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The assignment is to write a program that accepts two groups of words from the user and then prints a "True" statement if the two are anagrams (or at least if all the letters of one are present in the other) and a "False" statement if not.

Being very new to programming as a whole, I don't know how to move beyond just indexing a string and comparing all of the pieces of one to another. I stress that I am a beginner; I've read many of the other posts tagged with Python and Anagram, and they are uniformly above my head and reference things I have not been taught. So the simpler the better. Here is my non-working code so far:

s1 = input("Please enter a word:")
s2 = input("Please enter another word:")

for i in range(0, len(s1), 1):
    if i in range (0, len(s2), 1):
        print("The letters in your first word are present in your second word.")
share|improve this question
    
It's mostly about algorithms, not specific languages. And I'm not sure we provide full solutions to such questions here if you don't have anything to start with. – wRAR Feb 20 '13 at 22:01
1  
How about if sorted(s1.lower()) == sorted(s2.lower()): print("Anagram!")? :) – Tim Pietzcker Feb 20 '13 at 22:10

10 Answers 10

up vote 4 down vote accepted

You need to think through your conditional logic a bit more. The loop is on the right track, but if there is a letter in s1 that is NOT in s2, you should break out of this loop and print the "False" statement. Consider using a variable like all_s1_in_s2 = True and then setting that to false if you find a letter that doesn't match.

Some other tips:

  • for l in s1 will loop through string s1 giving you access to each letter in sequence as l - you don't need range or len at all

  • The if .. in statement can help test whether a letter exists in a string, e.g. if letter in mystring: is a valid statement and this could help you a lot, again not needing range or len

  • You should avoid using numbers in variable names where possible - better would be word_one and word_two, as an example

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Why not just sort the strings?

>>> sorted('anagram')
['a', 'a', 'a', 'g', 'm', 'n', 'r']
>>> sorted('nagaram')
['a', 'a', 'a', 'g', 'm', 'n', 'r']
>>> sorted('anagram') == sorted('nagaram')
True
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Just another solution without using sort:

s1 = "aaabbbccc"
s2 = "abcabcabc"

def are_anagram1(s1, s2):
   return [False, True][sum([ord(x) for x in s1]) == sum([ord(x) for x in s2])]

print are_anagram1(s1,s2)

NB: this works only for alphabet not numerals

share|improve this answer
    
return sum(map(ord, s1)) == sum(map(ord, s2)) should also work – Sunny Nanda Jan 14 '14 at 17:54
    
Ya sure, s1 and s2 are iterable, thank you thats make it more shorter, – sapam Jan 15 '14 at 3:12
2  
how about sum(map(ord, "bbf")), sum(map(ord, "acf")), does this two string is anagram? – seems Mar 1 '15 at 0:54
1  
It doesn't work for the case s1 = "ad", s2 = "bc". sum of Ascii is same (197), but "ad" and "bc" are NOT Anagrams. – venkatvb Sep 29 '15 at 19:09

You can use the magic Counter from collections library. From documentation:

It is an unordered collection where elements are stored as dictionary keys and their counts are stored as dictionary values

So, you can initialize a Counter object with a string (a iterable) and compare with another Counter from a string

from collections import Counter

def is_anagram(str1, str2):
   return Counter(str1) == Counter(str2)
share|improve this answer
>>> s1 = 'vivid'
>>> s2 = 'dvivi'
>>> s3 = 'vivid'
>>> def is_anagram(s1, s2):
...     if s1.lower() == s2.lower():
...         return False
...     return sorted(s1.lower()) == sorted(s2.lower())
...
>>> is_anagram(s1, s2)
True
>>> is_anagram(s1, s3)
False
>>> s2 = 'dvivii'
>>> is_anagram(s1, s2)
False
>>> s2 = 'evivi'
>>> is_anagram(s1, s2)
False
>>> 
share|improve this answer
    
for the isAnagram function, you could just return the evaluated expression i.e return sorted(s..) == sorted(s2) – tr33hous Sep 24 '14 at 14:37
    
Good point, doing the changes – Shan Valleru Sep 24 '14 at 19:22

Just a thought:

def check_(arg):
        mark = hash(str(set(sorted(arg))))
        return mark

def ana(s1, s2):
        if check_(s1) != check_(s2):
                pass
        elif len(s1) != len(s2):
                pass
        else:
             print("{0} could be anagram of  {1}".format(s1, s2))
share|improve this answer

This worked for me

str1="abcd"
str2="bcad"
word1=[]
word2=[]
for x in range(len(str1)):
    word1.append(str1[x])
for x in range(len(str2)):
    word2.append(str2[x])
if(len(word1)==len(word2)):
    for letter in word1:
        if letter in word2:
            word2.remove(letter)

if len(word2)==0:
    print "anagram"
else:
    print "not anagram"
share|improve this answer

Anagrams are the two different words formed with same characters: For eg: EAT and TEA likewise there can be numerous examples.

