If a, b, c are three natural numbers in AP and a+b+c=21 then the possible number of values of the ordered triplet (a, b, c) is

Question

If a, b, c are three natural numbers in AP and a+b+c=21 then the possible number of values of the ordered triplet (a, b, c) is (A) 15 (B) 14 (C) 13 (D) None of these

Tardigrade Admin · Accepted Answer

Let a=b-d and c=b+d, then a+b+c=21 ⇒ b=7 So, the equation is a+c=14 ∴ No. of solution = coeff. of x14 in (x+x2+ ldots .) = 13 C12=13

Q. If $a, b, c$ are three natural numbers in $A P$ and $a + b + c = 21$ then the possible number of values of the ordered triplet $(a, b, c)$ is

15

14

13

None of these

Let $a = b - d$ and $c = b + d$ , then $a + b + c = 21$
$\Rightarrow b = 7$
So, the equation is $a + c = 14$
$∴$ No. of solution $=$ coeff. of $x^{14}$ in $(x + x^{2} + \dots .)$
$=^{13} C_{12} = 13$

Q. If a,b,c are three natural numbers in AP and a+b+c=21 then the possible number of values of the ordered triplet (a,b,c) is

15

14

13

None of these

Let a=b−d and c=b+d, then a+b+c=21 ⇒b=7 So, the equation is a+c=14 ∴ No. of solution = coeff. of x14 in (x+x2+….) =13C12​=13

Q. If $a, b, c$ are three natural numbers in $A P$ and $a + b + c = 21$ then the possible number of values of the ordered triplet $(a, b, c)$ is

Let $a = b - d$ and $c = b + d$ , then $a + b + c = 21$
$\Rightarrow b = 7$
So, the equation is $a + c = 14$
$∴$ No. of solution $=$ coeff. of $x^{14}$ in $(x + x^{2} + \dots .)$
$=^{13} C_{12} = 13$