This invention relates to fabricating a value added medical device for patient-specific, total joint arthroplasty (TJA) procedures. More specifically, the invention relates to a system for producing a value added medical device or instrument (collectively referred to as a “medical device” herein), based on computer tomography (CT) or other imaging of a region of the body a adjacent to a selected joint.
Surgeons are generally dexterous and highly trained to achieve a standardized level of surgical skill. However, surgeons have limitations, including a lack of micron-level geometric accuracy. For example, a surgeon cannot place an instrument at an exact, numerically defined location (within, say, 100 μm) relative to a patient's body part and then move the instrument through a defined trajectory. Many surgeons are unable to exert a precise, predefined force in a selected direction. Furthermore, a surgeon may have small hand tremors that limit his/her ability to operate on very small and delicate structures. Unfortunately, many of these limitations affect the outcome of certain surgical procedures, especially in cases where micron-level geometric accuracy is required. For example, the three-dimensional locations and directions of basic procedures used to modify a bone (including drilling, cutting, and reaming) determine the alignment and fit of the implant(s). These factors directly influence these functional outcomes.
Recently, to assist surgeons in overcoming these limitations, computer-assisted surgery (CAS) utilizing robotic- or image-guided technologies has been introduced into various medical fields. CAS, as a categorization or surgical technology, includes not only robotics but also image-guided surgical devices, surgical navigation systems, pre-operative planners, and surgical simulators.
A primary goal of CAS technologies is to integrate pre-operative planting with intra-operative performance. One of the most important steps in integrating preoperative medical images directly into operating room procedures is registration of image and corresponding body part(s). Registration is a computational procedure that matches pre-operative images or planning information to the position of the patient on the operating room table. Rigid pins or other fiducial markers were used in early systems, such as in a robot-assisted system.
For robot-assisted total knee alignment (TKA) surgery, illustrated in
Based upon a converted CT scan image of the exposed bone(s) in the damaged bone region, the location and angular orientation of the femoral mechanical axis AMA), femoral anatomical axis (FAA) and tibial mechanical axis (TMA) are also determined, and a postoperative plan for orientation and movement of the milling machine 16 are determined in a coordinate system relative to the target bone 12, to mill the bone end according to a pre-programmed cutting file. After the registration process i.e., matching the CT image bone model with the target bone using the two pins, the robot assistant is activated, and the milling cutter attached to a robot arm mills the damaged bone region to create one (or preferably several) exposed planar surfaces (transverse, anterior, chamfer, etc.) to accept and mate with a femoral implant.
This method is accurate, to the extent that the ready-made implant device matches the patient's own bone surfaces, but requires at least two surgical operations (including incisions or cutting for each):a first operation for installation of a robotic calibration mechanism and a second operation for the final surgery to install the TKA device itself.
The second surgical operation is constrained by a tourniquet time limitation, which places a practical limit on a maximum cumulative time an open wound can be exposed (usually 90-120 nm in for TKA) without severe danger of infection. This is another disadvantage of robot-assisted surgery, which requires use of a registration process and of a bone location fixation process, both time consuming. As compared to robot-assisted surgery, a conventional manual TKA procedure is usually completed in no more than 30 minutes, despite a relatively high probability of misalignment.
Shape-based registration, illustrated in
Using the surface matching or registration technique illustrated in
Other tracking technologies use acoustic or magnetic sensors that create an electromagnetic field around the surgical site that is altered as instruments move within the field. Such devices do not require a direct line of sight, but the devices may be less accurate, cannot be used with metallic tools, and have difficulties tracking multiple tools simultaneously. One major benefit of either of these tracking methods is a reduction in radiation, due to elimination of the need for intra-operative fluoroscopy or radiography to check component position.
The systems described in the preceding discussion often suffer from a lack of readiness for the operating room and do not always address practical considerations. Many systems introduce additional capital equipment, equipment maintenance and operative steps into the surgical procedures that prolong the surgery and require significant training. Further, most of the systems do not address the issues of sterility and safety, and unwanted motion of the body part(s) to be operated upon. Most systems require input from the surgeon in order to specify data or alter program flow. Many systems rely on a non-sterile assistant to enter data, using a keyboard, mouse or pen, but this is inefficient and risks miscommunication. A sterilized or draped input device, introduced into the surgical operating theater, may be difficult to use, may be distracting for the surgeon, requires the splitting of the surgeon's attention between the display screen in one location and the surgical tool in another, and requires removal of the tool from the surgical site for use elsewhere as an input device.
What is needed is a system that requires only one surgical procedure (defined as requiring at least one incision or cutting operation), employs a pre-operative scanning procedure that provides micron level accuracy, is flexible enough to account for certain tolerances relative to an idealized fit, and provides a fabricated, patient-specific cutting jig and a patient-specific (optional) implant device whose components can be aligned and altered according to the body part(s) involved.
The needs discussed in the preceding paragraph are met by the invention, which uses pre-operative scanning and construction of a geometric model of the target body part surface, pre-operative fabrication of a patient-specific cutting jig and a patient-specific (optional) implant device, which may have one or more than one component, monitoring and a correction of the jig and/or implant device, vis-a-vis the target body part, and relies on a single surgical procedure to remove a selected part of a damaged bone and to implant and initially test an implant device (optional) in vivo.
One feature of the invention is use of an image-based surgical system in total joint arthroplasty, such as total hip arthroplasty (THA), total knee arthroplasty (TKA), total elbow arthroplasty (TEA), spinal surgery, etc. The system software receives or provides geometrical information on the damaged bone, captured in CT or another suitable imaging format, and converts his information into a three-dimensional (3D) model of the bone surfaces during the computer-aided pre-operative planning. The converted 3-D model includes the information on corresponding bone dimensions along with the uncertainties associated with CT scanning and conversion errors. The system displays all the pertinent information on the damaged bones on the screen. The system provides a surgeon with improved visualization of the relationship between the damaged bone and the cutting jig or implant device, including but not limited to accurate alignment of the device, by accurately superimposing representations of a cutting jig and/or an implant device being used in the surgical field over the images of the bone.
Another feature of the invention is that, once the planning is complete, the system software prepares and provides a computer file to direct rapid production machines, such as a computer numerical control (CNC) machine, a stereo-lithograph (SLA) machine, etc, to fabricate a cutting jig and/or an implant device (optional), which may be disposable (replaceable) or non-disposable (recyclable). The value added cutting jig and/or implant device is made of any bio-compatible material and works with a manual and/or automated instrument to transfer joint planning information between a computer-aided pre-operative planning phase and the actual surgical procedure. During surgery, the cutting jig is employed to guide critical cuts and shaping of the bone, such as drilling, reaming, sawing, etc. The cutting jig and/or implant device (optional) includes a surface profile that matches the bone surfaces in vivo.
With reference to the cutting jig surface profile, guiding holes for drilling and inspection, a slot feature for a sawing process, and bushing features for reaming and drilling are fabricated. Alternatively, the surface profile can be created with reference to guiding holes, slots and bushings.
A related feature of the invention is that the system software performs virtual surface mapping techniques with respect to the 3D model based on CT scan images, including point-to-point mapping, surface normal vector mapping, and surface-to-surface mapping techniques. Depending on the application, one or a combination of mapping techniques can be employed.
Another feature of invention is that the system software includes transferring of all pre-operative planning data and related computer files to a production floor model through a selected communication system (e-mail, file transfer protocol, web-browser, LAN, fiber optic cable, wireless, etc. and/or manual transfer).
Another feature of the invention is that, upon receiving the data from a remote planning station, the system software automatically executes and provides information pertinent to the rapid production and inspection processes. A quality control procedure includes monitoring and verification of 1) the surface profile of a cutting jig and of an (optional) surgical implant device compared to the 3-D profile of the bone virtual surface from the CT image and 2) Station and angular positioning of the fabricated features such as drilling holes, slots and bushings. Later, the jig and the (optional) implant device are cleaned, sterilized (optional), packaged and delivered to the surgical operating theater.
These features and advantages of the present invention are embodied in an improved system for assisting a surgeon in using a surgical tool to provide accurate cutting, implant positioning and alignment with resect to one or more body parts. The system uses a computer-aided calibration process involving a surface matching of the cutting jig and/or implant device to the bone surface(s). Because the cutting jig and/or implant device is fabricated using CT scan image data, there is no need for use of a registration process, expensive tracking systems or robotic systems in an operating room, or for use of two or more surgical procedures. The invention is designed rework in conjunction with any manual standard TJA instrumentation, and thus minimizes additional expenditures for capital equipment purchases. Furthermore, there is no increase in surgical time, and the cutting jig and/or implant device can provide a reduction in surgical time.
FIGS. 4A/4B are a flow chart of a procedure for practicing the invention.
FIGS. 8A/8B/8C are schematic views of a surgical implant device for TKA, prepared according to the invention.
1) System Architecture
In a preferred embodiment, the invention provides accurate positioning and alignment of an orthopedic implant without a significant increase in surgical time or capital equipment cost. Also, during the actual surgery, the system does not require use of registration, image matching or location tracking, which distinguishes the invention from other image-based systems.
In
Note that no incision into or cutting of the patient's body has yet occurred; the jig 33 and slot 33S are designed and fabricated using primarily the information obtained from the CT image scan. An implant device 36, illustrated in
The fabricated jig 33 and optional implant device 36 are delivered to a surgical operating theater, and the patient's body is cut open to expose at least the distal end of the femur 31 and the proximal end of the tibia in the damaged bone region 31D. The jig 33 and slot 33S are positioned, and a member of the surgical team removes a portion of the distal end of the femur 31 (and, similarly, removes a portion of the proximal end of the tibia) to provide an exposed and aligned planar surface 35 (and, similarly, to provide an exposed and aligned planar surface of the tibia). The femur jig 33 is then removed, and a corresponding planar surface of the femur implant device 36 is optionally attached to the exposed planar surface of the femur distal. This attachment may be done using one, two, three or more attachment mechanisms, such as bolts, screws or nails, that attach the femur implant device 36 to the remainder of the distal end of the femur, at the femur planar surface 35. In a similar manner, a tibia implant device is attached to the remainder of the proximal end of the tibia at the tibia planar surface.
During the surgery, the custom mating between the jig 33 and the remainder of the target bone (femur and/or tibia) at the exposed planar surface ensures a precise fit (location and alignment, drilling holes and a slot 33S) for surgeons in performing the joint repair/replacement process with any manual standard instrumentation.
FIGS. 4A/4B are a flow chart for practicing the invention. In step 41, a damaged region of a bone, or of one or more adjacent bones, is optionally identified. In step 42, a CT image is formed of the damaged bone region and, preferably, of all portions of each bone involved in the damaged region (e.g., proximal end of the femur and/or distal end of the tibia). For example, if a femur-tibia connection at a knee is damaged, a CT image of the full length of the femur and of the full length of the tibia are preferably formed, including the ends of these bones that are not involved in the damaged bone region. In step 43, location coordinate values of each of a sequence of spaced apart surface points on each bone in the damaged bone region are determined from the CT image. Optionally, these location coordinates are referenced to an absolute coordinate system associated with the damaged bone region.
In step 44, a model of a bone surface in the damaged bone region is estimated or computed, using a mathematical method described herein or another appropriate method. Optionally, the surface points are used to subdivide the bone surface in the damaged bone region into a sequence of polygons P, preferably triangles and/or quadrilaterals, as part of the surface modeling process. At least three approaches are available here.
In a first approach, a mathematical model of the surface is developed ion that matches, as closely as possible, the coordinate values (xn,yn,zn) of each of the sequence of surface location points provided by the CT image. Here, the bone surface may be modeled within each of the sequence of polygons P, and the sequence of approximations can be treated collectively for the bone surface as a whole; or the bone surface may be modeled in the large by a single polynomial, trigonometric series or other function set in appropriate location coordinates, such as Cartesian coordinates (x,y,z).
In a second approach, a surface normal at a selected point within each of the sequence of polygons P is measured or otherwise provided, using the CT image information, and a surface portion within that polygon is determined for which the surface normal matches, as closely as possible, the CT image-provided surface normal at the selected point. In a third approach, use of surface point locations and surface normal vectors are combined.
In step 45, the mathematical model determined for the bone surface in the damaged bone region is used, as part of a production file, to generate automated instructions for fabricating a cutting jig and an implant device (optional) for each of the femur and the tibia. In step 46, the cutting jig and the implant device (optional) are fabricated, using the production file cutting jig preferably includes a planar surface to allow the implant device to mate with and align with the bone.
In step 47, one or more incisions is made on the patient's body to expose the damaged bone region and to allow access to the damaged bone region. The cutting jig is used to remove a selected end portion of the bone and to provide an exposed planar surface of the bone remainder.
