TY - JOUR
T1 - A 20-ch TDC/ADC hybrid architecture LiDAR SoC for 240 × 96 pixel 200-m range imaging with smart accumulation technique and residue quantizing SAR ADC
AU - Yoshioka, Kentaro
AU - Kubota, Hiroshi
AU - Fukushima, Tomonori
AU - Kondo, Satoshi
AU - Ta, Tuan Thanh
AU - Okuni, Hidenori
AU - Watanabe, Kaori
AU - Hirono, Masatoshi
AU - Ojima, Yoshinari
AU - Kimura, Katsuyuki
AU - Hosoda, Sohichiroh
AU - Ota, Yutaka
AU - Koizumi, Tomohiro
AU - Kawabe, Naoyuki
AU - Ishii, Yasuhiro
AU - Iwagami, Yoichiro
AU - Yagi, Seitaro
AU - Fujisawa, Isao
AU - Kano, Nobuo
AU - Sugimoto, Tomohiko
AU - Kurose, Daisuke
AU - Waki, Naoya
AU - Higashi, Yumi
AU - Nakamura, Tetsuya
AU - Nagashima, Yoshikazu
AU - Ishii, Hirotomo
AU - Sai, Akihide
AU - Matsumoto, Nobu
N1 - Publisher Copyright:
© 2018 IEEE.
PY - 2018/11
Y1 - 2018/11
N2 - This paper presents a time-to-digital converter/analog-to-digital-converter (TDC/ADC) hybrid LiDAR system-on-chip (SoC) to realize reliable self-driving systems. The smart accumulation technique (SAT) is proposed to achieve both 200-m and high-pixel-resolution range imaging, which was untrodden with conventional LiDARs. The 'smart' accumulation is realized by a simple object recognition strategy with small circuit overhead. When compared to conventional accumulations, the LiDAR range is enhanced without degrading the pixel resolution. Moreover, a TDC/ADC hybrid architecture is proposed to achieve a wide-distance-range LiDAR with a small silicon area and short-range precision. To minimize the ADC cost, a residue-quantizing noise-shaping (RQNS) SAR ADC is proposed. The prototype LiDAR SoC is fabricated in the 28-nm CMOS technology and integrated into the silicon photomultiplier (SiPM)-based LiDAR system. LiDAR measured with 240 × 96 pixels at 10 frames/s achieves a measurement range of 200 m with a 70-klx direct sunlight: The measurement range is 2 × longer than conventional designs. Furthermore, our LiDAR achieves 4 × higher effective pixel resolution compared to conventional designs using simple accumulation. A 3-D point-cloud image acquired with a real-life environment is presented.
AB - This paper presents a time-to-digital converter/analog-to-digital-converter (TDC/ADC) hybrid LiDAR system-on-chip (SoC) to realize reliable self-driving systems. The smart accumulation technique (SAT) is proposed to achieve both 200-m and high-pixel-resolution range imaging, which was untrodden with conventional LiDARs. The 'smart' accumulation is realized by a simple object recognition strategy with small circuit overhead. When compared to conventional accumulations, the LiDAR range is enhanced without degrading the pixel resolution. Moreover, a TDC/ADC hybrid architecture is proposed to achieve a wide-distance-range LiDAR with a small silicon area and short-range precision. To minimize the ADC cost, a residue-quantizing noise-shaping (RQNS) SAR ADC is proposed. The prototype LiDAR SoC is fabricated in the 28-nm CMOS technology and integrated into the silicon photomultiplier (SiPM)-based LiDAR system. LiDAR measured with 240 × 96 pixels at 10 frames/s achieves a measurement range of 200 m with a 70-klx direct sunlight: The measurement range is 2 × longer than conventional designs. Furthermore, our LiDAR achieves 4 × higher effective pixel resolution compared to conventional designs using simple accumulation. A 3-D point-cloud image acquired with a real-life environment is presented.
KW - Direct time of flight (DToF)
KW - LiDAR
KW - SAR analog-to-digital-converter (ADC)
KW - TDC/ADC hybrid
KW - ToF
KW - range measurement
KW - smart accumulation technique (SAT)
UR - http://www.scopus.com/inward/record.url?scp=85054209189&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85054209189&partnerID=8YFLogxK
U2 - 10.1109/JSSC.2018.2868315
DO - 10.1109/JSSC.2018.2868315
M3 - Article
AN - SCOPUS:85054209189
SN - 0018-9200
VL - 53
SP - 3026
EP - 3038
JO - IEEE Journal of Solid-State Circuits
JF - IEEE Journal of Solid-State Circuits
IS - 11
M1 - 8470112
ER -