The present application claims priority from Korean Patent Application No. 10-2010-0006412 filed on Jan. 25, 2010, the entire subject matter of which is incorporated herein by reference.
The present disclosure generally relates to ultrasound image processing, and more particularly to enhancing ultrasound images without lowering a frame rate in an ultrasound system.
An ultrasound system has been extensively used in the medical field due to its non-invasive and non-destructive nature. Modern high-performance ultrasound imaging diagnostic systems and techniques are commonly used to produce two-dimensional or three-dimensional ultrasound images of internal features of patients.
Recently, spatial compounding has been adopted in the ultrasound system to provide enhanced ultrasound images. The spatial compounding is implemented by compounding a plurality of ultrasound images (e.g., three ultrasound images), which have been successively formed at different steering angles of scan lines, to form a compound image. In such a case, when the ultrasound images are acquired under the condition that a surface of an ultrasound probe is not properly contacted with a surface of a target object, border lines of the ultrasound images may appear in a compound image formed by spatial compounding of the ultrasound images, i.e., seam artifact occurs in the compound image, which may degrade the compound image.
Embodiments for spatially compounding ultrasound images for removing seam artifact in an ultrasound system are disclosed herein. In one embodiment, by way of non-limiting example, an ultrasound system comprises: an ultrasound data acquisition unit configured to transmit ultrasound beams to a target object, receive ultrasound echoes reflected from the target object and provide a plurality of ultrasound frame data sets for a plurality of frames, said plurality of ultrasound frame data being acquired at different steering angles of scan lines; and a processing unit configured to form a plurality of ultrasound images and form a plurality of mask images corresponding to the respective ultrasound images based on the plurality of ultrasound frame data sets for removing seam artifact and spatially compound the plurality of ultrasound image based on the plurality of mask images to form an ultrasound spatial compound image.
In another embodiment, a method of forming an ultrasound spatial compound image in an ultrasound system, comprises: a) transmitting ultrasound beams to a target object, receiving ultrasound echoes reflected from the target object and providing a plurality of ultrasound frame data sets for a plurality of frames, said plurality of ultrasound frame data being acquired at different steering angles of scan lines; b) setting a plurality of masks corresponding to the respective frames based on the plurality of ultrasound frame date sets for removing seam artifact to form a plurality of mask images corresponding to the respective frames; c) forming a plurality of ultrasound images corresponding to the plurality of frames based on the plurality of frame data sets; and d) spatially compounding the plurality of ultrasound image based on the plurality of mask images to form an ultrasound spatial compound image.
In yet another embodiment, a computer-readable storage medium storing instructions that, when executed by a computer, cause the computer to provide a method of spatially compounding ultrasound images based on a plurality of ultrasound frame data sets acquired from a target object and at different steering angles of scan lines in an ultrasound system, the method comprises: setting a plurality of masks corresponding to the respective frames based on the plurality of ultrasound frame date sets for removing seam artifact to form a plurality of mask images corresponding to the respective frames; forming a plurality of ultrasound images corresponding to the plurality of frames based on the plurality of frame data sets; and spatially compounding the plurality of ultrasound image based on the plurality of mask images to form an ultrasound spatial compound image.
The Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key or essential features of the claimed subject matter, nor is it intended to be used in determining the scope of the claimed subject matter.
A detailed description may be provided with reference to the accompanying drawings. One of ordinary skill in the art may realize that the following description is illustrative only and is not in any way limiting. Other embodiments of the present invention may readily suggest themselves to such skilled persons having the benefit of this disclosure.
Referring to
The ultrasound data acquisition unit 110 may be configured to transmit ultrasound beams to a target object and receive ultrasound echoes reflected from the target object to thereby form ultrasound data representative of the target object. An operation of the ultrasound acquisition unit will be described in detail by referring to
The ultrasound data acquisition unit 110 may further include an ultrasound probe 112, which is coupled to the Tx signal forming section 111. The ultrasound probe 112 may include an array transducer containing a plurality of transducer elements for reciprocal conversion between electric signals and ultrasound signals. The ultrasound probe 112 may be configured to transmit ultrasound signals in response to the Tx signals. The ultrasound probe 112 may be further configured to receive ultrasound echoes reflected from the target object to thereby output receive signals. In one embodiment, the receive signals may include first receive signals obtained in response to the first Tx signals, second receive signals obtained in response to the second Tx signals and third receive signals obtained in response to the third Tx signals.
The ultrasound data acquisition unit 110 may further include a beam forming section 113, which is coupled to the ultrasound probe 112. The beam forming section 113 may be configured to digitize the electrical receive signals to obtain digital signals. The beam forming section 113 may also apply delays to the digital signals in consideration of distances between the elements of the ultrasound probe 112 and focal points. The beam forming section 113 may further sum the delayed digital signals to form receive-focused beams. In one embodiment, the beam forming section 113 may form a first receive-focused beam based on the first receive signals, a second receive-focused beam based on the second receive signals and a third receive-focused beam based on the third receive signals.
