A powder calibration is run because the file's geometry is in doubt, so a fit that quietly returns part of that file has answered nothing - and it is indistinguishable from one that worked, down to the residual and the sigmas arranged around it. On one of four LaB6 exposures of one detector the tilt came out at 2.93x its own sigma, a hundredth under the significance gate, so it was declined and pinned - at the master's hardcoded rot1 -0.08, rot2 -0.22 deg. That is eight times the tilt just refused, on no evidence, and worth 10 px of PONI at 190 mm. rugnux printed it to four decimal places, wrote the .poni, and exited 0. Judge the result on provenance instead of on any residual: a geometry is a measurement only if every parameter in it came from this data. Two ways out of the fits do not qualify - a covariance that never conditioned, so the fit cannot say what it determined, and a declined tilt pinned at a non-zero value from the file. A declined tilt over a file stating no tilt still qualifies, because reporting no tilt is then exactly what was measured; so does --no-refine-tilt, because a hold that was asked for is a stated choice and not a silent substitution. No single number separates the four. rms is 2.465 px against 1.44-1.64; the significance of all four lies between 2.93 and 4.47, so the gate is nearly a coin flip at these distances and moving it would only recalibrate on one population; and the failed fit has the TIGHTEST parameter sigmas of the set, because pinning the tilt removes the tilt/centre correlation that inflates a good fit's. The spot cross-check reads 13.5 px against 0.98-2.66, but 10.4 px of that is the pinned tilt moving the PONI - the same defect one step downstream, not independent evidence. On a failure rugnux says so, writes no .poni - a PONI file states where the detector is and has no field in which to say it does not know - writes the JSON with converged false and the reason beside it, and exits non-zero. The re-binning pass now prefers a converged refit over a non-converged one whatever its residual, so a tilt an earlier pass measured is not what a later one gets pinned at. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
511 lines
16 KiB
C++
511 lines
16 KiB
C++
/**
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* Jungfraujoch
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* API to control Jungfraujoch developed by the Paul Scherrer Institute (Switzerland). Jungfraujoch is a data acquisition and analysis system for pixel array detectors, primarly PSI JUNGFRAU. Jungfraujoch uses FPGA boards to acquire data at high data rates. # License Clarification While this API definition is licensed under GPL-3.0, **the GPL copyleft provisions do not apply** when this file is used solely to generate OpenAPI clients or when implementing applications that interact with the API. Generated client code and applications using this API definition are not subject to the GPL license requirements and may be distributed under terms of your choosing. This exception is similar in spirit to the Linux Kernel's approach to userspace API headers and the GCC Runtime Library Exception. The Linux Kernel developers have explicitly stated that user programs that merely use the kernel interfaces (syscalls, ioctl definitions, etc.) are not derivative works of the kernel and are not subject to the terms of the GPL. This exception is intended to allow wider use of this API specification without imposing GPL requirements on applications that merely interact with the API, regardless of whether they communicate through network calls or other mechanisms.
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*
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* The version of the OpenAPI document: 1.0.0-rc.166
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* Contact: filip.leonarski@psi.ch
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*
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* NOTE: This class is auto generated by OpenAPI Generator (https://openapi-generator.tech).
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* https://openapi-generator.tech
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* Do not edit the class manually.
