let Delta=|[1,sintheta,1],[-sintheta,1,s...

let `Delta=|[1,sintheta,1],[-sintheta,1,sintheta],[-1,-sintheta,1]| , 0 <= theta <=2pi`

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Let A=|[1,sintheta,1],[-sintheta,1,sintheta],[-1,-sintheta,1]|, where 0lt=thetalt=2pi . Then

Let A=|[1,sintheta,1],[-sintheta,1,sintheta],[-1,-sintheta,1]|, where 0lt=thetalt=2pidot Then

Let Delta=|(1,sintheta,1),(-sin theta,1,sintheta),(-1,-sintheta,1)| , then Delta lies in the interval.

Let A = [[1,sintheta,1],[-sintheta,1,sintheta],[-1,-sintheta,1]], where 0lethetale2pi Then :

Answer the following: In which inverval does the determinant A = [[1,sintheta,1],[-sintheta,1,sintheta],[-1,-sintheta,1]] lie?

Let A = [[1,Sintheta,1],[-Sintheta,1,Sintheta],[-1,-Sintheta,1]] , where 0 lethetale2pi Then

If Delta=|{:(1,sintheta,1),(-sintheta,1,sintheta),(-1,-sintheta,1):}|"prove that" 2lt=Deltalt=4.

If Delta=|{:(1,sintheta,1),(-sintheta,1,sintheta),(-1,-sintheta,1):}|"prove that" 2lt=Deltalt=4.

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