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. 2022 Aug 9;17(8):e0272817. doi: 10.1371/journal.pone.0272817

The field and resistance training loads of academy rugby league players during a pre-season: Comparisons across playing positions

David Anthony Moore 1,2,*,¤, Ben Jones 1,2,3,4,5,#, Jonathon Weakley 1,6,7,#, Sarah Whitehead 1,2,8,#, Kevin Till 1,2,#
Editor: Emiliano Cè9
PMCID: PMC9362933  PMID: 35944037

Abstract

Male academy rugby league players are required to undertake field and resistance training to develop the technical, tactical and physical qualities important for success in the sport. However, limited research is available exploring the training load of academy rugby league players. Therefore, the purpose of this study was to quantify the field and resistance training loads of academy rugby league players during a pre-season period and compare training loads between playing positions (i.e., forwards vs. backs). Field and resistance training load data from 28 adolescent male (age 17 ± 1 years) rugby league players were retrospectively analysed following a 13-week pre-season training period (85 total training observations; 45 field sessions and 40 resistance training sessions). Global positioning system microtechnology, and estimated repetition volume was used to quantify external training load, and session rating of perceived exertion (sRPE) was used to quantify internal training load. Positional differences (forwards n = 13 and backs n = 15) in training load were established using a linear mixed effect model. Mean weekly training frequency was 7 ± 2 with duration totaling 324 ± 137 minutes, and a mean sRPE of 1562 ± 678 arbitrary units (AU). Backs covered more high-speed distance than forwards in weeks two (p = 0.024), and 11 (p = 0.028). Compared to the forwards, backs completed more lower body resistance training volume in week one (p = 0.02), more upper body volume in week three (p< 0.001) and week 12 (p = 0.005). The findings provide novel data on the field and resistance-based training load undertaken by academy rugby league players across a pre-season period, highlighting relative uniformity between playing positions. Quantifying training load can support objective decision making for the prescription and manipulation of future training, ultimately aiming to maximise training within development pathways.

Introduction

Academy athletes within sport engage in structured training programmes to maximise their development and progress to senior professional levels [1]. The training dose, defined by the frequency, volume and intensity of exercise, determines the type and magnitude of the training response [2, 3]. The prescription of training by coaches remains largely instinctive, consequently research is needed to further understand training programme design [2, 4, 5]. The monitoring of training has become common practice in elite sport, with the primary purpose being to guide and inform training prescription [6], which is typically quantified with reference to frequency, intensity, time, and type of each session [7]. Practitioners have adopted the term ‘training load’, further classifying external training load (e.g., distance covered measured by global positioning systems; GPS) and internal training load (e.g., athlete perception of training intensity measured by session rating of perceived exertion; sRPE) to quantify exercise [8].

Microtechnology (i.e., GPS and micro-electro mechanical systems) has allowed for the detection of increasingly detailed information on external training load (e.g., tackles), which has led to widespread adoption of microtechnology to quantify training in collision based sports, including rugby league [911]. The intermittent movement, collision, and skill components of rugby league match play require players to have a wide range of technical (e.g., passing, kicking, tackling) and physical (e.g., strength, speed, repeated effort ability) capacities [12]. Training programmes should expose players to the specific intensity and volume of match-play throughout the training week [13]. Therefore, players engage in a diverse range of training modalities (e.g., technical-tactical, resistance training, speed and conditioning) to elicit specific adaptations [12]. sRPE offers a valid and easily implemented measure of internal training load that can be used across the various training modalities [1416]. Ultimately, a coordinated and systematic approach quantifying both external and internal training load would provide more comprehensive insights into the overall demands of training, and support the development of specific training that aims to develop both physical and technical qualities [16, 17]. To date however, there remains limited training data available within rugby league, at any level, to use as a reference for what may be considered an appropriate load [18].

Research in rugby league has presented the characteristics of match-play [1921] the physical qualities of athletes across playing standards [22, 23] and evaluated training interventions [11], but few studies have quantified training load. Gabbett [24] was the first to describe the typical training activities used to prepare professional players for competition and demonstrated the demands of competitive play were not being well matched to those observed in training. Black et al. [18] then quantified the field-based external training load of professional rugby league players using GPS across the playing season, but did not account for resistance training or internal load. Daniels et al. [11] reported on strength, power, and endurance characteristics and their association with training load during a 7-week pre-season. In doing so, Daniels et al. [11] reported the distribution of multimodal rugby league training, where field-based sessions totalling 48.5%, gym-based 37.9%, and wrestle sessions 13.6% over the pre-season period. While these studies expand our knowledge surrounding training, the research is exclusive to the adult professional standard with limited information available in academy players. Dobbin et al. [25] examined the influence of training load on body composition over a 14-week pre-season in academy rugby league, using sRPE as the universal measure of training load. Most recently, McCormack et al. [26] reported weekly training volumes ranging between 359 and 1,033 mins, depending on the phase of the season. However, quantification of volume was an estimation by coaches of a ‘typical week’ and did not provide objective data on the accumulated weekly training load in academy rugby league. Therefore, more detailed analyses combining microtechnology and sRPE to quantify training load across modalities (i.e., field and resistance training) is warranted.

As both excessive and insufficient training load may impede athletic development, understanding the specific training loads undertaken by academy rugby league players is important for the planning of future training to maximise athletic performance, injury prevention, playing progression, and general wellbeing [3]. Differences in training load, alongside differences in certain physical capabilities associated with specific playing positions and standards, may influence one’s understanding of appropriate training prescription [1, 27]. No study has quantified an academy rugby league pre-season period, considering positional demands for both field- and resistance-based training loads. A greater understanding of academy rugby league training will help practitioners plan, deliver, and evaluate training. Therefore, the aim of the current study was to quantify the field- and resistance-based training loads of an academy (U19) rugby league pre-season period and compare these training loads by positional groups across training weeks.

