論文ー2017年度ー

2017

[1] T. T. Nguyen, M. Hiraiwa, T. Koganezawa, S. Yasuno, and S-I. Kuroki, “Formation of (100) Ori-ented Large Poly-Si Thin Films with Multi-Line Beam Continuous-Wave Laser Lateral Crystal-lization,” Jpn. J. Appl. Phys. 57, pp.031302-1 – 031302-6, 2018.

[2] T. Tanehira, Y. Furubayashi, A. Yamamoto, K. Yonemori, S. Miyoshi, and S-I. Kuroki, “Calcula-tion of Seebeck Coefficients for Advanced Heat Transfer Modules,” ECS Transaction 80 (5), pp. 57-62, 2017.

[3] Y. Furubayashi, T. Tanehira, A. Yamamoto, K. Yonemori, S. Miyoshi, and S-I. Kuroki, “Peltier Effect of Silicon for Cooling 4H-SiC-based Power Devices,” ECS Transaction 80 (5), pp. 77-85, 2017.

[4] M. De Silva, T. Kawasaki, T. Miyazaki, T. Koganezawa, S. Yasuno, and S-I. Kuroki, “Formation of epitaxial Ti-Si-C Ohmic contact on 4H-SiC C face using pulsed-laser annealing,” Appl. Phys. Lett. 110, 252108-1 – 252108-5, 2017.

[5] T. T. Nguyen, M. Hiraiwa, and S-I. Kuroki, “Ultrahigh-performance (100)-oriented polycrystal-line silicon thin-film transistors and their microscopic crystal structures,” Appl. Phys. Express, 10, 056501-1 -056501-4, 2017.

[6] S-I. Kuroki, T. Kurose, H. Nagatsuma, S. Ishikawa, T. Maeda, H. Sezaki, T. Kikkawa, T. Makino, T. Ohshima, M. Östling, and C.-M. Zetterling, “4H-SiC Pseudo-CMOS Logic Inverters for Harsh Environment Electronics,” Mat. Sci. Forum, 897, pp. 669-672, 2017.

[7] M. De Silva, T. Kawasaki, T. Kikkawa, and S-I. Kuroki, “Low Resistance Ti-Si-C Ohmic Contacts for 4H-SiC Power Devices Using Laser Annealing,” Mat. Sci. Forum, 897, pp. 399-402, 2017.

[8] K. Muraoka, H. Sezaki, S. Ishikawa, T. Maeda, T. Sato, T. Kikkawa, and S-I. Kuroki, “En-hanced-Oxidation and Interface Modification on 4H-SiC(0001) Substrate Using Alkaline Earth Metal,” Mat. Sci. Forum, 897, pp. 348-351, 2017.

[9] T. T. Nguyen, and S.-I. Kuroki, “Characterization of p-channel TFTs with (100)-oriented poly-Si thin film formed by multiline beam continuous-wave laser lateral crystallization,” International Thin-Film Transistor Conference 2018 (ITC2018), Guangzhou, China, No.14, 2018.

[10] H. Oka, K. Inoue, T. Tomita, Y. Wada, T. T. Nguyen, S. Kuroki, T. Hosoi, T. Shimura, and H. Watanabe, “Back-side Illuminated GeSn Photodiode Array on Quartz Substrate Fabricated by La-ser-induced Liquid-phase Crystallization for Monolithically-integrated NIR Imager Chip,” 2017 International Electron Devices Meeting (IEDM) Technical Digest, pp.393-396, 2017.

[11] S-I. Kuroki, “4H-SiC MOSFETs and Logic Inverters for Harsh Environment Electronics,” 19th Takayanagi Kenjiro Memorial Symposium, pp.15-17, 2017 (Invited).

[12] S-I. Kuroki, “4H-SiC Self-Aligned Gate MOSFETs and Logic Inverters for Harsh Environment Electronics,” The 2nd International Symposium on Biomedical Engineering, pp. 40-41, 2017.

[13] T. Tanehira, Y. Furubayashi, A. Yamamoto, K. Yonemori, S. Miyoshi, and S-I. Kuroki, “Calcula-tion of Seebeck Coefficients for Advanced Heat Transfer Modules”, 232nd Electrochemical Soci-ety Meeting, National Harbor, MD, USA, #1177, 2017.

