The equations of the bisectors of the lines 3x-4y+7=0 and 12x-5y-8=0 are:
A
21x+27y-131=0
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B
21x-27y+131=0
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C
99x-77y+51=0
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D
99x+77y-51=0
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Solution
The correct option is C 99x-77y+51=0 The equations of the bisectors are : 3x−4y+7√32+(−4)2=±12x−5y−8√122+(−5)2⇒3x−4y+75=±12x−5y−813⇒39x−52y+91=±(60x−25y−40)⇒21x+27y−131=0or99x−77y+51=0