H**F
发帖数: 177 | 1 从下面开始看, 日本地震, 9日开始小震,11日高潮,到现在还在不停的震,再抖啊
抖的日本会不
会沉?
Link: http://neic.usgs.gov/neis/qed/
2011/03/17 23:11:40 38.99N 142.60E 45 4.8 NEAR THE EAST
COAST OF HONSHU, JAPAN
2011/03/17 23:01:26 36.47N 143.95E 39 4.8 OFF THE EAST
COAST OF HONSHU, JAPAN
2011/03/17 21:24:24 39.09N 142.27E 59 4.8 NEAR THE EAST
COAST OF HONSHU, JAPAN
2011/03/17 21:18:25 37.84N 139.89E 57 4.7 EASTERN HONSHU,
JAPAN
2011/03/17 21:06:31 35.69N 141.28E 41... 阅读全帖 |
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r****z
发帖数: 12020 | 2 可以证明。
从熊大的公式开始,先作基本假设:A、B、n 都为正整数,于是有
(4B+5A)=41n 和 AB=60n
可以给出 A、B 上限:
4B>=41n/2 -> B>=41n/8=41AB/(8*60) -> A<=480/41=11.7... -> A<=11
或者
5A>=41n/2 -> A>=41n/10=41AB/(10*60) -> B<=600/41=14.6... -> B<=14
另从原题目,可以给出 A、B 下限:
4/A<4/A+5/B=41/60 -> A>240/41=5.9... -> A>=6
5/B<4/A+5/B=41/60 -> B>300/41=7.3... -> B>=8
所以只要要求 A、B、n 都为正整数,结果就是有限的,只有十三种组合,穷举去掉非
整数解就可以了:
要么 A 从 6 到 11,同时 B 为整数(情形 A=6,B=300)
要么 B 从 8 到 14,同时 A 为整数(情形 A=15,B=12) |
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l*******s
发帖数: 7316 | 3 4B+5A=41n
所以41n分成1个5倍数加1个4的倍数。
:谢谢思路。为什么有一个需要是5的倍数?
: |
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s**********x
发帖数: 4593 | 4 The victim drove his black Honda Civic onto exit 41N in Jericho, L.I., about
4:15 am. and drove east into the westbound lanes.
He crashed into an oncoming silver Mercedes
The wrong-way driver died at the scene, cops said, and his passenger was
hospitalized in serious condition.
The driver of the Mercedes was hospitalized in stable condition
泥马凭啥honda车一死一重伤
奔驰才in stable condition啊
不是对撞吗 |
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l*******s
发帖数: 7316 | 5 我也给个思路
4B+5A 41n
------------- = -------
AB 60n
:这题大概思路是这样(至少我这么想的):因为分子一个是 4,一个是 5,所以和为
:41 的两个数一个应该是 5 的倍数或约数,一个是 4 的倍数或约数,但这两个数里不 |
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