We write your reusable computer vision tools. 💜
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Updated
Dec 23, 2024 - Python
We write your reusable computer vision tools. 💜
Most popular metrics used to evaluate object detection algorithms.
Free to use online tool for labelling photos. https://makesense.ai
mean Average Precision - This code evaluates the performance of your neural net for object recognition.
Pretrained DeepLabv3 and DeepLabv3+ for Pascal VOC & Cityscapes
CVNets: A library for training computer vision networks
Implementation EfficientDet: Scalable and Efficient Object Detection in PyTorch
A coding-free framework built on PyTorch for reproducible deep learning studies. 🏆25 knowledge distillation methods presented at CVPR, ICLR, ECCV, NeurIPS, ICCV, etc are implemented so far. 🎁 Trained models, training logs and configurations are available for ensuring the reproducibiliy and benchmark.
DeepLab-ResNet rebuilt in TensorFlow
Object Detection Metrics. 14 object detection metrics: mean Average Precision (mAP), Average Recall (AR), Spatio-Temporal Tube Average Precision (STT-AP). This project supports different bounding box formats as in COCO, PASCAL, Imagenet, etc.
To speedup and simplify image labeling/ annotation process with multiple supported formats.
Label images and video for Computer Vision applications
PytorchAutoDrive: Segmentation models (ERFNet, ENet, DeepLab, FCN...) and Lane detection models (SCNN, RESA, LSTR, LaneATT, BézierLaneNet...) based on PyTorch with fast training, visualization, benchmarking & deployment help
DeepLabv3+ built in TensorFlow
Real-time object detection on Android using the YOLO network with TensorFlow
DeepLab resnet v2 model in pytorch
Dataset Management Framework, a Python library and a CLI tool to build, analyze and manage Computer Vision datasets.
[CVPR'22 & IJCV'24] Semi-Supervised Semantic Segmentation Using Unreliable Pseudo-Labels & Using Unreliable Pseudo-Labels for Label-Efficient Semantic Segmentation
This repository contains the source code of our work on designing efficient CNNs for computer vision
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