Random Flip Matrix
Time ctor: O(1) pick: O(1) reset: O(n) · Space O(n) · Official statement on LeetCode
Solutions
// Time: ctor: O(1)
// flip: O(1)
// reset: O(min(f, r * c))
// Space: O(min(f, r * c))
class Solution {
public:
Solution(int n_rows, int n_cols) :
n_rows_(n_rows),
n_cols_(n_cols),
n_(n_rows * n_cols),
gen_{(random_device())()} {
}
vector<int> flip() {
uniform_int_distribution<int> uni(0, --n_);
const auto target = uni(gen_);
int x = get(target, target);
lookup_[target] = get(n_, n_);
return {x / n_cols_, x % n_cols_};
}
void reset() {
lookup_.clear();
n_ = n_rows_ * n_cols_;
}
private:
int get(int key, int default_value) {
return lookup_.count(key) ? lookup_[key] : default_value;
}
int n_rows_;
int n_cols_;
int n_;
unordered_map<int, int> lookup_;
default_random_engine gen_;
};
/**
* Your Solution object will be instantiated and called as such:
* Solution obj = new Solution(n_rows, n_cols);
* vector<int> param_1 = obj.flip();
* obj.reset();
*/
Beginner Explanation
What is Random Flip Matrix?
Random Flip Matrix (LeetCode #519) is a Medium problem that primarily trains math.
How to think about it
- Restate the goal in your own words before coding.
- Work a tiny example by hand so the invariant becomes obvious.
- Identify the pattern — this problem aligns with general problem-solving.
- Only then translate the idea into code.
Why this problem matters
It sits in the sweet spot of interview difficulty: multiple valid approaches, clear trade-offs.
AlgoForge explanations are original teaching notes. Always open the official problem statement on LeetCode for constraints and examples.
Interview Walkthrough
Interview approach for Random Flip Matrix
Opening (30–60 seconds)
- Clarify inputs/outputs and edge cases (empty input, single element, duplicates, overflow).
- State a brute force so the interviewer knows you can solve it naively.
- Propose the optimal direction tied to general problem-solving.
Core solution narrative
- Define the state you track (pointers, DP cell, set membership, stack top, etc.).
- Explain the transition when you process the next element.
- Call out time (ctor: O(1) pick: O(1) reset: O(n)) and space (O(n)) before coding.
- Code cleanly; narrate variable names.
What interviewers listen for
- Correctness on edge cases
- Complexity honesty
- Ability to discuss trade-offs (e.g., hash map space vs. sort + two pointers)
Follow-up questions they may ask
- Can you solve it with less memory?
- What if the input stream is infinite / doesn't fit in RAM?
- How would tests look for adversarial inputs?
Optimized Approach
Optimized solution notes
The reference solutions on AlgoForge target ctor: O(1) pick: O(1) reset: O(n) time and O(n) space.
Pattern focus: general problem-solving
Use the pattern as a checklist:
- Identify the dominant pattern and stick to one clear invariant
Multiple methods appear in the source solutions — compare them and explain when each is preferable.
Implementation tips
- Prefer readable names over micro-optimizations in interviews.
- Extract helpers only when they clarify (e.g., expand-around-center, DFS visit).
- After AC-level logic, re-scan for off-by-one and null checks.
Complexity Analysis
Complexity
| Measure | Bound |
|---|---|
| Time | ctor: O(1) pick: O(1) reset: O(n) |
| Space | O(n) |
How to justify this in an interview
- Time: count loops, map/set operations, and recursive branching; state average vs worst case if relevant.
- Space: include hash maps, recursion stack, and output allocation when the problem asks for it.
If your implementation differs from the reference, re-derive big-O from your code — never memorize a complexity you cannot defend.
Common Mistakes
Common mistakes on Random Flip Matrix
- Skipping edge cases — empty collections, single-element inputs, max constraints.
- Wrong invariant for general problem-solving — updating state too early or too late.
- Mutating input unexpectedly when the problem forbids it.
- Off-by-one in windows, ranges, or binary search bounds.
- Ignoring overflow / precision for integer arithmetic problems.
- Overengineering — jumping to an advanced structure when a simpler approach works.
Alternative Approaches
Alternatives
The source file includes more than one method. Compare:
- Primary optimized path — best complexity for typical interviews.
- Secondary approach — often brute force, sorting-based, or space-optimized variant.
Practice articulating when you would pick each (constraints, readability, follow-ups).
Edge Cases
Edge cases checklist
- Minimum input size
- Maximum input size / time limits
- Duplicates and already-sorted input
- Negative numbers / zeros (if applicable)
- Disconnected structures (graphs/trees)
- Single path vs branching recursion depth
Pattern Recognition
Spotting this pattern
Signal phrases that point to general problem-solving:
- Sorted input or ability to sort without changing the answer class
- Need for contiguous subarray / substring → consider sliding window
- Need for O(1) membership → hash set/map
- Optimal substructure + overlapping subproblems → DP
- Connectivity / components → graph DFS/BFS or Union-Find
Primary topics: math.
Follow-up Interview Questions
Follow-ups
- How does the solution change if the input is a stream?
- Can you solve it in-place?
- What if duplicates must be handled differently?
- How would you parallelize the approach?
- Design tests that would break a buggy implementation.
Practice Recommendations
What to practice next
- Re-solve Random Flip Matrix in a second language (cpp, python).
- Drill 3–5 more problems tagged math.
- Teach the solution out loud in under 5 minutes.
- Add this problem to your revision calendar in 3 days and 14 days.
Visualization
Study checklist
- Read the official problem statement on LeetCode
- Solve on paper / whiteboard first
- Implement the general problem-solving approach
- Verify edge cases from the checklist
- State time and space complexity aloud
- Compare with the AlgoForge reference solution
- Schedule a revision session
Revision notes
Random Flip Matrix (#519) — Medium. Pattern: general problem-solving. Complexity: ctor: O(1) pick: O(1) reset: O(n) time / O(n) space. Re-derive the invariant before coding.
FAQs
What is the time complexity of Random Flip Matrix?+
The reference solutions aim for ctor: O(1) pick: O(1) reset: O(n) time and O(n) space. Always re-derive complexity from the code you write in the interview.
What pattern does Random Flip Matrix use?+
It primarily maps to general problem-solving, within the broader topic of math.
Is Random Flip Matrix good for interviews?+
Yes — as a Medium problem it is a solid practice target. Pair it with related problems in the same pattern family for spaced repetition.
Where can I read the official statement?+
Open the official LeetCode page for constraints and examples: https://leetcode.com/problems/random-flip-matrix/