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Given p + q = 12.

On cubing both sides, we get

(p + q)^3 = (12)^3

p^3 + q^3 + 3pq( p +q) = 1728

p^3 + q^3 + 3 * 27(12) = 1728

p^3 + q^3 + 972 = 1728

p^3 + q^3 = 1728 - 972

p^3 + q^3 = 756.

5/3 CM is answer the following

72 is the correct answer of the given question

thank you for answering me ...

thanks so much for answering

by basic multiplication1)28×9=2522)40×8÷2=40×4=1603) 55+4×20=55+80=1354) 600+10050=10650

thanks

We know, Euclid algorithm lemma , a = bq + r where 0 ≤ r < b From Euclid algorithm lemma , 2032 = 1651 × 1 + 381 again, using lemma for 1651 and 381 , e.g., 1651 = 381 × 4 + 127 similarly use lemma for 381 and 127 , e.g., 381 = 127 × 3 + 0 Hence, HCF = 127

Now, 127 = 1651M + 2032N ⇒127 = (127 × 13)M + (127 × 16)M ⇒1 = 13M + 16N Here many solutions possible because we have one equation contains two variable . If I assume M = 5 and N = -4 Then, 13 × 5 + 16 × -4 = 65 - 64 = 1 So, HCF of 1651 and 2032 in the form of 1651M + 2032N is [1651(5) + 2032(-4)]

P(A)/(1-P(A))=7/1212P(A)=7-7P(A)so 19P(A)=7so P(A)=7/19

as in the figure we can see that with the help of Pythagorasop²⁼ot²⁺pt²so 100-64=OT^2OT= √36 6cm

1/2*30*30 = 900/2 = 450 , there is no option so the base is Hypotenuse,

Now,

Let the side = x,

=> x²+x² = 30²=>2x² = 30² =>x² = 15*30=> x² = 5*3*3*5*2=> x² = 5²*3²*2=> x = 5*3*√2 = 15√2,

now area = 1/2*15√2*15√2=> 1/2 * 225 * 2

=> 225 sq cm,

Therefore the answer is ,

225 sq cm,

Your answer is wrong

2032=1651 x 1 + 3811651=381 x 4 + 127381=127 x 3 + 0

HCF=127

Answer is correct but one should specify from where he/she had taken the equation

72×108 sec bad sb ek ek sath bdlenge

tnx

लुप्त संख्या =54क्योंकि पिछला अंक उसके पहले का आधा हेfor example24 आधा हे 48का इसी प्रकार से यह क्रम चलेगा

लाइक करे और शेयर करें

27*1/3of16÷4-[35÷(17+3÷4)]9*4-[35÷(17+3/4)]36-[35÷(68+3)/4]36-[35÷(71/4)]36-[35*4/71)36-1.9734.09

320-200=120120×40=4800 answer

4800 is the right answer

4800 is the right answer

4800 the answer is right

0=16+4m-240=-8+4m-4m=-8m=2

16 + 4m - 24 = 0

4m = 8

m = 2

If P(x) = x^2+ ax + b and Q(x) = x^2+ bx + a have a common factor say (x - β), then

P(β) = 0 and Q(β) = 0

⇒ β^2+ aβ + b = 0 ... (1)

and β^2+ bβ + a = 0 ... (2)

On subtracting (1) from (2), we get

(a-b)β + (b-a) = 0

⇒ (a-b)β - (a-b) = 0

⇒ (a-b)β = (a-b)

⇒ β = 1

On putting β = 1 in (1), we get

12+ a.1 + b = 0

⇒ a + b = -1

Now,

Let the side = x,

=> x²+x² = 30²=>2x² = 30² =>x² = 15*30=> x² = 5*3*3*5*2=> x² = 5²*3²*2=> x = 5*3*√2 = 15√2,

now area = 1/2*15√2*15√2=> 1/2 * 225 * 2

=> 225 sq cm,

Therefore the answer is ,

225cm²

Given:

ST || RQ

PS= 3 cm

SR = 4cm

We know that the ratio of areas of two similar triangles is equal to the ratio of squares of their corresponding sides.

ar(∆PST) /ar(∆PRQ)= (PS)²/(PR)²

ar(∆PST) /ar(∆PRQ)= 3²/(PS+SR)²

ar(∆PST) /ar(∆PRQ)= 9/(3+4)²= 9/7²=9/49

Hence, the required ratio ar(∆PST) :ar(∆PRQ)= 9:49

5x+1/x=6by taking square25x^2+10+1/x^2=36so 25x^2+1/x^2=36-10=26

Like my answer if you find it useful!

Initial price = Rs 960

After increase = Rs 1200

Increased by = 1200 - 960 = 240

% of increase = (240/960) × 100 = 25%

thanks