Methods

Study design

A retrospective observational study design was used to quantify the field- and resistance-based training load of academy-level rugby league players from one professional club during a pre-season period. The study included field- and resistance-based training during the 2019/2020 pre-season, representing a 13-week period from November to February. The pre-season was comprised of four separate periodised training blocks (block one: two weeks [nine training days], block two: three weeks [fifteen training days], block three: three weeks [six training days], and block four: five weeks and [sixteen training days], post winter break) focusing on rugby specific skills, aerobic and anaerobic conditioning, sprinting, and muscular strength. Block three included a 11-day rest period (for the winter break). The data set included training loads being recorded via microtechnology units, the resistance-based repetition method (sets and reps) and sRPE. All training took place at the training ground of the professional club supervised by qualified coaching staff.

Participants

Twenty-eight male academy rugby league players from a single professional club playing in the Under-19s Super League competition (age 17 ± 1 years, body mass 90.1 ± 13.2 kg, height 178.6 ± 6.4 cm) participated in the study. Due to the applied nature of this research, the number of participants included was dictated by the resource constraints of the professional sporting organisation [28]. A total of 46 training days were captured over the 13-week pre-season period, with a mean ± standard deviation (SD) of 37 ± 7 field-based and 33 ± 7 gym-based training observations per player. Players were split into two positional groups to provide position-specific findings, forwards (n = 13) and backs (n = 15). All training data collected was part of regular practice, training content was not in any way influenced by the research. The study received approval by the Leeds Beckett University Ethics Advisory Committee, and all participants and parents / guardians (where needed) provided written consent.

Procedures

Players underwent 13-weeks of training, consisting of strength and conditioning and rugby league specific skills training. To capture the concurrent training employed during the pre-season period, training was categorised into field and gym sessions. Total weekly training load were summated and presented to make comparisons between weeks, alongside mean sessional training load representing the within week average. The field sessions represented training sessions including technical/tactical skills, aerobic and anaerobic match based conditioning sessions, speed sessions, and combat sessions similar to previous reports [11, 29]. Gym sessions included all resistance training undertaken during the period.

Quantification of training load

Internal load. Given the concurrent nature of the training performed (i.e., field-based and gym-based), sRPE [14, 15] was used as a consistent measure of training load across training modalities [6]. sRPE was calculated as session duration multiplied by the individual’s RPE. Participants scored individual sessions using a modified Borg Category Ratio-10 RPE scale [14, 15]. All players were familiarised with the scale prior to commencement of the study. To minimise bias from the most recent phase of exercise, participants recorded their RPE approximately 30 min post-training. Recordings were taken non-verbally with each participant on their own and blinded from other scores to control for external influences. Mean sessional, weekly, and total sRPE-TL for the 13-week period was calculated for both gym and field.

External load. Microtechnology units (Optimeye S5, Catapult Innovations Melbourne, Victoria) were used to quantify the field-based locomotive loads. The validity and reliability of microtechnology devices measuring instantaneous velocity, collision count, and accelerometer derived PlayerLoadTM has been established [30, 31]. Players wore an undergarment which housed the microtechnology unit positioned in-between the scapulae as per manufacturer instructions. The same units were worn for repeated observations, and the devices were switched on 30-minutes prior to commencement of training [32]. Data were downloaded from the microtechnology devices using the proprietary software (Catapult Openfield, v.1.21.1). Velocity was calculated via the Dopler shift method, and the minimum effort duration was set at 1-second [31]. The instantaneous 10-Hz speed data and collision event files were exported, and all further analysis was carried out using the statistical software Jamovi (The Jamovi Project, jamovi Version 1.6.18.0).

Analysis of field-based locomotive loads included total distance (meters), high-speed running (HSR) meters with the speed threshold set at >5 m·s-1 (HSR and sprinting were aggregated to represent total-HSR) [12], average speed (meters per minute), acceleration density (meters per second), PlayerLoad (arbitrary units), and tackles (count), aligned with those previously reported in rugby league [20, 33, 34]. Acceleration density was calculated as the summation of absolute acceleration and deceleration values across the duration of the training session which was divided by the total time spent on field to calculate mean acceleration to represent the relative output.

Resistance training volume were quantified using the repetition method [35]. Programmes were assigned including the exercises, number of sets, and repetitions to be completed. From these prescribed programmes, upper- and lower-body repetitions (sets multiplied by repetitions) were reported, in addition to weekly resistance training frequency and duration. The aim of the gym programme was designed to increase muscle mass and strength, while establishing fundamental movement patterns (i.e., squat, lunge, hinge, push, pull, brace and rotate).

