Method of radiography of a patient body
By integrating simple 2D X-ray imaging and complex computed tomography, the method addresses inefficiencies in radiography, improving diagnostic accuracy and reducing radiation exposure for patients.
Patent Information
- Application Number
- PCT/EP2023/083061
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-11-24
- Publication Date
- 2025-05-30
AI Technical Summary
Current radiography methods, such as simple bidirectional 2D X-ray imaging and complex computed tomography, are often used as exclusive alternatives, leading to inefficiencies in diagnosis and increased radiation exposure for patients.
The method combines simple frontal and lateral 2D X-ray imaging with complex computed tomography, creating synergy to improve image quality and reduce the number of necessary patient imaging sessions, while also minimizing radiation dose.
This combination enhances diagnostic accuracy, reduces the number of imaging sessions, and minimizes radiation exposure, leading to more efficient and safer patient care.
Smart Images

Figure EP2023083061_30052025_PF_FP_ABST
Abstract
Description
[0001] METHOD OF RADIOGRAPHY OF A PATIENT BODY
[0002] FIELD OF THE INVENTION
[0003] The invention relates to the technical field of the methods of radiography of a patient body and of the associated radiography apparatuses to implement such methods of radiography of a patient body.
[0004] BACKGROUND OF THE INVENTION
[0005] To image the inside of the patient body, to perform the best possible diagnostic as to potential risk of illness, several well-known imaging techniques are at hand. Among which can be found for instance positron emission tomography, simple bidirectional (frontal and lateral) 2D X-ray imaging or helicoidal complex computed tomography, sophisticated magnetic resonance imaging. All these imaging techniques work in different spectral domains: gammarays, X-rays, magnetic field. Depending on the type of patient, on the type of organ located within the region of interest, the type of malformation or illness to be detected and cured, one or more of these imaging will be used, most often successively and separately, what does not help the medical expert to perform a quick, relevant and reliable diagnosis on a patient. There is a need to improve this medical situation. Some of these techniques can be used simultaneously, for example computed tomography and magnetic resonance imaging in patent US 11534122B2 or US 11639567B2, or for example computed tomography and positron emission tomography in patent application US 2021 1389399 Al.
[0006] As to know whether it could be technically interesting to couple simple bidirectional (frontal and lateral) 2D X-ray imaging with complex computed tomography, there seems to be at first sight an intrinsic duality between: on the one hand, this simple bidirectional (frontal and lateral) 2D X-ray imaging, o performed by vertical scanning,
[0007] ■ during a short time, o providing for a 3D reconstruction,
[0008] ■ relatively coarse,
[0009] ■ but on a rather large part of patient body, o to the cost of a low global radiation dose received by the patient, and on the other hand, that complex computed tomography, o performed by helicoidal horizontal scanning, ■ during a long time, o providing for a 3D reconstruction,
[0010] ■ finer,
[0011] ■ but on a notably more limited part of patient body, o to the cost of a high global radiation dose received by the patient.
[0012] Therefore, in prior art of record, simple frontal and lateral 2D X-ray imaging and complex computed tomography are usually considered as exclusive alternatives, the choice between them depending on the contemplated application and on the required compromise to be achieved, all the more that, since frontal and lateral 2D X-ray imaging and complex computed tomography are both working in the same spectral field of X-rays, and since the global radiation dose received by the patient should be minimized out of healthcare grounds, performing both of them simultaneously would be considered prima facie as useless as well as potentially harmful for patient health.
[0013] SUMMARY OF THE INVENTION
[0014] However, the invention proposes another way to tackle this duality issue, by combining together simple frontal and lateral 2D X-ray imaging and complex computed tomography in such a new way that: first, there will be synergy created between both these simple frontal and lateral 2D X-ray imaging and complex computed tomography, simple frontal and lateral 2D X- ray imaging helping better focusing of complex computed tomography on a specific region of interest while at the same time complex computed tomography improving image quality of 3D reconstruction from simple frontal and lateral 2D X-ray imaging on this specific region of interest, both leading to improved diagnosis derived from each patient imaging, thereby reducing the number of needed patient imaging in due course of time, o indeed, computed tomography usually performs a scout view to better focus on the region of interest, such scout view can be cancelled, because either the scout view of the first and second vertical scanning or the first and second vertical scanning can replace the usual computed tomography scout view, second, as a consequence of previous synergy and improved diagnosis for each patient imaging, not only it will be most useful to combine together simple frontal and lateral 2D X-ray imaging and complex computed tomography during such a patient imaging, but also the total radiation dose received by a patient in due course of time, during complete treatment of an illness performed via several successive patient imaging, should be hopefully reduced, because the total number of patient X-ray imaging sessions in due course of time should be reduced.
[0015] Further, as to know whether it could be technically interesting to couple some X-ray imaging with sophisticated magnetic resonance imaging, there seems to be at first sight an intrinsic complementarity between: on the one hand, some X-ray imaging, o dedicated to enhancing bone structure within patient body, and on the other hand, magnetic resonance imaging, o dedicated to enhancing soft tissue within patient body, so as to get a full and complete picture of the inside of patient body.
[0016] This complementarity would appear at first sight to be more interesting between X-ray computed tomography and magnetic resonance imaging, because: both X-ray computed tomography and magnetic resonance imaging are performed: o performed during a long time,
[0017] ■ on a patient lying still in horizontal position, o providing for a 3D reconstruction,
[0018] ■ rather fine,
[0019] ■ but on a quite limited part of patient body, corresponding to a relatively small region of interest within patient body, o to the cost of both:
[0020] ■ a high global radiation dose received by the patient,
[0021] ■ a high level of magnetic field produced by the apparatus,
[0022] ■ leading therefore to rare performance on rather small region of interest within patient body.
[0023] However, there would be still an important obstacle to overcome: computed tomography requires an apparatus with bulky metallic parts, and especially with moving bulky metallic parts, magnetic resonance imaging needs a high magnetic field, hence the coupling between on the one hand these bulky metallic parts and on the other hand this high magnetic field would run the risk of disturbing correct working of this magnetic resonance imaging.
[0024] On the contrary, there would seem to be at first sight a practical duality between: on the one hand, simple bidirectional (frontal and lateral) 2D X-ray imaging, o performed by vertical scanning, ■ during a short time, o providing for a 3D reconstruction,
[0025] ■ relatively coarse,
[0026] ■ but on a rather large part of patient body, and on the other hand, sophisticated magnetic resonance imaging, o performed by horizontal scanning,
[0027] ■ during a long time, o providing for a 3D reconstruction,
[0028] ■ finer,
[0029] ■ but on a notably more limited part of patient body.
[0030] Further, indeed, the apparently low compatibility between simple bidirectional (frontal and lateral) 2D X-ray imaging and sophisticated magnetic resonance imaging, would be deeply improved by the invention which proposes: first, to use a very small level of magnetic field associated with a very sensitive detection system, to avoid former detrimental coupling between metallic parts of apparatus and surrounding magnetic field, while still being able to precisely detect variations of such a small level of magnetic field, and second, creating interesting synergy between both these simple frontal and lateral 2D X-ray imaging and sophisticated magnetic resonance imaging, simple frontal and lateral 2D X-ray imaging helping better focusing of sophisticated magnetic resonance imaging on a specific region of interest while at the same time sophisticated magnetic resonance imaging improving image quality of 3D reconstruction from simple frontal and lateral 2D X-ray imaging on this specific region of interest, both leading to improved diagnosis derived from each patient imaging, thereby reducing the number of needed patient imaging in due course of time, o indeed, magnetic resonance imaging usually performs a scout view to better focus on the region of interest, such scout view can be cancelled, because either the scout view of the first and second vertical scanning or the first and second vertical scanning can replace the usual magnetic resonance imaging scout view.
[0031] Besides, such a newly proposed combination would lead to a drastic reduction of the global weight of the radiological apparatus which would integrate together both frontal and lateral 2D X-ray imaging and magnetic resonance imaging. Indeed, the huge magnets weighting one or more tons, needed to provide a magnetic field of one or more Tesla, would no more be needed. This object is achieved with a method of radiography of at least a portion of a height of a patient body in standing position, comprising:
[0032] - one or more first vertical scanning of said portion of patient body height by a first radiation source and a first radiation detector cooperating to make a first 2D image of a first part of said portion of patient body height,
[0033] - one or more second vertical scanning of said portion of patient body height by a second radiation source and a second radiation detector cooperating to make a second 2D image of said first part of said portion of patient body height,
[0034] - said first vertical scanning and said second vertical scanning being performed synchronously,
[0035] - said first and second 2D images viewing said first part of said portion of patient body height according to different angles of incidence, wherein further comprising: making a patient specific 3D reconstruction on at least a second part of said portion of patient body height, at least combining therefore together both said first and second 2D images with complementary data, making a computed tomography of said second part of said portion of patient body height, said second part of said portion of patient body height being shorter, or at least twice shorter, than said first part of said portion of patient body height, o said second part of said portion of patient body height being determined by at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning, said complementary data, used to make said patient specific 3D reconstruction on at least said second part of said portion of patient body height, comprising said computed tomography of said second part of said portion of patient body height, making a magnetic resonance imaging of a third part of said portion of patient body height, said third part of said portion of patient body height being shorter, or at least twice shorter, than said first part of said portion of patient body height, o said third part of said portion of patient body height being determined:
[0036] ■ by at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning,
[0037] ■ and / or by said computed tomography, o said third part of said portion of patient body height at least overlapping with said second part of said portion of patient body height, or preferably being substantively equal to said second part of said portion of patient body height, o said magnetic resonance imaging being performed:
[0038] ■ with a magnetic field of less than 20 milli-Tesla,
[0039] ■ associated to a cryogenic quantum detector.
[0040] The magnetic field is the main magnetic field.
[0041] The magnetic field is a static polarization magnetic field oriented in the vertical direction. This static polarization magnetic field is of less than 20 milli-Tesla, or between 0.1 milli-Tesla and 10 milli-Tesla or between 0.5 milli-Tesla and 5 milli-Tesla.
[0042] The magnetic field is preferably created by using a first coil located in a horizontal plan above the patient, which means it is located in the top of a radiological apparatus implementing the method of radiology according to the invention, a second coil located in a horizontal plan below the patient, which means it is located in the bottom of a radiological apparatus implementing the method of radiology according to the invention.
