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Gao Huang

Researcher at Tsinghua University

Publications -  164
Citations -  43663

Gao Huang is an academic researcher from Tsinghua University. The author has contributed to research in topics: Computer science & Feature (computer vision). The author has an hindex of 37, co-authored 124 publications receiving 26697 citations. Previous affiliations of Gao Huang include Cornell University & University of Science and Technology of China.

Papers
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Proceedings Article

Maximin separation probability clustering

TL;DR: This paper defines a novel metric to evaluate the quality of a clustering labeling, named Minimum Separation Probability (MSP), which is a lower bound of the generalization accuracy of a classifier learnt from the clustering labels.
Posted Content

Self-Supervised Discovering of Causal Features: Towards Interpretable Reinforcement Learning

TL;DR: A self- supervised interpretable framework, which employs a self-supervised interpretables network (SSINet) to discover and locate fine-grained causal features that constitute most evidence for the agent's decisions.
Posted Content

Domain Conditioned Adaptation Network.

TL;DR: In this paper, a domain conditioned channel attention mechanism is proposed to excite distinct convolutional channels with a domain-conditioned channel activation mechanism to explore the critical low-level domain-dependent knowledge appropriately.
Journal ArticleDOI

Glance and Focus Networks for Dynamic Visual Recognition

TL;DR: The proposed Glance and Focus Network (GFNet) first extracts a quick global representation of the input image at a low resolution scale, and then strategically attends to a series of salient regions to learn finer features, mimicking the human visual system.
Journal ArticleDOI

A privacy-preserving image retrieval scheme based secure kNN, DNA coding and deep hashing

TL;DR: This paper presents the CBIR solution and completes the relevant software development, and proposes a novel privacy protection algorithm to encrypt images and an integrated deep hash algorithm to extract the high-level features of images.