QUESTION IMAGE
Question
- evaluate the following integral:
\int \cos x \ln(\sin x) dx
Step1: Substitution
Let \( u = \sin x \), then \( du = \cos x \, dx \). The integral becomes \( \int \ln(u) \, du \).
Step2: Integration by parts
For \( \int \ln(u) \, du \), let \( v = \ln(u) \), \( dw = du \). Then \( dv = \frac{1}{u} du \), \( w = u \). By integration by parts formula \( \int v \, dw = vw - \int w \, dv \), we get \( u\ln(u) - \int u \cdot \frac{1}{u} du = u\ln(u) - \int 1 \, du \).
Step3: Evaluate remaining integral
\( \int 1 \, du = u + C \), so \( u\ln(u) - u + C \).
Step4: Substitute back
Replace \( u \) with \( \sin x \), we have \( \sin x \ln(\sin x) - \sin x + C \).
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\( \sin x \ln(\sin x) - \sin x + C \)