The present invention relates to the field of miniaturized imaging devices. More specifically it relates to a device having a light source capable of propagating a predetermined wavelength of light onto a target and a lens system configured to receive light reflected from the target.
Minimally invasive diagnostic medical procedures are used to assess the interior surfaces of an organ by inserting a tube into the body. The instruments utilized may have a rigid or flexible tube and provide an image for visual inspection and photography, but also enable taking biopsies and retrieval of foreign objects. Analysis of image data collected during the inspection and imaging of the interior of the body cavity is a critical component of proper diagnosis of disease and other related conditions.
In geometrical optics, a focus, also called an image point, is the point where light rays originating from a point on the object converge. An image, or image point or region, is in focus if light from object points is converged almost as much as possible in the image, and out of focus if light is not well converged. A principal focus or focal point is a special focus. For a lens, or a spherical or parabolic mirror, it is a point onto which collimated light parallel to the axis is focused. The distance in air from the lens or mirror's principal plane to the focus is called the focal length.
When a lens (such as a photographic lens) is set to “infinity”, its rear nodal point is separated from the sensor or film, at the focal plane, by the lens' focal length. Objects far away from the camera then produce sharp images on the sensor or film, which is also at the image plane. Photographers sometimes refer to the image plane as the focal plane; these planes coincide when the object is at infinity, but for closer objects the focal plane is fixed, relative to the lens, and the image plane moves, by the standard optical definitions.
Generally speaking, to render objects in focus, the lens must be adjusted to increase the distance between the rear nodal point and the film, to put the film at the image plane. The focal length f, the distance from the front nodal point to the object to photograph or image S1, and the distance from the rear nodal point to the image plane S2 are then related by:
As S1 is decreased, S2 must be increased. For example, consider a normal lens for a 35 mm camera with a focal length off=50 mm. To focus a distant object (S1≈∞) the rear nodal point of the lens must be located a distance S2=50 mm from the image plane. To focus an object 1 m away (S1=1000 mm), the lens must be moved 2.6 mm further away from the image plane, to S2=52.6 mm.
It has been recognized that it would be advantageous to develop an improved miniaturized micro-camera catheter device capable of analyzing tissues without the need to physically move a lens system with respect to the tissue and/or with respect to an image sensor.
According to one embodiment of the present invention, as broadly described and claimed herein, the present invention features a method of imaging a desired target using a miniaturized imaging device. The method comprises providing a miniaturized imaging device comprising a lens system and an imaging array, wherein the distance from a distal end of the lens system to the imaging array is fixed. The method further comprises advancing the miniaturized imaging device near the desired target and determining a distance from a distal end of the lens system to the desired target. The method further comprises calculating a desired wavelength of light based on the determined distance from the distal end of the lens system to the desired target and propagating the desired wavelength of light onto the target. The method also comprises receiving the desired wavelength of light reflected off of the target.
In accordance with another embodiment, the present invention further features a method of imaging a target within a cavity using a miniaturized imaging device comprising providing a miniaturized imaging device having a stationary lens system and an imaging array, wherein the distance from a distal end of each of the stationary lens systems to the imaging array is fixed. The method further comprises advancing the miniaturized imaging device within a cavity and propagating a starting wavelength of light onto the target within the cavity. The method further comprises receiving the starting wavelength of light reflected from the target onto the imaging array and incrementally adjusting the starting wavelength of light to a different wavelength of light. The method further comprises propagating the different wavelength of light onto the target within the cavity and receiving the different wavelength of light reflected from the target onto the imaging array. The method further comprises determining an optimal wavelength of light for imaging an object in focus.
In accordance with an additional embodiment, the present invention also resides in a miniaturized imaging device disposed on a distal end of a catheter, comprising at least one imaging array disposed on a distal end of the catheter and a plurality of lens systems disposed on the at least one imaging array, wherein the distance from a distal end of the stationary lens system to the at least one imaging array is fixed, wherein each of the plurality of lens systems has a different longitudinal length. A light source is disposed on a distal end of the catheter and is adapted to propagate a starting monochromatic wavelength of light onto a target and incrementally adjust the starting monochromatic wavelength of light to a different monochromatic wavelength of light. In one aspect of the invention, the plurality of lens systems comprises a plurality of GRIN lenses.
In accordance with an additional embodiment, the present invention also resides in an imaging array disposed on a distal end of the catheter and a plurality of lens systems disposed on the imaging array, wherein the distance from a distal end of the stationary lens system to the imaging array is fixed. The plurality of lens systems are configured substantially parallel to one another and the distance from a front surface of each of the plurality of lens systems to the target is different.
Additional features and advantages of the invention will be apparent from the detailed description which follows, taken in conjunction with the accompanying drawings, which together illustrate, by way of example, features of the invention; and, wherein:
Reference will now be made to, among other things, the exemplary embodiments illustrated in the drawings, and specific language will be used herein to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended. Alterations and further modifications of the inventive features illustrated herein, and additional applications of the principles of the inventions as illustrated herein, which would occur to one skilled in the relevant art and having possession of this disclosure, are to be considered within the scope of the invention.
It must be noted that, as used in this specification and the appended claims, singular forms of “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise.
An “SSID,” “solid state imaging device,” or “SSID chip” in the exemplary embodiments generally comprises an imaging array or pixel array for gathering image data, and can further comprise conductive pads electrically coupled to the imaging array, which facilitates electrical communication therebetween. In one embodiment, the SSID can comprise a silicon chip substrate or other semiconductor chip substrate (e.g., InGaAs) or amorphous silicon thin film transistors (TFT) having features typically manufactured therein. The SSID can also comprise a non-semiconductor chip substrate treated with a semiconductor material. Features can include the imaging array, the conductive pads, metal traces, circuitry, etc. Other integrated circuit components can also be present for desired applications. However, it is not required that all of these components be present, as long as there is a means of gathering visual or photon data, and a means of sending that data to provide a visual image or image reconstruction.
The term “umbilical” can include the collection of utilities that operate the SSID or the micro-camera as a whole. Typically, an umbilical includes a conductive line, such as electrical wire(s) or other conductors, for providing power, ground, clock signal, and output signal with respect to the SSID, though not all of these are strictly required. For example, ground can be provided by another means than through an electrical wire, e.g., to a camera housing such as micromachined tubing, etc. The umbilical can also include other utilities such as a light source, temperature sensors, force sensors, fluid irrigation or aspiration members, pressure sensors, fiber optics, microforceps, material retrieval tools, drug delivery devices, radiation emitting devices, laser diodes, electric cauterizers, and electric stimulators, for example. Other utilities will also be apparent to those skilled in the art and are thus comprehended by this disclosure.
