WO2014016268A1 - Method, apparatus and system for automated spine labeling - Google Patents
Method, apparatus and system for automated spine labeling Download PDFInfo
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- G06T—IMAGE DATA PROCESSING OR GENERATION, IN GENERAL
- G06T7/00—Image analysis
- G06T7/10—Segmentation; Edge detection
- G06T7/11—Region-based segmentation
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/45—For evaluating or diagnosing the musculoskeletal system or teeth
- A61B5/4538—Evaluating a particular part of the muscoloskeletal system or a particular medical condition
- A61B5/4566—Evaluating the spine
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B6/00—Apparatus or devices for radiation diagnosis; Apparatus or devices for radiation diagnosis combined with radiation therapy equipment
- A61B6/02—Arrangements for diagnosis sequentially in different planes; Stereoscopic radiation diagnosis
- A61B6/03—Computed tomography [CT]
- A61B6/032—Transmission computed tomography [CT]
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B6/00—Apparatus or devices for radiation diagnosis; Apparatus or devices for radiation diagnosis combined with radiation therapy equipment
- A61B6/46—Arrangements for interfacing with the operator or the patient
- A61B6/467—Arrangements for interfacing with the operator or the patient characterised by special input means
- A61B6/468—Arrangements for interfacing with the operator or the patient characterised by special input means allowing annotation or message recording
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B6/00—Apparatus or devices for radiation diagnosis; Apparatus or devices for radiation diagnosis combined with radiation therapy equipment
- A61B6/52—Devices using data or image processing specially adapted for radiation diagnosis
- A61B6/5211—Devices using data or image processing specially adapted for radiation diagnosis involving processing of medical diagnostic data
- A61B6/5217—Devices using data or image processing specially adapted for radiation diagnosis involving processing of medical diagnostic data extracting a diagnostic or physiological parameter from medical diagnostic data
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F18/00—Pattern recognition
- G06F18/20—Analysing
- G06F18/29—Graphical models, e.g. Bayesian networks
- G06F18/295—Markov models or related models, e.g. semi-Markov models; Markov random fields; Networks embedding Markov models
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06T—IMAGE DATA PROCESSING OR GENERATION, IN GENERAL
- G06T7/00—Image analysis
- G06T7/10—Segmentation; Edge detection
- G06T7/143—Segmentation; Edge detection involving probabilistic approaches, e.g. Markov random field [MRF] modelling
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06T—IMAGE DATA PROCESSING OR GENERATION, IN GENERAL
- G06T7/00—Image analysis
- G06T7/10—Segmentation; Edge detection
- G06T7/174—Segmentation; Edge detection involving the use of two or more images
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B2560/00—Constructional details of operational features of apparatus; Accessories for medical measuring apparatus
- A61B2560/02—Operational features
- A61B2560/0295—Operational features adapted for recording user messages or annotations
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B6/00—Apparatus or devices for radiation diagnosis; Apparatus or devices for radiation diagnosis combined with radiation therapy equipment
- A61B6/50—Apparatus or devices for radiation diagnosis; Apparatus or devices for radiation diagnosis combined with radiation therapy equipment specially adapted for specific body parts; specially adapted for specific clinical applications
- A61B6/505—Apparatus or devices for radiation diagnosis; Apparatus or devices for radiation diagnosis combined with radiation therapy equipment specially adapted for specific body parts; specially adapted for specific clinical applications for diagnosis of bone
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06T—IMAGE DATA PROCESSING OR GENERATION, IN GENERAL
- G06T2207/00—Indexing scheme for image analysis or image enhancement
- G06T2207/10—Image acquisition modality
- G06T2207/10072—Tomographic images
- G06T2207/10081—Computed x-ray tomography [CT]
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- G06T2207/30—Subject of image; Context of image processing
- G06T2207/30004—Biomedical image processing
- G06T2207/30008—Bone
- G06T2207/30012—Spine; Backbone
Definitions
- the present invention relates to method and a corresponding apparatus and system for automated labeling of a spine in an image, in particular a computed tomography (CT) image, of a human or animal body according to the independ- ent claims.
