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Automatic Photo to Ideophone Manga Matching

David A. Shamma Tony Dunnigan Lyndon Kennedy

刊行年
2020-06-11
収録
『arXiv (Cornell University)』
出版
Cornell University
言語
英語
OpenAlex
W3035168693
DOI
10.48550/arxiv.2006.06165
MAG
3035168693
ISSN
2331-8422
URL
https://arxiv.org/pdf/2006.06165

要旨

Photo applications offer tools for annotation via text and stickers. Ideophones, mimetic and onomatopoeic words, which are common in graphic novels, have yet to be explored for photo annotation use. We present a method for automatic ideophone recommendation and positioning of the text on photos. These annotations are accomplished by obtaining a list of ideophones with English definitions and applying a suite of visual object detectors to the image. Next, a semantic embedding maps the visual objects to the possible relevant ideophones. Our system stands in contrast to traditional computer vision-based annotation systems, which stop at recommending object and scene-level annotation, by providing annotations that are communicative, fun, and engaging. We test these annotations in Japanese and find they carry a strong preference and increase enjoyment and sharing likelihood when compared to unannotated and object-based annotated photos.

主題

この書誌の出所

  • openalex— W3035168693(2026-08-14取得)

引用

David A. Shamma・Tony Dunnigan・Lyndon Kennedy(2020-06-11) Automatic Photo to Ideophone Manga Matching 『arXiv (Cornell University)』 Cornell University

Shamma2020AutomaticPhotoIdeophone
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