Abstract
Background Positive development in sports (PDS) is a theoretical framework emphasizing human potential development in sports participation. Despite theoretical advancements, operationalizing PDS remains challenging, given the scarcity of instruments that translate theoretical models into practical applications in sports.
Objective This systematic review aimed to identify measurement instruments for assessing positive development in sports, their theoretical foundations, and validity evidence supporting their use.
Methods This study follows COSMIN guidelines and includes a comprehensive search across MEDLINE, PubMed PMC, PsycINFO, AgeLine, SPORTDiscus, CINAHL, Web of Science, and Scopus databases. The search strategy refined with expert input yielded 702 records, with 41 meeting inclusion criteria (i.e., peer-reviewed original studies focused on the development, adaptation, or validation of measurement instruments assessing positive development in sports or related constructs). Screening was performed by two researchers in a double-blind process, with conflicts resolved by a third researcher. Data extracted included sample characteristics, theoretical underpinnings, and psychometric properties.
Results Most instruments were grounded in Positive Youth Development theories and Basic Psychological Needs. Internal structure validity and internal consistency were the primary types of evidence reported, with Cronbach’s alpha widely used. Despite recognition that human potential can be developed across the lifespan, instruments primarily targeted youth in sports contexts, with limited tools for older cohorts, revealing a significant gap. Most instruments originated in high-income countries, such as those in North America and Europe, underscoring the need for adaptations of theories and tools for low- and middle-income regions.
Conclusions Underrepresentation of diverse populations with regards to race, ethnicity, and gender, absence of interpretative norms, and limited focus on older cohorts were critical limitations. Addressing these gaps can enhance PDS instruments’ inclusivity and applicability, ultimately fostering more inclusive and impactful sports practices. Furthermore, the results indicate the need to develop instruments rooted in robust PDS theoretical models alongside theoretical revisions to better represent diverse populations and people from middle- and low-income countries, in addition to the adequate adaptation of instruments.
Keywords
Sports psychology; Assessment; Psychometrics; Positive psychology
Introduction
Positive Development in Sport (PDS) is a theoretical approach that foresees the structuring of sport experiences to foster the development of human potential in different age groups (Dionigi et al., 2017; Rathwell & Young, 2019). PDS is derived from Positive Youth Development (PYD), which targets only adolescent and young populations, and was designed to counter programs that addressed problems commonly associated with youth, such as drug abuse and juvenile crime. These programs, which aimed to prevent negative behaviors individually, were deemed ineffective as they overlooked the co-occurrence of problem behaviors and environmental factors. Experts emphasized that merely avoiding negative behaviors was insufficient to provide youth with opportunities to fully develop their potential and enhance their chances of achieving success in life (Catalano et al., 2004). Given that sports represent a motivating activity for young people characterized by voluntary engagement, rich social interaction and opportunities to learn and practice important socio-emotional skills, it was considered an appropriate context for PYD (Larson, 2000).
Over the past two decades, PDS has become a highly discussed topic in Developmental and Sports Psychology (Dionigi et al., 2017; Fraser-Thomas et al., 2005; Gould & Carson, 2008). Bruner et al. (2022) analyzed PYD literature and categorized it into three distinct interrelated approaches. The first approach, grounded in developmental psychology, includes the Developmental Assets Framework (Benson, 1997), which identifies 40 internal and external assets fostered in sports; and the 5 Cs of PYD (Lerner et al., 2005), adapted to 4 Cs of PYD in (Côté et al., 2010), pointing to four competencies that can be developed when participants interact in sports settings. The second approach focuses on life skills development in sports, highlighting transferable skills applicable to other life domains (Weiss et al., 2016). The third, an integrative perspective, encompasses the first and second approaches, incorporating the Personal Assets Framework, emphasizing three elements—personal engagement in activities, quality relationships, and appropriate settings, that foster the 4 Cs development and leading to participation, performance, and personal development. It also includes the model proposed by Holt et al., (2017), which integrates personal and organizational factors, recognizing the influence of the relationship with different social agents in the participants’ development and the Dorsch et al., (2022) model, which considers the mutual influences between sport participants and the youth sports system.
