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20172026
most citedNow You See It, Now You Dont: Adversarial Vulnerabilities in Computational Pathology

8 citations · 18 across the 8 of their papers we have counts for

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8 papers · 1 filter

cs.LG20221 cited

REET: Robustness Evaluation and Enhancement Toolbox for Computational Pathology

Alex Foote, Amina Asif, Nasir Rajpoot +1

Motivation: Digitization of pathology laboratories through digital slide scanners and advances in deep learning approaches for objective histological assessment have resulted in ra…

cs.LG20192 cited

Learning Neural Activations

Fayyaz ul Amir Afsar Minhas, Amina Asif

An artificial neuron is modelled as a weighted summation followed by an activation function which determines its output. A wide variety of activation functions such as rectified li…

cs.LG20191 cited

Generalized Learning with Rejection for Classification and Regression Problems

Amina Asif, Fayyaz ul Amir Afsar Minhas

Learning with rejection (LWR) allows development of machine learning systems with the ability to discard low confidence decisions generated by a prediction model. That is, just lik…

cs.LG2019

An embarrassingly simple approach to neural multiple instance classification

Amina Asif, Fayyaz ul Amir Afsar Minhas

Multiple Instance Learning (MIL) is a weak supervision learning paradigm that allows modeling of machine learning problems in which labels are available only for groups of examples…

cs.LG20193 cited

Ten ways to fool the masses with machine learning

Fayyaz Minhas, Amina Asif, Asa Ben-Hur

If you want to tell people the truth, make them laugh, otherwise they'll kill you. (source unclear) Machine learning and deep learning are the technologies of the day for developin…

cs.LG2018

Machine Learning with Abstention for Automated Liver Disease Diagnosis

Kanza Hamid, Amina Asif, Wajid Abbasi +2

This paper presents a novel approach for detection of liver abnormalities in an automated manner using ultrasound images. For this purpose, we have implemented a machine learning m…