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Nicolò Colombo

4 accepted papers

2024

Structured Learning of Compositional Sequential Interventions

NeurIPS 2024poster

We consider sequential treatment regimes where each unit is exposed to combinations of interventions over time. When interventions are described by qualitative labels, such as "close schools for a month due to a pandemic" or "promote this podcast to this user during this week", it is unclear which a…

2018

Bayesian Semi-supervised Learning with Graph Gaussian Processes

NeurIPS 2018poster

We propose a data-efficient Gaussian process-based Bayesian approach to the semi-supervised learning problem on graphs. The proposed model shows extremely competitive performance when compared to the state-of-the-art graph neural networks on semi-supervised learning benchmark experiments, and outper…

2017

Tomography of the London Underground: a Scalable Model for Origin-Destination Data

NeurIPS 2017poster

The paper addresses the classical network tomography problem of inferring local traffic given origin-destination observations. Focussing on large complex public transportation systems, we build a scalable model that exploits input-output information to estimate the unobserved link/station loads and…

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