DeepStreamCE: A Streaming Approach to Concept Evolution Detection in Deep Neural Networks
Lorraine Chambers, Mohamed Medhat Gaber, Zahraa S. Abdallah

TL;DR
DeepStreamCE is a real-time streaming method that detects the emergence of new classes in deep neural network streams, enhancing safety in decision-critical applications by identifying concept evolution effectively.
Contribution
It introduces a novel streaming approach combining neuron activation reduction and clustering for real-time concept evolution detection in deep neural networks.
Findings
DeepStreamCE outperforms OpenMax in detecting concept evolution.
The method effectively identifies new classes in streaming data.
Evaluation on CIFAR-10 shows high detection accuracy.
Abstract
Deep neural networks have experimentally demonstrated superior performance over other machine learning approaches in decision-making predictions. However, one major concern is the closed set nature of the classification decision on the trained classes, which can have serious consequences in safety critical systems. When the deep neural network is in a streaming environment, fast interpretation of this classification is required to determine if the classification result is trusted. Un-trusted classifications can occur when the input data to the deep neural network changes over time. One type of change that can occur is concept evolution, where a new class is introduced that the deep neural network was not trained on. In the majority of deep neural network architectures, the only option is to assign this instance to one of the classes it was trained on, which would be incorrect. The aim…
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Taxonomy
TopicsData Stream Mining Techniques · Machine Learning and Data Classification · Anomaly Detection Techniques and Applications
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