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I'm trying to find a way to figure out (in c++), given a list of items with a constant price, how many ways a person can buy X amount of items if they have X amount of dollars.

So far, I have attempted to use nested for loops to try and brute force a solution, however, I feel i might be missing a very simple solution that I can't seem to see.

Any help would be very much appreciated. Thanks.

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Can they only buy item a X times with Z dollars OR can they buy item a X times, item b Y times, ... with Z dollars –  Brett Walker Aug 6 '11 at 11:47
10  
Knapsack problem –  FredOverflow Aug 6 '11 at 11:47
    
X items with X dollars is the requirement. so for example they must buy 10 items that equal to 10 dollars. –  Damon Swayn Aug 6 '11 at 12:05
    
Assuming there are Y different types of item. Each item has a price less than a dollar. Then you can do this Y! times. –  Loki Astari Aug 6 '11 at 14:15
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1 Answer

up vote 0 down vote accepted

This is very similar to the common programming question: "How many ways can you combine Y types of coins with Z values to make X dollars", i.e. make change for X dollars with Y coin types.

Here's a general solution that could be ported to C++:

I = list of items SORTED from highest to lowest price
N = number of items bought so far
M = money left
S = money to start

function shop(I, N, M, S):
  if M < 0: return 0 //we bought something illegally! 
  if M == 0:
    //If we have no money, we've bought all we could. 
    //Check our condition that num items N = starting money S
    return 1 if N == S, else 0 
  if I is empty:
    return 0 //no more item combos, no way to buy things.
  else:
    newI = I with first element removed 
    //Every time we want to buy stuff, we have two options: 
    //1. buy something of highest value and subtract money
    //2. Shop ignoring the next highest value item
    return shop(newI, N, M, S) + shop(I, N+1, M-(cost of first item), S)

With X dollars, you start off with the call:

shop(I, 0, X, X)
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