In step 48, a selected portion of the damaged bone is removed, using the cutting jig, to provide a planar surface against which an implant device will be (optionally) fitted.
In step 49, the implant device is optionally fitted to, and secured against, the planar surface of the bone remainder, and alignment of the implant device with one or more bone axes and implant device attachment is implemented. In step 50, the surgical incisions in the patient's body are repaired; the patient's body is “sewn up” (once). Only one surgical procedure, with its concomitant incisions and cutting, is required here, and this surgical procedure requires an estimated 20-25 minutes to complete, including bone end remainder and implant device alignment and attachment.
The following is a more detailed discussion of practice of the invention for TJA, where the damaged bone region is a patent's knee.
Stage I:
A non-invasive bone fixturing device 51 is provided (not requiring cutting or piercing of the skin), including a system of rigid bars, 52A and 52B, strapped to and immobilizing the patient's femur 53 and tibia 54 by a plurality of elastic steps, 55A and 55B, as shown in
Stage II:
The 2D and 3D models of the knee from Stage I are viewable on the preoperative plug system PC display as well as a library LINK of the femoral and tibial knee implant components. The library includes 3D models of various size implants and other ancillary parts. The names of the implant manufacturers and manufacturer's surgical criteria and optimum alignment conditions for implant installation will also be available. As an example, using the system to determine the FMA, the surgeon may execute the following sequence: (1) select the center of the femoral head with an icon; (2) select the center of the hip (other end of the femur) with another icon; and (3) connect the two icons with a straight line. This defines an FMA, one of the axes, as illustrated in
Similar to commercially available graphic software, the preoperative planning system includes capabilities for enlargement, shrinking, panning, zooming, rotating, etc. As shown in
The system allows a surgeon to perform the following; (1) check the results of the pre-operative planning to avoid or minimize the consequences of mistakes; and (2) simulate and recommend other available orthopedic theories, techniques and case studies, i.e., for bowed legs and fractured knees, which will be based on recent literature, surveys and widely accepted knee kinematics and alignment theories. This particular portion of the system is optional; the surgeon makes the final decision s in implant planning.
Stage III:
The system generates a production file, including a machining or fabrication file, based upon information of the planned position and alignment of the femoral and tibial components from the previous stage. This file is used to control a production machine that fabricates the patient-specific jigs for both femoral and tibial aspects of the knee. These unique jigs, an example of which is shown in FIGS. 8A/B/C, implement transfer and use of information between preoperative planning and surgery and allow a member of the surgery team to provide a clean, precise slice and an exposed planar surface of the remainder of the bone. The production file creates one or more selected internal (mating) surfaces of the exterior surface profile for the damaged knee surface geometry, for accurate patient-specific mating between the jig and the remainder of the patient's distal femur. In addition, the production file creates a transversely oriented slot and cutting instrument guide for a transverse cutting process. These features are optionally created with respect to the inter-condylar aperture (FAA) as a reference point. Accurate mating between the jig and the distal end of the femur ensures the accurate translation and angular position of the slot as planned in STAGE II. This provides the surgeon with access to a transverse cut on the distal femur, which establishes the correct alignments and provides reference planes for assembling manual instrumentation for the rest of the cuts required for knee implant installation.
The system automatically determines the correct size of the jigs for the distal end of the femur and the proximal end of the tibia (53 and 54 in
Stage IV:
The patient-specific jigs (optionally disposable) are fabricated with rapid production machines. The fabricated features are inspected through a quality control procedure. During the production process, reporting status and error conditions are critical. In order to achieve high quality surface mating, the accommodation of control modules that actively monitor and adjust the machining process should be considered. The system automatically executes and provides information pertinent to the production and inspection processes. The quality procedure involves monitoring and verification of (1) the profile surface of the jigs compared to the profile of the knee surface determined from the CT image and (2) translation and angular positioning of the machined features such as transverse and tibial cutting slots. Finally, the jigs are cleaned, sterilized (optional), labeled, packaged and delivered to the hospital. As yet, no cutting of the patient's body bas occurred.
Modeling of a Bone Surface
Other inventions require so called shape-based registration that the shapes of the bone surface model generated from a pre-operative image are matched to surface data points collected during a first phase of surgery. This surface matching method requires finding a mapping relation (transformation matrix) between bone surface data points and the bone surface model. Therefore, the accuracy of registration process depends on the number of points and distance between each point. Once the mapping relation is found, the pre-operative plan can be performed based on the mapping relation during the surgery. The mapping relation between surface data points and the bone surface model from a preoperative image can provide surgeons with the pre-operative image based planning information needed for a successful surgery. A key to the success of this method is determination of an accurate bone surface representation of a preoperative image. The more accurate the bone surface model is, the more precise the position and alignment of the implant device.
This invention differs from other approaches in not requiring use of a registration process during actual surgery. The invention relies upon a virtual registration process for a bone surface mathematical model generated from a pre-operative, CT scanned image. In order to achieve this goal, the invention includes the interpolated deterministic data points as well as uncertainty associated with each point. This uncertainly information is critical for the production of surgical device (hardware) and surgical error analysis prior to surgery.
Several approaches can be used for virtual registration.
(1) Point-to-point mapping on the bone surface model. Virtual data points on the 3D CT bone surface are selected to accurately describe the distal femur and the proximal tibia in the damaged bone region. Based on the selected data points, virtual pins are introduced at selected surface points with corresponding coordinate values, such as (x,y,z), that are to be used to map the bone surface at these locations. The directions of all virtual pins are straight and may be parallel to, or transverse to, the femoral anatomical axis (FAA). No particular pin direction is required. A pin can point at each selected surface point in any direction, for example in a direction of a surface normal at that surface point. Once the pre-operative planing is completed, an implant device can be fabricated using available manufacturing techniques. The surgical hardware can be disposable or re-usable. During surgery, the implant device with pre-operative planning information, such as slot position and drilling hole locations, is placed on the distal femur. Custom mating between the surgical device and the distal (or proximal) bone surface ensures accurate mapping relation between the actual bone surface and the bone surface model. The more data points are selected, the more accurate surgical result is obtained.
(2) Surface normal vector mapping on the bone surface model. Sufficient virtual data points on the 3D CT image bone surface are selected to describe the geometry of the distal femur and the proximal tibia. Based on the selected data points, virtual pins and pin directions are introduced at the selected data points, with the direction of each virtual pin being normal to the surface at each selected point. The virtual pin directions are arbitrary, but a pin direction normal to the local surface is preferred. Once this pre-operative planning is completed, surgical device can be made using any available manufacturing techniques. The surgical hardware, including jig, can be disposable of re-usable. During surgery, the implant device (patient-specific or off-the-shelf), including pre-operative planning information, such as slot position, drilling hole locations is fabricated and placed on the distal femur. Custom mating between the implant device and the distal bone surface ensures accurate mapping relation between the actual bone surface and the bone surface model. A sufficient number of source point locations and corresponding normal vector component values are determined (preferably five or more) to provide an accurate model of the bone surface.
(3) Local surface mapping on the bone surface model. Several local mating virtual areas on the 3D CT image bone surface are selected to describe a geometry of the distal femur and proximal tibia. The local surface-to-surface mapping is equivalent to case (2), surface normal vector mapping, but uses a significantly larger number of data points. Once this pre-operative planning is completed, surgical device can be made using any available manufacturing techniques. The surgical hardware can be disposable or re-usable. During surgery, the implant device with pre-operative planning information, such as slot position, drilling hole locations is placed on the distal femur. Custom mating between the implant device and the distal bone surface ensures accurate mapping relation between the actual bone surface and the bone surface model. Use of a local area surface mapping approach can significantly increase the accuracy and reliability of the surgery.
(4) Global surface mapping on the bone surface model. One global mating virtual area on the 3D CT image bone surface is determined to describe the geometry of the distal femur and proximal tibia. A global a surface-to-surface mapping is employed, and this approach is equivalent to case (3), the local surface mapping on the bone surface model, with the increased surface contact areas. Once this pre-operative planning is completed, surgical device can be made using any available manufacturing techniques. The surgical hardware can be disposable or re-usable. During surgery, the implant device with pre-operative planning information, such as slot position, drilling hole locations is placed on the distal femur. Custom mating between the implant device and the distal bone surface ensures accurate mapping relation between the actual bone surface and the bone surface model.
Precise pre operative planning is essential for a successful TJA. Several techniques of CT-based pre-operative planning have been developed. The system allows the surgeon to develop a plan of component placement in TJA. Surgeons can check the plan that they have made by referring to the geometric relationship with respect to the implant.
A repaired knee joint, or other joint, may fail prematurely, for any of several reasons. Instability of the implant device, due to kinematic misalignment, may cause such failure and may require performance of a revision TEA. This is a delicate surgical procedure in which additional bone loss, due to realignment, must be minimized. A revision TKA begins with removal of the original implant device and of any bone cement remaining between the implant device and the exposed bone surface. During pre-operative planning, a bone surface image can be formed and preserved, not including the bone cement and implant device surfaces. Based on his (preserved) image data, another patient-specific jig is fabricated with its own (corrected) cutting slot, using the techniques discussed for primary or original TKA. Because all bone surfaces are already shaped due to the earlier primary TKA procedure, use of a surface-to-surface mapping would be appropriate here.
Mathematical Details of Bone Surface Matching.
In a first approximation, first and second sequences of incremental ratios or derivative approximations
(Δx/Δz)n=(xn+1xn)/(zn+1−zn), (1)
(Δy/Δz)n=(yn+1−yn)/(zn+1−zn), (2)
are computed, using a linear approximation ratio for each of the derivatives. The first sequence of derivatives {(Δx/Δz)n}n is then subdivided into a group of one or more mutually exclusive sub-sequences {(Δx/Δz)nk}k (k=1, . . . , K), with each sub-sequence having a consecutive subset of the ratios (Δx/Δz)n with monotonically increasing, or monotonically decreasing, numerical values for the derivatives. In a similar manner, the second sequence of derivatives {(Δy/Δz)m}m is then sub-divided into a group of one or more mutually exclusive sub-sequences {(Δy/Δz)mj}j (j=1, . . . , J), with each sub-sequence having a consecutive subset of the ratios (Δy/Δz)m with monotonically increasing, or monotonically decreasing, numerical values for the derivatives. Within each of the regions where the derivatives are monotonic, a simplified approximation to the local surface can be used.
The preceding equations are used to define regions of mating along the femoral anatomical axis. A change in slope from monotonic increase to decrease, or from monotonic decrease to increase, indicates that mating is no longer possible with respect to the FAA.
(1) Point-to-point bone surface mapping. Consider a quadrilateral Q(1,2,3,4), having a non-zero enclosed area and defined by four adjacent but distinct points, having coordinates (xn,yn,zn) (n=1, 2, 3, 4), as illustrated in
At each of the four locations (xn,yn,zn), three of the four terms in the expression for z=fs(x,y;4;4;qu) vanish, and fs(xn,yn;4;4;qu)=zn.
In a (3,4) situation, only three of the four x-coordinate values are different (e.g., x3≠x1=x2≠x4≠x3), but all four of the y-coordinate values are different from each other. In this (3,4) situation, the shape function is defined to be
For the (4,3) situation, with four distinct x-coordinates values and only three distinct y-coordinate values, the shape function z=fs(x,y;4;3;qu) is defined analogous to the shape function z=(x,y;3;4;qu) in Eq. (6).
In a (2,4) situation, only two of the four x-coordinate values are different (e.g., x1=x2≠x3=x4), but all four of the y-coordinate values are different from each other. In this (2,4) situation, the shape function is defined to be
For the (4,2) situation, with four distinct x-coordinates values and only two distinct y-coordinate values, the shape function z=fs(x,y;4;2;qu) is defined analogous to the shape function z=fs(x,y;2;4;qu) in Eq. (9).
In a (3,3) situation, only three of the x-coordinate values are different (e.g., x3≠x1=x2≠x4≠x3), and only three of the y-coordinate values are different (e.g., y4≠y1≠y2=y3≠y4). In this (3,3) situation, the shape function is defined to be
In a (2,3) situation, two of the four x-coordinate values are different (e.g., x1=x2≠x3=x4), and three of the y-coordinate values are different from each other (e.g., y1≠y2=y3≠y4≠y3). In this (2,4) situation, the shape function is defined to be
For the (3,2) situation, with three distinct x-coordinates values and two distinct y-coordinate values, the shape function z=fs(x,y;3;2;qu) is defined analogous to the shape function z=fs(x,y;2;3;qu) in Eq. (13).
