ملخص
We propose a novel approach to template based face recognition. Our dual goal is to both increase recognition accuracy and reduce the computational and storage costs of template matching. To do this, we leverage on an approach which was proven effective in many other domains, but, to our knowledge, never fully explored for face images: average pooling of face photos. We show how (and why!) the space of a template's images can be partitioned and then pooled based on image quality and head pose and the effect this has on accuracy and template size. We perform extensive tests on the IJB-A and Janus CS2 template based face identification and verification benchmarks. These show that not only does our approach outperform published state of the art despite requiring far fewer cross template comparisons, but also, surprisingly, that image pooling performs on par with deep feature pooling.
اللغة الأصلية | الإنجليزيّة |
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عنوان منشور المضيف | Proceedings - 29th IEEE Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2016 |
ناشر | IEEE Computer Society |
الصفحات | 127-135 |
عدد الصفحات | 9 |
رقم المعيار الدولي للكتب (الإلكتروني) | 9781467388504 |
المعرِّفات الرقمية للأشياء | |
حالة النشر | نُشِر - 16 ديسمبر 2016 |
الحدث | 29th IEEE Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2016 - Las Vegas, الولايات المتّحدة المدة: ٢٦ يونيو ٢٠١٦ → ١ يوليو ٢٠١٦ |
سلسلة المنشورات
الاسم | IEEE Computer Society Conference on Computer Vision and Pattern Recognition Workshops |
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رقم المعيار الدولي للدوريات (المطبوع) | 2160-7508 |
رقم المعيار الدولي للدوريات (الإلكتروني) | 2160-7516 |
!!Conference
!!Conference | 29th IEEE Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2016 |
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الدولة/الإقليم | الولايات المتّحدة |
المدينة | Las Vegas |
المدة | ٢٦/٠٦/١٦ → ١/٠٧/١٦ |
ملاحظة ببليوغرافية
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