基于光栅干涉仪的暗场成像的Cramér-Rao下界.pdf
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1、IntroductionOver the past decades,dark-field imaging using agrating interferometer has showed great promise indiverse fields1,as it is compatible with conventionalsources,including X-ray tube sources2and neutrons3,anddoesnot requirehightemporal coherence4.Especially,dark-field imaging can provide in
2、formationabout the objects microstructures on a scale below thespatial resolution of the grating interferometer,and alsoenables visualization of spatially-resolved small-anglescattering properties5-6.In recent years,X-ray dark-fieldimaging with a grating interferometer has shown toprovide significan
3、t benefits for several applications,including but not limited to:mammography7,pulmonaryimaging8,materials analysis9,security screening10andfood sciences11.Meanwhile,neutron dark-field imagingusing a Talbot-Lau interferometer also has shown greatpotentialinnon-destructivetestingofmetallicmaterials12,
4、research on magnetic materials13-14,and soon,owing to the unique neutron features of highpenetration and magnetic moment.In grating interferometry,several methods have beendeveloped for quantitative signal retrieval from measuredintensities15-20.Among them,the phase stepping(PS)technique is routinel
5、y used as the standard approach19,21.The noise performance of the 3 signals retrieved with PStechniquehavebeentheoreticallyanalyzedandexperimentally validated22-25.However,previous studiesdemonstrated that the noise variances of amplitude andphase signals obtained with a grating interferometer werea
6、lways higher than Cramr-Rao lower bound(CRLB)26.Numerical results implied a sub-optimality of PStechnique for refraction and dark-field imaging in termsof noise variance27.Their results also suggested thenecessity of developing advanced retrieval algorithms tofurther reduce the noise variance and im
7、prove doseefficiency.Recently,reference28discussed the noisestandard deviation and algorithm efficiency of phaseshifting interferometry theoretically and numerically usingCRLB.Although their studies were presented in terms ofthe optical pathlength,the obtained results were alsoapplicable to grating-
8、based refraction imaging,with somemathematical transforms.However,there still lacks of acomprehensive evaluation on the algorithm performancewith respect to dark-field imaging using a gratinginterferometer.Herein the performance of the PS technique for dark-field retrieval using CRLB is evaluated.An
9、alyticalCramr-Rao lower bound of dark-field imaging using a grating interferometerLIU Bo,CHEN Zihan,GU Yao,CHEN Heng,WANG ZhiliDepartment of Optical Engineering,School of Physics,Hefei University of Technology,Hefei 230009,ChinaAbstract:In grating-based phase contrast imaging,the phase stepping tech
10、nique is commonly utilized for data acquisition andsignal retrieval from acquired intensity data.However,the algorithm efficiency with respect to the dark-field retrieval has yet tobe sufficiently evaluated.Herein the algorithm efficiency of dark-field retrieval based on Cramr-Rao lower bound is eva
11、luated.The theoretical analysis and numerical results demonstrates that fully efficient algorithm is currently available only for 3-step phasestepping technique,and other techniques with more phase steps are all sub-optimal.Quantitatively,the dependence of the algorithmefficiency on the phase step n
12、umber and the visibility is investigated.It is shown that the phase stepping technique can nearlyapproach its theoretical optimal efficiency in the case of a low visibility.With a phase step greater than 5,the algorithm efficiencyis only 77.4%in the case of a high visibility.The study can provide so
13、me reference for signal-to-noise ratio improvement andpotential dose optimization in X-ray and neutron grating-based dark-field imaging.Keywords:dark-field imaging;grating interferometer;Cramr-Rao lower bound;visibilityReceived:2023-03-24Supported by the National Natural Science Foundation of China(
14、U1532113,11475170,11905041),and the Fundamental Research Funds for the CentralUniversities(PA2020GDKC0024,JZ2022HGTB0244)Leading author:LIU Bo,Master,Research Direction:X-ray phasecontrast imaging,E-mail:Corresponding author:WANG Zhili,Doctor,Professor,ResearchDirection:X-ray phase contrast imaging,
15、E-mail:DOI:10.3969/j.issn.1005-202X.2023.09.008第40卷第9期2023年 9月中国医学物理学杂志Chinese Journal of Medical PhysicsVol.40 No.9September 2023Medical imaging physics-1105expressions of CRLB were derived for 3-step and 4-stepPStechniques,respectively.Throughnumericalsimulations,we discussed the dependence of the
16、 CRLBandalgorithmefficiencyonvariousexperimentalparameters,including the mean intensity,the phase stepnumber and the visibility.The presented results can beuseful for advanced algorithm development and furthernoise reduction in grating-based dark-field imaging.1 Theory and methods1.1 Signal retrieva
17、l by PS techniqueIn grating interferometer,the PS technique iscommonly used as the standard approach for dataacquisition and retrieval of multi-contrast signals.In dataacquisition,one of the gratings is translated laterally overits period with a total ofNphase step,while intensitymeasurements are pe
18、rformed at each phase step.For eachdetector pixel,the measured intensity oscillationIkfor aphase stepkcan be expressed as2:Ik=I01+Vcos()+2kN()1 k N(1)whereI0,V,anddenote the mean intensity,the visibility,and the phase of the intensity oscillation,respectively,andNis the total number of phase step.Fo
19、r notation brevity,the spatial dependence of all terms has been omitted in Eq.(1).Subsequently,we can readily retrieve the meanintensityI0,the phaseand the visibilityVbyI0=1Nk=1NIk(2)=-tan-1k=1NIksin()2kNk=1NIkcos()2kN(3)V=2k=1NIksin()2kN2+k=1NIkcos()2kN2k=1NIk(4)In order to quantitatively retrieve
20、the transmission,refraction,and dark-field signals,one needs to comparemeasurements with a sample in the beam,to referencemeasurements without sample,and thereby deduce thelocal changes of the intensity oscillation induced by thesample.In the following,the superscriptssandrwillconsistently denote th
21、e values measured with the samplein place and as a reference without.The transmissionsignalTis calculated by the negative logarithm of theratio of the mean intensity with sampleIs0and withoutIr0:T=-ln()Is0Ir0=()x,y,z dz(5)Where()x,y,zdenotes the samples linear attenuationcoefficient.The refraction s
22、ignalRcan be obtained by thedifference of the sample phasesand the reference phaser:R=s-r(6)The dark-field signalDis given by the localreduction of the visibility of the intensity oscillation:D=VsVr(7)Where theVsdenotes the samples visibility and theVrdenotes the references visibility.These 3 signal
23、s arecalculated on a pixel-by-pixel basis,and normallydisplayed in the form of images.1.2 CRLB of dark-field signalThe CRLB gives the lowest possible noise varianceof the estimated parameters from a set of noisymeasurements.In the following,we will use CRLB as ametric to evaluate the noise variance
24、of the dark-fieldsignal retrieved by the PS technique.The study alsoconsiders the Poisson distributed photon-counting noise,the most dominant noise source in real experiments,which has been validated for both X-ray and neutronimaging previously18,22,29-30.For photon-counting detectors,the measured d
25、atafollows the Poisson distribution.Under this noise model,the joint probabilityPof acquired intensities at all phasesteps is given byP()I0,V,=k=1N()IkIkIk!exp()-Ik(8)whereIkdenotes the measured intensity for a phase stepk,andIkdenotes the corresponding mean value.Secondly,the log-likelihood functio
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