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ImageNet16: Small scale ImageNet Classification

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https://zenodo.org/record/8027519
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This is a subset of ImageNet called "ImageNet16" more suited for cases with limited computational budget and faster experimentation.  Each class has 400 train images and 100 test images. * Credit also goes to original creators that constructed the dataset. Unfortunately, I was not able to relocated it online so I reupload it here.   If used in your work please cite as follows: C. Kyrkou, "Toward Efficient Convolutional Neural Networks With Structured Ternary Patterns," in IEEE Transactions on Neural Networks and Learning Systems, doi: 10.1109/TNNLS.2024.3380827.   The classes corresponding to imagenet1K: • n02009912 American_egret • n02113624 toy_poodle •  n02123597 Siamese_cat • n02132136 brown_bear • n02504458 African_elephant • n02690373 airliner • n02835271 bicycle-built-for-two • n02951358 canoe • n03041632 cleaver • n03085013 computer_keyboard • n03196217 digital_clock • n03977966 police_van • n04099969 rocking_chair • n04111531 rotisserie • n04285008 sports_car • n04591713 wine_bottle   From original map.txt knife =    n03041632 keyboard = n03085013 elephant = n02504458 bicycle =  n02835271 airplane = n02690373 clock =    n03196217 oven =     n04111531 chair =    n04099969 bear =     n02132136 boat =     n02951358 cat =      n02123597 bottle =   n04591713 truck =    n03977966 car =      n04285008 bird =     n02009912 dog =      n02113624   Folder Structure -   --       --- .JPEG       --- .JPEG       --- ....   --   --...   -   --       --- .JPEG       --- .JPEG       --- ....   --   --...   Some preliminary results: Model Name Accuracy (Top-1) VGG16 85.3 ResNet50 88.2 MobileNetV2 91.0 EfficientNet B0 85.6   Massive Credit to original ImageNet authors[1] Olga Russakovsky, Jia Deng, Hao Su, Jonathan Krause, Sanjeev Satheesh, Sean Ma, Zhiheng Huang, Andrej Karpathy, Aditya Khosla, Michael Bernstein, Alexander C. Berg and Li Fei-Fei.ImageNet Large Scale Visual Recognition Challenge. IJCV, 2015
创建时间:
2024-07-23
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