Determine whether the given function is odd or even

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chwala
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Homework Statement
consider the function:

##f(x)=x^3+3x−1##
Relevant Equations
odd or even functions concept
##f(x)=x^3+3x−1##
 
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Ok this was a question i saw on one paper...i will post the question and corresponding solution here:

1625797879307.png

1625797906375.png


which is fine with me, i can follow the steps.
My question is, ...is the question also analogous in asking whether the function is even or odd? in that case,
can one use ##f(-x)=-f(x)##? the function is not an even function because
##f(-x) ≠ f(x)##

on the other hand,
##f(-x)=-x^3-3x-1##
##-f(x)=-x^3-3x+1##=##-(x^3+3x)-1##...=##-f(x)## looks a bit interesting...
 
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chwala said:
My question is, ...is the question also analogous in asking whether the function is even or odd? in that case,
can one use ##f(-x)=-f(x)##? the function is not an even function because
##f(-x)=f(x)##

on the other hand,
##f(-x)=-x^3-3x-1##
##-f(x)=-x^3-3x+1##=-(x^3+3x)-1##...=-f(x)## looks a bit interesting...
##-f(x) \ne f(-x) ##, so ##f## is not an odd function.

That should answer your question. The function is neither an odd nor even function.
 
interesting, good learning point ,noted... thanks Sammy. My last deduction
##-f(x)=-x^3-3x+1##=##-(x^3+3x)-1##=##-f(x)## was not correct.
 
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If the given function had been ##f(x) = x^3 + 3x##, it's easy to show that this is an odd function by use of the definition. Additionally, both ##x^3## and ##3x##, taken as functions on their own, are odd functions (i.e., their own reflection across the origin), and their sum is also an odd function.

However, ##f(x) = x^3 + x - 1 ## is neither odd nor even, as has already been shown. The last term, ##-1##, taken on its own, is an even function, and this prevents ##f(x) = x^3 + x - 1 ## from being its own reflection across the origin and across the y-axis, so it is neither odd nor even.
 
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Mark44 said:
If the given function had been ##f(x) = x^3 + 3x##, it's easy to show that this is an odd function by use of the definition. Additionally, both ##x^3## and ##3x##, taken as functions on their own, are odd functions (i.e., their own reflection across the origin), and their sum is also an odd function.

However, ##f(x) = x^3 + x - 1 ## is neither odd nor even, as has already been shown. The last term, ##-1##, taken on its own, is an even function, and this prevents ##f(x) = x^3 + x - 1 ## from being its own reflection across the origin and across the y-axis, so it is neither odd nor even.
Mark just confirm, last term##-1## is an even function? am not getting this...
It is a constant and not a function...clarify on this.
 
ok, i will take this with a grain of salt, new to me :cool: . ##g## is a function of ##x##, of which clearly ##-1## is not. I guess maybe i need to check more on this delta.
 
chwala said:
ok, i will take this with a grain of salt, new to me :cool: . ##g## is a function of ##x##, of which clearly ##-1## is not. I guess maybe i need to check more on this delta.
ehm any constant number can be considered to be function of any variable, for example -1 can be considered to be a constant function of x, ##g(x)=-1## and also a constant function of z ##h(z)=-1##.
 
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chwala said:
ok, i will take this with a grain of salt, new to me :cool: . ##g## is a function of ##x##, of which clearly ##-1## is not. I guess maybe i need to check more on this delta.
chwala,
Maybe this helps.

Write the constant function, ##g(x)=-1## in slope-intercept form.

##g(x)=0\cdot (x)-1##
 
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thanks new to me though:oldlaugh:, cheers