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*/
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#include "Powder_calibration_quality.h"
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#include "Helpers.h"
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#include <sstream>
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namespace org::openapitools::server::model
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{
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Powder_calibration_quality::Powder_calibration_quality()
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{
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m_Converged = false;
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m_ConvergedIsSet = false;
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m_Not_converged_reason = "";
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m_Not_converged_reasonIsSet = false;
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m_Calibrant = "";
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m_CalibrantIsSet = false;
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m_Method = "";
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m_MethodIsSet = false;
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m_Ring_points = 0L;
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m_Ring_pointsIsSet = false;
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m_Rms_radial_pxl = 0.0f;
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m_Rms_radial_pxlIsSet = false;
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m_Beam_sigma_pxl = 0.0f;
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m_Beam_sigma_pxlIsSet = false;
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m_Direct_beam_x_pxl = 0.0f;
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m_Direct_beam_x_pxlIsSet = false;
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m_Direct_beam_y_pxl = 0.0f;
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m_Direct_beam_y_pxlIsSet = false;
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m_Header_distance_mm = 0.0f;
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m_Header_distance_mmIsSet = false;
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m_Ring_seed_distance_mm = 0.0f;
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m_Ring_seed_distance_mmIsSet = false;
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m_Tilt_refined = false;
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m_Tilt_refinedIsSet = false;
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m_Tilt_significance = 0.0f;
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m_Tilt_significanceIsSet = false;
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m_Fit_sigmaIsSet = false;
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m_Spot_cross_checkIsSet = false;
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}
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void Powder_calibration_quality::validate() const
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{
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std::stringstream msg;
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if (!validate(msg))
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{
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throw org::openapitools::server::helpers::ValidationException(msg.str());
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}
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}
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bool Powder_calibration_quality::validate(std::stringstream& msg) const
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{
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return validate(msg, "");
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}
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bool Powder_calibration_quality::validate(std::stringstream& msg, const std::string& pathPrefix) const
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{
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bool success = true;
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const std::string _pathPrefix = pathPrefix.empty() ? "Powder_calibration_quality" : pathPrefix;
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return success;
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}
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bool Powder_calibration_quality::operator==(const Powder_calibration_quality& rhs) const
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{
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return
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((!convergedIsSet() && !rhs.convergedIsSet()) || (convergedIsSet() && rhs.convergedIsSet() && isConverged() == rhs.isConverged())) &&
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((!notConvergedReasonIsSet() && !rhs.notConvergedReasonIsSet()) || (notConvergedReasonIsSet() && rhs.notConvergedReasonIsSet() && getNotConvergedReason() == rhs.getNotConvergedReason())) &&
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((!calibrantIsSet() && !rhs.calibrantIsSet()) || (calibrantIsSet() && rhs.calibrantIsSet() && getCalibrant() == rhs.getCalibrant())) &&
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((!methodIsSet() && !rhs.methodIsSet()) || (methodIsSet() && rhs.methodIsSet() && getMethod() == rhs.getMethod())) &&
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((!ringPointsIsSet() && !rhs.ringPointsIsSet()) || (ringPointsIsSet() && rhs.ringPointsIsSet() && getRingPoints() == rhs.getRingPoints())) &&
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((!rmsRadialPxlIsSet() && !rhs.rmsRadialPxlIsSet()) || (rmsRadialPxlIsSet() && rhs.rmsRadialPxlIsSet() && getRmsRadialPxl() == rhs.getRmsRadialPxl())) &&
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((!beamSigmaPxlIsSet() && !rhs.beamSigmaPxlIsSet()) || (beamSigmaPxlIsSet() && rhs.beamSigmaPxlIsSet() && getBeamSigmaPxl() == rhs.getBeamSigmaPxl())) &&
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((!directBeamXPxlIsSet() && !rhs.directBeamXPxlIsSet()) || (directBeamXPxlIsSet() && rhs.directBeamXPxlIsSet() && getDirectBeamXPxl() == rhs.getDirectBeamXPxl())) &&
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((!directBeamYPxlIsSet() && !rhs.directBeamYPxlIsSet()) || (directBeamYPxlIsSet() && rhs.directBeamYPxlIsSet() && getDirectBeamYPxl() == rhs.getDirectBeamYPxl())) &&
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((!headerDistanceMmIsSet() && !rhs.headerDistanceMmIsSet()) || (headerDistanceMmIsSet() && rhs.headerDistanceMmIsSet() && getHeaderDistanceMm() == rhs.getHeaderDistanceMm())) &&
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((!ringSeedDistanceMmIsSet() && !rhs.ringSeedDistanceMmIsSet()) || (ringSeedDistanceMmIsSet() && rhs.ringSeedDistanceMmIsSet() && getRingSeedDistanceMm() == rhs.getRingSeedDistanceMm())) &&
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((!tiltRefinedIsSet() && !rhs.tiltRefinedIsSet()) || (tiltRefinedIsSet() && rhs.tiltRefinedIsSet() && isTiltRefined() == rhs.isTiltRefined())) &&
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((!tiltSignificanceIsSet() && !rhs.tiltSignificanceIsSet()) || (tiltSignificanceIsSet() && rhs.tiltSignificanceIsSet() && getTiltSignificance() == rhs.getTiltSignificance())) &&
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((!fitSigmaIsSet() && !rhs.fitSigmaIsSet()) || (fitSigmaIsSet() && rhs.fitSigmaIsSet() && getFitSigma() == rhs.getFitSigma())) &&
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((!spotCrossCheckIsSet() && !rhs.spotCrossCheckIsSet()) || (spotCrossCheckIsSet() && rhs.spotCrossCheckIsSet() && getSpotCrossCheck() == rhs.getSpotCrossCheck()))
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;
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}
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bool Powder_calibration_quality::operator!=(const Powder_calibration_quality& rhs) const
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{
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return !(*this == rhs);
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}
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void to_json(nlohmann::json& j, const Powder_calibration_quality& o)
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{
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j = nlohmann::json::object();
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if(o.convergedIsSet())
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j["converged"] = o.m_Converged;
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if(o.notConvergedReasonIsSet())
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j["not_converged_reason"] = o.m_Not_converged_reason;
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if(o.calibrantIsSet())
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j["calibrant"] = o.m_Calibrant;