Statistical analysis

Data were analysed using the statistical software Jamovi (The Jamovi Project, Jamovi, Version 1.6.18.0 [Computer Software]). Descriptive statistics were calculated and presented as means ± SD. In line with the observational approach to the study design, mixed linear modelling was used to assess the differences between positional groups and training weeks for each dependent variable (field- and gym-based variables). A mixed model was used as it can be applied to repeated-measures data from unbalanced designs, which was the case in the current study since players differed in terms of the number of training sessions they participated in. Both fixed- and mixed-effect analysis of covariance models were used to assess differential effects by weeks (weeks 1–13) of the pre-season and positional groups (forwards and backs). Week and positional group (forwards and backs) were treated as fixed effects. Random effects were associated with the individual players (subject ID). The models assessing field and gym were independent of each other. Significance was set at p < 0.05, and effect sizes (ES) with 95% confidence intervals were used, with effect size calculated as the reported difference divided by the pooled SD. This approach was applied to training load data to assess the pre-to-post change from the beginning to the end of the pre-season observation period. Threshold values for effect sizes were: 0.0–0.19, trivial; 0.2–0.59, small; 0.6–1.19, moderate; 1.2–2.0, large; >2.0, very large. If one or more fixed effects were statistically significant, post-hoc pairwise comparisons were performed to examine between pairs of categories of the significant factors. 95% confidence intervals (CI) of the raw and standardized coefficients were also calculated. Data are presented as an estimated marginal means ± standard error (SE), for pairwise comparisons of time periods or positional roles as 95% CI.

Results

Training load across the pre-season

The pre-season training loads of academy rugby league players across a pre-season period are presented in Table 1 (total weekly) and 2 (mean sessional). Average speed, and acceleration density are presented in Table 2 only, as these variables cannot be summated as weekly totals. The mean accumulated sRPE-TL for the entire pre-season phase for field and gym sessions were 10,366 ± 2,740 and 8,613 ± 1,750 AU, respectively. The mean weekly sRPE-TL for the pre-season period was 857 ± 426 and 722 ± 287 AU for field and gym, respectively. No significant differences in sRPE-TL were found between forwards and backs for either field or gym. Descriptive observations of the weekly training load across the pre-season are presented as means ± SD in Figs 14 and described below.

Table 1. Total (Mean ± SD) weekly training load during an academy rugby league pre-season.

Week Total Field Gym
Frequency (n) Duration (mins) sRPE (AU) Frequency (n) Duration (mins) sRPE (AU) TD (m) HSD (m) PlayerLoad (AU) Tackles (n) Frequency (n) Duration (mins) sRPE (AU) LB (reps) UB (reps)
1 8 441 ± 73 2172 ± 536 4 274 ± 80 1332 ± 197 14927 ± 2795 1531 ± 425 1543 ± 367 43 ± 20 4 188 ± 31 942 ± 188 940 ± 178 264 ± 0
2 9 485 ± 104 2283 ± 368 5 297 ± 84 1348 ± 354 15627 ± 4595 987 ± 497 1531 ± 520 36 ± 23 4 188 ± 26 935 ± 168 839 ± 184 264 ± 0
3 7 304 ± 26 1646 ± 589 3 138 ± 54 901 ± 346 10115 ± 3213 951 ± 439 1078 ± 376 12 ± 13 4 166 ± 50 775 ± 239 480 ± 50 409 ± 142
4 6 339 ± 42 1696 ± 275 3 167 ± 49 830 ± 233 13161 ± 2596 2240 ± 435 1341 ± 287 26 ± 14 3 173 ± 12 866 ± 142 583 ± 58 328 ± 0
5 8 402 ± 26 2063 ± 151 4 199 ± 44 1053 ± 184 13383 ± 1287 1906 ± 455 1464 ± 218 30 ± 16 4 203 ± 11 1010 ± 90 677 ± 68 688 ± 0
6 8 452 ± 75 2189 ± 358 4 232 ± 65 1283 ± 332 17233 ± 5159 2932 ± 974 1668 ± 537 37 ± 17 4 220 ± 0 907 ± 79 626 ± 0 584 ± 0
7 1 54 ± 0 - 1 54 ± 22 - 4440 ± 309 177 ± 87 439 ± 61 10 ± 8 0 - - - -
8 2 95 ± 8 313 ± 61 1 36 ± 14 135 ± 23 3737 ± 148 381 ± 96 373 ± 49 9 ± 5 1 60 ± 0 196 ± 37 341 ± 0 -
9 7 302 ± 48 1134 ± 228 4 161 ± 26 498 ± 133 12521 ± 2456 1647 ± 513 1262 ± 304 34 ± 20 3 152 ± 12 661 ± 84 311 ± 44 220 ± 0
10 8 405 ± 89 1747 ± 313 4 234 ± 32 905 ± 196 15263 ± 2236 1529 ± 445 1629 ± 289 40 ± 19 4 184 ± 34 842 ± 205 298 ± 66 349 ± 124
11 8 333 ± 130 1368 ± 556 5 222 ± 46 938 ± 409 17076 ± 4947 1980 ± 774 1688 ± 572 56 ± 39 3 115 ± 42 464 ± 185 167 ± 0 391 ± 104
12 6 203 ± 71 891 ± 303 3 121 ± 31 521 ± 174 9490 ± 1896 1537 ± 735 1014 ± 216 29 ± 16 3 93 ± 41 405 ± 220 225 ± 82 269 ± 109
13 7 320 ± 83 1133 ± 338 4 193 ± 49 622 ± 159 13664 ± 2948 1942 ± 654 1410 ± 329 39 ± 20 3 156 ± 27 610 ± 113 175 ± 0 411 ± 72
Mean ± SD 7 ± 2 324 ± 137 1562 ± 679 3 ± 1 170 ± 87 857 ± 426 12601 ± 4890 1550 ± 888 1287 ± 516 31 ± 23 3 ± 1 159 ± 53 722 ± 287 485 ± 265 383 ± 137

*Frequency (n), Duration (minutes), RPE (AU), sRPE (AU), Player Load (AU), Tackles (n), Lower Body (LB) Repetitions (reps), Upper Body (UB) Repetitions (reps)

Table 2. Mean (Mean ± SD) sessional training load during an academy rugby league pre-season.

