Collaborative Knowledge Distillation via a Learning-by-Education Node Community
Anestis Kaimakamidis, Ioannis Mademlis, Ioannis Pitas

TL;DR
The paper introduces LENC, a collaborative framework enabling diverse DNN nodes to share knowledge dynamically, improving continual learning and accuracy in image classification without task boundary information.
Contribution
It proposes a novel Learning-by-Education Node Community framework for collaborative knowledge distillation that handles diverse data, prevents forgetting, and supports multitask continual learning.
Findings
LENC improves average test accuracy in image classification tasks.
Achieves state-of-the-art performance in online unlabelled CKD.
Enhances DNN collaboration and knowledge transfer efficiency.
Abstract
A novel Learning-by-Education Node Community framework (LENC) for Collaborative Knowledge Distillation (CKD) is presented, which facilitates continual collective learning through effective knowledge exchanges among diverse deployed Deep Neural Network (DNN) peer nodes. These DNNs dynamically and autonomously adopt either the role of a student, seeking knowledge, or that of a teacher, imparting knowledge, fostering a collaborative learning environment. The proposed framework enables efficient knowledge transfer among participating DNN nodes as needed, while enhancing their learning capabilities and promoting their collaboration. LENC addresses the challenges of handling diverse training data distributions and the limitations of individual DNN node learning abilities. It ensures the exploitation of the best available teacher knowledge upon learning a new task and protects the DNN nodes…
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Taxonomy
TopicsInnovative Teaching and Learning Methods · Open Education and E-Learning
