Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Taku Matsuzawa is active.

Publication


Featured researches published by Taku Matsuzawa.


Optics Express | 2012

Compact image scanner with large depth of field by compound eye system

Hiroyuki Kawano; Tatsuki Okamoto; Taku Matsuzawa; Hajime Nakajima; Junko Makita; Naoyuki Fujiyama; Eiji Niikura; Tatsuya Kunieda; Tadashi Minobe

A compact image scanner is designed by using a compound eye system with plural optical units in which a ray path is folded by reflective optics. The optical units are aligned in two lines and take each image of a separated field of view (FOV), slightly overlapped. Since the optical units are telecentric in the object space and the magnification ratio is constant regardless of the object distance, the separated pieces of a total image are easily combined with each other even in the defocused position. Since the optical axes between adjacent optical units are crossed obliquely, object distance is derived from the parallax at each boundary position and an adequate deblurring process is achieved for the defocused image.


Optics Express | 2014

Practical design for compact image scanner with large depth of field by compound eye system

Hiroyuki Kawano; Tatsuki Okamoto; Hajime Nakajima; Shigeru Takushima; Yoshitaka Toyoda; Satoshi Yamanaka; Tetsuo Funakura; Kosaku Yamagata; Taku Matsuzawa; Tatsuya Kunieda; Tadashi Minobe

We designed a new image scanner using the reflective optics of a compound eye system that can easily assemble plural imaging optical units (called imaging cells) and is compact with a large depth of field (DOF). Our image scanner is constructed from 32 reflective imaging cells, each of which takes an image of approximately a 10-mm field of view (FOV) that slightly overlap the adjacent imaging cells. The total image is rebuilt by combining the 32 images in post processing. We studied how to fold the optical path in the imaging cells and simplified the structure, resulting in the following three advances of our previous work: 1) greater compactness (50 × 31 mm2 in the cross section), 2) less variable optical characteristics among the imaging cells, and 3) easy assembly thanks to small number of optical components constructing the imaging cell.


Archive | 2009

Image retrieval device

Tadashi Minobe; Takahito Nakanishi; Seiichi Matsumura; Tetsuo Funakura; Hiroyuki Kawano; Tatsuki Okamoto; Taku Matsuzawa; Yasunori Matsumoto


Archive | 2016

LIGHT GUIDE, LIGHT SOURCE DEVICE, AND IMAGE READING DEVICE

Akiko Fujiuchi; Hironobu Arimoto; Taku Matsuzawa


Archive | 2013

Image read-in device

Taku Matsuzawa; Akira Ota; Daisuke Ohama; Hajime Nakajima; Hiroyuki Kawano; Sadaaki Yoshioka


Archive | 2013

IMAGE SENSOR AND IMAGE SENSOR DEVICE

Akira Ota; Taku Matsuzawa


Archive | 2014

LIGHT GUIDE AND IMAGE READING APPARATUS

Taku Matsuzawa; Kosaku Yamagata; Tadashi Minobe; Yasuhiro Nakamura; Hiroyuki Kawano


Optical Review | 2013

Compact and large depth of field image scanner for auto document feeder with compound eye system

Hiroyuki Kawano; Tatsuki Okamoto; Taku Matsuzawa; Hajime Nakajima; Junko Makita; Yoshitaka Toyoda; Tetsuo Funakura; Takahito Nakanishi; Tatsuya Kunieda; Tadashi Minobe


Archive | 2012

Lighting unit and image scanner using same

Tatsuki Okamoto; Taku Matsuzawa; Tadashi Minobe; Takahito Nakanishi


Archive | 2013

Image read-in device with fastener to fasten transparent member retaining lens array assembly and light shield to board

Taku Matsuzawa; Akira Ota; Daisuke Ohama; Hajime Nakajima; Hiroyuki Kawano; Sadaaki Yoshioka

Collaboration


Dive into the Taku Matsuzawa's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge