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In triangle ABC, <A and <B are complementary, where cos A=0.68. What is the value of the sine of angle B? ​
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In triangle ABC, <A and <B are complementary, where cos A=0.68. What is the value of the sine of angle B? ​

User Sherb
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1 Answer

3 votes

Answer:

sin B = 0.68

Explanation:

sin(angle) = cos(complement)

since ∠ A and ∠ B are complementary , then

sin B = cos A = 0.68

User Charan Tej
by
7.8k points
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