Patents by Inventor Viljo Petaja
Viljo Petaja has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Patent number: 12239850Abstract: In a radiation treatment plan that includes a plurality of treatment fields of multiple treatment modalities, such as IMRT modality and dynamic treatment path modality (e.g., VMAT and conformal arc therapy), an optimized spatial point sequence may be determined that optimizes the total treatment time, which includes both the beam-on time (i.e., during the delivery of radiation dose) and the beam-off time (i.e., during transitions between consecutive treatment fields). The result is a time-ordered field trajectory that intermixes and interleaves different treatment fields. In one embodiment, a dynamic treatment path may be cut into a plurality of sections, and one or more IMRT fields may be inserted between the plurality of sections.Type: GrantFiled: February 23, 2022Date of Patent: March 4, 2025Assignee: Siemens Healthineers International AGInventors: Santtu Ollila, Mikko Vainio, Jarkko Peltola, Janne Nord, Esa Kuusela, Juha Kauppinen, Viljo Petäjä, Marko Rusanen
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Patent number: 12076584Abstract: Presented systems and methods enable efficient and effective robust radiation treatment planning and treatment, including analysis of dose rate robustness. In one embodiment, a method comprising accessing treatment plan information, accessing information corresponding to an uncertainty associated with implementation of the radiation treatment plan, and generating a histogram, wherein the histogram conveys a characteristic of the treatment plan including an impact of the uncertainty on the characteristic. The histogram can be a dose rate volume histogram and can be utilized to test a degree of robustness of a treatment plan (e.g., including allowance for uncertainty scenarios, etc.). The uncertainty can be associated with potential variation associated with tolerances (e.g., radiation system/machine performance tolerance, patient characteristic tolerances, etc.) and set up issues (e.g., variation in initial system/machine set up, variation patient setup/position, etc.).Type: GrantFiled: June 30, 2021Date of Patent: September 3, 2024Assignees: VARIAN MEDICAL SYSTEMS PARTICLE THERAPY GMBH & CO, KG, SIEMENS HEALTHINEERS INTERNATIONAL AGInventors: Tina Pfeiler, Reynald Vanderstraeten, Michiko Rossi, Isabel Huth, Viljo Petaja
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Patent number: 12076587Abstract: A computer implemented method of developing a radiation treatment plan comprising spot scanning of a treatment target comprising accessing information associated with a patient and information pertaining to a radiation delivery machine. The method further comprises determining an area associated with the treatment target, wherein the area comprises a plurality of spots and computing a weighting for each spot of the plurality of spots, wherein the weighting is associated with a number of protons delivered at a respective spot. Further, the method comprises computing timing related parameters based on information retrieved from the radiation delivery machine and determining a transition dose delivered by the radiation delivery machine during the transition from one spot to another spot when irradiating the treatment target.Type: GrantFiled: March 29, 2022Date of Patent: September 3, 2024Assignee: Siemens Healthineers International AGInventors: Pierre Lansonneur, Perttu Niemela, Michiko Rossi, Matti Sakari Ropo, Viljo Petaja
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Patent number: 12064645Abstract: Computer-implemented methods for planning radiation treatment are used to identify, for a given isocenter and given beam energy, beam delivery angles where beam fields satisfy a criterion for transmission fields (fields with a Bragg peak that is significantly or entirely outside of a patient's body). Those beam angles can be determined and evaluated before dose calculations are performed. Treatment planning can be performed using selected, satisfactory beam angles.Type: GrantFiled: July 2, 2020Date of Patent: August 20, 2024Assignee: SIEMENS HEALTHINEERS INTERNATIONAL AGInventors: Matti Ropo, Michiko Rossi, Pierre Lansonneur, Viljo Petaja
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Patent number: 11992703Abstract: A method used for planning radiation treatment accessing information that includes calculated doses and calculated dose rates for sub-volumes in a treatment target, and also accessing information that includes values of a measure of the sub-volumes as a function of the calculated doses and the calculated dose rates. A graphical user interface includes a rendering that is based on the calculated doses, the calculated doses rates, and the values of the measure.Type: GrantFiled: May 18, 2021Date of Patent: May 28, 2024Assignees: VARIAN MEDICAL SYSTEMS PARTICLE THERAPY GMBH & CO. KG, VARIAN MEDICAL SYSTEMS, INC., SIEMENS HEALTHINEERS INTERNATIONAL AGInventors: Pierre Lansonneur, Perttu Niemela, Viljo Petaja, Simon Busold, Michiko Rossi, Matti Sakari Ropo, Michael Folkerts, Jessica Perez, Christel Smith, Adam Harrington, Eric Abel, Lauri Halko