The ultrasound data acquisition unit 110 may further include an ultrasound data forming section 114, which is coupled to the beam forming section 113. The ultrasound data forming section 114 may be configured to form ultrasound data corresponding to a plurality of frames based on the receive-focused beams. The ultrasound data may be stored in the storage unit 130. In one embodiment, the ultrasound data forming section 114 may be configured to form a first ultrasound frame data set corresponding to the respective scan lines S1-S6 of the first frame P1 based on the first receive-focused beams. The ultrasound data forming section 114 may be configured to form a second ultrasound frame data set corresponding to the respective scan lines S1-S6 of the second frame P2 based on the second receive-focused beams. Further, the ultrasound data forming section 114 may be configured to form a third ultrasound frame data set corresponding to the respective scan lines S1-S6 of the third frame P3 based on the first receive-focused beams. The ultrasound data forming section 114 may be configured to perform a variety of signal processing (e.g., gain adjustment, etc.), which is necessary for forming the ultrasound data, upon the receive-focused beams.
Referring back to
The mask forming section 121 may be configured to a plurality of masks corresponding to a plurality of frames, respectively, based on the plurality of ultrasound frame data sets. Each of the masks has a size and a pixel number identical to those of each of the frames. In one embodiment, the mask forming section 121 may be configured to a first mask 211 corresponding to the first frame P1 based on the first ultrasound frame data set as shown in
The mask setting section 122, which is coupled to the mask forming section 121, may be configured to determine a pixel value corresponding to each of pixels in each of the masks by using the ultrasound frame data sets. More particularly, the mask setting section 122 may be configured to detect an intensity of the ultrasound frame data corresponding to the scan line S1 at each of the frame by using the ultrasound frame data sets. The mask setting section 122 may be further configured to compare the detected intensity with a predetermined threshold. If the intensity is equal to or greater than the predetermined threshold, then it is determined that the ultrasound probe 122 is properly contacted with the surface of the target object. This is so that the mask setting section 122 may assign a value of 1 to pixels corresponding to the scan line S1.
On the other hand, if the intensity is less than the predetermined threshold, then it is determined that the ultrasound 122 is properly contracted with the surface of the target object. This is so that the mask setting section 122 may assign a value of 0 to pixels corresponding to the scan line Si. For example, the mask setting section 122 may be configured to detect intensities of the ultrasound frame data corresponding to each of the scan lines S1-S6 of the first frame P1 and compare the intensities with the predetermined threshold to thereby assign a value of 1 to pixels corresponding to the scan line S1-S6, which have the intensities equal to or greater than the predetermined threshold value, as shown in
The image forming section 123, which is coupled to the mask setting unit 122, may be configured to form a plurality of mask images based on the plurality of masks provided from the mask setting unit 122. Also, the image forming section 123 may be further configured to form a plurality of ultrasound images corresponding to the plurality of mask images by using the ultrasound frame data sets provided from the ultrasound data acquisition unit 110. In one embodiment, the image forming section 123 may be configured to form a first mask image 311, a second mask image 312 and a third mask image 313 by using the first mask 211, the second mask 212 and the third mask 213, as shown in
The spatial compounding section 124 may be configured to form an ultrasound spatial compound image by compounding the plurality of ultrasound images by using the plurality of mask images. The spatial compounding section 124 may be configured to sum values of pixels identically positioned in the plurality of ultrasound images to obtain first summation values, and sum values of pixels identically positioned in the plurality of mask images to obtain second summation values. The spatial compound section 124 may be configured to determine pixel values of the ultrasound spatial compound image.
In one embodiment, the spatial compound image 124 may be configured to sum a pixel value of a pixel P1,1 of the first ultrasound image 321, a pixel value of a pixel S1,1 of the second ultrasound image 322 and a pixel value of a pixel U1,1 of the third ultrasound image 323, with respect to a pixel C1,1 of a ultrasound spatial compound image 330, thereby obtaining a first summation value. The spatial compound image 124 may be further configured to sum a pixel value of 1 of the first mask image 311, which corresponds to the pixel P1,1 of the first ultrasound image 321, a pixel value of 1 of the second mask image 312, which corresponds to the pixel S1,1 of the second ultrasound image, and a pixel value of 0 of the third mask image 313, which corresponds to the pixel U1,1 of the third ultrasound image, thereby obtaining a second summation value of 2. The spatial compounding section 124 is further configured to divide the first summation value by the second summation value (i.e., first summation value/second summation value) to thereby determine a pixel value of a pixel C1,1 of the ultrasound spatial compound image 330. In the same manner, the spatial compounding section 124 may be configured to determine pixel values of pixels C1,2 and C1,3 of the ultrasound spatial compound image 330.
