7.3 A 189×600 Back-Illuminated Stacked SPAD Direct Time-of-Flight Depth Sensor for Automotive LiDAR Systems

7.3 Тылово́й освещаемый многослойный SPAD-сенсор прямого измерения времени пролёта с разрешением 189×600 для автомобильных систем LiDAR
Oichi Kumagai, Junichi Ohmachi, Masao Matsumura, Shinichiro Yagi, Kenichi Tayu, Keitaro Amagawa, Tomohiro Matsukawa, O. Ozawa, Daisuke Hirono, Yasuhiro Shinozuka, Ryutaro Homma, Kumiko Mahara, Toshio Ohyama, Yousuke Morita, Shohei Shimada, T. Ueno, Akira Matsumoto, Y. Otake, T. Wakano, Takashi Izawa
2021-02-13

automotive LiDARback-illuminated stacked SPADdirect time-of-flighton-chip digital signal processingtime-correlated single-photon counting
There have been many developments in Light Detection And Ranging (LiDAR) sensors used in Autonomous Driving (AD) and Advanced Driver Assistance Systems (ADAS) to measure the precise distance to an object, recognize the shape of an intersection, and classify road types. These LiDAR sensors can achieve fantastic results day and night without any loss of performance. In the past, Time-Correlated Single Photon Counting (TCSPC) and complete digital signal processing (DSP) have been used in to achieve a 100m range Time-of-Flight (ToF) sensor [1]. Background (BG) noise-rejection techniques [2] have been used to improve the signal-to-noise ratio (SNR), leading to detection of objects at a 6km range. Single Photon Avalanche Diode (SPAD)-based architectures implement per-pixel level histogramming, Time-to-Digital Conversion (TDC) and signal processing [3,4]. Another ToF sensor has been shown that enables significantly higher resolution, 1200×900 pixels [5]. With the emerging need for a highresolution solid-state LiDAR using a scanning 2D-SPAD array [6], we report a SPAD direct Time-of-Flight (dToF) depth sensor [1-5] to realize long-distance 300m range and high resolution over an automotive-grade temperature range of -40 to 125°C. This microelectromechanical systems (MEMS)-based SPAD LiDAR can measure over ranges up to 150m with 0.1% accuracy for a 10%-reflectivity target and 200m with 0.1% accuracy for a 95%-reflectivity target. This paper presents a back-illuminated stacked SPAD dToF depth sensor deployed with passive quenching and recharge (PQR) frontend circuitry, TCSPC, and on-chip DSP. Under 117klux sunlight conditions, the MEMS-based SPAD LiDAR measures distances up to 200m with 168×63 resolution at 20 frames/s.
1
A 189×600 back-illuminated stacked SPAD direct-ToF sensor is developed for high-resolution automotive solid-state LiDAR.
2
It measures 150 meters with 0.1% accuracy for 10%-reflectivity targets and 200 meters with 0.1% accuracy for 95%-reflectivity targets.
3
The MEMS-based SPAD LiDAR supports operation across an automotive-grade temperature range of −40 to 125°C and targets distances up to 300 meters.
4
The sensor integrates passive quenching and recharge circuitry, time-correlated single-photon counting, and on-chip digital signal processing.
5
Under 117 klux sunlight, the system measures distances up to 200 meters at 168×63 resolution and 20 frames per second.

Back-illuminated stacked SPAD direct time-of-flight depth sensor for automotive MEMS-based LiDAR

Long-range, high-resolution distance-measurement performance and robustness over the automotive temperature and sunlight operating conditions

Publication Details
Publication Date
2021-02-13
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Authors
Oichi Kumagai
Junichi Ohmachi
Masao Matsumura
Shinichiro Yagi
Kenichi Tayu
Keitaro Amagawa
Tomohiro Matsukawa
O. Ozawa
Daisuke Hirono
Yasuhiro Shinozuka
Ryutaro Homma
Kumiko Mahara
Toshio Ohyama
Yousuke Morita
Shohei Shimada
T. Ueno
Akira Matsumoto
Y. Otake
T. Wakano
Takashi Izawa
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