[14] Y. Furubayashi, T. Tanehira, K. Yonemori, S. Miyoshi, and S-I. Kuroki, “Peltier Effect of Silicon for cooling 4H-SiC-based power devices”, 232nd Electrochemical Society Meeting , National Harbor, MD, USA, #1186, 2017 (Invited).

[15] J. Kajihara, S-I. Kuroki, S. Ishikawa, T. Maeda, H. Sezaki, T. Makino, T. Ohshima, M. Östling, and C.-M. Zetterling, “4H-SiC pMOSFETs with Al-doped S/D and NbNi silicide ohmic contacts,” The International Conference on Silicon Carbide and Related Materials 2017 (ICSCRM2017), Washington, D.C., USA, WE.DP.4, 2017.

[16] T. Kurose, S.-I. Kuroki, S. Ishikawa, T. Maeda, H. Sezaki, T. Makino, T. Ohshima, M. Östling, and C.-M. Zetterling, “Low-parasitic-capacitance self-aligned 4H-SiC nMOSFETs for harsh environ-ment electronics,” The International Conference on Silicon Carbide and Related Materials 2017 (ICSCRM2017), Washington, D.C., USA, TH.CP.3, 2017.

[17] K. Muraoka, S. Ishikawa, H. Sezaki, T. Maeda, and S.-I. Kuroki, “Correlation between field effect mobility and accumulation conductance at 4H-SiC MOS interface with barium,” The International Conference on Silicon Carbide and Related Materials 2017 (ICSCRM2017), Washington, D.C., USA, TH.CP.2, 2017.

[18] K. Kobayakawa, K. Muraoka, H. Sezaki, S. Ishikawa,T. Maeda, and S.-I. Kuroki, “Effects of CF4 surface etching on 4H-SiC MOS Capacitors,” The International Conference on Silicon Carbide and Related Materials 2017 (ICSCRM2017), Washington, D.C., USA, WE.CP.9, 2017.

[19] M. De Silva, T. Kawasaki, and S.-I. Kuroki, “Electrical properties of Ti-Si-C Ohmic contact on ion-implanted n-type 4H-SiC C face,” The International Conference on Silicon Carbide and Re-lated Materials 2017 (ICSCRM2017), Washington, D.C., USA, TU.CP.7, 2017.

[20] S-I. Kuroki, T. T. Nguyen, and M. Hiraiwa, “(211) and (100) Surface Oriented Poly-Si Thin Film Transistors with Continuous-Wave Laser Lateral Crystallization,” The 17th International Meeting on Information Display (iMID2017), Busan, Korea, C35-2, 157, 2017 (Invited).

[21] R. Nakashima, R. Shin, H. Hanafusa, and S. Higashi, “Generation of ultra high-power thermal plasma jet and its application to crystallization of amorphous silicon films,” Jpn. J. Appl. Phys. 56 (6S2), 06HE05-1 – 06HE05-4, 2017.

[22] H. Hanafusa, R. Ishimaru, and S. Higashi, “High-temperature and high-speed oxidation of 4H-SiC by atmospheric pressure thermal plasma jet,” Jpn. J. Appl. Phys. 56, 040304-1 – 040304-3, 2017.

[23] H. Hanafusa, and S. Higashi, “Activation of High-temperature-implanted Phosphorus Atoms in 4H-SiC by Atmospheric Pressure Thermal Plasma Jet Annealing,” Ext. Abs. 2018 18th Int. Work-shop Junction Tech. (IWJT-2018), Shanghai, China, pp. 24-27, 2018 (Invited).

[24] S. Higashi, “Nitrogen-boosted Atmospheric Pressure Thermal-Plasma-Jet Generation and Its Ap-plication to Crystallization of Amorphous Silicon Films on Flexible Glass,” Abs. 2018 Int. Thin-Film Transistor Conf. (ITC2018), Guangzhou, China, pp. 46, 2018 (Invited).

[25] R. Mizukami, T. Yamashita, and S. Higashi, “Single Crystalline Silicon CMOS Circuit Fabrication on Polyethylene Terephthalate Substrate by Meniscus Force Mediated Layer Transfer Technique,” Abs. 2018 Int. Thin-Film Transistor Conf. (ITC2018), Guangzhou, China, pp. 44, 2018.

[26] S. Higashi, M. Wei, T. Kanamaru, “Low Temperature Formation of SiNx Encapsulation Films by Remote Plasma Enhanced Chemical Vapor Deposition,” Proc. 24th Int. Display Workshops (IDW’17), Sapporo, Japan, pp. 687-689, 2017.

