Newton-Raphson Reciprocal
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Preserving Data Privacy in Learning Causal Structure with Fully Homomorphic Encryption
Announce Type: new Abstract: Preserving data privacy is an important topic in structural data management and data mining. However, the issue of privacy leakage in distributed causal structure learning is a persistent challenge, especially in cases where data transmission and computation are required. In this paper, we propose a method based on fully homomorphic encryption (FHE) that performs calculations on ciphertexts, keeping data encrypted in transition and computation.