Awesome Olympiad Problem For Maths Genius 😍| Aman Malik Sir

Alternate Soln :
aabb = x²
11(100a + b) = x²
100a +b = 11z
Means aabb should be divisible by 11
Sum of odd digits = a+b =
Sum of Even Digits = a+b =
Difference of both = 0
So After dividing number is a0b
So by divisibility of 11
Sum of odd digits = a+b
Sum of even digits = 0
Difference of both = a+b
So a+b should be = 11
By this,
a = 7 b= 4

me before playing the video:
aabb=x²
a²b²=x²
x=ab!! 😂😂😂

Sir please make an advanced illustration series of every chapter

9a+1=1 is also a perfect square, but since 'a' cannot be zero or 'b' cannot be greater than 9 hence we choose 64 as the perfect square for the rest of the solution.

This is a question from NTSE stage-2. I am in 10th class and I have done this question myself without anyone else's help. It was a very proud moment for me as you made a video on this question.
Love mathematics and your teaching too.

Gajab approach sir..... Many people including me can't thought of this simple approach in the first place. But you again proved that best way to solve mathematics is to keep your basics up to date and in mind.

Alternate method: We can assume that 100a+b is of the form 11k^2 and find all its possible values from k=0 to 9. We have to search for the value whose tenth digit is 0 and that is possible for k=8. Thus we get a=7and b=4.

Thanks sir, for solving problems for us😊😊😊

You are a real hero of mathematics

7:26 1 is also a perfect square but if a=0 then b will be 11 which is not possible so a=7 only

Great sir
Best teacher of maths ever

In the last stage , a >1 as a+b = 11 and both are digits so we can avoid testing for a =0 and 1. Also if 9a +1 is y^2 then y°2-1 = 9a or (y+1)*(y-1) = 9a as a

By just mere looking... Me screaming out of my lungs 88² =7744.
x =88.
Perks of ssc preparation ❤😂

x is four digit therefore 31

Behtareen Sir,

One more useful information square numbers end with 1,4,5,6,9 for b u can eliminate the rest and substitute in a+b=11

1 st one .... more such problems sir thank you so much

Easy question
1000a+100a+10b+b = x²
11(100a+b)=x²
100a+b should be formed like 11.( )²
(100a+b) /11 = whole no.
99a/11 + a+b/11 = whole no.
a+b = 11
If (a, b) = (2,9)
Then, 100a+b = 209
209/11 = 19 (not a perfect square)
If (a, b) = (3, 8)
308/11 = 28
By looking at pattern we will get no. like.... 19,28,37,46,55, (64) : perfect square
64*11= 704
We get (a, b) = 7,4
aabb = 7744 = 11².8²
"x = 88"

If we can rational number also then answer should this also
If a be - 1 by root 2
b be root 1
Then x will be 1 which is a perfect square

Oh sir please tell me how you build up this much good thinking skills in maths sir I also want this type of thinking all I love maths very much but I can't solve hard questions ❤❤❤❤

You are great sir ❤❤

a = 1 bhi perfect square hain, lekin woh value use nahin kar sakate kyonkay a + b = 11 with a = 1 deta hain b = 10 (not single digit number)

Alternate solution without solving any equation:
11(100a+b)=x2
100a+b=11n, where n is a perfect square
as the above quantity is greater than 100; using hit and trial. Substitute n= 16,25,36,64 we get n=64 and 100a+b=704, by comparison we get a=7 and b=4

Sir please continue this series 🙏🙏🙏🙏

how i do this plz see - 11(100a+b) must be greater than 100 {as a ans b are lie btw 1-9} and 100a+b must contain 11 in its factor so to make a perfect square of multiple 11 and above 100 are (100a+b) - 44*4, 55*5, 66*6, 77*7, 88*8 , 99*9 now we can easily find no.

