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Hong Huo

2 accepted papers

2026

Improving the Accuracy of Dense Retrieval on the Quantized Indexes via Gradient Optimization of the Target Embeddings

AAAI 2026technical

Dense retrieval models commonly use flat indexes to achieve high-precision retrieval by computing exact distances between embedding vectors. However, flat indexes are memory-intensive and inefficient, limiting their scalability in large-scale retrieval tasks. In contrast, quantized indexes enable fa

Cited by 0SourcePDFScholar
2025

EmoRLTalk: Speech-Driven Emotional Facial Animation With Offline Reinforcement Learning

IROS 2025

In recent years, significant breakthroughs have been made in audio-guided 3D facial animation. However, existing methods mainly focus on lip shape and audio consistency and still face key challenges to achieve alignment between facial emotions and speech emotions. To overcome this limitation, we int

Cited by 0SourceScholar