Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition

[Objective] Traditional rail transit network service hotline mainly relies on manual customer service answering calls, manually filling out work orders and handling classifications. Passenger service staff undertake high-intensity and overloaded service work, while the service quality is difficult t...

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Main Author: MAO Xiaolei
Format: Article
Language:zho
Published: Urban Mass Transit Magazine Press 2025-05-01
Series:Chengshi guidao jiaotong yanjiu
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Online Access:https://umt1998.tongji.edu.cn/journal/paper/doi/10.16037/j.1007-869x.2025.05.033.html
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author MAO Xiaolei
author_facet MAO Xiaolei
author_sort MAO Xiaolei
collection DOAJ
description [Objective] Traditional rail transit network service hotline mainly relies on manual customer service answering calls, manually filling out work orders and handling classifications. Passenger service staff undertake high-intensity and overloaded service work, while the service quality is difficult to be guaranteed. Therefore, it is necessary to introduce semantic recognition technology based on deep learning to achieve digitalized and intelligent operation management. [Method] The systematic requirements for the business classification of current service hotline and the intelligent classification of the work order are analyzed. The word- segmentation logic of semantic analysis is used and the recognition accuracy is improved by establishing a keyword library. Using such library as a domain dictionary, an intelligent text classification model based on distributed text vector representation and integrating the Transformer self-attention mechanism is constructed. In the proposed intelligent text classification model, the attention focus is more concentrated on the words strongly relevant to the classification task, thus reducing the interference of irrelevant words in the context on the classification results, and texts with different semantics in different contexts can also be dynamically displayed to achieve the classification of passengers′ intentions. On this basis, an intelligent classification system for hotline work order records is built. [Result & Conclusion] The experimental results on the real datasets show that the proposed intelligent text classification model has certain effectiveness and correctness. By adopting a highly modular software system design, the automatic classification of work orders is realized, which can effectively improve the work order response speed and reduce the costs of human and material resources. The proposed intelligent text classification model can improve the overall operation service quality and passenger satisfaction.
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spelling doaj-art-fd18a093de2b4f36a9bcc9b192c2eeaa2025-08-20T02:56:08ZzhoUrban Mass Transit Magazine PressChengshi guidao jiaotong yanjiu1007-869X2025-05-0128519319810.16037/j.1007-869x.2025.05.033Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic RecognitionMAO Xiaolei0Operation Management Department of Shanghai Shentong Metro Group Co, Ltd, 201103, Shanghai, China[Objective] Traditional rail transit network service hotline mainly relies on manual customer service answering calls, manually filling out work orders and handling classifications. Passenger service staff undertake high-intensity and overloaded service work, while the service quality is difficult to be guaranteed. Therefore, it is necessary to introduce semantic recognition technology based on deep learning to achieve digitalized and intelligent operation management. [Method] The systematic requirements for the business classification of current service hotline and the intelligent classification of the work order are analyzed. The word- segmentation logic of semantic analysis is used and the recognition accuracy is improved by establishing a keyword library. Using such library as a domain dictionary, an intelligent text classification model based on distributed text vector representation and integrating the Transformer self-attention mechanism is constructed. In the proposed intelligent text classification model, the attention focus is more concentrated on the words strongly relevant to the classification task, thus reducing the interference of irrelevant words in the context on the classification results, and texts with different semantics in different contexts can also be dynamically displayed to achieve the classification of passengers′ intentions. On this basis, an intelligent classification system for hotline work order records is built. [Result & Conclusion] The experimental results on the real datasets show that the proposed intelligent text classification model has certain effectiveness and correctness. By adopting a highly modular software system design, the automatic classification of work orders is realized, which can effectively improve the work order response speed and reduce the costs of human and material resources. The proposed intelligent text classification model can improve the overall operation service quality and passenger satisfaction.https://umt1998.tongji.edu.cn/journal/paper/doi/10.16037/j.1007-869x.2025.05.033.htmlrail transitsemantic recognitionservice hotlineintelligent classification
spellingShingle MAO Xiaolei
Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition
Chengshi guidao jiaotong yanjiu
rail transit
semantic recognition
service hotline
intelligent classification
title Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition
title_full Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition
title_fullStr Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition
title_full_unstemmed Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition
title_short Research on Intelligent Classification of Service Hotline Work Orders Based on Semantic Recognition
title_sort research on intelligent classification of service hotline work orders based on semantic recognition
topic rail transit
semantic recognition
service hotline
intelligent classification
url https://umt1998.tongji.edu.cn/journal/paper/doi/10.16037/j.1007-869x.2025.05.033.html
work_keys_str_mv AT maoxiaolei researchonintelligentclassificationofservicehotlineworkordersbasedonsemanticrecognition