Questions tagged [r-mice]

Multiple imputation using Fully Conditional Specification (FCS) implemented by the MICE algorithm. Each variable has its own imputation model. Built-in imputation models are provided for continuous data (predictive mean matching, normal), binary data (logistic regression), unordered categorical data (polytomous logistic regression) and ordered categorical data (proportional odds).

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17 views

How to impute only one or some columns with mice R

I am experimenting with the mice package in R and am curious about how i can leave columns out of the imputation. If i want to run a mean imputation on just one column, the mice.impute.mean(y, ry, ...
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17 views

Deriving a variable and conducting regression post-imputation using MICE package

I am a relative beginner with R (my code is pretty clunky) and am currently using the MICE package to impute some data. I have read everything I can find on it and think I have figured most of it out ...
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19 views

“Error in z0 * u[index_clus, 1:NR, drop = FALSE] : non-conformable arrays” Error when running mice with 2l.pmm method

I am trying to perform multiple imputation on a dataset with cross-classified nesting (i.e., data are nested within two different grouping variables that are not nested within each other; group1 and ...
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22 views

Moving mids objects (mice) from one list to another

Let us assume we have a dataset as follows. library(data.table) library(mice) df <- fread( "A B C D E F iso year 0 A NA 1 NA NA NLD 2009 1 Y NA 2 ...
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1answer
30 views

How can I install and use (mice) function in R?

I want to use mice function to handle the missing data that I have in (data). I installed the package and I called the library. However, when I am trying to apply the function to my data it gives me ...
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16 views

What are the options to cross-validate imputed data generated with the MICE package? [migrated]

I am currently imputing missing values in a dataset with the help of the MICE package. The dataset contains different types of variables (binary , continous numerical and ordinal variables). The code ...
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20 views

MICE package r multiple relationships

I have about 96 continuous variables, and I want to use the MICE package in R to carry out the imputations. For example, consider variable c, its sum is defined by 6 different relationships: 1: x1 + ...
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1answer
58 views

Is there any way to use mice package and the gWQS package together?

I am trying to impute the missing values of C1-C3 variables of a large dataset using mice package. That has worked so far. The problem arises when I am trying to use the gWQS package to conduct ...
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41 views

Merging separately created imputed datasets (mice)

Because my computer barely handles the imputation process of a big dataset, I decided to separately create the imputations. An example looks as follows: df = data.table(A = c(1, 1, 2, 2), B = c(NA, 2,...
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Receiving error: “object 'mice.impute.ml.lmer' not found” when using parlmice with miceadds

Trying to perform a multiple imputation for a data set with a hierarchical structure (all data being used was collacted at the individual/Level1 level, none at Level2). Using 'mice' for R with '...
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9 views

Error with MICE package in R: Error in get(fn) : object 'mice.impute.pmm' not found

I'm getting a weird error with the MICE package that I haven't seen before, and I'm not missing that much data. My dataset is 12502 observations and 27 variables, all are integers/numbers. 14 ...
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17 views

Fine and Gray model after multiple imputation with mice() in R

I found the same question here!, but it is 1.5 years ago and i was wondering if a Fine and Gray model via crr() is already implemented in mice or in any other such package(in R). P.S. Unfortunately ...
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35 views

Can the output of the MICE pool() function by grouped using dplyr?

After the multiple imputation of some data set using the MICE package, I would like to calculate separate linear regression models for each of the two dependent variables (score_1, score_2). The ...
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1answer
26 views

Exporting multiple imputed objects with MICE

I am imputing my missing data using mice. The problem here is that it takes an hour or two to get the imputation done. So as it finishes imputing, I would like to export it for future use so that I ...
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1answer
40 views

Error of ' “MaxNWts” matched by multiple actual arguments'

I'm receiving a matched arguments error when attempting to run MICE. I've tried increasing the maxits and maxnwts, but I'm still getting errors. mice(df, m = 7, printFlag = FALSE, maxit = 350, seed =...
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36 views

How to fix the my mice code to run my data without having an error message?

