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发表于 10-4-2010 02:43 PM
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谁有Oxford Fajar Ace Ahead的书?
有的话帮忙我解决quick check 1.4 No.5,谢谢! |
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发表于 10-4-2010 03:57 PM
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回复 222# yhuai
you mean those 4 questions? well basically it's like this
a) z*-z = 1+2i - ( 1-2i)
= 4i
b) zz* = (1+2i)(1-2i)
= 1+4
= 5
c ) z/z* = (1-2i)/(1+2i) = (-3-4i)/5 { since the denominator has surd, eliminate them by using conjugation}
d )(1/z)* =1/1-2i
= (1-2i)/5 { since the denominator has surd, eliminate them by using conjugation} |
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发表于 10-4-2010 07:03 PM
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本帖最后由 whyyie 于 10-4-2010 07:06 PM 编辑
回复 222# yhuai
又是这题啊...答案应该是错了
你有没有做到 x dv/dx = - (v^2+1) / (v+1)? |
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发表于 10-4-2010 09:34 PM
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回复 yhuai
又是这题啊...答案应该是错了
你有没有做到 x dv/dx = - (v^2+1) / (v+1)?
whyyie 发表于 10-4-2010 07:03 PM 
有啊,我有做到这里! |
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发表于 10-4-2010 10:37 PM
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发表于 11-4-2010 05:05 PM
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发表于 11-4-2010 06:19 PM
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can anyone helps me to do Oxford Fajar Ace Ahead quick check 3.3 question no.13? |
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发表于 11-4-2010 07:02 PM
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发表于 11-4-2010 07:02 PM
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发表于 11-4-2010 07:02 PM
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发表于 11-4-2010 07:02 PM
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卡帖~~~~~~~~~~~~~~~~~~~~~~~~·· |
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发表于 11-4-2010 08:44 PM
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can anyone helps me to do Oxford Fajar Ace Ahead quick check 3.3 question no.13?
changod 发表于 11-4-2010 06:19 PM 
(对不起,没用中文)
to prove similarity:
based on question:
Statement: Reason:
1. angle QPR = angle YPZ -Identity/same in triangle.
2. PQ/ PZ = PR/PY -PQ.PY = PR. RZ (given in the question)
Therefore: one equal angle and ratio of 2 corresponding sides are also equal
Hence, PQR and PZY are similar.
Given YZ=2QR
then YZ : QR = 2 : 1
Area of PZY : Area of PQR = 4 : 1
Quadrilateral YZRQ + Area of PQR = Area of PZY
According ratio:
Quadrilateral YZRQ + 1 =4
Quadrilateral YZRQ = 3
therefore, compareto Area of PQR
Area of YZRQ : PQR = 3 : 1
YZRQ = 3 PQR
Therefore: YZRQ is three times of PQR. |
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发表于 11-4-2010 10:34 PM
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;extra=page%3D1&page=6
这题我POST 上来了。。给你参考
walrein_lim88 发表于 10-4-2010 10:37 PM
原来是之前有了,非常谢谢你! |
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发表于 12-4-2010 10:00 PM
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回复 144# walrein_lim88
麻烦解释后半段如何得来。。。
加后,不是2A/2 吗?怎么变成A/2? |
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发表于 12-4-2010 10:20 PM
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回复 walrein_lim88
麻烦解释后半段如何得来。。。
加后,不是2A/2 吗?怎么变成A/2?
觉悟-修罗之道 发表于 12-4-2010 10:00 PM
不明白你的问题~~ |
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发表于 13-4-2010 10:09 AM
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回复 236# walrein_lim88
为什么cos (A+B)/2 - cos (A-B)/2
= -2sinA/2 sinB/2 ??
不是等于 -2sin (2A/2) sin (2B/2) 么?
麻烦看回144帖。。。
因为我不是很明白。。。谢谢。 |
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发表于 13-4-2010 01:09 PM
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回复 walrein_lim88
为什么cos (A+B)/2 - cos (A-B)/2
= -2sinA/2 sinB/2 ??
不是等于 -2sin ( ...
觉悟-修罗之道 发表于 13-4-2010 10:09 AM
cos x - cos y = - 2 sin (1/2) (x+y) sin (1/2) (x - y)
请看好来这个FORMULA。。。
now is cos (A+B)/2 - cos (A-B)/2
= -2 sin (1/2) (1/2) (A+B+A-B) sin ....(这个自己做)
= -2 sin (1/2) (1/2) (2A) sin....
= - 2 sin (1/2) A sin .....
你却这样做:
cos (A+B)/2 - cos (A-B)/2 = - 2 sin(漏了1/2 了) [(A+B)/2 + (A-B)/2 ] sin... |
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发表于 14-4-2010 02:47 PM
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发表于 14-4-2010 05:02 PM
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who can help me to solve question 38 in exam practice 2 in Oxford Fajar volume 2???? |
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发表于 14-4-2010 05:26 PM
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新问题!谁可以教我Ace Ahead V2 quick check 1.5 第3题?
谢谢! |
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