[27] R. Mizukami, T. Yamashita, S. Higashi, “Single Crystalline Silicon CMOS Circuit Fabrication on Plastic Substrate by Meniscus Force Mediated Layer Transfer Technique,” Proc. 24th Int. Display Workshops (IDW’17), Sapporo, Japan, pp. 1525-1528, 2017.

[28] H. Hanafusa, W. Nakano, R. Nakashima and S. Higashi, “Extremely High-power-density Atmos-pheric Pressure Thermal-Plasma-Jet Generated by Nitrogen-boost Effect” Proc. Int. Symp. Dry Process (DPS2017), Tokyo, Japan, pp. 33-34, 2017.

[29] H. Hanafusa, T. Taniguchi and S. Higashi, “Silicidation-Less Ohmic Contact Formation on N-Type 4H-SiC with Silicon Cap Annealing,” International Conference on Silicon Carbide and Related Materials (ICSCRM 2017), Washington, D.C. 2017.

[30] T. Hieda, H. Hanafusa, S. Higashi, “Investigation on Crack suppression by Thermal-Plasma-Jet Crystallization of Amorphous Silicon Films on Flexible Glass Substrate,” 231st Electrochem. Soc. (ECS) Meeting New Orleans, LA, USA, #1019, 2017.

[31] T. Sato, S. Kuroki, Y. Kayaba and T. Kikkawa, “Low-k Mesoporous Pure Silica Zeolite Synthesis with the Centrifugation Process of a Zeolite Precursor, ECS J. Solid State Sci. Technol. 7 (5), N67-N71, 2018.

[32] X. Xiao, H. Qi, X. Sui, and T. Kikkawa, “Evaluation and criterion determination of the low-k thin film adhesion by the surface acoustic waves with cohesive zone model,” Applied Surface Science, 399, pp. 599–607, 2017.

[33] H. Song, S. Sasada, T. Kadoya, M. Okada, K. Arihiro, X. Xiao, and T. Kikkawa, “Detectability of Breast Tumor by a Hand-held Impulse-Radar Detector: Performance Evaluation and Pilot Clinical Study,” Scientific Reports, 7, 16353, 2017.

[34] H. Song, A. Azhari, X. Xiao, E. Suematsu, H. Watanabe, and T. Kikkawa, “Microwave Imaging Using CMOS Integrated Circuits with Rotating 4 × 4 Antenna Array on a Breast Phantom,” In-ternational Journal of Antennas and Propagation, 2017, 6757048, 2017.

[35] A. Azhari, Y. Kuwano, X. Xiao, and T. Kikkawa, “Transmit/receive 3–20 GHz 1.2 mW packaged double-pole-16-throw switching matrix for radarbased target detection,” Jap. J. of Appl. Phys. 57 (1), 014101 -1-9, 2018.

[36] A. Toya, Y. Masui, M. Sugawara, T. Maeda, M. Ono, Y. Murasaka, A. Iwata, and T. Kikkawa, “Sampling Clock Generation Circuits for Time-domain Breast Cancer Detection System,” Proc. 2017 IEEE Biomedical Circuits and Systems Conference, Turin, Italy, 2017.

[37] Y. Masui, A. Toya, M. Sugawara, T. Maeda, M. Ono, Y. Murasaka, A. Iwata, and T. Kikkawa, “Differential equivalent time sampling receiver for breast cancer detection,” Proc. 2017 IEEE Biomedical Circuits and Systems Conference, Turin, Italy, 2017.

[38] T. Sakamoto, H. Song, and T. Kikkawa, “Radar Imaging of Breast Cancer Using Kirchhoff Migration and Singular Value Decomposition,” Proc. 2017 IEEE International on Antenna Measurement and Applications, Tsukuba, Japan, pp. 268-271, 2017.

[39] H. Sato, H. Song, H. Kono, X. Xiao, R. Miyake and T. Kikkawa, “Microwave Characteristics of Glycerin-Saline Mixtures for a Breast Phantom,” Proc. Int. Symp. on Biomedical Engineering, Tokyo, Japan, 2017.

[40] H. Song, H. Sato, X. Xiao, and T. Kikkawa, “Microwave Confocal Imaging Utilizing a Cross-shaped Dome Antenna Array with Time-Domain CMOS Radar System,” Proc. Int. Symp. on Biomedical Engineering, Tokyo, Japan, 2017.