“GRIN lens” or “graduated refractive index lens” refers to a specialized lens that has a refractive index that is varied radially from a center optical axis to the outer diameter of the lens. In one embodiment, such a lens can be configured in a cylindrical shape, with the optical axis extending from a first flat end to a second flat end. Thus, because of the differing refractive index in a radial direction from the optical axis, a lens of this shape can simulate the effects of a more traditionally shaped lens.
With these definitions in mind, reference will now be made to, among other things, the accompanying drawings, which illustrate, by way of example, embodiments of the invention.
As noted above, to capture an image that is in focus, efforts must be made to ensure that for a lens system with a given focal length f, the distance from the front nodal point of a lens system to the object to image S1 (the object plane), and the distance from the rear nodal point to the image plane S2 are related by:
As S1 is decreased, S2 must be increased. For older image capturing systems (e.g., photographic cameras) wherein the lens system was fixed with respect to the image plane (e.g., the film), in order to capture an image in focus, the distance from the object to be photographed and the lens system had to be fixed. With advancements in technology, lens systems could be used within the camera to adjust the distance from the lens system to the image plane, thereby allowing the respective movement needed to capture an image in focus to happen within the camera itself. However, it is important to note that this type of movement becomes increasingly more difficult and much less reliable when operating imaging systems at the microscopic scale. Accordingly, the present invention resides in a method and device for capturing an image in focus with a miniaturized imaging system, without having to physically adjust the distance from the lens system of the imaging device with respect to the image plane and/or the object plane.
For purposes of discussion, for a thick lens (one which has a non-negligible thickness), or an imaging system consisting of several lenses and/or mirrors (e.g., a photographic lens or a telescope), the focal length is often called the effective focal length (EFL), to distinguish it from other commonly-used parameters; front focal length (FFL) or front focal distance (FFD) (the distance from the front focal point of the system to the vertex of the first optical surface) and back focal length (BFL) or back focal distance (BFD) (the distance from the vertex of the last optical surface of the system to the rear focal point). For an optical system in air, the effective focal length gives the distance from the front and rear principal planes to the corresponding focal points. If the surrounding medium is not air, then the distance is multiplied by the refractive index of the medium. In general, the focal length or EFL is the value that describes the ability of the optical system to focus light, and is the value used to calculate the magnification of the system. The other parameters are used in determining where an image will be formed for a given object position. For the case of a lens of thickness d in air, and surfaces with radii of curvature R1 and R2, the effective focal length f is given by:
where n is the refractive index of the lens medium. The quantity 1/f is also known as the optical power of the lens.
The corresponding front focal distance is:
and the back focal distance:
As will be recognized by one skilled in the art, as noted above, in standard lens systems, focal length can generally be thought of as the distance from a point within the lens system to the focal plane when the lens is imaging an object at infinity. The term working distance is thought of as the distance from an end of the lens system (e.g., a distal end) to the focal plane. While the working distance and the focal length are different, they share the location of the focal plane in common. For a GRIN lens, the geometrical gradient constant “g” and the lens length “z” determine the focal length “f” and the working distance “s” of the lens as represented below where “n” represents the refractive index of the lens at the center of the lens profile:
Turning to the drawings, in which like reference numerals represent like or corresponding elements in the drawings, in one embodiment of the present invention,
With reference now to
In one aspect of the invention, imaging device 30 comprises at least two conductive wires 35a, 35b for conducting electronic image data to the data processor 22 and for securing an imaging structure 36 between the at least two conductive wires 35a, 35b. As illustrated in
The at least two conductive wires 35a, 35b are operatively coupled to the imaging structure 36 and are configured to align the imaging structure 36 therebetween. In one aspect, the conductive wires 35a, 35b are bonded to the imaging structure 36 at contact points 56 disposed on the periphery of a top surface of the SSID 55. In yet another embodiment, the conductive wires 35a, 35b are bonded to a side surface of the SSID 55.
In one embodiment, the alignment apertures 40 are oriented perpendicular to the top surface of the planar support member 45. However, the alignment apertures may also be disposed in any orientation which is not non-parallel to the planar support member 45 as required to optimally align the imaging structure 36 as desired. In one embodiment, the imaging structure is mounted and aligned such that the image plane of the imaging structure 36 is non parallel to a longitudinal axis of the micro-catheter 12. In one aspect of the invention, a light source (e.g., a fiber optic member, LED, etc.) 62 is disposed within an aperture of the planar support member 45 to provide light for imaging. In yet another aspect of the present invention, the imaging structure 36 may incorporate structure and principles of operation from an imaging device disclosed in U.S. Pat. No. 7,166,537 to Jacobsen et al., which is incorporated herein by reference.
Referring now to
In an additional aspect of the invention, a first sleeve member 70 is disposed about the imaging structure 36. An adhesive is disposed within the first sleeve member 70 securing the components of the imaging structure 36 in place as well as securing the first sleeve member 70 to the imaging structure 36. In an additional embodiment, a second sleeve member 75 is disposed about the first sleeve member 70 and secured with an adhesive. In one aspect of the invention, the second sleeve member 75 comprises an opaque material to eliminate secondary light from impacting image quality.
While reference has been made specifically herein to a single GRIN lens 50 used in connection with a SSID 55, it is understood and contemplated herein that a plurality of GRIN lens (not shown) could be used with a plurality of SSIDs (not shown). In one aspect, each of the single GRIN lens/SSID pairs is provided with a filter media designed to pass and reflect different wavelengths of light. Advantageously, each GRIN lens/SSID pair would receive light reflected from the same target but would receive different wavelengths of light reflected from the target. A composite image could be created from the plurality of imaging devices receiving different wavelengths of light reflected from the same target. In another aspect, an optimal image may be selected from each of the GRIN lens/SSID pairs and utilized for display of the target area.
With reference now to
In one aspect of the invention, the back focal length of the plurality of GRIN lens is approximately zero for a predetermined monochromatic wavelength of light. In this manner, the GRIN lenses 50a, 50b, 50c can be disposed directly in contact with the imaging arrays 60 and a rear plane of each of the plurality of GRIN lenses can be substantially coplanar. While not shown on
In accordance with an additional embodiment of the present invention, as illustrated
on
In optics, chromatic aberration is caused by a lens having a different refractive index for different wavelengths of light (the dispersion of the lens). Longitudinal and lateral chromatic aberration of a lens is seen as “fringes” of color around the image, because each color in the optical spectrum cannot be focused at a single common point on the optical axis. As the focal length of a lens system is dependent on its specific geometry and configuration, different wavelengths of light will be focused on different positions. That is, for a single lens system with a fixed geometry and fixed relative to an image plane, different wavelengths of light reflected from an object to an image plane will not each be in focus.
