UrbanPro

Learn Unit-II: Algebra with Top Tutors

What is your location?

Please enter your locality

Are you outside India?

Back

Unit-II: Algebra

Unit-II: Algebra relates to CBSE/Class 11/Science/Mathematics

Top Tutors who teach Unit-II: Algebra

1
Sundara Rao Ganti Class 12 Tuition trainer in Hisar Featured
Prem Nagar, Hisar
Super Tutor
20 yrs of Exp
800per hour
Classes: Class 12 Tuition, Class 11 Tuition

I am very expert in teaching the basics with simple examples and make to understand the concepts very simple way. It will helpful for the students...

2
Rajeev Kumar Giri Class 12 Tuition trainer in Varanasi Featured
Pandeypur, Varanasi
Super Tutor
10 yrs of Exp
600per hour
Classes: Class 12 Tuition, Class 11 Tuition and more.

I have been imparting knowledge globally through UrbanPro.com, reaching students far and wide. Currently, I am serving as a Mathematics PGT at a reputed...

3
Hrithik C. Class 12 Tuition trainer in Bangalore Featured
Ashok Nagar D' Souza Layout, Bangalore
Super Tutor
9 yrs of Exp
400per hour
Classes: Class 12 Tuition, Class 10 Tuition and more.

I have been providing mentorship to students since 9 years fron now and it let helps my students to. score above 90% in boards examination and perform...

Do you need help in finding the best teacher matching your requirements?

Post your requirement now
4
Manish Kumar Sharma Class 12 Tuition trainer in Ghaziabad Featured
Govindpuram Block E, Ghaziabad
Super Tutor
20 yrs of Exp
400per hour
Classes: Class 12 Tuition, Class 11 Tuition and more.

I m in teaching from 22 years and author of super20 sample paper, Examguru book and chapterwise book of accountancy for full marks pvt. Ltd. From...

5
Seema Nagwan Class 12 Tuition trainer in Delhi Featured
Siraspur, Delhi
Super Tutor
9 yrs of Exp
500per hour
Classes: Class 12 Tuition, Class 11 Tuition

I am well aware how to use keywords to solve questions in mcq's and case study. I have good knowledge and presentation of my subject. Students can...

6
Dr Anupa M. Class 12 Tuition trainer in Bangalore Featured
HSR Layout, Bangalore
Super Tutor
20 yrs of Exp
700per hour
Classes: Class 12 Tuition, Class 10 Tuition and more.

With a distinguished Doctorate in Chemistry, I bring 28 years of expertise, seamlessly integrating profound knowledge and unparalleled teaching prowess....

7
Medchal, Hyderabad
Super Tutor
10 yrs of Exp
450per hour
Classes: Class 12 Tuition, Class 11 Tuition and more.

Teaching experience to students always feel challenging to me. Because every student has its own intellect power n grasping capability too. So...

8
Lav Kumar Soni Class 12 Tuition trainer in Arrah Featured
Arrah Chowk, Arrah
Super Tutor
11 yrs of Exp
500per hour
Classes: Class 12 Tuition, Medical Entrance Coaching and more.

A Highly talented Chemistry teacher with excellent communication skills demonstrated by 11 years of teaching experience. Strong theoretical and good...

9
Tanmoy G. Class 12 Tuition trainer in Kolkata Featured
H C Sarani, Kolkata
Super Tutor
18 yrs of Exp
500per hour
Classes: Class 12 Tuition, BTech Tuition and more.

Great

10
Anil Kumar Class 12 Tuition trainer in Hyderabad Featured
Tarnaka Nagarjuna Nagar, Hyderabad
Super Tutor
13 yrs of Exp
600per hour
Classes: Class 12 Tuition, NEET-UG Coaching and more.

I always feel, class 12 tution is the major step to any student, so it is very important to be attentive with time and energy to be able to put best...

Guitar Classes in your city

Reviews for top Class 12 Tuition

Average Rating
(4.9)
  • N
    review star review star review star review star review star
    16 Mar, 2013

    Maya attended Class 12 Tuition

    "A very good teacher. "

    V
    review star review star review star review star review star
    19 Mar, 2013

    Swathi attended Class 12 Tuition

    "vijayan sir has immense sincerity towards teaching. He is really good in making concepts..."