One good way to see if give two words or sentences are anagrams is to set a counter array of size 256, and initially set all the values to 0. (This can be a good option if the input is bigger, at least than a few words) Now start reading the first string(word or a sentence), and increment its corresponding ASCII location in the array by one. Repeat this for the complete string. Now start reading the second string and keep decreasing the corresponding ASCII counter of each letter in the array. Finally, parse the array; if all the values are zero then the inputs were anagrams otherwise not. Following is the commented code for the better understanding.

#include<iostream>
#include<string>

using namespace std;

bool is_anagram(string s1, string s2)
{
    //Following statement chechs the base condition; if either of the strings is empty,                                  
    //return False
    if(s1.length() == 0 || s2.length() == 0)
        return false;

    //initializing the counter array and setting it's values to 0
    int counter[256] = {0};

    //Calculating the lengths of both the strings
    int len1 = s1.length();
    int len2 = s2.length();

    //Following is also a base condition that checks whether the strings are equal in 
    //length, if not we return False
    if(len1 != len2)
        return false;

    //Following for loop increments the values of the counter array for the first  
    //string
    for(int i = 0; i < len1; i++)
    {
        counter[s1[i]]++;
    }

    //This for loop decrements the values of the counter array for the second string
    for(int i = 0; i < len2; i--)
    {
        counter[s2[i]]--;
    }
    //Now we check whether the counter array is empty/(or as it was initialized); if               
    //yes then the two strings are anagrams
    for(int i = 0; i < 256; i++)
    {
        if(counter[i] != 0)
            return false;
    }

    return true;
}
share|improve this answer
    
I guess the first If should be if(s1.length() == 0 || s2.length() == 0). As you cannot compare string with integer. – venkatvb Sep 29 '15 at 19:22

To check if two strings are anagrams of each other using dictionaries: Note : Even Number, special characters can be used as an input

def anagram(s):

string_list = []
for ch in s.lower():
    string_list.append(ch)

string_dict = {}
for ch in string_list:
    if ch not in string_dict:
        string_dict[ch] = 1
    else:
        string_dict[ch] = string_dict[ch] + 1

return string_dict

s1 = "master" s2 = "stream"

a = anagram(s1) b = anagram(s2)

if a == b: print "Anagram" else: print "Not Anagram"

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    #An anagram is the result of rearranging the letters of a word to produce a new word. Anagrams are case insensitive
    #Examples:
    # foefet is an anagram of toffee
    # Buckethead is an anagram of DeathCubeK

    # The shortest my function style *************************************** 
    def is_anagram1(test, original):
        """Сhecks 'test' is anagram of 'original' strings based on:
        1. length of the both string and length of the sets made from the strings is equivalent
        2. then checks equivalents of sorted lists created from test and original strings

        >>> is_anagram1('Same','same')
        False
        >>> is_anagram1('toffee','foeftt')
        False
        >>> is_anagram1('foefet','toffee')
        True
        >>> is_anagram1("Buuckk",'kkkcuB')
        False
        >>> is_anagram1('Buckethead','DeathCubeK')
        True
        >>> is_anagram1('DeathCubeK','Buckethead')
        True
        """
        # check the length of the both string
        if len(test) != len(original):
            return False

        # check is the strings are the same
        t,o = test.lower(), original.lower()
        if t == o:
            return False

        # check the sorted lists
        return sorted(t) == sorted(o)


    # The final my one line code **************************************
    def is_anagram(test, original):
        """Сhecks 'test' is anagram of 'original' in one line of code

        >>> is_anagram('Same','same')
        False
        >>> is_anagram('toffee','foeftt')
        False
        >>> is_anagram('foefet','toffee')
        True
        >>> is_anagram("Buuckk",'kkkcuB')
        False
        >>> is_anagram('Buckethead','DeathCubeK')
        True
        >>> is_anagram('DeathCubeK','Buckethead')
        True
        """
        return False if len(test) != len(original) or test.lower() == original.lower() else sorted(test.lower()) == sorted(original.lower())

    if __name__ == "__main__":
        import doctest
        doctest.testmod(verbose=True)


### 2 items passed all tests:
### 6 tests in __main__.is_anagram
### 6 tests in __main__.is_anagram1
### 12 tests in 3 items.
### 12 passed and 0 failed.
### Test passed
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