These theoretical frameworks have not only guided conceptual understandings of positive development in sport but have also influenced the design of more robust measurement instruments. For instance, the Developmental Assets Framework inspired instruments that assess both internal characteristics (e.g., commitment to learning, positive identity) and external support (e.g., family support, safe environments), reflecting the multidimensional nature of developmental contexts in sport. The 5Cs/4Cs models have directly shaped scales that aim to capture psychological and social competencies fostered in sport participation (Vierimaa e t al., 2012; Silva et al., 2024;). The life skills approach has led to the creation of tools that measure perceived acquisition and transferability of skills such as team-work, emotional regulation, and goal setting, emphasizing sport’s role in broader life domains (Camiré et al., 2021; Cronin & Allen, 2017; Weiss et al., 2016). Together, these frameworks have shaped a diverse and theoretically grounded set of tools for measuring positive development in sport.
Although PYD theory is well established, with several models available, recent literature shows that the field would benefit from studies designs that can demonstrate possible outcomes for young people related to engagement in sport-based PYD interventions. This includes more consistent operationalization of the frameworks and greater availability of measurement instruments (Bruner et al., 2023). In addition, PDS is now being explored across various age groups (Dionigi et al., 2017; Hawkins et al., 2009; Lerner, 2017), as the prevailing understanding is that human potential can be cultivated at any age (Bruner et al., 2022). However, the combination of stereotypes suggesting that development occurs predominantly in childhood and adolescence and the notion that older adults should only engage in light physical activities has resulted in greater scientific investment in PYD for youth. Thus, despite the current expansion in the understanding of this framework that encompasses more age ranges, there’s a need for further theory development for older cohorts, which also includes improvements in assessment strategies.
PDS is composed of latent constructs, which are unobservable variables inferred from participants’ behaviors. Thus, the only way to understand if PDS works and how is to operationalize it, that means, to derive constructs from theory that can be observed in the target population’s behavior (Razon & Tenenbaum, 2014). This enables the development of assessment tools to measure the framework so it can be studied by the academic community, providing new validity evidence and expanding the framework. Such tools also support practitioners, such as coaches and sports managers, in designing and evaluating effective interventions, thereby improving the quality of their work.
Measurement instruments are context specific (Pasquali, 2010). Professionals working in diverse sporting contexts and communities need assessment tools with validity evidence accumulated to their specific realities. PDS in general, and PYD specifically have been applied across various cultures (Qi et al., 2022). However, since PYD originated in North America, ensuring proper adaptation and validation for different contexts is critical. Additionally, as PDS is applied across diverse age ranges and settings, it is essential to determine the availability of appropriate instruments, the evidence supporting their use, and the constructs they assess. Mapping existing measurement instruments is vital to advancing the field scientifically and assisting practitioners in selecting suitable tools. The aim of this systematic review is to identify measurement instruments of positive development in sports, the theoretical bases underlying their construction, and the validity evidence supporting their use. This review is guided by the following questions: what are the available measurement instruments to assess constructs related to positive development in sports, and for what demographics they are suitable? What are the theoretical frameworks that underpin these instruments? Do these instruments accumulate the minimum validity evidence supporting their use? What are the instruments’ main psychometric analyses and properties reported?
