Regnet Y 004
RegNet is a vision classification model trained on ImageNet-1k, featuring an efficient network structure designed through Neural Architecture Search (NAS)
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Release Time : 3/18/2022
Model Overview
This model was proposed in the paper 'Designing Network Design Spaces' and adopts a progressively constrained search space method to optimize network architecture, suitable for image classification tasks
Model Features
Neural Architecture Search Design
Automatically optimizes network structure through systematic search space constraints
Efficient Image Classification
Demonstrates excellent classification performance on the ImageNet-1k dataset
Scalable Architecture
Model architecture can be adjusted in parameter scale as needed
Model Capabilities
Image Classification
Visual Feature Extraction
Use Cases
General Image Recognition
Animal Recognition
Identify animal species in images
Successfully identified a tiger image in the example
Everyday Object Recognition
Identify household items and daily objects
Successfully identified a teapot image in the example
Scene Recognition
Identify building and scene types
Successfully identified a palace image in the example
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