Search Results for author: Hailong Yang

Found 6 papers, 1 papers with code

LogGPT: Exploring ChatGPT for Log-Based Anomaly Detection

no code implementations3 Sep 2023 Jiaxing Qi, Shaohan Huang, Zhongzhi Luan, Carol Fung, Hailong Yang, Depei Qian

In this work, we proposed LogGPT, a log-based anomaly detection framework based on ChatGPT.

Anomaly Detection

FamilySeer: Towards Optimized Tensor Codes by Exploiting Computation Subgraph Similarity

no code implementations1 Jan 2022 Shanjun Zhang, Mingzhen Li, Hailong Yang, Yi Liu, Zhongzhi Luan, Depei Qian

Currently, the DL compilers partition the input DL models into several subgraphs and leverage the auto-tuning to find the optimal tensor codes of these subgraphs.

The Deep Learning Compiler: A Comprehensive Survey

1 code implementation6 Feb 2020 Mingzhen Li, Yi Liu, Xiaoyan Liu, Qingxiao Sun, Xin You, Hailong Yang, Zhongzhi Luan, Lin Gan, Guangwen Yang, Depei Qian

In this paper, we perform a comprehensive survey of existing DL compilers by dissecting the commonly adopted design in details, with emphasis on the DL oriented multi-level IRs, and frontend/backend optimizations.

Privacy for Rescue: A New Testimony Why Privacy is Vulnerable In Deep Models

no code implementations31 Dec 2019 Ruiyuan Gao, Ming Dun, Hailong Yang, Zhongzhi Luan, Depei Qian

Existing research works rely on metrics that are either impractical or insufficient to measure the effectiveness of privacy protection methods in the above scenario, especially from the aspect of a single user.

swTVM: Towards Optimized Tensor Code Generation for Deep Learning on Sunway Many-Core Processor

no code implementations16 Apr 2019 Mingzhen Li, Changxi Liu, Jianjin Liao, Xuegui Zheng, Hailong Yang, Rujun Sun, Jun Xu, Lin Gan, Guangwen Yang, Zhongzhi Luan, Depei Qian

The flourish of deep learning frameworks and hardware platforms has been demanding an efficient compiler that can shield the diversity in both software and hardware in order to provide application portability.

Code Generation

Generative Model for Heterogeneous Inference

no code implementations26 Apr 2018 Honggang Zhou, Yunchun Li, Hailong Yang, Wei Li, Jie Jia

However, the learning and inference of BN model are NP-hard thus the number of stochastic variables in BN is highly constrained.

Denoising Image Inpainting

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