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Fishes Go MOO: Neural Network Data Prediction

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DataCite Commons2025-12-31 更新2026-02-09 收录
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https://figshare.com/articles/dataset/Fishes_Go_MOO_Neural_Network_Data_Prediction/30443114/1
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<br><b>Neural Network Prediction</b>:<br>NN scripts and data by N.A. Battista<br><br><b><i>Cite</i></b>: <br>N.A. Battista, Fishes Go MOO: Pareto analysis for speed and cost of transport across a<br>6-dimensional design space. ______ (2025)<br>DOI<br><br>-----------------------------------------------------------------------------------------<br><br><b>MATLAB SCRIPTS</b>:<br> |<br> |--&gt;<b><i> Prediction_LinePlots.m:</i></b><br> Uses the Neural Network to predict speeds across<br> the(f,Tamp)-subspace, ie, predicts speeds across<br> a 2-D slice out of the overall 6-D parameter space<br> |<br> |--&gt; Provides plots of the speeds across particular slices.<br> |--&gt; As frequency and tail beat amplitude vary, the other<br> 4 input parameters are held constant.<br><br> |<br> |--&gt; <b><i>Prediction_Errors_Speed.m</i></b> Calculates the relative errors btwn the simulated speed<br> values and those predicted via the Neural Network<br> across both the training and test datasets<br> |<br> |--&gt; Prints error statistics to the command window<br> |--&gt; Provides a qualitative comparison plot<br> |--&gt; Provides histograms of the PDF and CDF for the<br> relative errors<br> |<br> |--&gt; Each script is self-contained. That is they contain all the<br> necessary supporting functions in order to run, e.g.,<br> forward propagation, activation function, scaling functions, etc<br><br><br>-----------------------------------------------------------------------------------------<br><b>DATA PROVIDED</b><br> |<br> |--&gt; <b><i>Trained_Neural_Network.ma</i></b>t<br> |--&gt; Contains the trained weight matrices<br> and bias vectors for the NN<br> |<br> |--&gt; <b><i>TRAINING_and_TEST_data.mat</i></b><br> |--&gt; Contains the input parameters and speed<br> values for both the training and test<br> datasets<br> |--&gt; speed data is given in both the simulation<br> values as well as the transformed values<br> for the NN (ie, those after the Box-Cox<br> transforms and standardization)<br> |<br> |--&gt; <b><i>SCALING_INFO.mat</i></b><br> |--&gt; Provides the data transformation parameters<br> for transforming the data into and out of<br> the NN's worldview (ie, the Box-Cox<br> transform params, standardization params, etc)<br>
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2025-12-31
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