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How do you compare a matrix row (ie list of lists) with a given string?

index = 99999
for i in range(len(text)):
    if (matrix[i][0:len(text)] == text):
        index = i

I want "index" to be the number of row for which "row == text", but the above code outputs 99999.

I know for sure that exactly one of the rows contains the string. For example, the matrix is

 ['a', 'i', 'n', 'e', 'm']
 ['e', 'm', 'a', 'i', 'n']
 ['i', 'n', 'e', 'm', 'a']
 ['m', 'a', 'i', 'n', 'e']
 ['n', 'e', 'm', 'a', 'i']

and I want to know which row is "maine" (number 3 in this case). Thanks!

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Maybe nothing compares true with the string? – Aesthete Sep 18 '12 at 4:25
1  
What does the matrix look like? Can you paste the output of print matrix? – nneonneo Sep 18 '12 at 4:32
    
@nneonneo, i've posted an example. – mparnisari Sep 18 '12 at 4:34
up vote 2 down vote accepted

Try

try:
    index = matrix.index(list(text))
except IndexError:
    index = 99999

list(text) turns the string into a list of characters. list.index searches for the item you specify (using == as the equality comparison) and returns its index if found, or raises IndexError if not found.

I'd also not recommend using 99999 as the 'not found' value; it's rather safer to use a value like -1 or (better yet) just leave the exception alone unless you intend to handle it.

If you know the string must be in the matrix, then index = matrix.index(list(text)) is all you need.

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Nice and simple. Thank you! – mparnisari Sep 18 '12 at 4:40
for idx,row in enumerate(matrix):
  if ''.join(row) == text:
    print idx

Or, as a one-liner:

idx = [''.join(x) for x in matrix].index(text)

As for why your attempt didn't work, the reason is this test:

matrix[i][0:len(text)] == text

At the point in which you are expecting it to succeed, you are actually comparing a list with a string, but ['m', 'a', 'i', 'n', 'e'] != 'maine'. However, matrix[i][0:len(text)] == list(text) should have worked.

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