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Interestingly, at low temperature scope increased in cold acclimated and exercised rats but not in animals from other treatments (test temperature x exercise interaction: F1,21 = 4.99, p<0.05; Fig. 4d).
However, despite no apparent exercise effect, the person by exercise interaction accounted for approximately 28% of the total variance.
A 2-factor repeated-measures analysis of variance (ANOVA) tested the muscle by exercise interaction and the main effects for each phase separately.
A 2-factor, repeated-measures analysis of variance (ANOVA) tested the muscle by exercise interaction and the 2 main effects for each phase separately.
A two-way between groups ANOVA was used to evaluate diet and exercise interaction effects for dependent variables; a significant interaction was interpreted by a subsequent simple-effects analysis with Bonferroni correction.
The primary analysis also tested the diet by exercise interaction (at a 10% significance level).
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As a hypothesis-generating exercise, interactions of birth weight with the collected covariates were assessed.
Results: The ANOVA revealed a statistically significant muscle-by-exercise interaction (P<.05) for both phases, which showed that the 3 exercises; recruited the 5 muscle sites using different patterns of relative amplitudes.
The independent variables were time since ascertainment, exercise status, and a time-exercise interaction term.
Two-way repeated-measures ANOVA, including baseline values as covariate, showed a significant effect on liver fat content for diet (P = 0.006), with no effects for exercise training (P = 0.789) or diet-exercise interaction (P = 0.712).
Two-way repeated-measures ANOVA, including baseline values as covariate, showed a significant effect on liver fat content for diet (P = 0.006), with no effects for exercise training (P = 0.789) and diet-exercise interaction (P = 0.712) (Table 3).
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