UMD Analysis Qualifying Exam/Jan11 Real: Difference between revisions

Since ${\displaystyle f}$ is (absolutely) continuous on [0,1] with ${\displaystyle f>0}$ then there exists some ${\displaystyle 0<m=\underset{x\in [0,1]}{\min }f(x)}$.

Since ${\displaystyle f\in AC[0,1]}$ then for any ${\displaystyle ϵ>0}$ there exists some ${\displaystyle \delta >0}$ such that for any finite collection of disjoint intervals ${\displaystyle I_k=(x_k,y_k),k=1,...,n}$ such that if ${\displaystyle {\displaystyle \sum _{k=1}^n}|y_k-x_k|<\delta }$ then ${\displaystyle {\displaystyle \sum _{k=1}^n}|f(y_k)-f(x_k)|<ϵm^2}$.

Then for any such collection of intervals described above, we have ${\displaystyle {\displaystyle \sum _{k=1}^n}|\frac{1}{f(y_k)}-\frac{1}{f(x_k)}={\displaystyle \sum _{k=1}^n}|\frac{f(x_k)-f(y_k)}{f(y_k)f(x_k)}|\le {\displaystyle \sum _{k=1}^n}\frac{1}{m^2}|f(y_k)-f(x_k)|<ϵ}$.

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