Methods
Procedures
We conducted a search on the Prospero website (https://www.crd.york.ac.uk/prospero/) to identify registered systematic review protocols similar to ours, and found review focusing on instruments that measure life skills in sports. After discovering this study was unpublished, we reviewed the doctoral dissertation from which it was derived and confirmed its focus differed from ours, as it emphasized identifying studies on life skills assessment strategies, age groups, and psychological variables rather than the instruments themselves. Consequently, we registered our protocol on Prospero’s database. Following the COnsensus-based Standards for the selection of health Measurement Instruments (COSMIN-https://www.cosmin.nl) guidelines (Munn et al., 2018) we adapted the criteria to better suit our research aims. For example, we included instruments even if they had only the content validity since our objective was to gather existing instruments and available evidence of validity to contribute to the process of instrument selection by professionals in the field and to highlight areas lacking future studies. It was not our objective to identify the most appropriate instrument, as the appropriateness of an instrument is inherently context-dependent. Thus, we did not employ the COSMIN risk of bias tool, although we reported the available validity evidence of the instruments included in the review and assessed the quality of the studies based on specialized literature (American Educational Research Association et al., 2014; Terwee et al., 2018). The Ethics Committee of the University of xxx approved this study (number: 50513321.4.0000.5404).
Search strategy
The librarian of the Faculty of Medical Sciences of the University of Campinas guided the development, testing, and refinement of the search strategy over six months. Meetings were held weekly during the first month, bi-weekly in the second, and monthly thereafter, with additional discussions as needed. Searches were conducted across eight databases: MEDLINE (via PubMed), PubMed PMC, PsycINFO, AgeLine, SPORTDiscus, CINAHL (via EBSCOhost), Web of Science, and Scopus. Additional articles were identified through back-referencing.
A preliminary search identified key terms frequently used in studies on this topic. These terms were expanded using controlled vocabulary in each database (e.g. Thesaurus, Medical Subject Headings), meaning that search strategies were tailored to each database, because different terms with similar meanings are used in different controlled vocabularies. Keywords were organized into four thematic groups:
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1. Positive development, competence, life skills, social skills.
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2. Measurement instruments, tests, scales.
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3. Psychometrics, validity, instrument development, instrument construction.
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4. Sports, athletes, sport, and exercise measure.
Terms within each group were combined using the Boolean operator OR. Searches were conducted in each data base by inputting Group 1 AND Group 2 AND Group 3 AND Group 4. The strategy was refined through multiple iterations, using a selected article as a benchmark to ensure accuracy. Reference lists of included articles were manually reviewed, yielding four additional articles. The final search strategy for PsycINFO is provided in Table 1..
Inclusion and exclusion criteria
The present review inclusion criteria were (1) original research articles published in peer-reviewed journals; (2) studies on the development, adaptation, or accumulation of validity evidence of measurement instruments assessing positive development in sports or related constructs in any age range; (3) studies in which the measurement instrument is the object of the study and not used to assess positive development as a dependent variable; (4) studies that assessed at least one validity evidence of the instrument that is object of the study; (5) articles published from 1989 onwards were included, as this period marks the onset of broader discussions and emerging approaches to positive development in the literature (Catalano et al., 2004).
The exclusion criteria were: (1) studies published in abstract format, book chapters, thesis, or dissertations; (2) studies in languages other than Portuguese, English, Spanish, and French were reported but excluded because these four are the languages the researchers are fluent in reading; (3) studies on other topics.
Screening
The final search yielded 707 records. The records were uploaded onto an online reference management platform (Ouzzani et al., 2016). Duplicates were identified by the platform and manually deleted. Three researchers, experts in positive development in sports, participated in the screening phase. The screening was performed by two Ph.D. candidates and a professor holding a Ph.D. degree. In the first stage, titles, keywords, and abstracts of the remaining records after the removal of duplicates were then screened by two independent researchers who were blind to each other. The articles that met the criteria were included in a second screening stage in which they were read in their entirety by the two Ph.D. candidates, also conducted in a double-blind approach to assess the eligibility criteria. In both stages conflicts were solved by the professor, who was blind to the previous researchers’ decisions. The stages of the screening phases were conducted on the online platform, which has a tool to inform the exclusion reasons.
