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Solution 2.2:3d

From Förberedande kurs i matematik 1

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There are no common factors on the left-hand side which we can take out, so we choose to expand the three terms on the left-hand side

x2−3

14x+21

12x−32

12x+31

12x−31

=x2

14x−x2

21−3

14x−3

21=12x2+x1−34x−23=12x2+14x−23

=1(2x)2−2

12x

32+

2=14x2−23x+94

difference of two squares

=1(2x)2−132=14x2−91.

Collecting up terms, the left-hand side becomes

12x2+14x−23

−

14x2−23x+94

−

14x2−91

21−41−41

1x2+

41+32

x1+

−23−94+91

=42−1−11x2+3

43+2

4x1+2

9−3

9−4

2+1

2=113

x1−332

and because 33=311, 9=33 and 4=22, the whole equation can rewritten as

113

x1−3

112

3=0.

Taking out common factors, we get

113

12x−1

and then we see that the equation has the solution x=12.

Finally, we substitute x=12 into the original equation to check that we have calculated correctly.

221−3

21+21

−

21−32

2−

21+31

21−31

=(4−3)

21+21

−

1−32

2−

1+31

1−31

=1−

2−34

32=1−91−98=0.

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Solution 2.2:3d

From Förberedande kurs i matematik 1