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if(o.methodIsSet())
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j["method"] = o.m_Method;
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if(o.ringPointsIsSet())
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j["ring_points"] = o.m_Ring_points;
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if(o.rmsRadialPxlIsSet())
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j["rms_radial_pxl"] = o.m_Rms_radial_pxl;
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if(o.beamSigmaPxlIsSet())
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j["beam_sigma_pxl"] = o.m_Beam_sigma_pxl;
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if(o.directBeamXPxlIsSet())
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j["direct_beam_x_pxl"] = o.m_Direct_beam_x_pxl;
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if(o.directBeamYPxlIsSet())
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j["direct_beam_y_pxl"] = o.m_Direct_beam_y_pxl;
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if(o.headerDistanceMmIsSet())
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j["header_distance_mm"] = o.m_Header_distance_mm;
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if(o.ringSeedDistanceMmIsSet())
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j["ring_seed_distance_mm"] = o.m_Ring_seed_distance_mm;
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if(o.tiltRefinedIsSet())
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j["tilt_refined"] = o.m_Tilt_refined;
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if(o.tiltSignificanceIsSet())
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j["tilt_significance"] = o.m_Tilt_significance;
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if(o.fitSigmaIsSet())
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j["fit_sigma"] = o.m_Fit_sigma;
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if(o.spotCrossCheckIsSet())
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j["spot_cross_check"] = o.m_Spot_cross_check;
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}
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void from_json(const nlohmann::json& j, Powder_calibration_quality& o)
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{
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if(j.find("converged") != j.end())
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{
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j.at("converged").get_to(o.m_Converged);
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o.m_ConvergedIsSet = true;
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}
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if(j.find("not_converged_reason") != j.end())
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{
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j.at("not_converged_reason").get_to(o.m_Not_converged_reason);
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o.m_Not_converged_reasonIsSet = true;
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}
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if(j.find("calibrant") != j.end())
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{
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j.at("calibrant").get_to(o.m_Calibrant);
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o.m_CalibrantIsSet = true;
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}
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if(j.find("method") != j.end())
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{
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j.at("method").get_to(o.m_Method);
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o.m_MethodIsSet = true;
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}
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if(j.find("ring_points") != j.end())
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{
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j.at("ring_points").get_to(o.m_Ring_points);
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o.m_Ring_pointsIsSet = true;
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}
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if(j.find("rms_radial_pxl") != j.end())
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{
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j.at("rms_radial_pxl").get_to(o.m_Rms_radial_pxl);
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o.m_Rms_radial_pxlIsSet = true;
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}
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if(j.find("beam_sigma_pxl") != j.end())
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{
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j.at("beam_sigma_pxl").get_to(o.m_Beam_sigma_pxl);
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o.m_Beam_sigma_pxlIsSet = true;
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}
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if(j.find("direct_beam_x_pxl") != j.end())
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{
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j.at("direct_beam_x_pxl").get_to(o.m_Direct_beam_x_pxl);
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o.m_Direct_beam_x_pxlIsSet = true;
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}
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if(j.find("direct_beam_y_pxl") != j.end())
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{
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j.at("direct_beam_y_pxl").get_to(o.m_Direct_beam_y_pxl);
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o.m_Direct_beam_y_pxlIsSet = true;
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}
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if(j.find("header_distance_mm") != j.end())
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{
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j.at("header_distance_mm").get_to(o.m_Header_distance_mm);
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o.m_Header_distance_mmIsSet = true;
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}
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if(j.find("ring_seed_distance_mm") != j.end())
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{
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j.at("ring_seed_distance_mm").get_to(o.m_Ring_seed_distance_mm);
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o.m_Ring_seed_distance_mmIsSet = true;
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}
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if(j.find("tilt_refined") != j.end())
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{
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j.at("tilt_refined").get_to(o.m_Tilt_refined);
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o.m_Tilt_refinedIsSet = true;
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}
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if(j.find("tilt_significance") != j.end())
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{
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j.at("tilt_significance").get_to(o.m_Tilt_significance);
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o.m_Tilt_significanceIsSet = true;
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}
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if(j.find("fit_sigma") != j.end())
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{
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j.at("fit_sigma").get_to(o.m_Fit_sigma);
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o.m_Fit_sigmaIsSet = true;
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}
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if(j.find("spot_cross_check") != j.end())
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{
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j.at("spot_cross_check").get_to(o.m_Spot_cross_check);
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o.m_Spot_cross_checkIsSet = true;
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}
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}
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bool Powder_calibration_quality::isConverged() const
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{
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return m_Converged;
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}
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void Powder_calibration_quality::setConverged(bool const value)
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{
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m_Converged = value;
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m_ConvergedIsSet = true;
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}
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bool Powder_calibration_quality::convergedIsSet() const
