∫ydcos(x^2)+cos(x^2)dy= ∫y[cos(x^2)]'dx+cos(x^2)dy ∂ P Q ∂p/∂y=∂Q/ ∂x所以与积分路径无关,因此将 L取为从(0,-b) 到(0,b)的直线段,此时dx=dcos(x^2)=0,所以I=∫Lcos(x^2)dy=cos(x^2)*y|上限:(0,b)下限...
