How do you prove limit of #14-5x=4# as #x->2# using the precise definition of a limit?

1 Answer
Matt B.
Dec 10, 2016

Using #epsilon-delta# definition of limits:

#14-5x=4=>10-5x=0#

Let #f(x)=10-5x#

Thus:

#lim_(x->2)10-5x=0#

Algebraically, this makes sense; yet we want to prove this using the precise definition of a limit.

Since the general formula looks like:

#lim_(x->a)f(x)=L#

This implies that:

#forallepsilon>0, existsdelta>0# such that

#0<|x-a|< delta=>|f(x)-L| < epsilon#

This means that as we pick an interval on the x-axis that is close to #a#there will be an interval on the y-axis that is close to #L#.

So, if we plug in the values we know:

#0<|x-2|< delta =>|(10-5x)-0|< epsilon#

We want to manipulate #|f(x)-L|< epsilon#
so that it can represent #delta# as a function of #epsilon#.

#|10-5x|< epsilon => |-5||x-2|< epsilon=> |x-2|< epsilon/5#

Now they look similar and we can see that #delta = epsilon/5#

This gives us a ratio for when you're given a distance from #L# (or an error tolerance).

So, lets choose #delta = epsilon/5# and plug it back into our delta function.

#0<|x-2|< epsilon/5#

#0<5|x-2|< epsilon#

#0<|5x-10|< epsilon => |f(x)-L|< epsilon#

That concludes our proof.

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