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How do you solve #2p = sqrtp+5#?

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Konstantinos Michailidis

Oct 6, 2015

Set #p=t^2>=0# hence we have that

#2t^2=sqrt(t^2)+5=>2t^2=t+5=>2t^2-t-5=0=> t=1/4(1+sqrt41)#

hence #p=t^2=1/8(21+sqrt41)#

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