Ultrasound system imaging of blood flow
View Patent ↗An ultrasound system includes a transmitter, a receiver, a processor, and a display system. The transmitter emits ultrasonic energy towards a region of interest of a patient. The receiver receives ultrasonic signals reflected from the region of interest. The processor generates image data from the reflected ultrasonic signals, determines a height map according the reflected ultrasonic signals from the region of interest, and generates shaded image data by shading the image data according to the height map, such that regions of the image data that include blood flow are shaded to simulate a 3D effect, wherein the shaded effect includes transparent blood vessels through which the blood flow passes. The display system displays the shaded image data.
1 . An ultrasound system comprising:
a transmitter configured to emit ultrasonic energy towards a region of interest of a patient;
a receiver configured to receive ultrasonic signals reflected from the region of interest;
a processor configured to:
generate image data from the reflected ultrasonic signals;
determine a height map according the reflected ultrasonic signals from the region of interest; and
generate shaded image data by shading the image data according to the height map, such that regions of the image data that include blood flow are shaded to simulate a 3D effect, wherein the shaded effect includes transparent blood vessels through which the blood flow passes, wherein the transparent blood vessels are simulated by refracting virtual rays at locations of the height map; and
a display system configured to display the shaded image data.
2 . The ultrasound system of claim 1 , wherein the processor is further configured to:
determine a flow field of blood in the region of interest, wherein the flow field includes a plurality of vectors corresponding to a plurality of pathways of flows of the blood flow in the transparent blood vessels; and
display a representation of the flow field in the transparent blood vessels.
3 . The ultrasound system of claim 2 , wherein the representation of the flow field includes a plurality of arrows corresponding to the plurality of vectors.
4 . The ultrasound system of claim 2 , wherein the representation of the flow field includes an animation including a plurality of frames, wherein advancement of the frames indicates movement of the blood along the pathways of flows in the flow field.
5 . The ultrasound system of claim 4 , wherein the representation of the flow field includes virtual particles moving across the plurality of vectors.
6 . The ultrasound system of claim 2 , wherein the processor is further configured to display the flow field underneath an upper surface of the transparent blood vessels.
7 . The ultrasound system of claim 2 , wherein the representation of the flow field comprises different color information corresponding to different ones of the plurality of pathways along which the blood flows.
8 . The ultrasound system of claim 1 , wherein the processor is further configured to generate background ultrasound image data corresponding to tissue in the region of interest and displaying the shaded image data together with the ultrasound image data.
9 . The ultrasound system of claim 1 , wherein the processor is further configured to generate the transparent blood vessels according to the virtual rays and at least one of Snell's law and Beer's law.
10 . The ultrasound system of claim 1 , wherein the processor is further configured to generate the transparent blood vessels according to a Phong model.
11 . A method of ultrasound imaging, the method comprising:
emitting, by a transmitter, ultrasonic energy towards a region of interest of a patient;
receiving, by a receiver, ultrasonic signals reflected from the region of interest;
generating, by a processor, image data from the reflected ultrasonic signals;
determining, by the processor, a height map according the reflected ultrasonic signals from the region of interest, and
generating, by the processor, shaded image data by shading the image data according to the height map, such that regions of the image data that include blood flow are shaded to simulate a 3D effect, wherein the shaded effect includes transparent blood vessels through which the blood flow passes, wherein the transparent blood vessels are simulated by refracting virtual rays at locations of the height map; and
displaying, by a display system, the shaded image data.
12 . The method of claim 11 , further comprising:
determining, by the processor, a flow field of blood in the region of interest, wherein the flow field includes a plurality of vectors corresponding to a plurality of pathways of flows of the blood flow in the transparent blood vessels; and
displaying, by the display system, a representation of the flow field in the transparent blood vessels.
13 . The method of claim 12 , wherein the representation of the flow field includes a plurality of arrows corresponding to the plurality of vectors.
14 . The method of claim 12 , wherein the representation of the flow field includes an animation including a plurality of frames, wherein advancement of the frames indicates movement of the blood along the pathways of flows in the flow field.
15 . The method of claim 14 , wherein the representation of the flow field includes virtual particles moving across the plurality of vectors.
16 . The method of claim 12 , further comprising displaying, by the display system, the flow field underneath an upper surface of the transparent blood vessels.
17 . The method of claim 12 , wherein the representation of the flow field comprises different color information corresponding to different ones of the plurality of pathways along which the blood flows.
18 . The method of claim 12 , further comprising generating, by the processor, the transparent blood vessels according to the virtual rays and at least one of Snell's law and Beer's law.