Data analysis and quality assessment
Data were analyzed descriptively. The quality of each instrument included in the review was assessed by analyzing the procedures and results of the validity evidence estimated. Good quality content validity was considered present when the researchers consulted experts and the target population when constructing or adapting the items (Terwee et al., 2018). The quality of the results of the studies estimating validity evidence based on internal structure and reliability was assessed considering internationally employed standards (American Educational Research Association et al., 2014).
Data extraction process
A data extraction spreadsheet was constructed by the researchers. We collected the following information from the included studies: authors and year of publication, name of the instrument object of the study, method (development, transcultural adaptation, or accumulation of validity evidence), country of origin, theoretical framework of the instrument, sample characteristics, type of validity evidence tested, and estimated indexes, factors description, quantity of items. Two reviewers, blind to each other, extracted the data independently. Discrepancies were resolved through discussion, and consensus was reached among the reviewers. Reviewers were not blind to the authors, institutions, or journal titles in this step of the review.
Results
A total of 41 studies met the inclusion criteria and were analyzed. Five of these were identified through a manual search (i.e., suggested by publisher websites during full-text downloads or found in the reference lists of previously included articles). Figure 1 presents the study selection flowchart.
Extracted data are presented in Table 2, which details study nationality, study type, theoretical background of the instruments, and content validity quality. Table 3 summarizes other psychometric properties.
Main characteristics and content validity sample of the measurement instruments included in the systematic review
The majority of studies originated from the Americas (n = 21; 16 from North America and 5 from Brazil), followed by Europe (n = 15), Asia (n = 5), Africa (n = 1), and Oceania (n = 2). The total exceeds 41 because some studies were conducted across multiple continents and counted in each corresponding category. The earliest study was published in 1989, followed by two in 1997 and 1999, eight in the 2000 s, and 18 during the 2010 s, indicating a growing trend. Eight studies were published in the current decade (2020s). Regarding the theoretical foundations of the measurement instruments, basic psychological needs (BPN) and Positive Youth Development were the most frequently cited, followed by Structure of Human Values. Other frameworks cited were Emotional Intelligence, Self-efficacy, and Coaching Competence.
Table 2 provides details on the sample characteristics of the studies that conducted content validity procedures. Five studies did not require content validity (Bean et al., 2020; Gunnell et al., 2012; Vlachopoulos, 2007, 2008; Wang et al., 2017) due to one or more of the following reasons: (a) the instrument allowed for contextual wording adaptations without requiring structural modifications or (b) the study focused exclusively on psychometric properties and/or measurement invariance. Among the remaining studies, 15 demonstrated good-quality content validity by involving both experts and the target population. Conversely, 16 studies showed poor-quality content validity: 15 involved only one of the two groups (experts or target population), and one failed to report content validity procedures altogether, despite their necessity. One study, although classified as having poor-quality content validity, consulted experts and used the Flesch-Kincaid readability test in an attempt to ensure age-appropriate item wording, aligning with the aims of readability assessment.
Among the studies included in the review, 13 involved instruments specifically developed within the PYD in sports framework; 11 originated from broader positive development theories and were adapted to PYD in sports; 12 originated from broader positive development theories and were adapted to PDS; and five involved instruments specifically developed for adults/older adults. The most frequently measured constructs were basic psychological needs (15 instruments, 36.58%); life skills (7 instruments, 17.03%); values in sports (3 instruments, 7.31%); and self-efficacy (2 instruments, 4.87%). The remaining constructs listed in Table 2 each represented 2.43% of the instruments. Altogether, the studies included a total of 27,882 participants (≈ 49%, 13,774 boys and men, and ≈ 51%, 14,108 girls and women). For studies focused on physical exercise, the total sample was 9995 (≈ 43%, 4.312 men, and ≈ 57%, 5683 women). For studies focused on sports, the total sample was 17.887 (≈ 53%, 9462 boys and men, and ≈ 47%, 8425 girls and women).