As noted and as is known in the art, different wavelengths of light reflected from an object and passing through a lens system converge at different points. It is with this principle in mind that particular embodiments of the present invention are directed. For a particular lens system having an object a determined distance away from the distal end of the lens system, an optimal wavelength of light exists for achieving optimal focus of the image on the image plane. For example, for a GRIN lens, such as a Grintech IRFL-035-005 the working distance is 5 mm. For a target object that is 5 mm away from the distal end of said GRIN lens, an optimal wavelength of light for capturing an image that is in focus is thought to be approximately 550 nm when used in embodiments of the imaging system described herein. That is, for the specific GRIN lens noted above, light at a wavelength of approximately 550 nm which is reflected from an object 5 mm away from the distal end of the GRIN lens is thought to converge at substantially the same point of the rear end of the GRIN lens. In like manner, when a target object is 3 mm away from the distal end of the same GRIN lens system, an optimal wavelength of light for capturing an image that is in focus is thought to be approximately 450 nm. In like manner, when a target object is 10 mm away from the distal end of the same GRIN lens system, an optimal wavelength of light for capturing an image that is in focus is thought to be approximately 650 nm.
Accordingly, in one embodiment of the present invention, a method of imaging a target using a miniaturized imaging device is disclosed comprising providing a miniaturized imaging device having a stationary lens system (such as the GRIN lens system described above) and an imaging array, wherein the distance from the stationary lens system to the imaging array is fixed. The method further comprises advancing the miniaturized imaging device near the desired target and determining a distance from a distal end of the stationary lens system to the desired target. The distance from the distal end of the stationary lens system to the desired target may be calculated by an infrared range calculation device or any other suitable process (e.g., an active autofocus technique discussed in more detail below). The method further comprises calculating a desired wavelength of light based on the determined distance from the distal end of the stationary lens system to the desired target. The desired wavelength of light is propagating onto the target and is received through the lens system. In this manner, the optimal wavelength of light for capturing an image that is in focus may be calculated and utilized as the light source to illuminate the desired target. Advantageously, no movement of the lens system with respect to the image sensor (e.g., SSID) and/or the target to be imaged is required in order to properly capture a focused image of the object. Additionally, as the image is captured using an achromatic source of light, problems associated with chromatic aberration as noted above are not encountered.
In accordance with an additional embodiment of the present invention, a method of imaging a target within a cavity using a miniaturized imaging device is disclosed. The method comprises providing a miniaturized imaging device having a stationary lens system and an imaging array, wherein the distance from the stationary lens system to the imaging array is fixed. In other words, the lens system is stationary with respect to the imaging array. The miniaturized imaging device is advanced within the cavity to a desired location and a starting wavelength of light is propagated onto the target within the cavity. The starting wavelength of light reflected from the target is received onto the imaging array after which the starting wavelength of light is incrementally adjusted to a different wavelength of light. The different wavelength of light is propagated onto the target within the cavity and received onto the imaging array as with the starting wavelength of light.
The incremental adjustments of wavelength may be through frequency and or amplitude variation of the wavelength and may be performed on an as needed basis to determine an optimal wavelength of light based on the focal length of a given lens system and the distance of the object from the distal end of the lens system. That is, in one aspect, as the miniaturized imaging device is advanced within a patient the medical practitioner may wish to stop advancing the imaging device and capture images of a fixed object. In this manner, the incremental adjustments of the wavelength need only be conducted until an optimal wavelength of light is detected. However, if the medical practitioner wishes to image portions of the patient while advancing the imaging device within the patient, the incremental adjustments may be ongoing at a relatively rapid pace. Because the movement of the imaging device within the patient will result in a variation in distances from the distal end of the imaging device to any particular target, a collection of both in focus and out of focus images will be captured by the imaging device and sent to the imaging system processor. However, depending on the particular settings and processes employed by the overall imaging system, only those images which are determined to be in focus would be provided on the system display. In this manner, the medical practitioner may advance the imaging device within a patient and view an in focus image of the patient irrespective of the exact distance from the distal end of the imaging device to a particular target.
In accordance with one aspect of the present invention, the optimal wavelength may be determined using an autofocus technique. The autofocus system (not shown) relies on one or more sensors to determine correct focus. Autofocus systems may be categorized into passive and active systems. An active autofocus system (not shown) measures the distance to the subject independently of the optical system, and subsequently adjusts the optical system (e.g., the wavelength of light propagated onto a target) for correct focus. There are various ways to measure distance with an active autofocus system, including ultrasonic sound waves and infrared light. In the first case, sound waves and/or infrared light is emitted from the imaging device, and by measuring the delay in their reflection, distance to the subject is calculated. Once the distance is calculated, an optimal wavelength of light may be determined for a particular lens system geometry.
Passive autofocus systems determine correct focus by performing passive analysis of the image that is entering the optical system. They generally do not direct any energy, such as ultrasonic sound or infrared light waves, toward the subject. However, an autofocus assist beam of usually infrared light may be required when there is not enough light to take passive measurements. Passive autofocusing can be achieved by phase detection or contrast measurement.
Phase detection is achieved by dividing the incoming light into pairs of images and comparing them. In one aspect, the system uses a beam splitter (implemented as a small semi-transparent area of the main reflex mirror, coupled with a small secondary mirror) to direct light to an autofocus sensor disposed on the imaging device. Two optical prisms capture the light rays coming from the opposite sides of the lens and divert it to the autofocus sensor, creating a simple rangefinder with a base identical to the lens' diameter. The two images are then analyzed for similar light intensity patterns (peaks and valleys) and the phase difference is calculated in order to find if the object is in front focus or back focus position. Contrast measurement is achieved by measuring contrast within a sensor field, through the lens system. The intensity difference between adjacent pixels of the sensor naturally increases with correct image focus. The optical system can thereby be adjusted until the maximum contrast is detected. In this method, autofocus does not involve actual distance measurement.
One example of a passive autofocus embodiment includes use of a SSID that provides input to algorithms that compute the contrast of actual image elements. The SSID is typically a single strip of 100 or 200 pixels. Light from the target hits this strip and the microprocessor looks at the values from each pixel. The imaging systems processor evaluates the difference in intensity among adjacent pixels. If the target is out of focus, adjacent pixels have very similar intensities. As incremental modifications are made to the wavelength of light, the processor again evaluates the difference in intensity between adjacent pixels to see if the intensity increased or decreased. The processor then searches for the point where there is maximum intensity difference between adjacent pixels, wherein the maximum intensity difference between adjacent pixels is the point of best focus.