Week Total Field Gym
Duration (mins) sRPE (AU) Duration (mins) RPE (AU) sRPE (AU) TD (m) HSD (m) Avg.Speed (m·min-1) Accel Density (m·s) Player Load (AU) Tackles (n) Duration (mins) RPE (AU) sRPE (AU) LB (reps) UB (reps)
1 127 ± 25 634 ± 173 79 ± 13 5 ± 1 390 ± 110 4316 ± 1068 443 ± 178 56 ± 9 0.412 ± 0.15 446 ± 104 12 ± 8 54 ± 5 5 ± 1 275 ± 54 382 ± 26 264 ± 0
2 102 ± 41 479 ± 244 65 ± 19 4 ± 2 294 ± 169 3660 ± 970 231 ± 151 60.4 ± 13 0.689 ± 0.63 362 ± 118 9 ± 10 60 ± 1 5 ± 1 296 ± 62 390 ± 25 264 ± 0
3 92 ± 44 504 ± 269 62 ± 13 7 ± 3 404 ± 101 5596 ± 395 526 ± 311 94.4 ± 9 1.59 ± 0.53 483 ± 125 5 ± 7 51 ± 14 4 ± 1 231 ± 82 245 ± 1 280 ± 0
4 115 ± 20 588 ± 173 61 ± 13 5 ± 2 318 ± 112 4700 ± 1051 800 ± 501 81.7 ± 17 1.97 ± 1.35 479 ± 113 9 ± 6 58 ± 2 5 ± 1 300 ± 67 297 ± 1 328 ± 0
5 101 ± 20 521 ± 125 52 ± 14 5 ± 1 279 ± 88 4519 ± 1441 643 ± 530 82.2 ± 26 2.71 ± 1.97 381 ± 172 8 ± 6 51 ± 4 5 ± 1 255 ± 41 345 ± 1 344 ± 16
6 113 ± 30 547 ± 204 70 ± 12 6 ± 1 402 ± 113 5398 ± 821 919 ± 558 78.0 ± 9 0.398 ± 0.05 522 ± 99 12 ± 7 55 ± 4 4 ± 1 227 ± 44 313 ± 18 292 ± 12
7 54 ± 0 - 54 ± 0 - - 4440 ± 309 177 ± 87 82.1 ± 5 0.452 ± 0.10 439 ± 61 10 ± 8 - - - - -
8 95 ± 8 313 ± 61 36 ± 0 4 ± 1 135 ± 23 3737 ± 148 381 ± 96 102 ± 4 3.59 ± 0.15 373 ± 49 9 ± 5 60 ± 0 3 ± 1 196 ± 37 341 ± 0 -
9 81 ± 28 398 ± 127 45 ± 9 4 ± 1 201 ± 60 3471 ± 965 456 ± 394 89.6 ± 25 2.37 ± 1.49 350 ± 94 9 ± 8 52 ± 5 4 ± 1 226 ± 66 162 ± 1 220 ± 0
10 104 ± 26 463 ± 191 61 ± 10 4 ± 2 264 ± 118 3994 ± 1450 400 ± 386 70.3 ± 23 1.60 ± 1.25 426 ± 117 10 ± 8 54 ± 2 5 ± 1 246 ± 72 165 ± 1 216 ± 4
11 85 ± 37 377 ± 187 58 ± 19 4 ± 2 260 ± 145 4427 ± 1623 513 ± 447 78.8 ± 17 1.46 ± 1.01 438 ± 174 14 ± 16 48 ± 14 4 ± 1 196 ± 79 167 ± 0 229 ± 8
12 69 ± 24 321 ± 153 41 ± 16 4 ± 2 188 ± 148 3244 ± 1467 525 ± 472 84.5 ± 16 1.44 ± 0.97 347 ± 169 10 ± 12 46 ± 10 4 ± 1 203 ± 78 171 ± 2 210 ± 14
13 85 ± 34 393 ± 141 53 ± 14 4 ± 1 224 ± 80 3765 ± 1055 535 ± 502 79.6 ± 20 2.71 ± 1.83 388 ± 110 11 ± 10 55 ± 0 4 ± 1 215 ± 44 175 ± 0 219 ± 17
Mean ± SD 97 ± 35 475 ± 207 58 ± 17 5 ± 2 290 ± 140 4180 ± 1337 516 ± 449 77.3 ± 21 1.59 ± 1.44 414 ± 139 10 ± 10 54 ± 8 4 ± 1 244 ± 70 279 ± 90 263 ± 48

*Frequency (n), Duration (minutes), RPE (AU), sRPE (AU), Player Load (AU), Tackles (n), Lower Body (LB) Repetitions (reps), Upper Body (UB) Repetitions (reps)

Fig 1. Total weekly field-based external load, between positional groups, across weeks.

Fig 1

(A) Total distance, (B) High-speed running, (C) PlayerLoad, (D) Tackles. * Difference between forward and back playing positions (p < 0.05).

Fig 4. Mean sessional gym-based training load, between positional groups, across weeks.

Fig 4

(A) Lower body repetition volume, (B) Upper body repetition volume, (C) Session rating of percieved exertion.

