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#1 2012-07-08 17:48:43
- shivusuja
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- Registered: 2006-09-14
- Posts: 56
Algebra
Please Help Me Out Of This Sum
Using Property Of Determinant And Without Expanding Prove That
[1 1+p 1+p+q ]
[2 3+2p 1+3p+2q ] =i
[3 6+3p 1+6p+3q ]
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#2 2012-07-08 19:33:28
- Bob
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- Registered: 2010-06-20
- Posts: 10,621
Re: Algebra
hi shivusuja
You need to do row and column operations such as
{new column 2} = {old column 2} - {old column 1}
That will make the second element just 'p' then
{new row 2} = {old row 2} - 2 x {old row 1}
Manipulations like this will allow you to eliminate the ps and qs and put lots of zeros into element spaces until you have left just a non zero leading diagonal.
Bob
Children are not defined by school ...........The Fonz
You cannot teach a man anything; you can only help him find it within himself..........Galileo Galilei
Sometimes I deliberately make mistakes, just to test you! …………….Bob 
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#3 2012-07-11 06:38:00
- AASTHA DUA
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- Registered: 2012-07-09
- Posts: 1
Re: Algebra
its answer is one i.e. 1
HERE IS THE SOL. C IS FOR COLUMN
1. C 3 = C 3 - q. C 1
2. C 2 = C 2 - p. C 1
3. C 3 = C 3 - P. C 2
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#4 2012-07-18 08:42:57
- enjoy
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- Registered: 2012-07-18
- Posts: 1
Re: Algebra
good solution
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