※ 引述《Qinminstrel (容小与)》之铭言:
: 明天就要一战GMAT了,刚刚做了一次模拟,真的很沮丧,只有610,比报名时候完全没
: 准备的第一次模拟还要低...唉,不知道这一整个寒假的准备会不会有成果.而且更心酸
: 的是数学错了好多...不知道是不是脑子坏掉,现在都没什么自信了...
: 烦请大家帮忙解释下这几题,实在不太会...谢谢
: 1.If n is a positive integer and the product of all the integers from 1 to n,
: inclusive, in a multiple of 990, what is the least possible value of n?
: a. 10
: b. 11
: c. 12
: d. 13
: e. 14
990 = 2 x 3^2 x 5 x 11
也就是说 如果从 1 开始乘,
分解之后需要有上面因式分解的元素
其中的 1 个 2, 2 个 3, 1 个 5 都很快的就可以得到,
但至少要乘到 11 才可以得到 11
本月类似题为:
91、有一题好像是6^n能被18!整除,但6^(n+1)不能被18!整除,
求n值。题目没有应该没有记错。选项都是几十几十的数,具体不记得了。
Donz
18! 中有 3 的部分为 3, 6, 9, 12, 15, 18
其中 9, 18 可以分解出2个 3,所以总共 8 个 3
可以最大整除 6^8 n = 8
(2 有更多,所以不必算)
: 2.
: 7.51 8.22 7.86 8.36 8.09 7.83
: 8.30 8.01 7.73 8.25 7.96 8.53
: A vending machine is designed to dispense 8 ounces of coffee into a cup. After
: a test that recorded the number of ounces of coffee in each of 1000 cups dispensed
: by the vending machine, the 12 listed amounts, in ounces, were selected from
: the data. If the 1000 recorded amounts have a mean of 8.1 ounces and a std dev
: of 0.3 ounce, how many of the 12 listed amounts are within 1.5 std dev of the mean?
: a. 4
: b. 6
: c. 9
: d. 10
: e. 11
std = 0.3,所以 1.5 std 为 0.45
就找出和 8.1 距离在 0.45 之内的点就好了
7.65 ~ 8.55 只有 7.51 不合
: 3. For a certain race, 3 teams were allowed to enter 3 members each. A team earned
: 6-n points whenever one of its members finished in nth place, where 1<=n<=5.
到这里一定要看的懂句意,意思为三队有一堆选手比赛
前五名的分数为 5, 4, 3, 2, 1
: There were no ties, disqualifications, or withdrawals. If no team earned more than
: 6 points, what is the least possible score a team could have earned?
: a. 0
: b. 1
: c. 2
: d. 3
: e. 4
因为此比赛最多就这五个分数了 总和为 15
得分最少的队伍,会发生在前两队得到最多分的情况
就是 6 分 (1, 5) (2, 4)
所以得分最少的队伍,也至少有 3 分可拿
: 1﹣3答案分别是
: b.11
: e.11
: d.3
: 不是很理解,想请教下为什么?
: 先谢谢:)