求大神解决不定积分dy/dx=(1-y)^0.92

问题描述:

求大神解决不定积分dy/dx=(1-y)^0.92

dy/(1-y)^0.92=dx
(1-y)^(-0.92)dy=dx
积分
(1-y)^(1-0.92)/(1-0.92)=x+C'
(1-y)^0.08=0.08x+0.08C'=0.08x+C
y=1-(0.08x+C)^12.5��л����ſ����ˡ�������(1-y)^(-0.92)dy=dx���������(1-y)^(1-0.92)/(1-0.92)=x+C'��һ�����Dz���ǰ�滹�и����ŵİ�-(1-y)^(1-0.92)/(1-0.92)=x+CŶ���Բ������е����Ӧ����y=1-(-0.08x+C)^12.5