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Open Toolkit for Painless Object Detection

Home Page: https://youtu.be/UHnNLrD6jTo

License: Apache License 2.0

Dockerfile 0.33% Shell 0.51% Python 20.19% CSS 60.23% JavaScript 18.61% HTML 0.13%
dnn transfer-learning object-detection deep-neural-networks automl fine-tuning deep-neural-network deep-learning object-detection-pipelines object-detection-api

opentpod's Introduction

OpenTPOD

Create deep learning based object detectors without writing a single line of code.

OpenTPOD is an all-in-one open-source tool for nonexperts to create custom deep neural network object detectors. It is designed to lower the barrier of entry and facilitates the end-to-end authoring workflow of custom object detection using state-of-art deep learning methods.

It provides the following features via an easy-to-use web interface.

  • Training data management.
  • Data annotation through seamless integration with OpenCV CVAT Labeling Tool.
  • One-click training/fine-tuning of object detection deep neural networks, including SSD MobileNet, Faster RCNN Inception, and Faster RCNN ResNet, using Tensorflow (with and without GPU).
  • One-click model export for inference with Tensorflow Serving.
  • Extensible architecture for easy addition of new deep neural network architectures.

Demo Video

OpenTPOD Demo Video

Documentation

Citations

Please cite the following thesis if you find OpenTPOD helps your research.

@phdthesis{wang2020scaling,
  title={Scaling Wearable Cognitive Assistance},
  author={Wang, Junjue},
  year={2020},
  school={CMU-CS-20-107, CMU School of Computer Science}
}

Acknowledgement

This research was supported by the National Science Foundation (NSF) under grant number CNS-1518865. Additional support was provided by Intel, Vodafone, Deutsche Telekom, Verizon, Crown Castle, Seagate, VMware, MobiledgeX, InterDigital, and the Conklin Kistler family fund.

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