- CT computed tomography
- the acquisition of CT images with and without contrast agent of abdomen, thorax and/or neck is a routine procedure for the diagnosis of a multitude of diseases or injuries.
- the spinal column represents a natural reference structure of the upper part of the body for describing the locations of organs and pathologies.
- the vertebrae and/or intervertebral disks in the image have to be labeled.
- a manual labeling can be time consuming, especially if only arbitrary parts of the spine are visible in the data. Therefore, automatic approaches are of interest which deliver labeling results after image acquisition without any user interaction.
- a sparse localization of spine components e.g. vertebrae and/or disks, is sufficient.
- the term "sparse” refers to the requirement according to which correct anatomical labels should be visible in all views showing a certain vertebra or intervertebral disk, and optionally also in a 3D rendering. This does not necessarily require a full segmentation of all spinal structures. The localization of centers of disks and vertebrae and a coarse approximation of their extent delivers adequate results. Although this task seems to be trivial, the realization of a fully automatic labeling system for 3D CT data supporting radiologists is challenging: The labeling should be available within a reasonable time in order to guarantee a fast diagnosis after image acquisition.
- the labeling algorithm has to reliably handle varying resolution and image quality, showing spinal columns with variations in size, shape, bone densities and varying number of vertebrae. Presence of contrast agent or pathologies like scoliosis, collapsed disks, broken vertebrae, degenerative changes or fused vertebrae based on surgical procedures make high demands on the flexibility of the chosen methods. It is an object of the invention to provide a method, apparatus and system for automated labeling of a spine in an image of a human or animal body with high reliability and high image throughput.
- the method according to the invention comprises the following steps: a) matching a model of a spine segment with segments of the spine in the image by starting matching said model of a spine segment with an initial segment of the spine in the image, wherein said initial segment of the spine in the image being located at an initial position along the spine in the image, and by continuing matching said model of a spine segment with one or more further segments of the spine in the image, wherein said further segments of the spine in the image being located at further positions along the spine in the image, wherein said model of a spine segment relates to anatomical properties of one or more parts of a spine, and b) labeling one or more parts of the spine in the image in response to step a).
- the apparatus comprises an image processing unit for executing and/or controlling the following steps: a) matching a model of a spine segment with segments of the spine in the image by starting matching said model of a spine segment with an initial segment of the spine in the image, wherein said initial segment of the spine in the image being located at an initial position along the spine in the image, and by continuing matching said model of a spine segment with one or more further segments of the spine in the image, wherein said further segments of the spine in the image being located at further positions along the spine in the image, wherein said model of a spine segment relates to anatomical properties of one or more parts of a spine, and b) labeling one or more parts of the spine in the image in response to step a).
- the system according to the invention comprises an image acquisition unit, in particular a computed tomography (CT) unit, for acquiring at least one image of at least a part of a human or animal body and an apparatus for automated labeling of a spine in an image according to the invention.
- CT computed tomography
- the invention is based on a fully automatic algorithm for labeling arbitrary parts of the vertebral column shown in CT data.
- the algorithm finds an initial position with its anatomical label by detection of reference regions (e.g. sacrum) and subsequently labels all remaining visible disks and vertebrae automatically.
- a high-performance method for sparse structure localization by Markov Random Fields (MRF) is applied, wherein sparse 3-disk MRF models are built and, starting from the initial position, propagated to all parts of the spine.
- MRF Markov Random Fields
- a boosted decision tree based feature detection method inside regions of interest is used for optimization of the MRF model matching.
- prior knowledge on spine anatomy and appearance is considered.
- the term "part of a spine” preferably relates to a vertebra or intervertebral disk of a spine.
- the terms "spine segment” and “segment of a spine” preferably relate to a portion of a spine comprising one or more parts of the spine, in particular one or more vertebrae and/or intervertebral disks. Accordingly, an "initial segment of the spine” or a “further segment of the spine” comprises one or more parts of the spine located at an initial or a further position, respectively, on or along the spine.
