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If in a #DeltaABC,cosAcosB+sinAsinBsinC=1# then show that #a:b:c=1:1:sqrt2#

1 Answer
P dilip_k
Jun 5, 2018

Given
#cosAcosB+sinAsinBsinC=1#
#=>cosAcosB+sinAsinB-sinAsinB+sinAsinBsinC=1#

#=>cos(A-B)-sinAsinB(1-sinC)=1#

#=>1-cos(A-B)+sinAsinB(1-sinC)=0#
#=>2sin^2((A-B)/2)+sinAsinB(1-sinC)=0#

Now in above relation the first term being squared quantity will be positive.In the second term A,B and C all are less than
#180^@# but greater than zero.
So sinA ,sinB and sinC all are positive and less than 1.So the 2nd term as a whole is positive.
But RHS=0.
It is only possible iff each term becomes zero.

When #2sin^2((A-B)/2)=0#
then#A=B#

and when 2nd term=0 then
#sinAsinB(1-sinC)=0#

0< A and B <180
#=>sinA !=0and sinB!=0#

So #1-sinC=0=>C=pi/2#

So in triangle ABC
#A=B and C=pi/2->"the triangle is right angled and isosceles"#

Side #a=band angleC=90^@#

So#c=sqrt(a^2+b^2)=sqrt(a^2+a^2)=sqrt2a#

Hence #a:b:c=a:2a: sqrt 2a=1:1:sqrt2#

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