How many 6 digit combinations can i get using numbers 1-49?

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How many 6 digit combinations can i get using numbers 1-49?

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Answer 1 · 2017-10-07T21:41:57

No. of possible combinations without repeating any number $= 43, 084$ $=43,084$

Explanation:

Four combinations 6 digits are
1) All six digits are single digits 1 to 9.
$9 C 6 = \frac{9!}{(6!) (9 - 6)!} = \frac{9 \cdot 8 \cdot 7}{1.2 .3} = 84$ $9C6=(9!)/((6!)(9-6)!)=(9*8*7)/(1.2.3)=84$

2) All 6 digits are 3 double digits 10 to 49.
$40 C 3 = \frac{40!}{(37!) (3!)} = \frac{40 \cdot 39 \cdot 38}{1 \cdot 2 \cdot 3} = 9880$ $40C3=(40!)/((37!)(3!))=(40*39*38)/(1*2*3)=9880$

3) Two single digits and two double digits.
$= (\frac{9!}{(2!) (7!)}) \cdot (\frac{40!}{(2!) (38!)})$ $=((9!)/((2!)(7!)))*((40!)/((2!)(38!)))$
$= (\frac{9 \cdot 8}{2}) \cdot (\frac{40 \cdot 39}{2}) = 36 \cdot 780 = 28080$ $=((9*8)/(2))*((40*39)/(2))=36*780=28080$

4) Four single digits and one double digit.
$= (\frac{9!}{(4!) (5!)}) \cdot (\frac{40!}{(1 \cdot) (39!)})$ $=((9!)/((4!)(5!)))* ((40!)/((1*)(39!)))$
$= (\frac{9 \cdot 8 \cdot 7 \cdot 6}{1 \cdot 2 \cdot 3 \cdot 4}) \cdot (40) = 126 \cdot 40 = 5040$ $=((9*8*7*6)/(1*2*3*4))*(40)=126*40=5040$

Adding all 4 options, we get the answer
$= 84 + 9880 + 28080 + 5040 = 43, 084$ $=84+9880+28080+5040=43,084$

Answer 2 · 2017-10-08T07:23:33

Answer is $43, 084$ $43,084$ .

Explanation:

There are four overall possibilities.

You can get a six digit number only if you take $\to$ $rarr$

(1) 6 single digit numbers.
(2) 3 double digit numbers.
(3) 4 single & 1 double digit numbers.
(4) 2 single & 2 double digit numbers

Now, from $(1,2,.....,48,49)$ $rarr$
There are $9$ single & $40$ double digit numbers.

So, taking care of all these cases as well as the probabilities of the position of all the numbers in the six digit number we get $rarr$

$P=9C_6+40C_3+9C_4xx40C_1+9C_2xx40C_2$

$:.P=84+9,880+5,040+28,080$

$:.P=43,084$ .

Therefore, total number of required combinations is $43,084$ . (Answer).

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How many 6 digit combinations can i get using numbers 1-49?

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