Regarding the type of practice, 43.90% of the studies included individuals from both individual and team sports. A further 21.95% focused on individuals engaged in physical exercise routines, and 12.19% examined school sports settings. Studies exclusively targeting team sports accounted for 9.76%, while 2.43% focused solely on individual sports practitioners, and another 2.43% examined both sports and physical exercise. Two studies (9.76%) did not specify the type of sport or physical exercise, although one instrument was designed for exercise participants. Additionally, 2.43% of the studies focused on content validity procedures, recruiting a small sample of athletes without reporting the specific sport involved.
Most studies employed confirmatory factor analysis (CFA; n = 31), exploratory factor analysis (EFA; n = 12), or principal component analysis (PCA; n = 1) to examine the internal structure of the target instruments. A smaller number used exploratory structural equation modeling (ESEM; n = 4) and Item response theory (IRT; n = 1). Reliability was most frequently assessed using Cronbach’s alpha (n = 36), followed by composite reliability (n = 3). For invariance testing, 11 studies employed multi-group confirmatory factor analysis (MGCFA) while other methods included multi-group exploratory structural equation modeling (MGESEM) (n = 1), longitudinal CFA (n = 1), structural equation modeling (SEM, n = 1), and simultaneous multigroup covariance analyses (n = 1).
All 31 studies employing CFA and/or ESEM to test the internal structure reported CFI and root mean square error of approximation (RMSEA) as fit indices, other less reported fit indices were Tucker–Lewis Index (TLI, n = 12), standardized root mean square residual (SRMR, n = 13), Nonnormed fit index (NNFI, n = 10), Goodness of fit index (GFI, n = 2), and Incremental fit index (IFI) (n = 2). All studies showed acceptable to excellent CFI indices (≥ 0.90) and, with one exception (Myers et al., 2006), all studies reported acceptable to excellent indices for RMSEA (≤ 0.08) (Bentler, 1990). Overall, these findings provide strong evidence supporting the validity of the reviewed instruments for their intended contexts, particularly in terms of their ability to reproduce the original factor structures in adaptation studies.
Twenty-nine studies did not disclose the race/ethnicity breakdown of the samples recruited. Among the 12 studies that disclosed this information, eight included a majority of white people in their sample (range = 54.5% to 91.9%). One study described the sample as predominantly white, while two studies involved samples composed of Chinese and Mexican participants, respectively (Laffrey & Asawachaisuwikrom, 2001; Wang et al., 2017).
Discussion
The objective of this systematic review was to identify measurement instruments for positive development in sports, the theoretical foundations underpinning these instruments, and the validity evidence supporting their use. The findings provide both the academic and professional communities with an overview of available PDS instruments and their key characteristics. The most frequently examined types of validity evidence were internal structure and internal consistency, both of which strongly supported the quality of these measures in assessing the intended constructs (American Educational Research Association [AERA] et al., 2014). Findings indicate that the instrument items and components were generally aligned with their theoretical foundations, effectively capturing the proposed constructs.
For example, Albouza et al. (2021) adapted the Youth Sport Values Questionnaire (YSVQ-2), to assess values in sport, focusing on three subscales: morality, competence, and status. Reported fit indices (CFI/TLI ≥ 0.90; RMSEA ≤ 0.08) suggest that the model fits the sample data well, confirming that each subscale reliably measures values in sport. Additional analyses, such as Cronbach’s alpha coefficients, indicated high internal consistency in estimating respondent scores on the subscales, further supporting the validity of the instrument (Albouza et al., 2021; Cunha et al., 2016). Similar findings by Lee et al. (2008) and Gonçalves et al. (2017) reinforce the robustness of the YSVQ-2. This consistency across studies, time periods, and diverse samples supports both the reliability and applicability of these instruments (AERA, 2014). A similar pattern was observed in studies on the Basic Psychological Needs in Exercise Scale, further affirming the stability of validity evidence in this field.