- matching or "to match” in the sense of the invention relates to a comparison of said model of a spine segment with segments of the spine in the im- age and/or an examination whether the model of a spine segment corresponds and/or correlates with segments of the spine in the image.
- the term "in response to" relating to matching the model of a spine segment with segments of the spine in the images means that one or more parts of the spine are labeled dependent on and/or subject to the result of the men- tioned comparison and/or examination step.
- a model of a spine segment corresponds and/or correlates with a segment of the spine in the image
- one or more parts, i.e. vertebrae and/or disks, of said segment of the spine in the image are labeled according to the corresponding parts of the model of a spine segment.
- said further positions correspond to positions propagating from said initial position.
- said model of a spine segment upon completion of matching said model of a spine segment with said initial segment of the spine in the image, said model of a spine segment is matched with at least one first further segment of the spine being located at a first further position, wherein said first further position being next to said initial position and/or said first further segment of the spine being adjacent to said initial segment of the spine. Further, upon completion of matching said model of a spine segment with said first further segment of the spine in the image, said model of a spine segment is matched with at least one second further segment of the spine being located at a second further position, wherein said further position being next to said first further position and/or said second further segment of the spine being adjacent to said first further segment of the spine.
- This matching process may be repeated for third, fourth, fifth etc. further segments of the spine in the image being located at respective further positions.
- one or more parts of the spine in the image correspond to one or more vertebrae and/or intervertebral discs of the spine in the image.
- said model of a spine segment relates to anatomical properties of two to five vertebrae and/or intervertebral discs of a spine.
- said model of a spine segment relates to anatomical properties of three intervertebral discs of a spine and/or to anatomical properties of two vertebrae of a spine.
- said three intervertebral discs of the spine are associated with said two vertebrae of the spine.
- the term "associated” means that said model of a spine segment considers anatomical properties of two consecutive vertebrae, a disk between these two consecutive vertebrae and two disks adjacent to - i.e. at the "bottom” and "top” of - these two consecutive vertebrae.
- This type of spine segment model results both in a considerable increase of image throughput in daily routine and a high reliability in spine labeling. Because only small segments of the spine are required without adverse effects on the reliability, the flexibility and versatility of the invention is further enhanced.
- said initial position of a segment of the spine in the image is established by considering anatomical knowledge about a spine.
- said initial position of an initial segment of the spine in the image is established by detecting at least one anatomical land- mark of the spine in the image.
- said at least one anatomical landmark relates to one of: a vertebra (T1 ) at a first rib, a vertebra (T12) of a last rib and/or a sacral foramina (S1 ).
- T1 vertebra
- T12 vertebra
- S1 sacral foramina
- a reliable and promising initial position leading to good matching results is established very quickly so that image throughput and labeling reliability are still increased.
- the spinal canal of the spine is detected before establishing an initial position of an initial segment.
- one or more initial segment candidates, in particular intervertebral disks, being located next to the spinal canal are determined.
- transition detectors relating to transition disks, e.g. C7/T1 , T12/L1 or L5/S1 .
- the term “detector” or “feature detector” refers to methods that aim at computing abstractions of image information and making local decisions at every image point whether there is an image feature, e.g. in particular an interesting part of the image, of a given type at that point or not.
- the term “transition detector” refers to a method for finding a transition between at least two image features.
- said initial position of a segment of the spine in the image is established by means of disk appearance profiles or disk profiles, in particular by means of profiles of the intervertebral disk candidates and/or the transition detectors.
- a disk label is assigned to the most prominent disk candidate.
- said initial position of a segment of the spine in the image is established by deducing an initialization disk by means of regular expression matching, i.e. by matching the disk profile to a full- spine profile.
- regular expression matching in the context of the invention relates to a regular expression which provides a concise and flexible means to match, i.e. to specify and recognize, patterns, e.g. strings or character pat- terns of a text or patterns or profiles of an image or a part thereof.