As described in more detail above, the lens system may comprise a plurality of GRIN lenses each having a different effective focal length. While not necessary, each one of the plurality of GRIN lenses may also be positioned on a different imaging array. In this manner, the number of possible “in focus” images resulting from operation of the imaging device as described herein is expanded thereby giving the imaging device a greater depth of operation. That is, because each of the plurality of GRIN lenses has a different effective focal length, and hence a different depth of field, the overall depth at which the imaging device may return an image that is in focus is enhanced.
While the foregoing examples are illustrative of the principles of the present invention in one or more particular applications, it will be apparent to those of ordinary skill in the art that numerous modifications in form, usage and details of implementation can be made without the exercise of inventive faculty, and without departing from the principles and concepts of the invention. Accordingly, it is not intended that the invention be limited, except as by the claims set forth below.
This application is a continuation of U.S. patent application Ser. No. 12/512,188 which claims priority to U.S. Provisional Application No. 61/084,755 filed on Jul. 30, 2008, both of which are incorporated herein by reference in their entireties. The present invention is related to co-pending U.S. patent application Ser. Nos. 10/391,489; 10/391,490; 11/810,702; 10/391,513; 11/292,902; and 12/079,741 and U.S. Pat. No. 7,166,537 all of which are incorporated herein by reference in their entireties.
Number | Name | Date | Kind |
---|---|---|---|
3787121 | Lowy et al. | Jan 1974 | A |
3817635 | Kawahara | Jun 1974 | A |
3856000 | Chikama | Dec 1974 | A |
3886933 | Mori et al. | Jun 1975 | A |
3918438 | Hayamizu et al. | Nov 1975 | A |
3971065 | Bayer | Jul 1976 | A |
4277168 | Oku | Jul 1981 | A |
4283115 | Fraissl | Aug 1981 | A |
4349456 | Sowman | Sep 1982 | A |
4360275 | Louderback | Nov 1982 | A |
4403985 | Boretos | Sep 1983 | A |
4475902 | Schubert | Oct 1984 | A |
4487206 | Aagard | Dec 1984 | A |
4491865 | Danna et al. | Jan 1985 | A |
4515444 | Prescott et al. | May 1985 | A |
4521284 | Tanabe et al. | Jun 1985 | A |
4573450 | Arakawa | Mar 1986 | A |
4585349 | Gross et al. | Apr 1986 | A |
4589404 | Barath et al. | May 1986 | A |
4593313 | Nagasaki et al. | Jun 1986 | A |
4594613 | Shinbori et al. | Jun 1986 | A |
4600831 | Hutley | Jul 1986 | A |
4604992 | Sato | Aug 1986 | A |
4620534 | Zartman | Nov 1986 | A |
4621284 | Nishioka et al. | Nov 1986 | A |
4622954 | Arakawa et al. | Nov 1986 | A |
4626079 | Nakamura et al. | Dec 1986 | A |
4641927 | Prescott et al. | Feb 1987 | A |
4646724 | Sato et al. | Mar 1987 | A |
4672218 | Chrisman et al. | Jun 1987 | A |
4706118 | Kato et al. | Nov 1987 | A |
4707134 | McLachlan et al. | Nov 1987 | A |
4723843 | Zobel | Feb 1988 | A |
4725721 | Nakamura | Feb 1988 | A |
4745470 | Yabe et al. | May 1988 | A |
4745471 | Takamura et al. | May 1988 | A |
4783591 | Sullivan | Nov 1988 | A |
4785815 | Cohen | Nov 1988 | A |
4790624 | Van Hoye et al. | Dec 1988 | A |
4791479 | Ogiu et al. | Dec 1988 | A |
4802487 | Martin et al. | Feb 1989 | A |
4803562 | Eino | Feb 1989 | A |
4832003 | Yabe | May 1989 | A |
4843416 | Brower | Jun 1989 | A |
4846785 | Cassou et al. | Jul 1989 | A |
4859040 | Kitagishi et al. | Aug 1989 | A |
4867137 | Takahashi | Sep 1989 | A |
4867138 | Kubota et al. | Sep 1989 | A |
4867174 | Skribiski | Sep 1989 | A |
4880298 | Takada | Nov 1989 | A |
4895138 | Yabe | Jan 1990 | A |
4926257 | Miyazaki | May 1990 | A |
4930880 | Miyauchi | Jun 1990 | A |
4932394 | Nanaumi | Jun 1990 | A |
4934340 | Ebling et al. | Jun 1990 | A |
4941457 | Hasegawa | Jul 1990 | A |
4998807 | Uzawa et al. | Mar 1991 | A |
5006928 | Kawajiri et al. | Apr 1991 | A |
5009483 | Rockwell, III | Apr 1991 | A |
5021888 | Kondou et al. | Jun 1991 | A |
5022972 | David et al. | Jun 1991 | A |
5032913 | Hattori et al. | Jul 1991 | A |
5040069 | Matsumoto et al. | Aug 1991 | A |
5061036 | Gordon | Oct 1991 | A |
5093719 | Prescott | Mar 1992 | A |
5105269 | Nakamura et al. | Apr 1992 | A |
5106387 | Kittrell et al. | Apr 1992 | A |
5109859 | Jenkins | May 1992 | A |
5111804 | Funakoshi | May 1992 | A |
5113254 | Kanno et al. | May 1992 | A |
5121213 | Nishioka | Jun 1992 | A |
5126369 | Wilson et al. | Jun 1992 | A |
5126639 | Srivastava | Jun 1992 | A |
5130804 | Tamura et al. | Jul 1992 | A |
5165063 | Strater et al. | Nov 1992 | A |
