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As for the question, you need to find the number of combinations possible such that:
1. It is a 3 digit number > 700 (or between 701-999, inclusive).
2. All digits are different and NON ZERO.
3. The numbers must be ODD --> the last digit can be 1 of 1,3,5,7,9
Based on this, the numbers can be of the following 3 types:
Type 1: 7AB
Type 2: 8EF
Type 3: 9CD
For type 1 and type 3, be very careful that the digits must be different. So if it is 7AB, then B can NOT be 7. Similarly for type 3, 9CD, D can NOT be 9. There is no such restriction when you find numbers of type 2 (8EF).
Number of combinations for type 1 : 1*7*4 = 28
Number of combinations for type 2: 1*7*5 = 35
Number of combinations for type 3 : 1*7*4 = 28
Thus, total numbers possible = 28+35+28 = 91.
B is thus the correct answer.
搬运来的 原楼在这里https://gmatclub.com/forum/of-the-three-digit-positive-integers-whose-three-digits-are-all-different-and-nonzero-how-many-are-odd-integers-greater-than-217298.html
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发表于 2018-1-20 16:11:37
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