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Frameworks for configuring multi-branch training pipelines that process labeled and unlabeled data simultaneously.
Distinguishing note: Focuses on the architectural configuration of multi-branch training flows rather than general model training.
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This project is a modular research toolkit designed for developing, training, and evaluating deep learning models for object detection, segmentation, and video instance tracking. It provides a flexible training engine that manages complex neural network execution, including distributed training, custom lifecycle hooks, and weight optimization. The framework is built around a hierarchical configuration system that allows users to define architectures, data pipelines, and training hyperparameters through composable, inheritable files. The project distinguishes itself through its highly modular
Training detection models by combining labeled and unlabeled data through multi-branch pipelines and teacher-student weight synchronization strategies.