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Peter Gehler

4 accepted papers

2022

Towards Total Recall in Industrial Anomaly Detection

CVPR 2022poster

Being able to spot defective parts is a critical component in large-scale industrial manufacturing. A particular challenge that we address in this work is the cold-start problem: fit a model using nominal (non-defective) example images only. While handcrafted solutions per class are possible, the go…

Cited by 1227PDFcodeScholar
2021

CrossCLR: Cross-Modal Contrastive Learning for Multi-Modal Video Representations

ICCV 2021poster

Contrastive learning allows us to flexibly define powerful losses by contrasting positive pairs from sets of negative samples. Recently, the principle has also been used to learn cross-modal embeddings for video and text, yet without exploiting its full potential. In particular, previous losses do n…

Cited by 172PDFScholar
2019

Learning an Event Sequence Embedding for Dense Event-Based Deep Stereo

ICCV 2019oral

Today, a frame-based camera is the sensor of choice for machine vision applications. However, these cameras, originally developed for acquisition of static images rather than for sensing of dynamic uncontrolled visual environments, suffer from high power consumption, data rate, latency and low dynam…

Cited by 112PDFcodeScholar
2018

Deep Directional Statistics: Pose Estimation with Uncertainty Quantification

ECCV 2018poster

Modern deep learning systems successfully solve many perception tasks such as object pose estimation when the input image is of high quality. However, in challenging imaging conditions such as on low resolution images or when the image is corrupted by imaging artifacts, current systems degrade consi…