CVLGRODec 4, 2023

RiskBench: A Scenario-based Benchmark for Risk Identification

arXiv:2312.01659v214 citationsh-index: 3ICRA
Originality Synthesis-oriented
AI Analysis

This provides a unified benchmark for researchers in autonomous driving to compare risk identification methods, though it is incremental as it builds on existing datasets and methods.

The paper tackles the lack of standardized evaluation for risk identification algorithms in intelligent driving by introducing RiskBench, a large-scale scenario-based benchmark, which assesses ten algorithms across detection, anticipation, and decision-making tasks.

Intelligent driving systems aim to achieve a zero-collision mobility experience, requiring interdisciplinary efforts to enhance safety performance. This work focuses on risk identification, the process of identifying and analyzing risks stemming from dynamic traffic participants and unexpected events. While significant advances have been made in the community, the current evaluation of different risk identification algorithms uses independent datasets, leading to difficulty in direct comparison and hindering collective progress toward safety performance enhancement. To address this limitation, we introduce \textbf{RiskBench}, a large-scale scenario-based benchmark for risk identification. We design a scenario taxonomy and augmentation pipeline to enable a systematic collection of ground truth risks under diverse scenarios. We assess the ability of ten algorithms to (1) detect and locate risks, (2) anticipate risks, and (3) facilitate decision-making. We conduct extensive experiments and summarize future research on risk identification. Our aim is to encourage collaborative endeavors in achieving a society with zero collisions. We have made our dataset and benchmark toolkit publicly on the project page: https://hcis-lab.github.io/RiskBench/

Code Implementations1 repo
Foundations

The foundational work for this paper's niche, ranked by how specifically the neighbourhood builds on it — not by global fame.

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