Event-based Text-to-Emotion Engine for Chatting Room Applications
碩士 === 國立暨南國際大學 === 資訊工程學系 === 95 === This thesis proposes an emotion detection engine for real time Internet chatting applications. We adopt a Web-scale text mining approach that automates the categorization of affection state of daily events. We first accumulated a huge collection of real-life ent...
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ndltd-TW-095NCNU03920382016-05-23T04:18:07Z http://ndltd.ncl.edu.tw/handle/26069733226441612611 Event-based Text-to-Emotion Engine for Chatting Room Applications 以事件為基礎之文字情緒偵測引擎應用於即時通訊平台 Ku Yun-Chang 古雲長 碩士 國立暨南國際大學 資訊工程學系 95 This thesis proposes an emotion detection engine for real time Internet chatting applications. We adopt a Web-scale text mining approach that automates the categorization of affection state of daily events. We first accumulated a huge collection of real-life entities from Web that would participate in events with a user in the chatting room. Based on the common actions between each entity and the type of the user in a chatting room session, such as boy, girl, old man and so on, each collected entity was automatically classified into different affective categories such as pleasant, provoking, grievous, and scary. During a chatting session, each sentence is first parsed using semantic roles labeling techniques to retrieve the verb and object of the event embedded in the sentence. Based on a set of manually authored emotion generation rule, the system then assigns the emotion based on the verb and the affective categories of the object. Evaluation results show that the precision rate of the emotion detection engine is rather satisfactory for applications that distinguish emotions of Happiness, Sadness, Anger, and Fear. Jen-Shin Hong 洪政欣 2007 學位論文 ; thesis 53 zh-TW |
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碩士 === 國立暨南國際大學 === 資訊工程學系 === 95 === This thesis proposes an emotion detection engine for real time Internet chatting applications. We adopt a Web-scale text mining approach that automates the categorization of affection state of daily events. We first accumulated a huge collection of real-life entities from Web that would participate in events with a user in the chatting room. Based on the common actions between each entity and the type of the user in a chatting room session, such as boy, girl, old man and so on, each collected entity was automatically classified into different affective categories such as pleasant, provoking, grievous, and scary.
During a chatting session, each sentence is first parsed using semantic roles labeling techniques to retrieve the verb and object of the event embedded in the sentence. Based on a set of manually authored emotion generation rule, the system then assigns the emotion based on the verb and the affective categories of the object. Evaluation results show that the precision rate of the emotion detection engine is rather satisfactory for applications that distinguish emotions of Happiness, Sadness, Anger, and Fear.
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Jen-Shin Hong |
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Jen-Shin Hong Ku Yun-Chang 古雲長 |
author |
Ku Yun-Chang 古雲長 |
spellingShingle |
Ku Yun-Chang 古雲長 Event-based Text-to-Emotion Engine for Chatting Room Applications |
author_sort |
Ku Yun-Chang |
title |
Event-based Text-to-Emotion Engine for Chatting Room Applications |
title_short |
Event-based Text-to-Emotion Engine for Chatting Room Applications |
title_full |
Event-based Text-to-Emotion Engine for Chatting Room Applications |
title_fullStr |
Event-based Text-to-Emotion Engine for Chatting Room Applications |
title_full_unstemmed |
Event-based Text-to-Emotion Engine for Chatting Room Applications |
title_sort |
event-based text-to-emotion engine for chatting room applications |
publishDate |
2007 |
url |
http://ndltd.ncl.edu.tw/handle/26069733226441612611 |
work_keys_str_mv |
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