<![CDATA[Sec 3 Math Problem Help]]>Any one can help on this question? Thanks in advance.


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]]>https://forum.kiasuparents.com/topic/82925/sec-3-math-problem-helpRSS for NodeSun, 03 May 2026 12:50:19 GMTMon, 27 Jul 2015 03:08:23 GMT60<![CDATA[Reply to Sec 3 Math Problem Help on Wed, 17 Jun 2015 17:00:51 GMT]]>Given that CM = 3MD, Therefor the ratio of CM : CD is equal to 3 : 4.

and since AB = CD, therefore CM : AB is also equal to 3 : 4

Since Triangle CMX and AXB are similar,
Their 1 dimensional ratio (which is length ratio) is 3:4
Their 2 dimensional ratio (which is area ratio) will be the square of the 1 dimensional ratios which is 9:16 [answer for part b(i)]

For part b(ii),
The 1 dimensional ratio of the two similar triangles, is not only applicable to the base of the triangle (ie CM : AB is equal to 3 : 4), the ratio of the (perpendicular height of CM to X): (Perpendicular height of AB to X) is also 1D ratio 3:4

[ie base ratio and perpendicular height ratio of similar triangles are the same]

Therefore CB = (perpendicular height of CM to X) + (Perpendicular height of AB to X)= 3+4=7 units

area ratio of Triangle AXB : Triangle ACB
is equal to 0.5AB * 4units (perpendicular ht) : 0.5 * AB * 7 units (perpendicular ht)
Cancel common terms and we get the ratio to be 4:7

so area of triangle BXC is 3units squared, area of rectangle is 2area of ACB = 14 units squared.

Therefore the ratio of area of BXC : ABCD is equal to 3:14 [answer for part b(ii)]

]]>https://forum.kiasuparents.com/post/1525476https://forum.kiasuparents.com/post/1525476Wed, 17 Jun 2015 17:00:51 GMT<![CDATA[Reply to Sec 3 Math Problem Help on Tue, 16 Jun 2015 17:39:44 GMT]]>

jxue1015@gmail.com:
angle CXM = angle AXB (directly opp angle)

angle CMX = angle ABX (alternate angle)
angle MCX = angle BAX (alternate angle)

Therefore triangle CMX and triangle AXB is similar based on AAA property
Thanks so much for your response. We got that. Any thoughts on part (b) (ii) of this problem? Greatly appreciate your help on this!

]]>https://forum.kiasuparents.com/post/1524998https://forum.kiasuparents.com/post/1524998Tue, 16 Jun 2015 17:39:44 GMT<![CDATA[Reply to Sec 3 Math Problem Help on Tue, 09 Jun 2015 17:24:37 GMT]]>angle CXM = angle AXB (directly opp angle)

angle CMX = angle ABX (alternate angle)
angle MCX = angle BAX (alternate angle)

Therefore triangle CMX and triangle AXB is similar based on AAA property

]]>https://forum.kiasuparents.com/post/1521722https://forum.kiasuparents.com/post/1521722Tue, 09 Jun 2015 17:24:37 GMT