With respect to a pixel C1,4 of the ultrasound spatial compound image 330, the spatial compounding section 124 may be configured to sum a pixel value of a pixel P1,4 of the first ultrasound image 321 and a pixel value of a pixel S2,4 of the second ultrasound image 322, thereby obtaining a first summation value. The spatial compound image 124 may be further configured to sum a pixel value of 1 of the first mask image 311, which corresponds to the pixel P1,4 of the first ultrasound image 321, and a pixel value of 1 of the second mask image 312, which corresponds to the pixel S2,4 of the second ultrasound image, thereby obtaining a second summation value of 2. The spatial compounding section 124 is further configured to divide the first summation value by the second summation value (i.e., first summation value/second summation value) to thereby determine a pixel value of a pixel C1,4 of the ultrasound spatial compound image 330. In the same manner, the spatial compounding section 124 may be configured to determine pixel values of pixels C1,5 and C1,6 of the ultrasound spatial compound image 330.
With respect to a pixel C2,1 of the ultrasound spatial compound image 330, the spatial compound image 124 may be configured to sum a pixel value of a pixel P2,1 of the first ultrasound image 321, a pixel value of a pixel S2,1 of the second ultrasound image 322 and a pixel value of a pixel U2,1 of the third ultrasound image 323, thereby obtaining a first summation value. The spatial compound image 124 may be further configured to sum a pixel value of 1 of the first mask image 311, which corresponds to the pixel P2,1 of the first ultrasound image 321, a pixel value of 1 of the second mask image 312, which corresponds to the pixel S2,1 of the second ultrasound image, and a pixel value of 1 of the third mask image 313, which corresponds to the pixel U2,1 of the third ultrasound image, thereby obtaining a second summation value of 3. The spatial compounding section 124 is further configured to divide the first summation value by the second summation value (i.e., first summation value/second summation value) to thereby determine a pixel value of a pixel C2,1 of the ultrasound spatial compound image 330. In the same manner, the spatial compounding section 124 may be configured to determine pixel values of pixels C2,2, C2,3, C2,4, C2,5, C2,6, C3,1, C3,2, C3,3, C3,4, C3,5, C3,6, C4,1, C4,2, C4,3, C4,4, C4,5, C4,6, C5,1, C5,2, C5,3, C5,4, C5,5, C5,6, C6,1, C6,2 and C6,3 of the ultrasound spatial compound image 330.
With respect to a pixel C6,4 of the ultrasound spatial compound image 330, the spatial compounding section 124 may be configured to sum a pixel value of a pixel P6,4 of the first ultrasound image 321 and a pixel value of a pixel U5,4 of the second ultrasound image 323, thereby obtaining a first summation value. The spatial compound image 124 may be further configured to sum a pixel value of 1 of the first mask image 311, which corresponds to the pixel P6,4 of the first ultrasound image 321, and a pixel value of 1 of the third mask image 313, which corresponds to the pixel U5,4 of the third ultrasound image, thereby obtaining a second summation value of 2. The spatial compounding section 124 is further configured to divide the first summation value by the second summation value (i.e., first summation value/second summation value) to thereby determine a pixel value of a pixel C6,4 of the ultrasound spatial compound image 330. In the same manner, the spatial compounding section 124 may be configured to determine pixel values of pixels C6,5 and C6,6 of the ultrasound spatial compound image 330.
Referring back to
In another embodiment, there is provided a computer-readable storage medium storing instructions that, when executed by a computer, cause the computer to provide a method of spatially compounding ultrasound images based on a plurality of ultrasound frame data sets acquired from a target object and at different steering angles of scan lines in an ultrasound system, the method comprising: setting a plurality of masks corresponding to the respective frames based on the plurality of ultrasound frame date sets for removing seam artifact to form a plurality of mask images corresponding to the respective frames; forming a plurality of ultrasound images corresponding to the plurality of frames based on the plurality of frame data sets; and spatially compounding the plurality of ultrasound image based on the plurality of mask images to form an ultrasound spatial compound image.
Although embodiments have been described with reference to a number of illustrative embodiments thereof, it should be understood that numerous other modifications and embodiments can be devised by those skilled in the art that will fall within the spirit and scope of the principles of this disclosure. More particularly, numerous variations and modifications are possible in the component parts and/or arrangements of the subject combination arrangement within the scope of the disclosure, the drawings and the appended claims. In addition to variations and modifications in the component parts and/or arrangements, alternative uses will also be apparent to those skilled in the art.
Number | Date | Country | Kind |
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10-2010-0006412 | Jan 2010 | KR | national |