affective State to Develop Intelligent Musical InterfacesNew Directions in Music and Human-Computer Interaction10.1007/978-3-319-92069-6_11(163-177)Online publication date: 7-Feb-2019
  • (2018)The Use of the Convolutional Neural Network as an Emotion Classifier in a Music Recommendation SystemProceedings of the XIV Brazilian Symposium on Information Systems10.1145/3229345.3229389(1-8)Online publication date: 4-Jun-2018
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cover image ACM Conferences
SIGGRAPH '13: ACM SIGGRAPH 2013 Posters
July 2013
115 pages
ISBN:9781450323420
DOI:10.1145/2503385
Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than ACM must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected]

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Publication History

Published: 21 July 2013

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Overall Acceptance Rate 1,822 of 8,601 submissions, 21%

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Cited By

View all
  • (2021)Analyzing Images for Music Recommendation2021 IEEE International Conference on Consumer Electronics (ICCE)10.1109/ICCE50685.2021.9427619(1-6)Online publication date: 10-Jan-2021
  • (2019)Detecting and Adapting to Users’ Cognitive and Affective State to Develop Intelligent Musical InterfacesNew Directions in Music and Human-Computer Interaction10.1007/978-3-319-92069-6_11(163-177)Online publication date: 7-Feb-2019
  • (2018)The Use of the Convolutional Neural Network as an Emotion Classifier in a Music Recommendation SystemProceedings of the XIV Brazilian Symposium on Information Systems10.1145/3229345.3229389(1-8)Online publication date: 4-Jun-2018
  • (2016)Impression Estimation of a Video Based on the Valence-Arousal Model2016 International Conference on Multimedia Systems and Signal Processing (ICMSSP)10.1109/ICMSSP.2016.018(41-45)Online publication date: Sep-2016
  • (2015)Next-song recommendation with temporal dynamicsKnowledge-Based Systems10.1016/j.knosys.2015.07.03988:C(134-143)Online publication date: 1-Nov-2015
  • (2013)Ameliorating Music RecommendationProceedings of International Conference on Advances in Mobile Computing & Multimedia10.1145/2536853.2536856(3-9)Online publication date: 2-Dec-2013

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