- a disk profile corresponds to a string ("TTT.LLL") of region classes to which a set of disk candidates ( ⁇ 0 M ⁇ ) is mapped by classifying each disk candidate (B M ) to a region class ("C", "T", "L”) or region transition uncertainty (".”).
- a set of disk candidates ( ⁇ 9 m ⁇ ) is detected by means of disk detec- tors ( ⁇ E>c, ⁇ , ⁇ _) which are trained to detect disks in the cervical ("C"), thorax (“T”) and lumbar areas ("L”) of the spine, respectively.
- said initial position of a segment of the spine in the image is established by deducing an initialization disk by means of regular expression matching, wherein a disk profile ( TT.LLL”) is matched to a full-spine pro- file (“CCCCCC I I I I I I I I I I I I LLLLL").
- multiple initialization disk candidates can result from the region transition uncertainty (".") in the disk profile ("TTT.LLL.”).
- multiple initialization disk candidates are resolved by multiple labeling runs.
- said initial position of a segment of the spine in the image is estab- lished by deducing an initialization disk by means of localizing one of three most distinguishing transition disks (C7/T1 , T12/L1 , L5/S1 ) of the spine.
- C7/T1 , T12/L1 , L5/S1 transition disks
- transition disks C7/T1 , T12/L1 , L5/S1
- transition detectors ⁇ , OTL, OLS
- CT cervical/thorax
- tho- rax/lumbar(TL) lumbar/sacrum
- LS lumbar/sacrum
- said initial position of a segment of the spine in the image is established by considering Markov Random Field (MRF) matching qualities.
- MRF Markov Random Field
- a MRF in the context of the invention is a graphical model of a joint probability distribution. It consists of an undirected graph in which the nodes represent random vari- ables.
- a MRF is a convenient and consistent way to model context-dependent entities such as image pixels and correlated features. This is achieved by characterizing mutual influences among such entities using conditional MRF distributions.
- . 2 shows an example of a multi-view rendering of vertebra labels in a radiology software
- Fig. 3 shows examples of CT images with annotated landmarks
- Fig. 4 shows (left) a sparse 3-disk model M> for a fixed intervertebral "Middle Disk” dj and (right) a 2D sagittal projection of a steerable sampling pat- tern around a disk d, and along an edge defined by d, and d i+ , wherein pattern layers define regions Ri ... R r ;
- Fig. 5 shows an overview on the spine labeling framework in a sagittal projection
- Fig. 6 shows an example of a correctly labeled full-spine dataset
- Fig. 7 shows further examples of correctly labeled datasets of parts of a spine.
- FIG. 1 shows an example of an apparatus 10 and a system according to the invention.
- a medical image data set 11 comprising a plurality of images, in particu- lar slice images, of a human or animal body is acquired by a medical imaging apparatus 12, in particular a computer tomography (CT) apparatus.
- CT computer tomography
- the apparatus 10 comprises a control unit 13, e.g. a workstation or a personal computer (PC), to which the image data set 11 is fed.
- the image data set 11 can be transferred from the medical imaging apparatus 12 to the control unit 13 via a data network 18 to which the control unit 13 is, at least temporarily, connected.
- the data network 18 can be a local area network (LAN) or wireless LAN (WLAN) in a hospital environment or the internet.
- control unit 13 is configured to generate a volume reconstruction and/or a slice view 15 of the image data set 11 on a display 14, e.g. a TFT screen of the workstation or PC, respectively.
- control unit 13 is designed to label one or more parts of a spine in the image data set 1 according to the invention.
- a vertebra 19 in the axial slice view 15 is labeled, i.e. marked or denoted, with a label "L3" indicating that the displayed vertebra 19 corresponds to the third lumbar vertebra of the spine.
- Fig. 2 shows an example of a multi-view rendering of vertebra labels in a radiology software.
- the left part of fig. 2 again shows the axial slice view 15 rendered on the display 14 shown in fig. 1.
- the middle part of fig. 2 shows a sagittal slice view 16 of a spinal segment, wherein respective vertebra is labeled with "L3".
