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AI-Driven Identification of Success Factors in Children with Cerebral Palsy

Torén, Matilda LU and Melms, Maja LU (2026) In Master's Theses in Biomedical Engineering BMEM01 20261
Division for Biomedical Engineering
Abstract
Cerebral palsy is the most common cause of physical disability in childhood, yet the relationship between rehabilitation exposure and motor development remains in- completely understood. This thesis investigates factors associated with functional improvement in children with cerebral palsy using longitudinal data collected through a life-mapping questionnaire. The questionnaire captured retrospective information on therapy participation, medical interventions, and motor development across four age intervals in children aged 1–16, reported by parents and guardians. At the time of analysis, the dataset consisted of 34 participants.

A multi-stage analytical pipeline was developed, including statistical group compar- isons, linear... (More)
Cerebral palsy is the most common cause of physical disability in childhood, yet the relationship between rehabilitation exposure and motor development remains in- completely understood. This thesis investigates factors associated with functional improvement in children with cerebral palsy using longitudinal data collected through a life-mapping questionnaire. The questionnaire captured retrospective information on therapy participation, medical interventions, and motor development across four age intervals in children aged 1–16, reported by parents and guardians. At the time of analysis, the dataset consisted of 34 participants.

A multi-stage analytical pipeline was developed, including statistical group compar- isons, linear regression, dimensionality reduction and clustering, and milestone timing analysis. Structured motor outcome scores were constructed to quantify milestone at- tainment and impairment burden. Additionally a locally deployed large language model (LLM) was applied to free text responses to generate narrative-adjusted motor scores, enabling direct comparison with rule-based structured scores.

Across most analytical approaches, results indicated a positive directional relationship between rehabilitation exposure and motor development outcome. Children accumu- lating higher training volumes tended to demonstrate more favourable developmental trajectories and earlier achievement of independent walking. However, effect sizes were small and no result reached statistical significance, reflecting the limited sample size and observational study design. LLM-derived scores recovered additional clini- cally relevant information from parent narratives.

The developed pipeline provides a scalable foundation for future analyses as addi- tional data is collected. (Less)
Popular Abstract (Swedish)
Kan intensiv träning hjälpa barn med cerebral pares att utvecklas motoriskt?

Cerebral pares är den vanligaste orsaken till rörelsenedsättning hos barn, men kunskapen om vilka rehabiliteringsinsatser som är kopplade till förbättrad motorisk utveckling är fortfarande begränsad. I det här examensarbetet undersöker vi hur träning och rehabilitering hänger samman med motorisk utveckling hos barn med cerebral pares genom att kombinera statistiska metoder och artificiell intelligens.
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author
Torén, Matilda LU and Melms, Maja LU
supervisor
organization
alternative title
AI-baserad identifiering av framgångsfaktorer för barn med cerebral pares
course
BMEM01 20261
year
type
H2 - Master's Degree (Two Years)
subject
keywords
Cerebral Palsy, Neuroplasticity, Neurohabilitation, Motor Development, Intensive Therapy, Machine Learning, Large Language Model
publication/series
Master's Theses in Biomedical Engineering
language
English
additional info
2026-08
id
9234379
date added to LUP
2026-06-29 08:30:51
date last changed
2026-06-29 08:30:51
@misc{9234379,
  abstract     = {{Cerebral palsy is the most common cause of physical disability in childhood, yet the relationship between rehabilitation exposure and motor development remains in- completely understood. This thesis investigates factors associated with functional improvement in children with cerebral palsy using longitudinal data collected through a life-mapping questionnaire. The questionnaire captured retrospective information on therapy participation, medical interventions, and motor development across four age intervals in children aged 1–16, reported by parents and guardians. At the time of analysis, the dataset consisted of 34 participants.

A multi-stage analytical pipeline was developed, including statistical group compar- isons, linear regression, dimensionality reduction and clustering, and milestone timing analysis. Structured motor outcome scores were constructed to quantify milestone at- tainment and impairment burden. Additionally a locally deployed large language model (LLM) was applied to free text responses to generate narrative-adjusted motor scores, enabling direct comparison with rule-based structured scores.

Across most analytical approaches, results indicated a positive directional relationship between rehabilitation exposure and motor development outcome. Children accumu- lating higher training volumes tended to demonstrate more favourable developmental trajectories and earlier achievement of independent walking. However, effect sizes were small and no result reached statistical significance, reflecting the limited sample size and observational study design. LLM-derived scores recovered additional clini- cally relevant information from parent narratives.

The developed pipeline provides a scalable foundation for future analyses as addi- tional data is collected.}},
  author       = {{Torén, Matilda and Melms, Maja}},
  language     = {{eng}},
  note         = {{Student Paper}},
  series       = {{Master's Theses in Biomedical Engineering}},
  title        = {{AI-Driven Identification of Success Factors in Children with Cerebral Palsy}},
  year         = {{2026}},
}