Changes in training load over preseason

Between-week comparisons

Week-to-week changes along with the between positional group variations between weeks are presented in Figs 14 for total distance (Fig 1A total weekly, Fig 2A mean sessional), high-speed meters (Fig 1B total weekly, Fig 2B mean sessional), average speed (Fig 2C), acceleration density (Fig 2D), player load (Fig 1C total weekly, Fig 2E mean sessional), tackles (Fig 1D total weekly, Fig 2F mean sessional), lower (Fig 3A total weekly, Fig 4A mean sessional) and upper body (Fig 3B total weekly, Fig 4B mean sessional) gym volume. Preseason block one (weeks 1–2) consisted of 16 sessions (9 field and 8 gym), block two (weeks 3–6) consisted of 29 sessions (14 field and 15 gym), block three (weeks 7–9) consisted of 10 sessions (6 field and 4 gym), and block 4 (weeks 10–13) consisted of 29 sessions (16 field and 13 gym). Field session intensity (i.e., acceleration density and average speed) increased over the 13 weeks. Upper body volume increased (Wk1. to Wk.13 diff. 150 repetitions, ES = 2.24 (1.69–2.79), very large, p < 0.001), while lower body volume (Wk.1 to Wk.13 diff. 762 repetitions, ES = 8.60 (8.06–9.15), very large, p < 0.001) and sRPE (Wk.1 to Wk.13 diff. 327.9 arbitrary units, ES = 2.04 (1.51–2.57), very large, p < 0.001) decreased across the pre-season.

Fig 2. Mean sessional field-based external load, between positional groups, across weeks.

Fig 2

(A) Total distance, (B) High-speed running, (C) Meters per minute average, (D) Acceleration density, (E) PlayerLoad, (F) Tackles.

Fig 3. Total weekly gym-based training load, between positional groups, across weeks.

Fig 3

(A) Lower body repetition volume, (B) Upper body repetition volume, (C) Session rating of percieved exertion. * Difference between forward and back playing positions (p < 0.05).

Within-week positional comparisons

Field-based training load. In comparison to the forward playing group, backs covered significantly more high-speed meters in week two (503 m, ES = 0.89 (0.12–1.69), moderate, p = 0.024), and week 11 (479 m, ES = 0.84 (0.10–1.59), moderate, p = 0.028) (Fig 1B). There were no significant differences between positional groups for the mean sessions.

Gym-based training load. When compared to the forward playing group, backs completed more total upper body volume (backs: 391 ± 6 repetitions, forwards 369 ± 7 repetitions, ES = 0.33 (0.06–0.60), small, p = 0.025). Total weekly upper body volume was significantly different between playing positions in week three and week 12 (diff. 153 repetitions, ES = 2.28 (1.52–3.06), very large, p < 0.001; diff. 83 repetitions, ES = 1.24 (0.39–2.10), large, p < 0.005) (Fig 3B). Backs completed more lower body volume than forwards did in week one (diff. 82 repetitions, ES = 0.92 (0.15–17), moderate, p = 0.020) (Fig 3A).

Discussion

The purpose of this study was to quantify the field and resistance training load of academy rugby league during a pre-season period and compare training loads between forwards and backs. Findings revealed the average academy pre-season training session involved one hour of both gym and field training, with an associated sRPE of 244 ± 70 and 290 ± 140 AU, respectively. Within each of the gym sessions, players completed on average an estimated volume of 279 ± 90 repetitions of upper body and 263 ± 48 repetitions of lower body exercises. On field, players averaged 4180 ± 1337 m of total distance, 516 ± 449 m of high-speed running, at a rate of 77.3 ± 21 m·min-1, while accumulating an acceleration density of 1.59 ± 1.44 m·s-1, a PlayerLoad of 414 ± 139 AU, and 10 ± 10 tackles per session. This study is the first to report external and internal training load of both field and gym sessions in an academy rugby league pre-season period, comparing between positions.

Within a typical week during an academy rugby league pre-season period, players completed 6–9 training sessions with an equal frequency distribution between gym and field. Weekly training time comprised of 324 ± 137 minutes (3–8 hours) of training per week, which is lower than the previously reported 809 ± 224 minutes (10–17 hours) [26]. However, the values reported by McCormack et al. [26] should be interpreted with caution, as practitioners were asked to report an estimate of the frequency and duration of training. Whereas in the current study the frequency and duration reported can be interpreted confidently, as the reports were precisely captured via microtechnology units. The lower training volume compared to those reported by McCormack et al [26] may not come as a surprise, as U19 players are employed as professional athletes, but are part-time, often training while studying or working [23, 26, 27]. Yet they are still expected to follow high frequency training programmes ensuring they are adequately prepared for senior professional rugby league [36].

Rating of perceived exertion is one of the more commonly reported measure of internal training load. In the current study, RPE across the pre-season period was similar between field and gym sessions with a typical 4–5 AU rating, but still lower than values reported in senior professionals [10, 11]. The accumulated sRPE-TL reported for the current 13 week pre-season observation period (18,979 AU) is less than that previously reported in an academy RL preseason (22,670 AU) [25]. However, the sRPE-TL in the Dobbin (2018) study was accrued over the course of a 14-week period and a separate rating was given for conditioning which may explain the differences between studies. In the current study, overall training load decreased throughout the 13-weeks, this could have been a typical periodisation or match preparation strategy. Typically as the in-season approaches a decrease in volume and increase in intensity is expected [37], however this may contradict stage-appropriate training, where the emphasis should remain on enhancing physical qualities of academy athletes [23, 38, 39]. However, sRPE continues to be a valuable global measure of training load that has been validated in rugby league to help guide this process [10].

