(tan12+tan33)/1-tan12tan33

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(tan12+tan33)/1-tan12tan33(tan12+tan33)/1-tan12tan33(tan12+tan33)/1-tan12tan33根据tan(α+β)=(tanα+tanβ)

(tan12+tan33)/1-tan12tan33
(tan12+tan33)/1-tan12tan33

(tan12+tan33)/1-tan12tan33
根据tan(α+β)=(tanα+tanβ)/(1-tanαtanβ)
∴原式=tan(12°+33°)
=tan45°=1