X-Ray radiation reduction system
By exposing the ROI at full exposure and full frame rate while exposing the area outside the ROI with low exposure and up to full frame rate an overall reduction in X-Ray radiation is achieved. The resultant image has slightly lower resolution outside the ROI but better resolution (as compared to standard fluoroscopy practices) in the ROI because of reduced scattering. Different exposures are supplied to different parts of the image by using a fast shutter in conjunction with the exposure control.
1 . An X-Ray imaging system for displaying an image on a monitor comprising means for selecting an region of interest in said image and exposing said region of interest to a higher radiation dose than the rest of the image by using a plurality of X-Ray pulses for creating at least some of the images, the higher dose pulses used for the region of interest, using a high speed shutter to limit the high dose radiation to the region of interest, and combining the region of interest area and the rest of the image into a single image.
2 . A system as in claim 1 wherein said region of interest is selected automatically by the system.
3 . A system as in claim 1 wherein said region of interest is selected manually by the user.
4 . A system as in claim 1 wherein said shutter comprises of at least four actuators, each one carrying an X-Ray absorbing blade and each one capable of being independently controlled.
5 . A system as in claim 1 wherein motion of said shutter is synchronized to said X-Ray pulses.
6 . A system as in claim 1 wherein said radiation dose is controlled by varying the length of said X-Ray pulses.
7 . A system as in claim 1 wherein said radiation dose is controlled by varying the current to the X-Ray tube generating said X-Ray pulses.
8 . A system as in claim 1 wherein both the location and shape are automatically selected and said selection can be over-ridden manually.
9 . A method for X-ray imaging comprising the following steps:
controlling a shutter to select a region of interest in an X-Ray image, said region of interest being smaller than the desired image;
generating a high radiation dose X-Ray pulse;
opening said shutter to the size of the full image;
generating a lower dose X-Ray pulse; and
combining the high and low dose images into a single image.
10 . A method for X-ray imaging as in claim 9 wherein said region of interest is automatically selected based on the data of said image.
11 . A method for X-ray imaging as in claim 9 wherein said region of interest is selected manually.
12 . A method for X-ray imaging as in claim 9 wherein both size and location of said region of interest are automatically selected but selection can be modified manually.
13 . A system as in claim 1 wherein said region of interest is selected automatically by the system based on identifying a tool inserted into the body of the patient.
14 . A method for X-ray imaging as in claim 9 wherein the region of interest is selected automatically by the system based on identifying a tool inserted into the body of the patient.
15 . An X-Ray imaging system wherein at least some of the displayed images are formed by combining two images created by two X-ray pulses, a higher radiation dose pulse for imaging a region of interest and a lower radiation dose pulse for imaging the rest of the image.
16 . A system as in claim 15 wherein said region of interest is defined by at least four X-Ray absorbing blades, the position of each blade individually controlled by the system.
17 . A system as in claim 1 wherein the position and size of the region of interest can be controlled by a gesture based interface.
18 . A system as in claim 15 wherein the position and size of the region of interest can be controlled by a gesture based interface.
19 . A method for X-Ray imaging as in claim 9 wherein the position and size of the region of interest can be controlled by a gesture based interface.