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Douglas Morrison

4 accepted papers

2025

Kaputt: A Large-Scale Dataset for Visual Defect Detection

ICCV 2025poster

We present a novel large-scale dataset for defect detection in a logistics setting. Recent work on industrial anomaly detection has primarily focused on manufacturing scenarios with highly controlled poses and a limited number of object categories. Existing benchmarks like MVTec-AD (Bergmann et al.,…

Cited by 0SourcePDFScholar
2020

EGAD! An Evolved Grasping Analysis Dataset for Diversity and Reproducibility in Robotic Manipulation

RA-L 2020

We present the Evolved Grasping Analysis Dataset (EGAD), comprising over 2000 generated objects aimed at training and evaluating robotic visual grasp detection algorithms. The objects in EGAD are geometrically diverse, filling a space ranging from simple to complex shapes and from easy to difficult

Cited by 168SourcecodeScholar
2019

Multi-View Picking: Next-best-view Reaching for Improved Grasping in Clutter

ICRA 2019poster

Camera viewpoint selection is an important aspect of visual grasp detection, especially in clutter where many occlusions are present. Where other approaches use a static camera position or fixed data collection routines, our Multi-View Picking (MVP) controller uses an active perception approach to c…

Cited by 93SourcecodeScholar
2018

Closing the Loop for Robotic Grasping: A Real-time, Generative Grasp Synthesis Approach

RSS 2018poster

This paper presents a real-time, object-independent grasp synthesis method which can be used for closed-loop grasping. Our proposed Generative Grasping Convolutional Neural Network (GG-CNN) predicts the quality and pose of grasps at every pixel. This one-to-one mapping from a depth image overcomes…