5166656 | Badihi et al. | Nov 1992 | A |
5182672 | Mukai et al. | Jan 1993 | A |
5188093 | Lafferty et al. | Feb 1993 | A |
5190523 | Lindmayer | Mar 1993 | A |
5191203 | McKinley | Mar 1993 | A |
5198894 | Hicks | Mar 1993 | A |
5209219 | Hollobaugh | May 1993 | A |
5220198 | Tsuji | Jun 1993 | A |
5222477 | Lia | Jun 1993 | A |
5228430 | Sakamoto | Jul 1993 | A |
5258834 | Tsuji et al. | Nov 1993 | A |
5289434 | Berni | Feb 1994 | A |
5290555 | Guthauser et al. | Mar 1994 | A |
5291010 | Tsuji | Mar 1994 | A |
5298741 | Walt et al. | Mar 1994 | A |
5304173 | Kittrell et al. | Apr 1994 | A |
5305098 | Matsunaka et al. | Apr 1994 | A |
5318024 | Kittrell et al. | Jun 1994 | A |
5361166 | Atkinson et al. | Nov 1994 | A |
5365268 | Minami | Nov 1994 | A |
5376960 | Wurster | Dec 1994 | A |
5377047 | Broome et al. | Dec 1994 | A |
5381784 | Adair | Jan 1995 | A |
5396366 | Brown et al. | Mar 1995 | A |
5398685 | Wilk et al. | Mar 1995 | A |
5402769 | Tsuji | Apr 1995 | A |
5408999 | Singh et al. | Apr 1995 | A |
5430475 | Goto et al. | Jul 1995 | A |
5434615 | Matumoto | Jul 1995 | A |
5436655 | Hiyama et al. | Jul 1995 | A |
5438975 | Miyagi et al. | Aug 1995 | A |
5440669 | Rakuljic et al. | Aug 1995 | A |
5450243 | Nishioka | Sep 1995 | A |
5455455 | Badehi | Oct 1995 | A |
5458612 | Chin | Oct 1995 | A |
5459570 | Swanson et al. | Oct 1995 | A |
5469841 | Kobayashi et al. | Nov 1995 | A |
5494483 | Adair | Feb 1996 | A |
5512940 | Takasugi et al. | Apr 1996 | A |
5517997 | Fontenot | May 1996 | A |
5531664 | Adachi et al. | Jul 1996 | A |
5547455 | McKenna | Aug 1996 | A |
5547906 | Badehi | Aug 1996 | A |
5594497 | Ahern | Jan 1997 | A |
5603687 | Hori et al. | Feb 1997 | A |
5607435 | Sachdeva et al. | Mar 1997 | A |
5621574 | Foo | Apr 1997 | A |
5630788 | Forkner et al. | May 1997 | A |
5647368 | Zeng et al. | Jul 1997 | A |
5662621 | Lafontaine | Sep 1997 | A |
5673083 | Izumi et al. | Sep 1997 | A |
5685311 | Hara | Nov 1997 | A |
5693043 | Kittrell et al. | Dec 1997 | A |
5704892 | Adair | Jan 1998 | A |
5716323 | Lee | Feb 1998 | A |
5716759 | Badehi | Feb 1998 | A |
5722403 | McGee et al. | Mar 1998 | A |
5732150 | Zhou et al. | Mar 1998 | A |
5740808 | Panescu et al. | Apr 1998 | A |
5749827 | Minami | May 1998 | A |
5751340 | Strobl et al. | May 1998 | A |
5752518 | McGee et al. | May 1998 | A |
5769792 | Palcic et al. | Jun 1998 | A |
5772597 | Goldberger et al. | Jun 1998 | A |
5776049 | Takahashi | Jul 1998 | A |
5783829 | Sealock et al. | Jul 1998 | A |
5784098 | Shoji et al. | Jul 1998 | A |
5792984 | Bloom | Aug 1998 | A |
5800341 | McKenna et al. | Sep 1998 | A |
5807261 | Benaron et al. | Sep 1998 | A |
5808665 | Green | Sep 1998 | A |
5818644 | Noda | Oct 1998 | A |
5827172 | Takahashi et al. | Oct 1998 | A |
5827531 | Morrison et al. | Oct 1998 | A |
5840017 | Furusawa et al. | Nov 1998 | A |
5846185 | Carollo | Dec 1998 | A |
5848969 | Panescu et al. | Dec 1998 | A |
5865729 | Meehan et al. | Feb 1999 | A |
5870229 | Tsuchida | Feb 1999 | A |
5873816 | Kagawa et al. | Feb 1999 | A |
5879285 | Ishii | Mar 1999 | A |
5904651 | Swanson et al. | May 1999 | A |
5908445 | Whayne et al. | Jun 1999 | A |
5913817 | Lee | Jun 1999 | A |
5916155 | Levinson et al. | Jun 1999 | A |
5929900 | Yamanaka et al. | Jul 1999 | A |
5940126 | Kimura | Aug 1999 | A |
5947894 | Chapman et al. | Sep 1999 | A |
5951462 | Yamanaka | Sep 1999 | A |
5957849 | Munro | Sep 1999 | A |
5971915 | Yamamoto et al. | Oct 1999 | A |
5973779 | Ansari et al. | Oct 1999 | A |
5980663 | Badehi | Nov 1999 | A |
5998878 | Johnson | Dec 1999 | A |
5999327 | Nagaoka | Dec 1999 | A |
6008123 | Kook et al. | Dec 1999 | A |
6014919 | Jacobsen et al. | Jan 2000 | A |
6022758 | Badehi | Feb 2000 | A |
6040235 | Badehi | Mar 2000 | A |
6059760 | Sandmore et al. | May 2000 | A |
6095970 | Hidaka et al. | Aug 2000 | A |
6117707 | Badehi | Sep 2000 | A |
6118476 | Morito et al. | Sep 2000 | A |
6133637 | Hikita et al. | Oct 2000 | A |
6134003 | Tearney et al. | Oct 2000 | A |
6139489 | Wampler et al. | Oct 2000 | A |
6139819 | Unger et al. | Oct 2000 | A |
6142930 | Ito et al. | Nov 2000 | A |
6161035 | Furusawa | Dec 2000 | A |
6184923 | Miyazaki | Feb 2001 | B1 |
6193908 | Hampden-Smith et al. | Feb 2001 | B1 |
6211955 | Basiji et al. | Apr 2001 | B1 |
6224969 | Steenbergen et al. | May 2001 | B1 |
6261226 | McKenna et al. | Jul 2001 | B1 |
6262855 | Greisz | Jul 2001 | B1 |
6271206 | Pillai et al. | Aug 2001 | B1 |
6280960 | Carr | Aug 2001 | B1 |
6288172 | Goetz et al. | Sep 2001 | B1 |
6319745 | Bertin et al. | Nov 2001 | B1 |
6322498 | Gravenstein et al. | Nov 2001 | B1 |