[0043] Said computed tomography of said second part of said portion of patient body height comprises preferably: first computed tomography images made by a first computed tomography source associated to a first computed tomography detector according to different incidences, advantageously a set of frontal computed tomography images made by a frontal computed tomography source associated to a frontal computed tomography detector according to different incidences in the frontal region, second computed tomography images made by a second computed tomography source associated to a second computed tomography detector according to different incidences, advantageously a set of lateral computed tomography images made by a lateral computed tomography source associated to a lateral computed tomography detector according to different incidences in the lateral region.
[0044] All in all, depending on contemplated embodiments, obtained advantages are: the aforementioned synergy created between these simple frontal and lateral 2D X- ray imaging and the complex computed tomography altogether with the sophisticated magnetic resonance imaging is improved, and / or the aforementioned reduction of global weight is more important, as well as well as the aforementioned reduction of weight of the movable parts, altogether with the aforementioned reduction of the momentum of these movable parts, and / or the aforementioned compatibility between simple bidirectional (frontal and lateral) 2D X-ray imaging and sophisticated magnetic resonance imaging is further improved.
[0045] Preferred embodiments comprise one or more of the following features, which can be taken separately or together, either in partial combination or in full combination.
[0046] Preferably, said determined third part of said portion of patient body height is deduced by performing a segmentation of said computed tomography.
[0047] Hence, the aforementioned synergy created between these simple frontal and lateral 2D X-ray imaging and the complex computed tomography altogether with the sophisticated magnetic resonance imaging is improved.
[0048] Preferably, said magnetic resonance imaging is performed after performance of said first vertical scanning and said second vertical scanning and after performance of said computed tomography, said magnetic resonance imaging being performed preferably after performance of said computed tomography,
[0049] Hence, the aforementioned synergy created between both these simple frontal and lateral 2D X-ray imaging and sophisticated magnetic resonance imaging, preferably altogether with complex computed tomography, is deeply improved, the use of standard 2D images and / or computed tomography as scout view for magnetic resonance imaging leading to an even better focusing of the region of interest for the magnetic resonance imaging.
[0050] Preferably, said magnetic resonance imaging being performed during performance of said first vertical scanning and said second vertical scanning, said magnetic resonance imaging being performed preferably simultaneously with performance of said computed tomography,
[0051] Hence, the aforementioned synergy created between both these simple frontal and lateral 2D X-ray imaging and sophisticated magnetic resonance imaging, preferably altogether with complex computed tomography, is improved, while an accurate and permanent correspondence between on the one hand 2D images and / or computed tomography and on the other hand magnetic resonance imaging is kept.
[0052] Preferably, said magnetic resonance imaging is performed with a magnetic field between 0.1 milli-Tesla and 10 milli-Tesla or between 0.5 milli-Tesla and 5 milli-Tesla.
[0053] Hence, the aforementioned compatibility between simple bidirectional (frontal and lateral) 2D X-ray imaging and sophisticated magnetic resonance imaging is further improved.
[0054] Preferably, said cryogenic quantum detector is a superconducting quantum interference device (SQUID) which is refrigerated by a cryogenic refrigeration system.
[0055] Hence, the aforementioned compatibility between simple bidirectional (frontal and lateral) 2D X-ray imaging and sophisticated magnetic resonance imaging is further improved. Preferably, said superconducting quantum interference device is a low critic temperature superconducting quantum interference device.
[0056] Hence, the Signal to Noise Ratio of the signal detected by the superconducting quantum interference device is further improved.
[0057] Preferably, to detect variations of said magnetic field, there is a use of: a flux transformer disposed upstream of said superconducting quantum interference device, a primary detection antenna disposed upstream of said flux transformer.
[0058] Hence, the Signal to Noise Ratio of the signal detected by the superconducting quantum interference device is further improved.
[0059] Preferably, said magnetic resonance imaging is performed by using a magnetic field detection antenna which: is transparent to X-ray radiation, is vertically mobile so as to cover at least partly or fully said third part of said portion of patient body height during performance of said first vertical scanning and said second vertical scanning.
[0060] Hence, the aforementioned compatibility between simple bidirectional (frontal and lateral) 2D X-ray imaging and sophisticated magnetic resonance imaging is further improved.
[0061] Preferably, said magnetic field detection antenna surrounds the patient body so as to also perform the function of a brace so as to maintain patient body immobile during performance of said first vertical scanning and said second vertical scanning.
[0062] Hence, not only is the aforementioned compatibility between simple bidirectional (frontal and lateral) 2D X-ray imaging and sophisticated magnetic resonance imaging further improved, but also the intrinsic quality of the 2D images is further improved, thanks to the magnetic field detection antenna thereby fulfilling a double function, both detecting variations of magnetic field so as to bring additional information to X-rays 2D images and simultaneously avoiding patient parasitic moves so as to further improve the X-rays 2D images intrinsic quality.
[0063] Preferably, said patient belongs to a first category of people with pacemakers and / or metallic fragments and / or metallic implants.
[0064] Hence, the very use of a very small level of magnetic field associated with a very sensitive detection system, so as to avoid former detrimental coupling between metallic parts of apparatus and surrounding magnetic field, offers to this specific first category of patients a very safe radiography process as well as still kept efficient.
[0065] Preferably, said complementary data, used to make said patient specific 3D reconstruction on at least said third part of said portion of patient body height, also comprise said magnetic resonance imaging of said third part of said portion of patient body height,
[0066] Hence, the aforementioned synergy created between both these simple frontal and lateral 2D X-ray imaging and magnetic resonance imaging is improved. Preferably, said complementary data, used to make said patient specific 3D reconstruction on at least said second part of said portion of patient body height, also comprise 3D generic data.
[0067] Hence, the patient specific 3D reconstruction is made more precise and more accurate.
[0068] Preferably, said magnetic resonance imaging is performed with a static polarization magnetic field oriented in the vertical direction, said static polarization magnetic field being of less than 20 milli-Tesla, or between 0.1 milli-Tesla and 10 milli-Tesla or between 0.5 milliTesla and 5 milli-Tesla, by using a first coil located in a horizontal plane above the patient, a second coil located in a horizontal plane below the patient.
[0069] Hence, the magnetic resonance imaging can be performed in a way which is both simpler and more efficient.
[0070] Preferably, said magnetic resonance imaging is performed by correcting the inhomogeneities of said static polarization magnetic field, so as to make said static polarization magnetic field more homogeneous, by adding one or more shim coils, which are located either within said first coil and / or within said second coil, or in at least a vertical panel of a gantry cover of a radiological apparatus implemented the method of radiography.
[0071] Hence, the magnetic resonance imaging can be performed in a way which is both simpler and more efficient.
[0072] Preferably, said magnetic resonance imaging is performed by creating gradients in the X, Y and Z directions of said static polarization magnetic field, by adding one or more gradient coils, which are located either within said first coil and / or within said second coil, or in at least a vertical panel of a gantry cover of a radiological apparatus implemented the method of radiography.
[0073] Hence, the magnetic resonance imaging can be performed in a way which is both simpler and more efficient.
[0074] There is another object of the invention, which can be used either alternatively to previously described method of radiography with or without all or part of its options previously described, or simultaneously with previously described method of radiography with or without all or part of its options previously described so as to improve this previously described method of radiography with or without all or part of its options previously described.
[0075] This another object is achieved with a method of radiography of at least a portion of a height of a patient body in standing position, comprising: - one or more first vertical scanning of said portion of patient body height by a first radiation source and a first radiation detector cooperating to make a first 2D image of a first part of said portion of patient body height,
[0076] - one or more second vertical scanning of said portion of patient body height by a second radiation source and a second radiation detector cooperating to make a second 2D image of said first part of said portion of patient body height,
[0077] - said first vertical scanning and said second vertical scanning being performed synchronously,
[0078] - said first and second 2D images viewing said first part of said portion of patient body height according to different angles of incidence, wherein further comprising: making a patient specific 3D reconstruction on at least a second part of said portion of patient body height, at least combining therefore together both said first and second 2D images with complementary data, making a computed tomography of said second part of said portion of patient body height, said second part of said portion of patient body height being shorter, or at least twice shorter, than said first part of said portion of patient body height, o said second part of said portion of patient body height being determined by at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning, said complementary data, used to make said patient specific 3D reconstruction on at least said second part of said portion of patient body height, comprising said computed tomography of said second part of said portion of patient body height.
[0079] Preferably, said complementary data, used to make said patient specific 3D reconstruction on at least said second part of said portion of patient body height, also comprise 3D generic data.
[0080] Hence, the patient specific 3D reconstruction is made more precise and more accurate.
[0081] Preferably, making a patient specific 3D reconstruction on at least a second part of said portion of patient body height, at least combining therefore together both said first and second 2D images with complementary data, comprises: making as patient specific modeling, a patient specific provisional 3D reconstruction on at least said first part of said portion of patient body height, using both: as patient specific data therefore, at least both first and second 2D images, as generic data therefore, a 3D generic model, and as modeling process therefore, a process combining said both first and second 2D images with said 3D generic model so as to get at said patient specific provisional 3D reconstruction, said complementary data, used to make said patient specific 3D reconstruction on at least said second part of said portion of patient body height, are used so as to upgrade said patient specific provisional 3D reconstruction into a patient specific final 3D reconstruction of said second part of said portion of patient body height by modifying, or by enriching and / or correcting, said patient specific provisional 3D reconstruction with said computed tomography of said second part of said portion of patient body height.
[0082] Hence, the patient specific 3D reconstruction is made more precise and more accurate.
[0083] Preferably, said modeling process uses artificial intelligence, and preferably uses deep learning or generative adversarial network.
[0084] Hence, the patient specific 3D reconstruction is made more precise and more accurate.
[0085] Preferably, said first vertical scanning and said second vertical scanning are performed a first time to build a respectively first and second scout views, said first vertical scanning and said second vertical scanning are performed a second time so as to build respectively first and second 2D images therefrom, based on said first and second scout views, said computed tomography is performed during second time performance of said first vertical scanning and said second vertical scanning, said second part of said portion of patient body height is determined by said first vertical scanning during said first time by said second vertical scanning during said first time.
