Claims
- 1. A treatment planning system for treatment of tumors during periodic organ motion using a radiation therapy machine of a type providing intensity modulated beamlets along a plurality of rays at a plurality of angles about a patient, the planning system comprising:
a model describing the organ at a plurality of phases of organ motion; and a treatment plan calculator:
(i) relating treatment phase to phases of organ motion; (ii) determining intensity values for each of the beamlets for each treatment phase using the model of the organ at the phase of organ motion corresponding to the treatment phase.
- 2. The treatment planning system of claim 1 further including a model generator including:
(i) a storage means holding an image of the organ at a first phase of organ motion and a displacement map of the organ at a second phase of organ motion; and (ii) deforming means warping the organ image using the displacement map.
- 3. The treatment planning system of claim 2 wherein the model successively warps the images of the organ using displacement maps at multiple phases of organ motion.
- 4. The treatment planning system of claim 2 wherein the organ is a lung and the phases of organ motion are respiratory phases.
- 5. The treatment planning system of claim 4 wherein the first phase of organ motion is of the lung in full expiration.
- 6. The treatment planning system of claim 2 wherein the image is a CT image of the organ.
- 7. The treatment planning system of claim 1 wherein each phase of treatment is linked to a different delivery phase of radiation.
- 8. The treatment planning system of claim 1 wherein the treatment plan calculator determines intensity value for each of the beamlets by mapping dose contributions from each beamlet to a single reference image.
- 9. The treatment planning system of claim 8 wherein the mapping is performed by using curved beamlets on the single reference image, the curve computed to reflect the distortion of tissue of the reference image with different phases of organ motion.
- 10. The treatment planning system of claim 1 wherein the treatment plan calculator determines intensity values for each of the beamlets for each treatment phase using the model of the organ at the phase of organ motion corresponding to the treatment phase with changes taking into account mechanical limitation to rate of change of beam intensities.
- 11. The treatment plan calculator of claim 10 where an iterative process is used to determine intensity values from the beamlets incorporating the mechanical limitations.
- 12. A radiation therapy system for treatment of tumors during respiratory motion comprising:
a radiation source providing intensity modulated radiation along a plurality of beamlets at a plurality of angles about a patient; a respiration monitor providing a respiration signal indicating breathing phase; a controller holding a treatment plan providing intensity values for each of the beamlets for each of the angles linked to respiration phase, the controller further receiving the respiration signal to vary the intensity of the beamlets according to the treatment plan and the breathing phase.
- 13. The radiation therapy system of claim 12 wherein the treatment plan provides intensity values for beamlets distributed over 360 degrees of angle about the patient.
- 14. The radiation therapy system of claim 12 wherein the treatment plan provides intensity values for beamlets distributed multiple angles less than 360 degrees.
- 15. The radiation therapy system of claim 12 further including a patient interface providing an indication to a patient of the respiration signal.
- 16. The radiation therapy system of claim 15 further including:
a generator providing a predetermined respiration schedule; and wherein the patient interface provides an indication to the patient of the respiratory signal juxtaposed with an indication of the predetermined respirations schedule; wherein the controller controls a phase of the treatment plan according to the predetermined respiration schedule and the patient may match his or her breathing to the predetermined respiration schedule.
- 17. The radiation therapy system of claim 16 wherein the predetermined respiration schedule is a recording of the patient's normal breathing pattern.
- 18. The radiation therapy system of claim 15 further wherein the patient interface is a visual display.
- 19. The radiation therapy system of claim 18 further wherein the patient interface is goggles having graphic display elements.
- 20. The radiation therapy system of claim 18 further wherein the display is a time graph of a respiration signal over time superimposed on a graph of the predetermined respiration schedule.
- 21. The radiation therapy system of claim 16 further including:
a secondary respiration monitor; and a free standing training unit receiving the signal from the secondary respiration monitor and holding the predetermined respiration schedule to provide an indication to the patient of the signal from the secondary respiration monitor juxtaposed with an indication of the predetermined respirations schedule; whereby the patient may practice breathing synchronization.
- 22. A method for treatment of tumors during periodic organ motion using a radiation therapy machine of a type providing intensity modulated beamlets along a plurality of rays at a plurality of angles about a patient, the treatment comprising the steps of:
(a) creating a model describing the organ at a plurality of phases of organ motion; (b) relating a treatment phase to phases of organ motion; and (c) determining intensity values for each of the beamlets for each treatment phase using the model of the organ at the phase of organ motion corresponding to the treatment phase.
- 23. The method of claim 22 wherein the step of creating a model acquires an image of the organ at a first phase of organ motion and a displacement map of the organ at a second phase of organ motion; and
warps the organ image using displacement map.
- 24. The method of claim 23 including the steps of acquiring multiple displacement maps and successively warping the images of the organ using displacement maps at multiple phases of organ motion.
- 25. The method of claim 22 wherein the organ is a lung and the phases of organ motion are respiratory phases.
- 26. The method of claim 25 wherein the acquired image is of the lung in full expiration.
- 27. The method of claim 23 wherein the image is a CT image of the organ.
- 28. The method of claim 22 wherein each phase of treatment is linked to a different delivery angle of radiation.
- 29. The method of claim 22 including the step of determining an intensity value for each of the beamlets by mapping dose contributions from each beamlet to a single reference image.
- 30. The method of claim 29 wherein the mapping is performed by using curved beamlets on the single reference image, the curve computed to reflect the distortion of tissue of the reference image with different phases of organ motion.
- 31. The method of claim 22 including the step of determining intensity values for each of the beamlets for each treatment phase using the model of the organ at the phase of organ motion corresponding to the treatment phase with changes taking into account mechanical limitation to rate of change of beam intensities.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional application 60/478,584 filed Jun. 13, 2003 which is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60478584 |
Jun 2003 |
US |