Few-Shot Multi-Agent Perception
Chenyou Fan, Junjie Hu, Jianwei Huang
摘要
We study few-shot learning (FSL) under multi-agent scenarios, in which participating agents only have local scarce labeled data and need to collaborate to predict query data labels. Though each of the agents, such as drones and robots, has minimal communication and computation capability, we aim at designing coordination schemes such that they can collectively perceive the environment accurately and efficiently. We propose a novel metric-based multi-agent FSL framework which has three main components: an efficient communication mechanism that propagates compact and fine-grained query feature maps from query agents to support agents; an asymmetric attention mechanism that computes region-level attention weights between query and support feature maps; and a metric-learning module which calculates the image-level relevance between query and support data fast and accurately. Through analysis and extensive numerical studies, we demonstrate that our approach can save communication and computation costs and significantly improve performance in both visual and acoustic perception tasks such as face identification, semantic segmentation, and sound genre recognition.
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它引用的顶会 Paper11
- PANet: Few-Shot Image Semantic Segmentation With Prototype AlignmentKaixin Wang, Jun Hao Liew, Yingtian Zou, Daquan Zhou 等ICCV 2019 · 被引用 1,404 次
- Few-Shot Image Recognition With Knowledge TransferZhimao Peng, Zechao Li, Junge Zhang, Yan Li 等ICCV 2019 · 被引用 230 次
- BlockMix: Meta Regularization and Self-Calibrated Inference for Metric-Based Meta-LearningHao Tang, Zechao Li, Zhimao Peng, Jinhui TangACM MM 2020 · 被引用 120 次
- Projection Robust Wasserstein Distance and Riemannian OptimizationTianyi Lin, Chenyou Fan, Nhat Ho, Marco Cuturi 等NeurIPS 2020 · 被引用 84 次
- Dynamic Extension Nets for Few-shot Semantic SegmentationLizhao Liu, Junyi Cao, Minqian Liu, Yong Guo 等ACM MM 2020 · 被引用 55 次
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