In a (2,2) situation, two of the four x-coordinate values are different (e.g., x1=x2≠x3=x4), and two of the y-coordinate values are different (e.g., y4=y1≠y2=y3). In this (2,2) situation, the shape function is defined to be
More generally, the quadrilateral Q(1,2,3,4) can be replaced by an M-vertex polygon (M≧3) having non-zero included numerical area, and a shape function for this polygon is determined by analogy to the preceding development. The simplest polygon here, having the lowest corresponding polynomial degree in x and y, is a triangle M=3). The particular shape function used will depend upon the configuration of the polygon relative to the coordinate axes. For definiteness, it may be assumed here that the bone surface BS is divided by a grid of quadrilaterals (or triangles) and that the coordinate values (xn,yn,zn) (n=1, 2, 3, 4) of the vertices are known from analysis of the CT scan.
Where a sequence of triangles, rather than a sequence of quadrilaterals, is used to define a grid for the bone surface, as illustrated in
In a (2,3) situation, where only two x-coordinate values are different (e.g., x1=x2≠x3) and all three y-coordinate values are different, the shape function is defined to be
For the (3,2) situation, with three distinct x-coordinates values and two distinct y-coordinate values, the shape function z=fs(x,y;3;2;tr) is defined analogous to the shape function z=fs(x,y;2;3;tr) in Eq. (16).
In a (2,2) situation, two of the three x-coordinate values are different (e.g., x1=x2≠x3), and two of the three y-coordinate values are different (e.g., y1≠y2=y3). In this (2,2) situation, the shape function is defined to be
Where a quadrilateral grid is used and, for a given quadrilateral, precisely M x-coordinate values are different and precisely N y-coordinate values are different (2≦M≦4; 2≦N≦4), the shape function is a polynomial of degree M−1 in x and of degree N−1 in y. Utilizing the theory of equations and roots of equations, one can show that the shape function defined in this manner for a quadrilateral, satisfying fs(xn,yn;M;N;qu)=zn (n=1, 2, 3, 4) and having minimal polynomial degree, is unique, although the polynomial itself may be expressed in different, equivalent ways.
Where a triangular grid is used and, for a given triangular, precisely M x-coordinate values are different and precisely N y-coordinate values are different (2≦M≦3; 2≦N≦3), the shape function is a polynomial of degree M−1 in x and of degree N−1 in y. Utilizing the theory of equations and roots of equations, one can show that the shape function defined in this manner for a quadrilateral, satisfying fs(xn,yn;M;N;tr)=zn (n=1, 2, 3) and having minimal polynomial degree, is unique, although the polynomial itself may be expressed in different, equivalent ways. The shape function polynomial for a triangular grid has smaller polynomial degree in x and in y (as small as degree 1 in each of x and in y) than the corresponding shape function polynomial for a quadrilateral grid.
The shape function, fs(x,y;M;N;tr) or fs(x,y;M;N;qu), may be used as is to describe a minimal polynomial surface for a particular polygon satisfying fs(xn,yn,M;N;tr or qu)=zn. If desired, the grid adopted may include a mixture of triangles and quadrilaterals, with each such polygon having its own shape function. That is, if the grid includes a total of K polygons (e.g., triangles and/or quadrilaterals), a total of K shape functions are defined, using the preceding mathematical construction.
(2) Bone surface normal mapping. The components of a vector n(x,y) normal to the bone surface defined by the shape function for a particular quadrilateral are determined to be
n(x,y)={∂fs/∂x,∂fs/∂y,−1}, (18)
where the vector components can be, but need not be, normalized to unit length, if desire. These normal vector components can be used to determine the local surface normal n(x,y) for an implant device that approximates as closely as possible the bone surface BS imaged by the CT scan. Again, if the grid includes a total of K polygons (e.g., triangles and/or quadrilaterals), a total of up to K shape functions are defined, using the preceding mathematical construction, and a surface normal at a selected location within each polygon is computed.
n^=(cos φ·sin θ,sin φ·sin θ,cos θ). (19)
A local surface element defined by the three locations (xm,ym,zm) is approximated by a surface element of an ellipsoid that is rotated by an angle y in the (x,y)-plane relative to the x-coordinate axis
{(x−x0)cos ψ+(y−y0)sin ψ}2/a2+{−(x−x0)sin ψ+(y−y0)cos ψ}2/b2+(z−z0)2/c2=1, (20)
where a, b and c are three positive numbers and x0, y0 and z0 are three coordinate values, and ψ is a rotation angle, as yet unspecified. Locally, the ellipsoid surface can be re-expressed in functional form as
z(x,y)=z0±c{1−u2−v2}1/2, (21)
∂z/∂x=−(±)(c/a)u/{1−u2−v2}1/2, (22)
∂z/∂y=−(±)(c/b)v/{1−u2−v2}1/2, (23)
u={(x−x0)cos ψ+(y−y0)sin ψ}/a, (24)
v={−(x−x0)sin ψ+(y−y0)cos ψ}/b. (25)
The expressions for ∂z/∂x and ∂z/∂y are strictly monotonic (increasing or decreasing) in each of the variables u and v and range from −∞ to +∞ so that, for any pair of real numbers (w1,w2), unique values u and v can be found for Eqs. (22) and (23) for which ∂z/∂x=w1 and ∂z/∂y=w2. Vector components for a unit-length normal vector for the surface z(x,y) are expressible as
n^=(±(c/a)u,±(c/b)v,−{1−(c/a)2u2−(c/b)2v2}1/2), (26)
and t-length surface normal vectors n^(m) are to be matched at three locations, (x,y,z)=(xm,ym,zm). Matching of the third of these three vector components is automatic (apart from the signum) for a unit-length vector. These vector components matching requirements are expressed as
(c/a)um=c′{(xm−x0)cos ψ+(ym−y0)sin ψ}/a2=cos φm·sin θm, (27A)
(c/b)vm=c′{−(xm−x0)sin ψ+(ym−y0)cos ψ}/b2=sin φm·sin θm, (27B)
(m=1, 2, 3), where the right hand expressions are specified or measured values. Equations (27A) and (27B) can also be rotated and thereby expressed in the form
xm−x0=(a2/c)cos ψ cos φm sin θm−(b2/c)sin ψsin φm sin θm, (28A)
ym−y0=(a2/c)sin ψ cos φm sin θm+(b2/c)cos ψ sin φm sin θm. (28B)
Equations (27A) and (27B), or (28A) and (28B), are six equations in six explicit unknowns (x0, y0, ψ, a, b, c), and solutions can be found. Each surface element may have a different set of these unknowns, but two adjacent surface elements with a common vertex will have the same surface normal at that common vertex.
Once these six unknowns are determined, the ellipsoidal surface element extending between the three locations or vertices (xm,ym,zm) is defined, with a surface normal that varies continuously from a surface normal at one of these vertices to a surface normal at another of these vertices. These surface elements become part of a surface mosaic that provides a well defined surface normal within the surface element interior. No matter which direction a surface element vertex is approached, from within any surface element that has that vertex, the surface normal vector will approach the same normal vector associated with that vertex. Although an ellipsoid, defined in Eq. (20) has been used here, any other three-dimensional conic, such as a saddle surface with at least one + sign replaced by a − sign in Eq. (20), can be used for surface normal matching in appropriate circumstances.
(3) Bone surface-to-surface mapping. A surface-to-surface mapping is an extension of bone surface normal mapping, using a significantly larger number of data points and surface normal vectors within selected regions.
Construction of a mathematical model of a portion of a bone surface has used polynomials in a Cartesian coordinate set (x,y,z). One could, as well, use a multi-coordinate Fourier series, expressed in cylindrical coordinates (r(θ,z),θ,z) or in another suitable coordinate set, for the location of selected points on a bone surface.
Any other suitable approach for point-to-point mapping and/or surface normal mapping can be used here to determine or estimate a mathematically expressed surface for a selected portion of a bone.
Although the example herein has focused on TJA for a patient's knee, the procedure is applicable to any other joint as well, such as a patient's hip, foot, toe, elbow, shoulder, wrist, finger or neck joint.
This application is a continuation application, under 35 U.S.C. §120, of U.S. application Ser. No. 10/146,862, filed May 15, 2002, the disclosure of which is hereby incorporated herein by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
3195411 | MacDonald et al. | Jul 1965 | A |
3825151 | Arnaud | Jul 1974 | A |
D245920 | Shen | Sep 1977 | S |
4198712 | Swanson | Apr 1980 | A |
4298992 | Burstein | Nov 1981 | A |
4436684 | White | Mar 1984 | A |
D274093 | Kenna | May 1984 | S |
D274161 | Kenna | Jun 1984 | S |
4467801 | Whiteside | Aug 1984 | A |
4575330 | Hull | Mar 1986 | A |
4646726 | Westin et al. | Mar 1987 | A |
4719585 | Cline et al. | Jan 1988 | A |
4721104 | Kaufman et al. | Jan 1988 | A |
4821213 | Cline et al. | Apr 1989 | A |
4822365 | Walker et al. | Apr 1989 | A |
4825857 | Kenna | May 1989 | A |
4841975 | Woolson | Jun 1989 | A |
4931056 | Ghajar et al. | Jun 1990 | A |
4936862 | Walker et al. | Jun 1990 | A |
4976737 | Leake | Dec 1990 | A |
5007936 | Woolson | Apr 1991 | A |
5011405 | Lemchen | Apr 1991 | A |
5027281 | Rekow et al. | Jun 1991 | A |
5030219 | Matsen, III et al. | Jul 1991 | A |
5037424 | Aboczsky | Aug 1991 | A |
5075866 | Goto et al. | Dec 1991 | A |
5078719 | Schreiber | Jan 1992 | A |
5086401 | Glassman et al. | Feb 1992 | A |
5098383 | Hemmy et al. | Mar 1992 | A |
5099846 | Hardy | Mar 1992 | A |
5122144 | Bert et al. | Jun 1992 | A |
5123927 | Duncan et al. | Jun 1992 | A |
5139419 | Andreiko et al. | Aug 1992 | A |
5140646 | Ueda | Aug 1992 | A |
5141512 | Farmer et al. | Aug 1992 | A |
5154717 | Matsen, III et al. | Oct 1992 | A |
5156777 | Kaye | Oct 1992 | A |
5171276 | Caspari et al. | Dec 1992 | A |
D336518 | Taylor | Jun 1993 | S |
5218427 | Koch | Jun 1993 | A |
5234433 | Bert et al. | Aug 1993 | A |
5236461 | Forte | Aug 1993 | A |
5274565 | Reuben | Dec 1993 | A |
