Tagged Questions

Software for feed-forward neural networks with a single hidden layer, and for multinomial log-linear models.

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-2
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1answer
27 views

How can I see the weights and bias of a nnet trained with caret?

I need the weights and bias values for each node of a regression neural network trained with nnet in caret. Is possible to export this values to a csv?
1
vote
1answer
22 views

How to get the number of observations included in a model created using the function multinom in R?

I am learning how to use and interpret the output from multinom() of the package nnetin R. The dataset I use for the exercise contains variables with some missing values. I believe that the ...
0
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0answers
47 views

Training nnet and avNNet models with caret when the output has negatives

My question is about the typical feed-forward single-hidden-layer backprop neural network, as implemented in package nnet, and trained with 'train()' in package caret. This is related to this question ...
0
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0answers
22 views

distributed softmax output layer in a neural network

I'm not quite sure if this kind of thing has been done before, and I wasn't able to find any info about it (if this question has been asked before, I apologize), so I thought I'd ask. Any links ...
0
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0answers
17 views

multinom() in nnet package returns fewer categories than submitted

I am using the multinom() function of the nnet package in R to fit a large multinomial model - the Number of categories is > 200 but the number of observations is also large (> 300,000). 1 metric and ...
0
votes
1answer
61 views

nnet in R, 'softmax = TRUE' requires at least two response categories

I am trying to use nnet in R, and encounter a problem for using softmax. I am trying to builda three layer network, with input layer have 25 neurons, hidden layer have 25 neurons, output layer only ...
0
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0answers
28 views

Neuronal Networks in R

I'm fairly new to ANNs and to R. I'm trying to set up an ANN for seasonal time series analysis. I tried the function nnetar{forecast} but I wasn’t really happy with the result. Mainly because there is ...
0
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0answers
14 views

positive output aand variables nnet-model r

Can anyone tell me how to constrain the output and selected variables of a neural network such that the influence of a charateristic is positive using the function nnet in R. I Have a database (real ...
2
votes
1answer
28 views

R — Editing the 'nnet' Package

I am trying to edit the R 'nnet' package. I have done some poking around, but am unfamiliar enough with R itself so as to not be able to make any headway. I have tried trace("nnet", edit=TRUE), as ...
2
votes
0answers
42 views

caret package is not using all the registered cores, using 'nnet' method for training

I am using the train() function of caret package with method='nnet', and I have registered 6 cores using doMC. But it uses only one core. This is my code: library(caret) library(foreach) ...
0
votes
0answers
55 views

Neural network prediction in R using target vector as outputs

I want to simulate a NN prediction using hyperbolic tangent function in which the target vector C is in the range -1 and +1 and the input have features V1 - v10. Is there any examples of this NN model ...
0
votes
1answer
54 views

Error when using varImp for nnet neural network

I need to use varImp function on neural network model created by nnet method via caret. The code: #Load Packages require(quantmod) require(nnet) require(caret) #Creating data T <- ...
0
votes
0answers
51 views

Method to calculate the error around multinomial predictions using R

First, sorry for reposting but I added an example code to explain my request. Hope this is clearer. After fitting a multinomial model to my data with the "multinom" function (package nnet), I want to ...
3
votes
1answer
274 views

Binary output Neural Network in Python Theano

As part of a personal project I'm trying to modify the example code given in Theano documentation (Multilayer Perceptron) with my own data. Till now I managed to bring my own (text) data in the ...
0
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0answers
70 views

Finding Neural Network ROC in R

I am trying to create an ROC plot for a neural net. I can't seem to get it to work. I get the error. I am using the packages nnet, and verification for the ROC curve. Error in text.default(DAT[id, ...
0
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0answers
22 views

neural networks in R, nnet works but errorest from ipred doesnt

I can run the following line in R just fine. X and Y are just some strings that I use to iterate over my variables of interest: neural <- nnet( get(paste(x,y,sep="")) ~ get(paste("l",i, ...
0
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0answers
59 views

Caret Package with “nnet” see weight of hidden layer

I spent a long time searhing an answer for my question but i didn't found anything. I'm using Caret Package to perform a model thrught the "nnet" method. It's working but i need to see weights used ...
1
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0answers
97 views

error when using of nnet

it is an old question about nnet. However, i did not see the answer to this problem. when we use nnet, sometimes, it will report error as the following: Error in y - tmp : non-numeric argument to ...
2
votes
1answer
176 views

Multinom with Matrix of Counts as Response

According to the help of multinom, package nnet, "The response should be a factor or a matrix with K columns, which will be interpreted as counts for each of K classes." I tried to use this function ...
0
votes
1answer
63 views

R, Multinomial Regression: How to Find Conditional Probabilities?

