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Quantum classifier boosts scene graph generation with fewer parameters

Researchers have developed a hybrid quantum predicate classifier for Scene Graph Generation (SGG) to address the challenge of long-tailed predicate imbalance. This new approach replaces the classical predicate head in the CFEN model with a Quantum Predicate Head (QP-Head). The QP-Head significantly reduces the number of trainable parameters while improving performance on the Visual Genome 150 dataset. AI

IMPACT This research demonstrates a parameter-efficient method for improving complex visual reasoning tasks by leveraging quantum computing principles.

RANK_REASON This is a research paper detailing a novel hybrid quantum approach for a specific AI task.

Read on arXiv cs.LG →

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Quantum classifier boosts scene graph generation with fewer parameters

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COVERAGE [2]

  1. arXiv cs.LG TIER_1 English(EN) · Prerana Ramkumar, Nouhaila Innan, Muhammad Shafique ·

    QPredSGG: Hybrid Quantum Predicate Learning for Long-Tailed Scene Graph Generation

    arXiv:2606.04689v1 Announce Type: cross Abstract: Scene Graph Generation (SGG) requires relational reasoning over objects and their interactions, but performance is often limited by severe long-tail predicate imbalance. Classical SGG models frequently rely on dataset statistics, …

  2. arXiv cs.LG TIER_1 English(EN) · Muhammad Shafique ·

    QPredSGG: Hybrid Quantum Predicate Learning for Long-Tailed Scene Graph Generation

    Scene Graph Generation (SGG) requires relational reasoning over objects and their interactions, but performance is often limited by severe long-tail predicate imbalance. Classical SGG models frequently rely on dataset statistics, leading to biased predictions toward frequent rela…