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How To Plot Transfer Functions In Matlab?

  How can I plot this state space like the graph I attached by using tf() and step() command? Thank you!   I2/E0=1/(s^3+s^2+3*s+1)         NOTE:- Matlabsolutions.com  provide latest  MatLab Homework Help, MatLab Assignment Help  ,  Finance Assignment Help  for students, engineers and researchers in Multiple Branches like ECE, EEE, CSE, Mechanical, Civil with 100% output.Matlab Code for B.E, B.Tech,M.E,M.Tech, Ph.D. Scholars with 100% privacy guaranteed. Get MATLAB projects with source code for your learning and research. Try these codes below please;   clc; clear; close all; numerator = 1; denominator = [1,1,3,1]; sys = tf(numerator,denominator); yyaxis left SEE COMPLETE ANSWER CLICK THE LINK https://www.matlabsolutions.com/resources/how-to-plot-transfer-functions-in-matlab-.php

How are the functions "train" and "trainNetwork" different underneath?

 How are the functions "train" and "trainNetwork" different underneath? When should I use "train" instead of "trainNetwork" or vice-versa?


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"train" and "trainNetwork" and their associated functions correspond to two totally independent universes of network learning. "train" and associated functions are used to create and train a "Shallow Neural Network" which is useful for function approximation and clustering. On the other hand, "trainNetwork" and its associated functions are used to create and train a "Deep Neural Network"* which *is predominantly used for image classification.
 
The functions “train” and “trainNetwork” sit on top of totally independent code bases. They are part of the same toolbox (Neural Networks Toolbox), but independent of each other.
 
While you can train deep network or shallow networks with both functions, there are a few reasons that make training deep networks with “trainNetworks” easier:
  • Deep network usually require a lot of training data, which usually don’t fit in RAM (or in the GPU if training on GPU). The function “trainNetwork” was designed with that into account using algorithms like stochastic gradient descend, and ADAM optimization algorithm, that work on mini-batches, while keeping the rest of the training data out of memory.

 

  • The function “trainNetwork” (and all the associated functions) is more tightly integrated with cuDNN (NVIDIA’s low-level library to do NN on their GPUs) (e.g., to support fast operations like convolutions).
  • The ecosystem around “trainNetwork” closely follows new trends in deep learning, while the one for “train” focuses on the classic algorithms used for training neural networks.

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Matlabsolutions provide latest  MatLab Homework Help, MatLab Assignment Help  for students, engineers and researchers in Multiple Branches like ECE, EEE, CSE, Mechanical, Civil with 100% output.Matlab Code for B.E, B.Tech,M.E,M.Tech, Ph.D. Scholars with 100% privacy guaranteed. Get MATLAB projects with source code for your learning and research. SIMULINK is a visual programing environment specially for time transient simulations and ordinary differential equations. Depending on what you need there are plenty of Free, Libre and Open Source Software (FLOSS) available: Modelica language is the most viable alternative and in my opinion it is also a superior option to MathWorks SIMULINK. There are open source implementations  OpenModelica  and  JModelica . One of the main advantages with Modelica that you can code a multidimensional ordinary differential equation with algebraic discrete non-causal equations. With OpenModelica you may create a non-causal model right in the GUI and with
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