1475. Final Prices With a Special Discount in a Shop
Problem Description
You are provided with an array called prices
where each element prices[i]
indicates the cost of the i-th
item in a store. This store offers a special discount on each item. When you buy the i-th
item, you get a discount equal to the value of prices[j]
, where j
is the smallest index greater than i
such that prices[j]
is less than or equal to prices[i]
. If there's no such item that fulfils the condition for the discount, then no discount is applied to the i-th
item. The problem requires you to determine the actual price you would pay for each item after applying the special discount if applicable and return this as a new array of prices.
Intuition
The intuition behind the solution involves a stack to keep track of the items (by their indices) that we have not yet found a smaller price for. This is an optimization technique to make finding the next smaller price more efficient.
As we iterate over the array, we compare the current price with the price at the top of the stack:
- If the current price is less than or equal to the price of the item at the top of the stack, it means we found a smaller price. Therefore, the item at the top of the stack is eligible for a discount equal to the current price. We then update the answer for the item at the top of the stack by subtracting the current price from it and pop this index from the stack.
- If the current price is higher, it means this item could potentially offer a discount to the following items. So, we add the current index to the stack to signify that we have not yet found a smaller price for the item at this index.
- We continue this process until we've looked at all the prices and the stack has ensured all items received their due discounts where applicable.
This approach leverages the property of monotonically decreasing stacks to optimize the process of finding the next smaller element, which makes it possible to solve the problem in linear time.
Learn more about Stack and Monotonic Stack patterns.
Solution Approach
The solution utilizes a data structure called a stack to efficiently track indices of prices that are awaiting a discount. The stack property of "last-in, first-out" is particularly helpful here because it allows us to always consider the most recent item when looking for the next lower price.
Here is how the algorithm works:
- We initialize an empty stack
stk
and a listans
that is a copy of the originalprices
list. - We iterate over each item in
prices
using its indexi
and valuev
. For each item, we check whether a discount can be applied based on the items in the stack. - Inside the loop, there's an inner
while
loop that checks if the stack is not empty and whether the price at the top of the stack (the last item that was put into the stack) is greater than or equal to the current pricev
.- If this is true, it implies that the item corresponding to the index at the top of the stack is eligible for a discount of value
v
(the current item's price). - We then pop the top index from the stack and subtract the discount
v
from the original price in theans
list at that index. - This process continues until the stack is empty or the current price
v
is no longer less than or equal to the prices of items indexed in the stack.
- If this is true, it implies that the item corresponding to the index at the top of the stack is eligible for a discount of value
- After the inner
while
loop ends (meaning no more discounts can be applied or the stack is empty), the current indexi
is appended to the stack. - This implies that this item is now waiting to potentially give a discount to a future item, or it will not receive a discount itself if no cheaper item comes after it.
- Once the iteration over all prices completes, the
ans
list will have been modified to contain the final prices after discount for each item.
By using the stack this way, each item is pushed and popped at most once, leading to a time complexity of O(n) where n is the number of items in prices
, making the algorithm efficient and suitable for larger datasets.
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Start EvaluatorExample Walkthrough
Let's illustrate the solution approach using a small example:
Imagine we have the following prices: [4, 2, 3, 7, 5]
. We want to calculate the final price for each item after applying the special discount according to our problem description and solution approach.
We initialize an empty stack stk
and a list ans
that is a copy of the original prices
list, thus ans
would initially be [4, 2, 3, 7, 5]
.
-
Start at index
0
with price4
. Stack is currently empty, so push0
. Stack:[0]
-
Move to index
1
with price2
. The top of the stack refers to price4
. Since2
is smaller than4
, apply discount toans[0]
:ans[0] = 4 - 2
. Pop0
from the stack and push1
on the stack. Stack:[1]
,ans
becomes[2, 2, 3, 7, 5]
. -
Proceed to index
2
with price3
. The top index1
has the price2
, which is not greater than3
, so no discount is applied. Push2
onto the stack. Stack:[1, 2]
-
Next is index
3
with price7
.2
(fromans[2]
) is smaller than7
, so no discount is applied to the price at index3
. Push3
onto the stack. Stack:[1, 2, 3]
-
Lastly, index
4
with price5
. Compare with top of the stack index3
which is7
. Since5
is lower, apply discount toans[3]
:ans[3] = 7 - 5
. Pop3
from the stack. Next, compare with top of the stack index2
, which has the price3
. Price3
is not higher than5
, so we stop and push4
onto the stack. Stack:[1, 2, 4]
,ans
becomes[2, 2, 3, 2, 5]
.
Finally, there are no more items to consider, and the ans
array holds the final discounted prices. The function would return the ans
array, which is [2, 2, 3, 2, 5]
. This is how much you would pay for each item after applying the discounts.