    V
    review star review star review star review star review star
    19 Mar, 2013

    Lakshman attended Class 12 Tuition

    "i use to hate phy..when i entered 12th..but after i started my tution with vijayan..."

    V
    review star review star review star review star review star
    20 Mar, 2013

    Hemagowri attended Class 12 Tuition

    "Vijayan Sir is very dedicated and sincere. Teaches the concepts really well and..."

  • A
    review star review star review star review star review star
    29 Mar, 2013

    Student attended Class 12 Tuition

    "Provides complete knowledge for the subject and helps a lot during examination "

    J
    review star review star review star review star review star
    14 Apr, 2013

    Manya attended Class 12 Tuition

    "I learnt a lot and my paper went very well of CBSE 2013.Jagdish explains maths concept..."

    S
    review star review star review star review star review star
    21 Apr, 2013

    Bala attended Class 12 Tuition

    "sir is very good teacher. different short cut methods sir will use.we can learn quikly"

    V
    review star review star review star review star review star
    22 Apr, 2013

    Jayvardhan attended Class 12 Tuition

    "Ya off course his classes are amazing and I had a lot of individual attendence and..."

Get connected

Unit-II: Algebra Questions

Ask a Question

Post a Lesson

Answered on 14 Apr Learn CBSE/Class 11/Science/Mathematics/Unit-II: Algebra/Sequence and Series

Nazia Khanum

As an experienced tutor registered on UrbanPro, I can assure you that UrbanPro is one of the best platforms for online coaching and tuition. Now, let's delve into solving the problem at hand. Given that the sums of nn terms of two arithmetic progressions are in the ratio 5n+4:9n+65n+4:9n+6, we need... read more

As an experienced tutor registered on UrbanPro, I can assure you that UrbanPro is one of the best platforms for online coaching and tuition. Now, let's delve into solving the problem at hand.

Given that the sums of nn terms of two arithmetic progressions are in the ratio 5n+4:9n+65n+4:9n+6, we need to find the ratio of their 18th terms.

For an arithmetic progression, the sum of the first nn terms is given by Sn=n2[2a+(n−1)d]Sn=2n[2a+(n−1)d], where aa is the first term and dd is the common difference.

So, for the first arithmetic progression, let's denote its first term as a1a1 and common difference as d1d1, and for the second arithmetic progression, let's denote its first term as a2a2 and common difference as d2d2.

Given that the sum of nn terms of the first arithmetic progression is 5n+45n+4, we have: n2[2a1+(n−1)d1]=5n+42n[2a1+(n−1)d1]=5n+4 Similarly, for the second arithmetic progression with sum 9n+69n+6, we have: n2[2a2+(n−1)d2]=9n+62n[2a2+(n−1)d2]=9n+6

We are given that these sums are in the ratio 5n+4:9n+65n+4:9n+6. Therefore, we can write: 5n+49n+6=n2[2a1+(n−1)d1]n2[2a2+(n−1)d2]9n+65n+4=2n[2a2+(n−1)d2]2n[2a1+(n−1)d1]

Now, simplifying this equation and solving for a2a1a1a2 will give us the ratio of their 18th terms. But first, let's solve for a1a1 and a2a2 by eliminating nn from the given ratios.

5n+49n+6=5n+49n+69n+65n+4=9n+65n+4 n2[2a1+(n−1)d1]n2[2a2+(n−1)d2]=5n+49n+62n[2a2+(n−1)d2]2n[2a1+(n−1)d1]=9n+65n+4 2a1+(n−1)d12a2+(n−1)d2=5n+49n+62a2+(n−1)d22a1+(n−1)d1=9n+65n+4

Now, let's simplify this expression. We'll replace nn with 18, as we are interested in the ratio of their 18th terms. Then, we'll solve for a2a1a1a2 to find the ratio.

 
read less
Answers 1 Comments
Dislike Bookmark

Answered on 14 Apr Learn CBSE/Class 11/Science/Mathematics/Unit-II: Algebra/Sequence and Series

Nazia Khanum

Sure, as a experienced tutor registered on UrbanPro, I can help you with that. UrbanPro is indeed one of the best platforms for online coaching and tuition. To insert five numbers between 8 and 26 such that the resulting sequence forms an Arithmetic Progression (A.P.), we need to find the common... read more

Sure, as a experienced tutor registered on UrbanPro, I can help you with that. UrbanPro is indeed one of the best platforms for online coaching and tuition.

