DIN 6868-161-2013 Image quality assurance in diagnostic X-ray departments Part 161 R V acceptance testing of dental radiographic equipment for digital cone-beam computed tomography.pdf
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1、January 2013DEUTSCHE NORM English price group 14No part of this translation may be reproduced without prior permission ofDIN Deutsches Institut fr Normung e. V., Berlin. Beuth Verlag GmbH, 10772 Berlin, Germany,has the exclusive right of sale for German Standards (DIN-Normen).ICS 11.040.50; 37.040.2
2、5!%L 5. 4.3.7.2 Test Using the reconstruction of a homogeneous slice of the PMMA TEST PHANTOM, five equally sized fields from the corresponding data set (each approximately 2 to 3 % of the imaged phantom surface area) are to be defined. One field is to be in the centre of the TEST PHANTOM surface ar
3、ea, the other four fields are to be equidistant from the centre and at a distance of at least one-half of the imaged PHANTOMS radius. The arithmetic mean of the PIXEL VALUES in each field is to be recorded: Hc(centre), Hl(left), Hr(right), Ht(top) and Hb(bottom). NOTE 1 One possible distribution of
4、the fields is shown in Annex E.3. To calculate the large-area HOMOGENEITY INDEX, the maximum difference between the means for fields Hc, Hl, Hr, Htand Hb, and the average of the five field means, HM, is to be compared to the basic contrast maxmin (see Annex B) according to Equation (4): = maxminMax|
5、cM|,|bM|,|lM|,|rM|,|tM|(4) where: H is the HOMOGENEITY INDEX; maxis the average of the PIXEL VALUES in the row mmax(see Annex B); is the average of the PIXEL VALUES in the row mmin(see Annex B); Hcis the arithmetic mean of the PIXEL VALUES in the central field; Hlis the arithmetic mean of the PIXEL
6、VALUES in the left field; Hris the arithmetic mean of the PIXEL VALUES in the right field; Htis the arithmetic mean of the PIXEL VALUES in the top field; Hbis the arithmetic mean of the PIXEL VALUES in the bottom field; HMis the average of the values Hc, Hl, Hr, Htand Hb. DIN 6868-161:2013-01 15 NOT
7、E 2 By comparing the differences to the basic displayed contrast, the HOMOGENEITY INDEX remains independent of the chosen gray-level scaling for the tested systems. A larger value of H corresponds to better large-area homogeneity. 4.3.8 ARTEFACTS 4.3.8.1 Requirement No ARTEFACTS shall appear that in
8、terfere significantly with the diagnosis. Examples of possible ARTEFACTS are shown in Annex C. 4.3.8.2 Test The entire data set in the axial view (along the z-axis) shall be examined. NOTE Depending on the reconstruction algorithm, certain ARTEFACTS are unavoidable. The appearance of new ARTEFACTS c
9、an indicate malfunctions. DIN 6868-161:2013-01 16 Annex A (normative) Simplified determination of the MODULATION TRANSFER BEHAVIOUR The basis for the determination of the MODULATION TRANSFER BEHAVIOUR is a rectangular region of interest (ROI) selected in an axial slice of the reconstructed data set
10、of the TEST PHANTOM. The sides of this ROI shall be parallel to the pixel rows and columns. The ROI shall display only areas of the TEST PHANTOM containing PVC and air. The transition between these materials shall be depicted as an edge running parallel to one of the ROI sides. The parallelism of th
11、e edges can be optimized by repositioning the TEST PHANTOM and repeating the image acquisition. The number of PIXELS along the edge of the ROI shall correspond to 5 mm in the TEST PHANTOM (tolerance: 1 PIXEL). The number of PIXELS perpendicular to and on each side of the edge within the ROI shall co
12、rrespond to at least 3 mm in the TEST PHANTOM. NOTE 1 An example of an appropriate ROI is given in Annex E. The calculation of the MODULATION TRANSFER BEHAVIOUR shall be carried out using the following steps: a) Data acquisition Using the row (column) containing the PVC/air edge as the reference dir
13、ection, the PIXEL VALUES of all consecutive rows (columns) parallel to the edge and within the ROI are to be arithmetically averaged. The resulting mean values of the rows (columns) are to be numbered consecutively and recorded (1,2, M3, . . . ,n). b) Differentiation Adjacent mean values are to be s
14、ubtracted from each other to produce a series of differences 1, 2, 3, . . . ,1according to Equation A.1 m1mmMMD =+(A.1) where Dmis the difference of the average of the PIXEL VALUES from consecutive rows/columns; Mm+1is the average of the PIXEL VALUES in the pixel row/column m+1; Mmis the average of
15、the PIXEL VALUES in the pixel row/column m. c) Restriction to the transition region The differences 1,2,3, . . . ,n1contain one value, k, that is larger in absolute value than all the others. Beginning with this value, a symmetrical, adjacent data band, in which the differences still have the same s
16、ign, is to be determined: kl,kl+1 ,k, ,k+l1,k+l. DIN 6868-161:2013-01 17 NOTE 2 This constraint serves to separate the image of the edge from the relatively smaller differences that arise from the Heel effect and from noise. d) Fourier transformations If the number of difference values from step c)
17、is not already a power of 2, the set of values shall be padded to a power of 2 by adding zero values around the data band. The resulting series shall then be transformed using a discrete Fourier transform. The Fourier coefficients shall be normalized to their maximum value, and the first half of the
18、 resulting coefficients 0, 1, recorded. Similarly, the set of arithmetically symmetrized values 12|kl+ k+l|,12|kl+1+ k+l1|, , |k|, . . . ,12|kl+1+ k+l1|,12|kl+ k+l| to a power of two, discrete Fourier transformed and the resulting coefficients normalized to their maximum value. The resulting transfe
19、r coefficients 0, 1, mare to be provided for the spatial frequency range from 0 to the NYQUIST FREQUENCY . e) Averaging The arithmetic means p=12(p+ p) are to be recorded and assigned to their corresponding SPATIAL FREQUENCIES p= nm( 0,1, , m). NOTE 3 The pvalues serve as sampling points for the MOD
20、ULATION TRANSFER BEHAVIOUR in the spatial frequency range between 0 and the NYQUIST FREQUENCY . f) Graphical representation The value pairs (p;p) are to be plotted on a graph and joined with straight lines. The abscissa shows the values of the SPATIAL FREQUENCIES (p) on a linear scale. The ordinate
21、shows the values of the transfer factors (p) on a linear scale. DIN 6868-161:2013-01 18 Annex B (normative) Calculation of the CONTRAST-TO-NOISE INDEX The basis for the calculation of the CONTRAST-TO-NOISE INDEX is a rectangular region of interest (ROI) selected in an axial slice of the reconstructe
22、d data set of the TEST PHANTOM. The sides of this ROI shall be parallel to the PIXEL rows and columns. The ROI shall display only areas of the TEST PHANTOM containing PVC and PMMA, and the transition between these materials shall be depicted as an edge running parallel to one of the ROI sides. The n
23、umber of PIXELS along the edge within the ROI shall correspond to 10 mm in the TEST PHANTOM (tolerance: 1 PIXEL). The number of PIXELS perpendicular to and on each side of the edge within the ROI shall correspond to at least 3 mm in the TEST PHANTOM. The calculation of the CONTRAST-TO-NOISE INDEX is
24、 to be carried out using the following steps: a) Data acquisition The PIXEL VALUES in the ROI are to be read out in consecutive rows (columns) parallel to the PVC/PMMA edge. The mean values (1,2,3, . . . ,n) and standard deviations (1,2,3, . . . ,n) of the rows (columns) shall be numbered and be rec
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