6327096 | Tsuchida | Dec 2001 | B1 |
6352503 | Matsui | Mar 2002 | B1 |
6361491 | Hasegawa et al. | Mar 2002 | B1 |
6366726 | Wach et al. | Apr 2002 | B1 |
6375635 | Moutafis et al. | Apr 2002 | B1 |
6384397 | Takiar et al. | May 2002 | B1 |
6384884 | Nakamura et al. | May 2002 | B1 |
6396116 | Kelly et al. | May 2002 | B1 |
6407768 | Ishikawa | Jun 2002 | B1 |
6445939 | Swanson et al. | Sep 2002 | B1 |
6456423 | Nayfeh et al. | Sep 2002 | B1 |
6471363 | Howell et al. | Oct 2002 | B1 |
6485413 | Boppart et al. | Nov 2002 | B1 |
6522913 | Panescu et al. | Feb 2003 | B2 |
6525866 | Lin et al. | Feb 2003 | B1 |
6533722 | Nakashima | Mar 2003 | B2 |
6537205 | Smith | Mar 2003 | B1 |
6551302 | Rosinko et al. | Apr 2003 | B1 |
6552796 | Magnin et al. | Apr 2003 | B2 |
6561972 | Ooshima et al. | May 2003 | B2 |
6570659 | Schmitt | May 2003 | B2 |
6573950 | Hirata et al. | Jun 2003 | B1 |
6585717 | Wittenberger et al. | Jul 2003 | B1 |
6595913 | Takahashi | Jul 2003 | B2 |
6618614 | Chance et al. | Sep 2003 | B1 |
6622367 | Bolduc et al. | Sep 2003 | B1 |
6643071 | Schnitzer | Nov 2003 | B2 |
6658279 | Swanson et al. | Dec 2003 | B2 |
6659941 | Weber et al. | Dec 2003 | B2 |
6695787 | Hogendijk et al. | Feb 2004 | B2 |
6710919 | Clausen | Mar 2004 | B1 |
6719686 | Coakley et al. | Apr 2004 | B2 |
6727313 | Zhou et al. | Apr 2004 | B2 |
6756437 | Xue et al. | Jun 2004 | B1 |
6761684 | Speier | Jul 2004 | B1 |
6785048 | Yamaguchi et al. | Aug 2004 | B2 |
6826422 | Modell et al. | Nov 2004 | B1 |
6827683 | Otawara | Dec 2004 | B2 |
6833916 | Osipchuk et al. | Dec 2004 | B2 |
6834158 | Templeton | Dec 2004 | B1 |
6842288 | Liu et al. | Jan 2005 | B1 |
6850659 | Han | Feb 2005 | B2 |
6879851 | McNamara et al. | Apr 2005 | B2 |
6881448 | Hattori | Apr 2005 | B1 |
6891984 | Petersen et al. | May 2005 | B2 |
6893432 | Intintoli et al. | May 2005 | B2 |
6894729 | Hirata et al. | May 2005 | B2 |
6898458 | Zeng et al. | May 2005 | B2 |
6900913 | Chen | May 2005 | B2 |
6930705 | Tanaka | Aug 2005 | B2 |
6937268 | Ogawa | Aug 2005 | B2 |
6939348 | Malecki et al. | Sep 2005 | B2 |
6941041 | Yamaguchi et al. | Sep 2005 | B2 |
6944204 | Zhou et al. | Sep 2005 | B2 |
6953432 | Schiefer | Oct 2005 | B2 |
6956624 | Hirata et al. | Oct 2005 | B2 |
6960165 | Ueno et al. | Nov 2005 | B2 |
6982740 | Adair et al. | Jan 2006 | B2 |
6990271 | Gafsi et al. | Jan 2006 | B2 |
7030904 | Adair et al. | Apr 2006 | B2 |
7033317 | Pruitt | Apr 2006 | B2 |
7058294 | Nakahara | Jun 2006 | B2 |
7075576 | Creasey et al. | Jul 2006 | B2 |
7081927 | Hirata et al. | Jul 2006 | B2 |
7091500 | Schnitzer | Aug 2006 | B2 |
7098871 | Tegreene et al. | Aug 2006 | B1 |
7102817 | Wu | Sep 2006 | B1 |
7153299 | Tu et al. | Dec 2006 | B1 |
7165552 | Deem et al. | Jan 2007 | B2 |
7166537 | Jacobsen et al. | Jan 2007 | B2 |
7167317 | Jung et al. | Jan 2007 | B2 |
7186251 | Malecki et al. | Mar 2007 | B2 |
7218822 | Treado et al. | May 2007 | B2 |
7221388 | Sudo et al. | May 2007 | B2 |
7234816 | Bruzzone et al. | Jun 2007 | B2 |
7247847 | Webb et al. | Jul 2007 | B2 |
7304310 | Shortt et al. | Dec 2007 | B1 |
7393321 | Doguchi et al. | Jul 2008 | B2 |
7420675 | Giakos | Sep 2008 | B2 |
7433552 | Kiesel et al. | Oct 2008 | B2 |
7591780 | Jacobsen et al. | Sep 2009 | B2 |
7629659 | Jacobsen et al. | Dec 2009 | B2 |
7823215 | Giakos | Oct 2010 | B2 |
7835074 | Jacobsen et al. | Nov 2010 | B2 |
7842046 | Nakao | Nov 2010 | B1 |
7901870 | Wach | Mar 2011 | B1 |
8358462 | Jacobsen | Jan 2013 | B2 |
20010007051 | Nakashima | Jul 2001 | A1 |
20010007511 | Minami et al. | Jul 2001 | A1 |
20010012053 | Nakamura | Aug 2001 | A1 |
20010024848 | Nakamura | Sep 2001 | A1 |
20010049509 | Sekine et al. | Dec 2001 | A1 |
20020007110 | Irion | Jan 2002 | A1 |
20020034537 | Schulze et al. | Mar 2002 | A1 |
20020039594 | Unger | Apr 2002 | A1 |
20020080248 | Adair et al. | Jun 2002 | A1 |
20020111534 | Suzuki et al. | Aug 2002 | A1 |
20020166946 | Lizuka | Nov 2002 | A1 |
20020168776 | Cizdziel et al. | Nov 2002 | A1 |
20020188204 | McNamara | Dec 2002 | A1 |
20020193660 | Weber | Dec 2002 | A1 |
20030071342 | Honda et al. | Apr 2003 | A1 |
20030092995 | Thompson | May 2003 | A1 |
20030114732 | Webler et al. | Jun 2003 | A1 |
20030197812 | Hirata et al. | Oct 2003 | A1 |
20030199761 | Yock | Oct 2003 | A1 |
20030202127 | Hirata et al. | Oct 2003 | A1 |
20030208211 | Kortenbach | Nov 2003 | A1 |
20030220574 | Markus et al. | Nov 2003 | A1 |
20030222325 | Jacobsen et al. | Dec 2003 | A1 |
20040006274 | Giller et al. | Jan 2004 | A1 |
20040015049 | Zaar | Jan 2004 | A1 |
20040017961 | Petersen et al. | Jan 2004 | A1 |
