SYSTEM AND METHOD FOR REMOVING CROSSTALK SIGNAL IN ONE OR MORE SCANNING SYSTEMS HAVING MULTIPLE X-RAY SOURCES - Patent application
Synchronizing high-energy X-ray sources to a common operating frequency through a master generator addresses crosstalk issues in X-ray scanning systems, ensuring efficient and accurate image capture.
Patent Information
- Application Number
- JP2023549891
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-02-23
- Filing Date
- 2022-02-23
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2042-02-23
AI Technical Summary
Conventional X-ray scanning systems experience unwanted interference, or crosstalk, between high-energy and low-energy X-ray scanning systems and passive radiation portal monitors due to asynchronous pulse repetition frequencies and varying X-ray doses, leading to data corruption and image degradation.
A system and method that synchronize the pulse repetition frequencies of multiple high-energy X-ray sources to a common operating frequency, using a master frequency generator to eliminate crosstalk by aligning emission times with low-energy X-ray scanning systems and radiation portal monitors.
Effectively reduces unwanted detection rates of crosstalk signals, maintaining detection efficiency and image quality by aligning pulse repetition frequencies and eliminating interference patterns across adjacent imaging systems.
Smart Images

Figure 0007794839000001 
Figure 0007794839000002 
Figure 0007794839000003
Abstract
Description
[Technical Field]
[0001] [CROSS-REFERENCE TO RELATED APPLICATIONS] This application relies for priority on U.S. Provisional Patent Application No. 63 / 152,721, entitled "Systems and Methods for Eliminating Cross-Talk Signals in One or More Scanning Systems Having Multiple X-Ray Sources," filed February 23, 2021, which is incorporated herein by reference in its entirety.
[0002] This specification relates generally to the field of X-ray scanning systems. More specifically, this specification provides systems and methods for eliminating unwanted interference, often referred to as crosstalk, between co-located X-ray scanners, X-ray systems, nearby passive radiation portal monitors, or any system having multiple X-ray sources. [Background technology]
[0003] Many conventional X-ray scanning systems include one or more low-energy (LE) X-ray scanning systems with operating energies ranging from 120 KeV to 750 KeV. These systems typically generate scan images using time-multiplexed detection, where X-ray data is collected continuously throughout the scan. Additionally, conventional X-ray scanning systems may include one or more passive gamma / neutron portal monitors (RPMs), which record background data when the scan zone is unoccupied, record live data when an object under investigation passes through the detection panel, and continuously capture data.
[0004] In some operational X-ray system scenarios, such as portal-based systems, gantry-based systems, or mobile systems, one or more high-energy (HE) X-ray transmission scanning systems are configured to operate in close proximity to, but independently of, a low-energy X-ray scanning system (backscatter system) and an RPM scanning system. Alternatively, the high-energy X-ray scanning system is directly coupled to the low-energy X-ray backscatter or RPM scanning subsystem as part of a "co-located" product.
[0005] High-energy X-ray scanning systems typically include X-ray sources, such as periodic particle accelerators (betatrons) or linear particle accelerators (linacs) with operating energies between 750 keV and 10 MeV. The detectors employed in both low-energy X-ray backscatter systems and RPMs are sensitive to these high-energy X-rays. As a result, when both HE and LE X-ray scanning units and the RPM subsystem are operating in close proximity, such as at a physical distance of less than 1000 meters, high-energy X-rays are likely to be observed in low-energy backscatter images or contribute to signals measured by the RPM subsystem. High-energy X-ray-based scanning platforms typically operate in a pulsed mode, with each X-ray pulse having a duration of approximately 4 microseconds (μs). In addition, high-energy X-ray sources, such as linacs, can operate at pulse repetition frequencies up to several kilohertz. As an example, the source may operate at 1 kHz, resulting in a high-energy X-ray pulse every 1 ms. Summary of the Invention [Problem to be solved by the invention]
[0006] As a result of this high-energy X-ray pulse, closely located low-energy X-ray backscatter and RPM subsystems can register unwanted contributions to their inherent measurement signals, potentially causing data corruption, erroneous calculations, and / or image degradation. Backscatter imaging systems operating with typical per-pixel data capture window times of microseconds may see a brightened pixel or series of bright pixels depending on the attenuation characteristics of the backscatter detector material and data acquisition configuration. Similarly, RPM systems may detect higher than expected signal counts that may breach a set intensity threshold for an alarm.
[0007] When there are only a few high-energy x-ray transmission systems located in close proximity to the low-energy x-ray backscatter and RPM subsystems, and the high-energy x-ray dose per pulse or pulse intensity is high, conventional "above-threshold-level" pulse rejection or filtering techniques can be employed to identify unwanted signals and remove the data from the resulting image or intensity calculations, which can be done without knowledge or consideration of the timing characteristics of the x-ray systems.
[0008] Where multiple high-energy X-ray transmission systems are placed at various distances relative to and / or in close proximity to a low-energy X-ray and / or RPM imaging subsystem, possibly operating at different X-ray dose outputs using dynamic dose modulation techniques or low-dose "personnel" imaging approaches, then unwanted detected crosstalk signals may be indistinguishable from those expected by the low-energy X-ray backscatter or RPM imaging subsystem. At the same time, if each high-energy X-ray transmission system is pulsing asynchronously at a different pulse repetition frequency (PRF), then multiple unwanted interference patterns will be generated that are received by the low-energy X-ray and / or RPM detectors, thereby significantly increasing the difficulty of filtering out the unwanted signals and, as a result, reducing the overall detection efficiency of the low-energy X-ray backscatter and RPM imaging subsystems. Unfortunately, in such cases, "above threshold" pulse rejection or filtering techniques applied to backscatter detection and RPM detection data when the system is operating in close proximity to one or more high-energy systems cannot be relied upon because the magnitude of the crosstalk signal will vary depending on which of the potentially multiple high-energy x-ray transmission systems is emitting x-rays, the dose output of each system, and their relative physical locations.
[0009] Therefore, there is a need for a system and method that efficiently removes high-energy X-ray crosstalk or interference signals generated by one or more high-energy X-ray scanning systems from images obtained with a low-energy X-ray backscatter scanning system and data captured with an RPM imaging subsystem operating in close proximity to one or more high-energy X-ray scanning systems.
[0010] There is also a need for a system and method that eliminates crosstalk by enabling a low-energy X-ray backscatter or RPM imaging subsystem to recognize or determine when a high-energy X-ray system is emitting X-rays, allowing the low-energy X-ray backscatter system and / or RPM imaging subsystem to efficiently eliminate unwanted high-energy signals that may not appear very different from expected signals, taking into account distance and other attenuation factors.
[0011] Additionally, there is a need to align the pulse repetition frequencies of multiple high-energy X-ray scanning system sources to a common operating frequency. The resulting alignment of high-energy X-ray pulses effectively reduces the unwanted detection rate of crosstalk signals and / or the number of interference patterns in other adjacent imaging systems, ensuring that minimum detection performance and operating efficiency are maintained. [Means for solving the problem]
[0012] The following embodiments and aspects thereof are described and illustrated in conjunction with systems, tools, and methods that are intended to be representative and illustrative, not limiting in scope. This application discloses multiple embodiments.
[0013] The present specification discloses a system for eliminating X-ray crosstalk between a plurality of X-ray scanning systems having at least one high-energy X-ray source and at least one low-energy X-ray scanning system, the system comprising: a frequency generator configured to generate a common operating frequency; the at least one high-energy X-ray source coupled to the frequency generator, the at least one high-energy X-ray source including a first processing module for receiving the common operating frequency and configured to generate a pulse repetition frequency of the at least one high-energy X-ray source for synchronization with the common operating frequency; and the at least one low-energy X-ray scanning system coupled to the frequency generator to receive the common operating frequency, the at least one low-energy X-ray scanning system including a second processing module configured to eliminate data associated with the common operating frequency at a first instance of time if the at least one high-energy X-ray source emits X-rays at the first instance of time.
