Seth Hasings (University of Tulsa)

Security Operations Centers (SOCs) receive thousands of security alerts each day, and analysts are responsible for evaluating each alert and initiating corrective action when necessary. Many of these alerts require consulting user authentication logs, which are notoriously messy and designed for machine use rather than human interpretability. We apply a novel methodology for processing raw logs into interpretable user authentication events in a university SOC dashboard tool. We review steps for data processing and describe views designed for analysts. To illustrate its value, we utilized the dashboard on a 90-day sample of alert logs from a university SOC. We present two representative alerts from the sample as case studies to motivate and demonstrate the generalized workflows. We show that enhanced data from the dashboard could be utilized to completely investigate over 84% of alerts in the sample without additional context or tools, and a further 13% could be partially investigated.

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BumbleBee: Secure Two-party Inference Framework for Large Transformers

Wen-jie Lu (Ant Group), Zhicong Huang (Ant Group), Zhen Gu (Alibaba Group), Jingyu Li (Ant Group & Zhejiang University), Jian Liu (Zhejiang University), Cheng Hong (Ant Group), Kui Ren (Zhejiang University), Tao Wei (Ant Group), WenGuang Chen (Ant Group)

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Impact Tracing: Identifying the Culprit of Misinformation in Encrypted...

Zhongming Wang (Chongqing University), Tao Xiang (Chongqing University), Xiaoguo Li (Chongqing University), Biwen Chen (Chongqing University), Guomin Yang (Singapore Management University), Chuan Ma (Chongqing University), Robert H. Deng (Singapore Management University)

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SecuWear: Secure Data Sharing Between Wearable Devices

Sujin Han (KAIST) Diana A. Vasile (Nokia Bell Labs), Fahim Kawsar (Nokia Bell Labs, University of Glasgow), Chulhong Min (Nokia Bell Labs)

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