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Suppose I have the following lists, where "names" is a full list of names (say, in a class):

names<-as.matrix(c("Paul", "Tyler", "Roberta", "Greg", "Tiffany"))

Suppose I have a secondary list of names, this one only including "female" names:

female_names<-as.matrix(c("Roberta", "Tiffany", "Michelle", "Ashley"))

I am attempting to create another variable, "women", that takes the value 1 if the element in "names" matches one of the "female names" in the second list from above.

women<-as.matrix(rep(0, 5))

for(i in 1:nrow(names)){
  for(j in 1:nrow(female_names)){
    if(names[i,1]==female_names[j,1]){women[i]<-1}
  }
}

However, when I summarize the new variable women, all values are 0, which should not be the case.

summary(women)

However, my problem is that none of the female names are being identified correctly and receiving the corresponding value of 1 for the new women variable. How can I correctly execute this loop to match the names and populate my new variable accordingly?

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While I would recommend Ananda's answer, your logic actually works fine for me. I get a column matrix with 1s in the 3rd and 5th rows. What happens for you? –  BrodieG Feb 16 at 14:54
    
@BrodieG, reading the rest of the question, perhaps it is that they might be looking for table(women[, 1]) rather than summary... –  Ananda Mahto Feb 16 at 14:58
    
@BrodieG All I get in my results are 0's, which should not be the case IF my conditional statement in the loop is actually formulated correctly. It is odd that you got a proper result from the example code above because the loop works neither for the example above or my actual data either. I generally agree accepting Ananda's answer, but I am still sort of confused as to why the general approach above does not execute properly. –  DV Hughes Feb 16 at 15:05
    
@DVHughes, Your example code works for me too. –  Ananda Mahto Feb 16 at 15:09
1  
@DVHughes, why don't you try clearing your workspace (though this shouldn't really make a difference), and re-running your code as you have it in this question (just copy and paste from here). Then, just view the contents of women (don't use summary), and let us know if that still doesn't work. –  BrodieG Feb 16 at 15:23
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2 Answers

up vote 4 down vote accepted

You should just use %in%:

> names[, 1] %in% female_names[, 1]
[1] FALSE FALSE  TRUE FALSE  TRUE

You can wrap the whole thing in as.numeric if you prefer 1s and 0s instead of TRUE and FALSE:

> as.numeric(names[, 1] %in% female_names[, 1])
[1] 0 0 1 0 1
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Not exactly the answer to the question you asked but maybe this is a better answer.

The dev version of qdap has a names to sex function (name2sex) that may be of interest:

names<-c("Paul", "Tyler", "Roberta", "Greg", "Tiffany")
name2sex(names)

## > name2sex(names)
## [1] M M F M F

## OR....

name2sex(names, USE.NAMES=TRUE)

## > name2sex(names, USE.NAMES=TRUE)
##    Paul   Tyler Roberta    Greg Tiffany 
##       M       M       F       M       F 

And to get the numeric values:

## 2 - as.numeric(name2sex(names))

## > 2 -as.numeric(name2sex(names))
## [1] 0 0 1 0 1
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+1. I couldn't remember where I had seen that function. Must have been when I was looking through some of your code on Git Hub.... –  Ananda Mahto Feb 17 at 16:52
    
@Tyler Rinker does this function work with names in other languages? Special characters, etc.? –  DV Hughes Feb 17 at 20:52
    
If you use ?name2sex you'll see that the description says Predict gender from U.S. names (based on 1990 U.S. census data). –  Tyler Rinker Feb 17 at 21:06
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