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{
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return m_ConvergedIsSet;
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}
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void Powder_calibration_quality::unsetConverged()
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{
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m_ConvergedIsSet = false;
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}
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std::string Powder_calibration_quality::getNotConvergedReason() const
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{
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return m_Not_converged_reason;
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}
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void Powder_calibration_quality::setNotConvergedReason(std::string const& value)
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{
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m_Not_converged_reason = value;
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m_Not_converged_reasonIsSet = true;
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}
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bool Powder_calibration_quality::notConvergedReasonIsSet() const
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{
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return m_Not_converged_reasonIsSet;
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}
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void Powder_calibration_quality::unsetNot_converged_reason()
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{
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m_Not_converged_reasonIsSet = false;
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}
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std::string Powder_calibration_quality::getCalibrant() const
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{
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return m_Calibrant;
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}
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void Powder_calibration_quality::setCalibrant(std::string const& value)
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{
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m_Calibrant = value;
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m_CalibrantIsSet = true;
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}
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bool Powder_calibration_quality::calibrantIsSet() const
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{
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return m_CalibrantIsSet;
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}
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void Powder_calibration_quality::unsetCalibrant()
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{
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m_CalibrantIsSet = false;
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}
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std::string Powder_calibration_quality::getMethod() const
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{
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return m_Method;
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}
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void Powder_calibration_quality::setMethod(std::string const& value)
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{
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m_Method = value;
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m_MethodIsSet = true;
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}
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bool Powder_calibration_quality::methodIsSet() const
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{
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return m_MethodIsSet;
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}
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void Powder_calibration_quality::unsetMethod()
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{
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m_MethodIsSet = false;
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}
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int64_t Powder_calibration_quality::getRingPoints() const
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{
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return m_Ring_points;
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}
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void Powder_calibration_quality::setRingPoints(int64_t const value)
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{
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m_Ring_points = value;
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m_Ring_pointsIsSet = true;
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}
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bool Powder_calibration_quality::ringPointsIsSet() const
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{
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return m_Ring_pointsIsSet;
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}
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void Powder_calibration_quality::unsetRing_points()
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{
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m_Ring_pointsIsSet = false;
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}
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float Powder_calibration_quality::getRmsRadialPxl() const
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{
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return m_Rms_radial_pxl;
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}
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void Powder_calibration_quality::setRmsRadialPxl(float const value)
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{
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m_Rms_radial_pxl = value;
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m_Rms_radial_pxlIsSet = true;
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}
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bool Powder_calibration_quality::rmsRadialPxlIsSet() const
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{
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return m_Rms_radial_pxlIsSet;
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}
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void Powder_calibration_quality::unsetRms_radial_pxl()
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{
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m_Rms_radial_pxlIsSet = false;
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}
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float Powder_calibration_quality::getBeamSigmaPxl() const
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{
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return m_Beam_sigma_pxl;
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}
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void Powder_calibration_quality::setBeamSigmaPxl(float const value)
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{
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m_Beam_sigma_pxl = value;
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m_Beam_sigma_pxlIsSet = true;
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}
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bool Powder_calibration_quality::beamSigmaPxlIsSet() const
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{
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return m_Beam_sigma_pxlIsSet;
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}
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void Powder_calibration_quality::unsetBeam_sigma_pxl()
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{
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m_Beam_sigma_pxlIsSet = false;
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}
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float Powder_calibration_quality::getDirectBeamXPxl() const
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{
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return m_Direct_beam_x_pxl;
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}
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void Powder_calibration_quality::setDirectBeamXPxl(float const value)
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{
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m_Direct_beam_x_pxl = value;
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m_Direct_beam_x_pxlIsSet = true;
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}
