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Class based Influence Functions for Error Detection

2 May 2023
Thang Nguyen-Duc
Hoang Thanh-Tung
Quan Hung Tran
Huu-Tien Dang
Nguyen Ngoc-Hieu
An Dau
Nghi D. Q. Bui
    TDI
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Abstract

Influence functions (IFs) are a powerful tool for detecting anomalous examples in large scale datasets. However, they are unstable when applied to deep networks. In this paper, we provide an explanation for the instability of IFs and develop a solution to this problem. We show that IFs are unreliable when the two data points belong to two different classes. Our solution leverages class information to improve the stability of IFs. Extensive experiments show that our modification significantly improves the performance and stability of IFs while incurring no additional computational cost.

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