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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 ...
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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, ...