[0014] Optionally, the system further comprises at least one radiation portal monitor coupled to the frequency generator to receive the common operating frequency, the at least one radiation portal monitor including a third processing module configured to remove data associated with the common operating frequency at a second time instance if the at least one high-energy X-ray system emits X-rays at the second time instance. Optionally, the system further comprises a radiation portal monitor (RPM), the RPM including a passive radiation detector that detects and measures radiation emitted by radioactive materials without any stimulus, and the RPM being either a fixed position scanning system or a portable scanning system.
[0015] Optionally, the system further comprises a high-energy X-ray scanning system comprising the at least one high-energy X-ray source, wherein the at least one high-energy X-ray source is a linear accelerator, and the high-energy X-ray scanning system is either a fixed position scanning system or a portable scanning system.
[0016] Optionally, the system further comprises an X-ray backscatter scanning system, the X-ray backscatter scanning system including the at least one low energy X-ray source, and the low energy X-ray scanning system being either a fixed position scanning system or a portable scanning system.
[0017] Optionally, the at least one high-energy X-ray source is a linear accelerator, and the at least one high-energy X-ray source is adapted to synchronize a pulse repetition frequency (PRF) of the linear accelerator to the common operating frequency.
[0018] Optionally, the at least one high-energy X-ray source and the at least one low-energy X-ray scanning system are located within a predetermined distance from each other, optionally the predetermined distance is 1000 m or less.
[0019] Optionally, the at least one high energy X-ray source and the at least one RPM system are located within a predetermined distance of each other. Optionally, the predetermined distance is 1000 m or less.
[0020] Optionally, the at least one high energy x-ray source includes transmission linear accelerator control and data capture electronics and data distribution hardware.
[0021] Optionally, the at least one low energy X-ray source includes data distribution hardware and backscatter data capture electronics.
[0022] The present specification also discloses a method for eliminating crosstalk between multiple X-ray scanning systems having at least one high-energy X-ray source and at least one low-energy X-ray system, the method comprising the steps of: generating a common operating frequency using a frequency generator; communicating the common operating frequency to the at least one high-energy X-ray source; synchronizing a pulse repetition frequency of the high-energy X-ray source to the common operating frequency; communicating the common operating frequency to at least one low-energy X-ray scanning system; and using the common operating frequency to eliminate crosstalk data associated with the at least one high-energy X-ray source from scan data acquired by the at least one low-energy X-ray system.
[0023] Optionally, the method further comprises transmitting the common operating frequency to at least one passive radiation detection system. Optionally, the method further comprises using the common operating frequency to remove crosstalk data associated with the at least one high-energy X-ray source from scan data captured by the at least one passive radiation detection system. Optionally, the at least one high-energy X-ray scanning system and the at least one passive radiation detection system are located within a predetermined distance of each other. Optionally, the predetermined distance is 1000 m or less.
[0024] Optionally, the method further comprises synthesizing individual high-energy X-ray pulse repetition frequency values synchronized to both integer and non-integer divisions of the common operating frequency.
[0025] Optionally, the method further comprises removing unwanted signals associated with crosstalk data corresponding to the common operating frequency from an image produced by a low-energy X-ray scanning system comprising the at least one low-energy X-ray source.
[0026] Optionally, the at least one high energy x-ray source includes a linear accelerator.
[0027] Optionally, the at least one low energy X-ray source is integrated into an X-ray backscatter scanning system.
[0028] Optionally, the at least one high-energy X-ray source and the at least one low-energy X-ray source are located within a predetermined distance from each other. Optionally, the predetermined distance is 1000 m or less.
[0029] Optionally, the method further comprises modulating the pulse repetition frequency of the at least one high-energy X-ray source to accommodate at least one of a changing speed of an object to be scanned as it passes through a portal system or a speed of the at least one high-energy X-ray source moving along a rail of a gantry system.
[0030] In some embodiments, the present specification also discloses a system for eliminating X-ray crosstalk between a plurality of X-ray scanning systems having at least one high-energy X-ray source and at least one low-energy X-ray scanning system or RPM, the system comprising: a frequency generator configured to generate a common operating frequency; and a first high-energy X-ray source coupled to the frequency generator to receive the common operating frequency, the first high-energy X-ray source configured to change a pulse repetition frequency of the at least one high-energy X-ray source to synchronize with the common operating frequency. the at least one high-energy X-ray source including a processing module; and the at least one low-energy X-ray scanning system coupled to a master frequency generator to receive the common operating frequency, the at least one low-energy X-ray scanning system including a second processing module configured to remove data associated with crosstalk interference received at a first instance of time when the at least one high-energy X-ray source emits X-rays at the first instance of time.
[0031] Optionally, the system further comprises at least one passive radiation detector coupled to the frequency generator, the at least one passive radiation detector configured to receive the common operating frequency, and the at least one passive radiation detector including a third processing module configured to remove data associated with the common operating frequency at a second time instance when the at least one high-energy X-ray system emits X-rays at the second time instance.
[0032] Optionally, the system comprises a radiation portal monitor (RPM), said RPM including said passive radiation detector, said RPM being either a fixed position scanning system or a portable scanning system.
[0033] Optionally, the system further comprises a high-energy X-ray scanning system including the at least one high-energy X-ray source, wherein the at least one high-energy X-ray source is a linear accelerator, and the high-energy X-ray scanning system is either a fixed-position scanning system or a portable scanning system.
[0034] Optionally, the system further comprises an X-ray backscatter scanning system, the X-ray backscatter scanning system including the at least one low energy X-ray source, and the low energy X-ray scanning system being either a fixed position scanning system or a portable scanning system.
[0035] Optionally, the at least one high-energy X-ray source is a linear accelerator, and the at least one high-energy X-ray source is adapted to synchronize a pulse repetition frequency (PRF) of the linear accelerator to the common operating frequency.
[0036] Optionally, the common operating frequency is used to mitigate X-ray crosstalk in the X-ray backscatter scanning system.Optionally, the common operating frequency is used to mitigate X-ray crosstalk in the RPM.
[0037] Optionally, the at least one high-energy X-ray source and the at least one low-energy X-ray scanning system are located within a predetermined distance from each other. Optionally, the predetermined distance is 1000 m or less.
[0038] Optionally, the at least one high energy X-ray scanning system and the at least one RPM system are located within a predetermined distance of each other.
[0039] Optionally, the predetermined distance is 1000m or less.
[0040] Optionally, the at least one high energy X-ray scanning system and the at least one low energy X-ray scanning system are coupled to the master frequency generator by using any one or combination of an electrical communication system, an optical fiber communication system, or a wireless communication system.
[0041] Optionally, the at least one high energy X-ray scanning system and the at least one RPM system are coupled to the master frequency generator by using any one or combination of an electrical communication system, an optical fiber communication system, or a wireless communication system.
[0042] Optionally, the at least one high energy x-ray source includes transmission linear accelerator control and data capture electronics and data distribution hardware.
[0043] Optionally, the at least one low energy X-ray scanning system includes data distribution hardware and backscatter data capture electronics.
[0044] Optionally, the at least one RPM system includes data distribution hardware and RPM system data capture electronics.
[0045] In some embodiments, the present specification describes a method for eliminating crosstalk between multiple X-ray scanning systems having at least one high-energy X-ray source and at least one low-energy X-ray scanning system, the method comprising the following steps: generating a common operating frequency using a frequency generator; communicating the common operating frequency to the at least one high-energy X-ray source; synchronizing a pulse repetition frequency of the high-energy X-ray source to the common operating frequency; communicating the common operating frequency to at least one low-energy X-ray scanning system; and using the common operating frequency to eliminate crosstalk data associated with the at least one high-energy X-ray source from scan data acquired by the at least one low-energy X-ray system.
