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I'm trying to solve a codechef beginner problem - Enormous Input Test. My code

a,b = [ int(i) for i in raw_input().split()]
print [input()%b==0 for i in range(a)].count(True)

gets timed out. Another solution, which uses basic for-loops, seems to be working fine.

I believe that list comprehension is quicker than basic for - loops. Then why is the former slower? Also will using generators in this case reduce the memory used and perform the computation faster, if so how can I do it?

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Forcing a list on purpose? That will be materialized first... (and possibly consuming huge amounts of memory in the process for an "enormous input test") –  user166390 Jun 11 '12 at 4:36
1  
sorry @pst I didnt understand. "Forcing a list" meaning? –  Mellkor Jun 11 '12 at 4:41
    
The square brackets create a list, the entirety of which is stored in memory. You probably want to use parentheses instead to get a generator comprehension: (int(i) for i in raw_input().split()) This uses "lazy evaluation", only doing the calculations when you try to get them, and only storing as many as needed for whatever you're doing with them. After you're done with each value, it deletes it from memory. –  endolith Nov 9 '13 at 19:11
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1 Answer 1

up vote 4 down vote accepted

Why do you believe that list comprehension is quicker than basic for loops? (Hint: they are both implemented using the same underlying instructions.)

Your code will be executed in some manner like this:

a, b = ...
temp = []
for i in range(a):
    temp.append(int(raw_input()) % b == 0)
print temp.count(True)

As you can see, it creates a large list in memory, iterates over it to create a second list, and then iterates over the second list to create a count. The list does not ever need to be created.

a, b = ...
count = 0
for i in xrange(a):
    if int(raw_input()) % b == 0:
        count += 1
print count

Some compilers are capable of optimizing hylomorphisms to remove the intermideate list, but I know of no Python implementation capable of this. So you are stuck optimizing by hand.

Note: Do not use input in Python 2.x, unless you know what you are doing. I have changed the code to use int(raw_input()) because that is safe, whereas input() is dangerous.

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Thank you for clarifying the basics. What do mean input() is dangerous? –  Mellkor Jun 11 '12 at 4:49
    
@Mellkor: It evaluates user input as Python code. It is about as dangerous as you can get without attaching dynamite to the computer. –  Dietrich Epp Jun 11 '12 at 4:53
    
hmm. doesn't input() return the type of the object provided so wouldn't it be better than using raw_input() and typecasting it? I've not programmed enough in Python to understand your statement to its extent. –  Mellkor Jun 11 '12 at 5:04
2  
There is no such thing as typecasting in Python, since Python is a dynamic language. input() evaluates user input, which means it allows an attacker to run any code. All int() does is parse a string as an integer. You want to parse a string as an integer, so you use int(). You don't want to let attackers run arbitrary code in your program, so you don't want to use input(). The input() function happens to do the right thing if the user types in an integer, but it can do very bad things if the user types in something else. Whereas int() fails quite nicely on bad input. –  Dietrich Epp Jun 11 '12 at 5:50
    
Put another way, input() is basically the same as eval(raw_input()). You really want int(raw_input()) instead, not eval(raw_input()). The eval() function is dangerous, just like input(). –  Dietrich Epp Jun 11 '12 at 5:51
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