Vì \(\left|a\right|\le1;\left|b-1\right|\le2\)
\(=>\left|a\right|\cdot\left|b-1\right|=\left|ab-a\right|\le2\)
Áp dụng BĐT \(\left|x\right|+\left|y\right|\ge\left|x+y\right|\) ta có:
\(\left|a-c+ab-a\right|\le\left|a-c\right|+\left|ab-a\right|=2+3=5\)
\(=>\left|ab-c\right|\le5\)