A={x|kπ+0.25π≤x<kπ+0.5π,k∈Z},集合B={x|6+x-x*x≥0},求A∩B
热心网友
集合B={x|6+x-x*x≥0}所以-2<=x<=3A={x|kπ+0.25π≤x B = {x|6+x-x*x≥0} = {x|x∈[-2,3]}A={x|kπ+0.25π≤x A∩B = {x|x∈[-2,-π/2],or x∈[π/4,π/2]}热心网友
A={x|kπ+0.25π≤x<kπ+0.5π,k∈Z},集合B={x|6+x-x*x≥0},求A∩B
集合B={x|6+x-x*x≥0}所以-2<=x<=3A={x|kπ+0.25π≤x B = {x|6+x-x*x≥0} = {x|x∈[-2,3]}A={x|kπ+0.25π≤x A∩B = {x|x∈[-2,-π/2],or x∈[π/4,π/2]}热心网友