Staff Introduction
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眞邉 泰斗 Taito MANABE
- Emailtmanabenagasaki-u.ac.jp- Position / Degree Institute of Integrated Science and Technology, Assistant Professor
School of Information and Data Sciences, Assistant Professor
Doctor of Engineering- Specialized Field Reconfigurable Computing, FPGA, Real-Time Image Processing, Machine Learning- External Links researchmap
CV
| Mar.2016 | Graduated from the School of Engineering, Nagasaki University |
| Mar.2018 | Completed a Master Course at the Graduate School of Engineering, Nagasaki University |
| Mar.2021 | Completed a Doctoral Course at the Graduate School of Engineering, Nagasaki University |
| Mar.2021 | Doctor of Engineering |
| Apr.2021 | Assistant Professor, School of Information and Data Sciences, Nagasaki University |
Research Activities
Real-Time Super-Resolution with FPGA
Super-Resolution is the image processing technique to restore high-resolution images from low-resolution images.
In this work, a fast and low-latency super-resolution system has been implemented using a field-programmable gate array (FPGA), a device on which users can implement arbitrary logic circuits.
The system is based on a convolutional neural network (CNN). Unlike common CNN processors, the whole network is mapped on an FPGA as a pipeline, making the best use of parallelism for better performance.

Surgical Image Segmentation
Laparoscopy is an operation performed through small incisions using a camera system called a laparoscope. If a camera assistant, who maneuvers the laparoscope, can be replaced with a robot, it would be beneficial in the area suffering from lack of medical workers.
The objective of this work is to realize the CNN-based organ segmentation system for cholecystectomy used for automated laparoscope control.
Considering a small dataset resulting from the highly specialized task, regularization techniques and a devised network structure are used to prevent overfitting.

Educational Activities
Class
Information and Data Sciences:Practice in Software ProgrammingⅠ, Embedded System