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8 April, 08:09

Someone listed all the numbers from 0 to 99999 in increasing order. Then he crossed out all the numbers where some other digit (s) besides 0 and 1 were used.

How many are left?

+1
Answers (1)
  1. 8 April, 08:30
    0
    32

    Step-by-step explanation:

    We need digits with only 0's and 1's.

    There are 5 forms which we have to consider.

    We have to consider 1-, 2-, 3-, 4-, 5-digit numbers.

    1-digit number

    For 1 digit number there is only 2 possibilities (0,1).

    2-digit number

    For 2 digit number the first digit will be fixed i-e 1 because if we take 0 to be the first digit it will reduce to one digit number, so first digit has to be 1. Now in the second digit place we have two possibilities 0 and 1.

    So the total possible combination for 2-digit number is 1*2=2.

    3-digit number

    For 3 digit number first place is fixed with second and third having two possibilities giving us the combination for 3-digit number as 1*2*2=4.

    4-digit number

    Similarly for four digit number first place is fixed with the rest three with the possibility of two. So possible combination is 1*2*2*2=8.

    5-digit number

    For 5 digit we have the combination as 1*2*2*2*2=16.

    So the total numbers left are 2+2+4+8+16=32.
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