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Stochastic Gompertzian Model For Breast Cancer Growth Process

机译:随机乳腺癌生长过程模型

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In this paper, a stochastic Gompertzian model is developed to describe the growth process of a breast cancer by incorporating the noisy behavior into a deterministic Gompertzian model. The prediction quality of the stochastic Gompertzian model is measured by comparing the simulated result with the clinical data of breast cancer growth. The kinetic parameters of the model are estimated via maximum likelihood procedure. 4-stage stochastic Runge-Kutta (SRK4) is used to simulate the sample path of the model. Low values of mean-square error (MSE) of stochastic model indicate good fits. It is shown that the stochastic Gompertzian model is adequate in explaining the breast cancer growth process compared to the deterministic model counterpart.
机译:本文通过将嘈杂的行为纳入确定性Gompertzian模型,开发了一种随机金刚盆地模型来描述乳腺癌的生长过程。通过将模拟结果与乳腺癌生长的临床数据进行比较来测量随机血培素模型的预测质量。通过最大似然程序估计模型的动力学参数。 4阶段随机跑步-Kutta(SRK4)用于模拟模型的样品路径。随机模型的平均误差(MSE)的低值表示良好的适合。结果表明,与确定性模型对应物相比,随机血培培模型可充分解释乳腺癌生长过程。

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