I work with a dataset of 500 values and I have 10 different variables with 35% of them are randomly missing. For that, I decided to use mice to impute them. I used this code md.pattern(df) p <- md....
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29 views

Why does an error message ($ operator is invalid for atomic vectors) show when running R mice package with high missing value proportion?

My data set is a complete data with 14 categorical variables: > str(Comp.HD.discr) 'data.frame': 303 obs. of 14 variables: $ age : Factor w/ 2 levels "0","1": 2 2 2 1 1 2 1 1 1 1 ... $ ...
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2answers
47 views

R mice function does not apply customized predictor matrix

I want to impute a part of my data set with mice. My data set has very many variables, which is why I don't want to impute all the variables but only those which I will use in my model. (I know that ...
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18 views

How to get the baseline hazard estimation from Cox model with impute data?

I am doing a Cox model. The data contains missing values so I used mice to impute the missing ones. First, I did the imputation: df <- read.table("File.txt") p <- quickpred(df, minup = 0.5) ...
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37 views

Unable to install MICE (package 'mice' is not available (for R version 3.5.1))

I have used the R package mice until 20 days ago. Today, I tried to load the library(mice) and it seems that I don't have it installed anymore. So, I just run install.packages('mice')and I get the ...
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2answers
35 views

Descriptive data with mice/miceadds

I have used mice/miceadds to carry out multiple imputation. I am interested in getting a number of descriptive stats on a "pooled dataset" Question: 1) I want to know the % of values that are above a ...
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20 views

Restarting R After Imputation

I am using the MICE package to do a multiple imputation on my data. I have 7 variables so the imputation took about 5 hours on my little laptop. This morning, I went back to work but needed to restart ...
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1answer
66 views

Impute different types of variables with MICE

I am trying to perform imputation on a dataset which has 69 columns and over 50000 rows. My dataset has different types of variables: columns that only present binary variables (0,1) categorical ...
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1answer
57 views

How to impute data with exclusive binary variables in R?

I have a dataset with 69 columns and over 50000 rows which is structured like this: Some of the columns can only take 0 or 1 values (binary), for example:'isFemale', 'isChild', etc. Some other ...
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51 views

MICE in R isn't working “nothing left to impute”

i use the the following function: imputed_Data <- mice(Data.mis1, m=1, maxit = maxiteration, method = 'pmm') which is working well with the first set: Data.mis http://i66.tinypic.com/nx4h.png ...
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1answer
36 views

mice package error: cor(xobs[, keep, drop = FALSE], use = “all.obs”) : 'x' is empty

I am doing a simulation study and one of the datasets I am imputing is very small (n=10). When using MICE, my dataset and code are as follows > dat y X1 X2 11 -155.04185 ...
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1answer
107 views

Creating new variables after imputation with the MICE package

I have longitudinal panel data of 1000 individuals measured at two time points. Using the MICE package I have imputed values for those variables with missing data. The imputation itself works fine, ...
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1answer
27 views

where is the factor(age)20-39 in a data(nhanes2)? [duplicate]

I did imputation using mice from the mice package. Then I used the function 'summary' to see the result of linear regression. I can see the factor(age)40-59 and factor(age)60-99. But I can't find ...
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1answer
119 views

Multiple imputation in R (mice) - How do I test imputation runs?

I work with a data set of 171 observations of 55 variables with 35 variables having NA's that I want to impute with the mice function: imp_Data <- mice(Data,m=5,maxit=50,meth='pmm',seed=500) ...
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39 views

Import Imputed Data from SAS to R

I am working on a project where I get the imputed data from a colleague who uses SAS and I want to analyze it in R. The problem is that I import it into R as a dataframe using: final<-read....
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43 views

Appropriate way to deal with missing value in both training and test data

In the medical data, it's normal that there are lots of missing value. Now I am dealing with the data with tens of numerical features and many of them have lots of missing value for sure. The ...
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194 views

imputation using mice is showing error in parse

This is the head of my dataset: head(new.data) # A tibble: 6 x 9 EIN `Number of Login~ `Last Login to the We~ Active_Particip~ Job_Position Tenure logTotalGamifica~ logPerformance <dbl&...
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59 views

