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Here is the link to the Google Code Jam problem from 2010.

from sys import *

def solve(_, items,p):
    for i in xrange(len(items)):
        for j in xrange(i+1,len(items)):
            if items[i] + items[j] == c:
                print "Case #%d: %d %d" %(_+1,i+1,j+1)

cases = int(raw_input())
for _ in xrange(cases):
    c = int(raw_input())
    i = int(raw_input())
    items = map(int,stdin.readline().split())
    solve(_,items,c)

After attempting to trying to work the problem on my own, and afterward referring to this code that I found on Google's solution site, there is one part of it that I cannot seem to figure out. That is on line 12:

i = int(raw_input())

I don't see how it is being used at all in the code besides this initial declaration. Yet if I comment the line out the code will not run, giving the following error:

invalid literal for int() with base 10: '5 75 25'

Could someone explain why this line is needed and how it is being used in the code?

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maybe better suited to stackexchange.com/codereview? –  KevinDTimm Mar 10 at 20:18
2  
raw_input consumes input from stdin. They probably dont need i to solve the problem, but if they don't consume it, the next time they get c, they will really be consuming i instead ( ie all of their input processing will get off count ). –  bwbrowning Mar 10 at 20:22
    
@KevinDTimm No, Code Review certainly isn't for “help me understand this code I found” kind of questions. –  svick Mar 10 at 21:09
    
@bwbrowning I think you should post that as an answer. –  svick Mar 10 at 21:10

1 Answer 1

This is pretty directly following the instructions in the problem:

The first line of input gives the number of cases, N. N test cases follow.

cases = int(raw_input())

For each test case there will be:

for _ in xrange(cases):

One line containing the value C, the amount of credit you have at the store.

    c = int(raw_input())

One line containing the value I, the number of items in the store.

    i = int(raw_input())

One line containing a space separated list of I integers.

    items = map(int,stdin.readline().split())

Your confusion, I think, stems from commenting out the line where i is defined without understanding the side-effects of setting i. The python code doesn't need to do anything with i because split() works without needing to know how many items there are (some languages might need this information, so the problem provides it), however we still need to call raw_input() in order to advance past that line and read the list of items.

You could therefore remove the i = int(...) and just call raw_input() on that line and the code would still work. The author was simply following the documented steps of processing the input, even if solve() doesn't need it.

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