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structure_knowledge_distillation
The official code for the paper 'Structured Knowledge Distillation for Semantic Segmentation'. (CVPR 2019 ORAL) and extension to other tasks.CoupleGenerator
Generate your lover with your photoETC-Real-time-Per-frame-Semantic-video-segmentation
Enforcing temporal consistency in real-time per-frame semantic video segmentationTorchDistiller
Auto_painter
Recently, realistic image generation using deep neural networks has become a hot topic in machine learning and computer vision. Such an image can be generated at pixel level by learning from a large collection of images. Learning to generate colorful cartoon images from black-and-white sketches is not only an interesting research problem, but also a useful application in digital entertainment. In this paper, we investigate the sketch-to-image synthesis problem by using conditional generative adversarial networks (cGAN). We propose a model called auto-painter which can automatically generate compatible colors given a sketch. Wasserstein distance is used in training cGAN to overcome model collapse and enable the model converged much better. The new model is not only capable of painting hand-draw sketch with compatible colors, but also allowing users to indicate preferred colors. Experimental results on different sketch datasets show that the auto-painter performs better than other existing image-to-image methods.EMM-for-stock-prediction
We propose a model to analyze sentiment of online stock forum and use the information to predict stock volatility in the Chinese market. By generating a sentimental dictionary, we analyze the sentimental tendencies of each post as sentiment indicators. Such sentimental information will be fused with market data for prediction based on Recurrent Neural Networks (RNNs). We manually labeled the sentiment of forum post and make the data public available for research. Empirical evidence shows that 8 of the 10 stocks perform better with sentimental indicators.Auto_painter_demo
The code of building a web demo for Auto_painterSSIW
The code of 'The devil is in the labels: Semantic segmentation from sentences'.inceptionV2_finetune
Fine-tuning of inceptionV2 on CUB-200 Birds dataset in Tensorflowstock_predict
This project predicts stock trends on the basis of online user comments and LSTMcolorization
reading notehorseSeg
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