Paper
18 March 2022 Research on fungi decomposition analysis based on big data analysis under computer
Shanshan Wang, Wenya Zhu, Yunlai Chen, Jianxiong Cao
Author Affiliations +
Proceedings Volume 12168, International Conference on Computer Graphics, Artificial Intelligence, and Data Processing (ICCAID 2021); 121682J (2022) https://doi.org/10.1117/12.2631302
Event: International Conference on Computer Graphics, Artificial Intelligence, and Data Processing (ICCAID 2021), 2021, Harbin, China
Abstract
Fungi are of great functional significance in terrestrial ecosystems as the main decomposers. To better understand their decomposing process and population coexistence, we first describe and quantify the decomposition rate, focusing on three traits of interest selected by machine learning algorithm: moisture tolerance, hyper extension rate, and hyphal density and obtain, and use a ternary linear regression decomposition model (TLRDM) to quantify the decomposition rate. Then, to incorporate the interactions, we build an interactive decomposition model (IDM) and creatively employ a three-player logistic-based competition population model (TPLCM). Based on logistic growth, we formulate a differential equation group, fit the curves of this unsolvable equation group to obtain a function of population density versus time and compare the decomposition rates of three populations under interactive and non-interactive conditions, followed by analyzing the impact of the communications on decomposing ability. We obtain the population combinations that can coexist in certain climates. Furthermore, we include environmental factors, conducting a sensitivity analysis to describe how short-term and long-term climate changes affect our models.
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Shanshan Wang, Wenya Zhu, Yunlai Chen, and Jianxiong Cao "Research on fungi decomposition analysis based on big data analysis under computer", Proc. SPIE 12168, International Conference on Computer Graphics, Artificial Intelligence, and Data Processing (ICCAID 2021), 121682J (18 March 2022); https://doi.org/10.1117/12.2631302
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KEYWORDS
Climatology

Fungi

Tolerancing

Analytical research

Climate change

Data analysis

Environmental sensing

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