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Enhancing Telemarketing Success Using Ensemble-Based Online Machine Learning
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作者 Shahriar Kaisar Md Mamunur Rashid +3 位作者 Abdullahi Chowdhury Sakib Shahriar Shafin Joarder Kamruzzaman Abebe Diro 《Big Data Mining and Analytics》 EI CSCD 2024年第2期294-314,共21页
Telemarketing is a well-established marketing approach to offering products and services to prospective customers.The effectiveness of such an approach,however,is highly dependent on the selection of the appropriate c... Telemarketing is a well-established marketing approach to offering products and services to prospective customers.The effectiveness of such an approach,however,is highly dependent on the selection of the appropriate consumer base,as reaching uninterested customers will induce annoyance and consume costly enterprise resources in vain while missing interested ones.The introduction of business intelligence and machine learning models can positively influence the decision-making process by predicting the potential customer base,and the existing literature in this direction shows promising results.However,the selection of influential features and the construction of effective learning models for improved performance remain a challenge.Furthermore,from the modelling perspective,the class imbalance nature of the training data,where samples with unsuccessful outcomes highly outnumber successful ones,further compounds the problem by creating biased and inaccurate models.Additionally,customer preferences are likely to change over time due to various reasons,and/or a fresh group of customers may be targeted for a new product or service,necessitating model retraining which is not addressed at all in existing works.A major challenge in model retraining is maintaining a balance between stability(retaining older knowledge)and plasticity(being receptive to new information).To address the above issues,this paper proposes an ensemble machine learning model with feature selection and oversampling techniques to identify potential customers more accurately.A novel online learning method is proposed for model retraining when new samples are available over time.This newly introduced method equips the proposed approach to deal with dynamic data,leading to improved readiness of the proposed model for practical adoption,and is a highly useful addition to the literature.Extensive experiments with real-world data show that the proposed approach achieves excellent results in all cases(e.g.,98.6%accuracy in classifying customers)and outperforms recent competing models in the literature by a considerable margin of 3%on a widely used dataset. 展开更多
关键词 machine learning online learning OVERSAMPLING telemarketing imbalanced dataset ensemble model
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电话营销课程教学模式研究 被引量:2
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作者 徐秋霓 《职业技术》 2010年第3期26-27,共2页
作为市场营销的新形式,电话营销正以其高效率、低成本的优势,被越来越多的公司所采用。在职业学院、技工学校这门新兴的学科也日益受到重视。本文就电话营销教学过程中建立电话营销实训室,利用企业资源,实现现场教学目标等方法进行了研... 作为市场营销的新形式,电话营销正以其高效率、低成本的优势,被越来越多的公司所采用。在职业学院、技工学校这门新兴的学科也日益受到重视。本文就电话营销教学过程中建立电话营销实训室,利用企业资源,实现现场教学目标等方法进行了研究和探讨,提出了教学的一些新思路。 展开更多
关键词 电话营销(telemarketing) 校企合作(School and ENTERPRISE cooperation) 项目教学(Project teaching)
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