The present invention relates to an oral image marker detection method, and an oral image matching device and method using the same.
In a computer vision, when one scene or object is photographed at different times or viewpoints, images according to different coordinate systems are obtained. Image matching refers to a process of transforming the different images and representing the transformed images in one coordinate system.
Through the image matching, the correspondence relationship between images obtained through different measurement methods may be confirmed.
In dental surgery guide software, an image matching process is generally performed between a computed tomography (CT) image and an oral scan image before entering a dental implant surgery planning step.
Since the images matched through the image matching process become the basis of an implant planning operation of determining a safe and optimal implant placement position by grasping a bone tissue, a nerve tube position and the like, the accuracy of image matching has a very important meaning in proceeding to subsequent procedures.
The image matching method provided by conventional medical software manually inputs a point which is a reference of image matching by an operator, and image matching is performed based on the input point.
According to the conventional image matching method, since the operator roughly determines by the eye and selects a reference point, the result thereof is very inaccurate, and thus, the manual operation process of the operator is inevitably performed after image matching. That is, the operator changes the position of a point or reselects a point to correct a matching result. As described above, according to prior art, due to a continuous repetitive process of matching and correction, the operator consumes a lot of time for image matching, and there is a problem in that it is difficult to obtain a result that satisfies the consumed time.
As another conventional method, there may be a method of acquiring an image including markers to be utilized as intraoral matching references, and matching an image acquired from a heterogeneous image capturing device based on the markers in the image.
Referring to
Meanwhile, in terms of detecting the marker 1 in the oral image for image matching, since the marker 1 and the adhesive layer 2 are integrally formed, the marker 1 and the adhesive layer 2 may be detected together. However, the non-uniform adhesive layer 2 becomes an obstacle to matching during image matching, and causes a problem of lowering the matching accuracy during image matching.
An object of the present invention is to provide an oral image matching device and method for detecting a marker in an oral image, which remove factors that interfere with matching in the detected marker and automatically perform image matching with high accuracy by using the detected marker.
In order to solve the aforementioned problems, the present invention provides an oral image marker detection method for detecting a marker, which is the reference when an oral scan image and a CT image are matched, including the steps of aligning oral scan images in the horizontal plane direction; estimating a marker candidate area from the aligned oral scan images and detecting an undivided marker from the marker candidate area; and dividing the undivided marker to estimate a marker in the undivided marker, and estimating the area from the upper surface of the undivided marker to a certain depth in the lower direction to be the marker.
In addition, the present invention provides a device for matching an oral scan image and a CT image by using a marker, including an image alignment unit for aligning oral scan images in the horizontal plane direction; an undivided market detection unit for estimating a marker candidate area from the aligned oral scan images and detecting an undivided marker from the marker candidate area; a marker estimation unit for dividing the undivided marker to estimate a marker in the undivided marker, and estimating the area from the upper surface of the undivided marker to a certain depth in the lower direction to be the marker; a marker detection unit for detecting the marker in the CT image by using the volume information of the marker; and an image matching unit for matching the oral scan image and the CT image by using the marker.
The present invention provides an oral image matching method for matching an oral scan image and a CT image, including the steps of: respectively dividing a first marker and a first tooth area in the oral scan image; generating a first matching reference point by integrating the first marker and the first tooth area; dividing a second marker and a second tooth area in the CT image; generating a second matching reference point by integrating the second marker and the second tooth area; and matching the oral scan image and the CT image based on the first and second matching reference points.
In addition, the present invention provides an oral image matching device for matching an oral scan image and a CT image, including a first marker dividing unit for dividing a first marker in the oral scan image; a first tooth area dividing unit for dividing a first tooth area in the oral scan image; a first matching reference point generating unit for generating a first matching reference point by integrating the first marker and the first tooth area; a second marker dividing unit for dividing a second marker in the CT image; a second tooth area dividing unit for dividing a second tooth area in the CT image; a second matching reference point generating unit for generating a second matching reference point by integrating the second marker and the second tooth area; and an image matching unit for matching the oral scan image and the CT image based on the first and second matching reference points.
