DOAJ Open Access 2021

Is there any incremental benefit to conducting neuroimaging and neurocognitive assessments in the diagnosis of ADHD in young children? A machine learning investigation

Ilke Öztekin Mark A. Finlayson Paulo A. Graziano Anthony S. Dick

Abstrak

Given the negative trajectories of early behavior problems associated with ADHD, early diagnosis is considered critical to enable intervention and treatment. To this end, the current investigation employed machine learning to evaluate the relative predictive value of parent/teacher ratings, behavioral and neural measures of executive function (EF) in predicting ADHD in a sample consisting of 162 young children (ages 4–7, mean age 5.55, 82.6 % Hispanic/Latino). Among the target measures, teacher ratings of EF were the most predictive of ADHD. While a more extensive evaluation of neural measures, such as diffusion-weighted imaging, may provide more information as they relate to the underlying cognitive deficits associated with ADHD, the current study indicates that measures of cortical anatomy obtained in research studies, as well cognitive measures of EF often obtained in routine assessments, have little incremental value in differentiating typically developing children from those diagnosed with ADHD. It is important to note that the overlap between some of the EF questions in the BRIEF, and the ADHD symptoms could be enhancing this effect. Thus, future research evaluating the importance of such measures in predicting children’s functional impairment in academic and social areas would provide additional insight into their contributing role in ADHD.

Penulis (4)

I

Ilke Öztekin

M

Mark A. Finlayson

P

Paulo A. Graziano

A

Anthony S. Dick

Format Sitasi

Öztekin, I., Finlayson, M.A., Graziano, P.A., Dick, A.S. (2021). Is there any incremental benefit to conducting neuroimaging and neurocognitive assessments in the diagnosis of ADHD in young children? A machine learning investigation. https://doi.org/10.1016/j.dcn.2021.100966

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Informasi Jurnal
Tahun Terbit
2021
Sumber Database
DOAJ
DOI
10.1016/j.dcn.2021.100966
Akses
Open Access ✓