[41] K. Kusdianto, D. Jiang, M. Kubo, and M. Shimada, “Fabrication of TiO2-Ag Nanocomposite Thin Films via One-step Gas-phase Deposition,” Ceramics International, 43 (6), pp. 5351-5355, 2017.

[42] M. Kubo, T. Saito, and M. Shimada, “Evaluation of the Parameters Utilized for the Aero-sol-assisted Synthesis of HKUST-1,” Microporous and Mesoporous Materials, 245, pp. 126-132, 2017.

[43] M. Kubo, T. Taguchi, and M. Shimada, “Preparation of Nanoparticle-embedded Thin Films by Simultaneous Feeding of Gaseous and Solid Raw Materials in Plasma-Enhanced Chemical Vapor Deposition process,” Thin Soild Films, 632, pp. 55-65, 2017.

[44] T. Oyabu, T. Myojo, B.-W. Lee, T. Okada, H. Izumi, Y. Yoshiura, T. Tomonaga, K. Kawai, M. Shimada, M. Kubo, K. Yamamoto, K. Kawaguchi, T. Sasaki, and Y. Morimoto, “Comparison of Biopersistence between Inhalation and Intratracheal Instillation of NiO and TiO2 Nanoparticles,” Int. J. Mol. Sci. 18, 2757, 2017.

[45] K. Kusdianto, D. Jiang, M. Kubo, and M. Shimada, “Effect of Annealing Temperature on the Photocatalytic Activity of Ag-TiO2 Nanocomposite Films by One-step Gas-Phase Deposition,” Materials Research Bulletin, 97, pp. 497-505, 2018.

[46] K. Kusdianto, M. Shimada, M. Kubo and H. Masuda, “Controlling the Structure of Metal Oxide Layers Grown on Carbon Nanotubes Surface by In-flight Coating,” Asian Aerosol Conference AAC2017, PS0164, Jeju, Republic of Korea, 2017.

[47] D. Jiang, K. Kusdianto, M. Kubo and M. Shimada, “Enhanced Photocatalytic Activity of TiO2‒Ag Nanocomposite Films Prepared via One-step Gas-phase Deposition by Heat Treatment,” Asian Aerosol Conference AAC2017, PS0165, Jeju, Republic of Korea, 2017.

[48] M. Kubo, T. Saito and M. Shimada, “Continuous Synthesis of Metal-organic Framework HKUST-1 by Spray-drying,” Asian Aerosol Conference AAC2017, PS0139, Jeju, Republic of Ko-rea, 2017.

[49] Y. Morimoto, H. Izumi, Y. Yoshiura, Y. Fujisawa, T. Tomonaga, T. Oyabu, T. Okada, T. Myojo, M. Shimada and M. Kubo, “Estimation of Pulmonary Toxicity of Nanomaterials Following Subacute Inhalation,” European Aerosol Conference 2017, T406N20f, Zurich, Switzerland, 2017.

[50] A. Nakajima, T. Tabei, and T. Yasukawa, “Fullerene-Containing Electrically Conducting Electron Beam Resist for Ultrahigh Integration of Nanometer Lateral-Scale Organic Electronic Devices,” Scientific Reports 7, 4306, 2017.

[51] K. Tanimoto, Y. Amemiya, and S. Yokoyama, “Optical Waveguides with Memory Effect Using Photochromic Material for Neural Network,” Extend. Abst. Int. Conf. on Solid State Devices and Materials (SSDM2017) Sendai, Japan, B-4-02, pp. 97-98, 2017.

[52] A. Ikeda, T. Iizuka, N. Maekubo, K. Nobusawa, K. Sugikawa, K. Koumoto, T. Suzuki, T. Nagasa-ki, and M. Akiyama, “Water-Solubilization of Fullerene Derivatives by β-(1,3-1,6)-D-Glucan and Their Photodynamic Activities toward Macrophages,” Chem.-Asian J. 12 (10), pp. 1069–1074, 2017.

[53] A. Ikeda, S. Satake, T. Mae, M. Ueda, K. Sugikawa, H. Shigeto, H. Funabashi, and A. Kuroda, “Photodynamic Activities of Porphyrin Derivative–Cyclodextrin Complexes by Photoirradiation,” ACS Med. Chem. Lett. 8 (5), pp. 555–559, 2017.

[54] K. Sugikawa, Y. Takamatsu, T. Kakigi, K. Yasuhara, and A. Ikeda, “Tubulation of Liposomes via the Interaction of Supramolecular Nanofibers,” Chem. Commun. 53 (73), pp. 10140–10143, 2017.