5298115 | Leonard | Mar 1994 | A |
5305203 | Raab | Apr 1994 | A |
D346979 | Stalcup et al. | May 1994 | S |
5320529 | Pompa | Jun 1994 | A |
5360446 | Kennedy | Nov 1994 | A |
5364402 | Mumme et al. | Nov 1994 | A |
5365996 | Crook | Nov 1994 | A |
5368478 | Andreiko et al. | Nov 1994 | A |
D355254 | Krafft et al. | Feb 1995 | S |
D357315 | Dietz | Apr 1995 | S |
5408409 | Glassman et al. | Apr 1995 | A |
5431562 | Andreiko et al. | Jul 1995 | A |
5448489 | Reuben | Sep 1995 | A |
5452407 | Crook | Sep 1995 | A |
5462550 | Dietz et al. | Oct 1995 | A |
5484446 | Burke et al. | Jan 1996 | A |
D372309 | Heldreth | Jul 1996 | S |
D374078 | Johnson et al. | Sep 1996 | S |
5556278 | Meitner | Sep 1996 | A |
5569260 | Petersen | Oct 1996 | A |
5569261 | Marik et al. | Oct 1996 | A |
5601563 | Burke et al. | Feb 1997 | A |
5601565 | Huebner | Feb 1997 | A |
5662656 | White | Sep 1997 | A |
5681354 | Eckhoff | Oct 1997 | A |
5682886 | Delp et al. | Nov 1997 | A |
5683398 | Caris et al. | Nov 1997 | A |
5690635 | Matsen, III et al. | Nov 1997 | A |
5716361 | Masini | Feb 1998 | A |
5725376 | Poirier | Mar 1998 | A |
5735277 | Schuster | Apr 1998 | A |
5741215 | D'Urso | Apr 1998 | A |
5749876 | Duvillier et al. | May 1998 | A |
5768134 | Swaelens | Jun 1998 | A |
5769092 | Williamson, Jr. | Jun 1998 | A |
5769859 | Dorsey | Jun 1998 | A |
D398058 | Collier | Sep 1998 | S |
5810830 | Noble et al. | Sep 1998 | A |
5824085 | Sahay et al. | Oct 1998 | A |
5824098 | Stein | Oct 1998 | A |
5824100 | Kester et al. | Oct 1998 | A |
5824111 | Schall et al. | Oct 1998 | A |
5860980 | Axelson, Jr. et al. | Jan 1999 | A |
5860981 | Bertin et al. | Jan 1999 | A |
5871018 | Delp et al. | Feb 1999 | A |
5880976 | DiGioia, III et al. | Mar 1999 | A |
5908424 | Bertin et al. | Jun 1999 | A |
5911724 | Wehrli | Jun 1999 | A |
5916221 | Hodorek et al. | Jun 1999 | A |
5964808 | Blaha et al. | Oct 1999 | A |
5967777 | Klein et al. | Oct 1999 | A |
5993448 | Remmier | Nov 1999 | A |
5995738 | DiGioia, III et al. | Nov 1999 | A |
6002859 | DiGioia, III et al. | Dec 1999 | A |
6068658 | Insall et al. | May 2000 | A |
6090114 | Matsuno et al. | Jul 2000 | A |
6096043 | Techiera et al. | Aug 2000 | A |
6106529 | Techiera | Aug 2000 | A |
6112109 | D'Urso | Aug 2000 | A |
6126690 | Ateshian et al. | Oct 2000 | A |
6132447 | Dorsey | Oct 2000 | A |
6161080 | Aouni-Ateshian et al. | Dec 2000 | A |
6171340 | McDowell | Jan 2001 | B1 |
6173200 | Cooke et al. | Jan 2001 | B1 |
6183515 | Barlow et al. | Feb 2001 | B1 |
6205411 | DiGioia, III et al. | Mar 2001 | B1 |
6228121 | Khalili | May 2001 | B1 |
6254639 | Peckitt | Jul 2001 | B1 |
6285902 | Kienzle, III et al. | Sep 2001 | B1 |
6327491 | Franklin et al. | Dec 2001 | B1 |
6343987 | Hayama et al. | Feb 2002 | B2 |
6382975 | Poirier | May 2002 | B1 |
6383228 | Schmotzer et al. | May 2002 | B1 |
6385475 | Cinquin et al. | May 2002 | B1 |
6415171 | Gueziec et al. | Jul 2002 | B1 |
6458135 | Harwin et al. | Oct 2002 | B1 |
6463351 | Clynch | Oct 2002 | B1 |
6503254 | Masini | Jan 2003 | B2 |
6510334 | Schuster et al. | Jan 2003 | B1 |
6514259 | Picard et al. | Feb 2003 | B2 |
6520964 | Tallarida et al. | Feb 2003 | B2 |
6533737 | Brosseau et al. | Mar 2003 | B1 |
D473307 | Cooke | Apr 2003 | S |
6540784 | Barlow et al. | Apr 2003 | B2 |
6558426 | Masini | May 2003 | B1 |
6575980 | Robie | Jun 2003 | B1 |
6602259 | Masini | Aug 2003 | B1 |
6672870 | Knapp | Jan 2004 | B2 |
6692448 | Tanaka et al. | Feb 2004 | B2 |
6701174 | Krause et al. | Mar 2004 | B1 |
6702821 | Bonutti | Mar 2004 | B2 |
6711431 | Sarin et al. | Mar 2004 | B2 |
6711432 | Krause et al. | Mar 2004 | B1 |
6712856 | Carignan et al. | Mar 2004 | B1 |
6716249 | Hyde | Apr 2004 | B2 |
6738657 | Franklin et al. | May 2004 | B1 |
6747646 | Gueziec et al. | Jun 2004 | B2 |
6770099 | Andriacchi et al. | Aug 2004 | B2 |
6772026 | Bradbury et al. | Aug 2004 | B2 |
6799066 | Steines et al. | Sep 2004 | B2 |
6814575 | Poirier | Nov 2004 | B2 |
6905510 | Saab | Jun 2005 | B2 |
6905514 | Carignan et al. | Jun 2005 | B2 |
6923817 | Carson et al. | Aug 2005 | B2 |
6932842 | Litschko et al. | Aug 2005 | B1 |
6944518 | Roose | Sep 2005 | B2 |
6955345 | Kato | Oct 2005 | B2 |
6969393 | Pinczewski et al. | Nov 2005 | B2 |
6975894 | Wehrli et al. | Dec 2005 | B2 |
6978188 | Christensen | Dec 2005 | B1 |
7029479 | Tallarida et al. | Apr 2006 | B2 |
7033360 | Cinquin et al. | Apr 2006 | B2 |
7039225 | Tanaka et al. | May 2006 | B2 |
7060074 | Rosa et al. | Jun 2006 | B2 |
7074241 | McKinnon | Jul 2006 | B2 |
7090677 | Fallin et al. | Aug 2006 | B2 |
7094241 | Hodorek et al. | Aug 2006 | B2 |
RE39301 | Bertin | Sep 2006 | E |
7104997 | Lionberger et al. | Sep 2006 | B2 |
7128745 | Masini et al. | Oct 2006 | B2 |
D532515 | Buttler et al. | Nov 2006 | S |
7141053 | Rose et al. | Nov 2006 | B2 |
7153309 | Huebner et al. | Dec 2006 | B2 |
7174282 | Hollister et al. | Feb 2007 | B2 |
7177386 | Mostafavi et al. | Feb 2007 | B2 |
7184814 | Lang et al. | Feb 2007 | B2 |
7235080 | Hodorek | Jun 2007 | B2 |
7238190 | Schon et al. | Jul 2007 | B2 |
7239908 | Alexander et al. | Jul 2007 | B1 |
7275218 | Petrella et al. | Sep 2007 | B2 |
7309339 | Cusick et al. | Dec 2007 | B2 |
7340316 | Spaeth et al. | Mar 2008 | B2 |
7359746 | Arata | Apr 2008 | B2 |
7393012 | Funakura et al. | Jul 2008 | B2 |
7394946 | Dewaele | Jul 2008 | B2 |
7429346 | Ensign et al. | Sep 2008 | B2 |
7468075 | Lang et al. | Dec 2008 | B2 |
7547307 | Carson et al. | Jun 2009 | B2 |
7611519 | Lefevre et al. | Nov 2009 | B2 |
7616800 | Paik et al. | Nov 2009 | B2 |
7618421 | Axelson, Jr. et al. | Nov 2009 | B2 |
7618451 | Berez et al. | Nov 2009 | B2 |
7630750 | Liang et al. | Dec 2009 | B2 |
7634119 | Tsougarakis et al. | Dec 2009 | B2 |
7634306 | Sarin et al. | Dec 2009 | B2 |
7641660 | Lakin et al. | Jan 2010 | B2 |
7643862 | Schoenefeld | Jan 2010 | B2 |
7693321 | Lehtonen-Krause | Apr 2010 | B2 |
7702380 | Dean | Apr 2010 | B1 |
7715602 | Richard | May 2010 | B2 |
7717956 | Lang | May 2010 | B2 |
D618796 | Cantu et al. | Jun 2010 | S |
D619718 | Gannoe et al. | Jul 2010 | S |
D622854 | Otto et al. | Aug 2010 | S |
D626234 | Otto et al. | Oct 2010 | S |
7806896 | Bonutti | Oct 2010 | B1 |
7842039 | Hodorek et al. | Nov 2010 | B2 |
7881768 | Lang et al. | Feb 2011 | B2 |
7894650 | Weng et al. | Feb 2011 | B2 |
7940974 | Skinner et al. | May 2011 | B2 |
7950924 | Brajnovic | May 2011 | B2 |
D642263 | Park | Jul 2011 | S |
7974677 | Mire et al. | Jul 2011 | B2 |
8021368 | Haines | Sep 2011 | B2 |
8036729 | Lang et al. | Oct 2011 | B2 |
8077950 | Tsougarakis et al. | Dec 2011 | B2 |
8086336 | Christensen | Dec 2011 | B2 |
8126533 | Lavallee | Feb 2012 | B2 |
RE43282 | Alexander et al. | Mar 2012 | E |
8142189 | Brajnovic | Mar 2012 | B2 |
8160345 | Pavlovskaia et al. | Apr 2012 | B2 |
8170716 | Coste-Maniere et al. | May 2012 | B2 |
8221430 | Park et al. | Jul 2012 | B2 |
8234097 | Steines et al. | Jul 2012 | B2 |
8306601 | Lang et al. | Nov 2012 | B2 |
8311306 | Pavlovskaia et al. | Nov 2012 | B2 |
8337501 | Fitz et al. | Dec 2012 | B2 |
8460302 | Park et al. | Jun 2013 | B2 |
8460303 | Park | Jun 2013 | B2 |
8480679 | Park | Jul 2013 | B2 |
8483469 | Pavlovskaia et al. | Jul 2013 | B2 |
8532361 | Pavlovskaia et al. | Sep 2013 | B2 |
D691719 | Park | Oct 2013 | S |
8545509 | Park et al. | Oct 2013 | B2 |
20020055783 | Tallarida et al. | May 2002 | A1 |
20020087274 | Alexander et al. | Jul 2002 | A1 |
20020160337 | Klein et al. | Oct 2002 | A1 |
20030009167 | Wozencroft | Jan 2003 | A1 |
20030055502 | Lang et al. | Mar 2003 | A1 |
20030176783 | Hu | Sep 2003 | A1 |
20030216669 | Lang et al. | Nov 2003 | A1 |
20040097952 | Sarin et al. | May 2004 | A1 |
20040102792 | Sarin et al. | May 2004 | A1 |
20040102866 | Harris et al. | May 2004 | A1 |
20040133276 | Lang et al. | Jul 2004 | A1 |
20040138754 | Lang et al. | Jul 2004 | A1 |
20040147927 | Tsougarakis et al. | Jul 2004 | A1 |
20040152970 | Hunter et al. | Aug 2004 | A1 |
20040153066 | Coon et al. | Aug 2004 | A1 |
20040153079 | Tsougarakis et al. | Aug 2004 | A1 |
20040153087 | Sanford et al. | Aug 2004 | A1 |
20040171924 | Mire et al. | Sep 2004 | A1 |
20040204760 | Fitz et al. | Oct 2004 | A1 |
20040220583 | Pieczynski et al. | Nov 2004 | A1 |
20040236424 | Berez et al. | Nov 2004 | A1 |
20040243148 | Wasielewski | Dec 2004 | A1 |
20040243481 | Bradbury et al. | Dec 2004 | A1 |
20040254584 | Sarin et al. | Dec 2004 | A1 |
20050059978 | Sherry et al. | Mar 2005 | A1 |
20050065617 | Moctezuma de la Barrera | Mar 2005 | A1 |
20050096535 | Moctezuma de la Barrera | May 2005 | A1 |
20050113841 | Sheldon et al. | May 2005 | A1 |
20050119664 | Carignan et al. | Jun 2005 | A1 |
20050148843 | Roose | Jul 2005 | A1 |
20050148860 | Liew et al. | Jul 2005 | A1 |
20050192588 | Garcia | Sep 2005 | A1 |
20050216024 | Massoud | Sep 2005 | A1 |
20050234461 | Burdulis et al. | Oct 2005 | A1 |
20050245934 | Tuke et al. | Nov 2005 | A1 |
20050245936 | Tuke et al. | Nov 2005 | A1 |
20050256389 | Koga et al. | Nov 2005 | A1 |
20050267584 | Burdulis et al. | Dec 2005 | A1 |
20060015018 | Jutras et al. | Jan 2006 | A1 |
20060015030 | Poulin et al. | Jan 2006 | A1 |
20060015109 | Haines | Jan 2006 | A1 |
20060015188 | Grimes | Jan 2006 | A1 |
20060030853 | Haines | Feb 2006 | A1 |
20060036257 | Steffensmeier | Feb 2006 | A1 |
20060110017 | Tsai et al. | May 2006 | A1 |
20060111628 | Tsai et al. | May 2006 | A1 |
20060122491 | Murray et al. | Jun 2006 | A1 |
20060155293 | McGinley et al. | Jul 2006 | A1 |
20060155294 | Steffensmeier et al. | Jul 2006 | A1 |
20060195113 | Masini | Aug 2006 | A1 |
20060271058 | Ashton et al. | Nov 2006 | A1 |
20060293681 | Claypool et al. | Dec 2006 | A1 |
20070005073 | Claypool et al. | Jan 2007 | A1 |
20070021838 | Dugas et al. | Jan 2007 | A1 |
20070038059 | Sheffer et al. | Feb 2007 | A1 |
20070055268 | Utz et al. | Mar 2007 | A1 |
20070073305 | Lionberger et al. | Mar 2007 | A1 |
20070083266 | Lang | Apr 2007 | A1 |
20070100462 | Lang et al. | May 2007 | A1 |
20070106389 | Croxton et al. | May 2007 | A1 |
20070114370 | Smith et al. | May 2007 | A1 |
