This is the official repository for our recent work: PIDNet
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Updated
Dec 18, 2025 - Python
This is the official repository for our recent work: PIDNet
A pytorch-based real-time segmentation model for autonomous driving
Tensorflow 2 implementation of complete pipeline for multiclass image semantic segmentation using UNet, SegNet and FCN32 architectures on Cambridge-driving Labeled Video Database (CamVid) dataset.
Semantic Segmentation using Tensorflow on popular Datasets like Ade20k, Camvid, Coco, PascalVoc
Репозиторий для обучения нейросетевых моделей по семантической сегментации + пример использования моделей на практике
Applying the 100 Layer Tiramisu on the Camvid Dataset
Official Repository for BEVANet: Bilateral Efficient Visual Attention Network for Real-time Semantic Segmentation (ICIP 2025 Spotlight Oral)
Deep learning semantic segmentation on the Camvid dataset using PyTorch FCN ResNet50 neural network.
This is the DL repository for Semantic Segmentation using U-Net model in pytorch library.
Pytorch Implementation of ENet: A Deep Neural Network Architecture for Real-Time Semantic Segmentation (https://arxiv.org/abs/1606.02147)
Semantic segmentation on CamVid dataset using the U-Net.
A survey of Real time Semantic Segmentation for autonomous driving
This repository contains the official implementation of P2AT, a novel architecture designed for real-time semantic segmentation. P2AT achieves trade-off between accuracy and speed, establishing state-of-the-art results on Cityscapes and CamVid (pretrained on Cityscapes) without relying on inference acceleration techniques.
Adapted representation of synthetic data to real world data.
This project was developed as a part of the presentation that I gave on the Programming 2.0 webinar: Autonomous driving.
Image Segmentation by Iterative Inference from Conditional Score Estimation
This is a project on semantic image segmentation using CamVid dataset, implemented through the FastAI framework.
🩺 Enable real-time segmentation of multimodal biomedical images with the light-weight CFPNet-M network for improved medical analysis and diagnostics.
These projects were developed as part of advanced coursework in Neural Networks and Deep Learning, focusing on cutting-edge architectures and their practical implementation for computer vision tasks.
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