15. Hihara, H., Iwase, K., Sano, J., Otake, H., Okada, T., Funase, R., Kashikawa, R., Higashino, I.,
Masuda, T.: SpaceWire-based thermal-infrared imager system for asteroid sample return mission HAYABUSA2. J. Appl. Rem. Sens. 8, 084987-1-13 (2014)
16. Hihara, H., Iwasaki, A., Hashimoto, M., Ochi, H., Mitsuyama, Y., Onodera, H., Kanbara, H.,
Wakabayashi, K., Sugibayashi, T., Takenaka, T., Hada, H., Tada, M.: Applications of
reconfigurable processors as embedded automatons in the IoT sensor networks in space. In:
Asai, S. (ed.) VLSI Design and Test for Systems Dependability, 1st edn. Springer, Tokyo
(2019)
17. http://www.nec.com/en/global/solutions/iot/iotplatform/
18. Suzuki, M., Hasegawa, Y., Yamada, Y., Kaneko, N., Deguchi, K., Amano, H., Anjo, K.,
Motomura, M., Wakabayashi, K., Toi, T., Awashima, T.: Stream applications on the dynamically reconfigurable processor. In: Proceedings of 2004 IEEE International Conference on
Field-Programmable Technology (IEEE Cat. No.04EX921) (2004)
19. Suzuki, N., Kurotaki, S., Suzuki, M., Kaneko, N., Yamada, Y., Deguchi, K., Hasegawa, Y.,
Amano, H., Anjo, K., Motomura, M., Wakabayashi, K., Toi, T., Awashima, T.: Implementing
and evaluating stream applications on the dynamically reconfigurable processor. In: 12th
Annual IEEE Symposium on Field-Programmable Custom Computing Machines (2004)
20. Sakamoto, T., Kaeriyama, S., Mizuno, M., Terabe, K., Hasegawa, T., Aono, M.: NanoBridge
technology for reconfigurable LSI. NEC Tech. J. 2(1), 72–75 (2007)
21. Tada, M., Okamoto, K., Sakamoto, T., Miyamura, M., Banno, N., Hada, H.: Polymer solidelectrolyte (PSE) switch embedded on CMOS for nonvolatile crossbar switch. IEEE Trans.
Electron Dev. 58(12), 4398–4405 (2011)
22. Tada, M., Sakamoto, T., Miyamura, M., Banno, N., Okamoto, K., Iguchi, N., Hada, H.:
Improved OFF-state reliability of nonvolatile resistive switch with low programming voltage.
IEEE Trans. Electron Dev. 59(9), 2357–2362 (2012)
23. Miyamura, M., Sakamoto, T., Tada, M., Banno, N., Okamoto, K., Iguchi, N., Hada, H.:
Low-power programmable-logic cell arrays using nonvolatile complementary atomic switch.
In: 15th International Symposium on Quality Electronic Design, pp. 330–334 (2014)
24. Hihara, H., Tamagawa, N., Imamura, T., Sugaya, H., Sugibayashi, T., Miyamura, M.,
Sakamoto, T., Tada, M., Hada, H., Wakabayashi, K., Iwasaki, A.: Programmable SpaceWire
interface with atom switch: components. In: 2016 International SpaceWire Conference (2016)
25. Hihara, H., Takano, Y., Sano, J., Iwase, K., Kawakami, S., Otake, H., Okada, T., Funase, R.,
Takada, J., Masuda, T.: Infrared sensor system using robotics technology for inter-planetary
mission. In: Proceedings Volume 9608: Infrared Remote Sensing and Instrumentation XXIII
(2015)
26. Hihara, H., Iwasaki, A., Tamagawa, N., Kuribayashi, M., Hashimoto, M, Mitsuyama, Y., Ochi,
H., Onodera, H., Kanbara, H., Wakabayashi, K., Tada, M.: Novel processor architecture for
onboard infrared sensors. In: Proceedings of SPIE, Infrared Remote Sensing and Instrumentation XXIV, vol. 9973, pp. 99730S-1-8 (2016)
27. ECSS-E-ST-50-12C. SpaceWire—links, nodes, routers and networks. ECSS Secretariat,
ESAESTEC, Requirements & Standards Division (2008)
28. Hihara, H., Ohtsuka, M., Mizushima, Y., Morisato, T., Ohshima, T., Miyoshi, H., Baba, K.:
Space-born fault tolerant computers. Inform. Process. 35(6), 497–503 (1994)
29. Hihara, H., Yamada, K., Adachi, M., Mitani, K., Akiyama, M., Hama, K.: Autonomous fault
tolerant computer for SERVIS-2 satellite. Technical Report of IEICE, DC2002-75, vol. 102, no.
