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R + tm: How do I de-duplicate items in a list, based on semantic similarity? v<-c("bank","banks","banking", "ford_suv',"toyota_suv","nissan_suv"). My expected solution would be c("bank", "ford_suv',"toyota_suv","nissan_suv"). That is, bank, banks and banking to be reduced to one term "bank." SnowBall::stemming is not an option because I have to retain the flavor of newspaper styles of various countries. Any help or direction will be useful.

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    If you don't despise for loops, maybe this can be helpful. – Abdou Aug 15 '16 at 15:16
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We could calculate the Levenshtein distance between words using adist and regroup them into clusters using hclust

d <- adist(v)
rownames(d) <- v

Which gives a matrix of distance between terms:

#              [,1] [,2] [,3] [,4] [,5] [,6] [,7] [,8] [,9] [,10] [,11] [,12]
#bank              0    1    3    8    9    8    2   13    6     5     3     4
#banks             1    0    3    7    9    7    2   13    6     6     2     5
#banking           3    3    0    8   10    8    3   13    7     6     3     7
#ford_suv          8    7    8    0    5    6    8   12    7     7     8     4
#toyota_suv        9    9   10    5    0    6    9    7    4     9     9     9
#nissan_suv        8    7    8    6    6    0    8   13   10     4     8    10
#banker            2    2    3    8    9    8    0   12    6     6     1     6
#toyota_corolla   13   13   13   12    7   13   12    0    8    13    12    12
#toyota            6    6    7    7    4   10    6    8    0     6     7     5
#nissan            5    6    6    7    9    4    6   13    6     0     7     6
#bankers           3    2    3    8    9    8    1   12    7     7     0     6
#ford              4    5    7    4    9   10    6   12    5     6     6     0

Then we can pass it to hclust using method = ward.D

cl <- hclust(as.dist(d), method  = "ward.D")
plot(cl)

Which gives:

enter image description here

We notice 4 distinct clusters (that we can illustrate using rect.hclust(cl, 4))

enter image description here

Now, we can turn this result into a data.frame and tag each cluster with it's shortest term:

library(dplyr)
data.frame(group = cutree(cl, 4)) %>%
  tibble::rownames_to_column("term") %>%
  group_by(group) %>%
  mutate(tag = term[nchar(term) == min(nchar(term))]) 

Which gives:

#Source: local data frame [12 x 3]
#Groups: group [4]
#
#             term group      tag
#            <chr> <int>    <chr>
#1            bank     1     bank
#2           banks     1     bank
#3         banking     1     bank
#4        ford_suv     2     ford
#5      toyota_suv     3   toyota
#6      nissan_suv     4   nissan
#7          banker     1     bank
#8  toyota_corolla     3   toyota
#9          toyota     3   toyota
#10         nissan     4   nissan
#11        bankers     1     bank
#12           ford     2     ford

Should we want to extract only the unique tag for each cluster, we could add ... %>% distinct(tag) %>% .$tag to the pipe which would give:

#[1] "bank"   "ford"   "toyota" "nissan"

Reference

?adist

The (generalized) Levenshtein (or edit) distance between two strings s and t is the minimal possibly weighted number of insertions, deletions and substitutions needed to transform s into t (so that the transformation exactly matches t).

?hclust

This function performs a hierarchical cluster analysis using a set of dissimilarities for the n objects being clustered. Initially, each object is assigned to its own cluster and then the algorithm proceeds iteratively, at each stage joining the two most similar clusters, continuing until there is just a single cluster.


Note: I used data provided by @Abdou in the comments as it represents a more complete use case

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    @Steven +100 internets to you. Fifty for a complete explanation of the underlying logic and 50 for the cross references. – Pradeep Aug 16 '16 at 5:36
  • @Steven: These are frequent terms from findFreqTerms(dtm[mycluster1[1],],20) where mycluster is groups <- hclust(dist(m),method="ward.D") mycluster<-rect.hclust(groups,10) #ten clusters, is there a way to pipe a hclust within the higher hclust? Don't want to open another question. Thanks. – Pradeep Aug 16 '16 at 5:42
  • @Pradeep I'd be happy to help but I'm not sure I follow. Perhaps you could open a new question with a minimal reproducible example ? – Steven Beaupré Aug 16 '16 at 9:22
  • @Steven: I am working on getting this MWE across to you. annonymization of data is a problem, though. – Pradeep Aug 25 '16 at 13:59

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