已知分段函数f(x)=-x+1,x小于0;f(x)=x-1,x大于等于0,则不等式x+(x+1)f(x+1)小于等于1的解集是
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答:
x<0,f(x)=-x+1
x>=0,f(x)=x-1
x+(x+1)f(x+1)<=1
(x+1)+(x+1)f(x+1)<=2
令t=x+1,则t+tf(t)<=2
1)
t<0时,t+t(-t+1)<=2
-t^2+2t<=2
t^2-2t+2>=0恒成立
所以:t=x+1<0
解得:x<-1
2)
t>=0时,t+t(t-1)<=2
t^2<=2
0<=t<=√2
所以:0<=t=x+1<=√2
解得:-1<=x<=√2-1
综上所述,不等式的解为x<=√2-1
x<0,f(x)=-x+1
x>=0,f(x)=x-1
x+(x+1)f(x+1)<=1
(x+1)+(x+1)f(x+1)<=2
令t=x+1,则t+tf(t)<=2
1)
t<0时,t+t(-t+1)<=2
-t^2+2t<=2
t^2-2t+2>=0恒成立
所以:t=x+1<0
解得:x<-1
2)
t>=0时,t+t(t-1)<=2
t^2<=2
0<=t<=√2
所以:0<=t=x+1<=√2
解得:-1<=x<=√2-1
综上所述,不等式的解为x<=√2-1
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