Inner Product-based Neural Network Similarity
–Neural Information Processing Systems
Analyzing representational similarity among neural networks (NNs) is essential for interpreting or transferring deep models. In application scenarios where numerous NN models are learned, it becomes crucial to assess model similarities in computationally efficient ways. In this paper, we propose a new paradigm for reducing NN representational similarity to filter subspace distance.
Neural Information Processing Systems
Oct-9-2025, 10:46:44 GMT
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