According to the present invention, the user's convenience is improved by detecting a marker in the oral image, removing factors that interfere with matching in the detected marker, and automatically performing image matching with high accuracy by using the detected marker, and accordingly, it has the effects of reducing the time required for implant planning and improving the accuracy of implant planning.
The objects and means of the present invention and the effects therefrom will become more apparent from the following detailed description in conjunction with the accompanying drawings, and accordingly, the present invention will be easily practiced by those of ordinary skill in the art to which the present invention pertains. Further, in terms of describing the present invention, if it is determined that well-known technologies related to the present invention would obscure the gist of present invention due to unnecessary detail, the detailed description thereof will be omitted.
Hereinafter, preferred exemplary embodiments according to the present invention will be described in detail with reference to the accompanying drawings.
The oral image matching device 100 according to an exemplary embodiment of the present invention is an electronic device executable by a computer program, and it is a device of matching the oral scan image and CT image of a subject by using at least one of a marker and a tooth area as a matching reference point. Herein, the tooth area may be one individual tooth or a form in which a plurality of adjacent individual teeth are combined, and the number of markers may be at least one, but the present invention is not limited thereto. In addition, the marker may be attached to the missing tooth area.
The oral scan image may provide information about the shape of the crown portion of a tooth exposed to the outside and the shape of the gum around the tooth as 3D images. In this case, the oral scan image may be obtained by directly scanning the inside of the subject's oral cavity through an oral scanner or the like, or scanning an impression model that mimics the inside of the subject's oral cavity with an intaglio or a plaster model created by embossing the impression model, and the scan image of the impression model may be inverted and used as an oral scan image.
As a 3D image, the CT image may provide information on not only the crown, but also the shape of the root and alveolar bone, as well as the bone density of the crown, root and alveolar bone. In this case, the CT image may be obtained by performing a CT scan of the inside of the subject's oral cavity.
The matching image, in which the oral scan image and CT image are matched, becomes the basic image of an implant planning operation that determines the safe and optimal implant placement position by identifying the bone tissue and neural tube position of the subject.
Referring to
The communication unit 110 is a configuration for communicating with an external device such as an image acquisition device (not illustrated) and a server (not illustrated), and may receive image data. For example, the communication unit 110 may perform wireless communication such as 5th generation communication (5G), long term evolution-advanced (LTE-A), long term evolution (LTE), Bluetooth, Bluetooth low energy (BLE), near field communication (NFC) and the like, and may perform wired communication such as cable communication and the like. In this case, the image data may include oral scan image data and CT image data.
The input unit 120 generates input data in response to a user's input, and may include at least one input means. For example, the input unit 120 may include a keyboard, a keypad, a dome switch, a touch panel, a touch key, a mouse, a menu button and the like.
The display unit 130 displays display data according to the operation of the oral image matching device 100. The display data may include image data. For example, the display unit 130 may include a liquid crystal display (LCD), a light emitting diode (LED) display, an organic light emitting diode (OLED) display, and a micro-electromechanical system (MEMS) display and an electronic paper display. In addition, the display unit 130 may be implemented as a touch screen in combination with the input unit 120.
The storage unit 140 stores various information and programs necessary for the operation of the oral image matching device 100. For example, the storage unit 140 may store image data received from an image acquisition device or the like, algorithms related to image alignment, marker and tooth area estimation and detection, and an image matching method according to an exemplary embodiment of the present invention, which will be described below. In addition, the storage unit 140 may store a learning model obtained by learning a plurality of learning images by a deep learning method in order to detect a marker and a tooth area.
The control unit 150 detects a marker and a tooth area from oral image data received from an image acquisition device or server, or pre-stored in the storage unit 140, and performs matching the oral image data using the detected marker and the tooth area as reference points. To this end, the control unit 150 may receive the oral image data from the image acquisition device or the server and store it in the storage unit 140. In addition, the control unit 150 may control the operations of the communication unit 110, the input unit 120, the display unit 130 and the storage unit 140.
Referring to
First, the image acquisition device acquires an oral scan image and a CT image, respectively, by photographing the inside of the oral cavity to which the marker is attached. In this case, the acquired oral scan image and CT image may be directly transmitted to the image alignment unit 151a or may be stored in the storage unit 140 and then transmitted to the image alignment unit 151a.
