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Teppei Suzuki

6 accepted papers

2022

Feature Space Particle Inference for Neural Network Ensembles

ICML 2022spotlight

Ensembles of deep neural networks demonstrate improved performance over single models. For enhancing the diversity of ensemble members while keeping their performance, particle-based inference methods offer a promising approach from a Bayesian perspective. However, the best way to apply these method…

2020

Joint Pedestrian Detection and Risk-level Prediction with Motion-Representation-by-Detection

ICRA 2020poster

The paper presents a pedestrian near-miss detector with temporal analysis that provides both pedestrian detection and risk-level predictions which are demonstrated on a self-collected database. Our work makes three primary contributions: (i) The framework of pedestrian near-miss detection is propose…

Cited by 6SourceScholar
2020

Unsupervised Auto-Encoding Multiple-Object Tracker for Constraint-Consistent Combinatorial Problem

ICASSP 2020accepted

Multiple-object tracking (MOT) and classification are core technologies for processing moving point clouds in radar or lidar applications. For accurate object classification, the one-to-one association relationship between the model of each objects’ motion (trackers) and the observation sequences in…

Cited by 0SourceScholar
2018

Drive Video Analysis for the Detection of Traffic Near-Miss Incidents

ICRA 2018poster

Because of their recent introduction, self-driving cars and advanced driver assistance system (ADAS) equipped vehicles have had little opportunity to learn, the dangerous traffic (including near-miss incident) scenarios that provide normal drivers with strong motivation to drive safely. Accordingly,…

Cited by 49SourceScholar