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In this tutorial, you will learn to use image super resolution. This lesson is part of a 3-part series on Super Resolution: OpenCV Super Resolution with Deep Learning Image Super Resolution (this tutorial) Pixel Shuffle Super Resolution with TensorFlow, Kera
Стартовая статья по серии примеров работы с Django Rest Framework. В данной статье показан пример настройки получения токена аутентификации, настройка swagger документации, а также имеется пример кода на QML/Felgo для получения токена в мобильном приложении.
Использование функционала auto populate field на примере простого MarkdownField для генерирования html контента в обычный TextField при сохранении объекта в Django Framework
In this tutorial, you will learn the concept behind Fully Convolutional Networks (FCNs) for segmentation. In addition, we will see how we can use Torch Hub to import a pre-trained FCN model and use it in our projects to get… The post Torch Hub Series #6: Image Segmentation appeared first on PyImageSearch.
In this tutorial, you will learn the architectural details of Progressive GAN, which enable it to generate high-resolution images. In addition, we will see how we can use Torch Hub to import a pre-trained PGAN model and use it in our projects to generate high-quality images.
In the previous tutorial, we learned the essence behind Torch Hub and its conception. Then, we published our model using the intricacies of Torch Hub and accessed it through the same. But, what happens when our work requires us to… The post Torch Hub Series #2: VGG and ResNet appeared first on PyImageSearch.
In this tutorial, you will learn the basics of PyTorch’s Torch Hub.
In this tutorial, you will learn how to train a custom object detector from scratch using PyTorch. This lesson is part 2 of a 3-part series on advanced PyTorch techniques: Training a DCGAN in PyTorch (last week’s tutorial)
А теперь о том, что происходило в последнее время на других ресурсах.