20070118055 | McCombs | May 2007 | A1 |
20070118243 | Schroeder et al. | May 2007 | A1 |
20070123912 | Carson | May 2007 | A1 |
20070162039 | Wozencroft | Jul 2007 | A1 |
20070167833 | Redel et al. | Jul 2007 | A1 |
20070173858 | Engh et al. | Jul 2007 | A1 |
20070191741 | Tsai et al. | Aug 2007 | A1 |
20070198022 | Lang et al. | Aug 2007 | A1 |
20070213738 | Martin et al. | Sep 2007 | A1 |
20070219560 | Hodorek | Sep 2007 | A1 |
20070226986 | Chi et al. | Oct 2007 | A1 |
20070232959 | Couture et al. | Oct 2007 | A1 |
20070233136 | Wozencroft | Oct 2007 | A1 |
20070233140 | Metzger et al. | Oct 2007 | A1 |
20070233141 | Park et al. | Oct 2007 | A1 |
20070233269 | Steines et al. | Oct 2007 | A1 |
20070239167 | Pinczewski et al. | Oct 2007 | A1 |
20070249967 | Buly et al. | Oct 2007 | A1 |
20070276224 | Lang et al. | Nov 2007 | A1 |
20070276400 | Moore et al. | Nov 2007 | A1 |
20070282451 | Metzger et al. | Dec 2007 | A1 |
20070288030 | Metzger et al. | Dec 2007 | A1 |
20080004701 | Axelson et al. | Jan 2008 | A1 |
20080015433 | Alexander et al. | Jan 2008 | A1 |
20080015599 | D'Alessio et al. | Jan 2008 | A1 |
20080015600 | D'Alessio et al. | Jan 2008 | A1 |
20080015602 | Axelson et al. | Jan 2008 | A1 |
20080015606 | D'Alessio et al. | Jan 2008 | A1 |
20080015607 | D'Alessio et al. | Jan 2008 | A1 |
20080031412 | Lang et al. | Feb 2008 | A1 |
20080033442 | Amiot et al. | Feb 2008 | A1 |
20080088761 | Lin et al. | Apr 2008 | A1 |
20080114370 | Schoenefeld | May 2008 | A1 |
20080147072 | Park et al. | Jun 2008 | A1 |
20080153067 | Berckmans et al. | Jun 2008 | A1 |
20080161815 | Schoenefeld et al. | Jul 2008 | A1 |
20080195108 | Bhatnagar et al. | Aug 2008 | A1 |
20080215059 | Carignan et al. | Sep 2008 | A1 |
20080234685 | Gjerde | Sep 2008 | A1 |
20080243127 | Lang et al. | Oct 2008 | A1 |
20080257363 | Schoenefeld et al. | Oct 2008 | A1 |
20080262624 | White et al. | Oct 2008 | A1 |
20080275452 | Lang et al. | Nov 2008 | A1 |
20080281328 | Lang et al. | Nov 2008 | A1 |
20080281329 | Fitz et al. | Nov 2008 | A1 |
20080281426 | Fitz et al. | Nov 2008 | A1 |
20080286722 | Berckmans, III et al. | Nov 2008 | A1 |
20080287953 | Sers | Nov 2008 | A1 |
20080287954 | Kunz et al. | Nov 2008 | A1 |
20080312659 | Metzger et al. | Dec 2008 | A1 |
20080319491 | Schoenefeld | Dec 2008 | A1 |
20090024131 | Metzger et al. | Jan 2009 | A1 |
20090088763 | Aram et al. | Apr 2009 | A1 |
20090093816 | Roose et al. | Apr 2009 | A1 |
20090110498 | Park | Apr 2009 | A1 |
20090112213 | Heavener et al. | Apr 2009 | A1 |
20090138020 | Park et al. | May 2009 | A1 |
20090151736 | Belcher et al. | Jun 2009 | A1 |
20090157083 | Park et al. | Jun 2009 | A1 |
20090222014 | Bojarski et al. | Sep 2009 | A1 |
20090222103 | Fitz et al. | Sep 2009 | A1 |
20090234217 | Mire et al. | Sep 2009 | A1 |
20090248044 | Amiot et al. | Oct 2009 | A1 |
20090254093 | White et al. | Oct 2009 | A1 |
20090254367 | Belcher et al. | Oct 2009 | A1 |
20090276045 | Lang | Nov 2009 | A1 |
20090306676 | Lang et al. | Dec 2009 | A1 |
20090307893 | Burdulis, Jr. et al. | Dec 2009 | A1 |
20090312805 | Lang et al. | Dec 2009 | A1 |
20100042105 | Park et al. | Feb 2010 | A1 |
20100049195 | Park et al. | Feb 2010 | A1 |
20100152741 | Park et al. | Jun 2010 | A1 |
20100160917 | Fitz et al. | Jun 2010 | A1 |
20100168754 | Fitz et al. | Jul 2010 | A1 |
20100174376 | Lang | Jul 2010 | A1 |
20100228257 | Bonutti | Sep 2010 | A1 |
20100256479 | Park et al. | Oct 2010 | A1 |
20100274534 | Steines et al. | Oct 2010 | A1 |
20100298894 | Bojarski et al. | Nov 2010 | A1 |
20100303313 | Lang et al. | Dec 2010 | A1 |
20100303317 | Tsougarakis et al. | Dec 2010 | A1 |
20100303324 | Lang et al. | Dec 2010 | A1 |
20100305574 | Fitz et al. | Dec 2010 | A1 |
20100305708 | Lang et al. | Dec 2010 | A1 |
20100305907 | Fitz et al. | Dec 2010 | A1 |
20100329530 | Lang et al. | Dec 2010 | A1 |
20110029093 | Bojarski et al. | Feb 2011 | A1 |
20110066193 | Lang et al. | Mar 2011 | A1 |
20110066245 | Lang et al. | Mar 2011 | A1 |
20110071581 | Lang et al. | Mar 2011 | A1 |
20110087332 | Bojarski et al. | Apr 2011 | A1 |
20110214279 | Park et al. | Sep 2011 | A1 |
20110268248 | Simon et al. | Nov 2011 | A1 |
20110276145 | Carignan et al. | Nov 2011 | A1 |
20110282473 | Pavlovskaia et al. | Nov 2011 | A1 |
20110295329 | Fitz et al. | Dec 2011 | A1 |
20110295378 | Bojarski et al. | Dec 2011 | A1 |
20120053591 | Haines et al. | Mar 2012 | A1 |
20120066892 | Lang et al. | Mar 2012 | A1 |
20120071881 | Lang et al. | Mar 2012 | A1 |
20120071882 | Lang et al. | Mar 2012 | A1 |
20120071883 | Lang et al. | Mar 2012 | A1 |
20120072185 | Lang et al. | Mar 2012 | A1 |
20120093377 | Tsougarakis et al. | Apr 2012 | A1 |
20120101503 | Lang et al. | Apr 2012 | A1 |
20120143197 | Lang et al. | Jun 2012 | A1 |
20120151730 | Fitz et al. | Jun 2012 | A1 |
20120158001 | Burdulis, Jr. et al. | Jun 2012 | A1 |
20120158002 | Carignan et al. | Jun 2012 | A1 |
20120165821 | Carignan et al. | Jun 2012 | A1 |
20120191205 | Bojarski et al. | Jul 2012 | A1 |
20120191420 | Bojarski et al. | Jul 2012 | A1 |
20120192401 | Pavlovskaia et al. | Aug 2012 | A1 |
20120197260 | Fitz et al. | Aug 2012 | A1 |
20120197408 | Lang et al. | Aug 2012 | A1 |
20120215226 | Bonutti | Aug 2012 | A1 |
20120230566 | Dean et al. | Sep 2012 | A1 |
20120232669 | Bojarski et al. | Sep 2012 | A1 |
20120232670 | Bojarski et al. | Sep 2012 | A1 |
20120232671 | Bojarski et al. | Sep 2012 | A1 |
20120310400 | Park | Dec 2012 | A1 |
20130039551 | Pavlovskaia et al. | Feb 2013 | A1 |
20130115474 | Park | May 2013 | A1 |
20130116697 | Park et al. | May 2013 | A1 |
20130123789 | Park | May 2013 | A1 |
20130190767 | Park et al. | Jul 2013 | A1 |
20130197526 | Park et al. | Aug 2013 | A1 |
20130197687 | Pavlovskaia et al. | Aug 2013 | A1 |
Number | Date | Country |
---|---|---|
3305237 | Feb 1983 | DE |
4341367 | Jun 1995 | DE |
10 2005 023 028 | Nov 2006 | DE |
0097001 | Dec 1983 | EP |
0574098 | Dec 1993 | EP |
0622052 | Nov 1994 | EP |
0908836 | Apr 1999 | EP |
0908836 | Dec 1999 | EP |
1059153 | Dec 2000 | EP |
1486900 | Dec 2004 | EP |
1 532 939 | May 2005 | EP |
2215610 | Sep 1989 | GB |
2420717 | Jun 2006 | GB |
10-94538 | Apr 1998 | JP |
2001-092950 | Apr 2001 | JP |
WO-9325157 | Dec 1993 | WO |
WO 9507509 | Mar 1995 | WO |
WO 9527450 | Oct 1995 | WO |
WO 9723172 | Jul 1997 | WO |
WO 9812995 | Apr 1998 | WO |
WO 0035346 | Jun 2000 | WO |
WO-0100096 | Jan 2001 | WO |
WO-0170142 | Sep 2001 | WO |
WO 0185040 | Nov 2001 | WO |
WO 02096268 | Dec 2002 | WO |
WO-2004032806 | Apr 2004 | WO |
WO-2004049981 | Jun 2004 | WO |
WO-2005051240 | Jun 2005 | WO |
WO 2005087125 | Sep 2005 | WO |
WO-2006058057 | Jun 2006 | WO |
WO-2006060795 | Jun 2006 | WO |
WO-2006092600 | Sep 2006 | WO |
WO 2006134345 | Dec 2006 | WO |
WO-2007014164 | Feb 2007 | WO |
WO 2007058632 | May 2007 | WO |
WO 2007092841 | Aug 2007 | WO |
Entry |
---|
Author Unknown, “MRI Protocol Reference,” ConforMIS, Inc., copyright 2007, http://www.conformis.com/Imaging-Professionals/MRI-Protocol-Guides, last visited on Mar. 28, 2008, 18 pages. |
Author Unknown, “MRI Protocol Reference Guide for GE Systems,” ConforMIS, Inc., copyright 2007, http://www.conformis.com/Imaging-Professionals/MRI-Protocol-Guides, last visited on Mar. 28, 2008, 18 pages. |
Author Unknown, “MRI Protocol Reference Guide for Phillips Systems,” ConforMIS, Inc., copyright 2007, http://www.conformis.com/Imaging-Professionals/MRI-Protocol-Guides, last visited on Mar. 28, 2008, 19 pages. |
Author Unknown, “MRI Protocol Reference Guide for Siemens Systems,” ConforMIS, Inc., copyright 2007, http://www.conformis.com/Imaging-Professionals/MRI-Protocol-Guides, last visited on Mar. 28, 2008, 18 pages. |
Barequet et al., “Filling Gaps in the Boundary of a Polyhedron,” Computer Aided Geometric Design, vol. 12, pp. 207-229, 1995. |
Barequet et al., “Repairing CAD Models,” Proceedings of the 8th IEEE Visualization '97 Conference, pp. 363-370, Oct. 1997. |
Bi{hacek over (sc)}ević et al., “Variations of Femoral Condyle Shape,” Coll. Antropol., vol. 29 No. 2, pp. 409-414, 2005. |
Bøhn et al., “A Topology-Based Approach for Shell-Closure,” Geometric Modeling for Product Realization (P.R. Wilson et al. editors), pp. 297-319, Elsevier Science Publishers B.V., North-Holland, 1993. |
Couglin et al., “Tibial Axis and Patellar Position Relative to the Femoral Epicondylar Axis During Squatting,” The Journal of Arthroplasty, vol. 18, No. 8, Elsevier, 2003. |
Eckhoff et al., “Three-Dimensional Mechanics, Kinematics, and Morphology of the Knee Viewed in Virtual Realty,” The Journal of Bone and Joint Surgery, vol. 87-A, Supplement 2, pp. 71-80, 2005. |
Erikson, “Error Correction of a Large Architectural Model: The Henderson County Courthouse,” Technical Report TR95-013, Dept. of Computer Science, University of North Carolina at Chapel Hill, pp. 1-11, 1995. |
Ervin et al., Landscape Modeling, McGraw-Hill, New York, NY, 8 pages (Table of Contents), 2001. |
Farin, NURB Curves and Surfaces: From Projective Geometry to Practical Use, AK Peters, Wellesley, MA, 7 pages (Table of Contents), 1995. |
Fleischer et al., “Accurate Polygon Scan Conversion Using Half-Open Intervals,” Graphics Gems III, pp. 362-365, code: pp. 599-605, 1992. |
Grüne et al., “On numerical algorithm and interactive visualization for optimal control problems,” Journal of Computation and Visualization in Science, vol. 1, No. 4, pp. 221-229, Jul. 1999. |
Guéziec et al., “Converting Sets of Polygons to Manifold Surfaces by Cutting and Stitching,” Proc. IEEE Visualization 1998, pp. 383-390, Oct. 1998. |
Jones et al., “A new approach to the construction of surfaces from contour data,” Computer Graphics Forum, vol. 13, No. 3, pp. 75-84, 1994 [ISSN 0167-7055]. |
Khorramabadi, “A Walk Through the Planned CS Building,” Technical Report UCB/CSD 91/652, Computer Science Department, University of California at Berkeley, 74 pages, 1991. |
Kumar, Robust Incremental Polygon Triangulation for Surface Rendering, Center for Geometric Computing, Department of Computer Science, Johns Hopkins University, Baltimore, MD, WSCG, The International Conference in Central Europe on Computer Graphics, Visualization and Computer Vision, pp. 381-388, 2000. |
