Let the limit be equal to some L
1. L = (sinx)1/x + (1/x)sinx
2. Let the two limits be equal to L1 and L2.
3. L1 = (sinx)1/x => logL1 = log(sinx) / x. as x->0, log(sinx) will tend to
-infinity, and -infinity divided by a small number tending to zero will remain -infinity. So, L1 = e-infinity = 0.
4. L2 = (1/x)sinx => logL2 = (sinx) x log(1/x) which is equal to 0 x a finite number = 0 (After applying the limit x->0). logL2 = 0 => L2 = e0 = 1.
5. Thus, the required limit is equal to L1+L2 = 0+1 = 1.
Answer is 1.
Moderation Team
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[ 0] [ (sinx)1/x + (1/x)sinx .
