How do you evaluate #arcsin (sin(3pi)) #?

1 Answer
Zor Shekhtman
Sep 16, 2015

#arcsin(sin(3pi))=0#

Explanation:

Let's start with a definition of a function #arcsin(x)#.
First of all, it's an angle, sine of which equals to #x#.
That is, #sin(arcsin(x))=x#

But there are many angles with the same value of their sine since function #sin()# is periodical. Function cannot have more than one value for any value of an argument. To resolve this problem of multiple values, only values from #-pi/2# to #pi/2# are considered values of function #arcsin()#.

So, we have to find an angle in the intervalС любимыми не расставайтесь! sine of which equals to the same value as #sin(3pi)#.

The latter equals to zero. In the interval #-pi/2# to #pi/2# there is such an angle, it's #0#, because
#sin(0 = sin(3pi) = 0#

Therefore, #arcsin(sin(3pi))=0#

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