- a three-dimensional representation of the image data set is shown, wherein all of the vertebrae contained in the image are labeled with respective labels "L1" to "L5".
- the spinal column represents a natural reference frame of the upper part of human body. To localize nearby organs and pathologies, sparse spine labeling is sufficient, wherein correct vertebra/disk labels are visible in arbitrary 2D and 3D views prior their segmentation. According to an aspect of the invention, an automatic, segmentation-free approach to sparsely label spinal columns in 3D CT datasets is proposed and an according framework was designed with two main goals in mind. First, to relax requirements on the input data for labeling of both full and partial spine scans. Though presence of sacrum, T12, or T1 vertebrae in the data is predominantly used, it is not strictly necessary.
- the method, apparatus and system according to the invention need to be high throughput, capable of processing thousands of slices in few minutes.
- structural knowledge from training data is preferably encoded in probabilistic boosting trees and used to detect relevant landmarks in the incoming scans. Desired disk landmarks and labels are then localized preferably by Markov Fandom Field-based matching of sparse appearance models which encode the anatomical knowledge.
- the invention does not expect any specific part of the spine to be present in a CT scan. Rather, the only requirement is to have at least a three-intervertebral disk part of the spine in the data. Additionally, the following information to be available in the DICOM tags is required: (1 ) a CT-to-Hounsfield intensity transformation and (2) the patient position.
- volume l k in Hounsfield scale and in right- handed head-first supine (face-up) orientation of the patient are reconstructed.
- a cylinder K k di approximating the disk is positioned at the disk center d
- canal landmarks c with anatomical labels ⁇
- the canal landmark set is extended by landmarks defined by the middle point lying on a linear interpolation of c k and c k i+1 .
- Cylinders K k ci around c k approximate the extent of the spinal canal.
- Further landmarks bj, j 1..12 with anatomical labels ⁇ ⁇ T1 , ...
- T12 ⁇ are placed in the middle of rib bodies b k and Si , s 2 in the center of the two uppermost sacral foramina s k i , s k 2 .
- Cylinders K k bj ; K k s i, K k s2 were placed around b , s k 1 ( s k 2 to approximate their extent.
- Fig. 3 shows examples of CT images in a sagittal, coronal and axial plane, re- spectively, which have been annotated accordingly with landmarks, i.e., disk centers d,, spinal canal centers c,, ribs b j and sacral foramina centers s 1 t s 2 .
- landmarks i.e., disk centers d,, spinal canal centers c,, ribs b j and sacral foramina centers s 1 t s 2 .
- the interpolated spinal canal landmarks are not visualized in this representation.
- the spinal canal is chosen as a central part of spine-related problems.
- Positive samples for the spinal canal detector O s are generated within the cylinders K k ci around the annotated points c k ,.
- Negative samples are generated randomly, constrained to have a minimal distance of 10 mm to positive regions.
- Disk Detectors ⁇ 0 , ⁇ ⁇ , ⁇ . ln order to place labels inside the intervertebral disks, three disk detectors ⁇ 0 , ⁇ , ⁇ _ are learned to detect the disks in the cervical, thorax, and lumbar areas, respectively.
- Negative samples are taken from the counterpart disks as well as from random distribution with assured minimal distances of 10 mm to the positive samples.
- the disk detectors While the disk detectors best respond in areas they have been trained for, false positive responses may occur frequently especially in the cervical/thorax and thorax/lumbar transitions.
- the disks can be therefore best localized as clusters in a union ⁇ 0 UO T ⁇ ⁇ of all three disk detector responses.
- the association of a mixed disk cluster with a particular region needs to be learned from the relative contributions of the responses O c , ⁇ and ⁇ 1> L .
- the posterior probabilities of the three detectors are combined to classify disk clusters into one of the respective regions "C", "T", "L”, or ".” to reflect region transitions and further uncertainties.
- the following three detectors are trained to detect the three transitions where the labeling can easily be initialized from: cervical/thorax, thorax/lumbar, and lumbar/sacrum.
