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These CVPR 2015 papers are the Open Access versions, provided by the Computer Vision Foundation. Except for the watermark, they are identical to the accepted versions; the final published version of the proceedings is available on IEEE Xplore. This material is presented to ensure timely dissemination of scholarly and technical work. Copyright and all rights therein are retained by authors or by ot
Deep Visual-Semantic Alignments for Generating Image Descriptions We present a model that generates natural language descriptions of images and their regions. Our approach leverages datasets of images and their sentence descriptions to learn about the inter-modal correspondences between language and visual data. Our alignment model is based on a novel combination of Convolutional Neural Networks o
Deep Residual Learning MSRA @ ILSVRC & COCO 2015 competitions Kaiming He with Xiangyu Zhang, Shaoqing Ren, Jifeng Dai, & Jian Sun Microsoft Research Asia (MSRA) MSRA @ ILSVRC & COCO 2015 Competitions • 1st places in all five main tracks • ImageNet Classification: “Ultra-deep” (quote Yann) 152-layer nets • ImageNet Detection: 16% better than 2nd • ImageNet Localization: 27% better than 2nd • COCO D
本コーナーは、インプレスR&D[Next Publishing]発行の書籍『TensorFlowはじめました ― 実践!最新Googleマシンラーニング』の中から、特にBuild Insiderの読者に有用だと考えられる項目を編集部が選び、同社の許可を得て転載したものです。 『TensorFlowはじめました ― 実践!最新Googleマシンラーニング』(Kindle電子書籍もしくはオンデマンドペーパーバック)の詳細や購入はAmazon.co.jpのページをご覧ください。書籍全体の目次は連載INDEXページに掲載しています。プログラムのダウンロードは、「TensorFlowはじめました」のサポート用フォームから行えます。
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