Could someone pls prove this inequality? (2 Viewers)

Octavius

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Oh I didn't realise that you were allowed to just move things around and prove. I thought you had to either use LHS - RHS or using the AM/GM inequality
 

idkkdi

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Oh I didn't realise that you were allowed to just move things around and prove. I thought you had to either use LHS - RHS or using the AM/GM inequality

I would do this q the calculus way. LHS - RHS, then use derivatives and graphical reasoning to prove LHS - RHS >= 0 for x>= 0.
 
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idkkdi

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so then would i write
rx >= 1
x>=0 which is true since given that x>=0?
rx (x-1) >= x-1,

we need to take two cases here, since x-1 might be negative and we would then get
rx<=1
which would still end in x>= 0.

So I guess it is valid haha.
 

idkkdi

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rx (x-1) >= x-1,

we need to take two cases here, since x-1 might be negative and we would then get
rx<=1
which would still end in x>= 0.

So I guess it is valid haha.
I retract my following statement.

We would need to take three cases.
x-1 may be 0. In which case, we can't divide and we would need to check if x =1 works for the beginning statement, which it does.
 

4321suomynona

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this is my solution
x√(x) + 1 >= x + √x
x√x - √x >= x - 1
√x (x-1) >= x-1
√x >= 1
x >= 1
(x-1) >= 0 (for x is real and x>1) and x-1 <= 0 (for x is real and x is between 0 and 1)
 

idkkdi

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this is my solution
x√(x) + 1 >= x + √x
x√x - √x >= x - 1
√x (x-1) >= x-1
√x >= 1
x >= 1
(x-1) >= 0 (for x is real and x>1) and x-1 <= 0 (for x is real and x is between 0 and 1)
Need to look at cases for when you divide x-1 as said above.
 

5uckerberg

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For inequalities, one of the good strategies would be to move everything onto one side and then factorise the problem.
 

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