492, pp. 19–24 (2002)
30. Kanekawa, N., Ihara, K.: Space computer systems. Onboard space computers using state-of-artLSIs. J. IEICE. 73(11), 1209–1214 (1990)
31. Onodera, H.: Overview of device variations. In: Asai, S. (ed.) VLSI Design and Test for
Systems Dependability, 1st edn. Springer, Tokyo (2019)
32. CCSDS.org. The official web site of the Consultative Committee for Space Data Systems.
http://public.ccsds.org/default.aspx
33. Makimoto, T.: Implications of Makimoto’s wave. IEEE Comput. 46(12), 32–27 (2013). http://
doi.ieeecomputersociety.org/10.1109/MC.2013.294
58
H. Hihara et al.
Masuda, T.: SpaceWire-based thermal-infrared imager system for asteroid sample return mission HAYABUSA2. J. Appl. Rem. Sens. 8, 084987-1-13 (2014)
16. Hihara, H., Iwasaki, A., Hashimoto, M., Ochi, H., Mitsuyama, Y., Onodera, H., Kanbara, H.,
Wakabayashi, K., Sugibayashi, T., Takenaka, T., Hada, H., Tada, M.: Applications of
reconfigurable processors as embedded automatons in the IoT sensor networks in space. In:
Asai, S. (ed.) VLSI Design and Test for Systems Dependability, 1st edn. Springer, Tokyo
(2019)
17. http://www.nec.com/en/global/solutions/iot/iotplatform/
18. Suzuki, M., Hasegawa, Y., Yamada, Y., Kaneko, N., Deguchi, K., Amano, H., Anjo, K.,
Motomura, M., Wakabayashi, K., Toi, T., Awashima, T.: Stream applications on the dynamically reconfigurable processor. In: Proceedings of 2004 IEEE International Conference on
Field-Programmable Technology (IEEE Cat. No.04EX921) (2004)
19. Suzuki, N., Kurotaki, S., Suzuki, M., Kaneko, N., Yamada, Y., Deguchi, K., Hasegawa, Y.,
Amano, H., Anjo, K., Motomura, M., Wakabayashi, K., Toi, T., Awashima, T.: Implementing
and evaluating stream applications on the dynamically reconfigurable processor. In: 12th
Annual IEEE Symposium on Field-Programmable Custom Computing Machines (2004)
20. Sakamoto, T., Kaeriyama, S., Mizuno, M., Terabe, K., Hasegawa, T., Aono, M.: NanoBridge
technology for reconfigurable LSI. NEC Tech. J. 2(1), 72–75 (2007)
21. Tada, M., Okamoto, K., Sakamoto, T., Miyamura, M., Banno, N., Hada, H.: Polymer solidelectrolyte (PSE) switch embedded on CMOS for nonvolatile crossbar switch. IEEE Trans.
Electron Dev. 58(12), 4398–4405 (2011)
22. Tada, M., Sakamoto, T., Miyamura, M., Banno, N., Okamoto, K., Iguchi, N., Hada, H.:
Improved OFF-state reliability of nonvolatile resistive switch with low programming voltage.
IEEE Trans. Electron Dev. 59(9), 2357–2362 (2012)
23. Miyamura, M., Sakamoto, T., Tada, M., Banno, N., Okamoto, K., Iguchi, N., Hada, H.:
Low-power programmable-logic cell arrays using nonvolatile complementary atomic switch.
In: 15th International Symposium on Quality Electronic Design, pp. 330–334 (2014)
24. Hihara, H., Tamagawa, N., Imamura, T., Sugaya, H., Sugibayashi, T., Miyamura, M.,
Sakamoto, T., Tada, M., Hada, H., Wakabayashi, K., Iwasaki, A.: Programmable SpaceWire
interface with atom switch: components. In: 2016 International SpaceWire Conference (2016)
25. Hihara, H., Takano, Y., Sano, J., Iwase, K., Kawakami, S., Otake, H., Okada, T., Funase, R.,
Takada, J., Masuda, T.: Infrared sensor system using robotics technology for inter-planetary
mission. In: Proceedings Volume 9608: Infrared Remote Sensing and Instrumentation XXIII
(2015)
26. Hihara, H., Iwasaki, A., Tamagawa, N., Kuribayashi, M., Hashimoto, M, Mitsuyama, Y., Ochi,
H., Onodera, H., Kanbara, H., Wakabayashi, K., Tada, M.: Novel processor architecture for
onboard infrared sensors. In: Proceedings of SPIE, Infrared Remote Sensing and Instrumentation XXIV, vol. 9973, pp. 99730S-1-8 (2016)
27. ECSS-E-ST-50-12C. SpaceWire—links, nodes, routers and networks. ECSS Secretariat,
ESAESTEC, Requirements & Standards Division (2008)
28. Hihara, H., Ohtsuka, M., Mizushima, Y., Morisato, T., Ohshima, T., Miyoshi, H., Baba, K.:
Space-born fault tolerant computers. Inform. Process. 35(6), 497–503 (1994)
29. Hihara, H., Yamada, K., Adachi, M., Mitani, K., Akiyama, M., Hama, K.: Autonomous fault
tolerant computer for SERVIS-2 satellite. Technical Report of IEICE, DC2002-75, vol. 102, no.
492, pp. 19–24 (2002)
30. Kanekawa, N., Ihara, K.: Space computer systems. Onboard space computers using state-of-artLSIs. J. IEICE. 73(11), 1209–1214 (1990)
31. Onodera, H.: Overview of device variations. In: Asai, S. (ed.) VLSI Design and Test for
Systems Dependability, 1st edn. Springer, Tokyo (2019)
32. CCSDS.org. The official web site of the Consultative Committee for Space Data Systems.
http://public.ccsds.org/default.aspx
33. Makimoto, T.: Implications of Makimoto’s wave. IEEE Comput. 46(12), 32–27 (2013). http://
doi.ieeecomputersociety.org/10.1109/MC.2013.294
58
H. Hihara et al.
