为了培养学生的环境保护意识,某校组织课外小组对该市作空气含尘调查,下面是一天每隔2小时测得的数据:0.03,0.04,0.03,0.02,0.04,0.01,0.03,0.03,0.04,0.05,0.01,0.03(单位:克/立方米).
(1)求出这组数据的众数和中位数;
(2)若国家环保局对大气飘尘的要求为平均值不超过每立方米0.025克,问这天该城市的空气质量是否符合国家环保局的要求?
(3)为了提高该城市的空气质量,请你提出两条建议.
网友回答
解:(1)从小到大排列:0.01,0.01,0.02,0.03,0.03,0.03,0.03,0.03,0.04,0.04,0.04,0.05,
∴众数是0.03克/立方米,中位数是0.03克/立方米;
(2)平均数=(0.01+0.01+0.02+0.03+0.03+0.03+0.03+0.03+0.04+0.04+0.04+0.05)÷12=0.03克/立方米.
因为0.03>0.025,所以不符合国家环保局的要求.
(3)加强绿化,提高城市的绿化率;加强工厂的管理,提高工厂排放标准.
解析分析:众数就是出现次数最多的数,中位数是大小处于中间位置的数,本组中共有12个数,中位数就是中间两个数的平均数;把这12个数求和,再除以总个数就得到平均数,把这个数与国家标准进行比较就可以得到结论.
点评:理解众数,中位数,平均数的概念是解决本题的关键.