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Every character in the English language has a percentage of occurrence, these are the percentages:

A       B       C       D       E       F       G       H       I
.0817   .0149   .0278   .0425   .1270   .0223   .0202   .0609   .0697
J       K       L       M       N       O       P       Q       R
.0015   .0077   .0402   .0241   .0675   .0751   .0193   .0009   .0599
S       T       U       V       W       X       Y       Z   
.0633   .0906   .0276   .0098   .0236   .0015   .0197   .0007

A list called letterGoodness is predefined as:

letterGoodness = [.0817,.0149,.0278,.0425,.1270,.0223,.0202,...

I need to find the "goodness" of a string. For example the goodness of 'I EAT' is: .0697 + .1270 + .0817 + .0906 =.369. This is part of a bigger problem, but I need to solve this to solve the big problem. I started like this:

def goodness(message):
   for i in L:
     for j in i:

So it will be enough to find out how to get the occurrence percentage of any character. Can you help me? The string contains only uppercase letters and spaces.

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4  
You have an array of length 26. Each character in your string has an ascii number. Write a method to convert the ascii number to the proper array index. Then you can simply iterate over the string, summing the goodness values in O(n). new edit: If your string is only uppercase letters, then yeah, a dictionary would remove the need for the hash function I described. –  Robert Christ Aug 24 '12 at 15:21

2 Answers 2

up vote 12 down vote accepted

letterGoodness is better as a dictionary, then you can just do:

sum(letterGoodness.get(c,0) for c in yourstring.upper())
#                                             #^.upper for defensive programming

To convert letterGoodness from your list to a dictonary, you can do:

import string
letterGoodness = dict(zip(string.ascii_uppercase,letterGoodness))

If you're guaranteed to only have uppercase letters and spaces, you can do:

letterGoodness = dict(zip(string.ascii_uppercase,letterGoodness))
letterGoodness[' '] = 0
sum(letterGoodness[c] for c in yourstring)

but the performance gains here are probably pretty minimal so I would favor the more robust version above.


If you insist on keeping letterGoodness as a list (and I don't advise that), you can use the builtin ord to get the index (pointed out by cwallenpoole):

 ordA = ord('A')
 sum(letterGoodness[ord(c)-ordA] for c in yourstring if c in string.ascii_uppercase)

I'm too lazy to timeit right now, but you may want to also define a temporary set to hold string.ascii_uppercase -- It might make your function run a little faster (depending on how optimized str.__contains__ is compared to set.__contains__):

 ordA = ord('A')
 big_letters = set(string.ascii_uppercase)
 sum(letterGoodness[ord(c)-ordA] for c in yourstring.upper() if c in big_letters)
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1  
But don't forget to discard non-alphabetical characters. –  Alexey Lebedev Aug 24 '12 at 15:22
    
ahh, I see you're browsing python questions today too. Beat me by 8 seconds and with code to boot. I might just come back tomorrow :D –  chucksmash Aug 24 '12 at 15:23
5  
To avoid the non-alphabetic problem, I'd use letterGoodness.get(i.upper(), 0) instead rather than doing the membership tests. –  DSM Aug 24 '12 at 15:23
    
The string is only uppercase characters, I'll edit my post now, sorry. –  Reginald Aug 24 '12 at 15:24
2  
@Reginald Practice defensive programming. –  Marcin Aug 24 '12 at 15:24

You would be better off using a dictionary data structure.

EDIT: This is not my original code but instead the code updated along the lines DSM suggested.

import string

num_vals = [.0817, .0149, .0278, .0425, .1270, .0223, .0202, .0609, .0697 , .0015, .0077,
            .0402, .0241, .0675, .0751, .0193, .0009, .0599, .0633, .0906, .0276, .0098,
            .0236, .0015, .0197, .0007]

letterGoodness = {letter : value for letter,value in map(None, string.ascii_uppercase, num_vals)}

def goodness(message):
    string_goodness = 0
    for letter in message:
        letter = letter.upper()
        if letter in letterGoodness.keys():
            string_goodness += letterGoodness[letter]
    return string_goodness

print goodness("I eat")

Using the test case you provided:

print goodness("I eat")

yields the output:

.369

One thing to note - building a dictionary as is done here requires on Python 2.7+. The same thing can be accomplished in Python 2.6+ with the dict() constructor.

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2  
I can't put my finger on exactly what number of repeated lines I'd accept before I would abstract the duplication away, but I'm confident that twenty-six is above it. I think most Python programmers would do something more like what @mgilson did, and look a little dubiously at this. –  DSM Aug 24 '12 at 15:40
    
A valid comment. I abstracted the repetition myself using find/replace in my editor but that has no bearing on the code output - the result is not elegant. –  chucksmash Aug 24 '12 at 15:45
2  
map(None,...) is better written as zip(...). –  Marcin Aug 24 '12 at 17:16
    
I'd never seen zip( written as map(None, ... Interesting. Which came first? map or zip? This knowledge might be useful for python archeology... –  mgilson Aug 24 '12 at 17:53
    
@mgilson http://docs.python.org/library/functions.html lists zip() with a New in version 2.0 while map() has no such qualifier so, assuming the omission is intentional, map() is the O.G. way to do it. –  chucksmash Aug 24 '12 at 17:58

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