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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 35 / No. 5: AAAI-21 Technical Tracks 5

Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies

February 1, 2023

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Abstract:

Branch and Bound (B&B) is the exact tree search method typically used to solve Mixed-Integer Linear Programming problems (MILPs). Learning branching policies for MILP has become an active research area, with most works proposing to imitate the strong branching rule and specialize it to distinct classes of problems. We aim instead at learning a policy that generalizes across heterogeneous MILPs: our main hypothesis is that parameterizing the state of the B&B search tree can aid this type of generalization. We propose a novel imitation learning framework, and introduce new input features and architectures to represent branching. Experiments on MILP benchmark instances clearly show the advantages of incorporating an explicit parameterization of the state of the search tree to modulate the branching decisions, in terms of both higher accuracy and smaller B&B trees. The resulting policies significantly outperform the current state-of-the-art method for "learning to branch" by effectively allowing generalization to generic unseen instances.

Authors

Giulia Zarpellon

Polytechnique Montréal


Jason Jo

Mila Université de Montréal


Andrea Lodi

Polytechnique Montréal


Yoshua Bengio

Mila Université de Montréal


DOI:

10.1609/aaai.v35i5.16512


Topics: AAAI

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HOW TO CITE:

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies Proceedings of the AAAI Conference on Artificial Intelligence, 35 (2021) 3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies AAAI 2021, 3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio (2021). Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies. Proceedings of the AAAI Conference on Artificial Intelligence, 35, 3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio. Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies. Proceedings of the AAAI Conference on Artificial Intelligence, 35 2021 p.3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio. 2021. Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies. "Proceedings of the AAAI Conference on Artificial Intelligence, 35". 3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio. (2021) "Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies", Proceedings of the AAAI Conference on Artificial Intelligence, 35, p.3931-3939

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio, "Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies", AAAI, p.3931-3939, 2021.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio. "Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies". Proceedings of the AAAI Conference on Artificial Intelligence, 35, 2021, p.3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio. "Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies". Proceedings of the AAAI Conference on Artificial Intelligence, 35, (2021): 3931-3939.

Giulia Zarpellon||Jason Jo||Andrea Lodi||Yoshua Bengio. Parameterizing Branch-and-Bound Search Trees to Learn Branching Policies. AAAI[Internet]. 2021[cited 2023]; 3931-3939.


ISSN: 2374-3468


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