left| {,begin{array}{*{20}{c}}{a + b}&{a + 2b}&{a + 3b}{a + 2b}&{a + 3b}&{a + 4b}{a + 4b}&{a + 5b}&{a + 6b}end{array},} right| =

Q: $\left| {\,\begin{array}{*{20}{c}}{a + b}&{a + 2b}&{a + 3b}\\{a + 2b}&{a + 3b}&{a + 4b}\\{a + 4b}&{a + 5b}&{a + 6b}\end{array}\,} \right| = $

d (d) $\left| {\,\begin{array}{*{20}{c}}{a + b}&{a + 2b}&{a + 3b}\\{a + 2b}&{a + 3b}&{a + 4b}\\{a + 4b}&{a + 5b}&{a + 6b}\end{array}\,} \right|\, = \,\left| {\,\begin{array}{*{20}{c}}{a + b}&{a + 2b}&{a + 3b}\\b&b&b\\{2b}&{2b}&{2b}\end{array}\,} \right|$ = 0 $\left\{ {{\rm{by }}\begin{array}{*{20}{c}}{{R_2} \to {R_2} - {R_1}}\\{{R_3} \to {R_3} - {R_2}}\end{array}} \right\}$ Trick: Putting $a = 1 = b$. The determinant will be $\left| {\,\begin{array}{*{20}{c}}2&3&4\\3&4&5\\5&6&7\end{array}\,} \right| = 0$. Obviously answer is $ (d)$ Note : Students remember while taking the values of $a,\,b,\,\,c,.......$ that for there values, the options $(a), (b), (c) $ and $(d) $ should not be identical.

MCQ

ગુજરાતી માધ્યમ

$\left| {\,\begin{array}{*{20}{c}}{a + b}&{a + 2b}&{a + 3b}\\{a + 2b}&{a + 3b}&{a + 4b}\\{a + 4b}&{a + 5b}&{a + 6b}\end{array}\,} \right| = $

A${a^2} + {b^2} + {c^2} - 3abc$
B$3ab$
C$3a + 5b$
D$0$

IIT 1986, Medium

ધોરણ 12 સાયન્સ
ગણિત
3 and 4 . determinant and metrices
JEE

Download our app
and get started for free

Experience the future of education. Simply download our apps or reach out to us for more information. Let's shape the future of learning together!No signup needed.*

Download App

Similar Questions

1
જો $A$ એ $2$ કક્ષાવાળો સામાન્ય શ્રેણિક હોય, તો ${{{\rm{A}}^{ - 1}}}$ નો નિશ્ચાયક $......... $ છે.
View Solution
2
$\left| {\,\begin{array}{*{20}{c}}1&a&{{a^2}}\\1&b&{{b^2}}\\1&c&{{c^2}}\end{array}\,} \right| = $
View Solution
3
જો $A = \left[ {\begin{array}{*{20}{c}}a&b\\b&a\end{array}} \right]$ અને ${A^2} = \left[ {\begin{array}{*{20}{c}}\alpha &\beta \\\beta &\alpha \end{array}} \right]$, તો
View Solution
4
જો શ્રેણિક $A = \left[ {\begin{array}{*{20}{c}}1&0&{ - 1}\\3&4&5\\0&6&7\end{array}} \right]$ અને તેનો વ્યસ્ત ${A^{ - 1}} = \left[ {\begin{array}{*{20}{c}}{{a_{11}}}&{{a_{12}}}&{{a_{13}}}\\{{a_{21}}}&{{a_{22}}}&{{a_{23}}}\\{{a_{31}}}&{{a_{32}}}&{{a_{33}}}\end{array}} \right]$, તો ${a_{23}}=$
View Solution
5
જો $A = \left[ {\begin{array}{*{20}{c}}0&1&{ - 2}\\{ - 1}&0&5\\2&{ - 5}&0\end{array}} \right]$, તો
View Solution
6
જો $A$ એ $3 \times 3$ શ્રેણિક છે કે જેથી $A^2 -5A+ 7I = 0$ .

વિધાન $-I$ : ${A^{ - 1}} = \frac{1}{7}\left( {5I - A} \right).$

વિધાન $-II$ : બહુપદી $A^3 - 2A^2 - 3A + I$ ને $5\, (A - 4I)$ સ્વરૂપમાં દર્શાવી શકાય .
View Solution
7
અહી $A=\left(\begin{array}{ccc}{[x+1]} & {[x+2]} & {[x+3]} \\ {[x]} & {[x+3]} & {[x+3]} \\ {[x]} & {[x+2]} & {[x+4]}\end{array}\right),$ કે જ્યાં $[t]$ એ મહતમ પૂર્ણાંક દર્શાવે છે . જો $\operatorname{det}(\mathrm{A})=192$ આપેલ હોય તો $\mathrm{x}$ ની કિમંતો . . . . અંતરાલમાં આવેલ છે.
View Solution
8
સમીકરણ સંહતિ ${x_2} - {x_3} = 1,\,\, - {x_1} + 2{x_3} = - 2,$ ${x_1} - 2{x_2} = 3$ ના ઉકેલની સંખ્યા મેળવો.
View Solution
9
જો $A\, = \,\left( {\begin{array}{*{20}{c}}
0&{2q}&r\\
p&q&{ - r}\\
p&{ - q}&r
\end{array}} \right)$. જો $A{A^T}\, = \,{I_3},\,\left| p \right|$ તો $\left| p \right|$ મેળવો
View Solution
10
જો $A = \left[ {\begin{array}{*{20}{c}}1&2&1\\0&1&{ - 1}\\3&{ - 1}&1\end{array}} \right]$, તો
View Solution

Download our appand get started for free

Similar Questions

Download our app
and get started for free