Claims
- 1. An imaging system for performing tomosynthesis on a region of an object, said imaging system comprising:
an x-ray source positioned a predetermined distance from said object and continuously moving along a path relative to said object, said x-ray source transmitting x-ray radiation through said region of said object a plurality predetermined locations along said path while said x-ray source is continuously moving along said path relative to said object; a motion controller coupled to the x-ray source and continuously moving said x-ray source along said path relative to said object wherein continuously moving said x-ray source minimizes vibration in said imaging system; an x-ray detector positioned a predetermined distance from said x-ray source, the x-ray detector detecting said x-ray radiation transmitted through said region of said object, said x-ray detector acquiring x-ray image data representative of said region of said object; and a processing unit coupled to said x-ray detector for processing said x-ray image data into at least one tomosynthesis image of said region of said object.
- 2. The imaging system of claim 1 wherein said motion controller moves said x-ray source at a first velocity at said plurality of predetermined locations along said path and said motion controller moves said x-ray source at a second velocity outside said plurality of predetermined locations along said path.
- 3. The imaging system of claim 2 wherein the second velocity is greater than the first velocity.
- 4. The imaging system of claim 1 wherein said x-ray image data comprises a plurality of low dose projection radiographs.
- 5. The imaging system of claim 1 wherein said processing unit performs a deblurring operation on said x-ray image data to reduce the effects of blurring caused at least by continuously moving said x-ray source.
- 6. The imaging system of claim 1 wherein exposure time of transmitting said x-ray radiation through said region of said object at said plurality of predetermined locations is a predetermined time.
- 7. The imaging system of claim 6 wherein said predetermined time is 7.5 milliseconds.
- 8. The imaging system of claim 1 wherein the x-ray detector comprises a digital x-ray detector.
- 9. The imaging system of claim 1 wherein said x-ray detector is connected to the motion controller and is selectively movable relative to said object.
- 10. The imaging system of claim 1 wherein said x-ray detector is stationary relative to said object.
- 11. The imaging system of claim 1 wherein said predetermined distance that said x-ray source is positioned relative to a plane of said object comprises a fixed distance.
- 12. The imaging system of claim 1 wherein said path that said x-ray source continuously moves along comprises an arc.
- 13. The imaging system of claim 1 wherein said x-ray source comprises an x-ray tube.
- 14. A method for generating a tomosynthesis image of a region of an object using an imaging system, said method comprising the steps of:
continuously moving an x-ray source along a path positioned a predetermined distance from said object wherein continuously moving said x-ray source minimizes vibration in said imaging system; transmitting x-ray radiation through said region of said object from a plurality of predetermined locations along said path while said x-ray source is continuously moving along said path relative to said object; detecting said x-ray radiation transmitted through said region of said object; acquiring x-ray image data representative of said region of said object; and processing said x-ray image data into at least one tomosynthesis image of said region of said object.
- 15. The method of claim 14 wherein said step of continuously moving said x-ray source comprises:
continuously moving said x-ray source at a first velocity at said plurality of predetermined locations along said path; and continuously moving said x-ray source at a second velocity outside said plurality of predetermined locations along said path.
- 16. The method of claim 15 wherein said second velocity is greater than said first velocity.
- 17. The method of claim 14 wherein said x-ray image data comprises several low dose projection radiographs.
- 18. The method of claim 14 further comprising the step of performing a deblurring operation on said x-ray image data to reduce the effects of blurring caused at least by continuously moving said x-ray source.
- 19. The method of claim 14 wherein the step of transmitting said x-ray radiation comprises transmitting said x-ray radiation for a predetermined time at said plurality of predetermined locations.
- 20. The method of claim 19 wherein said predetermined time comprises about 7.5 milliseconds.
- 21. The method of claim 14 wherein said step of detecting said x-ray radiation comprises using an x-ray detector to detect said x-ray radiation.
- 22. The method of claim 21 wherein said x-ray detector comprises a digital x-ray detector.
- 23. The method of claim 21 further comprising the step of selectively moving said x-ray detector relative to said object.
- 24. The method of claim 21 wherein said x-ray detector remains stationary relative to said object.
