Shiqi Zhang
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126
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Audio and Speech Processing×1Sound×1
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2026
Mixture-Constrained Max Pooling Improves Separation-Based Bird Species Classification
This paper proposes an ensemble of two source separators, FTRNN and TF-Locoformer, trained with mixture invariant training (MixIT), and introduces mixture-constrained max pooling (MCM) to improve bird species classification from field recordings.
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Papers
eess.AScs.SDEmpiricalRecentJul 3, 2026
Mixture-Constrained Max Pooling Improves Separation-Based Bird Species Classification
Yuzhu Wang, Kalle Lahtinen, Patrik Lauha, Shiqi Zhang +3 more
This paper proposes an ensemble of two source separators, FTRNN and TF-Locoformer, trained with mixture invariant training (MixIT), and introduces mixture-constrained max pooling (MCM) to improve bird…
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