Location History:
- Utsunomiya, JP (2014 - 2015)
- Yokohama, JP (2020)
- Kanagawa, JP (2023 - 2024)
Company Filing History:
Years Active: 2014-2024
Title: Naoya Iizuka: Innovator in Ultrasonic Diagnostic Technology
Introduction
Naoya Iizuka is a prominent inventor based in Utsunomiya, Japan. He has made significant contributions to the field of ultrasonic diagnostic technology, holding a total of 9 patents. His work focuses on enhancing the capabilities of ultrasonic diagnostic apparatuses through innovative methods and technologies.
Latest Patents
Iizuka's latest patents include advancements in ultrasonic diagnostic apparatuses, learning apparatuses, and image processing methods. One notable invention is an ultrasonic diagnostic apparatus that features an ultrasonic probe designed to scan an observation region in an object using ultrasonic waves. This apparatus includes an estimated image generating unit that utilizes a machine-learned model to generate estimated images based on received signals. Another significant patent involves an ultrasonic diagnostic apparatus that generates estimated image data corresponding to image data obtained from ultrasonic focused beams, enhancing the accuracy and efficiency of diagnostic imaging.
Career Highlights
Naoya Iizuka is currently employed at Canon Kabushiki Kaisha, where he continues to develop innovative technologies in the field of ultrasonic diagnostics. His work has been instrumental in advancing the capabilities of medical imaging, providing healthcare professionals with better tools for diagnosis and treatment.
Collaborations
Iizuka has collaborated with notable colleagues, including Akira Miyake and Kenichi Nagae. These collaborations have fostered a creative environment that encourages the development of cutting-edge technologies in ultrasonic diagnostics.
Conclusion
Naoya Iizuka's contributions to ultrasonic diagnostic technology exemplify the impact of innovation in the medical field. His patents and ongoing work at Canon Kabushiki Kaisha continue to push the boundaries of what is possible in medical imaging.