Papers › Real-Time Seamless Single Shot 6D Object Pose Prediction

Real-Time Seamless Single Shot 6D Object Pose Prediction

24 Nov 2017CVPR 2018 6arXiv:1711.08848archive 2025-07-28

Bugra Tekin, Sudipta N. Sinha, Pascal Fua

We propose a single-shot approach for simultaneously detecting an object in an RGB image and predicting its 6D pose without requiring multiple stages or having to examine multiple hypotheses. Unlike a recently proposed single-shot technique for this task (Kehl et al., ICCV'17) that only predicts an approximate 6D pose that must then be refined, ours is accurate enough not to require additional post-processing. As a result, it is much faster - 50 fps on a Titan X (Pascal) GPU - and more suitable for real-time processing. The key component of our method is a new CNN architecture inspired by the YOLO network design that directly predicts the 2D image locations of the projected vertices of the object's 3D bounding box. The object's 6D pose is then estimated using a PnP algorithm. For single object and multiple object pose estimation on the LINEMOD and OCCLUSION datasets, our approach substantially outperforms other recent CNN-based approaches when they are all used without post-processing. During post-processing, a pose refinement step can be used to boost the accuracy of the existing methods, but at 10 fps or less, they are much slower than our method.

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Microsoft/singleshotpose mentioned on GitHubpytorch report
Yongjjun/singleshotpose mentioned on GitHubpytorch report
a2824256/singleshotpose_imp mentioned on GitHubpytorch report
hz-ants/yolo-6d mentioned on GitHubpytorch report

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Tasks

6D Pose Estimation using RGBDrone Pose EstimationObjectPose EstimationPose PredictionPrediction

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Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
6D Pose Estimation using RGB LineMOD Single-shot Deep CNN Accuracy 90.37% #18 of 22 Archive leaderboard report
6D Pose Estimation using RGB LineMOD Single-shot Deep CNN Mean ADD 55.95 #18 of 22 Archive leaderboard report
6D Pose Estimation using RGB LineMOD Single-shot Deep CNN Mean IoU 99.92 #18 of 22 Archive leaderboard report
6D Pose Estimation using RGB OCCLUSION Single-shot deep CNN MAP 0.48 #1 of 2 Archive leaderboard report

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