Claims
- 1. A system for producing a tomographic image of an object using data acquired from a single detector row in a helical scan, said system comprising an x-ray source and a single slice detector array, a processor coupled to said detector array and configured to:generate a helical weighting factor based on a gantry angle and a detector angle; generate a modified weighting factor based on the generated helical weighting factor by shifting the helical weighting factor in the view angle direction; and apply the modified weighting factor to the data, wherein said modified weighting factor Wf(β,γ) is: Wf(β,γ)=∑i=-ni=nh(i)W(β-i Δβ,γ)where:γ is the detector angle; β is the gantry angle; W(β,γ) is the helical weighting coefficient; Δβ is the shift along the view angle direction; and h(i) is the weighting applied to the ith shifted version.
- 2. A system in accordance with claim 1 further comprising an operator console and wherein said processor is further configured to prompt an operator to input values for n, Δβ and h(i).
- 3. A system in accordance with claim 1 wherein said modified weighting factor is applied to projection data.
- 4. A system in accordance with claim 1 wherein said modified weighting factor is applied to image data.
- 5. A system for producing a tomographic image of an object using data acquired from a single detector row in a helical scan, said system comprising an x-ray source and a single slice detector array, a processor coupled to said detector array and configured to:generate a helical weighting factor based on a gantry angle and a detector angle; generate a modified weighting factor based on the generated helical weighting factor by shifting the helical weighting factor in the view angle direction; and apply the modified weighting factor to the data, wherein said modified weighting factor Wf(β,γ) is: Wf(β,γ)=∑i=-ni=nh(i)W(β-i Δβ,γ)where:γ is the detector angle; β is the gantry angle; W(β,γ) is the helical weighting coefficient; Δβ is the shift along the view angle direction; and h(i) is the weighting applied to the ith shifted version, wherein h(i) is a smoothing filter.
- 6. In a system for producing a tomographic image of an object using data acquired from a single slice detector having a single detector row, a processor configured to:generate a modified weighting factor Wf(β,γ) in accordance with: Wf(β,γ)=∑i=-ni=nh(i)W(β-i Δβ,γ)where:γ is the detector angle; β is the gantry angle; W(β,γ) is the helical weighting coefficient; Δβ is the shift along the view angle direction; and h(i) is the weighting applied to the ith shifted version; said processor also being configured to apply the modified weighting factor to the data.
- 7. In a system in accordance with claim 6 wherein the system further includes an operator console, and wherein said processor is further configured to prompt an operator to input values for n, Δβ and h(i).
- 8. In a system in accordance with claim 6 wherein said modified weighting factor is applied to projection data.
- 9. In a system in accordance with claim 6 wherein said modified weighting factor is applied to image data.
- 10. A method for weighting data acquired from a single detector row from a single slice detector in a helical scan executed by a computed tomography system, said method comprising the steps of:generating a helical weighting factor based on a gantry angle and a detector angle; generating a modified weighting factor based on the generated helical weighting factor by shifting the helical weighting factor in the view angle direction; and applying the modified weighting factor to the data, wherein said modified weighting factor Wf(β,γ) is: Wf(β,γ)=∑i=-ni=nh(i)W(β-i Δβ,γ)where:γ is the detector angle; β is the gantry angle; W(β,γ) is the helical weighting coefficient; Δβ is the shift along the view angle direction; and h(i) is the weighting applied to the ith shifted version.
- 11. A method in accordance with claim 10 further comprising the step of prompting an operator to select values for n, Δβ and h(i).
- 12. A method in accordance with claim 10 wherein said modified weighting factor is applied to projection data.
- 13. A method in accordance with claim 10 wherein said modified weighting factor is applied to image data.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation of U.S. patent application Ser. No. 08/754,242, filed originally on Nov. 20, 1996 now U.S. Pat. No. 6,091,840, which itself is a continuation-in-part of U.S. patent application Ser. No. 08/576,765, filed Dec. 21, 1995, now U.S. Pat. No. 5,606,585, issued Feb. 25, 1997.
US Referenced Citations (13)
Non-Patent Literature Citations (2)
Entry |
Bresler et al. “Optimal Interpolation in Helical Scan 3D Computerized Tomography.” ICASSP-89, 1989 International Conference on Acoustics, Speech, and Signal Processing. vol. 3, pp. 1472-1475, May 1989.* |
Kudo et al. “Helical-Scan Computed Tomography Using Cone-Beam Projections.” Conference Record of the 1991 IEEE Nuclear Science Symposium and Medical Imaging Conference. vol. 3, pp. 1958-1962, Nov. 1991. |
Continuations (1)
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Date |
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Parent |
08/754242 |
Nov 1996 |
US |
Child |
09/596611 |
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US |
Continuation in Parts (1)
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Date |
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08/576765 |
Dec 1995 |
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08/754242 |
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US |