Lorensen et al., “Marching Cubes: A High Resolution 3d Surface Construction Algorithm,” Computer Graphics, vol. 21, No. 4, pp. 163-169, 1987. |
Nooruddin et al., Simplification and Repair of Polygonal Models Using Volumetric Techniques, IEEE Transactions on Visualization and Computer Graphics, vol. 9, No. 2, pp. 191-205, Apr.-Jun. 2003. |
Rohlfing et al., “Quo Vadis, Atlas-Based Segmentation?”, The Handbook of Medical Image Analysis: Segmentation and Registration Models (Kluwer), pp. 1-55, (http://www.stanford.edu/˜rohlfing/publications/2005-rohlfing-chapter-quo—vadis—atlas—based—segmentation.pdf). |
Office Action, U.S. Appl. No. 10/146,862, mailed Jan. 13, 2005, 10 pages. |
Amendment and Response to Office Action and Petition to Revive, U.S. Appl. No. 10/146,862, filed Jan. 18, 2006, 29 pages. |
International Search Report and Written Opinion, PCT/US2007/001624, dated Dec. 12, 2007, 14 pages. |
International Search Report and Written Opinion, PCT/US2007/001622, dated Jun. 11, 2007, 14 pages. |
Akenine-Moller, T. et al. (2002). Real-Time Rendering, Second Edition. AK Peters: Natick, MA, six pages (Table of Contents). |
Berry, E. et al. (2005). “Personalized Image-Based Templates for Intra-Operative Guidance,” Proc. Inst. Mech. Eng Part H: J. Engineering in Medicine 219:111-118. |
Blinn, J. (1996). Jim Blinn's Corner—A Trip Down the Graphics Pipeline. Morgan Kaufmann Publishers, Inc.: San Francisco, CA, five pages (Table of Contents). |
Chauhan, S.K. et al. (Apr. 2004). “Computer-Assisted Knee Arthroplasty Versus a Conventional Jig-Based Technique, A Randomised, Prosepctive Trial,” The Journal of Bone and Joint Surgery 86-B(3):372-377. |
Cohen, M.F. et al. (1993). Radiosity and Realistic Image Synthesis. Academic Press Professional: Cambridge, MA, eight pages (Table of Contents). |
Delp, S.L. et al. (Sep. 1998). “Computer Assisted Knee Replacement,” Clinical Orthopaedics and Related Research 354:49-56. |
Dutre, P. et al. (2003). Advanced Global Illumination. AK Peters: Natick, MA, five pages (Table of Contents). |
Foley, J.D. et al. (1990). Computer Graphics Principles and Practice, Second Edition. Addison-Wesley Publishing Company: Reading, MA, nine pages (Table of Contents). |
Glassner, A.S. ed. (1989). An Introduction to Ray Tracing. Academic Press Inc.: San Diego, CA, four pages (Table of Contents). |
Glassner. A.S. (1995). Principles of Digital Image Synthesis. Morgan Kaufmann Publishers, Inc.: San Francisco, CA, thirty-two pages (Table of Contents). |
Gooch, B. et al. (2001). Non-Photorealistic Rendering. AK Peters: Natick, MA, four pages (Table of Contents). |
Hafez, M.A. et al. (Oct. 20-22, 2005). “Patient Specific Instrumentation for TKA: Testing the Reliability Using a Navigational System,” MIS Meets CAOS Symposium & Instructional Academy, Less and Minimally Invasive Surgery for Joint Arthroplasty: FACT and FICTION Syllabus: San Diego, CA, 8 pages. |
Hafez, M.A. et al. (2004). “Computer Assisted Total Knee Replacement: Could a Two-Piece Custom Template Replace the Complex Conventional Instrumentations?” Computer Aided Surgery 9(3):93-94. |
Hafez, M.A. et al. (2006). “Computer-Assisted Total Knee Arthroplasty Using Patient-Specific Templating,” Clinical Orthopaedics and Related Research 0:1-9. |
Invitation to Pay Additional Fees mailed on Jul. 31, 2007, for PCT Application No. PCT/US2007/001624 filed on Jan. 19, 2007, five pages. |
Jensen, H.W. (2001). Realistic Image Synthesis Using Photon Mapping. AK Peters: Natick, MA, seven pages (Table of Contents). |
Kidder, J. et al. (Nov. 21-22, 1996). “3-D Model Acquisition, Design, Planning and Manufacturing of Orthopaedic Devices: A Framework,” In Advanced Sensor and Control-System Interface. B.O. Nnaji ed., Proceedings SPIE—The International Society for Optical Engineering: Bellingham, WA, pp. 9-22. |
Pharr, M. et al. (2004). Physically Based Rendering, From Theory to Implementation. Morgan Kaufmann Publishers: San Francisco, CA, thirteen pages (Table of Contents). |
Platt, G. et al. (Feb. 1969). “Mould Arthroplasty of the Knee, A Ten-Year Follow-Up Study,” The Journal of Bone and Joint Surgery British vol. 51-B(1):76-87. |
Potter, T.A. (Aug. 1969). “Arthroplasty of the Knee With Tibial Metallic Implants of the McKeever and MacIntosh Design,” The Surgical Clinics of North America 49(4):903-915. |
Radermacher, K. et al. (Sep. 1998). “Computer Assisted Orthopaedic Surgery With Image-Based Individual Templates,” Clinical Orthopaedics and Related Research 354:28-38. |
Shirley, P. et al. (2003). Realistic Ray Tracing, Second Edition. AK Peters: Natick, MA, seven pages (Table of Contents). |
Strothotte, T. et al. (2002). Non-Photorealistic Computer Graphics, Modeling, Rendering, and Animation. Morgan Kaufmann Publishers: San Francisco, CA, nine pages (Table of Contents). |
U.S. Appl. No. 10/146,862, filed May 15, 2002, for Park et al. |
U.S. Appl. No. 11/642,385, filed Dec. 19, 2006, for Park et al. |
Vande Berg, B.C. et al. (Feb. 2002). “Assessment of Knee Cartilage in Cadavers with Dual-Detector Spiral CT Arthrography and MR Imaging,” Radiology 222(2):430-436. |
Wikipedia, the Free Encyclopedia. (Date Unknown). “CNC,” located at <http://en.wikipedia.org/wiki/CNC>, last visited on Apr. 12, 2007, 6 pages. |
International Search Report and Written Opinion, International Patent Application No. PCT/US2008/083125, dated Mar. 9, 2009, 13 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/34983, mailed May 22, 2009, 15 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/034967, mailed Jun. 16, 2009, 15 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/041519, mailed Jun. 17, 2009, 10 pages. |
Kunz et al., “Computer Assisted Hip Resurfacing Using Individualized Drill Templates,” The Journal of Arthroplasty, vol. 00, No. 0, pp. 1-7, 2009. |
Amendment and Response to Non-Final Office Action, U.S. Appl. No. 11/641,382, dated Apr. 20, 2010, 23 pages. |
Amendment and Response to Office Action, U.S. Appl. No. 11/656,323, filed Jun. 25, 2010, 7 pages. |
Amendment and Response to Restriction Requirement, U.S. Appl. No. 11/641,382, dated Oct. 5, 2009, 10 pages. |
Amendment and Response to Restriction Requirement, U.S. Appl. No. 11/642,385, filed Nov. 24, 2009, 10 pages. |
Amendment and Response to Restriction/Election Requirement, U.S. Appl. No. 11/656,323, filed Dec. 8, 2009, 6 pages. |
Amendment and Response, U.S. Appl. No. 11/642,385, filed May 28, 2010, 11 pages. |
Final Office Action and PTO-892, U.S. Appl. No. 11/641,382, mailed Aug. 5, 2010, 13 pages. |
Final Office Action and PTO-892, U.S. Appl. No. 11/642,385, mailed Aug. 5, 2010, 10 pages. |
Final Office Action and PTO-892, U.S. Appl. No. 11/656,323, mailed Sep. 3, 2010, 11 pages. |
International Preliminary Report on Patentability, PCT/US2009/034983, dated Sep. 10, 2010, 13 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/040629, mailed Aug. 6, 2009, 9 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/051109, mailed Nov. 6, 2009, 13 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/058946, mailed Jan. 28, 2010, 14 pages. |
International Search Report and Written Opinion, International Application No. PCT/US2009/068055, mailed Mar. 11, 2010, 10 pages. |
Non-Final Office Action and PTO-892, U.S. Appl. No. 11/641,382, mailed Jan. 20, 2010, 12 pages. |
NonFinal Office Action and PTO-892, U.S. Appl. No. 11/642,385, mailed Mar. 2, 2010, 11 pages. |
Non-Final Office Action and PTO-892, U.S. Appl. No. 11/656,323, mailed Mar. 30, 2010, 10 pages. |
Preliminary Amendment, U.S. Appl. No. 11/642,385, filed Aug. 22, 2008, 42 pages. |
Restriction Requirement, U.S. Appl. No. 11/641,382, mailed Sep. 3, 2009, 6 pages. |
Restriction Requirement, U.S. Appl. No. 11/642,385, mailed Oct. 27, 2009, 7 pages. |
Restriction Requirement, U.S. Appl. No. 11/656,323, mailed Nov. 13, 2009, 10 pages. |
Restriction Requirement, U.S. Appl. No. 29/296,687, mailed Sep. 21, 2010, 7 pages. |
Akca, “Matching of 3D Surfaces and Their Intensities,” ISPRS Journal of Photogrammetry & Remote Sensing, 62(2007), 112-121. |
Arima et al., “Femoral Rotational Alignment, Based on the Anteroposterior Axis, in Total Knee Arthroplasty in a Valgus Knee. A Technical Note,” Journal Bone Joint Surg Am. 1995;77(9):1331-4. |
Bargar et al., “Robotic Systems in Surgery,” Orthopedic and Spine Surgery, Surgical Technology International II, 1993, 419-423. |
Besl et al., “A Method for Registration of 3-D Shapes,” IEEE Transactions on Pattern Analysis and Machine Intelligence (PAMI), 14(2):239-256, Feb. 1992. |
Blaha et al., “Using the Transepicondylar Axis to Define the Sagittal Morphology of the Distal Part of the Femur,” J Bone Joint Surg Am. 2002;84-A Suppl 2:48-55. |
Bullough et al., “The Geometry of Diarthrodial Joints, Its Physiologic Maintenance and the Possible significance of Age-Related Changes in Geometry-to-Load distribution and the Development of Osteoarthritis,” Clin Orthop Rel Res 1981, 156:61-6. |
Burgkart et al., “Magnetic Resonance Imaging-Based Assessment of Cartilage Loss in Severe Osteoarthritis: Accuracy, Precision, and Diagnostic Value,” Arthritis Rheum 2001, 44:2072-7. |
Canny, “A computational Approach to Edge Detection,” IEEE Transactions on Pattern Analysis and Machine Intelligence, PAMI 8(6), pp. 679-698 (1986). |
Churchill et al., “The Transepicondylar Axis Approximates the Optimal Flexion Axis of the Knee,” Clin Orthop Relat Res. 1998(356):111-8. |
Cicuttini et al., “Gender Differences in Knee Cartilage Volume as Measured by Magnetic Resonance Imaging,” Osteoarthritis Cartilage 1999, 7:265-71. |
Cicuttini et al., “Longitudinal Study of the Relationship Between Knee angle and Tibiofemoral cartilage Volume in Subjects with Knee Osteoarthritis,” Rheumatology (Oxford) 2004, 43:321-4. |
Eckhoff et al., “Difference Between the Epicondylar and Cylindrical Axis of the Knee,” Clin Orthop Relat Res. 2007;461:238-44. |