The use of indices such as CFI, TLI, and RMSEA is both appropriate and expected when assessing internal structure. CFI and TLI compare the proposed model to a null model while penalizing for model complexity (with widely accepted cutoffs of ≥ 0.90), and RMSEA estimates the approximation error between the model and the observed data (with a recommended cutoff of ≤ 0.08) (Brown, 2015; Tabachnick & Fidell, 2019). However, merely reporting these fit indices does not ensure construct validity. Complementary statistical evidence that support the model along with a solid theoretical foundation are also essential criteria.
Internal consistency, typically assessed using Cronbach’s alpha, also warrants closer scrutiny. Although widely used, this index is highly sensitive to the number of items in a factor, which can artificially inflate the results without truly reflecting the construct homogeneity (Doval et al., 2023; Pasquali, 2017). Overall, the instruments included in this review demonstrated good fit indices and high reliability, contributing with valuable tools for assessing PDS within sports contexts. However, the lack of alternative reliability estimates, such as McDonald’s omega or composite reliability, which are more appropriate for hierarchical models, reveals a significant methodological gap (Doval et al., 2023).
Sport has long been regarded as a fertile environment for fostering positive development, given its potential to support psychological and social growth (Aoyagi et al., 2012; Carvalho, 2020). The findings of this review provide researchers and practitioners with resources to evaluate interventions and better understand how sports can promote PDS. However, no studies addressing the development of interpretative norms were identified. This limits the practical application of these instruments, as they lack reference parameters for interpreting raw scores.
Another critical issue is the scarcity of measurement invariance testing, which is essential to ensure that instruments function equivalently across different groups. Of the 41 studies analyzed, only nine conducted such analyses, and none addressed dimensions such as race or ethnicity. This omission undermines the validity of subgroup comparisons and reflects a lack of attention to issues of social justice in measurement practices (AERA et al., 2014; Diemer et al., 2019). Ignoring these dimensions can contribute to the perpetuation of inequalities, as psychological instruments are embedded with cultural assumptions that must be critically examined. Future studies are encouraged to adopt more inclusive recruitment strategies, use detailed sociodemographic questionnaires that incorporate race and ethnicity, and apply measurement invariance analyses, such as multigroup confirmatory factor analysis or multiple indicators and multiple causes (MIMIC) models, to ensure that instruments are equivalent across groups and produce valid inferences.
Almost half of the studies included in this review focused on developing new instruments, while the other half focused on adapting existing instruments for different cultures or contexts. Most instruments were developed in high-income countries, and only five adaptation studies were conducted in middle-income countries, highlighting a significant geographic imbalance. Positive Youth Development originated in North America (Larson, 2000), where it has been extensively studied in high-income countries such as the USA and Canada. However, Patton et al. (2009) reported that 89% of the world’s youth (aged 10–24 years) live in low- and middle-income countries, where youth experiences often differ from that of their counterparts living in wealthier nations due to more profound challenges such as poverty, limited access to healthcare, and educational inequality. This disparity underscores the need for future research to develop instruments tailored to these populations, while also revisiting and revising the theoretical foundations of existing tools to ensure contextual relevance.
Regarding age groups, most instruments targeted children, adolescents, and young adults in the sports context. Fewer instruments focused on adults and older adults, and more instruments were designed for use in physical exercise settings rather than for younger athletes. Some studies included participants across different life stages, such as Aguilar and Petrakis (1989), who examined individuals aged 18–74 years. The concentration of instruments on younger people reflects the origins of PDS in youth sports. Nonetheless, the literature highlights that the positive development is equally relevant for older cohorts, based on the premise that human potential can be cultivated at any age. Indeed, PDS has been explored in various age groups, including young adults (Rathwell & Young, 2019) and older adults (Baker et al., 2010). Furthermore, sport is widely regarded as an activity conducive to personal development (Korsakas et al., 2021; Larson, 2000). Yet, because human development has traditionally been associated with childhood and adolescence, the developmental potential of sports for adults and older adults remains underappreciated (Baker et al., 2010). Alternative perspectives on human development suggest that individuals continue to learn and grow throughout later life stages (Dionigi et al., 2017; Gergen & Gergen, 2001). Therefore, the limited availability of instruments assessing PDS for adults, and even fewer for older adults, represents a gap that future research should address.