Alternate Solution
aabb = x²
aobo+aob = x²
11(aob) = x²
Now, we can say that aob = 11 × kb where, k+b = some number which ends with 0
And then we can say that
11² kb = x²
Now, kb should be a perfect square of any number from {4,5,...9}
And by that we can say
8²= 64 and 6+4=10
Thus, kb = 8²
Hence, 88²= x²
Thus, x = 88

What an explanation!😊 Bahut interesting question h!! Aap book publish kro na apne collection of unique concept ko lekr!!!

Sir you have a challenge 👇 can you solve this integral??
∫(x/tanx)dx , where limit is 0 to π/2.
Answer is (π/2)ln2.

thank you sir for this enormous question

Sir aapke solution me jab aap second time perfect square khoj rahe the tab, 1 bhi ek perfect square tha. We need to reject that option because a cannot be 0 given a+b=11 and a and b are digits

Sir, I can solve this in different way.
Thanks sir.🎉

Maine toh sirf 11 kah divisibility rule apply kiya.
Difference in sum of alternate digits must be a multiple of 11.
aabb = n^2
aabb = 11 * a0b
since a and b are single digit numbers and a + b = 0 or 11, gives
a + b = 0, gives a = b = 0, but then aabb is not a 4 digit number, hence a + b = 11, which means
a0b = { 209, 308, 407, 506, 605, 704, 803, 902 }
aabb = 11 * a0b
aabb = 11 * 11 * (a0b / 11)
a0b / 11 = { 19, 28, 37, 46, 55, 64, 73, 82 }
Since (a0b / 11) needs to be a perfect square, the only answer is a0b = 64
aabb = 11^2 * (a0b / 11) = 11^2 * 64 = 11^2 * 8^2 = 88^2 = n^2
which gives n = 88

Nice question sir ❤🎉🎉

Sir you won’t believe it is my first advanced or Olympiad level question I could solve on my own that too by not this method it took me a long solution but It increased my confidence a lot

aabb = x^2
x is divisible by 11
range of x is 32 - 99
square numers 33, 44, 55 etc
answer is 88

aabb = x^2
By Euclid's division lemma,
c=dq+r
c=x, d=10, r=(1,2,3,4,5,6,7,8,9)
c^2=10q+r, r=(1,4,5,6,9)
Since a symmetric number is divisible by 11, then
By Euclid's proposition -: If a divides b and b divides c, then a divides c also - we have,
aabb divides x^2
=> x^2 divides 11
=> x divides 11
Let x=11y,
=> x^2 = 121y^2
=> aabb = 121*y^2
So, aabb/121 = y^2
y^2 = (9,16,25,36,49,64)
=> y = (3,4,5,6,7,8)
=> 121*y^2=aabb
By the sqaure number rule,
y=(4,5,6,8)
By the symmetric number rule,
y=8
So, x=11y=11*8=88
aabb=88^2=7744

7:20
9a + 1 at a = 0 is 1 which is also perft sqr

Interesting question

SIMPLEST ANSWER WOULD BE 0 since it is not given anywhere that A not equal to B therefore a=b therfore aaaa type no. and a = then x sq. =0 and x=0 ans.

Wow sir .
Maja aa gaya

Aabb is obviously an 11 multiple. If it is equal to x^2, then x^2= 11^2 x N^2 =121xN^2.
The four digits aabb min max are (1000 to 9999), so N^2 can have values from 8 to 82.
The values being (9, 16, 25,36,49,64,81) for integer values on N.
64 solves for 121x64= 7744

We can also do it by base method for ex a perfect square can have only 44,00 same digit at the end 00 is not possible because it does not lead to same digit of aa then we choose 44 as bb then after 44 is unit digit come with taking base as 12 the.then we make combination like 38,62,88 and the number is multiple of 11 so 88 is the answer then square it 7744 will be the answer

Sir please make an advanced illustration series on every chapter

If a=2 and b=3 then the x=6
If a=2 and b=4 then the x=8
I think above these two situations also satisfy this aabb=x² equation.
Please tell me more about regarding this question.

