Improved Hashtag Recommendation Algorithm Determining Appropriate Hashtags for Words with Different Meanings
In image-posting social networking services, such as Instagram, recommendation of appropriate hashtags for posts is vital. In the existing methods, a hashtag is searched using the names of object labels included in images added to posts as hashtags, and a relevance prediction model is applied to has...
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| Published in | The review of socionetwork strategies Vol. 19; no. 1; pp. 1 - 17 |
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| Main Authors | , |
| Format | Journal Article |
| Language | English |
| Published |
Singapore
Springer Nature Singapore
01.04.2025
Springer Nature B.V |
| Subjects | |
| Online Access | Get full text |
| ISSN | 2523-3173 1867-3236 |
| DOI | 10.1007/s12626-024-00173-3 |
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| Abstract | In image-posting social networking services, such as Instagram, recommendation of appropriate hashtags for posts is vital. In the existing methods, a hashtag is searched using the names of object labels included in images added to posts as hashtags, and a relevance prediction model is applied to hashtags that appear most frequently among those attached to posts obtained from the search. Hashtags that are considered highly relevant to the post are then recommended to the user. However, it is difficult to recommend adequate hashtags relevant to a post containing a label that refers to different objects, such as “mouse,” which can refer to a “computer input device” and an “animal.” In this study, we developed algorithms (Algorithms 1 and 2) that employ additional labels related to object labels in posts to solve this problem. As additional labels, Algorithm 1 uses the other labels in the same object category in the Microsoft Common Objects in Context (COCO) image database, and Algorithm 2 uses words translated into six other languages. We also developed Algorithm 3, which is a hybrid of Algorithms 1 and 2. Based on user questionnaires, the hashtags suggested by Algorithms 1 and 2 are highly relevant to the posts: compared to an existing algorithm, the relevance of the hashtags improved by 18% and 64%, respectively. |
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| AbstractList | In image-posting social networking services, such as Instagram, recommendation of appropriate hashtags for posts is vital. In the existing methods, a hashtag is searched using the names of object labels included in images added to posts as hashtags, and a relevance prediction model is applied to hashtags that appear most frequently among those attached to posts obtained from the search. Hashtags that are considered highly relevant to the post are then recommended to the user. However, it is difficult to recommend adequate hashtags relevant to a post containing a label that refers to different objects, such as “mouse,” which can refer to a “computer input device” and an “animal.” In this study, we developed algorithms (Algorithms 1 and 2) that employ additional labels related to object labels in posts to solve this problem. As additional labels, Algorithm 1 uses the other labels in the same object category in the Microsoft Common Objects in Context (COCO) image database, and Algorithm 2 uses words translated into six other languages. We also developed Algorithm 3, which is a hybrid of Algorithms 1 and 2. Based on user questionnaires, the hashtags suggested by Algorithms 1 and 2 are highly relevant to the posts: compared to an existing algorithm, the relevance of the hashtags improved by 18% and 64%, respectively. |
| Author | Kamino, Etsutaro Kita, Eisuke |
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| Cites_doi | 10.1145/2487788.2488002 10.1007/978-3-642-35386-4_25 10.1016/j.tele.2019.101275 10.1609/icwsm.v12i1.15019 10.1109/CVPR.2016.91 10.1007/s12626-022-00126-8 10.1007/978-3-319-10602-1_48 |
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| Keywords | Hashtag Social network service (SNS) Different meaning Co-occurrence Recommendation Common objects in context |
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| References | S Fedushko (173_CR3) 2019; 2 173_CR7 173_CR8 173_CR5 E Kamino (173_CR10) 2022; 16 173_CR13 173_CR6 173_CR12 173_CR4 173_CR14 173_CR1 E Elke (173_CR11) 2019; 44 C Chung-Wen (173_CR2) 2012; 15 173_CR9 |
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| Snippet | In image-posting social networking services, such as Instagram, recommendation of appropriate hashtags for posts is vital. In the existing methods, a hashtag... |
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| SubjectTerms | Algorithms Business and Management Datasets Information Systems Applications (incl.Internet) Input devices IT in Business Labels Prediction models Predictions Questionnaires Ratings & rankings Simulation and Modeling Tagging Tags User satisfaction Variables Words (language) |
| Title | Improved Hashtag Recommendation Algorithm Determining Appropriate Hashtags for Words with Different Meanings |
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