[0046] Optionally, the method further comprises modulating the pulse repetition frequency of the at least one high-energy X-ray source to accommodate different imaging scenarios, such as varying speeds of an object to be scanned as it passes through a portal system or varying speeds of a high-energy X-ray source moving along the rails of a gantry system.
[0047] Optionally, the transmitting step is performed via a fiber optic cable.
[0048] Optionally, the method further comprises communicating the common operating frequency to at least one passive radiation detection system.
[0049] Optionally, the method further comprises using the common operating frequency to remove crosstalk data associated with the at least one high-energy X-ray source from scan data captured by the at least one passive radiation detection system.
[0050] Optionally, the at least one high energy X-ray scanning system and the at least one passive radiation detection system are located within a predetermined distance of each other, optionally the predetermined distance is 1000 m or less.
[0051] Optionally, the method further comprises synthesizing individual high-energy X-ray pulse repetition frequency values synchronized to both integer and non-integer divisions of the common operating frequency.
[0052] Optionally, the method further comprises removing unwanted signals associated with crosstalk data corresponding to the common operating frequency from an image produced by the low-energy X-ray scanning system comprising the at least one low-energy X-ray source.
[0053] Optionally, the at least one high energy x-ray source comprises a linear accelerator.
[0054] Optionally, the at least one low energy X-ray source is integrated into an X-ray backscatter scanning system.
[0055] Optionally, the at least one high-energy X-ray source and the at least one low-energy X-ray source are located within a predetermined distance from each other. Optionally, the predetermined distance is 1000 m or less.
[0056] The foregoing and other embodiments herein will be explained in more detail in the figures and detailed description presented below.
[0057] These and other features and advantages of the present specification will be better understood and appreciated by reference to the following detailed description when considered in conjunction with the accompanying drawings. [Brief explanation of the drawings]
[0058] [Figure 1A] FIG. 1 is a block diagram of a crosstalk cancellation system according to an embodiment of the present disclosure. [Figure 1B] 1 illustrates an exemplary linac-based high-energy X-ray cargo inspection system that may be used in conjunction with the methods and systems described herein in one embodiment. [Figure 1C] 1 illustrates an example of a low energy X-ray backscatter cargo inspection system that may be used in conjunction with the methods and systems described herein in one embodiment. [Figure 1D] FIG. 1D is a schematic top view of the inspection system shown in FIG. 1C. [Figure 1E] 1 illustrates an example of an X-ray backscatter system 150 that may be deployed under a vehicle for under-chassis inspection, which may be used in conjunction with the methods and systems described herein in one embodiment. [Figure 1F] 1C illustrates another view of the X-ray backscatter system 150 shown in FIG. 1E. [Figure 1G] FIG. 1 shows a diagram of a co-located fixed-site X-ray imaging system that combines both high-energy transmission images and low-energy backscatter images within the same examination platform, which may be used in one embodiment with the methods and systems described herein. [Figure 1H] FIG. 1 shows a diagram of a mobile X-ray scanning system that combines a high-energy transmission imaging system, a low-energy backscatter imaging system, and a passive radiation detection system within the same inspection platform, which may be used in one embodiment with the methods and systems described herein. [Figure 1I]A standalone fixed-site passive gamma / neutron portal monitor (RPM) solution is presented that can be deployed in close proximity to high-energy or low-energy x-ray imaging systems. [Figure 2A] 1 illustrates a schematic diagram of a first implementation of a crosstalk cancellation system according to an embodiment of the present disclosure. [Figure 2B] 1 illustrates a schematic diagram of a second embodiment of a crosstalk cancellation system according to embodiments herein. [Figure 2C] 10 illustrates a schematic diagram of a third embodiment of a crosstalk cancellation system according to embodiments herein. [Figure 3A] 1 presents a visual representation of the relationship between multiple different individual high-energy X-ray source pulse repetition frequencies and a common operating frequency in accordance with an embodiment of the present disclosure. [Figure 3B] 1 presents a visual representation of synchronizing multiple different individual high-energy X-ray source pulse repetition frequencies to a common operating frequency in accordance with an embodiment herein. [Figure 4A] 1 shows a first scanned image obtained via a low energy backscatter X-ray inspection system placed in close proximity to multiple high energy X-ray transmission inspection systems. [Figure 4B] 10 shows a second scanned image obtained via a low energy backscatter X-ray inspection system placed in close proximity to multiple high energy X-ray transmission inspection systems. [Figure 5] 1 illustrates a backscatter signal captured by a low-energy backscatter X-ray scanning system placed in close proximity to a high-energy X-ray scanning system. [Figure 6A] 1 illustrates an exemplary system deployment scenario according to embodiments herein. [Figure 6B] 1 illustrates another exemplary system deployment scenario according to embodiments herein. [Figure 7] 1 is a flowchart of exemplary steps of a method for eliminating crosstalk between multiple X-ray scanning systems, in accordance with certain embodiments herein. DETAILED DESCRIPTION OF THE INVENTION
[0059] In one embodiment, this specification presents a system and method for eliminating X-ray crosstalk between a high-energy X-ray scanning platform, such as a linear accelerator X-ray (LINAC)-based scanning system, and a low-energy X-ray backscatter scanning system or radiation portal monitor (RPM). In various embodiments, the RPM comprises a passive radiation detector instrument designed to detect and measure radiation emitted by radioactive materials without stimulation.
[0060] This specification is directed to multiple embodiments. The following disclosure is provided to enable those skilled in the art to practice the invention. The language used in this specification should not be construed as a general disclaimer of one particular embodiment, nor should it be used to limit the scope of the claims beyond the meaning of the terms used therein. The general principles defined herein may be applied to other embodiments and applications without departing from the spirit and scope of the invention. Additionally, the terms and phrases used are for the purpose of describing exemplary embodiments and should not be considered limiting. Thus, the present invention is accorded the widest scope, encompassing numerous alternatives, modifications, and equivalents consistent with the principles and features disclosed. For purposes of clarity, details relating to technical material known in the art related to the invention have not been described in detail so as not to unnecessarily obscure the invention.
[0061] In the specification and claims of this application, the words "comprise," "include," and "have," and their forms, do not necessarily limit the members in the list that may be associated with the word. It should be noted that any feature or component described in this specification in connection with a particular embodiment can be used and practiced with any other embodiment, unless expressly stated otherwise.
[0062] As used herein, the indefinite articles "a" and "an" mean "at least one" or "one or more," unless the context clearly dictates otherwise.
[0063] In various embodiments, the system, and in particular each of the modules, components, or generators described herein, includes at least one processor capable of processing program instructions, has memory capable of storing program instructions, and employs software comprised of a plurality of program instructions for performing the processes described herein. In various embodiments, a computing device may be employed to receive and process data signals and image data, and may include an input / output controller, at least one communication interface, and system memory. The system memory includes at least one random access memory (RAM) and at least one read-only memory (ROM). These elements communicate with a central processing unit (CPU) to enable operation of the computing device. In various embodiments, the computing device may include a processor capable of processing program instructions, a memory capable of storing program instructions, and a system memory. The device may be a conventional stand-alone computer, or alternatively, the functionality of the computing device may be distributed across a network of multiple computer systems and architectures. In embodiments, the computing device is capable of executing program instructions. In some embodiments, execution of sequences of program instructions or program code stored in one or more non-volatile memories enables or causes the computing device's CPU to perform various functions, processes, and algorithms, such as, for example, performing image reconstruction for display on a screen. In alternative embodiments, hardwired circuitry may be used in place of or in combination with software instructions to implement the processes of the systems and methods described herein. In some embodiments, one or more programmable embedded microcontrollers and FPGA (Field Programmable Gate Array)-based circuit boards may be used in place of or in combination with software instructions to implement the processes of the systems and methods described herein. Thus, the described systems and methods are not limited to any particular combination of hardware and software.
