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Decreasing Annotation Burden of Pairwise Comparisons with Human-in-the-Loop Sorting: Application in Medical Image Artifact Rating

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arxiv 2202.04823 v1 pith:OBBBREVL submitted 2022-02-10 q-bio.QM cs.CVcs.LGeess.IV

classification q-bio.QMcs.CVcs.LGeess.IV
keywords comparisonspairwiseimagemedicalrankingsortingannotationmethod
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Ranking by pairwise comparisons has shown improved reliability over ordinal classification. However, as the annotations of pairwise comparisons scale quadratically, this becomes less practical when the dataset is large. We propose a method for reducing the number of pairwise comparisons required to rank by a quantitative metric, demonstrating the effectiveness of the approach in ranking medical images by image quality in this proof of concept study. Using the medical image annotation software that we developed, we actively subsample pairwise comparisons using a sorting algorithm with a human rater in the loop. We find that this method substantially reduces the number of comparisons required for a full ordinal ranking without compromising inter-rater reliability when compared to pairwise comparisons without sorting.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. EZ-Sort: Efficient Pairwise Comparison via Zero-Shot CLIP-Based Pre-Ordering and Human-in-the-Loop Sorting

    cs.CV 2025-08 conditional novelty 6.0 of 10

    Zero-shot CLIP pre-ordering plus uncertainty-guided MergeSort reduces human pairwise-comparison annotations by up to 90.5% and by 19.8% over prior active sorting.

  2. Towards Bridging Formal Methods and Human Interpretability

    cs.SE 2025-06 conditional novelty 6.0 of 10

    Human comprehension rankings of 48 LTS designs correlate moderately with Albin complexity, state space size, cyclomatic complexity, and redundancy metrics.

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