In R, given a multinomial linear logit regression, I would need to obtain the conditional probability given some values of the predictors. For example, using the function multinom from the package ...
0
votes
1answer
235 views

R - nnet with a simple example of 2 classes with 2 variables

I am using nnet for the first time, played with the basic examples found on the web, but cannot make out its output with a dummy toy data set. That a simple discrimination of two classes (signal and ...
1
vote
0answers
94 views

How to set specific contrasts in multinom() in nnet package?

I have a 3-class problem that needs classification. I want to use the multinomial logistic regression in nnet package. The Class outcome has 3 factors, P, Q, R. I want to treat Q as the base factor. ...
0
votes
1answer
272 views

stock price prediction by using nnet

stock<-structure(list(week = c(1L, 2L, 5L, 2L, 3L, 4L, 3L, 2L, 1L, 5L, 1L, 3L, 2L, 4L, 3L, 4L, 2L, 3L, 1L, 4L, 3L), close_price = c(774000L, 852000L, 906000L, 870000L, ...
2
votes
2answers
358 views

Multinomial classification using neuralnet package

This question ought to be real simple. But the documentation isn't helping. I am using R. I must use the neuralnet package for a multinomial classification problem. All examples are for binomial or ...
0
votes
0answers
102 views

Loading Matlab nnet object in Octave

I'm trying to implement a toolkit written for Matlab in Octave. I've mostly gotten it working, except for one part where it loads an artificial neural net created in Matlab (this one: ...
0
votes
0answers
72 views

improving nnet model with input weights

I'm working with nnet package in R. I'm using it for prediction (classification) purposes of 17 inputs and 1 output. Output is either 1,0 or 2. (Similar to iris data set classifciation example). I ...
1
vote
1answer
201 views

Cons of setting MaxNWts in R nnet to a very large number

I am using the nnet function package from the nnet package in R. I am trying to set the MaxNWts parameter and was wondering if there is any disadvantage to setting this number to a large value like ...
0
votes
0answers
151 views

R nnet object - which weights to use for Prediction?

After generating a neural network based on a given data set (the data set consists of two input variables and 1 output variable), I get the following output from calling the summary function on the ...
2
votes
1answer
403 views

Using NNET for classification

I am new to neural networks and I have a question about classification with the nnet package. I have data which is a mixture of numeric and categoric variables. I wanted to make a win lose prediction ...
1
vote
0answers
198 views

using softmax in nnet R for target column with more than 2 states

I am using the nnet package for classification of a target column with 3 states model <- nnet(targetcolumn ~ ., data=DATAFRAME) But I want it to use entropy instead of default softmax and when I ...
1
vote
1answer
143 views

Bad compatibility of MuMin with multinom (nnet) objects having 3 level response variables?

I face a problem when trying to use the function model.avg of the MuMin package on objects resulting from the function multinom (package nnet). Although the manual list as multinom compatible, the ...
2
votes
1answer
210 views

Sequential Neural Network

I am trying to construct a neural network as a generative model, to predict the next vector following a sequence of vectors (each vector is a distribution of real numbers of length n). My thought was ...
0
votes
0answers
2k views

Prediction by neural network in R (nnet package)

I can't get why the testing of dataset is not working in R neural networks (nnet package). I have two datasets with similar structures - for training (trainset, 17 cases) and prediction (testset, 9 ...
0
votes
1answer
329 views

How use Rminer and nnet

I'm new programmer in R and i'm writing my thesis for training a neural network. First i use rminer for datamining and after nnet for training. Now i don't know which function use for divide data-set ...
1
vote
2answers
1k views

I get error “Error in nnet.default(x, y, w, …) : too many (77031) weights” while training neural networks in R

I am trying to train neural networks in R using package nnet. Following is the information about my training data. str(traindata) 'data.frame': 10327 obs. of 196 variables: $ stars ...
0
votes
1answer
91 views

How to perform linear/logistic regression on predictions of different models (say randomforest, gbm, svm etc)?

Basically it is done to improve the predictions by creating an ensemble. But how do we do that. Could somebody please explain using a sample code in R? I am just a learner. Any help would greatly be ...
1
vote
1answer
208 views

How do I combine the results (predictions) if I have generated predictions from say, randomforest, gbm, svm, nnet to get more accurate predictions?

More specifically, how to improve my predictions by creating an ensemble? I mean I know that we perform regression on the results(predictions) one gets from different algorithms(random forest, nnet, ...
4
votes
2answers
131 views

Running a list of functions with different params with a single command

I am looking to test outcome of different regression/classification algorithms (i.e. svm, nnet, rpart, randomForest, naiveBayes, etc.) on the same data, to see which works better. But I need to have ...
0
votes
1answer
887 views

Predicting with a model created using multinom hangs and errors

I'm trying to use the nnet library to create a multinomial logistic regression model from my training data to see if I can use it to predict my test data. I set everything up in R using this script: ...