Recommendations for Performance Evaluation of Machine Learning in Pathology A Concept Paper From the College of American Pathologists

被引:4
|
作者
Hanna, Matthew G. [1 ,25 ]
Olson, Niels H. [2 ,3 ]
Zarella, Mark [4 ]
Dash, C. [5 ]
Herrmann, Markus D. [6 ,7 ]
Furtado, Larissa, V [8 ]
Stram, Michelle N. [9 ,10 ]
Raciti, Patricia M. [11 ]
Hassell, Lewis [12 ]
Mays, Alex [13 ]
Pantanowitz, Liron [14 ,15 ]
Sirintrapun, Joseph S. [1 ]
Krishnamurthy, Savitri [16 ]
Parwani, Anil [17 ]
Lujan, Giovanni [17 ]
Evans, Joseph Andrew [18 ]
Glassy, Eric F. [19 ]
Bui, Marilyn M. [20 ,21 ]
Singh, Rajendra [22 ]
Souers, Rhona J. [23 ]
de Baca, Monica E. [24 ]
Seheult, Jansen N. [4 ]
机构
[1] Mem Sloan Kettering Canc Ctr, Dept Pathol & Lab Med, New York, NY USA
[2] Def Innovat Unit, Mountain View, CA USA
[3] Uniformed Serv Univ Hlth Sci, Dept Pathol, Bethesda, MD USA
[4] Mayo Clin, Dept Lab Med & Pathol, Rochester, MN USA
[5] Duke Univ Hlth Syst, Dept Pathol, Durham, NC USA
[6] Massachusetts Gen Hosp, Dept Pathol, Boston, MA USA
[7] Harvard Med Sch, Boston, MA USA
[8] St Jude Childrens Res Hosp, Dept Pathol, Memphis, TN USA
[9] NYU, Dept Forens Med, New York, NY USA
[10] Off Chief Med Examiner, New York, NY USA
[11] Paige AI, New York, NY USA
[12] Oklahoma Univ, Hlth Sci Ctr, Dept Pathol, Oklahoma City, OK USA
[13] MITRE Corp, Mclean, VA USA
[14] Univ Michigan, Dept Pathol, Ann Arbor, MI USA
[15] Univ Michigan, Clin Labs, Ann Arbor, MI USA
[16] MD Anderson Canc Ctr, Dept Pathol, Houston, TX USA
[17] Ohio State Univ, Wexner Med Ctr, Dept Pathol, Columbus, OH USA
[18] Mackenzie Hlth, Lab Med, Toronto, ON, Canada
[19] Affiliated Pathologists Med Grp, Rancho Dominguez, CA USA
[20] H Lee Moffitt Canc Ctr & Res Inst, Dept Pathol, Tampa, FL USA
[21] H Lee Moffitt Canc Ctr & Res Inst, Dept Machine Learning, Tampa, FL USA
[22] Summit Hlth, Dept Dermatopathol, Summit Woodland Pk, NJ USA
[23] Coll Amer Pathologists, Dept Biostat, Northfield, IL USA
[24] Pacific Pathol Partners, Seattle, WA USA
[25] Univ Pittsburgh, Med Ctr, Dept Pathol, Pittsburgh, PA USA
关键词
DIGITAL IMAGE-ANALYSIS; HUMAN-COMPUTER INTERACTION; GOOD LABORATORY PRACTICES; INTEROBSERVER VARIABILITY; ARTIFICIAL-INTELLIGENCE; PREDICTION MODELS; CLINICAL VALIDATION; ANATOMIC PATHOLOGY; AIDED DETECTION; RACIAL BIAS;
D O I
10.5858/arpa.2023-0042-CP
中图分类号
R446 [实验室诊断]; R-33 [实验医学、医学实验];
学科分类号
1001 ;
摘要
Context.-Machine learning applications in the pathology clinical domain are emerging rapidly. As decision support systems continue to mature, laboratories will increasingly need guidance to evaluate their performance in clinical practice. Currently there are no formal guidelines to assist pathology laboratories in verification and/or validation of such systems. These recommendations are being proposed for the evaluation of machine learning systems in the clinical practice of pathology. Objective.-To propose recommendations for performance evaluation of in vitro diagnostic tests on patient samples that incorporate machine learning as part of the preanalytical, analytical, or postanalytical phases of the laboratory workflow. Topics described include considerations for machine learning model evaluation including risk assessment, predeployment requirements, data sourcing and curation, verification and validation, change control management, human-computer interaction, practitioner training, and competency evaluation. Data Sources.-An expert panel performed a review of the literature, Clinical and Laboratory Standards Institute guidance, and laboratory and government regulatory frameworks. Conclusions.-Review of the literature and existing documents enabled the development of proposed recommendations. This white paper pertains to performance evaluation of machine learning systems intended to be implemented for clinical patient testing. Further studies with real-world clinical data are encouraged to support these proposed recommendations. Performance evaluation of machine learning models is critical to verification and/or validation of in vitro diagnostic tests using machine learning intended for clinical practice.
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页数:27
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