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Methods and systems using modeling of crystalline materials for spot placement for radiation therapy
Patent number: 11957934Abstract: A crystalline structure modeling methodology that is conventionally used to model crystalline matter down to the atomic level is instead used to determine spot placement for radiation treatment. The cross-sectional shape of a treatment target is specified; locations (peaks) in a density field inside the shape are determined using the crystalline structure model; locations of spots in the treatment target for spot scanning are determined, where the locations correspond to the locations (peaks) inside the shape determined using the crystalline structure model; and the locations of the spots are stored as candidates for potential inclusion in a radiation treatment plan.Type: GrantFiled: July 1, 2020Date of Patent: April 16, 2024Assignee: SIEMENS HEALTHINEERS INTERNATIONAL AGInventors: Petri Hirvonen, Michiko Rossi, Pierre Lansonneur, Matti Ropo, Viljo Petaja, Perttu Niemela, Timo Koponen -
Publication number: 20230310887Abstract: A computer implemented method of developing a radiation treatment plan comprising spot scanning of a treatment target comprising accessing information associated with a patient and information pertaining to a radiation delivery machine. The method further comprises determining an area associated with the treatment target, wherein the area comprises a plurality of spots and computing a weighting for each spot of the plurality of spots, wherein the weighting is associated with a number of protons delivered at a respective spot. Further, the method comprises computing timing related parameters based on information retrieved from the radiation delivery machine and determining a transition dose delivered by the radiation delivery machine during the transition from one spot to another spot when irradiating the treatment target.Type: ApplicationFiled: March 29, 2022Publication date: October 5, 2023Inventors: Pierre LANSONNEUR, Perttu NIEMELA, Michiko ROSSI, Matti Sakari ROPO, Viljo PETAJA
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Publication number: 20230191153Abstract: Information associated with a radiation treatment plan includes, for example, values of dose per voxel in a target volume, values of dose rate per voxel in the target volume, and values of parameters used when generating the values of dose per voxel and the values of dose rate per voxel. Renderings that include, for example, a rendering of an image of or including the target volume, and a rendering of selected values of the radiation treatment plan, are displayed. When a selection of a region of one of the renderings is received, a displayed characteristic of another one of the renderings is changed based on the selection.Type: ApplicationFiled: February 10, 2023Publication date: June 22, 2023Inventors: Viljo PETAJA, Anthony MAGLIARI, Pierre LANSONNEUR, Jessica PEREZ, Michiko ROSSI, Michael FOLKERTS
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Patent number: 11590363Abstract: Information associated with a radiation treatment plan includes, for example, values of dose per voxel in a target volume, values of dose rate per voxel in the target volume, and values of parameters used when generating the values of dose per voxel and the values of dose rate per voxel. Renderings that include, for example, a rendering of an image of or including the target volume, and a rendering of selected values of the radiation treatment plan, are displayed. When a selection of a region of one of the renderings is received, a displayed characteristic of another one of the renderings is changed based on the selection.Type: GrantFiled: June 29, 2021Date of Patent: February 28, 2023Assignees: Varian Medical Systems International AG, Varian Medical Systems, Inc.Inventors: Viljo Petaja, Anthony Magliari, Pierre Lansonneur, Jessica Perez, Michiko Rossi, Michael Folkerts
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Publication number: 20230001233Abstract: Presented systems and methods enable efficient and effective robust radiation treatment planning and treatment, including analysis of dose rate robustness. In one embodiment, a method comprising accessing treatment plan information, accessing information corresponding to an uncertainty associated with implementation of the radiation treatment plan, and generating a histogram, wherein the histogram conveys a characteristic of the treatment plan including an impact of the uncertainty on the characteristic. The histogram can be a dose rate volume histogram and can be utilized to test a degree of robustness of a treatment plan (e.g., including allowance for uncertainty scenarios, etc.). The uncertainty can be associated with potential variation associated with tolerances (e.g., radiation system/machine performance tolerance, patient characteristic tolerances, etc.) and set up issues (e.g., variation in initial system/machine set up, variation patient setup/position, etc.Type: ApplicationFiled: June 30, 2021Publication date: January 5, 2023Inventors: Tina PFEILER, Reynald VANDERSTRAETEN, Michiko ROSSI, Isabel HUTH, Viljo PETAJA