The image alignment unit 151a aligns oral scan images in the horizontal plane direction such that the marker faces upward in the oral scan image.
The undivided marker detection unit 152a estimates a marker candidate area from the oral scan image aligned by the image alignment unit 151a, and detects an undivided marker from the marker candidate area.
The marker estimation unit 153a divides the undivided marker detected by the marker candidate detection unit 152a up and down, and estimates the marker from the undivided marker, and it estimates the area from the upper surface of the undivided marker to a predetermined depth in the lower direction as the marker, and estimates the other area as an adhesive layer.
The marker detection unit 154a detects a marker by using the volume information of the marker in the CT image.
The image matching unit 155a matches the oral scan image and the CT image by using the markers estimated and detected by the marker estimation unit 153a and the marker detection unit 154a, respectively.
As described above, according to the oral image matching device 100 of the present invention, the marker is detected in the oral image, the adhesive layer that interferes with the matching is removed from the detected marker, and the detected marker is used as a matching reference point to automatically perform image matching with high accuracy, and thus, the user's convenience is improved, and accordingly, it has the effects of reducing the time required for implant planning and improving the accuracy of implant planning.
Hereinafter, the method for detecting a marker of an oral image and the method for matching an oral image according to an exemplary embodiment of the present invention that are controlled by the control unit 150 will be described.
The method for detecting a marker of an oral image and the method for matching an oral image according to a second example of the present invention is characterized in that the oral images of the subject, particularly, the edentulous oral images are matched. Herein, since there is no tooth that can be used as a reference point for matching in the edentulous jaw, oral images are taken while markers are attached to the subject's gum, and the oral images are matched by using these marker as reference points.
First, markers are attached to a plurality of positions (e.g., gum) in the oral cavity of a subject by using an adhesive such as resin. In this case, when a predetermined time elapses, an adhesive layer is formed between the marker and the gum. Thereafter, a heterogeneous image acquisition device captures the inside of the oral cavity to which the markers are attached to acquire an oral scan image and a CT image, respectively.
Referring to
Hereinafter, the marker 11 and the adhesive layer 12 will be collectively referred to as an undivided marker 11b.
Referring to
The undivided marker 11b may be detected by using a learning model. That is, by using a deep learning method (e.g., YOLO (You Only Look Once) algorithm), a plurality of learning images to which the marker 11 is attached may be learned to generate a learning model, and the oral scan image 10 of a subject may be input to the generated learning model so as to detect the undivided marker 11b from the oral scan image 10. Herein, the number, size and coordinate information of the undivided markers 11b may be obtained.
Since the undivided marker 11b includes not only the marker 11 but also the non-uniform adhesive layer 12, that is, since the marker 11 and the adhesive layer 12 are integrally formed, the shape thereof is non-uniform. Accordingly, in order to improve the matching accuracy, it is necessary to divide the marker 11 from the undivided marker 11b.
Referring to
Meanwhile, unlike the drawings, by aligning the oral scan image 10 in the horizontal plane direction such that the marker 11 faces downward in the oral scan image 10, it is also possible to detect the undivided marker 11b and divide the marker 11 from the undivided marker 11b. In this case, the area from the lower surface of the undivided marker 11b to a predetermined height (d1) in the upper direction is estimated as the marker 11, and the area exceeding the predetermined height (d1) (e.g., 5 mm) from the undivided marker 11b is estimated as the adhesive layer 12 interposed between the marker 11 and the gum.
Referring to
Meanwhile, referring to
In order to accurately detect the marker 11 in the CT image 20 as described above, the marker 11 is detected in the CT image 20 by using the volume information of the marker 11 (S40a). Specifically, a mask is created in a shape corresponding to the marker 11 by using the volume information of the marker 11. Then, the marker 11 is searched for in the CT image 20 by using the mask, and the marker 11 having a shape corresponding to the mask is detected. Herein, the number, size and coordinate information of the markers 11 may be obtained.
