Description#
You are given an integer array cards where cards[i] represents the value of the ith card. A pair of cards are matching if the cards have the same value.
Return the minimum number of consecutive cards you have to pick up to have a pair of matching cards among the picked cards. If it is impossible to have matching cards, return -1.
Example 1:
Input: cards = [3,4,2,3,4,7]
Output: 4
Explanation: We can pick up the cards [3,4,2,3] which contain a matching pair of cards with value 3. Note that picking up the cards [4,2,3,4] is also optimal.
Example 2:
Input: cards = [1,0,5,3]
Output: -1
Explanation: There is no way to pick up a set of consecutive cards that contain a pair of matching cards.
Constraints:
1 <= cards.length <= 1050 <= cards[i] <= 106
Solutions#
Solution 1#
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| class Solution:
def minimumCardPickup(self, cards: List[int]) -> int:
last = {}
ans = inf
for i, x in enumerate(cards):
if x in last:
ans = min(ans, i - last[x] + 1)
last[x] = i
return -1 if ans == inf else ans
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| class Solution {
public int minimumCardPickup(int[] cards) {
Map<Integer, Integer> last = new HashMap<>();
int n = cards.length;
int ans = n + 1;
for (int i = 0; i < n; ++i) {
if (last.containsKey(cards[i])) {
ans = Math.min(ans, i - last.get(cards[i]) + 1);
}
last.put(cards[i], i);
}
return ans > n ? -1 : ans;
}
}
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| class Solution {
public:
int minimumCardPickup(vector<int>& cards) {
unordered_map<int, int> last;
int n = cards.size();
int ans = n + 1;
for (int i = 0; i < n; ++i) {
if (last.count(cards[i])) {
ans = min(ans, i - last[cards[i]] + 1);
}
last[cards[i]] = i;
}
return ans > n ? -1 : ans;
}
};
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| func minimumCardPickup(cards []int) int {
last := map[int]int{}
n := len(cards)
ans := n + 1
for i, x := range cards {
if j, ok := last[x]; ok && ans > i-j+1 {
ans = i - j + 1
}
last[x] = i
}
if ans > n {
return -1
}
return ans
}
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| function minimumCardPickup(cards: number[]): number {
const n = cards.length;
const last = new Map<number, number>();
let ans = n + 1;
for (let i = 0; i < n; ++i) {
if (last.has(cards[i])) {
ans = Math.min(ans, i - last.get(cards[i]) + 1);
}
last.set(cards[i], i);
}
return ans > n ? -1 : ans;
}
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