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I am trying to write a shell program to determine the average word length in a file. I'm assuming I need to use wc and expr somehow. Guidance in the right direction would be great!

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2 Answers 2

up vote 3 down vote accepted

Assuming your file is ASCII and wc can indeed read it...

chars=$(cat inputfile | wc -c)
words=$(cat inputfile | wc -w)

Then a simple

avg_word_size=$(( ${chars} / ${words} ))

will calculate a (rounded) integer. But it will be "more wrong" than just the rounding error is: you'll have included all whitespace character in your avarage wordsize as well. And I assume you want to be more precise...

The following will give you some increased precision by calculating the rounded integer from a number that is multiplied by 100:

_100x_avg_word_size=$(( $((${chars} * 100)) / ${words} ))

Now we can use that for telling the world:

 echo "Avarage word size is: ${avg_word_size}.${_100x_avg_word_size: -2:2}"

To further refine, we could assume that only 1 whitespace character is separating words:

 chars=$(cat inputfile | wc -c)
 words=$(cat inputfile | wc -w)

 avg_word_size=$(( $(( ${chars} - $(( ${words} - 1 )) )) / ${words} ))
 _100x_avg_word_size=$(( $((${chars} * 100)) / ${words} ))

 echo "Avarage word size is: ${avg_word_size}.${_100x_avg_word_size: -2:2}"

Now it's your job to try and include the concept of 'lines' into your computations... :-)

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Small change above. I am writing a shell program. –  Jordan Jun 30 '12 at 20:34
    
All commands from my answer should work in the bash shell... –  Kurt Pfeifle Jun 30 '12 at 20:51
1  
use sed 's/\s//g' to take out whitespace on lines, then subtract wc -l` to account for newlines. I.e. l=$(wc -l file);w=$(wc -w file);allc=$(sed 's/\s//g' file | wc -c);c=$((allc-l));echo $c –  Kevin Jun 30 '12 at 21:02
    
@Kevin: l=$(wc -l file) will not work. Because the contents of l will not be a number, but a string containing a number and the filename and some whitespace.... –  Kurt Pfeifle Jun 30 '12 at 21:13
1  
Hmm, right. Just use cat like your others or awk then. –  Kevin Jun 30 '12 at 21:25

Update: to show clearly (hopefully) the differenct between wc and this method; and fixed a "too-many-newlines" bug; Also added finer control of apostrophes in word endings .

If your want to consider a word as being a bash word, then using wc alone is fine.
However if you want to consider a word as word in a spoken/written language, then you can't use wc for the word parsing.

Eg.. wc considers the following to contain 1 word (of size average = 112.00),
wheras the script belows shows it to contain 19 words (of size average = 4.58)

"/home/axiom/zap_notes/apps/eng-hin-devnag-itrans/Platt's_Urdu_and_classical_Hindi_to_English_-_preface5.doc't"    

Using Kurt's script, the following line is shown to contain 7 words (of size average = 8.14),
wheras the script presented below shows it to contain 7 words (of size average = 4.43) ...बे = 2 chars

"बे  = {Platts} ... —be-ḵẖẉabī, s.f. Sleeplessness:"

So, if wc is your flavour, good, and if not, something like this may suit:

# Cater for special situation words: eg 's and 't   
# Convert each group of anything which isn't a "character" (including '_') into a newline.  
# Then, convert each CHARACTER which isn't a newline into a BYTE (not character!).  
# This leaves one 'word' per line, each 'word' being made up of the same BYTE ('x').  
# 
# Without any options, wc prints  newline, word, and byte counts (in that order),
#  so we can capture all 3 values in a bash array
#  
# Use `awk` as a floating point calculator (bash can only do integer arithmetic)

count=($(sed "s/\>'s\([[:punct:]]\|$\)/\1/g      # ignore apostrophe-s ('s) word endings 
              s/'t\>/xt/g      # consider words ending in apostrophe-t ('t) as base word + 2 characters   
              s/[_[:digit:][:blank:][:punct:][:cntrl:]]\+/\n/g 
              s/^\n*//; s/\n*$//; s/[^\n]/x/g" "$file" | wc))
echo "chars / word average:" \
      $(awk -vnl=${count[0]} -vch=${count[2]} 'BEGIN{ printf( "%.2f\n", (ch-nl)/nl ) }')
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1  
A character, when talking about words, means a printable visible character, as used in someone's native alphabet; eg: is a character in the Devanagari script; it uses 3 bytes in UTF-8 (the standard unix/linux encoding system is UTF-8). ā is a character in the Extended Latin script; it uses 2 bytes in UTF-8. wc does count characters correctly, but (just by the way) tr has no concept of characters, tr only understand bytes.. Multi-byte characters are a surprisingly major problem! especially when converting between systems like UTF-8 and and UTF-16 –  Peter.O Jun 30 '12 at 22:04
    
Why shouln't digits form part of a word in your book? Why should each digit be replaced by a newline?! –  Kurt Pfeifle Jun 30 '12 at 22:05
    
You can tweak it as you like! That is one reason I posted this answer. it gives you control. It depends on whether you mean dictionary words, or coputer programming jargon words, etc.. –  Peter.O Jun 30 '12 at 22:08
    
Well, your method results in characters per word average: 29.8769 for one of my example files. My method results in "Avarage word size is: 11.62". I trust my result more, having looked at my original file.... ;-) –  Kurt Pfeifle Jun 30 '12 at 22:08
    
...but I accept you 'more control' argument, of course! ;-) –  Kurt Pfeifle Jun 30 '12 at 22:10

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