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Nicolas Carion

Researcher at Paris Dauphine University

Publications -  16
Citations -  6339

Nicolas Carion is an academic researcher from Paris Dauphine University. The author has contributed to research in topics: Computer science & Optimization problem. The author has an hindex of 8, co-authored 11 publications receiving 977 citations. Previous affiliations of Nicolas Carion include ETH Zurich & Facebook.

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End-to-End Object Detection with Transformers

TL;DR: This work presents a new method that views object detection as a direct set prediction problem, and demonstrates accuracy and run-time performance on par with the well-established and highly-optimized Faster RCNN baseline on the challenging COCO object detection dataset.
Book ChapterDOI

End-to-End Object Detection with Transformers

TL;DR: DetR as mentioned in this paper proposes a set-based global loss that forces unique predictions via bipartite matching, and a transformer encoder-decoder architecture to directly output the final set of predictions in parallel.
Posted Content

MDETR -- Modulated Detection for End-to-End Multi-Modal Understanding.

TL;DR: In this article, an end-to-end modulated detector that detects objects in an image conditioned on a raw text query, like a caption or a question, is proposed.
Journal ArticleDOI

Constrained Bayesian Optimization with Particle Swarms for Safe Adaptive Controller Tuning

TL;DR: This paper provides a heuristic in order to efficiently perform constrained Bayesian optimization in high-dimensional parameter spaces by using an adaptive discretization based on particle swarms and shows that it can reliably and automatically tune parameters in experiments.
Proceedings Article

Forward Modeling for Partial Observation Strategy Games - A StarCraft Defogger

TL;DR: By combining convolutional neural networks and recurrent networks, this work exploits spatial and sequential correlations and train well-performing models on a large dataset of human games of StarCraft: Brood War to demonstrate the relevance of these models to downstream tasks.