Last visit was: 15 Nov 2024, 02:06 It is currently 15 Nov 2024, 02:06

Close

GRE Prep Club Daily Prep

Thank you for using the timer - this advanced tool can estimate your performance and suggest more practice questions. We have subscribed you to Daily Prep Questions via email.

Customized
for You

we will pick new questions that match your level based on your Timer History

Track
Your Progress

every week, we’ll send you an estimated GRE score based on your performance

Practice
Pays

we will pick new questions that match your level based on your Timer History

Not interested in getting valuable practice questions and articles delivered to your email? No problem, unsubscribe here.

Close

Request Expert Reply

Confirm Cancel
Tags :

Show Tags
Hide Tags

avatar
Intern
Intern
Joined: 07 Jan 2017
Posts: 11
Own Kudos [?]: 10 [0]
Given Kudos: 0
Send PM
User avatar
Retired Moderator
Joined: 07 Jun 2014
Posts: 4813
Own Kudos [?]: 11157 [0]
Given Kudos: 0
GRE 1: Q167 V156
WE:Business Development (Energy and Utilities)
Send PM
avatar
Intern
Intern
Joined: 07 Jan 2017
Posts: 11
Own Kudos [?]: 10 [0]
Given Kudos: 0
Send PM
avatar
Intern
Intern
Joined: 26 Feb 2018
Posts: 3
Own Kudos [?]: 5 [0]
Given Kudos: 0
GRE 1: Q162 V148
Send PM
Re: One of GRE question [#permalink]
1
darkdevil8z wrote:
Hi everyone, I couldn't confirm my answer whether it is correct or not, can anyone confirm for me?? Or correct me if I'm wrong??
Thanks.

BC = (10√3)/3
BC = 5.77

angle of C = (cos θ = AC/BC)
since radius of the circle with center C is 5
AC = 5
cos θ = 5/5.77
θ = (sin-1) 5/5.77
angle of C ≈ 30

sin θ = AB/BC
sin 30 = AB/5.77
0.5 = AB/5.77
AB = 2.88

Therefore Quantity B is greater.



Both of you are going a very long way.



Method 1 : darkdevil8z method simplified : Only Mental Mathematic required. :idea:


Two sides are given and one angle is 90 degree so try diving both the length and see if you recognise the number.
I just divide (10√3)/3 with 5 and remainder is 2/√3.

I don't remember Cos/tan/cosec/cot/sec but I do remember Sin θ i.e (perpendicular / hypotenuse OR P/B)and you too have to.
This is the only requirement for GRE as far as trigonometry application is required.

I remember 1 - 1/2 - 1/√2 - √3/2 - 1 for Sin θ and recall that the above number is familiar. It is reciprocal of (10√3)/3 by 5

Now I know Sin 60 = √3/2 = 5 divided by (10√3)/3 = AC/CB = perpendicular/Hypotenuse
Therefore angle ABC is 60 degree and side in-front will definitely be bigger.

AC is greater

This was simpler method but for those who can't recite Sin θ at that moment, go for Pythagoras theorem.



Method 2 : Pythagoras theorem. method simplified : Only Mental Mathematic required. :idea:


ABˆ2 = (10/√3) - 5ˆ2 = 100/3 - 25 = 25/3 = Less than 9
AB = Less than 3

AC=5 is greater.



To get more simplified solutions.
Start Follow and Hit Kudos / Like

Regards
Shekhar :wink:
Prep Club for GRE Bot
Re: One of GRE question [#permalink]
Moderators:
GRE Instructor
78 posts
GRE Forum Moderator
37 posts
Moderator
1111 posts
GRE Instructor
234 posts

Powered by phpBB © phpBB Group | Emoji artwork provided by EmojiOne