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Question
If `x = log 2/3, y = log 3/7, z = log 7/2`, find the value of x + y + z.
Sum
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Solution
Given: `x = log (2/3), y = log (3/7), z = log (7/2)`
Step-wise calculation:
1. `x + y + z = log(2/3) + log(3/7) + log(7/2)`
2. Use log addition:
`log [(2/3) xx (3/7) xx (7/2)]`
3. Multiply and cancel:
`(2/3) xx (3/7) xx (7/2) = 1`
4. Therefore x + y + z = log (1) = 0.
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Chapter 7: Logarithms - Exercise 7B [Page 146]
