Theo định lí cô sin ta có:
\({c^2} = {a^2} + {b^2} - 2ab\cos C\)\( = {7^2} + {23^2} - 2.7.23.\cos {130^0} \approx 785\)
\( \Rightarrow c \approx 28(cm)\). Theo định lí sin ta có:
\(\dfrac{a}{{\sin A}} = \dfrac{c}{{\sin C}}\)\( \Rightarrow \sin A = \dfrac{{a{\mathop{\rm sinC}\nolimits} }}{c} = \dfrac{{7.\sin {{130}^0}}}{{28}} \approx 0,1915\)
Vậy \(\widehat A \approx {11^0}2'\)
\(\widehat B = {180^0} - (\widehat A + \widehat C)\)\( \approx {180^0} - ({11^0}2' + {130^0}) = {38^0}58'\)
