Photo-Realistic Single Image Super-Resolution Using a Generative Adversarial Network
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Updated
Jul 27, 2022 - Python
Photo-Realistic Single Image Super-Resolution Using a Generative Adversarial Network
Classification models trained on ImageNet. Keras.
An Implementation of Fully Convolutional Networks in Tensorflow.
High level network definitions with pre-trained weights in TensorFlow
Books, Presentations, Workshops, Notebook Labs, and Model Zoo for Software Engineers and Data Scientists wanting to learn the TF.Keras Machine Learning framework
Tutorials on how to implement a few key architectures for image classification using PyTorch and TorchVision.
food image to recipe with deep convolutional neural networks.
Computer vision based ML training data generation tool
This is a code repository for pytorch c++ (or libtorch) tutorial.
仅使用numpy从头开始实现神经网络,包括反向传播公式推导过程; numpy构建全连接层、卷积层、池化层、Flatten层;以及图像分类案例及精调网络案例等,持续更新中... ...
ImageNet pre-trained models with batch normalization for the Caffe framework
天池医疗AI大赛[第一季]:肺部结节智能诊断 UNet/VGG/Inception/ResNet/DenseNet
This implements training of popular model architectures, such as AlexNet, ResNet and VGG on the ImageNet dataset(Now we supported alexnet, vgg, resnet, squeezenet, densenet)
Implement of Openpose use Tensorflow
Artificial Intelligence Learning Notes.
AI场景分类竞赛
An easy implement of VGG19 with tensorflow, which has a detailed explanation.
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