(a-1)aa(b+1)bb=x squre then find x & that number (a-1)aa(b+1)bb.

A perfect square can only end in 1, 4, 5, 6 or 9. Also, the mod 4 of any perfect square can only be 0 or 1. Thus aa11, aa55, aa66 and aa99 get eliminated instantly. Thus b=4 and aa44 is the only possibility. If a perfect square ends with 4, its square root must have unit digit either 2 or 8. As, aabb has to be divisible by 11, X must also be divisible by 11. Thus, the only two possibilities of X=22 or 88. As 31

If a, b, c are sides of a triangle and s be it's semi-perimeter, then prove the following 1

Another way sir (thoda lamba hein)
Assume number to be ab
Let a be variable and B be 1......9
Case 1 B=1
A1*A1 is a square with unit digit 1 so the tens digit also should be 1
For tens digit a+a=(any number with unit digit 1) ie ___1 not possible so eliminate
B=2 (no is a2*a2)
Unit digit is 4
Tens digit is 4a=____4
A=6 satisfy (check through 4 table)
So 64*64=3844 not possible
B=3 (A3*A3)
Unit digit is 9
9a=___9
a can't be 1 or 2 as any number from 1to 31 has square of 3 digits
B=4
Unit digit is 6 but here 1 is carried so 8a=______5 as 1 carried should be added
No case so emlinate
B=5 unit digit is 5, 2 carry
10a=____3 eliminate
B=6
Unit digit is 6 ,3 carry
12a=____3
Not possible
B=7
Unit digit is 9,4 carry so 14a=____5
No case
B=8
Unit digit is 4, 6 carry so
16a=___8
2 cases a=3 and a=8
A=3 square is 1444
A=8 Square is 7744 so x =88
Thank you,

This is absolute art

I did it by long division method. aabb / 11 = a0b. As this is divisible by 11, a+b=11 by divisibility.
9a+1 is a square number say m²
9a = (m+1)(m-1), as a is not 11,
9 = m+1 and a is thus 7. b=11-a=4
Ans is thus 7744

great thinking sir g 🙏👌🙏🙏👌🙏

Sir, mindblowing answer to a simple, very simple looking question 🤯
I spent almost 2 hours trying to solve it and did not get the point rhat it is a perfect square so the number should be divisible by 11 again 😅

Sir Ji thank u very much

I tried this question before watching the solution, i eventually solved it but it took me a lot of time , so that how i solved it
First of all find how many possibilities can be for aabb , it is 9 * 10 = 90 , but a perfect square ends with (0 , 1 , 4 , 5 , 6 ,9) so the possibilities goes down by 9 * 6 = 54 , now comes the tricky part , i observed that perfect square whose last two digits are same always have the same last two digits 44 , so the possibilities comes down to only 9 , (1144 , 2244 , 3344 .... 9944) then i checked with short tricks that out of these 9 which all could possibly be perfect square that came down to 2 that were 5544 and 7744 , now simply checked which of it was a perfect square by nornal method.

Easy Solution:
11(100a+b) => 100a+b = 11* x^2 put x =8 to get a= 7 and b= 4

Sir plz bring more videos like that

sir
one small doubt/correction a cannot be 0 because aabb is 4 digit number 6:41 / 9:01

6:30 Sir here a cannot be 0,1 as a+b = 11 so let's say a is 0 then b =11 but that's not possible as a and b are digits so they can only go from 0 to 9
Same logic for when a=1
So we can already reject 2 cases

Amazing 😍

Great explanation ❤

This was a easy question. I am 10th grade and i could do this very easily. I did it in a different way, first i wrote all 81 possibilities and checked if theyre perfect squares. It took me 5-10 min but i feel very happy after solving it.🎉

Sir, Please explain why 100a+b should be divisible by 11.