Referring to
As such, according to the oral image matching method of the present invention, the marker 11 is detected in the oral image, and the adhesive layer 12 that interferes with the matching is removed, and the detected marker 11 is used as a matching reference point with high accuracy to automatically perform image matching with high accuracy, and thus, the user's convenience is improved, and accordingly, it has the effects of reducing the time required for implant planning and improving the accuracy of implant planning.
Referring to
First, the image acquisition device acquires an oral scan image and a CT image, respectively, by photographing the inside of the oral cavity to which the marker is attached. In this case, the acquired oral scan image and CT image may be directly transmitted to the image alignment unit 151b or may be stored in the storage unit 140 and then transmitted to the image alignment unit 151b.
The first marker dividing unit 151b divides a first marker in the oral scan image. Specifically, the first marker dividing unit 151b aligns oral scan images in the horizontal plane direction, estimates a marker candidate area from the aligned oral scan images, and detects an undivided marker in the marker candidate area. Then, the first marker is estimated from the undivided marker by dividing the undivided marker, and the area from the upper surface of the undivided marker to a predetermined depth in the lower direction is estimated as the first marker.
The first tooth area dividing unit 152b divides the first tooth area in the oral scan image. Specifically, the first tooth area dividing unit 152b calculates curvatures of a plurality of meshes included in the oral scan image, and calculates a boundary between the first tooth area and the gum region in the oral scan image based on the curvatures of the plurality of meshes. Then, the first tooth area is divided in the oral scan image based on the boundary between the first tooth area and the gum area.
The first matching reference point generating unit 153b generates a first matching reference point by integrating the first marker and the first tooth area.
The second marker dividing unit 154b divides the second marker in the CT image. Specifically, the second marker dividing unit 154b generates a mask in a shape corresponding to the second marker by using the volume information of the second marker, and searches for the second marker in the CT image by using the mask to divide the second marker.
The second tooth area dividing unit 155b divides the second tooth area in the CT image. Specifically, the second tooth area dividing unit 155b generates a second learning model by learning a second learning image based on Hounsfield unit (HU) values of a plurality of voxels included in the CT image, and divides a second tooth area in the CT image based on the second learning image by inputting the oral scan image to the second learning model.
The second matching reference point generating unit 156b generates a second matching reference point by integrating the second marker and the second tooth area. In addition, the image matching unit 157b matches the oral scan image and the CT image based on the first and second matching reference points.
As described above, according to the oral image matching device 100 of the present invention, the marker and the tooth area are divided in the oral image, and factors that interfere with matching are removed from the marker, and image matching is automatically performed with high accuracy by using the divided marker and the tooth area, and thus, the user's convenience is improved, and as a result, it has the effects of reducing the time required for implant planning and improving the accuracy of implant planning.
Hereinafter, the oral image matching method of oral images according to a second example of the present invention controlled by the control unit 150 will be described.
In the oral image matching method according to the second example of the present invention, oral images are taken while a marker is attached to the gum of the subject, and the oral images are matched by using the marker and the tooth area as reference points.
First, markers are attached to a plurality of positions (e.g., gum), particularly in the area of a missing tooth, in the subject's oral cavity by using an adhesive such as a resin. In this case, when a predetermined time elapses, an adhesive layer is formed between the marker and the gum. Thereafter, a heterogeneous image acquisition device captures the inside of the oral cavity to which the marker is attached to acquire an oral scan image and a CT image, respectively.
Referring to
Hereinafter, the method of dividing the first marker 11a in the oral scan image 10 will be described with reference to
The oral scan image 10 is aligned in the horizontal plane direction such that the marker 11a faces upward in the oral scan image 10. Then, a marker candidate area is estimated from the aligned oral scan image 10, and an undivided marker is detected from the marker candidate area.
The undivided marker may be detected by using a learning model. That is, by using a deep learning method (e.g., You Only Look Once (YOLO) algorithm), a first learning model may be generated by learning a plurality of learning images to which a first marker 11a is attached, and the undivided marker may be detected from the oral scan image 10 by inputting the oral scan image 10 of the subject to the generated first learning model. Herein, the number, size and coordinate information of undivided markers may be obtained.
