Facial Emotion Song Recommender System

Aman Nikhra, Devansh Santuwala, Dev Verma, Anshika Sain, Pawan Kumar Singh
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Abstract

Sometimes, it is very difficult for someone to determine whether a person wants to hear a particular music from the vast array of available choices. So, this paper has proposed a new concept of playing music that is based on the emotion of the user. The primary goal of the music recommendation system which is proposed in this paper is to offer customers recommendations that match their tastes. The most current view of the paper involves manually playing the jukebox, using wearable computers, or classifying based on auditory characteristics. Understanding the user's present emotional or mental state may result from analysing the user's facialexpression and emotions. One area is having a great possibility to provide the audience, with a vast variety of options that are based on their preferences and music and video. In this paper, the primary goal is to show a playlist of songs on any particular music application (YouTube/Spotify) based on each person’s mood. Several images of the user are collected at that precise moment using a camera with the user's consent. To determine a person's mood, these photos go through a thorough testing andtraining process. For this, the deep learning technique called CNN is used to categorize various emotions. After this, based on the trained model, the various emotions are categorized and based on this the music playlist is generated.
面部情感歌曲推荐系统
有时候,从大量的音乐选择中判断一个人是否想听某一种音乐是非常困难的。因此,本文提出了一种基于用户情感的音乐播放新概念。本文提出的音乐推荐系统的主要目标是为顾客提供符合他们口味的音乐推荐。该论文的最新观点包括手动播放点唱机,使用可穿戴电脑,或根据听觉特征进行分类。通过分析用户的面部表情和情绪,可以了解用户当前的情绪或精神状态。一个方面是有很大的可能性为观众提供各种各样的选择,这些选择是基于他们的喜好和音乐和视频。在本文中,主要目标是根据每个人的心情在任何特定的音乐应用程序(YouTube/Spotify)上显示歌曲的播放列表。在用户同意的情况下,使用相机收集用户在那个精确时刻的几张图像。为了判断一个人的情绪,这些照片要经过彻底的测试和训练。为此,一种叫做CNN的深度学习技术被用来对各种情绪进行分类。在此之后,基于训练的模型,各种情绪被分类,并在此基础上生成音乐播放列表。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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