y等于x的平方减x加3除以x的平方减x加1?
也就是y=x²-x+3/x²-x+1?
没有括号什么的?
个人感觉,应该是y=(x²-x+3)/(x²-x+1)吧?
如果是的话:
y=(x²-x+3)/(x²-x+1)
y=(x²-x+1+2)/(x²-x+1)
y=(x²-x+1)/(x²-x+1)+2/(x²-x+1)
y=1+2/(x²-x+1)
对于x²-x+1,有:
x²-x+1=(x-1/2)²+3/4
可见:x²-x+1≥3/4
所以:2/(x²-x+1)≤2/(3/4)=8/3
因此:y=1+2/(x²-x+1)≤1+8/3=11/3
故,所求值域为:y∈(∞,11/3].