Binary Spiking Neural Networks as Causal Models 事件
PRODUCT_LAUNCH2026-06-04影响: MEDIUM
Binary Spiking Neural Networks as Causal Models arXiv:2604.27007v2 Announce Type: replace Abstract: We provide a causal analysis of Binary Spiking Neural Networks (BSNNs) to explain their behavior. We formally define a BSNN and represent its spiking activity as a binary causal model. Thanks to this causal representation, we are able to explain the output of the network by leveraging logic-based methods. In particular, we show that we can successfully use a SAT as well as a SMT solver to compute
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Binary Spiking Neural Networks as Causal Models
ArXiv CS.AI2026-06-04