[0086] Hence, the aforementioned synergy created between both these simple frontal and lateral 2D X-ray imaging and complex computed tomography is improved, while an accurate and permanent correspondence between 2D images and computed tomography is kept.
[0087] Preferably, said first vertical scanning and said second vertical scanning are performed a first time to build a respectively first and second scout views, said first vertical scanning and said second vertical scanning are performed a second time so as to build respectively first and second 2D images therefrom, based on said first and second scout views, said computed tomography is performed after second time performance of said first vertical scanning and said second vertical scanning, said second part of said portion of patient body height is determined by said first vertical scanning during said second time by said second vertical scanning during said second time.
[0088] Hence, the aforementioned synergy created between both these simple frontal and lateral 2D X-ray imaging and complex computed tomography is deeply improved, the use of standard 2D images as scout view for computed tomography leading to an even better focusing of the region of interest for the computed tomography. Preferably, the radiography method also uses: a first computed tomography source associated to a first computed tomography detector, both sliding vertically together so as to perform a frontal vertical scanning of a second part of a patient body height, said second part being smaller than said first part, a second computed tomography source associated to a second computed tomography detector, both sliding vertically together so as to perform a lateral vertical scanning of said second part of a patient body height, a first vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the first vertical scanning, both: the first radiation source, and the first computed tomography detector, a second vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the second vertical scanning, both: the second radiation source, and the second computed tomography detector, a third vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the first vertical scanning, both: the first radiation detector, and the first computed tomography source, a fourth vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the second vertical scanning, both: the second radiation detector, and the second computed tomography source.
[0089] Hence, this specific implementation of sources and detectors within the radiological apparatus leads to a substantive reduction of global weight is more important, as well as well as a substantive reduction of weight of the movable parts, altogether with a substantive reduction of the momentum of these movable parts.
[0090] Preferably, the computed tomography is performed by the cooperation of: at least one computed tomography source which is a distributed source comprising at least one line array of emitters, which is both: vertically mobile during performance of said first vertical scanning and said second vertical scanning, and horizontally static during performance of said first vertical scanning and said second vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least one computed tomography detector, so as to build the computed tomography of said second part of said portion of patient body height.
[0091] Hence, this specific implementation of sources and detectors within the radiological apparatus leads to a substantive reduction of global weight is more important, as well as well as a substantive reduction of weight of the movable parts, altogether with a substantive reduction of the momentum of these movable parts.
[0092] Preferably, said emitters are between 10 and 100 emitters, or between 15 and 70 emitters or between 20 and 50 emitters.
[0093] Preferably, said emitters are pulsed emitters. Preferably, said emitters are cold cathode X-ray emitters.
[0094] Hence, this specific implementation of sources and detectors within the radiological apparatus improves the reduction of global weight is more important, as well as well as the reduction of weight of the movable parts, altogether with the reduction of the momentum of these movable parts.
[0095] Preferably, said cold cathode X-ray emitters are either carbon nano tubes based cold cathode X-ray emitters, or silicon based cold cathode X-ray emitters, or field emission electron based cold cathode X-ray emitters.
[0096] Preferably, said first and second detectors are multi-energy counting detectors, preferably Energy Resolved Photon Counting Detectors (ERPCD), with at least two energy bins or with at least four energy bins or with at least six energy bins, and / or with at most ten energy bins.
[0097] Hence, the patient specific 3D reconstruction is made more precise and more accurate.
[0098] Preferably, there is a first vertical gap between on the one hand said first radiation source and radiation detector and on the other hand said second radiation source and radiation detector, such that said first vertical scanning and said second vertical scanning are performed synchronously but with a first time shift in between, so as to further reduce cross-scattering between said first and second 2D images.
[0099] Hence, the cross-scattering between X-rays with different incidences on patient body is reduced, while keeping a good global compacity and rather low global weight of the radiological apparatus.
[0100] Preferably, a first scattering rejection grid is located upstream said first computed tomography detector so as to reduce cross-scattering between a first image made by said first computed tomography detector and a second image made by said second computed tomography detector of computed tomography and to reduce self- scattering in said first image made by said first computed tomography detector, a second scattering rejection grid is located upstream said second computed tomography detector so as to reduce cross-scattering between a first image made by said first computed tomography detector and a second image made by said second computed tomography detector of computed tomography and to reduce self- scattering in said second image made by said second computed tomography detector.
[0101] Advantageously too, emissions of first computed tomography source, usually the frontal computed tomography source, and emissions of second computed tomography source, usually lateral computed tomography source, can be alternated so as to further reduce this crossscattering. Hence, the cross-scattering between X-rays with different incidences on patient body is reduced, while keeping a good global compacity and rather low global weight of the radiological apparatus.
[0102] Preferably, a first collimation tunnel is located upstream said first radiation detector so as to further reduce cross-scattering between said first and second 2D images, a second collimation tunnel is located upstream said second radiation detector so as to further reduce cross-scattering between said first and second 2D images.
[0103] Hence, the cross-scattering between X-rays with different incidences on patient body is further reduced, while keeping a good global compacity and rather low global weight of the radiological apparatus.
[0104] Preferably, said first vertical gap is comprised between 1cm and 5cm, advantageously between 1.5cm and 3cm.
[0105] Hence, the cross-scattering between X-rays with different incidences on patient body is further reduced, while keeping a good global compacity and rather low global weight of the radiological apparatus.
[0106] Preferably, the radiology method uses: a first computed tomography source associated to a first computed tomography detector, both sliding vertically together so as to perform a frontal vertical scanning of a second part of a patient body height, said second part being smaller than said first part, a second computed tomography source associated to a second computed tomography detector, both sliding vertically together so as to perform a lateral vertical scanning of said second part of a patient body height, there is a second vertical gap, between said first radiation source and said first computed tomography source, as well as between said second radiation source and said second computed tomography source, such that said first vertical scanning and said second vertical scanning are performed synchronously but with a second time shift in between, so as to reduce cross-scattering between on the one hand said first and second 2D images and on the other hand said computed tomography.
[0107] Hence, the cross-scattering between X-rays with different incidences on patient body is further reduced, while keeping a good global compacity and rather low global weight of the radiological apparatus.
[0108] Preferably, said second vertical gap: is comprised between 25% and 150% of the height of said first computed tomography detector and between 25% and 150% of the height of said second computed tomography detector, advantageously between 50% and 100% of the height of said first computed tomography detector and between 50% and 100% of the height of said second computed tomography detector, and / or is comprised between 3cm and 20cm, advantageously between 5cm and 12cm. Hence, the cross-scattering between X-rays with different incidences on patient body is further reduced, while keeping a good global compacity and rather low global weight of the radiological apparatus.
[0109] Preferably, said patient specific provisional 3D reconstruction is upgraded into a patient specific final 3D reconstruction by using as complementary data not the raw computed tomography images but corrected computed tomography images which are obtained by upgrading the raw computed tomography images by an artificial intelligence process so as to reduce cross-scattering effect between first and second computed tomography images respectively made by first and second computed tomography detectors and / or so as to reduce self- scattering effect on first and second computed tomography images respectively made by first and second computed tomography detectors.
[0110] Hence, the patient specific 3D reconstruction is made more precise and more accurate.
[0111] Preferably, said artificial intelligence process either is a deep learning process or uses a generative adversarial network, so as to reduce cross-scattering effect between first and second computed tomography images respectively made by first and second computed tomography detectors and / or so as to reduce self-scattering effect on first and second computed tomography images respectively made by first and second computed tomography detectors.
[0112] There is still another object of the invention, which can be used either alternatively to previously described radiography method(s) with or without all or part of its options previously described, or simultaneously with previously described radiography method(s) with or without all or part of its options previously described so as to implement this previously described radiography method(s) with or without all or part of its options previously described.
[0113] This still another object is achieved with a radiological apparatus comprising: a gantry encapsulated within a cover, a patient platform, a frontal radiation source associated to a frontal radiation detector, both sliding vertically together so as to perform a frontal vertical scanning of a patient standing on said platform, a lateral radiation source associated to a lateral radiation detector, both sliding vertically together so as to perform a lateral vertical scanning of a patient standing on said platform, wherein it also comprises: a frontal computed tomography source associated to a frontal computed tomography detector, both sliding vertically together so as to perform a frontal vertical scanning of a patient standing on said platform, a lateral computed tomography source associated to a lateral computed tomography detector, both sliding vertically together so as to perform a lateral vertical scanning of a patient standing on said platform, wherein it also comprises: a first frontal vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the frontal vertical scanning, both: o the frontal radiation source being located outside the gantry cover, o and the frontal computed tomography detector being located outside the gantry cover, a second lateral vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the lateral vertical scanning, both: o the lateral radiation source being located outside the gantry cover, o and the lateral computed tomography detector being located outside the gantry cover, a third frontal vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the frontal vertical scanning, both: o the frontal radiation detector being located inside the gantry cover, o and the frontal computed tomography source being located inside the gantry cover, a fourth lateral vertically sliding support mechanically linking together, so that they remain immobile with respect to each other during the lateral vertical scanning, both: o the lateral radiation detector being located inside the gantry cover, o and the lateral computed tomography source being located inside the gantry cover, and wherein: the first frontal vertically sliding support and the third frontal vertically sliding support are mechanically independent from each other so that they could vertically slide independently from each other, the second lateral vertically sliding support and the fourth lateral vertically sliding support are mechanically independent from each other so that they could vertically slide independently from each other. Indeed, integrating into a single common radiological apparatus both a frontal and lateral 2D X-ray imaging system and a computed tomography system should at first sight lead to a very big, very heavy and very bulky, radiological apparatus. A too big, heavy and bulky, radiological apparatus presents many drawbacks, among which the need for specific reinforced rooms floors to support it, and specific installation processes to bring it into hospitals.
[0114] Moreover, such common radiological apparatus should have big, heavy and bulky, movable parts, and among them some big, heavy and bulky, visible movable parts which could run the risk of a collision with the patient during performance of X-ray imaging, if for instance the patient cannot remain completely quiet and still. Too big, heavy and bulky, movable parts of a radiological apparatus present many drawbacks, among which limited scanning speed and specific braking systems to be able to curtail the movable parts when needed in safe conditions, and especially the visible movable parts for which the security braking constraints are notably harder than for invisible movables parts. Visible movables parts are parts that can be seen and touched accidentally by a patient which does not remain completely quiet and still during performance of X-ray imaging, whereas invisible movables parts are parts that cannot be seen nor touched accidentally by a patient which does not remain completely quiet and still during performance of X-ray imaging because such invisible movables parts are within a closed cover or within a fully enclosed housing.
