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How do you evaluate the limit #(2p+4)/(3p)# as p approaches #-2#?

1 Answer

Jim H · Steve M

Dec 5, 2016

Essentially, by Subsitution.

Explanation:

As #p# approaches #-2# the denominator does not go to #0#, so we can simply say:

As #p rarr-2 =>2p+4 rarr 2(-2) + 4 = 0# and #3p rarr -6#, so

#(2p+4)/(3p) rarr 0/(-6) = 0#

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