- the feature detector CT is trained to detect voxels in the T1 rib. Positive rib samples are generated within cylindrical regions K k b i around the rib points b'S;
- ⁇ _ is trained to detect voxels in the T12 rib. Similar to T1 , positive T12 rib samples are generated within cylinders K k b 2 around the rib points b k i 2 ;
- Oi_s is trained to detect the sacral foramina points s k i , s k 2 . Positive samples are constrained to the sacral foramina cylinder approximations K k s1 , K k s2 .
- PBT probabilistic boosting trees
- the weak classifiers preferably used in the invention include so-called Haar-like features, image derivatives (intensity, gradient magnitude, structure tensor, and principal curvature) and their histograms.
- cascading, classifier sorting and a multi-resolution scheme are used in order to optimize time performance. Cascading considers only true samples running along the tree, while classifier sorting uses cheap classifiers at first and more expensive ones at deeper levels of the tree.
- the multi-resolution scheme significantly reduces the amount of voxels to be processed.
- Input volumes l k are resampled into a pyramid of 3 isotropic grids l n k with voxel sizes of 2 n mm.
- the feature detectors are applied in a coarse-to-fine manner, i.e. ⁇ 2 ⁇ ⁇ ⁇ 1 ⁇ ⁇ ⁇ ° ⁇ , early terminating as soon as any test fails.
- the feature clouds from disk detectors are usually not suitable for the final result.
- sparse MRF appearance models record a priori information about appearance of local image regions, of the edges between them and about the geometrical setup of these regions.
- the geometrical setup and the anatomical appearance of a compound of 3 con- secutive disks is modeled and adapted according to morphometry while propagating along the spine. This has three advantages over a model of the full spinal column. First, the matching is done locally and is therefore fast and robust. Second, anatomical variation can be easily integrated into the whole framework. Third, the framework is applicable on datasets which contain only parts of the spine. Left part of fig. 4 shows vertebrae 20 to 22 and intervertebral disks 24 to 26 of a spine segment.
- a middle disk 25 located between the consecutive vertebrae 21 and 22 as well as an upper and lower disk 24 and 26 adjacent to the upper side of upper vertebra 21 or lower side of lower vertebra 22, respectively, are considered.
- 11 edges For computation of the 3-disk model around disk landmark d, preferably all of the 11 edges are considered or, alternatively, only a 5-edge subset thereof is involved, as exemplarily indicated in fig. 4 by thick lines.
- a morphometry feature vector g k t is computed to capture the geometrical configuration of the 6 nodes and appearance feature vectors W,, £. k , to sparsely model the appearance of both the 6 nodes and the 1 1 or 5 edges, respectively.
- feature vector in general relates to a multi-dimensional vector of numerical features that represent an object.
- a “morphometry feature vector” relates to a multi-dimensional vector of numerical features relating to a quantitative analysis of form, i.e. size and shape, of an object
- an "appearance feature vector” relates to a multi-dimensional vector of numerical features relating to a quantitative analysis of the texture, in particular the surface texture, of an object.
- the model M will be finally computed as an average feature vector across the training data.
- edges and nodes is modeled by intensity differences between r sampling patterns Ri, R 2 , R r .
- the node sampling patterns are steerable features: layers orthogonal to u 1 , are displaced and scaled according to the captured morphometry. This is illustrated by means of fig. 4 (right part) showing a 2D sagittal projection of steerable sampling Regions R around the disk d M and samples along an edge defined by d, and d i+ i, wherein pattern layers define the regions Ri... R r N or R re , respectively, u, 1 , u, 2 and u, 3 define the local coordinate frame at disk d,.
- the edge appearance vector becomes thus 11 dimensional, dimensional or 0-dimensional, respectively, and the nodes appearance vector -dimensional.
- the final edge-node feature vector of model 3 ⁇ 4 is computed by averaging the feature vectors of all training data, S tr : edges nodes
- Models 51 ⁇ 2i are built for every disk label from C3/C4 to L4/L5, i.e., 2 ⁇ i ⁇ 22.