[55] K. Sugikawa, K. Kozawa, M. Ueda, and A. Ikeda, “Stepwise Growth of Fullerene Nanoparticles through Guest Exchange of γ-Cyclodextrin Complexes in Water,” Chem.-Eur. J. 23 (55), pp. 13704–13710, 2017.

[56] K. Sugikawa, T. Kadota, K. Matsuo, K. Yasuhara, and A. Ikeda, “Growth of Anisotropic Gold Nanoparticle Assemblies via Liposome Fusion,” Materials (Basel), 10, 1317, 2017.

[57] A. Ikeda, T. Mae, K. Sugikawa, K. Komaguchi, T. Konishi, T. Hirao, and T. Haino, “Slow Inter-molecular Complexation–Decomplexation Exchanges of Cyclodextrins in Fullerene and Its Deriv-ative Complexes,” Chem. Select, 2 (34), pp. 11322–11327, 2017.

[58] K. Moriwaki, T. Sawada, M. Akiyama, A. Ikeda, J. Kikuchi, T. Matsumura, S. Yano, H. Kataoka, M. Inoue, and H. Akashi, “Synthesis and Photophysical Properties of S-mannosylated Chlorins and its Effect on Photocytotoxicity in HeLa Cells,” Bull. Chem. Soc. Jpn. 91 (2), pp. 230–236, 2018.

[59] S. Hirata, T. Ono, Y. Amemiya, T. Tabei, and S. Yokoyama, “Influence of Surface Smoothing on Spin Seebeck Effect of Ce1Y2Fe5O12 Deposited by Metal Organic Decomposition,” Jpn. J. App. Phys. 56 (4), pp. 04CN04-1-4, 2017.

[60] T. Ono, S. Hirata, Y. Amemiya, T. Tabei, and S. Yokoyama, “Spin Seebeck Devices Using CexY3-xFe5O12 Deposited by Metal Organic Decomposition -Influence of Composition and Long Time Annealing Effect,” Extend. Abst. Int. Conf. on Solid State Devices and Materials (SSDM2017) Sendai, Japan, PS-12-16, pp. 999-1000, 2017.

[61] T. Ono, S. Hirata, Y. Amemiya, T. Tabei, and S. Yokoyama, “Anomalous Nernst Effect of Ni-Al Alloys and Application to Spin Seebeck Devices,” Extend. Abst. Int. Conf. on Solid State Devices and Materials (SSDM2017) Sendai, Japan, PS-12-12, pp. 991-992, 2017.

[62] X. Zhang, F. An, I. Nakashima, A. Luo, L. Chen, I. Ishii, and H. J. Mattausch, “A hard-ware-oriented HOG algorithm and its VLSI implementation,” Jpn. J. Appl. Phys. 56 (4), 04CF01 1-7, 2017.

[63] A. Luo, F. An, Y. Fujita, X. Zhang, L. Chen, and H. J. Mattausch, “Low-Power Coprocessor for Haar-Like Feature Extraction with Pixel-Based Pipelined Architecture,” Jpn. J. Appl. Phys. 56 (4), 04CF06 1-9, 2017.

[64] F. An, X. Zhang, A. Luo, L. Chen, and H. J. Mattausch, ”A Hardware Architecture for Cell-based Feature-Extraction and Classification Using Dual-Feature Space,“ IEEE Trans. on Circuits and Systems for Video Technology, Early Access, pp. 1-13, 2017.

[65] A. Luo, F. An, X. Zhang, L. Chen, and H. J. Mattausch, ”Resource-Efficient Object Recognition Coprocessor with Parallel Processing of Multiple Scan Windows in 65 nm CMOS,“ IEEE Trans. on Very Large Scale Integration (VLSI) Systems, 26 (3), pp. 431-444, 2018.

[66] J. Guan, F. An, X. Zhang, L. Chen, and H. J. Mattausch, “Parallelization of Hough Transform for High-Speed Straight-Line Detection in XGA-Size Videos,” Proceedings of the IEEE International Conference on Consumer Electronics (ICCE-TW’2017), Taipei, Taiwan, 2017.

[67] A. Luo, F. An, X. Zhang, L. Chen, and H. J. Mattausch, “Reconfigurable Block-based Normaliza-tion Circuit for On-chip Object Detection,” Extend. Abst. Int. Conf. on Solid State Devices and Materials (SSDM2017), Sendai, Japan, 19-22, pp. 819-820, 2017.

