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False-negative results on computer-aided detection software in preoperative automated breast ultrasonography of breast cancer patients
- Kim, Youngjune;
- Rim, Jiwon;
- Kim, Sun Mi;
- Yun, Bo La;
- Park, So Yeon;
- ... Ahn, Hye Shin;
- 외 2명
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8초록
Purpose: The purpose of this study was to measure the cancer detection rate of computer-aided detection (CAD) software in preoperative automated breast ultrasonography (ABUS) of breast cancer patients and to determine the characteristics associated with false-negative outcomes. Methods: A total of 129 index lesions (median size, 1.7 cm; interquartile range, 1.2 to 2.4 cm) from 129 consecutive patients (mean age +/- standard deviation, 53.4 +/- 11.8 years) who underwent preoperative ABUS from December 2017 to February 2018 were assessed. An index lesion was defined as a breast cancer confirmed by ultrasonography (US)-guided core needle biopsy. The detection rate of the index lesions, positive predictive value (PPV), and false-positive rate (FPR) of the CAD software were measured. Subgroup analysis was performed to identify clinical and US findings associated with false-negative outcomes. Results: The detection rate of the CAD software was 0.84 (109 of 129; 95% confidence interval, 0.77 to 0.90). The PPV and FPR were 0.41 (221 of 544; 95% CI, 0.36 to 0.45) and 0.45 (174 of 387; 95% CI, 0.40 to 0.50), respectively. False-negative outcomes were more frequent in asymptomatic patients (P<0.001) and were associated with the following US findings: smaller size (P=0.001), depth in the posterior third (P=0.002), angular or indistinct margin (P<0.001), and absence of architectural distortion (P<0.001). Conclusion: The CAD software showed a promising detection rate of breast cancer. However, radiologists should judge whether CAD software-marked lesions are true- or false-positive lesions, considering its low PPV and high FPR. Moreover, it would be helpful for radiologists to consider the characteristics associated with false-negative outcomes when reading ABUS with CAD.
키워드
- 제목
- False-negative results on computer-aided detection software in preoperative automated breast ultrasonography of breast cancer patients
- 저자
- Kim, Youngjune; Rim, Jiwon; Kim, Sun Mi; Yun, Bo La; Park, So Yeon; Ahn, Hye Shin; Kim, Bohyoung; Jang, Mijung
- 발행일
- 2021-01
- 유형
- Article
- 저널명
- Ultrasonography
- 권
- 40
- 호
- 1
- 페이지
- 83 ~ 92
- 언어
- ENG
- 출판사
- KOREAN SOC ULTRASOUND MEDICINE
- 발행국가
- 대한민국
- 분량
- 10 페이지
- ISSN
- E 2288-5943
P 2288-5919