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ResNeXt×EfficientNet×
ГалузьГлибоке навчанняГлибоке навчання
РодинаMachine learningMachine learning
Рік появи20172019
Автор методуXie, S.; Girshick, R.; Dollár, P.; Tu, Z.; He, K.Tan, M. & Le, Q. V.
ТипConvolutional neural network with grouped/cardinality-based residual blocksCompound-scaled convolutional neural network architecture
Основоположне джерелоXie, S., Girshick, R., Dollár, P., Tu, Z., & He, K. (2017). Aggregated Residual Transformations for Deep Neural Networks. Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 5987–5995. DOI ↗Tan, M. & Le, Q. V. (2019). EfficientNet: Rethinking Model Scaling for Convolutional Neural Networks. Proceedings of the 36th International Conference on Machine Learning (ICML 2019), PMLR 97, 6105–6114. link ↗
Інші назвиResNeXt, Aggregated Residual Transformations, grouped convolution residual network, cardinality-based ResNetEfficientNet, compound scaling CNN, EfficientNet-B0 through B7, EfficientNetV2
Пов'язані44
ПідсумокResNeXt is a deep convolutional neural network architecture introduced by Xie, Girshick, Dollár, Tu, and He at CVPR 2017. It extends the residual network (ResNet) design by introducing a new architectural dimension called cardinality — the number of independent, parallel transformation paths within each residual block — enabling higher accuracy with fewer parameters and a simpler, more uniform design than its predecessors.EfficientNet is a family of convolutional neural network architectures introduced by Mingxing Tan and Quoc V. Le (Google Brain) at ICML 2019 that systematically co-scales network depth, width, and input resolution using a single compound coefficient, achieving state-of-the-art image classification accuracy with substantially fewer parameters and FLOPs than prior networks such as ResNet and Inception.
ScholarGateНабір даних
  1. v1
  2. 3 Джерела
  3. PUBLISHED
  1. v1
  2. 2 Джерела
  3. PUBLISHED

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ScholarGateПорівняння методів: ResNeXt · EfficientNet. Отримано 2026-06-15 з https://scholargate.app/uk/compare