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coding algorithm » cosine algorithm (Expand Search), modeling algorithm (Expand Search), finding algorithm (Expand Search)
component based » component makes (Expand Search), component system (Expand Search)
data algorithm » data algorithms (Expand Search), update algorithm (Expand Search), atlas algorithm (Expand Search)
coding algorithm » cosine algorithm (Expand Search), modeling algorithm (Expand Search), finding algorithm (Expand Search)
component based » component makes (Expand Search), component system (Expand Search)
data algorithm » data algorithms (Expand Search), update algorithm (Expand Search), atlas algorithm (Expand Search)
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Comparison of power consumption in optical and silicon-based neural network implementations.
Published 2024Subjects: -
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Accuracy of different electrical and optical neural networks for various input noise levels.
Published 2024Subjects: -
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Accuracy of different electrical and optical neural network on Caltech and ETH-80 data sets.
Published 2024Subjects: -
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Research data for paper: Efficient Event-based Delay Learning in Spiking Neural Networks
Published 2025“…<p dir="ltr">The data in this repository accompanies the paper 'Efficient Event-based Delay Learning in Spiking Neural Networks'</p><p dir="ltr">The data relates to 4 benchmarks:</p><ol><li>Spiking Heidelberg Digits (SHD).…”
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Beyond Global Metrics: A Zone-Stratified Diagnostic Framework Based on Confusion Matrix Components
Published 2025“…<i>Beyond Global Metrics: A Zone-Stratified Diagnostic Framework Based on Confusion Matrix Components.</i> Manuscript (under editorial considerations).…”
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Communication Overhead by Component.
Published 2025“…We propose Adaptive Federated Clustering (AFC), a novel framework that addresses these challenges through three key innovations: (1) adaptive client selection based on computational capacity and data relevance, (2) hierarchical aggregation organizing clients into clusters for localized updates, and (3) sparsity- and quantization-based model compression. …”
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Security Component Analysis.
Published 2025“…We propose Adaptive Federated Clustering (AFC), a novel framework that addresses these challenges through three key innovations: (1) adaptive client selection based on computational capacity and data relevance, (2) hierarchical aggregation organizing clients into clusters for localized updates, and (3) sparsity- and quantization-based model compression. …”