State-of-the-Art Deep Learning Models in TensorFlow Modern Machine Learning in the Google Colab Ecosystem
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Updated
Jan 24, 2023 - Jupyter Notebook
State-of-the-Art Deep Learning Models in TensorFlow Modern Machine Learning in the Google Colab Ecosystem
Official implementation of DoubleU-Net: A Deep Convolutional Neural Network for Medical Image Segmentation (pytorch implementation)
Classification and segmentation 4 VietNamese foods in using Pytorch
Unveiling the secrets of an ancient library buried by Mount Vesuvius, this Kaggle competition, supported by the Vesuvius Challenge organization, tasked participants with detecting ink from 3D X-ray scans of charred scrolls preserved in a Roman villa in Herculaneum.
Image segmentation task with KiTS19 challenge data using U-net
Semantic segmentation is a type of computer vision technique that assigns a label to every pixel in an image. The label indicates the class of object that the pixel represents. Semantic segmentation is used in tasks such as self-driving cars, where it is important to know not only the boundaries of objects, but also what those objects are.
🏁 ELICE 1st Team Project
road and traffic segmentation with IoU metric and DICE coffecient
An attention-based solution on long-tail 3D point cloud semantic segmentation tasks.
Deep learning based semantic segmentation Using the FCN.
🏁 ELICE 1st Team Project
Repository for semantic segmentation of aerial imagery using U-Net, featuring training scripts, data preprocessing, and model evaluation.
This is a warehouse for DeepLabV3-Xception-pytorch-model, can be used to train your segmentation datasets
[Project&Competition] 2023 장애인 해커톤 대회 - 시각장애인을 위한 보행 방향 및 길 안내 서비스 제안
pre trained deeplabV3 with different backbones
NYU Deep Learning 2023 project for semantic segmentation in video sequences using dual-phase learning with U-Net and ConvLSTM, focusing on predicting segmentation masks from synthetic 3D shape videos.
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