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20212025
most citedA Low-cost Strategic Monitoring Approach for Scalable and Interpretable Error Detection in Deep Neural Networks

8 citations · 21 across the 8 of their papers we have counts for

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5 papers · 1 filter

cs.CV2024

Global Clipper: Enhancing Safety and Reliability of Transformer-based Object Detection Models

Qutub Syed Sha, Michael Paulitsch, Karthik Pattabiraman +6

As transformer-based object detection models progress, their impact in critical sectors like autonomous vehicles and aviation is expected to grow. Soft errors causing bit flips dur…

cs.CV2024

Situation Monitor: Diversity-Driven Zero-Shot Out-of-Distribution Detection using Budding Ensemble Architecture for Object Detection

Qutub Syed, Michael Paulitsch, Korbinian Hagn +5

We introduce Situation Monitor, a novel zero-shot Out-of-Distribution (OOD) detection approach for transformer-based object detection models to enhance reliability in safety-critic…

cs.CV2023★ 8 cited

A Low-cost Strategic Monitoring Approach for Scalable and Interpretable Error Detection in Deep Neural Networks

Florian Geissler, Syed Qutub, Michael Paulitsch +1

We present a highly compact run-time monitoring approach for deep computer vision networks that extracts selected knowledge from only a few (down to merely two) hidden layers, yet…

cs.CV2023

BEA: Revisiting anchor-based object detection DNN using Budding Ensemble Architecture

Syed Sha Qutub, Neslihan Kose, Rafael Rosales +6

This paper introduces the Budding Ensemble Architecture (BEA), a novel reduced ensemble architecture for anchor-based object detection models. Object detection models are crucial i…

cs.CV2022★ 8 cited

Hardware faults that matter: Understanding and Estimating the safety impact of hardware faults on object detection DNNs

Syed Qutub, Florian Geissler, Yang Peng +4

Object detection neural network models need to perform reliably in highly dynamic and safety-critical environments like automated driving or robotics. Therefore, it is paramount to…