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- W2074108540 abstract "New technique is presented for modeling total cross-section of both pp and [Formula: see text] collisions from low to ultra high energy regions using an efficient artificial neural network (ANN). We have used the input (center-of-mass energy, [Formula: see text], and type of particle P) and output (total cross-section σ tot ) data to build a prediction model by ANN. The neural network has been trained to produce a function that studies the dependence of σ tot on [Formula: see text] and P. The trained ANN model shows a good performance in matching the trained distributions, predicts cross-sections that are not presented in the training set. The general trend of the predicted values shows a good agreement with the recent Large Hadron Collider (LHC) measurements, where the total cross-section at [Formula: see text] and 8 TeV are measured to be 98.6 mb and 101.7 mb, respectively. The predicted values of the total cross-section at [Formula: see text] and 14 TeV are found to be 105.8 mb and 111.7 mb, respectively. Those predictions are in good agreement with Block, Cudell and Nakamura." @default.
- W2074108540 created "2016-06-24" @default.
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- W2074108540 date "2014-03-14" @default.
- W2074108540 modified "2023-10-18" @default.
- W2074108540 title "Modeling $bar{p}p$ and recent LHC pp total cross-sections" @default.
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- W2074108540 doi "https://doi.org/10.1142/s0217732314500448" @default.
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