Developmental PsychologyMotor Skills TestsPediatric Assessment

Alberta Infant Motor Scale

A comprehensive academic psychometric profile and clinical guide for the Alberta Infant Motor Scale (AIMS), detailing its 58 observational items across prone, supine, sitting, and standing subscales, theoretical foundations in dynamic systems, validity, reliability, and scoring methodology.

memjavad
PUBLISHED
Scientifically Reviewed · Dr. Marwa Abd-Alazim · September 12, 2026
Medically & Scientifically Reviewed Verified: September 12, 2026
Dr. Marwa Abd-Alazim Ph.D.
Professor of Psychology University of Kerbala
Review Criteria & Clinical Standards

This content undergoes rigorous scientific peer-review and medical editorial standards at Arab Psychology Network to ensure clinical accuracy, validity, and compliance with evidence-based guidelines from leading psychological and healthcare authorities (APA / WHO).

1. Abstract

The Alberta Infant Motor Scale (AIMS) is a norm-referenced, observational assessment instrument developed to evaluate gross motor maturation and developmental trajectories in infants from birth through independent walking (0 to 18 months of age). Conceptualized by physical therapists and developmental researchers Martha C. Piper and Johanna Darrah in the early 1990s, the AIMS addresses the critical clinical and empirical need for a non-invasive, minimally intrusive metric capable of capturing qualitative nuances of spontaneous movement repertoire. The instrument comprises 58 items organized hierarchically across four postural positions: Prone (21 items), Supine (9 items), Sitting (12 items), and Standing (16 items). Each item reflects three foundational components of motor control: weight-bearing surfaces, postural alignment, and antigravity movement against gravitational vectors. The scoring procedure utilizes a dichotomous observational response scale (Observed = 1, Not Observed = 0) framed within an individually determined “motor window,” yielding a total raw score from 0 to 58 that is subsequently converted to age-adjusted percentile ranks. Extensive psychometric investigations demonstrate exceptional inter-rater reliability (intraclass correlation coefficients [ICC] ranging from .96 to .99) and test-retest stability (ICC > .95). Construct, concurrent, and predictive validity are robustly supported through high correlations with established batteries, such as the Bayley Scales of Infant Development and the Peabody Developmental Motor Scales, alongside high sensitivity and specificity in identifying neurodevelopmental disorders, cerebral palsy, and central hypotonia in high-risk preterm and full-term pediatric cohorts.

2. Keywords

Alberta Infant Motor Scale, AIMS, gross motor development, infant assessment, observational psychometrics, postural control, dynamic systems theory, neuromotor maturation, pediatric physical therapy, developmental delay

3. Authors

The Alberta Infant Motor Scale was developed by Martha C. Piper, PhD, PT, and Johanna Darrah, MSc, PT, in collaboration with biometrician Joseph Maguire, PhD, and developmental pediatrician Martha Cook Piper at the Faculty of Rehabilitation Medicine, University of Alberta, Edmonton, Alberta, Canada. Dr. Piper served as a professor and Dean of the Faculty of Rehabilitation Medicine before later serving as President and Vice-Chancellor of the University of British Columbia. Johanna Darrah is Professor Emerita in the Department of Physical Therapy at the University of Alberta, renowned for her extensive longitudinal investigations into pediatric neuromotor trajectories, variability in developmental sequences, and dynamic systems modeling of early childhood mobility.

4. Purpose

The fundamental purpose of the Alberta Infant Motor Scale is to provide clinicians, clinical researchers, and developmental specialists with an objective, standardized, norm-referenced measurement framework to describe, evaluate, and monitor gross motor performance across the first 18 months of life. Prior to the inception of the AIMS, existing infant motor developmental assessments (such as the Gesell Developmental Schedules or early editions of the Bayley Scales of Infant Development) placed heavy reliance on elicited neurological reflexes, elicited primitive responses, and artificial physical handling. Such approaches frequently disrupted the naturalistic behavioral states of infants and often failed to capture subtle qualitative disruptions in postural alignment, dynamic stability, and free antigravity postural shifts.