[68] T. A. Vu, and M. Fujishima, “A 300 GHz CMOS Transmitter Front-End for Ultrahigh-Speed Wireless Communications,” International Journal of Electrical and Computer Engineering (IJECE), 7 (4), 2017.

[69] A. Takeshige, Y. Ito, K. Takano, K. Katayama, T. Yoshida, M. Fujishima, and S. Amakawa, “Causal transmission line model incorporating frequency-dependent linear resistors,” 2017 IEEE 21st Workshop on Signal and Power Integrity (SPI), pp. 1-4, 2017.

[70] K. Katayama, S. Amakawa, K. Takano, T. Yoshida, M. Fujishima, K. Hisamitsu, and H. Takatsuka, “An 80–106 GHz CMOS amplifier with 0.5 V supply voltage,” 2017 Radio Frequency Integrated Circuits Symposium (RFIC), pp. 308-311, 2017.

[71] K. Takano, K. Katayama, S. Amakawa, T. Yoshida, and M. Fujishima, “56-Gbit/s 16-QAM Wireless Link With 300-GHz-Band CMOS Transmitter,” 2017 IEEE International Microwave Symposium (IMS2017), pp. 1-4, 2017.

[72] S. Hara, K. Katayama, K. Takano, R. Dong, I. Watanabe, N. Sekine, A. Kasamatsu, T. Yoshida, S. Amakawa, M. Fujishima, “A 32 Gbit/s 16QAM CMOS Receiver in 300 GHz Band,” 2017 IEEE International Microwave Symposium (IMS2017), pp. 1-4, 2017.

[73] K. Takano, S. Amakawa, T. Yoshida, and M. Fujishima, “A figure of merit for terahertz transceiver modules,”Vietnam Japan Microwave 2017 Conference (VJMW 2017), 2017.

[74] S. Kohara, S. Amakawa, T. Yoshida, and M. Fujishima, “Noise-figure optimization of a multi-stage millimeter-wave amplifier with negative capacitance feedback,” 2017 Thailand-Japan Microwave (TJMW2017), 2017.

[75] K. Katayama, K. Takano, S. Amakawa, T. Yoshida, and M. Fujishima, “2.37-dBm-output 288-310 GHz frequency multiplier in 40 nm CMOS,” 2017 IEEE International Symposium on Ra-dio-Frequency Integration Technology (RFIT2017), 2017.

[76] S. Hara, K. Katayama, K. Takano, R. Dong, I. Watanabe, N. Sekine, A. Kasamatsu, T. Yoshida, S. Amakawa, and M. Fujishima, “A 416-mW 32-Gbit/s 300-GHz CMOS receiver,” 2017 IEEE In-ternational Symposium on Radio-Frequency Integration Technology (RFIT2017), pp. 65-67, 2017.

[77] T. A. Vu, K. Takano, and M. Fujishima, “A 300 GHz single varactor doubler in 40 nm CMOS,” 2017 IEEE International Symposium on Radio-Frequency Integration Technology (RFIT2017), pp. 165-167, 2017.

[78] K. Takano, K. Katayama, S. Hara, R. Dong, K. Mizuno, K. Takahashi, A. Kasamatsu, T. Yoshida, S. Amakawa, and M. Fujishima, “300-GHz CMOS transmitter module with built-in waveguide tran-sition on a multilayered glass epoxy PCB,” The 2018 IEEE Radio and Wireless Symposium (RWS2018) , pp. 154-156, 2018.

[79] T. Okamoto, T. Koide, T. Tamaki, B. Raytchev, K. Kaneda, S. Yoshida, H. Mieno, S. Tanaka, “In-vestigation of Real-Time Computer-Aided Diagnosis system using CNN feature and SVM identifier with Colorectal Endoscopic Images,” Proceedings of the 21th Workshop on Synthesis And System Integration of Mixed Information technologies (SASIMI 2018), pp.71 – 76, 2018.

[80] T. Hirakawa, T. Tamaki, B. Raytchev, K. Kaneda, T. Koide, S. Yoshida, H. Mieno, and S. Tanaka, “Development of a Real-time Colorectal Tumor Classification System for Narrow-band Imaging Zoom-videoendoscopy,” CoRR, Computer Vision and Pattern Recognition, https://arxiv.org/abs/1612.05000v2

[81] T. Tamaki, S. Sonoyama, T. Kurita, T. Hirakawa, B. Raytchev, K. Kaneda, T. Koide, S. Yoshida, H. Mieno, S. Tanaka, and K. Chayama, “Domain Adaptation with L2 constraints for classifying images from different endoscope systems,” CoRR, Computer Vision and Pattern Recognition, arXiv:1611.024463.

