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k-hop Fairness: Addressing Disparities in Graph Link Prediction Beyond First-Order Neighborhoods

Description

Link prediction (LP) plays a central role in graph-based applications, particularly in social recommendation. However, real-world graphs often reflect structural biases, most notably homophily, the tendency of nodes with similar attributes to connect. While this property can improve predictive performance, it also risks reinforcing existing social disparities. In response, fairness-aware LP methods have emerged, often seeking to mitigate these effects by promoting inter-group connections, that i

Source

http://arxiv.org/abs/2603.03867v1