The AIMS was designed to fulfill three distinct clinical and research functions:

  • Identification and Screening: Differentiating infants exhibiting typical motor trajectories from those experiencing gross motor delay or atypical neuromotor organization. By plotting raw scores against standardized percentile curves (with specific clinical cut-off points at the 5th and 10th percentiles), practitioners can accurately triage infants requiring early intervention services.
  • Longitudinal Monitoring and Evaluation: Measuring change over time in response to therapeutic interventions, environmental adaptations, or biological maturation. The scale permits granular tracking of progressive emergence within an infant’s transitional “motor window,” capturing incremental motor gains that broader developmental screening tools often overlook.
  • Research and Epidemiological Investigation: Providing a psychometrically rigorous dependent variable for clinical trials evaluating early physical therapy, neuroprotective pharmacological agents, post-neonatal intensive care unit (NICU) follow-up programs, and cross-cultural studies of infant locomotion.

Crucially, the scale evaluates spontaneous, self-initiated movements with minimal physical handling by the examiner, thereby minimizing behavioral distress and capturing authentic functional capacity in naturalistic settings.

5. Psychological and Motor Constructs

The Alberta Infant Motor Scale conceptualizes gross motor development as a multi-dimensional, non-linear progression governed by the interplay of physical growth, biomechanical principles, and neuromuscular coordination. Rather than viewing motor milestones as rigid, isolated chronological events, the AIMS operationalizes motor development through continuous biomechanical indices across four fundamental subscales:

1. Weight-Bearing and Ground Reaction Forces

Across all items, the instrument measures the specific anatomical structures supporting the infant’s body mass against gravity. Early development is characterized by diffuse, proximal weight-bearing (e.g., physiological flexion where the trunk and pelvis bear load in the neonate). As the nervous system matures, weight-bearing surfaces shift distally and dynamically, allowing for deliberate base-of-support narrowing, biomechanical unweighting of contralateral limbs, and preparatory loading essential for rotational transitions and ambulatory exploration.

2. Postural Alignment and Skeletal Geometry

This construct captures the spatial orientation of body segments relative to one another and to the gravitational field. The scale evaluates the gradual evolution from tonic, reflex-dominated postures (such as physiological flexion or the asymmetrical tonic neck reflex posture) toward active spinal elongation, axial trunk extension, pelvic stabilization, and balanced co-activation of antagonistic flexor and extensor muscle groups across the cervical, thoracic, and lumbo-sacral regions.

3. Antigravity Movement and Postural Adjustments

This dimension assesses the infant’s capacity to overcome gravitational torque through active concentric and eccentric muscular control. It monitors the progression from momentary, uncoordinated movements to sustained, deliberate antigravity orientation (such as lifting the head to 45° and 90° in prone, hands-to-feet interaction in supine, and controlled lowering from standing to floor play). It also evaluates dynamic equilibrium reactions, including righting reactions, protective tilting responses, and axial trunk rotation.

Positional Subscale Dimensions

  • Prone Subscale (21 Items): Evaluates head clearance, forearm support, progressive chest elevation, extended arm support, pivoting, rolling from prone to supine, reciprocal quadripedal crawling (commando creeping and four-point creeping), bear crawling, and transitions from four-point kneeling to sitting or standing.
  • Supine Subscale (9 Items): Assesses neonate physiological flexion, spontaneous head centering to the midline, hands-to-knees and hands-to-feet exploration (reflecting abdominal engagement and kinesthetic mapping), lateral weight-shifting, and rolling from supine to prone both without and with axial trunk rotation.
  • Sitting Subscale (12 Items): Measures cephalic control during supported sitting, propped tripod sitting, independent spinal alignment without anterior arm propping, pelvic stabilization, reach-induced trunk rotation, and positional shifts between sitting, prone, and quadripedal postures.
  • Standing Subscale (16 Items): Captures reflexive standing (positive supporting reaction), physiological astasia-abasia, sustained supported weight-bearing, active pulling to stand against support surfaces, independent cruising, lowering to the floor with eccentric control, independent standing balance, and unassisted bipedal locomotion with reciprocal arm swing.

6. Theoretical Framework

The Alberta Infant Motor Scale was established at a paradigm shift in developmental psychology and pediatric physical therapy, bridging classical neuromaturational theory with emerging dynamic systems theory and ecological psychology.