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Publication number: 20220409927Abstract: Information associated with a radiation treatment plan includes, for example, values of dose per voxel in a target volume, values of dose rate per voxel in the target volume, and values of parameters used when generating the values of dose per voxel and the values of dose rate per voxel. Renderings that include, for example, a rendering of an image of or including the target volume, and a rendering of selected values of the radiation treatment plan, are displayed. When a selection of a region of one of the renderings is received, a displayed characteristic of another one of the renderings is changed based on the selection.Type: ApplicationFiled: June 29, 2021Publication date: December 29, 2022Inventors: Viljo PETAJA, Anthony MAGLIARI, Pierre LANSONNEUR, Jessica PEREZ, Michiko ROSSI, Michael FOLKERTS
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Publication number: 20220176160Abstract: In a radiation treatment plan that includes a plurality of treatment fields of multiple treatment modalities, such as IMRT modality and dynamic treatment path modality (e.g., VMAT and conformal arc therapy), an optimized spatial point sequence may be determined that optimizes the total treatment time, which includes both the beam-on time (i.e., during the delivery of radiation dose) and the beam-off time (i.e., during transitions between consecutive treatment fields). The result is a time-ordered field trajectory that intermixes and interleaves different treatment fields. In one embodiment, a dynamic treatment path may be cut into a plurality of sections, and one or more IMRT fields may be inserted between the plurality of sections.Type: ApplicationFiled: February 23, 2022Publication date: June 9, 2022Inventors: Santtu Ollila, Mikko Vainio, Jarkko Peltola, Janne Nord, Esa Kuusela, Juha Kauppinen, Viljo Petäjä, Marko Rusanen
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Patent number: 11285339Abstract: In a radiation treatment plan that includes a plurality of treatment fields of multiple treatment modalities, such as IMRT modality and dynamic treatment path modality (e.g., VMAT and conformal arc therapy), an optimized spatial point sequence may be determined that optimizes the total treatment time, which includes both the beam-on time (i.e., during the delivery of radiation dose) and the beam-off time (i.e., during transitions between consecutive treatment fields). The result is a time-ordered field trajectory that intermixes and interleaves different treatment fields. In one embodiment, a dynamic treatment path may be cut into a plurality of sections, and one or more IMRT fields may be inserted between the plurality of sections.Type: GrantFiled: March 18, 2019Date of Patent: March 29, 2022Assignee: Varian Medical Systems International AGInventors: Santtu Ollila, Mikko Vainio, Jarkko Peltola, Janne Nord, Esa Kuusela, Juha Kauppinen, Viljo Petäjä, Marko Rusanen
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METHODS AND SYSTEMS USING MODELING OF CRYSTALLINE MATERIALS FOR SPOT PLACEMENT FOR RADIATION THERAPY
Publication number: 20220001203Abstract: A crystalline structure modeling methodology that is conventionally used to model crystalline matter down to the atomic level is instead used to determine spot placement for radiation treatment. The cross-sectional shape of a treatment target is specified; locations (peaks) in a density field inside the shape are determined using the crystalline structure model; locations of spots in the treatment target for spot scanning are determined, where the locations correspond to the locations (peaks) inside the shape determined using the crystalline structure model; and the locations of the spots are stored as candidates for potential inclusion in a radiation treatment plan.Type: ApplicationFiled: July 1, 2020Publication date: January 6, 2022Inventors: Petri HIRVONEN, Michiko ROSSI, Pierre LANSONNEUR, Matti ROPO, Viljo PETAJA, Perttu NIEMELA, Timo KOPONEN -
Publication number: 20220001206Abstract: Computer-implemented methods for planning radiation treatment are used to identify, for a given isocenter and given beam energy, beam delivery angles where beam fields satisfy a criterion for transmission fields (fields with a Bragg peak that is significantly or entirely outside of a patient's body). Those beam angles can be determined and evaluated before dose calculations are performed. Treatment planning can be performed using selected, satisfactory beam angles.Type: ApplicationFiled: July 2, 2020Publication date: January 6, 2022Inventors: Matti ROPO, Michiko ROSSI, Pierre LANSONNEUR, Viljo Petaja
