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Looking at the equation the rhs is likely >1 so x is negativeSubs x=-a2^a= 6-aNow lhs is monotonic Increasing.and rhs is monotonic decreasing so there is one solution 2^a= 6-aa=2 is a solutionx=-2 is the only solution.
Very nice! ❤
Big fan
Thank you so much! ❤
Guessing 2^-1*(x+6)^-1 =1 >>>> can be solution as well.
@@SALogics Learning from your lessons for using function of W in right direction.Thanks !
2^(-x)=x+6⇔2^(-x)-x=6=4+2=2²+2. -x:=t. 2^t+t=2²+2⇔t=2⇔x=-2.
At the second step, why did you write 1 instead of 1 raised to the power x?
Any power of 1 = 1 ❤
(1/2)^{-2}=4
2^-×=×+6=>1=(×+6)e^ln2(×)=>2^6.=(×+6)Ln e^ln2(×).e^Ln2(6)=>W{4ln2.e^ln2^4}={(×+6)Ln 2 .e^ln2(×+6)}From W(a.e^a)=a4ln2=×+6)Ln2=>4-6=×=-2
Looking at the equation the rhs is likely >1 so x is negative
Subs x=-a
2^a= 6-a
Now lhs is monotonic Increasing.
and rhs is monotonic decreasing so there is one solution
2^a= 6-a
a=2 is a solution
x=-2 is the only solution.
Very nice! ❤
Big fan
Thank you so much! ❤
Guessing 2^-1*(x+6)^-1 =1 >>>> can be solution as well.
Very nice! ❤
@@SALogics Learning from your lessons for using function of W in right direction.
Thanks !
2^(-x)=x+6⇔2^(-x)-x=6=4+2=2²+2. -x:=t. 2^t+t=2²+2⇔t=2⇔x=-2.
Very nice! ❤
At the second step, why did you write 1 instead of 1 raised to the power x?
Any power of 1 = 1 ❤
(1/2)^{-2}=4
Very nice! ❤
2^-×=×+6
=>1=(×+6)e^ln2(×)
=>2^6.=(×+6)Ln e^ln2(×).e^Ln2(6)
=>W{4ln2.e^ln2^4}
={(×+6)Ln 2 .e^ln2(×+6)}
From W(a.e^a)=a
4ln2=×+6)Ln2
=>4-6=×=-2
Very nice! ❤