Neuromaturational Foundations

Classical twentieth-century developmental frameworks, pioneered by Arnold Gesell, Myrtle McGraw, and Mary Shirley, posited that motor milestones develop in a predetermined, invariant, cephalocaudal (head-to-tail) and proximodistal (center-to-periphery) sequence. Under this traditional view, the progressive emergence of motor control reflects cortical maturation, myelination of descending pyramidal pathways, and the systematic suppression of primitive brainstem-mediated reflexes in favor of voluntary motor cortices. The AIMS retains the practical chronological ordering of these developmental sequences, recognizing that head control invariably precedes trunk stabilization, which sequentially precedes functional bipedal balance.

Dynamic Systems and Ecological Theory

Unlike earlier instruments, Piper and Darrah rooted the AIMS explicitly in Esther Thelen’s dynamic systems theory. Thelen argued that motor milestones do not emerge solely from a pre-programmed neurological blueprint; rather, motor behaviors represent emergent self-organizing properties generated by the fluid, non-linear interaction of multiple subsystems:

  • Organismic Subsystems: Musculoskeletal growth, central nervous system connectivity, biomechanical lever lengths, sensory-perceptual feedback systems, and subcutaneous adipose-to-muscle ratios.
  • Environmental Constraints: Surface compliance, friction, gravity, footwear, handling styles, and infant positioning practices (e.g., sleep position guidelines such as the “Back to Sleep” campaign).
  • Task Demands: Visual exploration goals, social engagement with caregivers, and reaching affordances (per James J. Gibson’s ecological theory of perceptual affordances).

Consequently, the AIMS acknowledges substantial intra-individual and inter-individual variability in typical developmental sequencing. It does not treat motor development as a rigid step-by-step hierarchy; instead, it establishes the concept of a functional “motor window” within which an infant may simultaneously explore, demonstrate, or bypass alternative intermediate movement strategies without being pathologized.

7. Validity

The psychometric validity of the AIMS has been extensively documented in international clinical literature across diverse infant populations.

Content and Face Validity

During initial development, Piper and Darrah derived items from comprehensive clinical observations, existing pediatric literature, and consensus panels composed of developmental pediatricians, physical therapists, occupational therapists, and motor control researchers. Panel reviews ensured that every item authentically represented observable gross motor actions involving weight-bearing surfaces, alignment variations, and antigravity actions.

Construct Validity

Construct validity is evidenced by the scale’s profound correlation with chronological age in normative samples. In the normative cohort of 2,214 Canadian infants, total AIMS raw scores correlated with chronological age at r = .97, confirming that the scale accurately captures the progressive nature of motor development over the first 18 months of life. Furthermore, developmental curves illustrate rapid score acceleration during the first 9 months, tapering off as infants achieve upright independent ambulation (approaching the 58-item ceiling).

Concurrent Validity

Concurrent validity has been verified against standard pediatric assessment batteries:

  • Bayley Scales of Infant Development (BSID & BSID-II Motor Scale): Concurrent correlation coefficients range between r = .94 and r = .98 across multiple age groupings.
  • Peabody Developmental Motor Scales (PDMS & PDMS-2 Gross Motor Scale): Pearson correlation coefficients demonstrate high convergence, consistently exceeding r = .90 to .97.

Predictive and Discriminant Validity

The AIMS displays clinical predictive power in discriminating typically developing infants from those exhibiting neurodevelopmental abnormalities. Studies examining preterm infants and NICU graduates have established that low AIMS percentiles (particularly at 4, 6, and 8 months of age corrected for prematurity) predict subsequent diagnoses of cerebral palsy, motor delay, and developmental coordination disorder:

  • Clinical Cut-off at the 10th Percentile: At 4 months corrected age, a cutoff at the 10th percentile provides sensitivity of approximately 77% to 84% and specificity of 82% to 89% for identifying significant neuromotor impairment at 18 months.
  • Clinical Cut-off at the 5th Percentile: At 6 months corrected age, utilizing the 5th percentile as a stringent threshold yields sensitivity ranging from 86% to 90% and specificity exceeding 93% for cerebral palsy.

8. Reliability

The reliability of the Alberta Infant Motor Scale has been established across clinical and laboratory settings through rigorous assessment of inter-rater concordance, test-retest reproducibility, and internal measurement consistency.

Inter-Rater Reliability

Because the AIMS is strictly an observational assessment, inter-rater agreement is of paramount psychometric importance. In the initial standardization sample involving simultaneous independent observations by pediatric clinicians, the overall intraclass correlation coefficient (ICC) for total score was reported at .99 (ranging from .96 to .99 across individual age strata). Subsequent independent cross-cultural investigations (conducted in the Netherlands, Brazil, Greece, Taiwan, and Spain) have confirmed inter-rater ICC values between .95 and .99, both during live direct observation and when scoring from standardized video recordings.