[0115] Therefore, it is advantageous to reduce drastically the global weight: first of the whole common radiological apparatus integrating together both a frontal and lateral 2D X-ray imaging system and a computed tomography system, second of the movable parts of this whole common radiological apparatus, as well as the momentum of these movable parts by making shorter the distance between masses and their respective supports, and third especially of the visible movable parts of this whole common radiological apparatus, as well as the momentum of these movables parts by making shorter the distance between masses and their respective supports.
[0116] Therefore it is proposed a specific implementation of the different sources and detectors, both of simple 2D X-ray imaging and of computed tomography, altogether with a head to tail distribution of sources and detectors (source of 2D X-ray with detector of computed tomography, and source of computed tomography with detector of 2D X-ray), and without needing to implement the classical C-arms which linked mechanically each type of source to the associated type of detector so that there was an exact correspondence between source and associated detector by mechanical construction. This lack of mechanical link between each source and associated detector could however require some software correction to precisely reestablish such correspondence.
[0117] Preferably, the third frontal vertically sliding support and the fourth lateral vertically sliding support are mechanically independent from each other so that they could vertically slide independently from each other.
[0118] Hence, the aforementioned reduction of global weight is more important, as well as well as the aforementioned reduction of weight of the movable parts, altogether with the aforementioned reduction of the momentum of these movable parts.
[0119] Preferably, the radiological apparatus also comprises: a third column along which the third frontal vertically sliding support is vertically sliding, a fourth column along which the fourth lateral vertically sliding support is vertically sliding, the third column and the fourth column being mechanically independent from each other so that: neither the third column supports any weight of the fourth lateral vertically sliding support, nor the fourth column supports any weight of the third frontal vertically sliding support.
[0120] Hence, the aforementioned reduction of global weight is more important, as well as well as the aforementioned reduction of weight of the movable parts, altogether with the aforementioned reduction of the momentum of these movable parts.
[0121] Preferably, the third frontal vertically sliding support and the fourth lateral vertically sliding support are mechanically linked together so that they can vertically slide only together while remaining immobile with respect to each other during frontal and lateral vertical scanning.
[0122] Preferably, the radiological apparatus also comprises: a vertical pilar along which a horizontal bar supporting both the third frontal vertically sliding support and the fourth lateral vertically sliding support is vertically sliding, said pilar being in a comer of said encapsulated gantry.
[0123] Preferably, each of said frontal and lateral radiation sources is an X-ray tube encapsulated within a housing, with at least a liquid metal bearing located between a rotating anode of said X-ray tube and an envelope of said X-ray tube, said envelope maintaining vacuum inside said X-ray tube.
[0124] Hence, the momentum of these movable parts is more regularly and more evenly distributed because the level of internal vibrations of said frontal and lateral radiation sources is reduced.
[0125] Preferably, said gantry cover top view is L shaped, each of said frontal and lateral radiation sources is located outside said L shaped gantry cover, inside angular sector of said L, and is encapsulated within a housing sliding vertically with said radiation source it encapsulates. Hence, the good global compacity of the whole radiological apparatus is still improved while the global weight of this radiological apparatus is kept rather low.
[0126] Preferably, in a square array having three rows from A to C and three columns from 1 to 3: said L shaped gantry cover top view recovers squares Cl, C2, C3, B3, A3, said frontal and lateral radiation sources housings are respectively located within squares Bl and A2, said patient platform recovers square B2, square Al remains entirely free and void.
[0127] Hence, the good global compacity of the whole radiological apparatus is still improved while the global weight of this radiological apparatus is kept rather low.
[0128] There is still another object of the invention, which can be used either alternatively to previously described objects of the invention with or without all or part of its options previously described, or simultaneously with previously described objects of the invention with or without all or part of its options previously described.
[0129] It is still another object of the invention to provide for a method of radiography of at least a portion of a height of a patient body in standing position, comprising:
[0130] - one or more first vertical scanning of said portion of patient body height by a first radiation source and a first radiation detector cooperating to make a first 2D image of at least part of said portion of patient body height,
[0131] - one or more second vertical scanning of said portion of patient body height by a second radiation source and a second radiation detector cooperating to make a second 2D image of at least part of said portion of patient body height,
[0132] - said first vertical scanning and said second vertical scanning being performed synchronously,
[0133] - said first and second 2D images viewing at least part of said portion of patient body height according to different angles of incidence, preferably a frontal 2D image and a lateral 2D image, said frontal 2D image and said lateral 2D image being orthogonal to each other,
[0134] - one or more third vertical scanning of said portion of patient body height by a first computed tomography source and a first computed tomography detector cooperating to make first computed tomography images of at least part of said portion of patient body height,
[0135] - one or more fourth vertical scanning of said portion of patient body height by a second computed tomography source and a second computed tomography detector cooperating to make second computed tomography images of at least part of said portion of patient body height,
[0136] - said third vertical scanning and said fourth vertical scanning being performed synchronously, - said first and second computed tomography images viewing at least part of said portion of patient body height according to different angles of incidence, preferably frontal computed tomography images and lateral computed tomography images, said frontal computed tomography images and said lateral computed tomography images being orthogonal to each other, at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning and at least one of said one or more third vertical scanning and at least one of said one or more fourth vertical scanning being all performed synchronously, wherein there is a first vertical gap between on the one hand said first radiation source and said first radiation detector and on the other hand said second radiation source and said second radiation detector, such that said at least one first vertical scanning and said at least one second vertical scanning are performed synchronously but with a first time shift in between, so as to reduce cross-scattering between said first and second 2D images, and wherein there is a second vertical gap between on the one hand said first radiation source and said first radiation detector and on the other hand said first computed tomography source and said first computed tomography detector, preferably as well as between on the one hand said second radiation source and said second radiation detector and on the other hand said second computed tomography source and said second computed tomography detector, such that said at least one first vertical scanning and said at least one third vertical scanning are performed synchronously but with a second time shift in between, so as to reduce cross-scattering between said first 2D image and said first computed tomography images, and preferably such that said at least one second vertical scanning and said at least one fourth vertical scanning are performed synchronously but with the second time shift in between, so as to reduce cross-scattering between said second 2D image and said second computed tomography images.
[0137] Preferably, said second vertical gap is larger than said first vertical gap, advantageously said second vertical gap is twice larger than said first vertical gap.
[0138] Preferably, said first computed tomography source is a distributed source comprising at least one line array of emitters, advantageously between 10 and 100 emitters, which is both vertically mobile during performance of said third vertical scanning, and horizontally static during performance of said third vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least said first computed tomography detector, so as to build said first computed tomography images, and said second computed tomography source is a distributed source comprising at least one line array of emitters, advantageously between 10 and 100 emitters, which is both vertically mobile during performance of said fourth vertical scanning, and horizontally static during performance of said fourth vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least said second computed tomography detector, so as to build said second computed tomography images.
[0139] There is still another object of the invention, which can be used either alternatively to previously described objects of the invention with or without all or part of its options previously described, or simultaneously with previously described objects of the invention with or without all or part of its options previously described.
[0140] It is still another object of the invention to provide for a method of radiography of at least a portion of a height of a patient body in standing position, comprising:
[0141] - one or more first vertical scanning of said portion of patient body height by a first radiation source and a first radiation detector cooperating to make a first 2D image of at least part of said portion of patient body height,
[0142] - one or more second vertical scanning of said portion of patient body height by a second radiation source and a second radiation detector cooperating to make a second 2D image of at least part of said portion of patient body height,
[0143] - said first vertical scanning and said second vertical scanning being performed synchronously,
[0144] - said first and second 2D images viewing at least part of said portion of patient body height according to different angles of incidence, preferably a frontal 2D image and a lateral 2D image, said frontal 2D image and said lateral 2D image being orthogonal to each other,
[0145] - one or more third vertical scanning of said portion of patient body height by a first computed tomography source and a first computed tomography detector cooperating to make first computed tomography images of at least part of said portion of patient body height,
[0146] - one or more fourth vertical scanning of said portion of patient body height by a second computed tomography source and a second computed tomography detector cooperating to make second computed tomography images of at least part of said portion of patient body height,
[0147] - said third vertical scanning and said fourth vertical scanning being performed synchronously,
[0148] - said first and second computed tomography images viewing at least part of said portion of patient body height according to different angles of incidence, preferably frontal computed tomography images and lateral computed tomography images, said frontal computed tomography images and said lateral computed tomography images being orthogonal to each other, at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning and at least one of said one or more third vertical scanning and at least one of said one or more fourth vertical scanning being all performed synchronously, wherein there is a vertical gap between on the one hand said first radiation source and said first radiation detector and on the other hand said first computed tomography source and said first computed tomography detector, preferably as well as between on the one hand said second radiation source and said second radiation detector and on the other hand said second computed tomography source and said second computed tomography detector, such that said at least one first vertical scanning and said at least one third vertical scanning are performed synchronously but with a time shift in between, so as to reduce cross-scattering between said first 2D image and said first computed tomography images, and preferably such that said at least one second vertical scanning and said at least one fourth vertical scanning are performed synchronously but with the second time shift in between, so as to reduce cross-scattering between said second 2D image and said second computed tomography images.
[0149] Preferably, said first computed tomography source is a distributed source comprising at least one line array of emitters, advantageously between 10 and 100 emitters, which is both vertically mobile during performance of said third vertical scanning, and horizontally static during performance of said third vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least said first computed tomography detector, so as to build said first computed tomography images, and said second computed tomography source is a distributed source comprising at least one line array of emitters, advantageously between 10 and 100 emitters, which is both vertically mobile during performance of said fourth vertical scanning, and horizontally static during performance of said fourth vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least said second computed tomography detector, so as to build said second computed tomography images.
[0150] There is still another object of the invention, which can be used either alternatively to previously described objects of the invention with or without all or part of its options previously described, or simultaneously with previously described objects of the invention with or without all or part of its options previously described.