[0064] It should be further understood that each device may have wireless and / or wired receivers and transmitters capable of transmitting and receiving data, at least one processor capable of processing program instructions, memory capable of storing program instructions, and software comprised of a plurality of program instructions for performing the processes described herein.
[0065] As used herein, the term "crosstalk" refers to the unwanted detection in a first system (such as a low-energy backscatter X-ray system or an RPM imaging subsystem) of an X-ray signal generated by a second system (such as a high-energy linac system).
[0066] A low energy (LE) X-ray scanning system is defined as an X-ray scanning system having an X-ray source operating at an energy range of 120 KeV to 750 KeV. A high energy (HE) X-ray scanning system is defined as an X-ray scanning system having an X-ray source operating at an energy range of 750 KeV to 10 MeV.
[0067] It should be further understood that in preferred embodiments, the presently disclosed invention is practiced only when more than one high-energy x-ray source is operating within 1000 meters of a low-energy x-ray source and / or RPM imaging subsystem, and the high-energy x-ray sources are asynchronously pulsed, have different x-ray dose outputs, or implement a low-dose "personnel" imaging methodology.
[0068] 1A is a block diagram of a crosstalk cancellation system 101 according to one embodiment of the present disclosure. The system 101, in some embodiments, includes a master pulse frequency generator 102 configured to generate a common operating frequency and synchronize multiple linac-based high-energy X-ray inspection systems 104(1-n) to the common operating frequency. The master pulse frequency generator 102 is further configured to communicate the common operating frequency to multiple low-energy X-ray backscatter systems 106(1-n) and, optionally, multiple RPM imaging subsystems 107(1-n) to cancel X-ray crosstalk. Thus, in embodiments, the multiple linac-based high-energy X-ray inspection systems 104(1-n), the multiple low-energy X-ray backscatter systems 106(1-n), and the multiple RPM imaging subsystems 107(1-n) are coupled to the master pulse frequency generator 102 (using any one or combination of an electrical communication system, an optical fiber communication system, or a wireless communication system) and configured to receive the common operating frequency.
[0069] In embodiments, a range of linac pulse repetition frequencies (PRFs) can be generated based on a common operating frequency. In this manner, each of the range of linac PRFs is synchronized to the common operating frequency. In some embodiments, each of the multiple linac-based high-energy X-ray inspection systems 104(1-n) includes a processing module configured to modify or generate the PRF of each of the multiple high-energy X-ray inspection systems for synchronization to the common operating frequency. In embodiments, the electronic subsystem of the linac (each of the high-energy X-ray inspection systems 104(1-n)) is configured to determine whether to receive the common operating frequency for PRF synchronization. Thus, each of the X-ray sources has an independently operating processing module adapted to establish a set of pulse frequencies and is separately in data communication with a single frequency generator configured to generate the common operating frequency.
[0070] It should be understood that in various embodiments, the master pulse frequency generator 102 is physically separate or distinct from the frequency generators that are typically internal to and integrated into each linac of the multiple linac-based high-energy X-ray inspection systems 104(1-n).
[0071] In some embodiments, each of the plurality of low-energy X-ray backscatter systems 106(1-n) includes a processing module configured to remove data associated with a common operating frequency at an instance of time T if any of the high-energy X-ray inspection systems emits X-rays at the instance of time T.
[0072] In some embodiments, each of the plurality of RPM imaging subsystems (1-n) includes a processing module configured to remove data associated with a common operating frequency at an instance of time T if any of the high-energy X-ray systems emits X-rays at the instance of time T.
[0073] The systems and methods herein are in accordance with U.S. Patent Nos. 7,505,556; 7,218,704; 7,099,434; 9,841,386; 7,593,506; 7,400,701; 7,551,715; 7,924,979; 7,551,718; 8,345,819; 8,824,632; 8,532,823; 8,884,236; 8,903,045; 9,146 and 7,555,099, all of which are incorporated herein by reference. In various embodiments, the systems and methods herein may be employed in both static / fixed and mobile scanning systems / solutions, and in wired or wireless configurations.
[0074] FIG. 1B illustrates an exemplary linac-based high-energy X-ray cargo inspection system that may be used with the methods and systems described herein. As shown, the cargo inspection system 130 includes a high-energy radiation source 105 for irradiating an inspection object 110 with a vertically diverging fan-shaped radiation beam 115. The high-energy radiation source 105 may be, but is not limited to, a linear accelerator (linac) or a betatron. In embodiments, the linac or other radiation source provides a radiation dose sufficient to image the container and cargo. In embodiments, the energy and dose output of the linac or other radiation source range from 750 keV to 10 MeV and from 0.07 Gy / min to 15 Gy / min, respectively.
[0075] The selection of the type of radiation source, its strength, and energy output depends on operational requirements such as detector sensitivity, radiation density of the cargo in the space between the source and detector, radiation safety considerations, and inspection speed. One skilled in the art will understand the factors that need to be considered to select the type of radiation source depending on the inspection requirements. In one embodiment, the radiation may be from an X-ray source operating at an energy range from approximately 750 keV up to 10 MeV or more when the inspection object 110 is a large container or vehicle that highly attenuates the X-ray beam. In one embodiment, the inspection object 110 may be a vehicle, truck, railcar, or other container for carrying cargo, passenger luggage, or general belongings.
[0076] The cargo inspection system 130 further includes a detector array 120, preferably positioned behind the inspection target 110 and used to detect radiation transmitted through the inspection target 110. The detector 120 may be formed by a stack of crystals that generate an analog signal when X-rays strike the inspection target 110, with the signal strength proportional to the beam attenuation. In one embodiment, the X-ray beam detector array is composed of a linear array of crystal diode-type solid-state detectors. A typical array uses cadmium tungstate scintillation crystals to absorb X-rays transmitted through the inspection target 110 and convert the absorbed X-rays into photons of visible light. Alternative crystals, such as bismuth iodide, sodium iodide, or other suitable crystals, can be used, as known to those skilled in the art. The crystals can be directly coupled to a suitable detector, such as a photodiode or a photomultiplier. The detector photodiodes can be linearly arranged, providing advantages over photomultipliers in terms of operating range, linearity, and detector-to-detector matching through a unity gain device. In another embodiment, an area detector is used instead of a linear array detector. Such area detectors can be scintillation strips such as cesium iodide or other materials known in the art, can be viewed with a suitable camera, or can be optically coupled to a charge-coupled device (CCD).
[0077] 1B is merely one example of an inspection system employing a high-energy X-ray source, such as, but not limited to, a linac or a betatron. This specification provides systems and methods for eliminating crosstalk between different system configurations employing both high-energy X-ray sources, low-energy X-ray sources, and passive radiation detection monitors.
[0078] Scatter imaging, in which X-rays are scattered by materials (typically in a backscattered direction), offers several unique inspection capabilities and operational features. Scatter imaging allows images to be obtained even when the object is accessible from only one side. Furthermore, because the scattered signal falls off rapidly with increasing object depth, backscatter images effectively represent a "slice" of the object characterizing the side closest to the X-ray source, thereby mitigating image clutter issues that can confound transmission images. The Compton effect, which governs X-ray scattering in the low-energy range (120 keV to 750 keV), governs the interaction of X-rays with dense, low-atomic-number (low-Z) materials. Narcotics, like organic explosives, tend to produce bright signatures in backscatter images, making backscatter imaging a useful imaging modality for bomb or drug detection. Finally, the alignment requirements of the X-ray beam to the detector or collimation device are less stringent than those of transmission imaging, thereby enabling rapid deployment in a wide range of inspection scenarios.
