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Comparing machine learning, deep learning, and reinforcement learning performance in Culex pipiens predictive

Wei Yin1, Sanad H Ragab2, Michael G Tyshenko3

  • 1School of Mathematical and Statistical Sciences, The University of Texas Rio Grande Valley, Edinburg, Texas, United States of America.

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Summary
This summary is machine-generated.

Reinforcement learning (RL) methods effectively predict the geographic distribution of the common house mosquito (Culex pipiens), even with limited data. Altitude and precipitation are key factors in predicting mosquito presence.

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Area of Science:

  • Ecology
  • Machine Learning
  • Epidemiology

Background:

  • Machine learning (ML) and deep learning (DL) are established for species presence prediction.
  • Reinforcement learning (RL) is novel for species distribution modeling.
  • Culex pipiens is a global vector for West Nile Virus (WNV).

Purpose of the Study:

  • Compare ML/DL classifiers with RL methods for predicting Culex pipiens distribution.
  • Evaluate the efficacy of different algorithms using historical presence data in the USA.

Main Methods:

  • Logistic regression
  • Random forest classifier
  • Deep neural networks
  • RL algorithms: Q-learning, Deep Q-Network (DQN), REINFORCE, Actor-Critic

Main Results:

  • All tested methods showed comparable performance in predicting species distribution.
  • RL methods (DQN, REINFORCE) were effective with fewer features.
  • Altitude and annual precipitation were the most significant bioclimatic predictors.

Conclusions:

  • RL methods offer a promising alternative for species distribution modeling, especially in data-limited or dynamic scenarios.
  • Bioclimatic variables like altitude and precipitation are crucial for understanding Culex pipiens distribution.