Snapshot Array
Problem Statement
Implement a SnapshotArray that supports the following interface:
- SnapshotArray(int length) initializes an array-like data structure with the given length. Initially, each element equals 0.
- void set(index, val) sets the element at the given index to be equal to val.
- int snap() takes a snapshot of the array and returns the snap_id: the total number of times we called snap() minus 1.
- int get(index, snap_id) returns the value at the given index, at the time we took the snapshot with the given snap_id
Example 1:
Input: ["SnapshotArray","set","snap","set","get"]
[[3],[0,5],[],[0,6],[0,0]]
Output: [null,null,0,null,5]
Explanation:
SnapshotArray snapshotArr = new SnapshotArray(3); // set the length to be 3
snapshotArr.set(0,5); // Set array[0] = 5
snapshotArr.snap(); // Take a snapshot, return snap_id = 0
snapshotArr.set(0,6);
snapshotArr.get(0,0); // Get the value of array[0] with snap_id = 0, return 5
Constraints:
- 1 <= length <= 5 * 104
- 0 <= index < length
- 0 <= val <= 109
- 0 <= snap_id < (the total number of times we call snap())
- At most 5 * 104 calls will be made to set, snap, and get.
Code
Python
class SnapshotArray:
def __init__(self, length: int):
self.map = defaultdict(list)
self.snapId = 0
def set(self, index: int, val: int) -> None:
if self.map[index] and self.map[index][-1][0] == self.snapId:
self.map[index][-1][1] = val
return
self.map[index].append([self.snapId, val])
def snap(self) -> int:
self.snapId += 1
return self.snapId - 1
def get(self, index: int, snap_id: int) -> int:
arr = self.map[index]
left, right, ans = 0, len(arr) - 1, -1
while left <= right:
mid = (left + right) // 2
if arr[mid][0] <= snap_id:
ans = mid
left = mid + 1
else:
right = mid - 1
if ans == -1: return 0
return arr[ans][1]