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Published:2025/12/16 15:25:27

自動運転の未来💖 クローズドループ評価って?

超要約: 自動運転の頭脳🧠、モーション予測を現実的に評価する研究だよ!

✨ ギャル的キラキラポイント ✨ ● オープンループ(過去データのみ)じゃなくて、実際に車を走らせて評価するの! ● 予測モデルと車の動きの関係を詳しく調べて、安全性をUP⤴ ● モデルのサイズ(複雑さ)を最適化して、開発コスト削減にも貢献💰

詳細解説いくよ~!

背景

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Closing the Loop: Motion Prediction Models beyond Open-Loop Benchmarks

Mohamed-Khalil Bouzidi / Christian Schlauch / Nicole Scheuerer / Yue Yao / Nadja Klein / Daniel G\"ohring / J\"org Reichardt

Fueled by motion prediction competitions and benchmarks, recent years have seen the emergence of increasingly large learning based prediction models, many with millions of parameters, focused on improving open-loop prediction accuracy by mere centimeters. However, these benchmarks fail to assess whether such improvements translate to better performance when integrated into an autonomous driving stack. In this work, we systematically evaluate the interplay between state-of-the-art motion predictors and motion planners. Our results show that higher open-loop accuracy does not always correlate with better closed-loop driving behavior and that other factors, such as temporal consistency of predictions and planner compatibility, also play a critical role. Furthermore, we investigate downsized variants of these models, and, surprisingly, find that in some cases models with up to 86% fewer parameters yield comparable or even superior closed-loop driving performance. Our code is available at https://github.com/aumovio/pred2plan.

cs / cs.RO / cs.AI / cs.SY / eess.SY