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Error Injection in Task-Based Image Quality Pipelines: What Regression Testing Cannot Catch, and Why Neither Internal
1Institute of One, LISIT Co., Ltd., Tokyo 150-0044, Japan.
Abstract:
Task-based image quality assessment-the modulation transfer function, the noise power spectrum (NPS), the noise-equivalent quanta and model observers-fails by returning a plausible wrong number rather than an error, and the regression test most implementations carry cannot tell a plausible right answer from a plausible wrong one, because the stored reference was recorded from the defective code. We injected six defects into a validated implementation of that chain through a severity dial that recovers the correct pipeline exactly at zero. A self-consistency regression test detected none of the six. Four internal identities, which need no ground truth, and two closed-form references, which need a phantom whose answer is known, together detected all six, in every case at or before the severity at which the reported detectability index d' became wrong by more than 5%-an error that three of the six never produced. Neither family sufficed alone: the internal identities detected three of the six and the closed-form references five, and peak errors in a reported d' reached 90%. Run unmodified on measured American College of Radiology (ACR) phantom projections across seven reconstruction kernels, the three identities that can be evaluated without ground truth transferred intact-Parseval held to 4×10-16-but their tolerances did not, and the strongest apodisation drove the noise dynamic range to within 0.6% of the threshold beyond which a prewhitening observer should return no value at all rather than a computed one, because 1/NPS has ceased to be numerically meaningful.
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