- the models ;1 ⁇ 4 20 , 3*21 , :1 ⁇ 2 22 are associated with mean distances s ⁇ 21 , S 22, s " 2 3, of their bottommost disks centers, d 2 i; d 22 ; d 2 3, to the sacral foramina.
- fig. 5 shows a sagittal projection of a segment of a spine in an image at different phases or steps (corresponding to part a to f of fig. 5) of the method according to the invention.
- the segment of the spine in the image comprises 13 vertebrae and 14 intervertebral disks.
- feature detection is performed in order to prune the search space for the subsequent model matching.
- a detection of the spinal canal see fig. 5b and sec. 2.1 below
- transition detectors see fig. 5c and sec. 2.2 below.
- a subsequent initialization disk identification is based on the disk candidates, their profile, and on the transition detectors.
- a disk label is assigned to the most prominent disk candidate (see fig. 5d and sec. 2.3 below).
- model matching and propagation is performed, wherein a 3- disk model, which is determined by the initialization label, is matched to a subset of disk and canal features (see fig. 5e and sec. 2.4 below). The matching is propagated up and/or downwards until stopping criteria are met (see sec. 2.5 below).
- the CT image of the spine is labeled with respective labels according to the results of the previous model matching and propagation step (see fig. 5f).
- the algorithm considers the spinal canal which is a significant feature. Accordingly, the spinal canal feature detector O s is applied inside the whole volume. Positively classified voxels yield a point cloud. To avoid false positives, a B-spline is fitted to the tallest connected component of this cloud. In the following the B-spline will also be referred to as canal spline ⁇ (see fig. 5b). 2.2. Disk Candidates and Profile
- the disk detectors O c , ⁇ , ⁇ _ are restricted to a region extruded by the largest possible disk along the canal spline ⁇ .
- Positively classified voxels yield cervical, thoracic, and lumbar feature clouds, C, T, and L.
- places of highest concentrations of disk points along the canal spline are determined.
- the canal spline is sampled at a fixed arc length of 1 mm yielding a set of points and tangents ⁇ n s , D' s ⁇ .
- the corresponding counts DC m D + DT m D + ⁇ L m D are used to classify each disk candidate 9 m in accordance with section 1.3.2 above, i.e. to a region class "C", "T", "L”, or region transition uncertainty
- the set of all disk candidates ⁇ 9 m ⁇ is mapped to a string of region classes and is referred to as the disk profile.
- a disk profile TT.LLL.” corresponds to a thoracic-lumbar transition with two uncertain disk candidates ⁇ 4 and ⁇ 8 .
- disk detectors ⁇ ⁇ , ⁇ _ and a transition detector ⁇ ⁇ ⁇ _ are shown.
- Initialization Disk and its Label From a set of disk candidates ⁇ 9 m ⁇ an initial one, ⁇ , is picked for which a disk label ⁇ , can be assigned reliably.
- a disk label ⁇ Preferably, one of the three most distinguishable transition disks C7/T1 , T12/L1 , and L5/S1 is localized (see sec. 2.3.1 below). If none of these transition disks can be localized, the initialization disk label is deduced by a regular expressions match of the disk profile to a full-spine pro- file (see sec. 2.3.2 below). 2.3.1. Applying Transition Detectors
- the three transition detectors introduced in section 1.3.3 above are applied near the spinal canal if the disk profile suggests it, terminating as soon as the initialization disk can be deduced as follows: - C7/T1 rib features (OCT ) are computed next to a potential C-to-T transition. An overlap of the feature points with disk candidates is evaluated in the sagittal projection. The disk candidate with a maximum feature overlap is assigned the disk label C7/T1.
- a regular expression search is applied to match the disk profile to a full-spine profile "CCCCCCTTT I I I I I I I I I LLLLL". While such a match can happen to be unique, the algorithm has to be prepared to handle eventual multiple candidates resulting from missing transition (e.g. if only a part of thorax in the CT scan is seen) or uncertainties in the disk profile.
- the example disk profile "TTT.LLL.” would yield two matches, “TTTLLLLL” and TTTTLLLL", with two candidates for label T12/L1 , i.e. 0 3 and ⁇ 4 .
