食品科学 ›› 2024, Vol. 45 ›› Issue (12): 11-21.doi: 10.7506/spkx1002-6630-20240103-032

• 机器学习专栏 • 上一篇    

机器学习在预测食品风味中的研究进展

蔡尉彤,冯涛,宋诗清,姚凌云,孙敏,王化田,于闯,柳倩   

  1. (上海应用技术大学香料香精化妆品学部,上海 201418)
  • 发布日期:2024-07-10

Research Progress on the Application of Machine Learning in Predicting Food Flavor

CAI Weitong, FENG Tao, SONG Shiqing, YAO Lingyun, SUN Min, WANG Huatian, YU Chuang, LIU Qian   

  1. (School of Perfume and Aroma Technology, Shanghai Institute of Technology, Shanghai 201418, China)
  • Published:2024-07-10

摘要: 食品风味在人们生活中起着重要作用。传统的风味分析检测方法对于预测食品风味的能力有限,近年来已有不少研究者利用机器学习模型对食品风味信息进行有效的处理,建立得到分类和预测模型,使风味预测变得更准确和高效。本文综述了传统和新型机器学习方法的原理,如支持向量机、随机森林、k最近邻和神经网络,及其与风味分析仪器、分子结构分析两种方法相结合并用于食品风味预测的研究进展,为机器学习模型在食品风味分析和预测中的应用提供新思路。通过总结发现机器学习模型可用于预测不同物质成分对风味的影响、识别不同产地的风味特征等,并且将多种机器学习模型结合分析的方法可提高预测的精度和可靠性,推动促进食品风味的深入研究和发展。

关键词: 机器学习;食品风味;预测;风味检测;分子结构

Abstract: Food flavor plays an important role in people’s life. Traditional methods for flavor analysis and detection have limited ability to predict food flavor. In recent years, many researchers have used machine learning models to effectively process food flavor information and establish classification and prediction models, making flavor prediction more accurate and efficient. The principles of traditional and novel machine learning methods, such as support vector machine (SVM), random forest (RF), k-nearest neighbor (k-NN), and neural network, as well as recent progress on their combined application with flavor analysis instruments and molecular structure analysis for food flavor prediction are reviewed, aiming to provide new ideas for the application of machine learning models in food flavor analysis and prediction. It is found that machine learning models can be used to predict the impacts of different substance components on food flavor, identify the flavor characteristics of foods from different regions. The combination of multiple machine learning models can improve the accuracy and reliability of prediction, and promote in-depth research and development of food flavor.

Key words: machine learning; food flavor; prediction; flavor detection; molecular structure

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