[82] 小出哲士, 玉木 徹, 吉田成人, 三重野 寛, 田中信治, “機械学習と転移学習の機能を有するリアルタイム画像認識システムの大腸ガン内視鏡診断支援への応用,” 電子情報通信学会技術研究報告, 117 (278), CPSY2017-42, pp. 19-19, 2017 (招待講演).

[83] 小出哲士,岡本拓巳, 玉木徹,吉田成人, 三重野寛, 田中信治, “内視鏡画像にCNN特徴を適用した大腸がん診断支援システムのテンシリカVisionDSPによるリアルタイム処理の実現,” CDN Live Japan 2017, 2017 (招待講演).

[84] 岡本 拓巳, 小出 哲士, 玉木 徹, Bisser Raytchev, 金田 和文, 吉田 成人, 三重野 寛, 田中 信治, 戸石 浩司, 菅原 崇之, 辻 雅之, 小田川 真之, 丹場 展雄, “CNN特徴とSVM分類を適用した大腸内視鏡画像がん診断支援システムのカスタマイザブルDSPコアへの実装,” Design Automa-tionシンポジウム (DAシンポジウム2017), 4A-2, pp. 1-6, 2017.

[85] 岡本 拓巳, 小出 哲士, Anh-Tuan Hoang, 玉木 徹, 平川 翼, Bisser Raytchev, 金田 和文, 吉田 成人, 三重野 寛, 田中 信治, “大腸NBI拡大内視鏡を用いた大腸ガン診断支援システム,” 第20回画像の認識・理解シンポジウム(MIRU2017), DS-8, 2017.

[86] 小出哲士, 玉木徹, 吉田成人, “画像処理技術が大腸がん診断支援を加速する,” 2017/04/10, 日経デジタルヘルス, 日経テクノロジーonline 記事.

[87] T. Kasama, W. P. Bula, Y. Endo, T. Koide, T. Okamoto, A-T. Hoang, M. Komine, A. Ogawa, C. Sone, and R. Miyake, “Development of novel hydroponic culture system for real-time montoring of root and leaf lettuces,” Proc. of 7th int. multidisciplinary conf. of optfluidics 2017, Singapore, 2017.

[88] W. P. Bula, T. Kasama, Y. Endo, T. Koide, Y. Yaji, and R. Miyake,” 3D printed microfluidic platform for non-invasive smart agriculture sample collection”, Proc. of the 9th Int. Symposium on Micro-chemistry and Microsystems (ISMM 2017), Tasmania, Austraria, 2017.

[89] W. P. Bula, T. Kasama, Y. Endo, T. Koide, Y. Yaji, and R. Miyake,” Low cost field-deployable environmental sensor network for smart agriculture”, Proc. of the 9th Int. Symposium on Micro-chemistry and Microsystems (ISMM 2017), Tasmania, Austraria, 2017.

[90] A. K. Sana, Y. Amemiya, and S. Yokoyama, “High-Sensitivity Double-Cavity Silicon Photon-ic-Crystal Resonator for Label-Free Biosensing,” Jpn. J. App. Phys. 56 (4) pp. 04CM06-1-5, 2017.

[91] A. K. Sana, J. Maeda, Shu. Yokoyama, Y. Amemiya, and S. Yokoyama, “Temperature Depend-ence of Resonance Characteristics of Silicon Resonators and Thermal Stability Improvement by Differential Operation Method,” Jpn. J. App. Phys. 56 (4) pp. 04CC06-1-5, 2017.

[92] Y. Amemiya, and S. Yokoyama, “Characteristics of stacked multi-slot ring resonator sensors,” Sensor Review, 37 (3), pp. 357-363, 2017.

[93] A. K. Sana, Y. Amemiya, T. Ikeda, A. Kuroki, and S. Yokoyama, “Label Free Detection of Pros-tate Specific Antigen Using Photonic Crystal Nanocavity Resonator,” Extend. Abst. Int. Conf. on Solid State Devices and Materials (SSDM2017), Sendai, Japan, F-4-03, pp. 287-288, 2017.

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