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March 24, 2026Brazilian Journal of Physics1 citationsOpen Access

Non-Gaussian Growth Dynamics of Stagonosporopsis cucurbitacearum: A Bayesian Analysis of Logistic Models

MLM. M. F. de LimaARA. Sánchez Palencia RamosLSL. L. Sales

Key Points

  • The research aims to analyze the growth dynamics of Stagonosporopsis cucurbitacearum using logistic models and Bayesian methods.
  • Conducted experiments with four treatments including a plant extract from melon.
  • Fitted growth curves using Verhulst, Gompertz, and new Tsallis-based models.
  • Applied Bayesian inference for model selection and evaluation.
  • The new q-Gompertz model shows better fit than traditional models.
  • The entropic index q indicates the fungus's adaptability to its environment.

Abstract

We report a study on the growth dynamics of the fungal species Stagonosporopsis cucurbitacearum. Our experimental assays consisted of four different treatments, including a novel plant extract derived from melon. These assays provide valuable information on the growth of this species in various culture media. We fitted the growth curves using two logistic models commonly used in the literature (Verhulst and Gompertz), as well as a new one based on the non-additive Tsallis statistics: the q- Gompertz model. We used Bayesian inference to evaluate the models’ fit to the observed data and select the best-fitting model. Our analysis suggests a potential advantage of the q- Gompertz model. The entropic index q is interpreted as a measure of the adaptation of the fungus to its environment.

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Cite This Study

Lima et al. (2026) studied this question.

synapsesocial.com/papers/69c2294caeb5a845df0d38a7https://doi.org/10.1007/s13538-026-02052-4
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