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Publication number: 20210393982Abstract: A method used for planning radiation treatment accessing information that includes calculated doses and calculated dose rates for sub-volumes in a treatment target, and also accessing information that includes values of a measure of the sub-volumes as a function of the calculated doses and the calculated dose rates. A graphical user interface includes a rendering that is based on the calculated doses, the calculated doses rates, and the values of the measure.Type: ApplicationFiled: May 18, 2021Publication date: December 23, 2021Inventors: Pierre Lansonneur, Perttu NIEMELA, Viljo Petaja, Simon Busold, Michiko Rossi, Matti Sakari Ropo, Michael Folkerts, Jessica Perez, Christel Smith, Adam Harrington, Eric Abel, Lauri HALKO
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Patent number: 10940330Abstract: A method of calculating radiation dose includes dosimetric projection of a collimator geometry. The method includes defining a three-dimensional (3D) geometry of a collimating device which defines an aperture configured to allow a radiation beam passing through, projecting the collimating device along the radiation beam into a two-dimensional (2D) geometry in a plane, calculating dosimetric opacity values of the collimating device at locations adjacent to the aperture based on the 3D geometry of the collimating device, and calculating transport of the radiation beam through the collimating device based on the 2D geometry projected in the plane and using the dosimetric opacity values of the collimating device at the locations adjacent to the aperture.Type: GrantFiled: March 20, 2019Date of Patent: March 9, 2021Assignee: VARIAN MEDICAL SYSTEMS INTERNATIONAL AGInventors: Timo Ikonen, Christopher Boylan, Ari Harju, Petri Hiltunen, Juha Kauppinen, Petri Kokkonen, Viljo Petaja, Marko T Rusanen, Sami P Siljamaki, Tuomas E Torsti, Esa Kuusela, Antti Karjalainen
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Publication number: 20200298018Abstract: A method of calculating radiation dose includes dosimetric projection of a collimator geometry. The method includes defining a three-dimensional (3D) geometry of a collimating device which defines an aperture configured to allow a radiation beam passing through, projecting the collimating device along the radiation beam into a two-dimensional (2D) geometry in a plane, calculating dosimetric opacity values of the collimating device at locations adjacent to the aperture based on the 3D geometry of the collimating device, and calculating transport of the radiation beam through the collimating device based on the 2D geometry projected in the plane and using the dosimetric opacity values of the collimating device at the locations adjacent to the aperture.Type: ApplicationFiled: March 20, 2019Publication date: September 24, 2020Inventors: Timo Ikonen, Christopher Boylan, Ari Harju, Petri Hiltunen, Juha Kauppinen, Petri Kokkonen, Viljo Petaja, Marko T Rusanen, Sami P Siljamaki, Tuomas E Torsti, Esa Kuusela, Antti Karjalainen
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Patent number: 10549119Abstract: A control circuit utilizes patient information and treatment-platform information to optimize a radiation-treatment plan by permitting isocenters of various radiation-treatment fields as comprise parts of a same treatment plan to not be coincidental with one another to thereby yield an optimized treatment plan. The patient information can pertain to one or more physical aspects of the patient as desired. By one approach, the foregoing can comprise scattering the isocenters of the various radiation-treatment fields around a predetermined point (such as, for example, the center of the treatment volume and/or some or all of the beams). This approach can comprise causing an area of highest energy flux for a given field to be non-coincident for at least some of the radiation-treatment fields as are specified by the radiation-treatment plan.Type: GrantFiled: January 23, 2019Date of Patent: February 4, 2020Assignee: Varian Medical Systems International AGInventors: Viljo Petäjä, Perttu Niemelä, Esa Kuusela
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Publication number: 20190209863Abstract: In a radiation treatment plan that includes a plurality of treatment fields of multiple treatment modalities, such as IMRT modality and dynamic treatment path modality (e.g., VMAT and conformal arc therapy), an optimized spatial point sequence may be determined that optimizes the total treatment time, which includes both the beam-on time (i.e., during the delivery of radiation dose) and the beam-off time (i.e., during transitions between consecutive treatment fields). The result is a time-ordered field trajectory that intermixes and interleaves different treatment fields. In one embodiment, a dynamic treatment path may be cut into a plurality of sections, and one or more IMRT fields may be inserted between the plurality of sections.Type: ApplicationFiled: March 18, 2019Publication date: July 11, 2019Applicant: Varian Medical Systems International AGInventors: Santtu Ollila, Mikko Vainio, Jarkko Peltola, Janne Nord, Esa Kuusela, Juha Kauppinen, Viljo Petäjä, Marko Rusanen