[0151] It is still another object of the invention to provide for a method of radiography of at least a portion of a height of a patient body in standing position, comprising: - one or more first vertical scanning of said portion of patient body height by a first computed tomography source and a first computed tomography detector cooperating to make first computed tomography images of at least part of said portion of patient body height,
[0152] - one or more second vertical scanning of said portion of patient body height by a second computed tomography source and a second computed tomography detector cooperating to make second computed tomography images of at least part of said portion of patient body height,
[0153] - said first vertical scanning and said second vertical scanning being performed synchronously,
[0154] - said first and second computed tomography images viewing at least part of said portion of patient body height according to different angles of incidence, preferably frontal computed tomography images and lateral computed tomography images, said frontal computed tomography images and said lateral computed tomography images being orthogonal to each other, wherein there is a vertical gap between on the one hand said first computed tomography source and said first computed tomography detector and on the other hand said second computed tomography source and said second computed tomography detector, such that said at least one first vertical scanning and said at least one second vertical scanning are performed synchronously but with a time shift in between, so as to reduce cross-scattering between said first and second computed tomography images.
[0155] Preferably, said first computed tomography source is a distributed source comprising at least one line array of emitters, advantageously between 10 and 100 emitters, which is both vertically mobile during performance of said first vertical scanning, and horizontally static during performance of said first vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least said first computed tomography detector, so as to build said first computed tomography images, and said second computed tomography source is a distributed source comprising at least one line array of emitters, advantageously between 10 and 100 emitters, which is both vertically mobile during performance of said second vertical scanning, and horizontally static during performance of said second vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by said emitters progressing along said line array of emitters, with at least said second computed tomography detector, so as to build said second computed tomography images.
[0156] 2D means bi-dimensional, and 3D means tri-dimensional. Further features and advantages of the invention will appear from the following description of embodiments of the invention, given as non-limiting examples, with reference to the accompanying drawings listed hereunder.
[0157] BRIEF DESCRIPTION OF THE DRAWINGS
[0158] Fig. 1 shows an example of the radiological apparatus according to an embodiment of the invention, showing the vertical scanning in off mode, the computed tomography in off mode, and the magnetic resonance imaging both in off and on modes.
[0159] Fig. 2 shows an example of the radiological apparatus according to an embodiment of the invention, showing the vertical scanning in on mode, the computed tomography in off mode, and the magnetic resonance imaging both in off and on modes.
[0160] Fig. 3 shows an example of the radiological apparatus according to an embodiment of the invention, showing the vertical scanning in on mode, the computed tomography in on mode, and the magnetic resonance imaging both in off and on modes.
[0161] Fig. 4 shows an example of the radiological apparatus according to another embodiment of the invention, showing the vertical scanning in on mode, the computed tomography in on mode, and the magnetic resonance imaging both in off and on modes.
[0162] Fig. 5 shows an example of a preferred embodiment for frontal radiation source and lateral radiation source, as well as for frontal radiation detector and lateral radiation detector.
[0163] Fig. 6 shows an example of a preferred embodiment for frontal computed tomography source and lateral computed tomography source, as well as for frontal computed tomography detector and lateral computed tomography detector.
[0164] Fig. 7 shows an example of a first embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0165] Fig. 8 shows an example of a second embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0166] Fig. 9 shows an example of a third embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0167] Fig. 10 shows an example of a fourth embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0168] Fig. 11 shows an example of a fifth embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus. DETAILED DESCRIPTION OF THE INVENTION
[0169] On all figures, the space orientation is the following one: there is a vertical direction Z, a horizontal plane XY with a first horizontal direction X and a second horizontal direction Y, X being also called the frontal direction and Y the lateral direction. A frontal beam sent along the frontal direction X makes a frontal image or a frontal view of a patient, whereas a lateral beam sent along the lateral direction Y makes a lateral image or a lateral view of a patient. Vertical scanning and vertical sliding are performed along vertical direction Z. On all figures, the patient is referenced 50.
[0170] Fig. 1 shows an example of the radiological apparatus according to an embodiment of the invention, showing the vertical scanning in off mode, the computed tomography in off mode, and the magnetic resonance imaging both in off and on modes.
[0171] There is a radiological apparatus 1. This radiological apparatus 1 comprises a gantry 10 encapsulated within a cover (not shown on figures, in order to show all the internal parts of the radiological apparatus). A patient platform 6 is located in the middle of the gantry 10. During performance of the patient examination, the patient is standing vertically along direction Z, on this patient platform 6, which can be set up at different heights along direction Z, so as to adapt to different heights of different patients.
[0172] Advantageously, there are only two positions for this patient platform 6: either the feet of the patient are needed, and the platform 6 is in top position at about 30cm-40cm above the floor, or the feet of the patient are not needed, and the platform 6 is in bottom position close to the floor.
[0173] The gantry 10 comprises four column 11, 12, 13, 14, respectively bearing four vertically sliding supports 15, 16, 17, 18.
[0174] There are a first column 11 along which a first frontal vertically sliding support 15 is vertically sliding, a second column 12 along which a second lateral vertically sliding support 16 is vertically sliding, the first column 11 and the second column 12 being mechanically independent from each other so that, neither the first column 11 supports any weight of the second lateral vertically sliding support 16, nor the second column 12 supports any weight of the first frontal vertically sliding support 15.
[0175] The first frontal vertically sliding support 15 and the second lateral vertically sliding support 16 are mechanically independent from each other so that they could vertically slide independently from each other. There are a third column 13 along which the third frontal vertically sliding support 17 is vertically sliding, a fourth column 14 along which the fourth lateral vertically sliding support 18 is vertically sliding, the third column 13 and the fourth column 14 being mechanically independent from each other so that, neither the third column 13 supports any weight of the fourth lateral vertically sliding support 18, nor the fourth column 14 supports any weight of the third frontal vertically sliding support 17.
[0176] The third frontal vertically sliding support 17 and the fourth lateral vertically sliding support 18 are mechanically independent from each other so that they could vertically slide independently from each other.
[0177] The first frontal vertically sliding support 15 and the second lateral vertically sliding support 16 and the third frontal vertically sliding support 17 and the fourth lateral vertically sliding support 18 are all mechanically independent from one another, so that any vertically sliding support could vertically slide independently from the three other vertically sliding supports.
[0178] The first frontal vertically sliding support 15 and the second lateral vertically sliding support 16 are mechanically independent from each other so that they could vertically slide independently from each other.
[0179] The first frontal vertically sliding support 15 and the second lateral vertically sliding support 16 are both mechanically independent from one another, so that that they could vertically slide independently from both the third frontal vertically sliding support 17 and the fourth lateral vertically sliding support 18.
[0180] The radiological apparatus 1 also comprises: a frontal radiation source 21, a frontal radiation detector 23, a lateral radiation source 22, a lateral radiation detector 24, a frontal computed tomography source 31, a frontal computed tomography detector 33, a lateral computed tomography source 32, a lateral computed tomography detector 34.
[0181] The frontal radiation source 21 is associated to the frontal radiation detector 23, both sliding vertically together so as to perform a frontal vertical scanning of a patient standing on the platform 6.
[0182] The lateral radiation source 22 is associated to the lateral radiation detector 24, both sliding vertically together so as to perform a lateral vertical scanning of a patient standing on the platform 6.
[0183] Each of these frontal and lateral radiation sources 21 and 22 is an X-ray tube encapsulated within a housing, with at least a liquid metal bearing located between a rotating anode of this X-ray tube and an envelope of this X-ray tube, this envelope maintaining vacuum inside this X-ray tube. Preferably, the first and second radiation detectors 23 and 24 are multi-energy counting detectors, preferably Energy Resolved Photon Counting Detectors (ERPCD), with at least two energy bins or with at least four energy bins or with at least six energy bins, and / or with at most ten energy bins.
[0184] The frontal collimation tunnel 27 is located upstream the frontal radiation detector 23 so as to further reduce cross-scattering between the first and second 2D images, the lateral collimation tunnel 28 is located upstream the lateral radiation detector 24 so as to further reduce cross-scattering between said first and second 2D images.
[0185] The frontal computed tomography source 31 is associated to a frontal computed tomography detector 33, both sliding vertically together so as to perform a frontal vertical scanning of a patient standing on the platform 6.
[0186] The lateral computed tomography source 32 is associated to the lateral computed tomography detector 34, both sliding vertically together so as to perform a lateral vertical scanning of a patient standing on the platform 6.
[0187] Preferably too, a frontal scattering rejection grid (not shown on figures) is located upstream the frontal computed tomography detector 33 so as to reduce cross-scattering on the first and second computed tomography images and to reduce self- scattering in said first image made by said first computed tomography detector, a lateral scattering rejection grid (not shown on figures) is located upstream the lateral computed tomography detector 34 so as to reduce cross-scattering on the first and second computed tomography images and to reduce selfscattering in said second image made by said second computed tomography detector.
[0188] The first frontal vertically sliding support 15 mechanically links together, so that they remain immobile with respect to each other at least during the frontal vertical scanning, and also preferably permanently, both, the frontal radiation source 21 being located outside the gantry cover, and the frontal computed tomography detector 33 being located outside the gantry cover. The frontal tomography detector 33 is preferably located above the frontal radiation source 21.
[0189] The second lateral vertically sliding support 16 mechanically links together, so that they remain immobile with respect to each other at least during the lateral vertical scanning, and also preferably permanently, both, the lateral radiation source 22 being located outside the gantry cover, and the lateral computed tomography detector 34 being located outside the gantry cover. The lateral tomography detector 34 is preferably located above the lateral radiation source 22.
[0190] The third frontal vertically sliding support 17 mechanically links together, so that they remain immobile with respect to each other at least during the frontal vertical scanning, and also preferably permanently, both, the frontal radiation detector 23 being located inside the gantry cover, and the frontal computed tomography source 31 being located inside the gantry cover. The frontal tomography source 31 is preferably located above the frontal radiation detector 23.
[0191] The fourth lateral vertically sliding support 18 mechanically links together, so that they remain immobile with respect to each other at least during the lateral vertical scanning, and also preferably permanently, both, the lateral radiation detector 24 being located inside the gantry cover, and the lateral computed tomography source 32 being located inside the gantry cover. The lateral tomography source 32 is preferably located above the lateral radiation detector 24.
