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DRACO: A Denoising-Reconstruction Autoencoder for Cryo-EM
2024-10-15
会议录名称THE THIRTY-EIGHTH ANNUAL CONFERENCE ON NEURAL INFORMATION PROCESSING SYSTEMS
发表状态已发表
摘要

Foundation models in computer vision have demonstrated exceptional performance in zero-shot and few-shot tasks by extracting multi-purpose features from large-scale datasets through self-supervised pre-training methods. However, these models often overlook the severe corruption in cryogenic electron microscopy (cryo-EM) images by high-level noises. We introduce DRACO, a Denoising-Reconstruction Autoencoder for CryO-EM, inspired by the Noise2Noise (N2N) approach. By processing cryo-EM movies into odd and even images and treating them as independent noisy observations, we apply a denoising-reconstruction hybrid training scheme. We mask both images to create denoising and reconstruction tasks. For DRACO's pre-training, the quality of the dataset is essential, we hence build a high-quality, diverse dataset from an uncurated public database, including over 270,000 movies or micrographs. After pre-training, DRACO naturally serves as a generalizable cryo-EM image denoiser and a foundation model for various cryo-EM downstream tasks. DRACO demonstrates the best performance in denoising, micrograph curation, and particle picking tasks compared to state-of-the-art baselines. We will release the code, pre-trained models, and the curated dataset to stimulate further research.

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收录类别其他
语种英语
WOS类目Computer Science, Software Engineering ; Engineering, Electrical& Electronic
WOS记录号PPRN:113144020
文献类型会议论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/446059
专题信息科学与技术学院_硕士生
信息科学与技术学院_PI研究组_虞晶怡组
iHuman研究所_公共科研平台_生命科学电镜平台
信息科学与技术学院_本科生
信息科学与技术学院_博士生
共同第一作者Dai, Haizhao
通讯作者Pei, Yuan; Yu, Jingyi
作者单位
1.ShanghaiTech Univ, Shanghai, Peoples R China
2.Cellverse, Shanghai, Peoples R China
3.iHuman Inst, Shanghai, Peoples R China
第一作者单位上海科技大学
通讯作者单位上海科技大学
第一作者的第一单位上海科技大学
推荐引用方式
GB/T 7714
Shen, Yingjun,Dai, Haizhao,Chen, Qihe,et al. DRACO: A Denoising-Reconstruction Autoencoder for Cryo-EM[C],2024.
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