Since the undivided marker includes the non-uniform adhesive layer 12 as well as the first marker 11a, that is, since the first marker 11 and the adhesive layer 12 are integrally formed, the shape thereof is non-uniform. Accordingly, in order to improve the matching accuracy, it is necessary to divide the first marker 11a from the undivided marker.
Referring to
Meanwhile, unlike the drawings, by aligning the oral scan image 10 in the horizontal plane direction such that the first marker 11a in the oral scan image 10 faces downward, the undivided marker may be detected and the first marker may be divided from the undivided marker 11a. In this case, the area from the lower surface of the undivided marker to a predetermined height (d1) in the upper direction is estimated as a first marker 11a, and the area exceeding the predetermined height (d1) (e.g., 5 mm) in the undivided marker is estimated as an adhesive layer 12 interposed between the first marker 11a and the gum.
Hereinafter, the method of dividing the first tooth area in the oral scan image will be described with reference to
Curvatures of a plurality of meshes included in the oral scan image 10 are calculated, and a boundary between the first tooth area 13a and the gum region is calculated in the oral scan image 10 based on the curvatures of the plurality of meshes.
Specifically, a plane that includes a normal vector and intersects the mesh surface is drawn in a vertex shared by adjacent meshes, and then the plane is rotated based on the normal vector and continuously intersects the mesh surface. In this case, a number of curves centered on the vertex may be obtained on the mesh surface, and the curvature may be calculated by using the angle between these curves and the tangent plane of the vertex. In addition, the largest value among these curvatures may be defined as the maximum curvature, and the smallest value may be defined as the minimum curvature. Meanwhile, a plane including two curves having the largest maximum curvature and the smallest minimum curvature at the vertex among the calculated curvatures may be defined as a plane of principal curvatures.
Herein, the Gaussian curvature is defined as the product of the maximum curvature and the minimum curvature, and the average curvature is defined as the average of the maximum curvature and the minimum curvature.
Meshes, in which at least one of the Gaussian curvature and the average curvature calculated in this way is equal to or greater than the reference curvature, are selected, and a vertex shared by the selected meshes is determined as a boundary point.
In addition, the boundary points are sequentially expanded (dilation) and reduced (erosion) by using a morphology calculation algorithm to connect adjacent boundary points. Herein, the morphology calculation algorithm is an algorithm for expanding and reducing an area, and is generally used for connecting or disconnecting adjacent points.
In this way, when the boundary points are expanded and then reduced through the reduction process, the boundary between the teeth and the gum area may be further improved, because only the connection between adjacent boundary points is performed while maintaining the thickness of the existing boundary point component.
Accordingly, the first tooth area 13a may be divided in the oral scan image 10 based on the boundary between the first tooth area 13a and the gum area (S10b).
As illustrated in
Referring to
Meanwhile, referring to
In order to accurately detect the second marker 11b in the CT image 20 as described above, the second marker 11b is detected and divided in the CT image 20 by using the volume information of the second marker 11b (S30b). Specifically, a mask is created in a shape corresponding to the second marker 11b by using the volume information of the second marker 11b. Then, the second marker 11b is searched for in the CT image 20 by using the mask, and the second marker 11b having a shape corresponding to the mask is detected and divided. Herein, the number, size and coordinate information of the second markers 11b may be obtained.
Referring to
As illustrated in
Referring to
As described above, according to the oral image matching method of the present invention, the marker and the tooth area are divided in the oral image, and the factors that interfere with matching are removed from the marker, and the image matching is automatically performed with high accuracy by using the divided marker and the tooth area, and thus, the user's convenience is improved, and as a result, it has the effects of reducing the time required for the implant planning and improving the accuracy of the implant planning.
In the detailed description of the present invention, although specific exemplary embodiments have been described, various modifications are possible without departing from the scope of the present invention. Therefore, the scope of the present invention is not limited to the described exemplary embodiments, and should be defined by the following claims and their equivalents.
The oral image marker detection method according to the present invention and the oral image matching device and method using the same can be used in various dental treatment fields such as implant surgery.
Number | Date | Country | Kind |
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10-2020-0050085 | Apr 2020 | KR | national |
10-2020-0050086 | Apr 2020 | KR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/KR2021/005095 | 4/22/2021 | WO |