An awesome semantic segmentation model that runs in real time
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Updated
Mar 7, 2020 - Jupyter Notebook
An awesome semantic segmentation model that runs in real time
K-CAI NEURAL API - Keras based neural network API that will allow you to create parameter-efficient, memory-efficient, flops-efficient multipath models with new layer types. There are plenty of examples and documentation.
A Virtual Assistant for Windows PC with wicked Qt Graphics.
Keras callback function for stochastic weight averaging
My experimentation around action recognition in videos. Contains Keras implementation for C3D network based on original paper "Learning Spatiotemporal Features with 3D Convolutional Networks", Tran et al. and it includes video processing pipelines coded using mPyPl package. Model is being benchmarked on popular UCF101 dataset and achieves result…
Keras implementation of EDVR: Video Restoration with Enhanced Deformable Convolutional Networks
An implementation of DropConnect Layer in Keras
Text Variational Autoencoder inspired by the paper 'Generating Sentences from a Continuous Space' Bowman et al. https://arxiv.org/abs/1511.06349
Keras深度学习框架配置+Keras教程+Keras Trick
tensorflow2.x implementations of Generative Adversarial Networks.
A simple Keras implementation of ARC-II model proposed by paper "Convolutional Neural Network Architectures for Matching Natural Language Sentences"
Examples and tutorials to the steppy library
An IPython notebook explaining the concepts of Variational Autoencoders and building one using Keras to generate new faces.
Find the origin of words in every language using a Deep Neural Network trained to create an etymological map.
Open solution to the Cdiscount’s Image Classification Challenge
ConvNet (CNN) implementation to classify x-ray medical images
Implementation of Spatial Pyramid Pooling (SPP-net) in Keras for object classification and detection
Permutation learning Sinkhorn layer implementation in keras
Exploring the discriminating power of different loss functions for classification
Recognising Displaced People from Images by Exploiting Dominance Level - CVPR '19 Workshop on Computer Vision for Global Challenges (CV4GC)
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