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Capturing Intransitive Dominance in Tennis Forecasting: A Graph Neural Network Approach

About

Intransitive player dominance, where player A beats B, B beats C, but C beats A, is common in competitive tennis. Yet, there are few known attempts to incorporate it within forecasting methods. We address this problem with a graph neural network approach that explicitly models these intransitive relationships through temporal directed graphs, with players as nodes and their historical match outcomes as directed edges. Our model (65.7% accuracy, 0.214 Brier score) forecasts competitively with established rating systems such as Weighted Elo. Although it does not improve on the baseline in unconditional accuracy, a forecast-encompassing test shows that it carries complementary information. A combined forecast significantly outperforms Weighted Elo, and there is some indication that the gain grows more strongly on the intransitive matchups our model targets. A graph-based representation of player interactions thus captures a forecasting signal that transitive rating systems discard, even between players who share no common opponents.

Lawrence Clegg, John Cartlidge• 2025

Related benchmarks

TaskDatasetResultRank
Match Outcome PredictionATP Men's Tennis Matches Clay Surface out-of-sample early 2022 to October 2025 (test)
Accuracy66.7
5
Match Outcome PredictionWTA Women's Tennis Matches Hard Surface early 2022 to October 2025 (test)
Accuracy64.6
5
Match Outcome PredictionTennis Matches Combined Gender All Surfaces out-of-sample early 2022 - Oct 2025 (test)
Accuracy65.7
5
Match Outcome PredictionATP Men's Tennis Matches Grass Surface out-of-sample early 2022 to October 2025 (test)
Accuracy67.6
5
Match Outcome PredictionWTA Women's Tennis Matches Clay Surface early 2022 to October 2025 (out-of-sample test)
Accuracy66.3
5
Match Outcome PredictionWTA Women's Tennis Matches Grass Surface early 2022 to October 2025 (out-of-sample test)
Accuracy65.4
5
Match Outcome PredictionATP Men's Tennis Matches Hard Surface out-of-sample early 2022 to October 2025 (test)
Accuracy65.6
5
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