• Title/Summary/Keyword: 인공지능 기반 작곡

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Comparative Analysis of and Future Directions for AI-Based Music Composition Programs (인공지능 기반 작곡 프로그램의 비교분석과 앞으로 나아가야 할 방향에 관하여)

  • Eun Ji Park
    • The Journal of the Convergence on Culture Technology
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    • v.9 no.4
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    • pp.309-314
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    • 2023
  • This study examines the development and limitations of current artificial intelligence (AI) music composition programs. AI music composition programs have progressed significantly owing to deep learning technology. However, they possess limitations pertaining to the creative aspects of music. In this study, we collect, compare, and analyze information on existing AI-based music composition programs and explore their technical orientation, musical concept, and drawbacks to delineate future directions for AI music composition programs. Furthermore, this study emphasizes the importance of developing AI music composition programs that create "personalized" music, aligning with the era of personalization. Ultimately, for AI-based composition programs, it is critical to extensively research how music, as an output, can touch the listeners and implement appropriate changes. By doing so, AI-based music composition programs are expected to form a new structure in and advance the music industry.

Artificial Intelligence Applications to Music Composition (인공지능 기반 작곡 프로그램 현황 및 제언)

  • Lee, Sunghoon
    • The Journal of the Convergence on Culture Technology
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    • v.4 no.4
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    • pp.261-266
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    • 2018
  • This study aimed to provide an overview of artificial intelligence based music composition programs. The artificial intelligence-based composition program has shown remarkable growth as the development of deep neural network theory and the improvement of big data processing technology. Accordingly, artificial intelligence based composition programs for composing classical music and pop music have been proposed variously in academia and industry. But there are several limitations: devaluation in general populations, missing valuable materials, lack of relevant laws, technology-led industries exclusive to the arts, and so on. When effective measures are taken against these limitations, artificial intelligence based technology will play a significant role in fostering national competitiveness.

Design and Implementation of BGM Composition Service Using Deep Learning (딥러닝을 이용한 BGM 음원 작곡 서비스 설계 및 구현)

  • Kim, Young-Hoon;Yoon, Sung-Yeol;Kim, Byung-Woo;Shin, Hyun-Woo;Hwang, Gyu-Young;Han, Youn-Hee
    • Proceedings of the Korea Information Processing Society Conference
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    • 2019.10a
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    • pp.986-989
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    • 2019
  • 인공지능에 대한 연구가 계속되고 있지만 음악, 미술, 문학 등 창의력과 예술성을 요구하는 부문에서는 인공지능을 적용하기 어렵다. 하지만 그중 음악 부문에 인공지능을 접목시켜 기존에 없던 곡을 작곡해보고자 한다. LSTM 기반의 모델을 ABC Notation 악보 데이터를 활용하여 학습시켜 사용자들이 음악적 지식 없이도 새로운 음악을 작곡할 수 있도록 딥러닝을 기반으로 한 BGM 음원 작곡 서비스를 제안한다.

Korean Traditional Music Melody Generator using Artificial Intelligence (인공지능을 이용한 국악 멜로디 생성기에 관한 연구)

  • Bae, Jun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.25 no.7
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    • pp.869-876
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    • 2021
  • In the field of music, various AI composition methods using machine learning have recently been attempted. However, most of this research has been centered on Western music, and little research has been done on Korean traditional music. Therefore, in this paper, we will create a data set of Korean traditional music, create a melody using three algorithms based on the data set, and compare the results. Three models were selected based on the similarity between language and music, LSTM, Music Transformer and Self Attention. Using each of the three models, a melody generator was modeled and trained to generate melodies. As a result of user evaluation, the Self Attention method showed higher preference than the other methods. Data set is very important in AI composition. For this, a Korean traditional music data set was created, and AI composition was attempted with various algorithms, and this is expected to be helpful in future research on AI composition for Korean traditional music.

A Study on the production of Music Content Using Artificial Intelligence Composition Program (인공지능 작곡 프로그램을 활용한 음악 콘텐츠 제작 연구)

  • Park, Dahae
    • Trans-
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    • v.13
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    • pp.35-58
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    • 2022
  • This study predicts the paradigm shift that the development of artificial intelligence technology will bring to the production of music content, and suggests that works created through collaboration between artificial intelligence and humans can have artistic value as finished products. Anyone can easily produce music content using artificial intelligence composition programs, and it has become an opportunity to inspire artists with various attempts and creative ideas. Although artificial intelligence technology provides convenience in human life and benefits a lot in the efficient aspect of work, it is difficult to escape the perception of data-based pattern music in the art field so far. Pattern music with many quantitative elements is not recognized as a complete creation due to the absence of abstract symbolism or meaning pursued by art. However, it predicts that if qualitative elements such as emotions and creativity are given to artificial intelligence music through human collaboration, it can be recognized as a complete work of art. The development of artificial intelligence technology increases access to culture and art from the public, and it can be expected that anyone can enjoy it as well as aesthetic experiences. In addition, various contents can be produced by improving individual digital literacy, and it is an opportunity to share and communicate with others. As such, artificial intelligence technology serves as a medium connecting the public with culture and art, and is narrowing the gap between humans and technology through art activities. Along with this cultural phenomenon, we predict the possibility of research on the production of artificial intelligence music contents with artistic value and the development of various convergence and complex art contents using artificial intelligence technology in the future.

Music Composition Application with Deep Learning for content creators (1 인 미디어 창작자를 위한 딥러닝 기반 작곡 어플리케이션)

  • Kim, BoGyung;Yun, SoJi;Lee, SeungHee;Lim, YeJin;Yu, KyeonAh;Lim, SungHyun
    • Proceedings of the Korea Information Processing Society Conference
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    • 2021.11a
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    • pp.1148-1151
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    • 2021
  • 1 인 미디어 산업의 성장으로 다양한 콘텐츠 제작의 증가와 함께 영상의 분위기를 좌우하는 BGM 의 수요도 급증하고 있다. 그러나 무료 음원은 한정되어 있으며 이미 많은 영상에 쓰여 시청자에게 흔한 느낌을 준다. 특히 MCN 에 소속되지 않은 콘텐츠 크리에이터들은 개성 있고 영상에 어울리는 음원 확보에 어려움을 겪고 있다. 본 연구는 이러한 콘텐츠 제작 환경을 개선하기 위해 창작자가 직접 녹음하거나 악보를 스캔해 자신만의 음원을 제작할 수 있는 웹 애플리케이션 '플랫'을 제안한다. 본 연구를 통해 콘텐츠 크리에이터들은 독창적이고 풍성한 콘텐츠를 만들 수 있으며, 음악적 숙련도와 관계없이 쉽게 음원을 만들 수 있어 작곡에 대한 접근성이 좋아질 것으로 보인다. 또한, 딥러닝을 활용해 음악을 창작함으로써 인공지능 작곡 분야를 활성화하고 디지털 음악 시장의 새로운 분야를 개척하는 데 이바지할 것으로 기대한다.