Knowledge in Mathematics 2

Mathematics Question Paper of BCA 2nd semester

This file contains mathematics Question Paper of BCA 2nd semester.

Class X Chapter 14 Statistics

In this video course you will be able to learn all about Class X Chapter 14 Statistics

Mathematics paper 2018

The 2018 paper of second semester common to 1st years.

Mathematics paper 2018

Another paper of 2018. Different pattern and variation in number of sums.

Mathematics paper 2017

The paper of 2017. Important sums are present here.

Real Numbers - Ncert Solutions for Class 10 Maths CBSE

Chapter 1 - Real Numbers Excercise Ex. 1.1Solution 1(i) 135 and 225 Step 1:  Since 225 > 135, apply Euclid's division lemma, to a =225 and b=135 to find q and r  such that 225 = 135q+r, 0  r<135 On dividing 225 by 135 we get quotient as 1 and remainder as 90 i.e 225 = 135 x 1 + 90 Step 2: Remainder r which is 90  0, we apply Euclid's division lemma to b =135 and r = 90 to find whole numbers q and r such that 135 = 90 x q + r, 0  r<90On dividing 135 by 90 we get quotient as 1 and remainder as 45i.e 135 = 90 x 1 + 45Step 3:  Again remainder r = 45  0 so we apply Euclid's division lemma to b =90 and r = 45 to find q and r  such that 90 = 90 x q + r,  0  r<45On dividing 90 by 45 we get quotient as 2 and remainder as 0 i.e 90 = 2 x 45 + 0Step 4: Since the remainder is zero, the divisor at this stage will be HCF of (135, 225). Since the divisor at this stage is 45, therefore, the HCF of 135 and 225 is 45. (ii)   196 and 38220Step 1:  Since 38220 > 196, apply Euclid's division lemmato a =38220 and b=196 to find whole numbers q and r  such that 38220 = 196 q + r, 0  r < 196On dividing 38220 we get quotient as 195 and remainder r as 0 i.e 38220 = 196 x 195 + 0Since the remainder is zero, divisor at this stage will be HCF Since divisor at this stage is 196 , therefore, HCF of 196 and 38220 is 196.NOTE: HCF( a,b) = a if a is a factor of b. Here, 196 is a factor of 38220 so HCF is 196. (iii)   867 and 255 Step 1: Since 867 > 255, apply Euclid's division lemma, to a =867 and b=255 to find q and r  such that 867 = 255q + r, 0  r<255On dividing 867 by 255 we get quotient as 3 and remainder as 102i.e 867 = 255 x 3 + 102 Step 2: Since remainder 102  0, we apply the division lemma to a=255 and b= 102 to find whole numbers q and r such that 255 = 102q + r where 0  r<102On dividing 255 by 102 we get quotient as 2 and remainder as 51 i.e 255 = 102 x 2 + 51Step 3: Again remainder 51 is non zero, so we apply the division lemma to a=102 and b= 51 to find whole numbers q and r such that 102 = 51 q + r where 0 r < 51  On dividing 102 by 51 quotient is 2 and remainder is 0i.e 102 = 51 x 2 + 0Since the remainder is zero, the divisor at this stage is the HCFSince the divisor at this stage is 51,therefore, HCF of 867 and 255 is 51. Concept Insight: To crack such problem remember to apply the Euclid's division Lemma which states that "Given positive integers a and b, there exists unique integers q and r satisfying a = bq + r, where 0  r < b" in the correct order. Here, a > b. Euclid's algorithm works since Dividing 'a' by 'b', replacing 'b' by 'r' and 'a' by 'b' and repeating the process of division till remainder 0 is reached, gives a number which divides a and b exactly. i.e   HCF(a,b) =HCF(b,r)Note that do not find the HCF using prime factorisation in this question when the method is specified and do not skip steps.

Engineering mathematics unit 2 chapter 1 fourier series,explained, formula

Engineering mathematics subject is one to study hardly . Engineering mathematics second unit consist of unit namedd fourier series. In this pdf fourier series is explained with simplicity & numerically.