If " abcdef " is a 6 digit number such that on multiplying it by any digit from 1 to 6, there is no change in digits, no change in their sequence, only digits rotate from left to right eg " bcdefa", defabc " ,

I did it in a unconventional way by looking at the number it was clear that aabb=a0b×11(by basic division) , now the challenge was to make aob=y×11 , such that y is a perfect square since only the square of one digit number can make a 3 digit number by multipliying with 11 , I started my trial and error by dividing 11 by 901 hoping for a quotient of 81 and eventually ended up at 704 which gave quotient of 64 the square of 8 . It might sound ridiculous to some , but this os what I could think using basic division and some intuition.😁😁

Excellent method

sir please app bata dezeye ki ma per subject kitne question kru ek din mai for jee

Sir please continue this Olympiad series

Gajab ka question

Well the longest strategy i can think if is putting 1=a b=2 and keep putting numbers and squate rooting them i did this in calculator ans is 7744 which is the square of 88.
Of course its unethical

A perfect square number has four digits, none of which is zero. The digits from left to right have values that are: even, even, odd, even. Find the number

This ques is simple if a:2
And b:4
OR a:4
b:2
So x would be :8
X:8

Sir minor correction; x=88,-88

Amazing question 😮😮

Sir please make adv illustration series like Physics Galaxy

Why (9a+1) must be a perfect square????..at 6:15

I like it, sir and i like you also. Thanks

I have solved one question similar for aba = x square and I got the answer 11 which was right and now also I got the right answer 88.

thanks sir

Agar mujhe kisi bhi halat me iske ans tak pahunchna hota to mai 32 se 99 no. Ka square nikalta q ki 4 digit tak inhi ka square pahunchta h phir ans match katwa deta..... But abhi maine google se dekha Sare no. Ka sq. Aur 88 ka sq. 7744 mujhe mil gya

bahtreen

I used hit& trial method. Firstly we know that last digit of perfect square can never be (2,3,7,8) then b={014569} and a can not equal to 0. So I got x= 88. Can my solution is valid?

कतही जहर solution #bhannatmaths

Hmm these type of question are very common from my daily ioqm practise question that I try from number theory

Critical thinking use krne k liye best questions CAT mein ate hai, maths , reasoning , DI , solve kro dimag pura khul jayega

Thanks sir

Sir please aap mujhe ak baat bataiye ki aap alg hatke sochte kasa hai question ka bara ma please sir request❤

5:11 a has possible values from 0-9 but as b is the last digit of a square number it can only be 0,1,4,5,6,9,

x^2 = 1000a + 100a + 10b + b
= 11 ( 100 a + b)
= (11) ^2 x square number. Hereby one needs to check whether either of the following numbers are of the form a a b b : 121*9, 121*16, 121*25, 121*36,
121*49, 121*64, 121*81.
Only 121*64 =7 7 4 4 is of this form

x^2=aabb
=a^2b^2
X=ab

Yes sir this is real math jisme koi faltu ka formula nhi yad krna bas apna logic use krna h

Sir aap ko vapas pw kab jao ge this year or jana ho aap ko plz sir m class 11 me hu or aap ke pw ke old video me syllabus sayad pura syllabus nahi h

a=7 , b=4 and x=88 , yeh to bahut easy approach tha 🤔

Huge request to upload tough olympiad problems daily pLz.

Alt digits ka sum same hai, toh number dekhke hi we can conclude 11 se divisible hoga

🙏🙏🙏🙏🙏🙏🙏🙏🙏👍👍👍👍👍👍👍sir you are a real hero of maths

Answer is 88. I have not yet watched the video but I remember doing this problem for my IIT preparation 15 years ago.

Big fan sir💟

it also can be 2244
2x2x4x4 = x2
x=8

3×3×2×2. 9×4=6²

Sir pw ke class 11 trigonometric function ka lect.11 samaj me nahi aya maximum and minimum value us me type 3 . Nahi aya h only