Solution Implementation
1from typing import List
2
3class Solution:
4 def finalPrices(self, prices: List[int]) -> List[int]:
5 # Initialise a stack to keep track of the indices of prices
6 stack = []
7
8 # Make a copy of the prices list to store the final prices after discounts
9 final_prices = prices[:]
10
11 # Iterate over the prices with their corresponding indices
12 for index, value in enumerate(prices):
13 # Check for prices in the stack that are greater or equal to the current price
14 while stack and prices[stack[-1]] >= value:
15 # Apply the discount to the price at the top of the stack by subtracting
16 # the current value from it, then pop it from the stack
17 final_prices[stack.pop()] -= value
18
19 # Push the current index onto the stack
20 stack.append(index)
21
22 # Return the modified prices list with applied discounts
23 return final_prices
24
1class Solution {
2 public int[] finalPrices(int[] prices) {
3 // Create a stack to keep track of the indices of prices that haven't found a discount yet
4 Deque<Integer> stack = new ArrayDeque<>();
5 int n = prices.length;
6 // Initialize an array to hold the final prices after applying the discounts
7 int[] finalPrices = new int[n];
8
9 // Iterate over the array of prices
10 for (int i = 0; i < n; ++i) {
11 // Store the original price as the final price for now
12 finalPrices[i] = prices[i];
13
14 // Check if the current price can be a discount for the price at the top of the stack
15 while (!stack.isEmpty() && prices[stack.peek()] >= prices[i]) {
16 // Apply discount to the top price and update it in the finalPrices array
17 finalPrices[stack.pop()] -= prices[i];
18 }
19
20 // Push the current index onto the stack
21 stack.push(i);
22 }
23
24 // Return the array of final prices after applying the discounts where applicable
25 return finalPrices;
26 }
27}
28
1class Solution {
2public:
3 vector<int> finalPrices(vector<int>& prices) {
4 // Create a stack to keep track of indices of prices
5 stack<int> indexStack;
6
7 // Initialize the answer vector with the original prices
8 vector<int> discountedPrices = prices;
9
10 // Loop through each price
11 for (int i = 0; i < prices.size(); ++i) {
12 // While stack is not empty and the current price is less than or equal to
13 // the price at the top of the stack (indicates a discount is available)
14 while (!indexStack.empty() && prices[indexStack.top()] >= prices[i]) {
15 // Apply the discount to the price at the top index
16 discountedPrices[indexStack.top()] -= prices[i];
17 // Pop the index from the stack as the discount has been applied
18 indexStack.pop();
19 }
20 // Push the current index onto the stack
21 indexStack.push(i);
22 }
23
24 // Return the vector containing final prices after discounts
25 return discountedPrices;
26 }
27};
28
1function finalPrices(prices: number[]): number[] {
2 // Initialize the length of the prices array to avoid recomputation.
3 const lengthOfPrices = prices.length;
4
5 // Initialize the result array to store the final discounted prices.
6 const discountedPrices = new Array(lengthOfPrices);
7
8 // Initialize a stack to keep track of prices from the end to start.
9 const priceStack: number[] = [];
10
11 // Iterate over the prices array from the end to the beginning.
12 for (let i = lengthOfPrices - 1; i >= 0; i--) {
13 // Store the current price for readability.
14 const currentPrice = prices[i];
15
16 // Check prices in the stack; if any price is greater than the current price,
17 // it cannot be a discount for the current price, so remove it.
18 while (priceStack.length !== 0 && priceStack[priceStack.length - 1] > currentPrice) {
19 priceStack.pop();
20 }
21
22 // Calculate the discounted price for the current item.
23 // If the stack is empty, no discount is applied (hence the nullish coalescing operator ?? is used).
24 discountedPrices[i] = currentPrice - (priceStack[priceStack.length - 1] ?? 0);
25
26 // Add the current price to the stack for possible future discounts.
27 priceStack.push(currentPrice);
28 }
29
30 // Return the array of discounted prices.
31 return discountedPrices;
32}
33
Time and Space Complexity
The time complexity of the given code is O(n)
, where n
is the number of elements in the prices
list. This is because each element is pushed onto the stack at most once, and each element is popped from the stack at most once. The while loop will only iterate for each element if there is a matching discount, so even though there's a nested loop, it does not result in a quadratic time complexity.
The space complexity of the code is also O(n)
. This is due to the stack stk
that, in the worst case, can hold all the elements from the prices
list if no discounts apply. Additionally, the ans
list is a copy of the prices
list and thus also takes O(n)
space.
Learn more about how to find time and space complexity quickly using problem constraints.
In a binary min heap, the maximum element can be found in:
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