- "LLL” profile would yield three candidate configurations in the lumbar part, "TTTTTT” would yield 7 candidate configurations in the thorax, and so forth.
- Multiple candidates are resolved by multiple labeling runs initialized from each disk-label pair.
- the labeling results are assessed by MRF matching qualities as shown below.
- a cloud of 100 closest disk or canal features, respectively, is associated to every of the 6-tuple points (see fig. 4).
- the 6 x 100 points become the refinement candidates.
- the task is to find an optimal match of the model M, to one of the 100 6 possible configurations ⁇ , as each of the 6 model nodes attempts to find an optimal position among its 100 associated candidates.
- T i is NP-hard to find, an efficient approximation approach is applied which involves computation of a 1 1 ⁇ 100 2 edge quality matrix E and of a 6 ⁇ 100 node quality matrix C which are fed to a so-called Max-Sum solver.
- the reference node d, of the optimally matched model is fixed as the final posi- tion d * i associated with the ⁇ ,. If the uppermost or bottommost model M 2 or 94.22, respectively, has been matched, the reference node di or d 2 3, respectively, of the model is additionally taken as the final position associated with label ⁇ 1 or A 23 , respectively. Compensating missing disks
- the algorithm propagates downwards and/or upwards along the canal spline in order to refine the remaining label positions ⁇ j ⁇ in the input volume.
- the total labeling after upper/downer propagation can be assessed by geometry components of the optimal matches (see eqn. (3)) of models ⁇ iWj ⁇ to all detected disks ⁇ j ⁇ in the input dataset, excluding models optimized due to a dummy case:
- Vertebra Labels by Interpolation The model matching framework delivers positions of intervertebral disks. Vertebral body positions and labels are obtained by means of linear interpolation between adjacent disks.
- the intervertebral disk T12/L1 in the spine image is determined as an initialization disk, i.e. an initial segment, of the spine and is labeled accordingly with "T12/L1" (see fig. 5d).
- model matching starts with a model of a spine segment considering properties of three intervertebral disks and two vertebrae around the initialization disk T12/L1 corresponding to the middle disk 25 shown in left part of fig. 4.
- FIG. 6 shows an example of a full-spine image dataset which has been correctly labeled by means of the method of the present invention.
- the vertebrae represented in the image are annotated with respective spine labels Cn, Tn and Ln from cervical vertebra C3 to lumbar vertebra L5.
- Fig. 7 shows further examples of labeled image datasets of parts of a spine.
- the segment of the spine represented in the left image features collapsed vertebrae and herniated disks; despite these unfavorable anatomical conditions, by means of the invention respective vertebrae are correctly labeled from cervical vertebra C7 to lumbar vertebra L2. Same applies to the middle image featuring an ex- tremely scoliotic spine segment, where the vertebrae are correctly labeled from thoracic vertebra T12 to lumbar vertebra L5.
- the right image shows a correctly labeled cervical image data set, labeled from C3 to T3.
- a framework was introduced based on following ideas: First, fast feature detection of target structures, mainly intervertebral disks and spinal canal, is refined by three-disk models. Second, a correct labeling is assured by learned structures to identify the initial disk at one of C7/T1 , T12/L1 , and L5/S1.
- the framework set forth above can be extended by disk orientation estimation. This can reliably be derived from the canal spline tangent. In fact, the canal features and spline fitting of our framework are robust so that it is also possible to investigate the Frenet frame (i.e., curvature and torsion) of the canal spline to quantify spine abnormalities.
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| CN201380039267.5A CN104641397B (en) | 2012-07-24 | 2013-07-23 | For automating the tagged methods, devices and systems of backbone |
| BR112015001099-7A BR112015001099B1 (en) | 2012-07-24 | 2013-07-23 | METHOD, APPLIANCE AND SYSTEM FOR LABELING ONE OR MORE PARTS OF A COLUMN IN AN IMAGE OF A HUMAN OR ANIMAL BODY |
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