[0192] The radiological apparatus 1 also comprises a magnetic resonance imaging system which comprises: a first electric circuit 41, a second electric circuit 42, an antenna 43, a cryogenic quantum detection system 44 including a cryogenic quantum detector 45 cooled by a cryogenic refrigeration system 46.
[0193] There are vertical panels 51 and 52 of a gantry cover of a radiological apparatus implemented the method of radiography. The vertical panel 51 is in a first vertical plan YZ, behind the patient 50. The vertical plan 52 is in a second vertical plan XZ orthogonal to first vertical plan YZ and on the side of the patient 50. Both vertical panels 51 and 52 will be X-ray transparent.
[0194] Preferably, the gantry cover top view is L shaped, each of the frontal and lateral radiation sources 21 and 22 is located, outside this L shaped gantry cover, inside angular sector of this L, and is encapsulated within a housing sliding vertically with said radiation source 21 or 22 it encapsulates. Advantageously, in a square array having three rows from A to C and three columns from 1 to 3: this L shaped gantry cover top view recovers squares Cl, C2, C3, B3, A3, the frontal and lateral radiation sources 21 and 22 housings are respectively located within squares B 1 and A2, the patient platform 6 recovers square B2, square Al remains entirely free and void.
[0195] Fig. 2 shows an example of the radiological apparatus according to an embodiment of the invention, showing the vertical scanning in on mode, the computed tomography in off mode, and the magnetic resonance imaging both in off and on modes.
[0196] The frontal radiation source 21 is associated to a frontal collimator to narrow frontal emitted beam 25 toward standing patient 50. After going through standing patient 50, the frontal beam 25 enters in a frontal collimation tunnel 27 before reaching the sensitive surface of the frontal radiation detector 23. This frontal collimator is located just at the output of the frontal radiation source 21, whereas this frontal collimation tunnel 27 is located just at the input of the frontal radiation detector 23. Part of frontal beam 25 is cross-scattered toward the lateral radiation detector 24. After end of first vertical scanning, at the output of frontal radiation detector 23 there is a first 2D image, the frontal 2D image of a standing patient or of an organ of this standing patient. The height of frontal beam 25 considered is very small since it is the height of the frontal beam 25 which will enter the frontal collimation tunnel 27 before reaching the sensitive surface of the frontal radiation detector 23. Frontal beam 25 may practically be considered as a planar beam, as a horizontal planar beam.
[0197] The lateral radiation source 22 is associated to a lateral collimator to narrow lateral emitted beam 26 toward standing patient 50. After going through standing patient 50, the lateral beam 26 enters in a lateral collimation tunnel 28 before reaching the sensitive surface of the lateral radiation detector 24. This lateral collimator is located just at the output of the lateral radiation source 22, whereas this lateral collimation tunnel 28 is located just at the input of the lateral radiation detector 24. Part of lateral beam 26 is cross-scattered toward the frontal radiation detector 23. After end of second vertical scanning, at the output of lateral radiation detector 24 there is a second 2D image, the lateral 2D image of a standing patient or of an organ of this standing patient. The height of lateral beam 26 considered is very small since it is the height of the lateral beam 26 which will enter the lateral collimation tunnel 28 before reaching the sensitive surface of the lateral radiation detector 24. Lateral beam 26 may practically be considered as a planar beam, as a horizontal planar beam.
[0198] Preferably, there is a first vertical gap (not visible on figures since too small) between on the one hand the frontal radiation source 21 and the frontal radiation detector 23 and on the other hand the lateral radiation source 22 and the lateral radiation detector 24, such that the first vertical scanning and the second vertical scanning are performed synchronously but with a first time shift in between, so as to further reduce cross-scattering between the first and second 2D images. Advantageously, this first vertical gap is comprised between 1cm and 5cm, advantageously between 1.5cm and 3cm. This first vertical gap should make a small (but not visible on figures) gap between both horizontal beams 25 and 26.
[0199] Fig. 3 shows an example of the radiological apparatus according to an embodiment of the invention, showing the vertical scanning in on mode, the computed tomography in on mode, and the magnetic resonance imaging both in off and on modes.
[0200] There is the first computed tomography source 31 associated to a first computed tomography detector 33, both sliding vertically together so as to perform a frontal vertical scanning of a second short part H2 of a patient body height, this second short part H2 being smaller than this first part Hl.
[0201] The frontal computed tomography source 31 is a distributed source which comprises several emitters distributed in a line array which emit successively in time from one end to the other end of the line array, so as to perform a static horizontal scan of the patient body, at each vertical position of the dynamic vertical scan of the patient height. Each emitter is a punctual source which emission expands in a cone beam 37, which after having crossed patient body, will be received and detected by the frontal computed tomography bi-dimensional detector 33.
[0202] There is also a second computed tomography source 32 associated to a second computed tomography detector 34, both sliding vertically together so as to perform a lateral vertical scanning of this second short part H2 of a patient body height.
[0203] The lateral computed tomography source 32 is a distributed source which comprises several emitters distributed in a line array. The emitters emit successively in time from one end to the other end of the line array, so as to perform a static horizontal scan of the patient body, at each vertical position of the dynamic vertical scan of the patient height. Each emitter is a punctual source which emission expands in a cone beam 38, which after having crossed patient body, will be received and detected by the lateral computed tomography bi-dimensional detector 34.
[0204] There is preferably a second vertical gap, between the first radiation source 21 and the first computed tomography source 31, as well as between the second radiation source 22 and the second computed tomography source 32, such that the first vertical scanning and the second vertical scanning are performed synchronously but with a second time shift in between, so as to further reduce cross-scattering between on the one hand the first and second 2D images and on the other hand the first and second computed tomography images. Advantageously, this second vertical gap is comprised between 25% and 150% of the height of the first computed tomography detector 32 and between 25% and 150% of the height of the second computed tomography detector 34, advantageously between 50% and 100% of the height of the first computed tomography detector 32 and between 50% and 100% of the height of the second computed tomography detector 34, and / or is comprised between 3cm and 20cm, advantageously between 5cm and 12cm.
[0205] The first electric circuit 41 is a top horizontal coil located at the top level of the radiological apparatus 1, whereas the second electric circuit 42 is also a bottom horizontal coil but located at the bottom level of the radiological apparatus 1, under the patient platform 6. Top horizontal coil 41 and bottom horizontal coil 42 are disposed face to face so as to create a magnetic field in between, preferably a static vertically oriented magnetic field. Shim coils may also be added to make this static vertically oriented magnetic field more stable and more homogeneous. Some gradient coils are used to generate a variable gradient of the value of this magnetic field in both X, Y and Z directions. A cylindric antenna 43 comprises a primary detection antenna which will send its detected signal to the cryogenic quantum detector 45 which is preferably a very sensitive SQUID detector 45 cooled by a cryogenic cooling or refrigeration system 46. The primary detection antenna is also globally called magnetic field detection antenna 43. This primary detection antenna is also called pick up coil. This cylindric antenna 43 is located around the patient body and in the space located between the horizontal coil 41 and the bottom horizontal coil 42.
[0206] The antenna 43 may also comprise an excitation coil, preferably concentrically disposed, creating a horizontal oriented magnetic field, variable and time dependent.
[0207] As an alternative, the excitation coil, is disposed outside of antenna 43 in gantry cover around the patient platform 6, creating a horizontal oriented magnetic field, variable and time dependent.
[0208] The magnetic resonance imaging is performed with a static polarization magnetic field BO oriented in the vertical direction Z, the static polarization magnetic field being of less than 20 milli-Tesla, or between 0.1 milli-Tesla and 10 milli-Tesla or between 0.5 milli-Tesla and 5 milli-Tesla, by using a first coil 41 located in a horizontal plane XY above the patient 50, a second coil 42 located in a horizontal plane XY below the patient 50.
[0209] The magnetic resonance imaging is performed by correcting the inhomogeneities of the static polarization magnetic field B0, so as to make the static polarization magnetic field B0 more homogeneous, by adding one or more shim coils, which are located either within the first coil 41 and / or within the second coil 42, or in one or the other of vertical panels 51 or 52, in both vertical panel 51 and 52 of a gantry cover of a radiological apparatus implemented the method of radiography. The vertical panel 51 is in a first vertical plan YZ, behind the patient 50. The vertical plan 52 is in a second vertical plan XZ orthogonal to first vertical plan YZ and on the side of the patient 50.
[0210] The magnetic resonance imaging is performed by creating gradients in the X and / or Y and / or Z directions of the static polarization magnetic field B0, preferably in the X and Y and Z directions of the static polarization magnetic field B0, by adding one or more gradient coils, which are located either within the first coil 41 and / or within the second coil 42, or in at least a vertical panel 51 and / or 52 of a gantry cover of a radiological apparatus implemented the method of radiography.
[0211] Hence, the magnetic resonance imaging can be performed in a way which is both simpler and more efficient.
[0212] The excitation antenna, instead of being within antenna 43, can alternatively be in one or the other of vertical panels 51 or 52, or in both vertical panel 51 and 52 of a gantry cover of a radiological apparatus implemented the method of radiography; then there would be two excitation antennas, one in panel 51 and another one in panel 52. The magnetic resonance imaging is performed by using a magnetic field detection antenna 43 which is transparent to X-ray radiation, is vertically mobile so as to cover at least partly or fully this third part H3 of this portion of patient body height during performance of the first vertical scanning and the second vertical scanning. This magnetic field detection antenna 43 surrounds the patient body so as to also perform the function of a brace so as to maintain patient body immobile during performance of the first vertical scanning and the second vertical scanning. Preferably, this magnetic field detection antenna 43 remains immobile around the patient body at a chosen patient height corresponding to third short part H3 during performance of the magnetic resonance imaging.
[0213] The magnetic resonance imaging can be preferably performed with a magnetic field between 0.1 milli-Tesla and 10 milli-Tesla, more preferably between 0.5 milli-Tesla and 5 milliTesla, for example about 1 milli-Tesla. This magnetic field is the static vertical magnetic field BO created by the top horizontal coil 41 and the bottom horizontal coil 42, in the space between the top horizontal coil 41 and bottom horizontal coil 42.