Improved precision of GPS and accelerometer technology has enabled the ability to capture detailed information on external training load [30] facilitating the development of specific training to prepare players for the rigours of competition. Total distance covered has been the most commonly reported locomotive variable, with players covering between 4–8 km during match play [20, 40]. In the current study, the academy players achieved these distances regularly throughout the preseason (average session distance 4180 ± 1337 m), however, the usefulness of total distance alone may be limited given the numerous ways (e.g., walking, jogging, sprinting) in which it can be accumulated [34]. Average speed (e.g., intensity of session) was higher per session in comparison to those reported in senior players (77.3 ± 21 vs. 72.6 ± 2.8 m·min-1) [18, 29]. While the mean session duration (58 ± 17 min) and high-speed distance (516 ± 449 m) matched those reported by Black et al. [18], (51.9 ± 5 min and 496 ± 135 m, respectively). This is unsurprising as it has been previously reported that academy players are exposed to similar peak average running speeds to senior professionals, demonstrating the training stimulus at academy level is preparing athletes to progress to senior grade [41].

The participants in the current study averaged 10 ± 10 tackles per session, accumulating 30 ± 19 tackles per week. Tackling is a key contact event in RL, it has been recommended to quantify and monitor these events in training [42]. Hulin et al. [42] validated the ability of microtechnology devices to accurately count the frequency of tackles during RL matches, providing practitioners with a measure of contact load. In a meta-analysis characterizing the physical demands of RL match-play, Glassbrook et al. [20] suggested that players typically experience 25.6 ± 4.3 collisions per game. Despite potential advantages of match-specific training, it may be unrealistic and undesirable for training to consistently replicate match demands. Therefore, the distribution of tackle exposures throughout the week, as was observed in the current study, serves as a viable strategy to prepare for competition. Training should function within an acceptable framework for athlete development, which considers volume, intensity, duration and frequency of training according to periodised plans and athlete needs [39, 43]. With a measure of tackle frequency readily available, this enables the practitioner to reflect on whether or not athletes are getting the necessary exposure at academy level in preparation for professional ranks. However, in the current study similar to field loads, there appeared to be a lack of periodisation to contact exposures over the duration of the pre-season (e.g., week 2 = 36 ± 23, week 3 = 12 ± 13). Improving our understanding of these events may improve training prescription [20].

Resistance training forms an important aspect of adolescent rugby player development, yet limited evidence exists exploring resistance training loads alongside field training [43, 44]. This study quantified gym-based training loads by providing details on volume (frequency, duration, repetitions), and subsequent internal load. The resistance training volume (3–4 sessions, averaging 54 ± 8 minutes) achieved in the current study is similar to the suggested 2–3 sessions per week that are deemed sufficient for the development of strength in adolescents [45]. An upper and lower-body split program was implemented and while upper body weekly loads remained constant throughout the 13-week pre-season period (383 ± 137 reps), lower body volume decreased. This could have been an attempt by practitioners to minimise fatigue as match preparation becomes a priority, and may not be the best strategy in the context of a long-term athlete development model. Resistance exercise however, is difficult to precisely quantify owing to its inherent complexity with numerous modifiable training variables contributing to the training dose [35]. Redman et al. [46] recently proposed monitoring both prescribed and actual resistance load of key exercises, providing a quantification of volume load (sets x reps x load) and training intensity (volume load/total reps). This is especially pertinent given reports from Weakley et al. [44] on the possible variation of adherence to prescribed practices in adolescent athletes. In summary, while providing an important starting point for the study of resistance training practices in academy rugby league, reports based on repetition volume leave out relevant details (i.e., load, tempo, intensity) that dictate the adaptive response.

The current findings showed limited positional differences for locomotor, tackle, and gym training loads, suggesting that training in academy rugby league may be homogenous between playing positions. In accordance with traditional periodisation models, training load must be varied to elicit optimal physiological adaptations [32]. Clear positional differences throughout match-play (e.g., backs engage in more high-speed sprinting, while forwards are involved in more collisions) [20, 24, 41] support the notion of position specific training approaches at the adolescent level, particularly because these positional differences become evident at older levels of competition [47]. Overall, training loads remained similar across all variables with the exception of HSR, whereby backs covered significantly more HSR distance in week two, four and eleven. Typically, the preseason period has an emphasis on general preparation, which may explain the uniformity in training loads between forwards and backs, where individual and specific preparation is further emphasised during the in-season. However reports from Thornton et al. [38] suggest positional-specific prescription may not be necessary within elite youth RL athletes purely from a physical perspective (i.e. running intensity and/or speed). Practitioners may therefore wish to manipulate drills between age and positional groups to appropriately reflect technical and tactical abilities [38]. Improving our understanding of the demands of rugby league (training and match-play) and of how the demands may differ across playing positions should further improve training design [20]. More research is required to determine positional demands and appropriate training approaches at the adolescent level [47].

Limitations

While this study provides useful and practical data, it is important to consider these are the training loads of academy athletes belonging to one professional academy and may not be representative of all other rugby league academy training. Secondly, while the current study has attempted to improve upon the accuracy of reporting, training volume comparisons should be interpreted with caution because of methodological differences in volume calculations. While the current study aimed to consider the multi-modal (field and gym) aspects of training, detailing training volumes by physical (i.e., resistance training, conditioning, speed) and rugby content (i.e., skills, tactics, combat) would capture a more representative sample of the concurrent training practices within academy rugby league. Additionally, quantifying resistance exercise remains a challenge, numerous independent variables that elicit adaptation were unable to be captured (e.g. type of exercise, relative load lifted, inter-set rest periods, and repetition velocity) [35]. While the current study reported on repetition volume, the addition of sRPE attempts to capture the “load” associated with gym related content. Advancements in technology and data management enable the ability to capture the different constructs that influence performance outcomes which future studies may wish to explore [48, 49]. Currently, the available training data for rugby league coaches at any level remains limited, therefore match-play data is often used as the reference for what may be deemed appropriate [18, 43].