- 25. The method of claim 14 wherein said predetermined distance that said x-ray source is positioned relative to a plane of said object comprises a fixed distance.
- 26. The method of claim 14 wherein, said step of continuously moving said x-ray source comprises continuously moving said x-ray source along an arc.
- 27. An imaging system for performing tomosynthesis on a region of an object, said imaging system comprising:
an x-ray source positioned a predetermined distance from said object and continuously moving along a path relative to said object, said x-ray source transmitting x-ray radiation through said region of said object at a plurality of predetermined locations while said x-ray source is continuously moving along said path relative to said object; a motion controller coupled to the x-ray source and continuously moving said x-ray source along said path relative to said object wherein continuously moving said x-ray source minimizes vibration in said imaging system; an x-ray detector positioned a predetermined distance from said x-ray source, the x-ray detector detecting said x-ray radiation transmitted through said region of said object, said x-ray detector acquiring x-ray image data representative of said region of said object; and a processing unit coupled to said x-ray detector for processing said x-ray image data into at least one tomosynthesis image of said region of said object.
- 28. The imaging system of claim 27 wherein said x-ray image data comprises a plurality of low dose projection radiographs.
- 29. The imaging system of claim 27 wherein said processing unit performs a deblurring operation on said x-ray image data to reduce the effects of blurring caused at least by continuously moving said x-ray source.
- 30. The imaging system of claim 27 wherein exposure time of transmitting said x-ray radiation through said region of said object at said plurality of predetermined locations is a predetermined time.
- 31. The imaging system of claim 32 wherein said predetermined time is 7.5 milliseconds.
- 32. The imaging system of claim 27 wherein the x-ray detector comprises a digital x-ray detector.
- 33. The imaging system of claim 27 wherein said x-ray detector is connected to the motion controller and is selectively movable relative to said object.
- 34. The imaging system of claim 27 wherein said x-ray detector is stationary relative to said object.
- 35. The imaging system of claim 27 wherein said predetermined distance that said x-ray source is positioned relative to said a plane of object comprises a fixed distance.
- 36. The imaging system of claim 27 wherein said path that said x-ray source continuously moves along comprises an arc.
- 37. The imaging system of claim 27 wherein said x-ray source comprises an x-ray tube.
- 38. A method for generating a tomosynthesis image of a region of an object using an imaging system, said method comprising the steps of:
continuously moving an x-ray source along a path positioned a predetermined distance from said object wherein continuously moving said x-ray source minimizes vibration in said imaging system; transmitting x-ray radiation through said region of said object at a plurality of predetermined locations along said path while said x-ray source is continuously moving along said path relative to said object; detecting said x-ray radiation transmitted through said region of said object; acquiring x-ray image data representative of said region of said object; and processing said x-ray image data into at least one tomosynthesis image of said region of said object.
- 39. The method of claim 38 wherein said x-ray image data comprises several low dose projection radiographs.
- 40. The method of claim 38 further comprising the step of performing a deblurring operation on said x-ray image data to reduce the effects of blurring caused at least by continuously moving said x-ray source.
- 41. The method of claim 38 wherein the step of transmitting said x-ray radiation comprises transmitting said x-ray radiation for a predetermined time.
- 42. The method of claim 41 wherein said predetermined time comprises 7.5 milliseconds.
- 43. The method of claim 38 wherein said step of detecting said x-ray radiation comprises using an x-ray detector to detect said x-ray radiation.
- 44. The method of claim 43 wherein said x-ray detector comprises a digital x-ray detector.
- 45. The method of claim 43 further comprising the step of selectively moving said x-ray detector relative to said object
- 46. The method of claim 43 wherein said x-ray detector remains stationary relative to said object.
- 47. The method of claim 38 wherein said predetermined distance that said x-ray source is positioned relative to a plane of said object comprises a fixed distance.
- 48. The method of claim 38 wherein, said step of continuously moving said x-ray source comprises continuously moving said x-ray source along an arc.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH & DEVELOPMENT
[0001] The United States Government may have certain rights in this invention pursuant to the Office of Naval Research/Henry M. Jackson Foundation contract Number 22287 awarded by the U.S. Navy.