20040059204 | Marshall | Mar 2004 | A1 |
20040097788 | Mourlas et al. | May 2004 | A1 |
20040097804 | Sobe | May 2004 | A1 |
20040111031 | Alfano et al. | Jun 2004 | A1 |
20040115955 | Motoyama et al. | Jun 2004 | A1 |
20040165858 | Curatolo | Aug 2004 | A1 |
20040181148 | Uchiyama et al. | Sep 2004 | A1 |
20040222031 | Szalony et al. | Nov 2004 | A1 |
20040225222 | Zeng et al. | Nov 2004 | A1 |
20040257566 | Chism | Dec 2004 | A1 |
20040260148 | Schnitzer | Dec 2004 | A1 |
20050004453 | Tearney et al. | Jan 2005 | A1 |
20050054902 | Konno | Mar 2005 | A1 |
20050065504 | Melsky et al. | Mar 2005 | A1 |
20050084229 | Babbitt et al. | Apr 2005 | A1 |
20050088576 | Hirata et al. | Apr 2005 | A1 |
20050099824 | Dowling et al. | May 2005 | A1 |
20050110892 | Yun | May 2005 | A1 |
20050124875 | Kawano et al. | Jun 2005 | A1 |
20050152421 | Fujitani | Jul 2005 | A1 |
20050154277 | Tang et al. | Jul 2005 | A1 |
20050158899 | Jacobsen et al. | Jul 2005 | A1 |
20050171521 | Brucker et al. | Aug 2005 | A1 |
20050174649 | Okada et al. | Aug 2005 | A1 |
20050187568 | Klenk et al. | Aug 2005 | A1 |
20050226636 | Hiramatsu et al. | Oct 2005 | A1 |
20050231718 | Goodall et al. | Oct 2005 | A1 |
20050234345 | Yang | Oct 2005 | A1 |
20050264813 | Giakos | Dec 2005 | A1 |
20050267340 | Ishihara et al. | Dec 2005 | A1 |
20050288555 | Binmoeller | Dec 2005 | A1 |
20060009682 | Nagasawa et al. | Jan 2006 | A1 |
20060013593 | Yokoo et al. | Jan 2006 | A1 |
20060017928 | Crowther | Jan 2006 | A1 |
20060051036 | Treado et al. | Mar 2006 | A1 |
20060069312 | O'Connor | Mar 2006 | A1 |
20060079835 | Frassica | Apr 2006 | A1 |
20060106283 | Wallace et al. | May 2006 | A1 |
20060135921 | Wiercinski et al. | Jun 2006 | A1 |
20060142700 | Sobelman et al. | Jun 2006 | A1 |
20060146172 | Jacobsen et al. | Jul 2006 | A1 |
20060161048 | Squicciarini | Jul 2006 | A1 |
20060181774 | Ojima et al. | Aug 2006 | A1 |
20060253088 | Chow et al. | Nov 2006 | A1 |
20070010709 | Reinschke | Jan 2007 | A1 |
20070032796 | Chin-Chen et al. | Feb 2007 | A1 |
20070066869 | Hoffman | Mar 2007 | A1 |
20070073321 | Mikkaichi et al. | Mar 2007 | A1 |
20070083232 | Lee | Apr 2007 | A1 |
20070088276 | Stubbs et al. | Apr 2007 | A1 |
20070135803 | Belson | Jun 2007 | A1 |
20070146887 | Ikeda et al. | Jun 2007 | A1 |
20070228300 | Smith | Oct 2007 | A1 |
20070233187 | Lobello | Oct 2007 | A1 |
20070239066 | Laham et al. | Oct 2007 | A1 |
20070255392 | Johnson | Nov 2007 | A1 |
20080045794 | Belson | Feb 2008 | A1 |
20080058601 | Fujimori | Mar 2008 | A1 |
20080071141 | Gattani et al. | Mar 2008 | A1 |
20080094326 | Yamaki et al. | Apr 2008 | A1 |
20080114309 | Zuckerman | May 2008 | A1 |
20080143822 | Wang et al. | Jun 2008 | A1 |
20080160257 | Takada et al. | Jul 2008 | A1 |
20080177141 | Wu et al. | Jul 2008 | A1 |
20080183080 | Abraham | Jul 2008 | A1 |
20080188767 | Oaki et al. | Aug 2008 | A1 |
20080227893 | Tamori et al. | Sep 2008 | A1 |
20080267562 | Wang et al. | Oct 2008 | A1 |
20090027765 | Kamijima | Jan 2009 | A1 |
20090036764 | Rivas et al. | Feb 2009 | A1 |
20090054791 | Flusberg | Feb 2009 | A1 |
20090082626 | Ichimura et al. | Mar 2009 | A1 |
20090119808 | Giakos | May 2009 | A1 |
20090137928 | Quick et al. | May 2009 | A1 |
20090143645 | Matthes | Jun 2009 | A1 |
20090155371 | Sojka et al. | Jun 2009 | A1 |
20090156899 | Konishi | Jun 2009 | A1 |
20090180197 | Jacobsen | Jul 2009 | A1 |
20090213894 | Grapov et al. | Aug 2009 | A1 |
20090234325 | Rozenberg et al. | Sep 2009 | A1 |
20090267270 | Murakami et al. | Oct 2009 | A1 |
20090287048 | Jacobson et al. | Nov 2009 | A1 |
20090306474 | Wilson | Dec 2009 | A1 |
20090326321 | Jacobsen | Dec 2009 | A1 |
20100016662 | Salsman et al. | Jan 2010 | A1 |
20100085567 | Dottery et al. | Apr 2010 | A1 |
20100106134 | Jolly et al. | Apr 2010 | A1 |
20100134872 | Johnson et al. | Jun 2010 | A1 |
20100171821 | Jacobsen et al. | Jul 2010 | A1 |
20100188492 | Jacobsen et al. | Jul 2010 | A1 |
20100248178 | Nahlieli | Sep 2010 | A1 |
20110137117 | Jacobsen et al. | Jun 2011 | A1 |
20110204265 | Smith et al. | Aug 2011 | A1 |
20110242302 | Jacobsen et al. | Oct 2011 | A1 |
20110245765 | Jacobsen et al. | Oct 2011 | A1 |
20110251456 | Jacobsen et al. | Oct 2011 | A1 |
20110270277 | Jacobsen et al. | Nov 2011 | A1 |
Number | Date | Country |
---|---|---|
1481753 | Mar 2004 | CN |
197 42 973 | Apr 1998 | DE |
19859434 | Jul 2000 | DE |
0482997 | Apr 1992 | EP |
0550 995 | Jul 1993 | EP |
0639043 | Feb 1995 | EP |
0681809 | Nov 1995 | EP |
1104182 | May 2001 | EP |
1195130 | Apr 2002 | EP |
1477104 | Nov 2004 | EP |
