一次函数y=kx+b的自变量的取值范围是-3≤x≤6,相应函数值的取值范围是-5≤y≤-2,求这个一次函数的解析式
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因为一次函数本身就是一个单调的函数,要么递增,要么递减,在定义域取值的两头取得最大值和最小值,但是这题没有说明K是大于0还是<0,所以只能分类
当k>0时,函数是递增的,这个时候满足-3k+b=-5,6k+b=-2,解得k=1/3,b=-4
此时的函数解析式为y=1/3x-4
当k<0时,函数是递减得,这个时候满足-3k+b=-2,6k+b=-5,解得k=-1/3,b=-3
此时的函数解析式为y=-1/3x-3
k=0的时候我没有考虑,因为k是不可能为0的,为0了函数就不存在单调性了
别看我写这么多,其实过程很简单,希望对你有帮助
当k>0时,函数是递增的,这个时候满足-3k+b=-5,6k+b=-2,解得k=1/3,b=-4
此时的函数解析式为y=1/3x-4
当k<0时,函数是递减得,这个时候满足-3k+b=-2,6k+b=-5,解得k=-1/3,b=-3
此时的函数解析式为y=-1/3x-3
k=0的时候我没有考虑,因为k是不可能为0的,为0了函数就不存在单调性了
别看我写这么多,其实过程很简单,希望对你有帮助
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-5<=y<=-2
所以-5<=kx+b<=-2
-5-b<=kx<=-2-b
1、当k>0时-5-b/k<=x<=-2-b/k
此时-5-b/k=-3
-2-b/k=6
k=1/3
b=-4
2、当k<0时-2-b/k<=x<=-5-b/k
-2-b/k=-3
-5-b/k=6
所以,k=-1/3
b=-3
所以-5<=kx+b<=-2
-5-b<=kx<=-2-b
1、当k>0时-5-b/k<=x<=-2-b/k
此时-5-b/k=-3
-2-b/k=6
k=1/3
b=-4
2、当k<0时-2-b/k<=x<=-5-b/k
-2-b/k=-3
-5-b/k=6
所以,k=-1/3
b=-3
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1 如果k≥0
-5=-3×k+b
-2=6×k+b
解得 k=1/3 b=-4
解析式为y=x/3-4
2 如果k<0
-5=6×k+b
-2=-3×k+b
解得 k=-1 /3 b=-3
解析式为y=-x/3-3
-5=-3×k+b
-2=6×k+b
解得 k=1/3 b=-4
解析式为y=x/3-4
2 如果k<0
-5=6×k+b
-2=-3×k+b
解得 k=-1 /3 b=-3
解析式为y=-x/3-3
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y=1/3x-4 或是y=-1/3x-3
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