[0214] The cryogenic quantum detector 45 can be preferably a superconducting quantum interference device (SQUID) 45 which is refrigerated by a cryogenic refrigeration system 46. This superconducting quantum interference device 45 is preferably a low critic temperature superconducting quantum interference device 45. Preferably, to detect variations of said magnetic field, there is a use of a flux transformer disposed upstream of said superconducting quantum interference device 45, the primary detection antenna disposed upstream of said flux transformer, the primary detection antenna being a part of the magnetic field detection antenna 43.
[0215] Fig. 4 shows an example of the radiological apparatus according to another embodiment of the invention, showing the vertical scanning in on mode, the computed tomography in on mode, and the magnetic resonance imaging both in off and on modes.
[0216] There are also alternatively a vertical pilar 19 along which a horizontal bar supporting both the third frontal vertically sliding support 17 and the fourth lateral vertically sliding support 18 is vertically sliding, this pilar 19 being in a comer of the encapsulated gantry 10.
[0217] Then, the third frontal vertically sliding support 17 and the fourth lateral vertically sliding support 18 are mechanically linked together so that they can vertically slide only together while remaining immobile with respect to each other during first frontal and second lateral vertical scanning.
[0218] Fig. 5 shows an example of a preferred embodiment for frontal radiation source and lateral radiation source, as well as for frontal radiation detector and lateral radiation detector. The frontal radiation source 21 is a punctual source which emission expands in a fan beam
[0219] 25 between directions DI and D2, which after having crossed patient body in crossing zone 29, will be received and detected by the frontal radiation detector 23.
[0220] The lateral radiation source 22 is a punctual source which emission expands in a fan beam
[0221] 26 between directions D3 and D4, which after having crossed patient body in crossing zone 29, will be received and detected by the lateral radiation detector 24.
[0222] Crossing zone 29 is limited by a quadrilateral M1-M2-M3-M4. Both fan beams of frontal radiation source 21 and of lateral radiation source 22 preferably have a horizontal extension of between 20 and 25 degrees and a vertical extension of between 0.10 and 0.20 degrees. The X- ray emission is preferably a continuous emission.
[0223] Fig. 6 shows an example of a preferred embodiment for frontal computed tomography source and lateral computed tomography source, as well as for frontal computed tomography detector and lateral computed tomography detector.
[0224] The frontal computed tomography source 31 is a distributed source which comprises several emitters 35 distributed in a line array. The emitters 35 emit successively in time from one end to the other end of the line array, so as to perform a static horizontal scan of the patient body located in crossing zone 29, at each vertical position of the dynamic vertical scan of the patient height. Each emitter 35 is a punctual source which emission expands in a cone beam 37 between directions shown by the arrows starting from the emitter 35, which after having crossed patient body in crossing zone 29, will be received and detected by the frontal computed tomography bi-dimensional detector 33 which preferably works in fast frame-mode.
[0225] The lateral computed tomography source 32 is a distributed source which comprises several emitters 36 distributed in a line array. The emitters 36 emit successively in time from one end to the other end of the line array, so as to perform a static horizontal scan of the patient body located in crossing zone 29, at each vertical position of the dynamic vertical scan of the patient height. Each emitter 36 is a punctual source which emission expands in a cone beam 38 between directions shown by the arrows starting from the emitter 36, which after having crossed patient body in crossing zone 29, will be received and detected by the lateral computed tomography bi-dimensional detector 34 which preferably works in fast frame-mode. The X-ray emission is preferably a pulsed emission.
[0226] With previously described radiological apparatus 1 , is performed a method of radiography of at least a portion of a height of a patient body in standing position. This method of radiography of at least a portion of a height of a patient body in standing position will now be described in link with all the figures embodying the radiological apparatus 1. This method of radiography of at least a portion of a height of a patient body in standing position comprises, one or more first vertical scanning of this portion of patient body height by a frontal radiation source 21 and a frontal radiation detector 23 cooperating to make a first 2D image of a first long part Hl of this portion of patient body height, one or more second vertical scanning of this portion of patient body height by a lateral radiation source 22 and a lateral radiation detector 24 cooperating to make a second 2D image of a first long part Hl of this portion of patient body height, this first vertical scanning and this second vertical scanning being performed synchronously, these first and second 2D images viewing this first long part Hl of this portion of patient body height according to different angles of incidence, frontal and lateral, which are oriented at right angle from each other.
[0227] This method of radiography of at least a portion of a height of a patient body in standing position also comprises making a patient specific 3D reconstruction on at least a second short part H2 of this portion of patient body height, at least combining therefore together both these first and second 2D images with complementary data.
[0228] This method of radiography of at least a portion of a height of a patient body in standing position also comprises making a computed tomography of this second short part H2 of this portion of patient body height, this second short part H2 of this portion of patient body height being shorter, or at least twice shorter, than this first long part Hl of this portion of patient body height. This second short part H2 of this portion of patient body height is determined by at least one of the one or more first vertical scanning and at least one of the one or more second vertical scanning. These complementary data, used to make this patient specific 3D reconstruction on at least this second short part H2 of this portion of patient body height, comprise the computed tomography of this second part H2 of this portion of patient body height.
[0229] The computed tomography is performed by the cooperation of, at least one computed tomography source, either the frontal computed tomography source 31 or the lateral computed tomography source 32, preferably both the frontal computed tomography source 31 and the lateral computed tomography source 32, with at least one computed tomography detector, either the frontal computed tomography detector 33 or the lateral computed tomography detector 34, preferably both the frontal computed tomography detector 33 and the lateral computed tomography detector 34, so as to build the computed tomography of said second part of said portion of patient body height.
[0230] This at least one computed tomography source is preferably a distributed source comprising at least one line array of emitters. This distributed source comprising at least one line array of emitters is both, vertically mobile during performance of the first vertical scanning and the second vertical scanning, and horizontally static during performance of the first vertical scanning and the second vertical scanning, with a horizontal scanning performed by successive signal emissions respectively by these emitters progressing along this line array of emitters.
[0231] These emitters can be between 10 and 100 emitters, or preferably between 15 and 70 emitters or between 20 and 50 emitters. These emitters can be pulsed emitters. These emitters are cold cathode X-ray emitters. These cold cathode X-ray emitters are, for example, either carbon nano tubes based cold cathode X-ray emitters, or silicon based cold cathode X-ray emitters, or field emission electron based cold cathode X-ray emitters.
[0232] In an option, the first vertical scanning and the second vertical scanning are performed a first time to build respectively first and second scout views, the first vertical scanning and the second vertical scanning are performed a second time so as to build respectively first and second 2D images therefrom, based on these first and second scout views. The computed tomography, first frontal computed tomography image and second lateral computed tomography image, is performed during second time performance of the first vertical scanning and the second vertical scanning. This second short part H2 of this portion of patient body height is determined by the first vertical scanning during the first time and by the second vertical scanning during the first time.
[0233] In another option, the first vertical scanning and said second vertical scanning are performed a first time to build respectively first and second scout views, the first vertical scanning and the second vertical scanning are performed a second time so as to build respectively first and second 2D images therefrom, based on these first and second scout views. The computed tomography, first frontal computed tomography image and second lateral computed tomography image, is performed after second time performance of the first vertical scanning and the second vertical scanning. This second short part H2 of said portion of patient body height is determined by the first vertical scanning during the second time and by the second vertical scanning during the second time.
[0234] This method of radiography of at least a portion of a height of a patient body in standing position also comprises making a magnetic resonance imaging of a third short part H3 of this portion of patient body height, this third short part H3 of this portion of patient body height being shorter, or at least twice shorter, than this first long part Hl of this portion of patient body height. This third part H3 of said portion of patient body height is determined by at least one of the one or more first vertical scanning and at least one of the one or more second vertical scanning, and / or by the computed tomography. This third part H3 of this portion of patient body height at least overlaps with this second part H2 of this portion of patient body height, or preferably is substantively equal to this second part H2 of this portion of patient body height as represented on the figures. The magnetic resonance imaging is performed with a magnetic field of less than 20 milli-Tesla, associated to the cryogenic quantum detector 45. This determined third part H3 of said portion of patient body height can be deduced by performing a segmentation of the computed tomography.
[0235] In a preferred option, the magnetic resonance imaging is performed after performance of the first vertical scanning and the second vertical scanning and after performance of this computed tomography, this magnetic resonance imaging being performed preferably after performance of this computed tomography.
[0236] In another option, the magnetic resonance imaging can be performed during performance of this first vertical scanning and said second vertical scanning, the magnetic resonance imaging being performed preferably simultaneously with performance of the computed tomography.
[0237] This first long part Hl of patient body height or of portion of patient body height could be for example the whole patient body height or the whole patient spine height.
[0238] The second short part H2 could be equal to the third short part H3, and would be a reduced region of the first long part Hl, and this second H2 or third short part H3 of patient body height or of portion of patient body height could be a limited region corresponding either to a patient height corresponding to a specific number of vertebrae like for example the thoracic vertebrae or the lumbar vertebrae or the cervical vertebrae or the sacrum plate, or alternatively to a patient height corresponding to a specific patient organ like stomach or liver or a lung for example.
[0239] In a preferred option, these complementary data, used to make this patient specific 3D reconstruction on at least this third part H3 of said portion of patient body height, also comprise the magnetic resonance imaging of this third part H3 of this portion of patient body height.
[0240] Preferably too, these complementary data, used to make this patient specific 3D reconstruction on at least this second part H2 of this portion of patient body height, also comprise 3D generic data.
[0241] Still preferably, making a patient specific 3D reconstruction on at least this second short part H2 of this portion of patient body height, at least combining therefore together both the first and second 2D images with complementary data, comprises, making as patient specific modeling, a patient specific provisional 3D reconstruction on at least the first long part Hl of this portion of patient body height, using both, as patient specific data therefore, at least both first and second 2D images, as generic data therefore, a 3D generic model, and as modeling process therefore, a process combining both the first and second 2D images with the 3D generic model so as to get at this patient specific provisional 3D reconstruction.