Test set imputation based on the training set

Sample Data #creates a data frame with two features and 100 observations train = data.frame(salary = sample(2000:3000, 100, replace = TRUE), revenue = sample(c("A", "B"), 100, ...
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28 views

MICE Function Missing Dates

I am working with a price file that has a number of missing weekend values. I am using the MICE function to impute weekend prices. The mice function doesn't allow non-numeric values and errors out if ...
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1answer
63 views

Using imputation models created from amelia or mice in R for new data

Suppose I run one of the missing variable imputation R packages, amelia or mice (or similar), on a large data frame -- let's say 100000 rows and 50 columns -- to get imputations for one particular ...
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47 views

Partial correlation for imputed data using miceadds

How can I calculate partial correlation for imputed dataset using miceadds? I've been trying to calculate partial correlation for imputed dataset using miceadds. However when I compare p-values for ...
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1answer
94 views

Multiple Imputed datasets - pooling results

I have a dataset containing missing values. I have imputed this dataset, as follows: library(mice) id <- c(1,2,3,4,5,6,7,8,9,10) group <- c(0,1,1,0,1,1,0,1,0,1) measure_1 <- c(60,80,90,54,...
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19 views

Is there an implementation of imputation for right censored survival data in mice?

library(mice) is used in R for multiple imputation and comes with pre-defined imputation functions. On his website and in his 2018 book (p. 95) the package creator (Stef van Buuren) describes an ...
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60 views

mice::pool function throws an occasional error in R when performing mfp analyses: “Duplicate row.names”

I have run a multiple imputation on a data set, then fitted some models using with(), and at last pooled the results. In some of these models, however, the pool function throws an error. imp <- ...
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39 views

How to convert multiple imputation data to mids in r?

I used another program to impute missings in my data .imp is coded as X_mult_ in csv file After converting X_mult_ column into .imp and making .id column, I tried as.mids() function but r says "...
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36 views

Reduced number of rows using MICE package for imputation

I have a multivariate time series. I'm using MICE package to fill NAs. This is resulting in reduced number of rows which I cant afford because it's time series data. Unfortunately, I'm unable to ...
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0answers
32 views

Operating on the lists in a list, storing the result in the global environment

I am using mice library(mice) to impute a large amount of databases. I have written a code which makes imputations for all dataframes in my global environment. The result of this exercise is a large ...
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1answer
45 views

Automatic subsetting of a dataframe on the basis of a prediction matrix

I have created a prediction matrix for large dataset as follows: library(mice) dfpredm <- quickpred(df, mincor=.3) A B C D E F G H I J A 0 1 1 1 0 1 0 1 1 ...
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40 views

Using a loop to impute dataframes with mice, using prediction matrices from a list

I have a global environment with many dataframes which should be imputed with mice library(mice). In order to first calculate the prediction matrices I did (with the help of some other people) the ...
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2answers
43 views

Applying an operation to every dataframe in the global environment

I would like to create a prediction matrix (using mice) for each dataframe in my workspace. I thought of doing the following: library(mice) PredMatr = list() try (for (i in 1:length(ls())) { ...
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52 views

Error Parsing Variable Names with MICE Package, Usual Fixes Not Working

I am trying to impute some missing data using the MICE package in R, and I have come across a strange problem. When I try to run the imputation function, I get this error: Error in parse(text = x, ...
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24 views

Is it possible to set up a minimum limit for imputed values in the mice function?

I am using the mice function to impute values for plant height, but I am getting negative values. Is it possible to set up a minimum (and maybe also a maximum) limit for values that are produced?
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1answer
125 views

Include ID variable in imputed data frame

I'm using library(mice) to impute missing data. I want a way to tell mice that the ID variables should be included on the imputed data set but not used for the imputations. For instance #making a ...
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3answers
258 views

function not found although package is loaded - R

I have been working with an imputed data set using the MICE package (versions 2.2-3.3) in R (versions 3.3-3.5). I am now trying to add some variables to the imputed data set, which historically have ...
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446 views

What does MICE LoggedEvents mean?

I am trying to run a multiple imputation using the mice function (from the package of the same name) in R. I get a Warning that events have been logged. Here is the output from mice(.)$loggedEvents ...