Test-Retest and Intra-Rater Reliability

Intra-rater reliability evaluates the consistency of a single assessor scoring identical performance intervals over time, showing ICC values between .97 and .99. Test-retest reliability, determined by re-evaluating infants within a 24- to 72-hour window to minimize genuine developmental progression while limiting behavioral instability, has yielded ICC values ranging from .93 to .98.

Standard Error of Measurement and Smallest Detectable Change

The Standard Error of Measurement (SEM) for the total score is estimated at approximately 0.80 to 1.25 points. Consequently, the Minimal Detectable Change (MDC at a 95% confidence level) is approximately 2 to 3 points, indicating that a score change exceeding 3 raw points reflects genuine motor progress rather than observational or measurement error.

9. Factor Analysis and Dimensionality

The latent structural architecture of the AIMS has been examined using both classical exploratory factor analysis (EFA), confirmatory factor analysis (CFA), and Modern Item Response Theory (IRT / Rasch measurement models).

Unidimensionality of Gross Motor Development

While the instrument divides motor behavior into four practical postural categories (prone, supine, sitting, standing) for administrative feasibility, factor analytic studies demonstrate that gross motor capacity during early infancy operates primarily as a unidimensional construct. Principal component and exploratory factor analyses reveal a dominant first factor accounting for over 75% to 85% of total variance, with all 58 items exhibiting high factor loadings (predominantly > .70) on this single motor maturation latent trait.

Rasch Measurement Model Analysis

Application of the dichotomous Rasch model provides deep insight into item functioning and hierarchical sequencing:

  • Item Difficulty Hierarchy: Rasch calibration confirms an orderly difficulty continuum across items, spanning from neonatal postures (e.g., Prone 1: Physiological flexion; Supine 1: Physiological flexion) at the lowest difficulty logits, continuing through mid-level developmental milestones (e.g., Sitting 4: Propped sitting; Prone 14: Four-point kneeling), to the most challenging milestones (e.g., Standing 15: Early independent walking; Standing 16: Independent walking with reciprocal arm swing) at the highest difficulty logits.
  • Goodness-of-Fit Indices: Rasch infit and outfit mean-square (MnSq) statistics for the majority of the 58 items fall within the acceptable psychometric range of 0.70 to 1.30, indicating excellent model fit. Minor infit deviations have occasionally been noted for isolated transitional items (such as rolling patterns), which exhibit greater motor variability among typically developing infants without signifying developmental pathology.
  • Targeting: The test information curve shows optimal measurement precision between 2 and 14 months of age, with mild ceiling compression observed beyond 15 to 16 months as infants master independent ambulation.

10. Instrument / Measurement Tool

The AIMS is structured as a standardized, observational clinical and research rating system:

  • Test Type: Norm-referenced gross motor observational assessment.
  • Target Population: Infants from birth (0 months) through 18 months of age, or up to the achievement of confident, unassisted walking. Corrected age must be used for premature infants (born before 37 weeks of gestation).
  • Administration Time: Typically 15 to 30 minutes, depending on the infant’s state, mobility, and compliance.
  • Required Materials: A firm, warm, padded examination mat or surface; age-appropriate toys to prompt visual tracking, head-turning, and voluntary reaching; official AIMS score sheet and manual. Minimal physical handling is permitted only to reposition the infant into one of the four base postures (prone, supine, sitting, standing) if spontaneous transition does not occur.
  • Item Count: 58 items divided into 4 subscales:
    • Prone: 21 items
    • Supine: 9 items
    • Sitting: 12 items
    • Standing: 16 items
  • Response Format: Dichotomous observational rating: Observed (1) or Not Observed (0).
  • Operational Administration Concept — The “Motor Window”:
    • For each of the 4 postural subscales, the assessor identifies the infant’s motor window.
    • The lower boundary of the motor window is defined by the least mature item observed within that posture.
    • The upper boundary is defined by the most mature item observed within that posture.
    • Every item falling below the least mature observed item is automatically credited as Observed (1) (assumed to be within the infant’s mastered repertoire).
    • Each item located within the motor window is evaluated and scored as either Observed (1) or Not Observed (0).
    • All items above the most mature observed item are credited as Not Observed (0).
  • Scoring and Interpretation:
    • Subscale Raw Score = Sum of all credited items below the motor window + sum of observed items within the window.
    • Total Raw Score = Sum of the 4 positional subscale raw scores (range: 0 to 58 points).
    • Percentile Conversion: Total raw score is plotted on age-standardized normative percentile curves corresponding to the infant’s chronological or corrected age.
    • Diagnostic Cutoffs: Scores at or below the 10th percentile indicate suspect motor delay requiring short-term monitoring; scores at or below the 5th percentile denote abnormal gross motor delay warranting immediate multidisciplinary diagnostic evaluation and therapeutic intervention.

