高中数学,第一小题就行
ln(|2x+1|-|2x-3| ) ≤0
|2x+1|-|2x-3| >0
|2x+1|>|2x-3|
(2x+1)^2 >(2x-3)^2
4x+1>-12x+9
16x>8
x>1/2 (1)
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ln(|2x+1|-|2x-3| ) ≤0
|2x+1|-|2x-3| ≤1
case 1: x<-1/2
|2x+1|-|2x-3| ≤1
-(2x+1)-(2x-3) ≤1
-4x+2 ≤1
x≥1/4
case 1: 舍去
case 2: -1/2≤x<3/2
|2x+1|-|2x-3| ≤1
(2x+1)+(2x-3) ≤1
4x-2≤1
x≤3/4
solution for case 2: -1/2≤x≤3/4
case 3: x≥3/2
|2x+1|-|2x-3| ≤1
(2x+1)-(2x-3) ≤1
4≤1
case 3: 舍去
ie
-1/2≤x≤3/4 (2)
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ln(|2x+1|-|2x-3| ) ≤0
(1) and (2)
x>1/2 and -1/2≤x≤3/4
1/2<x≤3/4