Kim et al. (2019), in a systematic review, highlighted the lack of instruments addressing older cohorts. They concluded that psychological and social outcomes of sports participation among older adults remain largely unexplored and recommending the development of new instruments for this demographic. Although some tools exist for adults, greater investment is needed, particularly in constructing instruments for adults in low- and middle-income countries. Notably, only two studies included participants aged 60 and older, further underscoring the underrepresentation of this group in sports research.
It is well documented that girls and women are a disadvantaged group in sports, facing fewer opportunities to participate, exposure to prejudice and violence once involved, and access to lower-quality training and competition environments (Korsakas et al., 2024; Maranhão et al., 2023). Therefore, it is imperative to ensure that professionals and researchers have access to high-quality strategies for measuring the effects of interventions in sports contexts, enabling data collection that can inform practice and guide planning. Current best practices for developing and adapting measurement instruments recommend adopting practices to prevent bias, including accounting for the specific experiences of different groups, particularly those who are minoritized (Diemer et al., 2019). In recognition of this issue, we conducted an analysis of the gender breakdown in the samples of the studies included in this review.
Gender analysis revealed relatively balanced overall participation, with slightly more girls and women (n = 14,108) than boys and men (n = 13,774). Regarding the type of activity, there were more women (n = 5683) than men (n = 4312) in physical exercise settings, while sports-related studies included more men (n = 9462) than women (n = 8425). These results are consistent with cultural patterns, as physical exercise is more widely accepted for women, whereas sport is still often perceived as a masculine domain (Korsakas et al., 2024). Despite this, most studies included a relatively equal gender distribution, with 9 out of 15 conducting invariance tests that incorporated gender as a variable. Additionally, three studies reported individuals identifying as gender fluid, suggesting a growing acknowledgment of gender diversity in the development and adaptation of measurement instruments, an area warranting further research investment.
When analyzing race/ethnicity data, most studies did not report these characteristics. Only 12 of the 41 studies reviewed reported race/ethnicity information and eight predominantly included white participants. These findings highlight the need for studies on instrument development and adaptation to explicitly account for race/ethnicity when recruiting participants, particularly in sport contexts. Reporting this information is essential for professionals and researchers to determine whether an instrument is suitable for their specific population. Such practices can support the development of more equitable sports initiatives that address the needs of racial and ethnic minoritized groups.
Most instruments reviewed were based on theoretical models linked to the development of positive characteristics but were not explicitly constructed within the PDS framework or designed primarily for evaluating athletes. This is evident in adaptations such as the Youth Experiences Survey-YES (MacDonald et al., 2012) and the Psychological Need States in Sport Scale (Bhavsar et al., 2020), which required revisions to their internal structures when applied in the sports context. To address this limitation, it is recommended that new instruments be developed based on robust theoretical models of PDS. This approach would ensure that the constructs are properly operationalized and that the instruments’ factorial structures are conceptually aligned with the intended framework.
This systematic review contributes by presenting available tools for assessing positive development in sports and identifying key areas that would benefit from further research. Limitations include potential omissions due to the combinations of terms used in the search strategy and databases used, even knowing we carefully developed and revised the search strategy. While the review offers a broad overview of instruments, their main characteristics and psychometric properties, it does not deeply evaluate the quality of psychometric analyses, which would aid professionals in selecting appropriate tools. For example, current academic discussions emphasize the importance of using robust estimators for assessing internal structure of instruments that adapt to the characteristics of the items (Li, 2016) and for assessing reliability (Doval et al., 2023). Therefore, we encourage future studies to address this topic and recommend readers to analyze it thoroughly. Another limitation is the absence of a formal risk of bias assessment for included studies according to COSMIN guidelines. It was not our objective to identify the most appropriate instrument, since this depends on the context, therefore, we decided to assess studies quality based on international standards (American Educational Research Association et al., 2014) and include them even if the quality of validity evidence reported was poor, which helped us to indicate future directions for the field.
