System and Method for RF Ablation with Generated Images of Ablated Tissue Lesions
Abstract
The invention includes a system for generating virtual images of proposed and designated areas on a patient's anatomy that are to be treated in a RFA procedure. The images include a size, shape, and location of lesion/ablation patterns. The virtual images include dynamic (developing) or static (developed) lesions selected for the RFA procedure. The images are provided on at least one user interface that superimposes or overlays the lesion pattern(s) on an image of a patient's anatomy that undergoes the procedure. The images can be used to accurately and efficiently conduct RFA procedures and to record the procedures with enhanced visual data to confirm treated tissue areas. The invention further includes a diagnostic method of generating images in preparation for a RFA procedure, and a method of conducting the RFA procedure in which measured parameters determine the size and shape of the ablated areas achieved in the procedure.
Claims
exact text as granted — not AI-modifiedWhat is claimed is:
1 . A system for generating images representative of areas to be treated by radiofrequency (RF) ablation, comprising:
a computer processor including a memory, a processing element, and programmable instructions including at least one mathematical relationship for visually modeling a size and shape of a selected lesion pattern to be created; an RF probe communicating with said computer processor; an RF generator for supplying RF energy to said RF probe; said mathematical relationship including variables incorporated in said mathematical relationship including specifications for said RF probe to be used in an ablation procedure; a first visual display for viewing first images corresponding to at least one selected lesion pattern to be created, said selected lesion pattern being depicted on said visual display as an object having a length, depth and width; and a second visual display including second images of the lesion pattern size and shape as an ablation procedure takes place and wherein said second images are time-based images in which a size of the lesion pattern is shown to increase over time as RF energy continues to be provided through said RF probe during the ablation procedure.
2 . The system, as claimed in claim 1 , wherein said first visual display includes said object having a geometric shape corresponding to said at least one selected lesion pattern to be created.
3 . The system, as claimed in claim 1 , wherein said second visual display further includes an image of anatomy of a patient undergoing the ablation procedure, wherein said at least one selected lesion pattern to be created is superimposed over the RF probe positioned in the patient.
4 . The system, as claimed in claim 1 , wherein said mathematical relationship further includes variables corresponding to (a) an amount of RF energy to be supplied through the RF probe during the ablation procedure, and (b) a measured amount of time in which the RF energy is to be supplied.
5 . A subsystem for generating images representative of areas to be treated by radiofrequency (RF) ablation, comprising:
a computer processor including a memory, a processing element, and programmable instructions including at least one mathematical relationship for visually modeling a size and shape of a selected lesion pattern to be created; said mathematical relationship including variables incorporated in said mathematical relationship including specifications for an RF probe to be used in an ablation procedure; a first visual display for viewing first images corresponding to at least one selected lesion pattern to be created; and a second visual display including second images of the lesion pattern size and shape as an ablation procedure takes place and wherein said second images are time-based images in which a size of the lesion pattern is shown to increase over time as RF energy continues to be provided through said RF probe.
6 . The subsystem, as claimed in claim 5 , wherein said first visual display includes a geometric shape corresponding to said at least one selected lesion pattern to be created.
7 . The subsystem, as claimed in claim 5 , wherein said second visual display further includes an image of anatomy of a patient undergoing the ablation procedure, wherein said at least one selected lesion pattern to be created is superimposed over an image of the RF probe positioned in the patient.
8 . The subsystem, as claimed in claim 5 , wherein said mathematical relationship further includes variables corresponding to (a) an amount of RF energy to be supplied through the RF probe during the ablation procedure, and (b) a measured amount of time in which the RF energy is to be supplied.
9 . A diagnostic method for generating images representative of areas treated to be treated by radiofrequency (RF) ablation, comprising:
providing a computer processor including a memory and a processing element; providing programmable instructions including at least one mathematical relationship for visually modeling a size and shape of a selected lesion pattern to be created; providing communications between an RF probe and said computer processor; generating power for delivery to said RF probe by an RF generator; determining in said at least one mathematical relationship a plurality of variables to achieve said modeling, said variables at least including specifications for said RF probe to be used in an ablation procedure; producing a first visual display including first images corresponding to at least one selected lesion pattern to be created, said selected lesion pattern is depicted on said visual display as an object having a length, depth and width; and producing a second visual display including second images of the lesion pattern size and shape as an ablation procedure takes place and wherein said second images are time-based images in which a size of the lesion pattern is shown to increase over time as RF energy continues to be provided through said RF probe.
10 . The method, as claimed in claim 9 , wherein said mathematical relationship further includes variables corresponding to (a) an amount of RF energy to be supplied through the RF probe during the ablation procedure, and (b) a measured amount of time in which the RF energy is to be supplied.
11 . The method, as claimed in claim 9 , wherein producing said first visual display includes said object having a generating a geometric shape corresponding to said at least one selected lesion pattern to be created.
12 . The method, as claimed in claim 9 , wherein producing said second visual display further includes generating an image of anatomy of a patient undergoing the ablation procedure, wherein said at least one selected lesion pattern to be created is superimposed over an image of the RF probe positioned in the patient.
13 . A method for generating images representative of areas to be treated in a subsequent radiofrequency (RF) ablation procedure, comprising:
providing a computer processor including a memory and a processing element; providing programmable instructions including at least one mathematical relationship for visually modeling a size and shape of a selected lesion pattern to be created; providing communications between an RF probe and said computer processor; determining in said at least one mathematical relationship a plurality of variables to achieve said modeling; providing a first user interface showing said at least one selected lesion pattern to be created in response to said modeling including showing said size and shape of said selected lesion pattern to be created; and selecting a desired lesion pattern to be created in the subsequent RF ablation procedure; providing a second user interface with a composite image showing the selected lesion pattern to be created on a selected area of an anatomy of a patient to be treated; providing a depiction of the selected lesion pattern on said second user interface as an object having a length, depth and width; confirming the desired location and the selected lesion pattern to be created for determining RF generator settings to deliver RF energy commensurate with the selected lesion pattern to be created and the RF probe to be used in the procedure; activating the RF generator to deliver RF energy according to parameters selected for the procedure; and providing a plurality of additional user interfaces showing the composite image including an actual image of the treated location of the patient and a superimposed image of the lesion pattern created as time progresses, the plurality of additional user interfaces differing by a size of the lesion pattern changing as time progresses.
14 . The method as claimed in claim 13 wherein said plurality of variables include (a) an amount of RF energy to be supplied through the RF probe during the ablation procedure, and (b) a measured amount of time in which the RF energy is to be supplied.Join the waitlist — get patent alerts
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