[0079] FIG. 1C illustrates an example of a low-energy X-ray backscatter cargo inspection system. FIG. 1C is a partial cutaway perspective view of a mobile X-ray backscatter cargo inspection system that can be deployed on a road-capable truck and scan an enclosure, such as a vehicle or cargo container, while either or both the inspection system and the enclosure are in motion. FIG. 1D illustrates the inspection system shown in FIG. 1C. 1C and 1D, an X-ray backscatter detector 100 is mounted on a mobile platform 10, i.e., a conveyor typically capable of road travel, that traverses a large object to be inspected, such as a vehicle or cargo container 12. The conveyor 10 is characterized by a housing 14 that is the outer shell of a van, shown here in a cutaway view in FIG. 1C to allow for the display of other components of the inspection system. The conveyor 10 may have many alternative embodiments, including, but not limited to, a gasoline-, diesel-, electric-, propane-, battery-, fuel-cell-, or hydrogen-powered motor vehicle (including a van, truck, or the like), a tracked vehicle, a sled, a trailer, a crane, or other mobile equipment, preferably self-propelled, but also including tethered and pulled vehicles, such as electrically powered.
[0080] Housed within the housing 14 of the conveyor 10 is a radiation source 30 including an X-ray tube 32 (shown in FIG. 1D ) and a chopper 34. The energy of the source is typically in the range of 120 keV to 750 keV; thus, the chopper 34 may be smaller than that employed in systems employing higher energy X-rays. The chopper 34 may be a rotating perforated hub, a wheel with transmitting spokes, or any number of means known in the art for generating a flying spot beam that typically lies in a plane generally perpendicular to the direction of motion 20. By way of example, the X-ray tube 32 depicted in FIG. 1D may be a panoramic X-ray tube capable of wide-angle beam generation and, additionally, may be rotatable to allow scanning on either side of the conveyor 10. The rotating hoop 34, having openings 36 and 38, emits the pencil beam 24, thereby potentially enabling inspection of objects on either side of the conveyor 10, referred to herein as “bilateral” inspection. However, all sources are within the scope of the present invention when employed in the manner described herein. The X-ray source 30 and detector 100 may be oriented to allow scanning from the "driver's side," the "passenger's side," or both sides of the conveyor simultaneously. Various means for mechanically or electronically sweeping a beam of penetrating radiation are known in the art, including, for example, a rotating chopper wheel 34 depicted in FIG. 1D, or electronic scanning, as described in detail in, for example, U.S. Patent No. 6,421,440, issued July 16, 2002, which is incorporated herein by reference.
[0081] The backscatter detector module 100 is carried by the conveyor 10 and is typically enclosed within an enclosure 14 and hidden from view outside the conveyor 10. It may also be carried outside the conveyor 10 for certain applications within the scope of the present invention. The detector module 100 includes a detector for detecting penetrating radiation from the source 30 that is scattered upon interaction with the contents of the inspected object 12. The scattering source may be characterized as being anomalous relative to the nature of the person or item being scanned. In this manner, a person carrying an explosive can be detected based on locally enhanced X-ray scattering. Specific characteristics of the scattering, such as its localization or specific nature relative to the inspected object, can be ascertained to determine the threat level of the object.
[0082] Inspection of the object 12 may be performed by an operator located within the conveyor 10, or alternatively, by an operator located at a remote location. For inspection, the object 12 may be held stationary with the conveyor 10 traversing the object along a direction 20 (forward or backward), or inspection may be performed while both the conveyor 10 and the object 12 being inspected are moving. In yet another mode, referred to as "portal mode," the inspection system is stationary and the object being inspected is transported through the inspection system. When the object being inspected is a person, the person may be required to walk slowly in front of the conveyor 10, preferably in both directions, so that both sides of the person can be surveyed. In "stationary mode," both the inspection system and the object being inspected are stationary, and a vehicle-mounted inspection system configured as part of the inspection system itself to effectively make both horizontal and vertical scans to generate the backscattered X-ray image. A conventional X-ray scanning method is employed, which may include the use of an XY translation stage, an electronically steered X-ray source (e.g., as described in U.S. Pat. No. 6,421,420), or other means.
[0083] The relative motion of the conveyor 10 and the object 12 may be carefully controlled or monitored by sensors 18 employing any of a variety of sensing methods such as radar, ultrasonic, or optical, including laser or LIDAR sensing, all of which are merely examples for sensing the relative speed of the conveyor 10 with respect to the object 12. The signals obtained by the sensors 18 may be employed by the controller 40 in one or more of the following modalities to adjust for vehicle speed, or alternatively, pixel registration may be corrected to compensate for vehicle speed anomalies, to produce aspect ratio corrected, distortion-free, backscattered X-ray images. Related techniques include, but are not limited to, the use of high-precision vehicle speed sensing devices to accurately measure vehicle speeds in the low-speed (0.8-16 km / h (0.5-10 mph)) range, the use of low-speed (0.8-16 km / h (0.5-10 mph)) electronic and / or software-based engine and / or transmission controls, and the use of custom vehicle drivetrain gear designs to create low vehicle scan speeds while simultaneously maintaining the ability to provide a roadworthy speed range of at least 55 mph (55 mph). In embodiments, the capture rate of the scan data is fixed by the rotational speed of the chopper wheel 34, so the speed of the conveyor 10 does not affect scan quality. Therefore, in embodiments, for a backscatter X-ray inspection system as described herein, pixel registration is corrected to remove unwanted / corrupted data from the scan data using a common operating frequency signal as described herein. The common operating frequency signal is used to identify the corrupted data, and then artifacts are removed using one or more predetermined image processing algorithms in a processing module as described herein.
[0084] FIG. 1E illustrates an example of an X-ray backscatter system 150 that may be deployed under a vehicle for under-chassis inspection. FIG. 1F illustrates another view of the X-ray backscatter system 150 shown in FIG. 1E. Inspecting the underside of a vehicle with a portable X-ray backscatter system presents special challenges. Automotive road clearance is less than 8 inches and can be as low as 6 inches. Fixed inspection systems, such as portals, can place the detector in the ground, or the detector can be placed above the ground. The X-ray source (e.g., an X-ray tube) employed in the under-chassis backscatter system 150 may consist of an electromagnetic scanner 152 with an electron beam traversing an anode. The electromagnetic scanner 152 is driven by an electronics module 154. X-rays generated by the source are collimated by a linear array 156 of apertures that, for example, span 30 inches (76.2 cm) of the underside in one pass. A detector 158 is mounted on each side of the X-ray tube to detect X-rays 160 backscattered from the vehicle 162. The power supply, pulse and image processor may be appropriately mounted. The chassis 164 of the backscatter inspection system 150 on wheels 166 may be adapted to be steered under the vehicle 162 by motor or manual control.
[0085] Figure 1G is a diagram of a co-located fixed-site X-ray imaging system 170 that combines both high-energy transmission imaging and low-energy backscatter imaging within the same inspection platform. Figure 1H shows a diagram of a mobile X-ray scanning system 175 that combines a high-energy transmission imaging system 176, a low-energy backscatter imaging system 177, and a passive radiation detection system 178 within the same inspection platform. Figure 1I shows a stand-alone fixed-site passive gamma / neutron portal monitor (RPM imaging subsystem) solution 180 that can be deployed in proximity to either a high-energy or low-energy X-ray imaging system.
[0086] 1A , in an embodiment, multiple linac-based high-energy X-ray inspection systems 104 are programmed to emit X-rays synchronized with a common operating frequency generated by a master pulse frequency generator 102. Limiting the number of high-energy X-ray frequencies by generating a common operating frequency limits the number of different interference patterns that can occur with multiple low-energy X-ray inspection systems 106 or RPM inspection systems 107 to one. This also simplifies the crosstalk cancellation process due to the presence of a single, known interference pattern.
