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f(2x+1)定义域为[1,2]
即1<=x<=2
2<=2x<=4
所以3<=2x+1<=5
所以f(x)定义域[3,5]
则f(3x+1)中有3<=3x+1<=5
2<=3x<=4
2/3<=x<=4/3
所以定义域 [2/3,4/3]
即1<=x<=2
2<=2x<=4
所以3<=2x+1<=5
所以f(x)定义域[3,5]
则f(3x+1)中有3<=3x+1<=5
2<=3x<=4
2/3<=x<=4/3
所以定义域 [2/3,4/3]
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