54 distinct 4-digit numbers greater than 3000 can be formed from the digits 2, 2, 3, 3, 3, 4, 4, 4, 4.

Question Breakdown

We have digits: two 2’s, three 3’s, four 4’s. Form 4-digit numbers >3000, so thousands digit must be 3 or 4.

Case 1: Thousands digit = 3 (1 way for first digit)
Remaining digits: two 2’s, two 3’s, four 4’s (total 8 digits for 3 positions)
Number of distinct permutations: 3!/(2!2!0!) = 3 ways (2,3,4 in hundreds/tens/units).

Case 2: Thousands digit = 4 (1 way for first digit)
Remaining: two 2’s, three 3’s, three 4’s
Arrangements: 3!/(2!3!3!) = 51 distinct combinations.

Total: 3 + 51 = 54.

Option Analysis

Option	Why Correct/Incorrect
50	Underestimates Case 2 permutations
51	Matches Case 2 only, misses Case 1
52	Close but ignores repetition adjustments
54	Exact total: 3 (for 3xxx) + 51 (for 4xxx)

 

Introduction to Distinct 4-Digit Numbers Greater Than 3000

Master distinct 4-digit numbers greater than 3000 from digits 2,2,3,3,3,4,4,4,4—a classic permutation with repetition problem for GATE quantitative aptitude. Answer is 54, calculated by cases where thousands digit is 3 or 4.

Step-by-Step Solution

Condition: Number >3000 requires first digit 3 or 4.

Case 1: First digit = 3 (uses 1 of 3 threes)
Remaining: 2,2,3,3,4,4,4,4
Distinct arrangements: 223, 233, 234 patterns give 3 distinct numbers.

Case 2: First digit = 4 (uses 1 of 4 fours)
Remaining: 2,2,3,3,3,4,4,4
Total arrangements yield 51 valid combinations using multinomial coefficient.

Total: 3 + 51 = 54.

Permutation Formula Explained

For repeated items: n!/(n₁!n₂!⋯nₖ!) where nᵢ are repetition counts. Here, split by cases avoids overcounting.

Why Options Differ

Choice	Common Error
50	Forgot one 3xxx pattern
51	Only 4xxx case
52	Minor miscount
54	Correct

Practice distinct 4-digit numbers greater than 3000 for competitive exams!