Method for generating a contrast medium-assisted X-ray image and X-ray system

US9693742B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9693742-B2
Application numberUS-201213979154-A
CountryUS
Kind codeB2
Filing dateJan 17, 2012
Priority dateJan 18, 2011
Publication dateJul 4, 2017
Grant dateJul 4, 2017

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  5. First independent claim

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Abstract

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A method is disclosed for generating at least one x-ray image of a patient having incorporated contrast medium, using x-rays having an energy spectrum and an x-ray detector. The energy spectrum is modified by at least one first filter arranged in the beam path in front of the patient, the patient absorbing a dose in order to generate detector data for the x-ray image and the x-ray image having a CNR value which represents the ratio of the maximum contrast in the image to the noise. The energy spectrum and contrast medium are matched to each other, taking into account the thickness of the patient to be x-rayed, in such a way that an optimization criterion which is taken from an x-ray image that is generated or simulated by way of trials is maximized. Furthermore, an x-ray system is also disclosed.

First claim

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What is claimed is: 1. A method for generating at least one X-ray image of a patient with incorporated contrast medium, the at least one X-ray image being generated using an X-ray detector and X-ray radiation generated at an anode, the X-ray radiation including an energy spectrum of braking rays and characteristic radiation, the method comprising: modifying the energy spectrum by using at least one first filter arranged in a beam path in front of the patient, the at least one first filter being a beam hardening filter; generating detector data for the X-ray image upon the patient absorbing a dose of X-ray radiation, the X-ray image including a contrast-to-noise ratio (CNR) value representing a ratio of a maximum contrast in the X-ray image to noise; selecting an additional filter, from among a plurality of additional filters, to be inserted into the beam path in front of the patient to further adjust the energy spectrum, the additional filter being selected based on an examination protocol of the patient, the incorporated contrast medium, a tube voltage, and patient data, and the additional filter being selected according to a product of (i) a ratio (CNR 2 /D γ ) of the square of the contrast-to-noise ratio (CNR 2 ) of the X-ray image of the patient to the radiation dose (D γ ) received by the patient for the X-ray image and (ii) a ratio (CNR/D K ) of the contrast-to-noise ratio (CNR) of the X-ray image of the patient to the contrast medium dose (D K ) incorporated into the patient; moving the selected additional filter into the beam path in front of the patient to further adjust the energy spectrum, the energy spectrum being further adjusted taking into account a thickness of the patient; and generating the X-ray image of the patient with the incorporated contrast medium using the X-ray detector and X-ray radiation generated at the anode, the X-ray radiation including the energy spectrum of braking rays and characteristic radiation; wherein the additional filter is composed of a filter material including at least one of iridium (atomic number Z=77), platinum (Z=78), gold (Z=79), mercury (Z=80), lead (Z=82), and bismuth (Z=83); and wherein a contrast-creating material in the contrast medium includes different materials or material combinations including at least one of rhenium (atomic number Z=75), hafnium (Z=72), tantalum (Z=73), tungsten (Z=74), and elements from the group of lanthanides (atomic number Z=58 to 71). 2. The method of claim 1 , wherein a combination of absorbent material of the additional filter and the contrast-creating material of the contrast medium is selected such that the K-edge of the absorbent material of the additional filter lies energetically above the contrast-creating material of the contrast medium. 3. The method of claim 1 , further comprising: at least one of proposing and automatically adjusting, using a logic circuit or logic programming, at least one further variable recording parameter following determination or input of unchanging recording parameters. 4. The method of claim 3 , wherein at least one of patient diameter, the contrast medium dose, material or element of the contrast medium, the CNR, and radiation dose to be applied are used as the unchanging recording parameters. 5. The method of claim 3 , wherein at least one of maximum photon energy, anode material, the filter material of the additional filter, thickness of the additional filter, material or element of the contrast medium, the contrast medium dose, the CNR, and radiation dose to be applied, is used as a changeable recording parameter provided said parameter has not been selected as an unchanging recording parameter. 