11. Permissions, Fee, and Test Year

The Alberta Infant Motor Scale was developed during research studies conducted in 1992 and officially published as a comprehensive clinical manual in 1994 by W.B. Saunders Company (now part of Elsevier Inc.). The test manual is titled Motor Assessment of the Developing Infant, authored by Martha C. Piper and Johanna Darrah. The assessment instrument, scoring sheets, and instructional graphic criteria are protected under international copyright law. Clinical practitioners, healthcare systems, and research institutions must obtain licensed copies of the manual and official published score sheets through Elsevier or authorized commercial medical book distributors. The items and descriptive observational criteria may be utilized in clinical practice and academic research under standard institutional purchase and educational fair-use agreements.

12. References

Blanchard, Y., Neilan, D., Newman, L., & Peclin, G. (2004). Interrater reliability and concurrent validity of the Alberta Infant Motor Scale and the Bayley Infant Neurodevelopmental Screener. Pediatric Physical Therapy, 16(2), 58–67. https://doi.org/10.1097/01.pep.0000127564.05834.33

Darrah, J., Piper, M., & Watt, M. J. (1998). Assessment of gross motor skills of at-risk infants: Predictive validity of the Alberta Infant Motor Scale. Pediatric Physical Therapy, 10(2), 77–85. https://doi.org/10.1097/00001577-199801020-00004

Darrah, J., Bartlett, D., Maguire, T. O., Avison, W. R., & Lacaze-Masmonteil, T. (2014). Have infant gross motor abilities changed in 20 years? A re-evaluation of the Alberta Infant Motor Scale normative values. Developmental Medicine & Child Neurology, 56(9), 877–881. https://doi.org/10.1111/dmcn.12450

Piper, M. C., & Darrah, J. (1994). Motor Assessment of the Developing Infant. W.B. Saunders Company / Elsevier. ISBN: 978-0-7216-4307-6.

Piper, M. C., Darrah, J., & Maguire, T. (1992). The Alberta Infant Motor Scale: Construction of a norm-referenced measure of infant motor performance. Pediatric Physical Therapy, 4(4), 212–217.

Piper, M. C., Pinnell, L. E., Darrah, J., Maguire, T., & Byrne, P. J. (1992). Construction and validation of the Alberta Infant Motor Scale (AIMS). Canadian Journal of Public Health, 83(Suppl 2), S46–S50.

Pin, T. W., de Campos, A. C., & Eldridge, B. (2010). The use of the Alberta Infant Motor Scale in clinical trials: A systematic review. Physical & Occupational Therapy in Pediatrics, 30(4), 297–313. https://doi.org/10.3109/01942638.2010.493097

Syrengelas, D., Kalampoki, V., & Kleisiouni, P. (2010). Alberta Infant Motor Scale (AIMS) performance of full-term Greek infants up to 18 months. Pediatrics International, 52(6), 921–927. https://doi.org/10.1111/j.1442-200X.2010.03196.x

Thelen, E., & Smith, L. B. (1994). A Dynamic Systems Approach to the Development of Cognition and Action. MIT Press. https://doi.org/10.7551/mitpress/1083.001.0001

13. Items of the Scale (Questionnaire)

Below are the authentic scale items in their original language as published in the standard psychometric validation studies, without modification or translation to preserve instrument validity and reliability:
Instructions / Directions: The infant is observed interacting naturally in four basic positions: prone, supine, sitting, and standing. The examiner identifies the least mature item observed and the most mature item observed in each posture (establishing the 'motor window'). Each item within the window is credited as 'Observed' or 'Not Observed'. All items prior to the least mature observed item are credited as observed (1 point each).
Response Scale: Dichotomous observational scoring: Observed (1) or Not Observed (0)
Scoring / Reverse Items: For each of the 4 positional subscales (Prone, Supine, Sitting, Standing), sum all items credited below the motor window plus all observed items within the window. Sum the four subscale scores to derive the total raw score (0 to 58), which is then converted to percentile ranks based on age-corrected norms.
1