Practical applications

While coaches may use established match-play demands as a benchmark to facilitate the development of future training programmes, this study highlights the usefulness in paying particular attention to training data. Training should function within an acceptable framework for athlete development, which considers volume, intensity, duration, and frequency of training according to periodised phases and athlete needs [43]. This study provides an example of an evaluation of a pre-season training loads that could be replicated by practitioners in evaluating training. In order to maximise physiological changes during a preseason, it is vital to understand the day-to-day training of players [50]. Quantifying the training loads of academy rugby league serves as a critical first step to maximising their athletic preparation. By quantifying the demands of training there is scope to develop specific training drills to more appropriately prepare players for the rigours of competition [17]. This study reinforces that coaches and sport scientists should work closely to use the available external load data (GPS) alongside measures of internal load (sRPE) to adopt a more scientific approach to training prescription (e.g., load management, periodisation) [5]. Having these data readily available enables the practitioner to plan, deliver, and evaluate whether or not they are achieving desired targets, while gaining an understanding of the dose-response relationship [48, 51, 52]. Furthermore, translating training load data into meaningful information can facilitate performance discussions accounting for the data while not solely relying on opinion [53].

Conclusion

In conclusion, this study has quantified the field- and resistance-based training loads of an academy rugby league preseason, with consideration to playing position and the tackle. Findings showed that training load is distributed throughout the training week as it is unfeasible for training to reflect the demands of match-play during each and every session, particularly in contact sports such as rugby league [54]. However, the results highlight uniformity of training loads across playing positions, and unclear progressions of load throughout the preseason period. It is unlikely that a one-size-fits all approach to training adequately prepares players across a range of playing positions for the specific contact demands and movement patterns experienced in match-play [55]. Therefore, practitioners and researchers alike are encouraged to continue quantifying training load to inform future planning, delivery, and evaluation. Future research considering training characteristics of rugby league should explore how to maximise the multi-modal training practices adopted in these settings and whether or not specific playing position match-demands are tailored for.

Acknowledgments

This research was supported by the Leeds Rhinos, we would like to thank them for their support in providing participant data. We would also like to acknowledge the practitioners who took their time to deliver the training and facilitate the data collection.

Data Availability

Dataset is available from the Leeds Beckett Repository https://doi.org/10.25448/lbu.20075939.v1.

Funding Statement

The author(s) received no specific funding for this work.

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Decision Letter 0

Emiliano Cè

10 May 2022

PONE-D-22-08332The Field and Resistance Training Loads of Academy Rugby League Players during a Pre-Season: Comparisons Across Playing PositionsPLOS ONE

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Reviewer #1: Dear Authors,

I appreciate the opportunity to comment to the authors on their manuscript titled "The Field and Resistance Training Loads of Academy Rugby League Players during a Pre-Season: Comparisons Across Playing Positions". The manuscript's issue is interesting and relevant in the current context of knowledge at the level of youth training in Rugby. I consider that the relevance of the study lies in the limited research available that explores the training load of academy rugby league players.

The purpose of the study was to quantify the field and resistance training loads of academy rugby league players during a pre-season period and compare training loads between playing positions (i.e., forwards vs. backs).

The study is well structured, with the results adequately discussed.

I do however have some concerns that I point out to below:

Procedures section,

# Please indicate the power sample calculation. Power calculations allow the reader to know how many subjects are required in order to avoid a type I or a type II error.

# line 137-138 - I am of the opinion that it is more appropriate to cite for the determination of the s-RPE the reference of :

Foster, C, Florhaugh, JA, Franklin, J, Gottschall, L, Hrovatin, LA, Parker, S, Doleshai, P, Dodge, C. A new approach to monitoring exercise training. J Strength Cond Res 15: 109-115, 20 2001.

# line 157 and remaining text - please correct the units of the speed threshold (m/s) and also the average speed (m/min)

# A comment for future studies - the repetition method is a very simple method for estimating training volume but it offers a poor estimate of the amount of work or volume of training completed in a resistance training bout or training programme. A more accurate approach would be to either directly quantify work accomplished, or use estimates which account for the actual weight lifted by the athlete when attempting to either quantify or equate training loads when comparing various training interventions.

# Please clarify why the authors did not use the acceleration density index metric that allows quantifying the intensity of speed change activity exclusively during locomotive work, rather than the whole time period. In my opinion this might be preferred to acceleration density as a way to analyze speed change demands excluding rest periods.

#line 163, 332 and 357- for confirming whether it is actually the reference [31]Varley et al (2012) that the authors intend to cite, since it does not address the repetition method.

#please standardize throughout the text the way in which the p-value is expressed, e.g., 0.00 or .00

# In the results section, I suggest indicating the size effects of the comparisons made and with statistically significant differences.

# I suggest that the figures could be improved in terms of their sharpness.

# In figure 4 (A) Lower Body Repetitions volume, are the data from the two positional groups presented?

References

# Reference [55] is not cited in the text:

Tee JC, Lambert MI, Coopoo Y. GPS comparison of training activities and game demands of professional rugby union. Int J Sport Sci Coach. 2016;11(2):200–11

BW

João Paulo Brito

Reviewer #2: The paper is well written and provides a clear and accurate representation of the training demands of adolescent rugby players. I recommend this paper for publication.

Prior to publication, the authors should provide the specific URL details where the data set can be accessed.