6. The method of claim 1 , further comprising: determining a mean thickness of the patient in a region to be recorded; introducing test results from recordings with a plurality of different energy spectra, taking into account the mean thickness of the patient and determining associated CNR values between contrast medium-free tissue and contrast medium-enriched body fluid or tissue or between maximum and minimum image values from the overall image of the patient; selecting a configuration of energy spectrum and contrast medium with a maximum value for the optimization criterion; setting the selected configuration; and generating at least one projection of the patient using the selected configuration. 7. The method of claim 6 , wherein in taking into account the mean thickness of the patient in the recording region, only configurations of the maximum energy of the energy spectrum, additional filter material and contrast medium used are tested; K-edges of the additional filter material lie between the maximum of the energy spectrum of the braking rays without additional filters and the maximum energy of the energy spectrum; and K-edges of the contrast medium lie between the maximum of the energy spectrum of the braking rays without additional filters and the K-edges of the additional filter material. 8. The method of claim 6 , further comprising: varying the maximum energy of the energy spectrum to vary the energy spectrum for the test results. 9. The method of claim 6 , further comprising: varying the anode material to vary the energy spectrum for the test results. 10. The method of claim 6 , further comprising: varying the layer thickness of at least one additional filter arranged in the beam path in front of the patient to vary the energy spectrum for the test results. 11. The method of claim 1 , wherein the X-ray image of the patient is a projectional X-ray image. 12. The method of claim 1 , wherein the X-ray image of the patient is a two-dimensional or three-dimensional tomographic image. 13. The method of claim 6 , wherein the mean thickness of the patient in the recording region is determined by creating at least one topogram, at least in the recording region from at least one projection direction. 14. The method of claim 6 , wherein the mean thickness of the patient in the recording region is determined by optical scanning at least in the recording region. 15. The method of claim 6 , wherein the mean thickness of the patient in the recording region is estimated based on at least one of weight, height and sex data. 16. A method for making X-ray recordings in a combination of an X-ray system with contrast medium incorporated into a patient, wherein the contrast medium contains at least one of rhenium, hafnium, tantalum, and tungsten, and wherein a contrast-to-noise ratio between contrast medium-accumulating tissues and surrounding tissue is increased, the method comprising: selecting at least one additional filter, from among a plurality of additional filters, to be inserted into a beam path in front of an X-ray tube to spectrally modify radiation emitted by the X-ray tube of the X-ray system, the at least one additional filter being selected based on an examination protocol of the patient, the incorporated contrast medium, a tube voltage, and patient data, and the at least one additional filter being selected according to a product of (i) a ratio (CNR 2 /D γ ) of the square of the contrast-to-noise ratio (CNR 2 ) of an X-ray image of the patient to the radiation dose (D γ ) received by the patient for the X-ray image and (ii) a ratio (CNR/D K ) of the contrast-to-noise ratio (CNR) of the X-ray image of the patient to the contrast medium dose (D K ) incorporated into the patient; and moving the selected at least one additional filter into the beam path in front of the X-ray tube, the at least one additional filter being composed of a filter material including at

Assignees

Inventors

Classifications

  • for diagnosis of the head, e.g. neuroimaging or craniography · CPC title

  • Diaphragms · CPC title

  • Scattering devices; Absorbing devices; Ionising radiation filters · CPC title

  • A61B6/032Primary

    Transmission computed tomography [CT] · CPC title

  • X-ray contrast preparations · CPC title

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What does patent US9693742B2 cover?
A method is disclosed for generating at least one x-ray image of a patient having incorporated contrast medium, using x-rays having an energy spectrum and an x-ray detector. The energy spectrum is modified by at least one first filter arranged in the beam path in front of the patient, the patient absorbing a dose in order to generate detector data for the x-ray image and the x-ray image having …
Who is the assignee on this patent?
Grasruck Michael, Jost Gregor, Siemens Ag, and 1 more
What technology area does this patent fall under?
Primary CPC classification A61B6/032. Mapped technology areas include Human Necessities.
When was this patent published?
Publication date Tue Jul 04 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).