Conclusion
This systematic review identified key opportunities to advance the field and provides directions for future research. Many existing instruments are based on broad frameworks, such as basic psychological needs, which are not explicitly rooted in the positive development in sport (PDS) framework. Developing instruments grounded in specific theoretical models is essential to accurately assessing distinct dimensions of PDS, thereby enhancing their precision and applicability.
The predominance of instruments focused on youth highlights a significant gap in the development of tools for older groups. Considering that human potential can be cultivated throughout life, it is essential to develop instruments that assess the psychological and social benefits of sports across different life stages. Additionally, most instruments originated in high-income countries, mainly in North America and Europe, underscoring the need to develop tools suited to low- and middle-income contexts. This is essential to promote broader applicability and ensure equity in sports practices.
Furthermore, future studies should consider constructing instruments that are theoretically grounded in positive development in sports, which will bring theoretical robustness to the instrument and contribute to additional development in theory. Researchers should also avoid the uncritical importation of theories without conducting necessary cross-cultural adaptations. Such adaptations require meaningful engagement with the target population within its specific cultural context. Theories must be examined within local cultures before measurement instruments are developed, particularly given the substantial cultural differences between developed and developing countries. It is equally important to prioritize diverse populations in terms of age group, gender, race/ethnicity, and gender identity when constructing new instruments or adapting them to different contexts. This includes not only adopting recruitment strategies that intentionally include underrepresented populations, but also ensuring that underlying theories adequately reflect their experiences. Instruments that consider these differences are essential for designing sports interventions that are both effective and socially representative. Moreover, the absence of interpretative norms limits the practical utility of existing instruments. Investing in the development of clear and culturally sensitive norms will enable professionals and researchers to plan and evaluate interventions with greater confidence and contextual relevance.
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Abbreviations
- PDS Positive development in sports
- PYD Positive Youth Development
- 5Cs Five Cs of positive development
- 4Cs Four Cs of positive development
- BPN Basic psychological needs
- CFA Confirmatory factor analysis
- EFA Exploratory factor analysis
- ESEM Exploratory structural equation modeling
- IRT Item response theory
- MGCFA Multi-group confirmatory factor analysis
- MGESEM Multi-group exploratory structural equation modeling
- SEM Structural equation modeling
- CFI Comparative fit index
- RMSEA Root mean square error of approximation
- TLI Tucker–Lewis index
- NNFI Normed fit index
- GFI Goodness-of-fit index
- IFI Incremental fit index
- YSVQ-2 Youth Sport Values Questionnaire-2
- YES The Youth Experiences Survey
- YO Years old
- W Women
- M Men
- N/A Not applicable
- CO Construction
- TA Transcultural adaptation
- AD Adaptation
- CI Cross-cultural invariance
- VA Validity evidence accumulation
- SD Standard deviation
- PCA Principal components analysis
- SRMR Standardized root mean square residual
- ICC Intraclass correlation coefficient
- CI Confidence interval
- β Beta
- χ² Chi-square
- α Alpha
- AVE Average variance extracted
- PA Parallel analysis
- WRMR Weighted root mean square residual
- NNFI Non-normed fit index
- GFI Goodness of fit index
- IPLOC Autonomy-internal perceived locus of causality
- TSCI Trait sport confidence inventory
- CR Construct reliability
Acknowledgements
Not applicable.
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Funding
No funding was received for this research.
Data availability
All data generated or analyzed during this study are included in this published article.
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