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  • 标题:DCTによる次元圧縮と事例選択を用いたビデオ超解像アルゴリズムの高速化
  • 本地全文:下载
  • 作者:渡邊 清高 ; 岩井 儀雄 ; 羽下 哲司
  • 期刊名称:映像情報メディア学会誌
  • 印刷版ISSN:1342-6907
  • 电子版ISSN:1881-6908
  • 出版年度:2008
  • 卷号:62
  • 期号:11
  • 页码:1768-1776
  • DOI:10.3169/itej.62.1768
  • 出版社:The Institute of Image Information and Television Engineers
  • 摘要:In learning-based super-resolution algorithms, there are two major problems. One is that they require a large amount of memory to store examples; the other is the high computational cost of finding the nearest neighbors in the database. We have developed a novel learning-based video super-resolution algorithm with less memory requirements and computational cost. To this end, we adopted discrete cosine transform coefficients for feature vector components. Moreover, we designed an example selection procedure to construct a compact database. We conducted evaluative experiments using MPEG test sequences and real images to synthesize a high-resolution video. Experimental results show that our method improves the effectiveness of super-resolution algorithms, while preserving the quality of synthesized images.
  • 关键词:超解像;動画像;次元圧縮;事例選択;離散コサイン変換;複合センサカメラ
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