[0087] The common operating frequency signal generated by the master pulse frequency generator 102 is also communicated to each of the multiple low energy X-ray backscatter inspection systems 106, and when using image processing algorithms, can eliminate or remove a significant portion of the crosstalk from the inspection images produced by each of the backscatter inspection systems 106 when high energy X-rays are present. By limiting the crosstalk reduction to only when high energy X-rays are present, unnecessary processing and / or corruption of the backscatter inspection images is eliminated, which prevents degradation of image performance and reduced detectability.
[0088] In an embodiment, adjacent signal values are averaged to ensure the overall image quality is smooth and free of sharp edges / distortions. This method effectively removes all crosstalk in low-energy inspection systems. However, such crosstalk removal may result in image quality degradation in some areas of the resulting image. For example, in the case of a vehicle being scanned by a backscatter inspection system, certain signals (equivalent to interference pulses) within the vehicle may not be captured in the scanned image. However, the frequency of the interference pulses is low compared to the data capture rate of the backscatter inspection system, so interference pulses are infrequent and data loss is not significant. In an exemplary backscatter system with a sample rate of 10 ms per line, at 400 Hz pps, the corresponding linac operates for a period of 2 μs every 25 ms, thereby affecting only 1–2 pixels. Therefore, data loss is equivalent to a maximum of 2 pixels per 2500 data points (i.e., 0.08%).
[0089] In one embodiment, the master pulse frequency generator 102 is operable whenever two or more of the high-energy X-ray inspection system 104 and the low-energy X-ray inspection system 106 located within a predetermined distance of each other are operable. In embodiments when two or more of the high-energy X-ray inspection system 104 and the low-energy X-ray inspection system 106 are co-located and form part of a single screening system, the predetermined distance between the systems 104, 106 may be as short as 5 m (15 ft). In embodiments when two or more of the high-energy X-ray inspection system 104 and the low-energy X-ray inspection system 106 are operating in series with each other but decoupled (i.e., their scan tunnels are aligned but there is a gap between them), the predetermined distance may be greater than approximately 33 m or 1000 ft. In embodiments when two or more of the high-energy X-ray inspection system 104 and the low-energy X-ray inspection system 106 are separated, offset, and operating within shielded walls, the predetermined distance may be less than 50 m (150 ft). Additionally, in embodiments, the predetermined distance may be increased based on the dose output of the high-energy X-ray inspection system 104. It should be noted that the distances mentioned above are exemplary and apply to portal-based systems. For high transmission gantry systems, the distances may be greater in these configurations.
[0090] In some embodiments, fiber optic cables are configured to enable communication between the master pulse frequency generator 102, the linac-based high-energy X-ray inspection system 104, the low-energy X-ray backscatter system 106, and the RPM subsystem 107. As is known, fiber optic transmission offers greater bandwidth capabilities, longer transmission times, and greater signal quality compared to other transmission means. It provides distance operation, higher security, and better resistance to electromagnetic interference. In embodiments, the use of fiber optic communications provides seamless and fast operation of the system 101, since the individual X-ray inspection systems may be operating from different power sources and may be located at various distances from each other, ranging up to several meters (as described above).
[0091] It should be appreciated that sophisticated crosstalk cancellation techniques are required for inspection systems such as, but not limited to, inspection systems with drive-through or manned cab scanning capabilities.
[0092] 2A is a schematic diagram of a first implementation of a crosstalk cancellation system 200a according to one embodiment of the present disclosure. The system 200a comprises a beat master (BEAT_MASTER) 202 (also referred to as a "common operating frequency generation unit") that includes an ND-CONCENTRATOR 204 configured to operate as a master frequency generator with multiple ND-FOCUS 206 devices to provide the common operating frequency to the rest of the system 200a. In an embodiment, the ND-CONCENTRATOR 204 is configured as a programmable embedded microcontroller and FPGA-based circuit board that utilizes an on-board crystal oscillator to generate timing signals. In an embodiment, the ND-FOCUS 206 is an electronics board that communicates via a fiber optic cable and is configured to operate as both a source / master and a sink / slave of the common operating frequency.
[0093] System 200a also includes two high-energy X-ray inspection systems 208 and 210, each of which, in an embodiment, includes an ND-FOCUS 206 configured to receive a common operating frequency and connect to one or more ND-CONCENTRATORS 204, which in turn are configured to operate as transmit system control and data capture electronics and data distribution hardware. In addition, system 200a includes three low-energy X-ray-based backscatter X-ray inspection systems 212, 214, and 216, each of which, in an embodiment, includes an ND-FOCUS 206 configured to receive a common operating frequency and connect to one or more eDAQ (electronic data acquisition) backscatter signal processing subsystems 218. System 200a further includes two radiation portal monitor (RPM) inspection systems 219 and 220, each of which, in an embodiment, includes an ND-FOCUS 206 configured to receive a common operating frequency and connect to RPM detector processing electronics 221.
[0094] Additionally, multiple communication systems 222 allow systems 208, 210, 212, 214, 216, 219, and 220 to be physically separated by distances of up to and beyond 1000 meters, while providing low latency communication at a common operating frequency when needed. In various embodiments, communication system 222 includes any one or combination of an electrical communication system, an optical fiber communication system, or a wireless communication system.
[0095] A common operating frequency generated by the common operating frequency generating unit 202, also referred to as the master pulse frequency generator or beat master, is transmitted to each of the high-energy X-ray transmission inspection systems 208, 210, which are programmed to emit X-rays synchronized with the common operating frequency generated by the master pulse frequency generator. The common operating frequency generated by the beat master 202 is also transmitted to each of the low-energy X-ray backscatter inspection systems 212, 214, 216, where it can mitigate the presence of crosstalk from inspection images generated by the backscatter systems 212, 214, 216 via the backscatter system data acquisition electronics 218 and image processing algorithms.
[0096] The common operating frequency generated by the beat master 202 is also used by the RPM subsystem 21 The presence of crosstalk can be mitigated using techniques such as blanking to remove the contribution of crosstalk signals in the measured RPM data transmitted to each of the systems 200a and 200b. Thus, system 200a is configured with a separate beat master 202 that transmits a common operating frequency to two adjacent high-energy X-ray transmission systems 208, 210, three adjacent low-energy X-ray backscatter systems 212, 214, 216, and two adjacent RPM systems 219, 220.
[0097] 2B is a schematic diagram of a second implementation of a crosstalk cancellation system 200b in accordance with embodiments herein. The system 200b is configured to "co-locate" a high-energy X-ray transmission system 208 and a low-energy X-ray backscatter system 212, meaning that the two systems 208, 212 are integrated into a single screening solution. The system 208 is the only high-energy X-ray transmission system within the entire site, and therefore the beat master 202 is integrated "within" the high-energy X-ray transmission platform 208. The system 200b also features three separate, adjacent inspection stations that include a low-energy X-ray backscatter unit 214 and two RPM units 219, 220 that receive a common operating frequency signal from the co-located beat master 202. Other elements such as ND-CONCENTRATOR 204, ND-FOCUS 206, eDAQ (electronic data acquisition) backscatter signal processing subsystem 218, RPM detector processing electronics 221, and communication system 222 are described above for system 200a.