Eisenhart-Rothe et al., “Femorotibial and Patellar Cartilage Loss in Patients Prior to Total Knee arthroplasty, Heterogeneity, and Correlation with alignment of the Knee,” Ann Rheum Dis., Jun. 2005 (BMJ Publishing Group Ltd & European League Against Rheumatism). |
Eisenhart-Rothe et al., “The Role of Knee alignment in Disease Progression and Functional Decline in Knee Osteoarthritis,” JAMA 2001, 286:188-95. |
Elias et al., “A Correlative Study of the Geometry and anatomy of the Distal Femur,” Clinical Orthopaedics and Related Research 1990(260):98-103. |
Favorito et al., “Total Knee Arthroplasty in the Valgus Knee,” Journal Am Acad Orthop surg. 2002;10(1):16-24. |
Freeman et al., “The Movement of the Knee Studied by Magnetic Resonance Imaging,” Clinical Orthopaedics and Related Research 2003(410):35-43. |
Freeman et al., “The Movement of the Normal Tibio-Femoral Joint,” Journal Biomech. 2005;38(2):197-208. |
Graichen et al., “Quantitative Assessment of Cartilage Status in Osteoarthritis by Quantitative Magnetic Resonance Imaging: Technical Validation for Use in analysis of Cartilage Volume and Further Morphologic Parameters,” Arthritis Rheum 2004, 50:811-16. |
Gruen et al., “Least Squares 3D Surface and Curve Matching,” ISPRS Journal of Photogrammetry & Remote Sensing, 59(2005), 151-174. |
Hollister et al., “The Axes of Rotation of the Knee,” Clinical Orthopaedics and Related Research 1993(290):259-68. |
Howell et al., “Longitudinal Shapes of the Tibia and Femur are Unrelated and Variable,” Clinical Orthopaedics and Related Research (2010) 468: 1142-1148. |
Howell et al., “Results of an Initial Experience with Custom-Fit Positioning Total Knee Arthroplasty in a Series of 48 Patients,” Orthopedics, 2008;31(9):857-63. |
Howell et al., “In Vivo Adduction and Reverse Axial Rotation (External) of the Tibial Component can be Minimized During Standing and Kneeling,” Orthopedics, in Press. |
Iwaki et al., “Tibiofemoral Movement 1: The Shapes and Relative Movements of the Femur and Tibia in the Unloaded Cadaver Knee,” Journal Bone Joint Surg Br. 2000;82(8):1189-95. |
Jacobs et al., “Hip Resurfacing Through an Anterolateral Approach,” J. Bone Joint Surg Am. 2008:90 Suppl 3:38-44. |
Johnson, “Joint Remodeling as the Basis for Osteoarthritis,” Journal Am Vet Med Assoc. 1962, 141:1233-41. |
Kass et al., “Active Contour Models,” International Journal of Computer Vision, pp. 321-331 (1988). |
Kellgren et al., “Radiological Assessment of Osteoarthrosis,” Ann Rheum Dis 1957, 10:494-501. |
Kessler et al, “Sagittal Curvature of Total Knee Replacements Predicts in vivo Kinematics,” Clin Biomech (Bristol, Avon) 2007; 22(1):52-8. |
Kienzel III et al., “Total Knee Replacement,” IEEE May/Jun. 1995. |
Kienzel III et al., “An Integrated CAD-Robotics System for Total Knee Replacement Surgery”, IEEE International Conference, pp. 889-894, vol. 1, May 1993. |
Krackow et al., “Flexion-Extension Joint Gap Changes After Lateral Structure Release for Valgus Deformity Correction in Total Knee Arthroplasty: A Cadaveric Study,” Journal Arthroplasty, 1999;14(8):994-1004. |
Krackow et al., “Primary Total Knee Arthroplasty in Patients with Fixed Valgus Deformity,” Clin Orthop Relat Res. 1991(273):9-18. |
Krackow, “Approaches to Planning lower Extremity alignment for Total Knee arthroplasty and Osteotomy About the Knee,” adv Orthop surg 7:69, 1983. |
Lea et al., “Registration and immobilization in robot-assisted surgery”, Journal of Image Guided Surgery, pp. 1-10, 1995. |
Manner et al., “Knee Deformity in Congenital Longitudinal Deficiencies of the Lower Extremity,” Clin Orthop Relat Res. 2006;448:185-92. |
Matsuda et al., “Anatomical Analysis of the Femoral Condyle in Normal and Osteoarthritic Knees,” Journal Orthopaedic Res. 2004;22(1):104-9. |
Matsuda et al., “Femoral Condyle Geometry in the Normal and Varus Knee,” Clinical Orthop Relat Res. 1998(349):183-8. |
Messmer et al., “Volumetric Model Determination of the Tibia Based on 2d Radiographs Using a 2d/3d Database”, Dept. of Surgery, Trauma Unit, University Hospital, Basel, Switzerland, Computer Aided Surgery 6:183-194 (2001). |
Mihalko et al., The Variability of Intramedullary Alignment of the Femoral Component During Total Knee Arthroplasty, Journal Arthroplasty. 2005;20(1):25-8. |
Morvan et al., IVECS, Interactively Correcting .STL Files in a Virtual Environment, Clemson University, Clemson, SC, Proc. Conf. Virtual Design, Aug. 1996. |
Kusumoto, Taiji et al., “Application of Virtual Reality Force Feedback Haptic Device for Oral Implant Surgery”, Graduate School of Dentistry Course for Integrated Oral Science and Stomatology, Jun. 16, 2005. |
Panjabi et al., “Errors in Kinematic Parameters of a Planar Joint: Guidelines for Optimal Experimental Design,” Journal Biomech. 1982;15(7):537-44. |
Perillo-Marcone et al., “Effect of Varus/Valgus Malalignment on Bone Strains in the Proximal Tibia After TKR: An Explicit Finite element Study,” Journal Biomechanical Engineering 2007, vol. 129, 1:1-11. |
Peterfy et al., “Quantification of articular Cartilage in the Knee with Pulsed Saturation Transfer Subtraction and Fact-Suppressed MR Imaging: Optimization and Validation,” Radiology 1994, 192:485-91. |
Pinskerova et al., “The Shapes and Relative Movements of the Femur and Tibia at the Knee,” Orthopaedics 2000;29 Suppl 1:S3-5. |
Rosset et al., “General Consumer Communication Tools for Improved Image Management and Communication in Medicine,” Journal Digital Imaging, 2005;18(4):270-9. |
Shakespeare D., “Conventional Instruments in Total Knee Replacement: What Should We Do With Them?” Knee. 2006;13(1):1-6. |
Shepstone et al., “The shape of the Distal Femur: A Palaeopathological Comparison of Eburnated and Non-Eburnated Femora,” Ann. Rheum Dis. 1999, 58:72-8. |
Siston et al., “The Variability of Femoral Rotational Alignment in Total Knee Arthroplasty,” Journal Bone Joint Surg Am. 2005;87(10):2276-80. |
Siston et al., “Averaging Different Alignment Axes Improves Femoral Rotational Alignment in Computer-Navigated Total Knee Arthroplasty,” Journal Bone Joint Surg Am. 2008;90(10):2098-104. |
Soudan et al., “Methods, Difficulties and Inaccuracies in the Study of Human Joint Kinematics and Pathokinematics by the Instant axis Concept. Example: The Knee Joint,” Journal Biomech. 1979;12(1):27-33. |
Spencer et al., “Initial Experience with Custom-Fit Total Knee Replacement: Intra-operative Events and Long-Leg Coronal alignment,” International Orthopaedics (SICOT), 2009:In Press. |
Stulberg et al., “Computer- and Robot-Assisted Orthopaedic Surgery”, Computer-Integrated Surgery Technology and Clinical Applications, edited by Taylor et al., Massachusetts Institute of Technology, Chapter 27, pp. 373-378, 1996. |
Teeny et al., “Primary Total Knee Arthroplasty in Patients with Severe Varus Deformity. A Comparative Study,” Clin Orthop Relat Res. 1991(273):19-31. |
Wright Medical Technology, Inc., “Prophecy Pre-Operative Naviation Guides Surgical Technique,” 2009. |
Advisory Action, U.S. Appl. No. 11/642,385, dated Oct. 29, 2010, 3 pages. |
Amendment and Response to Final Office Action, U.S. Appl. No. 11/642,385, filed Oct. 4, 2010, 16 pages. |
International Preliminary Report on Patentability, PCT/US2007/001624, dated Aug. 19, 2008, 8 pages. |
International Preliminary Report on Patentability, PCT/US2007/001622, dated Dec. 28, 2009, 7 pages. |
International Preliminary Report on Patentability, PCT/US2008/083125, dated Jul. 1, 2010, 10 pages. |
International Preliminary Report on Patentability, PCT/US2009/034967, dated Nov. 11, 2010, 13 pages. |
International Preliminary Report on Patentability, PCT/US2009/040629, dated Nov. 11, 2010, 8 pages. |
International Preliminary Report on Patentability, PCT/US2009/041519, dated Nov. 11, 2010, 9 pages. |
RCE/Amendment, U.S. Appl. No. 11/642,382, filed Oct. 26, 2010, 14 pages. |
RCE/Amendment, U.S. Appl. No. 11/642,385, filed Dec. 6, 2010, 13 pages. |
RCE/Amendment, U.S. Appl. No. 11/656,323, filed Nov. 19, 2010, 12 pages. |
Response to Restriction Requirement U.S. Appl. No. 29/296,687, filed Oct. 7, 2010, 3 pages. |
Response to Restriction Requirement, U.S. Appl. No. 11/959,344, filed Nov. 24, 2010, 13 pages. |
Restriction Requirement, U.S. Appl. No. 11/959,344, dated Oct. 29, 2010, 6 pages. |
U.S. Appl. No. 29/394,882, filed Jun. 22, 2011, Park. |
Amendment and Response to Ex Parte Quayle Action, U.S. Appl. No. 29/296,687 dated Mar. 24, 2011, 17 pages. |
Amendment and Response to Non-Final Office Action, U.S. Appl. No. 11/959,344, dated Jul. 15, 2011, 13 pages. |
European Search Report, 10192631.9-2310, dated Mar. 17, 2011, 5 pages. |
Ex Parte Quayle Action, U.S. Appl. No. 29/296,687, mailed Jan. 24, 2011, 11 pages. |
Final Office Action, U.S. Appl. No. 11/959,344, mailed Oct. 27, 2011, 12 pages. |
International Search Report and Written Opinion, PCT/US2011/032342, dated Jul. 1, 2011, 8 pages. |
Non-Final Office Action, U.S. Appl. No. 12/390,667, dated Aug. 24, 2011, 49 pages. |
Nonfinal Office Action, U.S. Appl. No. 11/959,344, dated Feb. 15, 2011, 29 pages. |
Non-Final Office Action, U.S. Appl. No. 12/391,008, mailed Oct. 31, 2011, 44 pages. |
Notice of Allowance, U.S. Appl. No. 13/066,568, mailed Oct. 26, 2011, 28 pages. |
Notice of Allowance, U.S. Appl. No. 29,296,687, mailed Mar. 31, 2011, 18 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/390,667, dated Jul. 27, 2011, 8 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/391,008, filed Aug. 29, 2011, 9 pages. |
Response to Restriction, U.S. Appl. No. 11/924,425, filed Nov. 8, 2011, 5 pages. |
Response to Restriction, U.S. Appl. No. 11/946,002, filed Sep. 23, 2011, 7 pages. |
Restriction Requirement, U.S. Appl. No. 11/924,425, dated Oct. 13, 2011, 6 pages. |
Restriction Requirement, U.S. Appl. No. 11/946,002, dated Sep. 1, 2011, 8 pages. |
Restriction Requirement, U.S. Appl. No. 12/386,105, dated Oct. 24, 2011, 7 pages. |
Restriction Requirement, U.S. Appl. No. 12/390,667, dated Jul. 14, 2011, 9 pages. |
Restriction Requirement, U.S. Appl. No. 12/391,008, dated Aug. 18, 2011, 6 pages. |
U.S. Appl. No. 13/374,960, filed Jan. 25, 2012, Pavlovskaia et al. |
U.S. Appl. No. 13/488,505, filed Jun. 5, 2012, Park et al. |
U.S. Appl. No. 13/723,904, filed Dec. 21, 2012, Park. |