Prone items (1-21):
1

Prone 1: Physiological flexion
2

Prone 2: Asymmetrical tonic neck reflex (ATNR) / Head turning
3

Prone 3: Early head control / Lifts head to 45 degrees
4

Prone 4: Forearm support (lifts head to 45 degrees)
5

Prone 5: Forearm support (lifts head to 90 degrees)
6

Prone 6: Early extended arm support
7

Prone 7: Extended arm support with chest elevation
8

Prone 8: Weight shift on forearms / reaching
9

Prone 9: Rolling prone to supine without rotation
10

Prone 10: Extended arm support with hip extension / reaching
11

Prone 11: Swimming posture / Landau reaction
12

Prone 12: Rolling prone to supine with rotation
13

Prone 13: Pivoting in prone
14

Prone 14: Four-point kneeling (all-fours position)
15

Prone 15: Rocking in hands and knees position
16

Prone 16: Crawling / Commando creeping on abdomen
17

Prone 17: Reciprocal creeping (four-point crawl)
18

Prone 18: Reaching in four-point kneeling
19

Prone 19: Bear crawl / Plantigrade creeping
20

Prone 20: Transition from four-point kneeling to sitting
21

Prone 21: Transition from four-point kneeling to standing
22

Supine items (22-30):
22

Supine 1: Physiological flexion / Head rotated to side
23

Supine 2: Tonic neck reflex posture / Head midline momentarily
24

Supine 3: Head midline with reciprocal kicking
25

Supine 4: Hands to knees
26

Supine 5: Hands to feet / Active hip flexion
27

Supine 6: Rolling supine to side-lying without rotation
28

Supine 7: Rolling supine to prone without rotation
29

Supine 8: Rolling supine to prone with rotation
30

Supine 9: Reaching in supine across midline
31

Sitting items (31-42):
31

Sitting 1: Supported sitting with head lag
32

Sitting 2: Supported sitting with head alignment / brief head holding
33

Sitting 3: Supported sitting with back rounded
34

Sitting 4: Propped sitting (arms forward for support / tripod sitting)
35

Sitting 5: Sitting with head and trunk control (fleeting arm support)
36

Sitting 6: Independent sitting without hand support
37

Sitting 7: Reaching in sitting with trunk rotation
38

Sitting 8: Sitting to prone transition
39

Sitting 9: Side-sitting with support
40

Sitting 10: Independent side-sitting
41

Sitting 11: Sitting to four-point kneeling transition
42

Sitting 12: Complex sitting transitions (pivoting/rotating in sit)
43

Standing items (43-58):
43

Standing 1: Primary standing (positive supporting reaction) and automatic stepping
44

Standing 2: Astasia-abasia (motor incoordination / lack of weight bearing)
45

Standing 3: Supported standing with sustained weight bearing
46

Standing 4: Supported standing with trunk held
47

Standing 5: Pulling to stand with support (hands on furniture)
48

Standing 6: Supported standing with active trunk extension
49

Standing 7: Cruising along furniture without rotation
50

Standing 8: Pull to stand from half-kneeling
51

Standing 9: Lowering self from standing with support
52

Standing 10: Cruising with rotation (turning facing movement direction)
53

Standing 11: Standing momentarily without support
54

Standing 12: Independent standing (stands alone)
55

Standing 13: Squatting to play and returning to stand
56

Standing 14: Standing up from the floor independently
57

Standing 15: Early independent walking (high guard)
58

Standing 16: Independent walking with reciprocal arm swing

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memjavad (2026, September 12). Alberta Infant Motor Scale. PSYCHOLOGICAL DATABASE. https://en.arabpsychology.com/scales/alberta-infant-motor-scale/
memjavad. “Alberta Infant Motor Scale.” PSYCHOLOGICAL DATABASE, 12 September 2026, https://en.arabpsychology.com/scales/alberta-infant-motor-scale/.
memjavad. “Alberta Infant Motor Scale.” PSYCHOLOGICAL DATABASE. September 12, 2026. https://en.arabpsychology.com/scales/alberta-infant-motor-scale/.