math homework help
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Homework1
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Math Homework Help | Math Homework Help Service
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Sample of Math Homework Help Illustrations and Solutions:
Illustration: 1 Check whether the following are quadratic equations:
(i)x(x +1) + 8 = (x +2) (x+3) (ii) x (x+6) = 0 (iii) x + 1
=1, x 0
(iv) 4x2 + 6x + 1 =x2 + 2x + 3 (v) x2 + 1
2 = 2, x 0
Solution:
(i) x (x+1) + 8 = (x+2) (x+3)
= x2 + (x+1) + 8 = x2 +2x +3x + 6
= 4x -2 = 0 = 2x -1 = 0, which is linear, given equation is not quadratic.
(ii) x(x+6) =x2 + 6x = 0, which is a quadric equation
(iii) X +
= 1 =
+
= 1 = 2 -x +1= 0, which is a quadratic equation
(iv) 4x2 + 6x + 1 = 2+ 2x + 3 = 4x2 x2 + 6x -2x + 1-3 =0, =3x2 + 4x -2 =0 which is
a quadratic equation
(v) x2 +
= 2 =
+
= + 1 = 2x2 = x4 -2x2 + 1 =0.
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Homework1
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Which is not a quadratic equation ( 4+22 + 1 is a polynomial of degree 4)
Illustration: 2 For the quadratic equation, determine whether the given value of x is
a solution of the given quadratic equation or not. (i) 3x2-x-1 =0 ; x = -1 (ii) 6x2 +
7x-5 = 0; x =
(iii) x2+2x-2 = 0 ; x = 3 1 and 3 + 1
Solution:
Putting x = -1 on the left hand side of the given equation, we get
L.H.S = 3(1)2- (-1) = 3 + 1-1 =3 0 = 32+4X -2 =0
x = -1 is not a root of the given equation
(ii) Putting x = 1
2 on the left hand side of the left hand side of the given equation, we get
L.H.S = 6
2 + 7
1
2 -5 = 6
+
- 5 =
+
= 0 = R.H.S.
x = 1
2 is a root of the given equation.
(iii) Putting x = 3 -1 on the left hand side of the given equation, we get
L.H.S = ( 3 1)2 + 2 3 1 -2 = 3 +1 -2 3 + 2 3 -2 -2
= 4 -4 = 0 = R.H.S x = 3 + 1 is not a root of the given equation.
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Again putting x = 3 + 1 on the left hand side of the given equation, we get
L.H.S =( 3 + 1)2 + 2 3 + 1 -2 = 3 +1 +2 3 + 2 3 -2 -2
= 4 + 4 3 0 x = 3 + 1 is not a root of the given equation.
Illustration: 3 Find the value of k so that x = 2 is root of the quadratic equation
3x2-kx-2 = 0
(A.I.C.B.S.E.2002)
Solution:
Since 2 is root of the equation 3x2 kx= 0 3(2)2 - k(2)-2 =0
= 12-2k-2 = 0 = 2k = 10 and k =5
Illustration: 4 If one root of the equation 2x2 + px 15 = 0 is -5, find the value of p.
( C.B.S.E 2012)
Solution:
Since 2 is root of the equation 2x2 + px 15 = 0 2 (-5)2 + p (-5) -15 = 0= 50 5p
15 = 0 = 5p = 7
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Illustration:5 Check, whether 3 is root of the equation.
2 5 + 6 + 2 9 = 42 14 + 16
Solution:
Putting x = 3, on the L.H.S, we get
32 5(3) + 6 + 32 9 = 9 9 = 0 + 0 = 0
R.H.S = 3(3)2 14(3) + 16 = 36 42 + 16 = 62 42 = 10
L.H.S. R.H.S. x = 3 is not a root of the given equation.
Illustration: 6 Which of the following is not a quadratic equation ?
(a) X2 + 1
= 1, x 0 (b) x +
1
= 1,x 0 (c) x2 6x 4 = 0 (d) x2 8 = 0
Solution:
(a) +
= 1, = x3 + 1 =x = x3 x + 1 = 0
This is not a quadratic equation. [ x3 x + 1 is a polynomial of degree 3]
(b) x + 1
= 1 = x2 x + 1 = 0 which is a quadratic equation.
(c) ,(d) are clearly quadratic equations. (a) holds.
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Illustration: 7 Which of the following is a quadratic equation.
(a) X2 + 2x + 1 = (4-x)2 + 3 (b) -2x2 = (5-x)
(c)(K+1) x2 + 3
2x = 7, where, k = -1 (d)3-x2 = (x-1)3
Solution:
Clearly (d) holds.
Sol. Clearly (d) holds.
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