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A decision-tree approach for the differential diagnosis of chronic lymphoid leukemias and peripheral B-cell lymphomas
L O Moraes1, C E Pedreira1, S Barrena2
1Rua Horacio Macedo 2030, Rio de Janeiro/RJ, CEP: 21941-914, Brazil.
Insights
A new decision-tree approach accurately diagnoses B-cell chronic lymphoproliferative disorders using flow cytometry data. This method achieved 95% correctness in validation, aiding in the differential diagnosis of lymphoid leukemias and lymphomas.
Area of Science:
- Hematology
- Immunophenotyping
- Bioinformatics
Background:
- Flow cytometry is crucial for characterizing leukemia and lymphoma.
- It processes multiparametric data from thousands of cells per second.
- Differential diagnosis of B-cell chronic lymphoproliferative disorders requires robust methods.
Purpose of the Study:
- To develop a decision-tree approach for diagnosing WHO-classified B-cell chronic lymphoproliferative disorders.
- To utilize flow cytometry data for accurate immunophenotypic characterization.
- To create an accessible tool for differential diagnosis.
Main Methods:
- A decision-tree model with logistic function nodes was developed.
- The Lasso algorithm was employed for regularization to prevent overfitting.
- The approach was implemented and made available via online platforms and downloadable code.
Main Results:
- The decision-tree approach achieved 95% correctness in cross-validation (100% in-sample).
- It provided a single diagnosis in 61% of cases and multiple possible diagnoses in 34%.
- Validation on an independent dataset confirmed similar accuracy, with diagnoses reached within seven decision nodes.
Conclusions:
- The proposed decision-tree approach is accurate for the differential diagnosis of mature lymphoid leukemias/lymphomas.
- Out-of-sample validation demonstrated the method's reliability.
- The diagnostic process is efficient, utilizing seven transparent binary decision nodes.
Background And Objective:
Here we propose a decision-tree approach for the differential diagnosis of distinct WHO categories B-cell chronic lymphoproliferative disorders using flow cytometry data. Flow cytometry is the preferred method for the immunophenotypic characterization of leukemia and lymphoma, being able to process and register multiparametric data about tens of thousands of cells per second.
Methods:
The proposed decision-tree is composed by logistic function nodes that branch throughout the tree into sets of (possible) distinct leukemia/lymphoma diagnoses. To avoid overfitting, regularization via the Lasso algorithm was used. The code can be run online at https://codeocean.com/2018/03/08/a-decision-tree-approach-for-the-differential-diagnosis-of-chronic-lymphoid-leukemias-and-peripheral-b-cell-lymphomas/ or downloaded from https://github.com/lauramoraes/bioinformatics-sourcecode to be executed in Matlab.
Results:
The proposed approach was validated in diagnostic peripheral blood and bone marrow samples from 283 mature lymphoid leukemias/lymphomas patients. The proposed approach achieved 95% correctness in the cross-validation test phase (100% in-sample), 61% giving a single diagnosis and 34% (possible) multiple disease diagnoses. Similar results were obtained in an out-of-sample validation dataset. The generated tree reached the final diagnoses after up to seven decision nodes.
Conclusions:
Here we propose a decision-tree approach for the differential diagnosis of mature lymphoid leukemias/lymphomas which proved to be accurate during out-of-sample validation. The full process is accomplished through seven binary transparent decision nodes.
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