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Reviewer #1: Yes: João Paulo Brito

Reviewer #2: No

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PLoS One. 2022 Aug 9;17(8):e0272817. doi: 10.1371/journal.pone.0272817.r002

Author response to Decision Letter 0


28 Jun 2022

Thank you for your recent review of the submitted article 'The field and resistance training loads of academy rugby league players during a preseason: Comparisons across playing positions'. We have addressed the comments and provided details in the cover letter. We believe the comments were fair, helpful and allowed us to improve a number of areas in the paper. We have also addressed the editing requirements of the journal and provided repository information.

Attachment

Submitted filename: Response To Reviewers.docx

Decision Letter 1

Emiliano Cè

27 Jul 2022

The field and resistance training loads of academy rugby league players during a pre-season: Comparisons across playing positions

PONE-D-22-08332R1

Dear Dr. Moore,

We’re pleased to inform you that your manuscript has been judged scientifically suitable for publication and will be formally accepted for publication once it meets all outstanding technical requirements.

Within one week, you’ll receive an e-mail detailing the required amendments. When these have been addressed, you’ll receive a formal acceptance letter and your manuscript will be scheduled for publication.

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If your institution or institutions have a press office, please notify them about your upcoming paper to help maximize its impact. If they’ll be preparing press materials, please inform our press team as soon as possible -- no later than 48 hours after receiving the formal acceptance. Your manuscript will remain under strict press embargo until 2 pm Eastern Time on the date of publication. For more information, please contact onepress@plos.org.

Kind regards,

Emiliano Cè

Academic Editor

PLOS ONE

Additional Editor Comments (optional):

Reviewers' comments:

Reviewer's Responses to Questions

Comments to the Author

1. If the authors have adequately addressed your comments raised in a previous round of review and you feel that this manuscript is now acceptable for publication, you may indicate that here to bypass the “Comments to the Author” section, enter your conflict of interest statement in the “Confidential to Editor” section, and submit your "Accept" recommendation.

Reviewer #1: All comments have been addressed

Reviewer #2: All comments have been addressed

**********

2. Is the manuscript technically sound, and do the data support the conclusions?

The manuscript must describe a technically sound piece of scientific research with data that supports the conclusions. Experiments must have been conducted rigorously, with appropriate controls, replication, and sample sizes. The conclusions must be drawn appropriately based on the data presented.

Reviewer #1: Yes

Reviewer #2: Yes

**********

3. Has the statistical analysis been performed appropriately and rigorously?

Reviewer #1: Yes

Reviewer #2: Yes

**********

4. Have the authors made all data underlying the findings in their manuscript fully available?

The PLOS Data policy requires authors to make all data underlying the findings described in their manuscript fully available without restriction, with rare exception (please refer to the Data Availability Statement in the manuscript PDF file). The data should be provided as part of the manuscript or its supporting information, or deposited to a public repository. For example, in addition to summary statistics, the data points behind means, medians and variance measures should be available. If there are restrictions on publicly sharing data—e.g. participant privacy or use of data from a third party—those must be specified.

Reviewer #1: Yes

Reviewer #2: Yes

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5. Is the manuscript presented in an intelligible fashion and written in standard English?

PLOS ONE does not copyedit accepted manuscripts, so the language in submitted articles must be clear, correct, and unambiguous. Any typographical or grammatical errors should be corrected at revision, so please note any specific errors here.

Reviewer #1: Yes

Reviewer #2: Yes

**********

6. Review Comments to the Author

Please use the space provided to explain your answers to the questions above. You may also include additional comments for the author, including concerns about dual publication, research ethics, or publication ethics. (Please upload your review as an attachment if it exceeds 20,000 characters)

Reviewer #1: Dear Authors,

After reviewing the manuscript I found that the authors took into account all concerns addressed in the first review.

From the reported appreciation I am of the opinion that it is now suitable for publication.

Congratulations on the work done.

Reviewer #2: Congratulations! This is a useful contribution to the literature

**********

7. PLOS authors have the option to publish the peer review history of their article (what does this mean?). If published, this will include your full peer review and any attached files.

If you choose “no”, your identity will remain anonymous but your review may still be made public.

Do you want your identity to be public for this peer review? For information about this choice, including consent withdrawal, please see our Privacy Policy.

Reviewer #1: Yes: João Paulo Brito

Reviewer #2: No

**********

Acceptance letter

Emiliano Cè

1 Aug 2022

PONE-D-22-08332R1

The field and resistance training loads of academy rugby league players during a pre-season: Comparisons across playing positions

Dear Dr. Moore:

I'm pleased to inform you that your manuscript has been deemed suitable for publication in PLOS ONE. Congratulations! Your manuscript is now with our production department.

If your institution or institutions have a press office, please let them know about your upcoming paper now to help maximize its impact. If they'll be preparing press materials, please inform our press team within the next 48 hours. Your manuscript will remain under strict press embargo until 2 pm Eastern Time on the date of publication. For more information please contact onepress@plos.org.

If we can help with anything else, please email us at plosone@plos.org.

Thank you for submitting your work to PLOS ONE and supporting open access.

Kind regards,

PLOS ONE Editorial Office Staff

on behalf of

Professor Emiliano Cè

Academic Editor

PLOS ONE

Associated Data

    This section collects any data citations, data availability statements, or supplementary materials included in this article.

    Supplementary Materials

    Attachment

    Submitted filename: Response To Reviewers.docx

    Data Availability Statement

    Dataset is available from the Leeds Beckett Repository https://doi.org/10.25448/lbu.20075939.v1.


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