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Showing posts with label Camera. Show all posts
Showing posts with label Camera. Show all posts

Monday, March 21, 2011

Salt Grain-Sized Cameras Can Travel Inside Body



Cameras have shrunk over time, but they've never been this small. 
* German engineers have created the smallest microcameras of their kind.
* The new inexpensive disposable cameras can be produced 25,000 at a time.
* The microcamera's applications include medical and automotive imaging.
A new microcamera developed by German 
researchers measures a mere 1 millimeter on each side.


A new camera is as small as a coarse grain of salt -- the tiniest of its kind. This microcamera could go far: traveling deep into the human body to reveal hidden nooks and crannies. And it could be used in cars to keep drivers safe.


"I have it here on the desk," said Michael Töpper, project manager at the Fraunhofer Institute for Reliability and Microintegration in Berlin, the large German R&D facility that worked on the device. "If you look at the camera, it's hard to believe that this is working."


Fraunhofer developed the camera with the specialized image sensor company Awaiba, which sought to improve miniaturized cameras for medical applications. Current microcameras require individual, manual manufacturing techniques that have kept costs high. Töpper and his colleagues developed a method to assemble the cameras on a single wafer using specialized polymers to bond the parts.


"The last step is then dicing the image sensor into individual camera chips," he said.


Each of the three sides of the camera measures a mere 1 millimeter. One wafer can be used to assemble 25,000 lenses on 25,000 cameras. The resulting resolution for each of the miniature cameras is in the range of 25,000 pixels. While that's not high enough for a professional photographer, it is high for medical applications, Töpper said.


More efficient manufacturing means lower costs, and the microcameras themselves are disposable. Töpper points to a process for sterilizing reusable endoscopic cameras, saying that usually involves lots of chemicals. Although the new microcameras are not recyclable, he says that they are primarily made from silicon and glass. "There are no hazardous materials."


In medicine, gastroenterologists regularly use small cameras to check patients. Colon cancer is the second leading cause of cancer death, resulting in 150,000 cases every year, according to Dr. Gregory Cooper, a Case Western Reserve University professor of medicine and oncology, and gastroenterologist at University Hospitals Case Medical Center.


"Most colon cancers are thought to be preventable if the patient has a colonoscopy," he said.


Screening for polyps and colorectal cancer can involve a fairly invasive double-balloon endoscope requiring sedation, or a large swallowable "pill cam" that sometimes moves through a 25-foot small bowel too fast to capture all the information.


Dr. Cooper said he thinks the Fraunhofer microcamera technology looks interesting, although he notes that a scope used with the disposable camera would still need sterilization.


"If it can get around some of the current limitations of endoscopy, i.e. the sedation and the need to sterilize things, the limited visualization of the small bowel -- I think it has promise," he said.


At the moment Awaiba is testing the devices, and plans to put the microcameras into production within the next two years, Töpper said. Beyond medicine, the cameras could serve a useful purpose in the automotive industry. Installing them in cars might make camera-assisted parking more ubiquitous, and they could also help monitor drivers who risk falling asleep at the wheel.


"If you think about very, very small cameras, you will find dozens of applications," Töpper said. "Just think about the camera in the phone: 10 years ago everybody was laughing. 'Who needs a camera in a phone?'"

Wednesday, May 5, 2010

Omni-Focus Video Camera to Revolutionize Industry: Automatic Real-Time Focus of Both Near and Far Field Images


University of Toronto, a world-leading research university, announces a breakthrough development in video camera design. The Omni-focus Video Camera, based on an entirely new distance-mapping principle, delivers automatic real-time focus of both near and far field images, simultaneously, in high resolution. This unprecedented capability can be broadly applied in industry, including manufacturing, medicine, defense, security -- and for the consumer market.

Me
The above figure illustrates the omni-focus 
video camera’s high pixel resolution. Although 
the two sewing needles were photographed 
approximately 1.2 meters apart, both are in 
sharp focus. Note the eye of the back needle,
is actually viewed through the eye of the front needle. 
(Credit: University of Toronto)

Inventor and principal investigator of the Omni-focus video camera, Professor Keigo Iizuka of The Edward S. Rogers Sr. Department of Electrical and Computer Engineering, explains that, "the intensity of a point source decays with the inverse square of the distance of propagation. This variation with distance has proven to be large enough to provide depth mapping with high resolution. What's more, by using two point sources at different locations, the distance of the object can be determined without the influence of its surface texture." This principle led Professor Iizuka to invent a novel distance-mapping camera, the Divergence-ratio Axi-vision Camera, abbreviated "Divcam," which is a key component of the new Omni-focus Video Camera.

The Omni-focus Video Camera is produced in collaboration with consulting investigator Dr. David Wilkes, president of Wilkes Associates, a Canadian high-tech product development company. It contains an array of color video cameras, each focused at a different distance, and an integrated Divcam. The Divcam maps distance information for every pixel in the scene in real time. A software-based pixel correspondence utility, using prior intellectual property invented by Dr. Wilkes, then uses the distance information to select individual pixels from the ensemble of outputs of the color video cameras, and generates the final "omni-focused" single-video image.

"The Omni-focus Video Camera's unique ability to achieve simultaneous focus of all of the objects in a scene, near or far, multiple or single, without the usual physical movement of the camera's optics, represents a true advancement that is further distinguished in terms of high-resolution, distance mapping, real-time operation, simplicity, compactness, lightweight portability and a projected low manufacturing cost," says Dr. Wilkes.

The camera is still in the research phase. But it's not difficult to imagine how far-reaching an impact the Omni-focus Video Camera could have on several industries. As for the future direction of his research, Professor Iizuka sees the following possibilities:
  1. Application of the Omni-focus Video Camera to TV studio cameras. Consider the example of a musical concert being televised by a major network. Even though the singer is in sharp focus, band members in the background, are invariably out of focus. Conventional video cameras are unable to focus simultaneously on both the singer and band members in the background. The Omni-focus Video Camera removes this limitation to deliver higher-quality video images and improved quality of experience to potentially millions of TV viewers, worldwide.
  2. Application of the Omni-focus Video Camera to medicine. Says Professor Iizuka, "I'd like to apply the principle of the Omni-focus Video Camera to the design of a laparoscope. It would help doctors at the operating table, if they can see the entire view without touching optics of the laparoscope, especially if dealing with a large lesion."
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