Science

Math

Humanities

... and beyond

Socratic Meta
Featured Answers

Topics

How do you evaluate #[cos(arccos (3/5) - arcsin (4/5))]#?

1 Answer

Oct 27, 2015

#arccos(3/5) = arcsin(4/5)# so this is just #cos(0) = 1#

Explanation:

#3^2+4^2=5^2#

So a #3,4,5# triangle is a right angled triangle.

enter image source here

#arccos(3/5) = B = arcsin(4/5)#

So: #cos(arccos(3/5)-arcsin(4/5)) = cos(0) = 1#

Related questions

See all questions in Basic Inverse Trigonometric Functions

Impact of this question

4589 views around the world

You can reuse this answer
Creative Commons License