标题:
jj zhong jie --help!
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作者:
andrewcan
时间:
2002-11-15 03:06
标题:
jj zhong jie --help!
I doubt the original keys from jj, anyone please give instruction: THanKs!
171.set S 有240项,问第239项是多少
(1)除第一项外,每项都比前一项少4
(2)239项和第一项差952
168.X=K^4 ,K是正整数,X被32除后余数是0。问K被32整除,余数可能是:(1)2,(2)4,(3)6
130.一个数列,A1=2,A2=-3,A3=5,A4=-1,以后An=An-4,问数列的前97项和是多少?
作者:
mihu
时间:
2002-11-15 05:02
168. Key is (2)
X = 32m = 2^4 * 2m = 2^4 * 2^4 * n^4 = K^4
so K = 4*n
since K and 32 both have factor 4, so 余数 must have a factor 4
choose (2)
note: 1. m is a whole number
2. since X = K^4, so 2m must be a form of 2^4 * n^4, n is a whole number
what is JJ's key?
[此贴子已经被作者于2002-11-15 5:02:58编辑过]
作者:
andrewcan
时间:
2002-11-16 00:34
many thanks, Mihu.
your key to 168 agrees with the jj key: 4.
the other two: for 130:74; for 171: D.
I still do not quite understand the above two.
作者:
tongxun
时间:
2002-11-16 01:04
171、E。因为没有具体的数值可供计算。
130、题干应该是An=A(n-4)。
所有的数字,每4个循环一次。97/4 =24 余 1,
每4项相加=5,则24*5=120,
余1,应为2,
所以和=120+2=122
作者:
andrewcan
时间:
2002-11-16 23:31
thanks a lot Tongxun!
作者:
mihu
时间:
2002-11-17 00:18
* a shortcut to 168: assume X=64, then K=4, so 4 mod 32 = 4, choose (2).
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