U.S. Appl. No. 13/730,467, filed Dec. 28, 2012, Park et al. |
U.S. Appl. No. 13/730,585, filed Dec. 28, 2012, Park et al. |
U.S. Appl. No. 13/730,608, filed Dec. 28, 2012, Park et al. |
U.S. Appl. No. 13/731,697, filed Dec. 31, 2012, Pavlovskaia et al. |
U.S. Appl. No. 13/731,850, filed Dec. 31, 2012, Park. |
U.S. Appl. No. 13/749,095, filed Jan. 24, 2013, Song. |
Amendment Under 37 C.F.R. 1.312, U.S. Appl. No. 12/386,105, filed Oct. 1, 2012, 6 pages. |
Appeal Brief, U.S. Appl. No. 12/390,667, filed Jul. 12, 2012, 32 pages. |
Appeal Brief, U.S. Appl. No. 12/391,008, filed Oct. 16, 2012, 24 pages. |
Examiner's Answer in appeal, U.S. Appl. No. 12/391,008, mailed Dec. 13, 2012, 27 pages. |
Final Office Action, U.S. Appl. No. 12/546,545, dated Dec. 20, 2012, 16 pages. |
Final Office Action, U.S. Appl. No. 12/636,939, mailed Jan. 25, 2013, 9 pages. |
Final Office Action, U.S. Appl. No. 11/641,382, mailed Jul. 25, 2012, 12 pages. |
Final Office Action, U.S. Appl. No. 11/924,425, mailed Jul. 6, 2012, 14 pages. |
Final Office Action, U.S. Appl. No. 12/563,809, mailed Mar. 7, 2013, 14 pages. |
Howell et al., “In Vivo Adduction and Reverse Axial Rotation (External) of the Tibial Component can be Minimized During Standing and Kneeling,” Orthopedics|ORTHOSupersite.com vol. 32 No. 5, 319-326 (May 2009). |
Non-Final Office Action, U.S. Appl. No. 13/086,275, mailed Feb. 7, 2013, 36 pages. |
Non-Final Office Action, U.S. Appl. No. 12/111,924, mailed Jun. 29, 2012, 35 pages. |
Non-Final Office Action, U.S. Appl. No. 12/390,667, mailed Sep. 26, 2012, 21 pages. |
Non-Final Office Action, U.S. Appl. No. 12/546,545, mailed Jul. 19, 2012, 28 pages. |
Non-Final Office Action, U.S. Appl. No. 12/546,545, mailed Mar. 13, 2013, 10 pages. |
Non-Final Office Action, U.S. Appl. No. 12/563,809, mailed Sep. 21, 2012, 32 pages. |
Non-Final Office Action, U.S. Appl. No. 12/636,939, mailed Jul. 20, 2012, 25 pages. |
Non-Final Office Action, U.S. Appl. No. 13/374,960, mailed Aug. 1, 2012, 6 pages. |
Notice of Allowance, U.S. Appl. No. 11/641,382, mailed Feb. 6, 2013, 14 pages. |
Notice of Allowance, U.S. Appl. No. 11/924,425, mailed Feb. 5, 2013, 16 pages. |
Notice of Allowance, U.S. Appl. No. 12/111,924, dated Dec. 24, 2012, 10 pages. |
Notice of Allowance, U.S. Appl. No. 29/394,882, mailed Feb. 4, 2013, 32 pages. |
Notice of Allowance, U.S. Appl. No. 11/641,382, mailed Oct. 9, 2012, 9 pages. |
Notice of Allowance, U.S. Appl. No. 11/924,425, mailed Sep. 25, 2012, 18 pages. |
Notice of Allowance, U.S. Appl. No. 12/111,924, mailed Mar. 11, 2013, 14 pages. |
Notice of Allowance, U.S. Appl. No. 12/386,105, mailed Jul. 5, 2012, 11 pages. |
Notice of Allowance, U.S. Appl. No. 13/374,960, mailed Nov. 2, 2012, 24 pages. |
Notice of Allowance, U.S. Appl. No. 13/573,662, mailed Mar. 19, 2013, 34 pages. |
RCE/Amendment, U.S. Appl. No. 11/946,002, filed Sep. 6, 2012, 38 pages. |
Response to Final Office Action, U.S. Appl. No. 12/546,545, filed Feb. 20, 2013, 13 pages. |
Response to Final Office Action, U.S. Appl. No. 11/641,382, filed Sep. 24, 2012, 11 pages. |
Response to Final Office Action, U.S. Appl. No. 11/924,425, filed Sep. 5, 2012, 9 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/390,667, filed Feb. 26, 2013, 36 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/563,809, filed Dec. 13, 2012, 15 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/111,924, filed Sep. 28, 2012, 10 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/636,939, filed Oct. 10, 2012, 8 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/546,545, filed Oct. 19, 2012, 15 pages. |
Response to Restriction, U.S. Appl. No. 12/563,809, filed Aug. 6, 2012, 10 pages. |
Response to Restriction, U.S. Appl. No. 13/573,662, filed Feb. 8, 2013, 8 pages. |
Restriction Requirement, U.S. Appl. No. 13/573,662, mailed Jan. 17, 2013, 6 pages. |
Restriction Requirement, U.S. Appl. No. 12/563,809, mailed Jul. 6, 2012, 6 pages. |
Restriction Requirement, U.S. Appl. No. 12/760,388, mailed Mar. 6, 2013, 7 pages. |
U.S. Appl. No. 13/923,093, filed Jun. 20, 2013, Park. |
U.S. Appl. No. 13/960,498, filed Aug. 6, 2013, Song. |
U.S. Appl. No. 14/011,998, filed Aug. 28, 2013, Park et al. |
Amendment Under 37 C.F.R. 1.312, U.S. Appl. No. 13/374,960, filed May 7, 2013, 6 pages. |
Non-Final Office Action, U.S. Appl. No. 12/390,667, mailed May 8, 2013, 20 pages. |
Non-Final Office Action, U.S. Appl. No. 12/505,056, mailed Jun. 28, 2013, 7 pages. |
Non-Final Office Action, U.S. Appl. No. 12/636,939, mailed Apr. 25, 2013, 16 pages. |
Non-Final Office Action, U.S. Appl. No. 12/760,388, mailed Jun. 20, 2013, 54 pages. |
Non-Final Office Action, U.S. Appl. No. 13/723,904, mailed Aug. 9, 2013, 6 pages. |
Non-Final Office Action, U.S. Appl. No. 13/730,585, mailed Jun. 11, 2013, 10 pages. |
Notice of Allowance, Design U.S. Appl. No. 29/394,882, mailed May 24, 2013, 16 pages. |
Notice of Allowance, U.S. Appl. No. 12/563,809, mailed May 28, 2013, 11 pages. |
Notice of Allowance, U.S. Appl. No. 13/086,275, mailed Aug. 27, 2013, 31 pages. |
Notice of Allowance, U.S. Appl. No. 13/374,960, mailed May 6, 2013, 20 pages. |
Preliminary Amendment, U.S. Appl. No. 13/731,697, filed May 10, 2013, 6 pages. |
Response to Final Office Action, U.S. Appl. No. 12/563,809, filed May 6, 2013, 15 pages. |
Response to Final Office Action, U.S. Appl. No. 12/636,939, filed Apr. 8, 2013, 10 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 13/086,275, filed May 7, 2013, 11 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/546,545, filed Jul. 15, 2013, 14 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/636,939, filed Jul. 16, 2013, 15 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/390,667, filed Aug. 7, 2013, 22 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/760,388, filed Sep. 12, 2013, 15 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/505,056, filed Oct. 9, 2013, 17 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 13/730,585, filed Oct. 9, 2013, 15 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/760,388, filed Apr. 5, 2013, 7 pages. |
Final Office Action, U.S. Appl. No. 12/505,056, dated Dec. 30, 2013, 48 pages. |
Final Office Action, U.S. Appl. No. 13/723,904, dated Dec. 24, 2013, 10 pages. |
Final Office Action, U.S. Appl. No. 13/730,585, dated Dec. 27, 2013, 8 pages. |
Japanese Office Action, JP Application No. 2011-507530, dated Dec. 17, 2013, 8 pages. |
Non-Final Office Action, U.S. Appl. No. 13/730,467, dated Jan. 15, 2014, 8 pages. |
Notice of Allowance, U.S. Appl. No. 12/390,667, dated Jan. 17, 2014, 9 pages. |
Notice of Allowance, U.S. Appl. No. 12/546,545, dated Dec. 26, 2013, 9 pages. |
Response to Final Office Action, U.S. Appl. No. 12/390,667, dated Dec. 23, 2013, 5 pages. |
Response to Final Office Action, U.S. Appl. No. 12/546,545, dated Dec. 9, 2013, 8 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 13/723,904, filed Nov. 6, 2013, 8 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 11/946,002, filed Dec. 6, 2013, 18 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 13/730,608, dated Jan. 7, 2014, 16 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 11/656,323, dated Jan. 17, 2014, 10 pages. |
U.S. Appl. No. 14/084,255, filed Nov. 19, 2013, Park et al. |
U.S. Appl. No. 14/086,849, filed Nov. 21, 2013, Park et al. |
U.S. Appl. No. 14/086,878, filed Nov. 21, 2013, Park et al. |
Advisory Action and Interview Summary, U.S. Appl. No. 12/390,667, mailed Apr. 27, 2012, 23 pages. |
Final Office Action, U.S. Appl. No. 12/390,667, mailed Jan. 13, 2012, 27 pages. |
Final Office Action, U.S. Appl. No. 11/946,002, mailed May 9, 2012, 24 pages. |
Final Office Action, U.S. Appl. No. 12/391,008, mailed May 17, 2012, 28 pages. |
Non-Final Office Action, U.S. Appl. No. 11/924,425, mailed Jan. 25, 2012, 35 pages. |
Non-Final Office Action, U.S. Appl. No. 11/641,382, mailed Mar. 29, 2012, 24 pages. |
Non-Final Office Action, U.S. Appl. No. 11/946,002, dated Nov. 25, 2011, 44 pages. |
Non-Final Office Action, U.S. Appl. No. 12/386,105, dated Feb. 9, 2012, 30 pages. |
Notice of Allowance, U.S. Appl. No. 11/959,344, mailed Mar. 5, 2012, 13 pages. |
Office Action (Restriction Requirement), U.S. Appl. No. 12/563,809, dated Feb. 2, 2012, 7 pages. |
Response to Final Office Action, U.S. Appl. No. 11/959,344, filed Dec. 27, 2011, 16 pages. |
Response to Final Office Action, U.S. Appl. No. 12/390,667, filed Mar. 12, 2012, 19 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/390,667, filed Nov. 18, 2011, 16 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/391,008, filed Feb. 24, 2012, 18 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 11/946,002, filed Mar. 8, 2012, 16 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 11/924,425, filed Apr. 25, 2012, 8 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 12/386,105, filed Jun. 8, 2012, 13 pages. |
Response to Non-Final Office Action, U.S. Appl. No. 11/641,382, filed Jun. 27, 2012, 12 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/386,105, filed Dec. 21, 2011, 9 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/563,809, filed Feb. 24, 2012, 10 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/111,924, filed Apr. 16, 2012, 8 pages. |
Response to Restriction Requirement, U.S. Appl. No. 12/636,939, filed Apr. 19, 2012, 6 pages. |
Response to Restriction, U.S. Appl. No. 12/505,056, filed Apr. 11, 2012, 9 pages. |
Response to Restriction, U.S. Appl. No. 12/546,545, flied Jun. 4, 2012, 7 pages. |
Restriction Requirement, U.S. Appl. No. 12/111,924, mailed Mar. 19, 2012, 8 pages. |
Restriction Requirement, U.S. Appl. No. 12/505,056, mailed Mar. 14, 2012, 8 pages. |
Restriction Requirement, U.S. Appl. No. 12/546,545, mailed May 3, 2012, 8 pages. |
Restriction Requirement, U.S. Appl. No. 12/636,939, mailed Apr. 13, 2012, 6 pages. |
Number | Date | Country | |
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20090131941 A1 | May 2009 | US |
Number | Date | Country | |
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Parent | 10146862 | May 2002 | US |
Child | 11641569 | US |