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bool Powder_calibration_quality::directBeamXPxlIsSet() const
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{
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return m_Direct_beam_x_pxlIsSet;
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}
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void Powder_calibration_quality::unsetDirect_beam_x_pxl()
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{
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m_Direct_beam_x_pxlIsSet = false;
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}
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float Powder_calibration_quality::getDirectBeamYPxl() const
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{
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return m_Direct_beam_y_pxl;
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}
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void Powder_calibration_quality::setDirectBeamYPxl(float const value)
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{
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m_Direct_beam_y_pxl = value;
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m_Direct_beam_y_pxlIsSet = true;
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}
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bool Powder_calibration_quality::directBeamYPxlIsSet() const
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{
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return m_Direct_beam_y_pxlIsSet;
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}
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void Powder_calibration_quality::unsetDirect_beam_y_pxl()
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{
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m_Direct_beam_y_pxlIsSet = false;
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}
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float Powder_calibration_quality::getHeaderDistanceMm() const
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{
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return m_Header_distance_mm;
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}
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void Powder_calibration_quality::setHeaderDistanceMm(float const value)
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{
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m_Header_distance_mm = value;
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m_Header_distance_mmIsSet = true;
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}
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bool Powder_calibration_quality::headerDistanceMmIsSet() const
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{
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return m_Header_distance_mmIsSet;
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}
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void Powder_calibration_quality::unsetHeader_distance_mm()
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{
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m_Header_distance_mmIsSet = false;
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}
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float Powder_calibration_quality::getRingSeedDistanceMm() const
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{
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return m_Ring_seed_distance_mm;
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}
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void Powder_calibration_quality::setRingSeedDistanceMm(float const value)
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{
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m_Ring_seed_distance_mm = value;
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m_Ring_seed_distance_mmIsSet = true;
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}
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bool Powder_calibration_quality::ringSeedDistanceMmIsSet() const
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{
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return m_Ring_seed_distance_mmIsSet;
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}
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void Powder_calibration_quality::unsetRing_seed_distance_mm()
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{
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m_Ring_seed_distance_mmIsSet = false;
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}
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bool Powder_calibration_quality::isTiltRefined() const
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|
{
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return m_Tilt_refined;
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}
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void Powder_calibration_quality::setTiltRefined(bool const value)
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|
{
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m_Tilt_refined = value;
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m_Tilt_refinedIsSet = true;
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}
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bool Powder_calibration_quality::tiltRefinedIsSet() const
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|
{
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return m_Tilt_refinedIsSet;
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}
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void Powder_calibration_quality::unsetTilt_refined()
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|
{
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m_Tilt_refinedIsSet = false;
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}
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float Powder_calibration_quality::getTiltSignificance() const
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|
{
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|
return m_Tilt_significance;
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|
}
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void Powder_calibration_quality::setTiltSignificance(float const value)
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|
{
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|
m_Tilt_significance = value;
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|
m_Tilt_significanceIsSet = true;
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|
}
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|
bool Powder_calibration_quality::tiltSignificanceIsSet() const
|
|
{
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|
return m_Tilt_significanceIsSet;
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|
}
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|
void Powder_calibration_quality::unsetTilt_significance()
|
|
{
|
|
m_Tilt_significanceIsSet = false;
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|
}
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|
org::openapitools::server::model::Powder_calibration_fit_sigma Powder_calibration_quality::getFitSigma() const
|
|
{
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|
return m_Fit_sigma;
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|
}
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|
void Powder_calibration_quality::setFitSigma(org::openapitools::server::model::Powder_calibration_fit_sigma const& value)
|
|
{
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|
m_Fit_sigma = value;
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|
m_Fit_sigmaIsSet = true;
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|
}
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|
bool Powder_calibration_quality::fitSigmaIsSet() const
|
|
{
|
|
return m_Fit_sigmaIsSet;
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|
}
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|
void Powder_calibration_quality::unsetFit_sigma()
|
|
{
|
|
m_Fit_sigmaIsSet = false;
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|
}
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|
org::openapitools::server::model::Powder_calibration_spot_check Powder_calibration_quality::getSpotCrossCheck() const
|
|
{
|
|
return m_Spot_cross_check;
|
|
}
|
|
void Powder_calibration_quality::setSpotCrossCheck(org::openapitools::server::model::Powder_calibration_spot_check const& value)
|
|
{
|
|
m_Spot_cross_check = value;
|
|
m_Spot_cross_checkIsSet = true;
|
|
}
|
|
bool Powder_calibration_quality::spotCrossCheckIsSet() const
|
|
{
|
|
return m_Spot_cross_checkIsSet;
|
|
}
|
|
void Powder_calibration_quality::unsetSpot_cross_check()
|
|
{
|
|
m_Spot_cross_checkIsSet = false;
|
|
}
|
|
|
|
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|
} // namespace org::openapitools::server::model
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