[0242] The complementary data, used to make said patient specific 3D reconstruction on at least this second short part H2 of this portion of patient body height, are used so as to upgrade this patient specific provisional 3D reconstruction into a patient specific final 3D reconstruction of this second part H2 of this portion of patient body height by modifying, or by enriching and / or correcting, this patient specific provisional 3D reconstruction with the computed tomography of this second part H2 of this portion of patient body height. The modeling process can use artificial intelligence, and preferably uses deep learning or generative adversarial network.
[0243] Fig. 7 shows an example of a first embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0244] The 2D images 101 are used to make a patient specific 3D reconstruction 103 by a modeling process 102 using complementary data 104.
[0245] These complementary data 104 comprise the computed tomography images 105, first and second computed tomography images, frontal and lateral computed tomography images.
[0246] Fig. 8 shows an example of a second embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0247] The 2D images 201 are used to make a patient specific 3D reconstruction 203 by a modeling process 202 using complementary data 204.
[0248] These complementary data 204 comprise both the computed tomography images 205, first and second computed tomography images, frontal and lateral computed tomography images, and 3D generic data 206.
[0249] Fig. 9 shows an example of a third embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0250] The 2D images 301 are used to make a patient specific provisional 3D reconstruction 313 by a modeling process 312 using the 3D generic data 306 included in the complementary data 304.
[0251] The patient specific provisional 3D reconstruction 313 is used to make a patient specific final 3D reconstruction 323 by another modeling process 322 using the computed tomography images 305, first and second computed tomography images, frontal and lateral computed tomography images, included in the complementary data 304.
[0252] Fig. 10 shows an example of a fourth embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0253] The 2D images 401 are used to make a patient specific provisional 3D reconstruction 413 by a modeling process 412 using the 3D generic data 406 included in the complementary data 404.
[0254] The patient specific provisional 3D reconstruction 413 is used to make a patient specific final 3D reconstruction 423 by another modeling process 422 using the computed tomography images, first and second computed tomography images, frontal and lateral computed tomography images, included in the complementary data 404. But here, the computed tomography images which are used are not the raw computed tomography images 405 as obtained from the computed tomography detectors 33 and 34, but are corrected computed tomography images 415 obtained from the raw computed tomography images 405 by an artificial intelligence process 410 so as to reduce cross-scattering effect between first and second raw computed tomography images 405 respectively made by first and second computed tomography detectors 33 and 34 and / or so as to reduce self- scattering effect on first and second raw computed tomography images 405 respectively made by first and second computed tomography detectors 33 and 34.
[0255] Fig. 11 shows an example of a fifth embodiment of patient specific 3D reconstruction in the method of radiography implemented by a radiological apparatus.
[0256] The 2D images 501 are used to make a patient specific provisional 3D reconstruction 513 by a modeling process 512 using the 3D generic data 506 included in the complementary data 504.
[0257] The patient specific provisional 3D reconstruction 513 is used to make a patient specific intermediate 3D reconstruction 533 by another modeling process 532 using the computed tomography images 505, first and second computed tomography images, frontal and lateral computed tomography images, included in the complementary data 504, which are the first and second raw computed tomography images 505 respectively made by first and second computed tomography detectors 33 and 34.
[0258] The patient specific provisional 3D reconstruction 513 is also used to make a patient specific final 3D reconstruction 543 by still another modeling process 542 using the computed tomography images, first and second computed tomography images, frontal and lateral computed tomography images, included in the complementary data 504.
[0259] But here, the computed tomography images which are used are not the raw computed tomography images 505 as obtained from the computed tomography detectors 33 and 34, but are corrected computed tomography images 515 obtained from the raw computed tomography images 505 by an artificial intelligence process 510 so as to reduce cross-scattering effect between first and second raw computed tomography images 505, by simulating and correcting such cross-scattering effect between first and second raw computed tomography images 505, respectively made by first and second computed tomography detectors 33 and 34 and / or so as to reduce self-scattering effect on first and second raw computed tomography images 505 respectively made by first and second computed tomography detectors 33 and 34.
[0260] This artificial intelligence process 510 uses the patient specific intermediate 3D reconstruction 533 to make the corrected computed tomography images 515 from the raw computed tomography images 505. Hence there is mutual enrichment between the computed tomography images and the successive patient specific 3D reconstructions during the whole treatment.
[0261] The invention has been described with reference to preferred embodiments. However, many variations are possible within the scope of the invention.
Claims
CLAIMS1 / Method of radiography of at least a portion of a height of a patient body in standing position, comprising:- one or more first vertical scanning of said portion of patient body height by a first radiation source (21) and a first radiation detector (23) cooperating to make a first 2D image of a first part (Hl) of said portion of patient body height,- one or more second vertical scanning of said portion of patient body height by a second radiation source (22) and a second radiation detector (24) cooperating to make a second 2D image of said first part (Hl) of said portion of patient body height,- said first vertical scanning and said second vertical scanning being performed synchronously,- said first and second 2D images viewing said first part (Hl) of said portion of patient body height according to different angles of incidence, wherein further comprising: making a patient specific 3D reconstruction on at least a second part (H2) of said portion of patient body height, at least combining therefore together both said first and second 2D images with complementary data, making a computed tomography of said second part (H2) of said portion of patient body height, said second part (H2) of said portion of patient body height being shorter, or at least twice shorter, than said first part (Hl) of said portion of patient body height, o said second part (H2) of said portion of patient body height being determined by at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning, said complementary data, used to make said patient specific 3D reconstruction on at least said second part (H2) of said portion of patient body height, comprising said computed tomography of said second part (H2) of said portion of patient body height, making a magnetic resonance imaging of a third part (H3) of said portion of patient body height, said third part (H3) of said portion of patient body height being shorter, or at least twice shorter, than said first part (Hl) of said portion of patient body height, o said third part (H3) of said portion of patient body height being determined:■ by at least one of said one or more first vertical scanning and at least one of said one or more second vertical scanning,■ and / or by said computed tomography, o said third part (H3) of said portion of patient body height at least overlapping with said second part (H2) of said portion of patient body height, or preferably being substantively equal to said second part (H2) of said portion of patient body height, o said magnetic resonance imaging being performed:■ with a magnetic field of less than 20 milli-Tesla,■ associated to a cryogenic quantum detector (45). / Method of radiography according to claim 1, wherein: said determined third part (H3) of said portion of patient body height is deduced by performing a segmentation of said computed tomography. / Method of radiography according to any of claims 1 to 2, wherein: said magnetic resonance imaging is performed after performance of said first vertical scanning and said second vertical scanning and after performance of said computed tomography, o said magnetic resonance imaging being performed preferably after performance of said computed tomography. / Method of radiography according to any of claims 1 to 2, wherein: said magnetic resonance imaging being performed during performance of said first vertical scanning and said second vertical scanning, o said magnetic resonance imaging being performed preferably simultaneously with performance of said computed tomography. / Method of radiography according to any of preceding claims, wherein: said magnetic resonance imaging is performed with a magnetic field between 0.1 milli-Tesla and 10 milli-Tesla or between 0.5 milli-Tesla and 5 milli-Tesla. / Method of radiography according to any of preceding claims, wherein: said cryogenic quantum detector (45) is a superconducting quantum interference device (SQUID) which is refrigerated by a cryogenic refrigeration system (46).7 / Method of radiography according to claim 6, wherein: said superconducting quantum interference device (45) is a low critic temperature superconducting quantum interference device.8 / Method of radiography according to claim 6 or 7, wherein: to detect variations of said magnetic field, there is a use of: o a flux transformer disposed upstream of said superconducting quantum interference device (45), o a primary detection antenna disposed upstream of said flux transformer.9 / Method of radiography according to any of preceding claims, wherein: said magnetic resonance imaging is performed by using a magnetic field detection antenna (43) which: o is transparent to X-ray radiation, o is vertically mobile so as to cover at least partly or fully said third part (H3) of said portion of patient body height during performance of said first vertical scanning and said second vertical scanning.10 / Method of radiography according to claim 9, wherein: said magnetic field detection antenna (43) surrounds the patient body so as to also perform the function of a brace so as to maintain patient body immobile during performance of said first vertical scanning and said second vertical scanning.11 / Method of radiography according to any of preceding claims, wherein: said patient belongs to a first category of people with pacemakers and / or metallic fragments and / or metallic implants.12 / Method of radiography according to any of preceding claims, wherein: said complementary data, used to make said patient specific 3D reconstruction on at least said third part (H3) of said portion of patient body height, also comprise said magnetic resonance imaging of said third part (H3) of said portion of patient body height.13 / Method of radiography according to any of preceding claims, wherein:said complementary data, used to make said patient specific 3D reconstruction on at least said second part (H2) of said portion of patient body height, also comprise 3D generic data. / Method of radiography according to any of preceding claims, wherein: said magnetic resonance imaging is performed: o with a static polarization magnetic field (BO) oriented in the vertical direction (Z), said static polarization magnetic field being of less than 20 milli-Tesla, or between 0.1 milli-Tesla and 10 milli-Tesla or between 0.5 milli-Tesla and 5 milli-Tesla, by using:■ a first coil (41) located in a horizontal plane (XY) above the patient (50),■ a second coil (42) located in a horizontal plane (XY) below the patient (50). / Method of radiography according to claim 14, wherein: said magnetic resonance imaging is performed: o by correcting the inhomogeneities of said static polarization magnetic field (B0), so as to make said static polarization magnetic field (B0) more homogeneous, by adding:■ one or more shim coils, which are located:• either within said first coil (41) and / or within said second coil (42),• or in at least a vertical panel (51, 52) of a gantry cover of a radiological apparatus implemented the method of radiography. / Method of radiography according to claim 14 or 15, wherein: said magnetic resonance imaging being performed: o by creating gradients in the X, Y and Z directions of said static polarization magnetic field (B0), by adding:■ one or more gradient coils, which are located:• either within said first coil (41) and / or within said second coilor in at least a vertical panel (51, 52) of a gantry cover of a radiological apparatus implemented the method of radiography.
Citation Information
Patent Citations
Stationary source computed tomography and CT-MRI systems
US11534122B2
Wet-activated cooling fabric
US11639567B2
Electrical energy management of heat transfer devices for vehicles
US20210138939A1
Radiographic imaging method for three-dimensional reconstruction, device and computer software for carrying out said method
EP1634246A2
Magnetic resonance imaging apparatus and method using squid detection and field- cycling
EP2294437A1