arXiv:2508.19905cs.CVcs.ET2025-08被引 9

首份车载高光谱成像综述,揭示技术瓶颈与落地挑战

Hyperspectral Sensors and Autonomous Driving: Technologies, Limitations, and Opportunities

  • 系统梳理216款商用相机,量化评估其在帧率、分辨率等指标表现
  • 仅4款满足汽车级性能阈值,无一通过AEC-Q100可靠性认证
  • 指出数据集规模小、谱段少、环境多样性不足,制约算法发展

高光谱成像(HSI)为高级驾驶辅助系统(ADAS)和自动驾驶(AD)提供了超越传统RGB成像的材料级场景理解能力。本文首次全面综述了HSI在汽车领域的应用,分析了现有技术的优势、局限及适用性。除定性评估外,我们对216款商用高光谱与多光谱相机进行基准测试,对比其在帧率、空间分辨率、光谱维度和是否符合AEC-Q100温度标准等关键汽车标准下的表现。结果表明,当前HSI在研究潜力与商业化成熟度之间存在显著差距:仅4款设备达到设定性能门槛,且无一通过AEC-Q100认证。同时,论文回顾了近期的HSI数据集与应用场景,包括路面语义分割、行人可区分性及恶劣天气感知。然而,现有数据集在规模、光谱一致性、通道数量和环境多样性方面仍显不足,限制了感知算法开发与真实潜力验证。本文以2025年为基准,确立了车载HSI的现状,并指明未来实现谱成像在ADAS/AD中实用化的关键研究方向。

原文摘要 · Abstract (English)

Hyperspectral imaging (HSI) offers a transformative sensing modality for Advanced Driver Assistance Systems (ADAS) and autonomous driving (AD) applications, enabling material-level scene understanding through fine spectral resolution beyond the capabilities of traditional RGB imaging. This paper presents the first comprehensive review of HSI for automotive applications, examining the strengths, limitations, and suitability of current HSI technologies in the context of ADAS/AD. In addition to this qualitative review, we analyze 216 commercially available HSI and multispectral imaging cameras, benchmarking them against key automotive criteria: frame rate, spatial resolution, spectral dimensionality, and compliance with AEC-Q100 temperature standards. Our analysis reveals a significant gap between HSI's demonstrated research potential and its commercial readiness. Only four cameras meet the defined performance thresholds, and none comply with AEC-Q100 requirements. In addition, the paper reviews recent HSI datasets and applications, including semantic segmentation for road surface classification, pedestrian separability, and adverse weather perception. Our review shows that current HSI datasets are limited in terms of scale, spectral consistency, the number of spectral channels, and environmental diversity, posing challenges for the development of perception algorithms and the adequate validation of HSI's true potential in ADAS/AD applications. This review paper establishes the current state of HSI in automotive contexts as of 2025 and outlines key research directions toward practical integration of spectral imaging in ADAS and autonomous systems.

高光谱成像自动驾驶传感器融合数据集

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