1488737 | Dec 2004 | EP |
1626436 | Feb 2006 | EP |
1647569 | Apr 2006 | EP |
1880656 | Jan 2008 | EP |
58-046924 | Mar 1983 | JP |
63-155115 | Jun 1988 | JP |
H01282514 | Nov 1989 | JP |
H05-039501 | Feb 1993 | JP |
5 -049602 | Mar 1993 | JP |
H05197828 | Aug 1993 | JP |
H07-148105 | Jun 1995 | JP |
H07-222712 | Aug 1995 | JP |
08-076028 | Mar 1996 | JP |
08084700 | Apr 1996 | JP |
H09-021963 | Jan 1997 | JP |
11 137512 | May 1999 | JP |
2001314365 | Nov 2001 | JP |
2004004929 | Jan 2004 | JP |
2004-086553 | Mar 2004 | JP |
2004094873 | Mar 2004 | JP |
2004329700 | Nov 2004 | JP |
2005334462 | Aug 2005 | JP |
2006162418 | Jun 2006 | JP |
2006320369 | Nov 2006 | JP |
2007-167387 | Jul 2007 | JP |
2007312290 | Nov 2007 | JP |
2009-367946 | Apr 2009 | JP |
10-2008-027935 | Mar 2008 | KR |
WO 9838907 | Sep 1998 | WO |
WO 9940624 | Aug 1999 | WO |
WO 0054033 | Sep 2000 | WO |
WO 03081831 | Oct 2003 | WO |
WO 2006060777 | Jun 2006 | WO |
WO 2007138889 | Dec 2007 | WO |
Entry |
---|
Boppart, S.A. et al., “Forward-imaging instruments for optical coherence tomography.” Optics Letters, Nov. 1, 1997, vol. 22, No. 21, pp. 1618-1620. |
Boppart, S.A. et al., “Optical imaging technology in minimally invasive surgery,” Surg. Endosc., 1999, vol. 13, pp. 718-722. |
Frequency; Wikipedia, The Free Encyclopedia; http://en.wikipedia.org/wiki/Frequency; as accessed May 9, 2008; 4 pages. |
Fujimoto, “High resolution in vivo (2001) o intra-arterial imaging with optical-coherence tomography” ; Heart 1999; 82:128-133. |
Gaoping et al.; Research on the Measurement of Grin Lens Focused Spot Diameter and Resolution; Applied Optics; 1995; vol. 16, No. 6. |
Gradient Index (GRIN) Lenses; Grin Tech; 2 pages. |
Harder et al; Against the Migraine; Science News Online; http://www.sciencenews.org/articles/20050219/bob8.asp; Feb. 19, 2005; 11 pages. |
http://news.thomasnet.com/fullstory/23462, “Near-IR Camera Utilizes CCD Array with Phosphor Coating”; Jun. 11, 2003; 5 pages. |
Introduction to Gradient Index Optics; http://grintech.de/e—main—grin.htm; as accessed May 1, 2008; 7 pages. |
Johansson et al.; “Generation of Turquoise Light by Sum Frequency Mixing of a Diode-Pumped Solid-State Laser and a Laser Diode in Periodically Poled KTP,” Optics Express; Oct. 4, 2004; pp. 4935-4940; vol. 12, No. 12. |
Knittel, “Endoscope-compatible confocal microscope using a gradient index-lens system,” Optics Communications 188 (2001) 267-273. |
Literature from GRIN TECH, “In vivo medical confocal imaging and optical coherence tomography,” www.grintech.de, Revision Jun. 2001, pp. 1-3. |
MICROCAM, MINAST Project 5.04, Nov. 11, 1999, http://www.imt.unine.ch/ESPLAB/www/projects/Microcam/, pp. 1-16. |
Nguyen, Clark, “Communications Applications of Microelectromechanical Systems,” Proceedings, Sensors Expo, May 19-21, 1998, San Jose, CA. pp. 447-455. |
Obreja et al.; “Poly (vinyl-alcohol) Films for Microphotonics”; 2004, IEEE, pp. 1-4. |
Shape Memory Polymers—Biodegradable Sutures; http://www.azom.com/details.asp?ArticieID=1542; as accessed Nov. 6, 2007; 4 pages. |
Surgical Needles for Use With Sutures; Wikipedia, The Free Encyclopedia; as accessed Nov. 6, 2007; 6 pages. |
Tearney, G.J. et al., “Scanning single-mode fiber optic catheter-endoscope for optical coherence tomography,” Optics Letters, Apr. 1, 1996, vol. 21, No. 7, pp. 543-545. |
Tsuchida et al. “Design of Imaging Lens Systems that Use Low Dispersive Radial Gradient-Index Rod,” Jpn.J.Appl.Phys.vol. 37 (1998) pp. 3633-3637. |
Xie et al; GRIN Lens Rod Based Probe for Endoscopic Spectral Domain Optical Coherence Tomography with Fast Dynamic Focus Tracking; Optics Express; Apr. 17, 2006; 9 pages; vol. 14, No. 8. |
Xuting Technologies Co., Ltd.; http://www.xutingby.com/en/products/glinfo.htrn; as accessed May 1, 2008; 5 pages. |
Zeis, Michael et al., “Color Business Report,” ISSN 1055-3339. Jul. 2002, p. 5. |
Subrahmanyam et al; Lens Aberrations; A Text Book of Optics; Jan. 1, 2004; Chapter 9, pp. 199-200; ; S. Chand & Co. Ltd. |
Office action for U.S. Appl. No. 12/896,731 dated Sep. 2, 2015, 14 pages. |
Office Action for U.S. Appl. No. 13/966,030 dated Aug. 6, 2015, 28 pages. |
Office action for U.S. Appl. No. 14/248,184 dated Sep. 11, 2015, 19 pages. |
Number | Date | Country | |
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20140022366 A1 | Jan 2014 | US |
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---|---|---|---|
61084755 | Jul 2008 | US |
Number | Date | Country | |
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Parent | 12512188 | Jul 2009 | US |
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