[0098] 2C is a schematic diagram of a third implementation of a crosstalk cancellation system 200c according to embodiments herein. The system 200c is configured to have a first high-energy transmission system 208 proximate to a second high-energy X-ray transmission system 210 proximate to a stand-alone RPM unit 219. In an embodiment, the use of a first beat master 202a and a second beat master 202b co-integrated within each respective high-energy X-ray transmission system 208, 210 is employed. When the first high-energy X-ray transmission system 208 is operational, then the first high-energy X-ray transmission system 208 is configured to adopt the role of a master frequency generator and communicate a common operating frequency to the second high-energy X-ray transmission system 210 and the RPM unit 219 via the ND-FOCUS board 206 and a communication system 222 (such as, but not limited to, a fiber optic cable connection). However, if the first high-energy X-ray transmission system 208 is not powered or operational, then the second high-energy X-ray transmission system 210 is configured to assume the role of the master frequency generator and communicate the common operating frequency to the first high-energy X-ray transmission system 208 via the ND-FOCUS board 206 and the communication system 222. In this case, the RPM unit 219 continues to receive the common operating frequency when either or both of the first and second high-energy X-ray transmission systems 208, 210 are operational. Other elements, such as the ND-CONCENTRATOR 204 and the RPM detector processing electronics 221, are described above for the system 200a.
[0099] FIG. 3A provides a visual representation of the relationship between multiple different individual high-energy X-ray source pulse repetition frequencies and a common operating frequency in accordance with one embodiment of the present disclosure. FIG. 3A shows a timing diagram 300 of the relationship between the common operating frequency and any individual high-energy X-ray source pulse repetition frequency. In an embodiment, a maximum common operating frequency signal 301 is generated within the beat master, as described above. A first plurality of timing diagrams 302 show exemplary linac PRF (pulse repetition frequency) set points that may be established or achieved through integer divisions of the maximum common operating frequency. A second plurality of timing diagrams 303 show exemplary linac PRF set points that may be established or achieved through non-integer divisions. In an embodiment, the frequencies / signals / operations of the individual X-ray sources are determined by the X-ray source's own timing. It is not changed internally. In an embodiment, the frequency of the signal sent to the X-ray source or linac that triggers the generation of an X-ray pulse (or burst of X-rays) is changed. Every rising edge of the signal will cause the X-ray source to generate an X-ray pulse. The frequency of the trigger signal is the pulse repetition frequency (PRF).
[0100] FIG. 3B provides a visual representation of synchronizing multiple different individual high-energy X-ray source pulse repetition frequencies to a common operating frequency according to embodiments herein. In embodiments, a common operating frequency signal 301 is generated within a beat master 305, as described above. The common operating frequency 301 is communicated to at least one processing module 310 associated with at least one X-ray source or linac, which then generates a PRF trigger signal 315. This signal is then communicated to a linac 320, which produces an X-ray pulse output 325. Thus, in embodiments, a processing module coupled to each high-energy X-ray source will receive the common operating frequency and then generate a linac trigger time pulse generation frequency signal synchronized to the common operating frequency (linac_PRF_trigger_signal). The linac trigger time interval will vary depending on the required X-ray pulse repetition frequency of the system to be employed.
[0101] 4A shows a scan image 400a obtained via a low-energy backscatter X-ray inspection system placed in close proximity to multiple high-energy X-ray transmission inspection systems, each pulsing asynchronously, and the significant effects of crosstalk image corruption are visible. Numerous white dot artifacts 402 result from multiple interference patterns resulting from the inconsistent summation of multiple pulse repetition frequencies from the high-energy X-ray sources. While it is possible to remove such data using the techniques described above, the overall quality of the resulting image will be reduced due to the significant number of corrected pixels.
[0102] FIG. 4B shows a scan image 400b obtained via a low-energy backscatter X-ray inspection system positioned adjacent to multiple high-energy X-ray transmission inspection systems, each pulsing synchronously. The effect of the crosstalk cancellation algorithm has been disabled from approximately half of image 400b to illustrate the comparison. As shown, image 400b is comprised of a first portion 404 and a second portion 406. The second portion 406 illustrates crosstalk from multiple synchronized high-energy transmission systems operating adjacent to the low-energy backscatter system from which image 400b was obtained. In an embodiment, the crosstalk signal visible in second portion 406 arises due to interference between the operating frequencies of the low-energy X-ray system and the high-energy X-ray system and depends on the relative frequencies of operation between the systems. The crosstalk in second portion 406 appears as a series of bright pixels 408, blurring image portion 406 and making it less effective at detecting threat items that may be present in the scanned object, although this is less of an effect than when multiple systems are operating asynchronously (as shown in FIG. 4A). The first portion 404 appears clearer than the second portion 406 because crosstalk from multiple high-energy transmission systems operating in close proximity has been eliminated using the systems and methods described herein.
[0103] FIG. 5 illustrates a backscatter signal 504 captured by a low-energy backscatter X-ray scanning system located in close proximity to a high-energy X-ray scanning system. As can be seen, the backscatter signal 502 represents an unwanted signal originating from a linac-based high-energy X-ray transmission system. Conventional methods that rely on this pulse magnitude to remove unwanted signals cannot lead to mitigation due to possible variations in dose, varying distances of co-located systems, and asynchronous operation of multiple high-energy X-ray sources. In an embodiment, a low-energy backscatter scanning system and an RPM sensor are located in close proximity to the high-energy scanning system. The use of a common operating frequency distributed across the sub-systems ensures that the crosstalk signals 502 occur at the same known time, thereby reducing the number of interference patterns to one and enabling the implementation of mitigation techniques in low energy backscatter and RPM systems.
[0104] 6A illustrates an exemplary system deployment scenario 600a according to embodiments herein. As shown in FIG. 6A, a stand-alone low-energy X-ray backscatter system 605 is co-located in close proximity to both a high-energy X-ray transmission system 610 and a low-energy X-ray backscatter system 630. In deployment scenario 600, a beat master (i.e., a master pulse generator unit) is located within high-energy X-ray transmission system 610, and a common operating frequency (generated by the BEAT beat master) is distributed to the stand-alone adjacent low-energy X-ray backscatter system 605 as well as the co-located nearby low-energy X-ray backscatter system 630.
[0105] FIG. 6B illustrates another exemplary system deployment scenario 600b according to embodiments herein. As shown in FIG. 6B, six high-energy X-ray transmission systems 611, 612, 613, 614, 615, and 616 (collectively referred to herein as “611-616”) and four low-energy X-ray backscatter systems 621, 622, 623, and 624 (collectively referred to herein as “621-624”) are installed in close proximity. As a result, there is interference from each of the six high-energy X-ray transmission systems 611-616 to each of the four low-energy X-ray backscatter systems 621-624. In some embodiments, the six high-energy X-ray transmission systems 611-616 can also operate in a very low X-ray dose or “Cab-Scan” mode to support driver-only scanning. Each of the six high-energy X-ray transmission systems 611-616 requires synchronized firing of the sources to prevent interference with adjacent, nearby low-energy X-ray backscatter systems. Therefore, in some embodiments, one beat master 635 (i.e., master pulse generator unit) is provided in a building adjacent to deployment scenario 600b to generate a common operating frequency, along with a single ND_FOCUS (i.e., slave unit) for each of the six high-energy X-ray transmission systems 611-616 and each of the four low-energy X-ray backscatter systems 621-624. This allows the high-energy X-ray transmission systems 611-616 to adopt the common operating frequency and the low-energy X-ray backscatter systems 621-624 to receive data for blanking crosstalk signals (e.g., via fiber optic cables) at the common operating frequency.
[0106] 7 is a flowchart of exemplary steps of a method for eliminating crosstalk between multiple X-ray scanning systems in accordance with certain embodiments herein. In step 702, a master frequency generator is configured to generate a common operating frequency. In step 704, the generated common operating frequency is communicated to at least one high-energy X-ray scanning system. In some embodiments, the at least one high-energy X-ray scanning system is a linac-based X-ray scanning platform. In various embodiments, the at least one high-energy X-ray scanning system is either fixed or mobile / portable.
[0107] In step 706, the pulse repetition frequency of the X-ray source of at least one high-energy X-ray scanning system is synchronized with the common operating frequency. In an embodiment, the individual high-energy X-ray PRF (pulse repetition frequency) values are combined to synchronize with both integer and non-integer divisions of the common operating frequency.
[0108] In some embodiments, the pulse repetition frequency of the X-ray source of the at least one high energy X-ray scanning system is varied to vary the velocity of the object to be scanned as it passes through the high energy X-ray scanning system, for example configured as a portal system, or to vary the speed of the gun. Modulation to adapt to different imaging / scanning scenarios, such as by varying the speed of the X-ray source moving along the rails of a high-energy X-ray scanning system configured as a triaxial system.
[0109] In step 708, the generated common operating frequency is transmitted to at least one low-energy X-ray scanning system and / or at least one passive radiation detection system. In some embodiments, the at least one high-energy X-ray scanning system and the at least one low-energy X-ray scanning system are located within a predetermined distance from each other. In some embodiments, the at least one high-energy X-ray scanning system and the at least one passive radiation detection system are located within a predetermined distance from each other. In some embodiments, the at least one high-energy X-ray scanning system, the at least one low-energy X-ray scanning system, and the at least one passive radiation detection system are located within a predetermined distance from each other. Various additional exemplary deployment scenarios are described with reference to FIGS. 2A, 2B, 2C, 6A, and 6B. In some embodiments, the predetermined distance is less than 1000 m.
[0110] In some embodiments, the at least one low energy X-ray scanning system is an X-ray backscatter scanning system. In some embodiments, the at least one passive radiation detection system is a radiation portal monitor (RPM). In various embodiments, the generated common operating frequency is transmitted using any one or combination of an electrical system, a fiber optic system, or a wireless communication system.
[0111] In step 710, the common operating frequency is used to remove crosstalk data associated with the at least one high-energy X-ray scanning system from scan data acquired by the at least one low-energy X-ray scanning system and / or the at least one passive radiation detection system. In some embodiments, unwanted signals associated with the crosstalk data corresponding to the common operating frequency are removed from images produced by the low-energy X-ray scanning system. In some embodiments, the crosstalk data corresponding to the common operating frequency is removed from scan data acquired by the at least one passive radiation detection system.
[0112] The above examples are merely illustrative of the many applications of the systems and methods herein. While only a few embodiments of the present invention have been described herein, it should be understood that the present invention may be embodied in many other specific forms without departing from the spirit or scope of the present invention. Therefore, the present examples and embodiments are to be considered as illustrative and not restrictive, and the present invention may be modified within the scope of the appended claims.
Claims
1. 1. A system for eliminating x-ray crosstalk between a plurality of x-ray scanning systems having at least one high-energy x-ray source and at least one low-energy x-ray scanning system, the system comprising: a frequency generator configured to generate a common operating frequency; the at least one high-energy X-ray source coupled to the frequency generator, the at least one high-energy X-ray source including a first processing module for receiving the common operating frequency and configured to generate a pulse repetition frequency of the at least one high-energy X-ray source for synchronization with the common operating frequency; the at least one low energy X-ray scanning system coupled to the frequency generator to receive the common operating frequency, the at least one low energy X-ray scanning system including a second processing module configured to remove data associated with the common operating frequency at a first instance of time when the at least one high energy X-ray source emits X-rays at the first instance of time; A system comprising:
2. 10. The system of claim 1, further comprising at least one radiation portal monitor coupled to the frequency generator to receive the common operating frequency, the at least one radiation portal monitor including a third processing module configured to remove data associated with the common operating frequency at a second instance of time if the at least one high-energy x-ray source emits x-rays at the second instance of time.
3. 3. The system of claim 2, further comprising a radiation portal monitor (RPM), the RPM including a passive radiation detector that detects and measures radiation emitted by radioactive materials without any stimulus, and the RPM is either a fixed position scanning system or a portable scanning system.
4. 10. The system of claim 1, further comprising a high-energy X-ray scanning system comprising the at least one high-energy X-ray source, wherein the at least one high-energy X-ray source is a linear accelerator, and the high-energy X-ray scanning system is either a fixed-position scanning system or a portable scanning system.
5. 10. The system of claim 1, further comprising an X-ray backscatter scanning system, the X-ray backscatter scanning system including at least one low energy X-ray source, and the X-ray backscatter scanning system being either a fixed position scanning system or a portable scanning system.
6. 10. The system of claim 1, wherein the at least one high-energy X-ray source is a linear accelerator, and the at least one high-energy X-ray source is adapted to synchronize a pulse repetition frequency (PRF) of the linear accelerator to the common operating frequency.
7. 10. The system of claim 1, wherein the at least one high-energy x-ray source and the at least one low-energy x-ray scanning system are located within a predetermined distance of each other.
8. 8. The system of claim 7, wherein the predetermined distance is 1000 m or less.
9. 10. The system of claim 1, wherein the at least one high energy x-ray source and the at least one RPM system are located within a predetermined distance of each other.
10. 10. The system of claim 9, wherein the predetermined distance is 1000 m or less.
11. 10. The system of claim 1, wherein the at least one high-energy x-ray source includes transmission-based linear accelerator control and data capture electronics and data distribution hardware.
12. 6. The system of claim 5, wherein the at least one low energy x-ray source includes data distribution hardware and backscatter data capture electronics.
13. 1. A method for eliminating crosstalk between multiple x-ray scanning systems having at least one high energy x-ray source and at least one low energy x-ray system, the method comprising: generating a common operating frequency using a frequency generator; transmitting the common operating frequency to the at least one high energy x-ray source; synchronizing the pulse repetition frequency of the high energy x-ray source to the common operating frequency; transmitting the common operating frequency to at least one low energy x-ray scanning system; removing crosstalk data associated with the at least one high-energy x-ray source from scan data acquired by the at least one low-energy x-ray system using the common operating frequency; A method comprising:
14. 14. The method of claim 13, further comprising the step of communicating the common operating frequency to at least one passive radiation detection system.
15. 15. The method of claim 14, further comprising using the common operating frequency to remove crosstalk data associated with the at least one high-energy x-ray source from scan data acquired by the at least one passive radiation detection system.
16. 15. The method of claim 14, wherein the at least one high-energy X-ray source and the at least one passive radiation detection system are located within a predetermined distance of each other.
17. 17. The method of claim 16, wherein the predetermined distance is 1000 m or less.
18. 14. The method of claim 13, further comprising synthesizing individual high-energy x-ray pulse repetition frequency values synchronized to both integer and non-integer divisions of the common operating frequency.
19. 14. The method of claim 13, further comprising removing unwanted signals associated with crosstalk data corresponding to the common operating frequency from an image produced by a low-energy x-ray scanning system comprising at least one low-energy x-ray source.
20. 14. The method of claim 13, wherein the at least one high energy x-ray source comprises a linear accelerator.
21. 20. The method of claim 19, wherein the at least one low energy x-ray source is integrated into an x-ray backscatter scanning system.
22. 20. The method of claim 19, wherein the at least one high-energy x-ray source and the at least one low-energy x-ray source are located within a predetermined distance from each other.
23. 23. The method of claim 22, wherein the predetermined distance is 1000 m or less.
24. 14. The method of claim 13, further comprising modulating the pulse repetition frequency of the at least one high-energy X-ray source to accommodate at least one of a changing speed of an object to be scanned as it passes through a portal system or a speed of the at least one high-energy X-ray source moving along a rail of a gantry system.
Citation Information
Patent Citations
Noise Reduction In Xray Emitter / Detector Systems
US20100098216A1
High-Speed Security Inspection System
US20130230139A1
Covert Surveillance Using Multi-Modality Sensing
US20140226789A1
Method for Obtaining Information Signatures from Nuclear Material or About the Presence, the Nature and / or the Shielding of a Nuclear Material and Measurement Setup for Performing Such Method
US20140264058A1