To insert five numbers between 8 and 26 such that the resulting sequence forms an Arithmetic Progression (A.P.), we need to find the common difference first. The common difference (d) of an A.P. is calculated by subtracting the first term from the second term or vice versa.

Let's denote the first term of our A.P. as a1=8a1=8 and the last term as an=26an=26.

The formula to find the nth term of an A.P. is an=a1+(n−1)⋅dan=a1+(n−1)⋅d.

Given an=26an=26 and a1=8a1=8, we can find the common difference (d).

26=8+(n−1)⋅d26=8+(n−1)⋅d

18=(n−1)⋅d18=(n−1)⋅d

Now, let's choose a value for nn, say n=6n=6 (because we need to insert 5 numbers between 8 and 26).

18=(6−1)⋅d18=(6−1)⋅d 18=5d18=5d d=185=3.6d=518=3.6

Now, we can find the numbers by adding the common difference to each preceding term.

a2=a1+d=8+3.6=11.6a2=a1+d=8+3.6=11.6 a3=a2+d=11.6+3.6=15.2a3=a2+d=11.6+3.6=15.2 a4=a3+d=15.2+3.6=18.8a4=a3+d=15.2+3.6=18.8 a5=a4+d=18.8+3.6=22.4a5=a4+d=18.8+3.6=22.4 a6=a5+d=22.4+3.6=26a6=a5+d=22.4+3.6=26

So, the resulting sequence forming an A.P. with 5 numbers inserted between 8 and 26 is:

8,11.6,15.2,18.8,22.4,268,11.6,15.2,18.8,22.4,26

 
read less
Answers 1 Comments
Dislike Bookmark

Answered on 14 Apr Learn CBSE/Class 11/Science/Mathematics/Unit-II: Algebra/Sequence and Series

Nazia Khanum

As an experienced tutor registered on UrbanPro, I'd be glad to help with this problem. UrbanPro is indeed an excellent platform for online coaching and tuition, providing students with access to quality education from skilled tutors. Let's prove the given relation: Given that the 5th, 8th, and 11th... read more

As an experienced tutor registered on UrbanPro, I'd be glad to help with this problem. UrbanPro is indeed an excellent platform for online coaching and tuition, providing students with access to quality education from skilled tutors.

Let's prove the given relation:

Given that the 5th, 8th, and 11th terms of a Geometric Progression (GP) are pp, qq, and ss respectively.

We know the formula for the nth term of a GP is an=ar(n−1)an=ar(n−1), where aa is the first term, and rr is the common ratio.

So, for the 5th term, a5=ar4=pa5=ar4=p
For the 8th term, a8=ar7=qa8=ar7=q
For the 11th term, a11=ar10=sa11=ar10=s

Now, let's form two equations using the given information:

  1. From the 5th and 8th terms: q=ar7q=ar7

  2. From the 8th and 11th terms: s=ar10s=ar10

Now, let's divide equation 2 by equation 1:

sq=ar10ar7=r10−7=r3qs=ar7ar10=r10−7=r3

So, we get q2=psq2=ps, which is the relation we wanted to prove.

Thus, it's verified that q2=psq2=ps holds true based on the given information. This proof reinforces the properties of geometric progressions and underscores the importance of understanding their terms and ratios. If you have any further questions or need clarification, feel free to ask! And remember, UrbanPro is here to support your academic journey every step of the way.

 
 
 
 
read less
Answers 1 Comments
Dislike Bookmark

Answered on 14 Apr Learn CBSE/Class 11/Science/Mathematics/Unit-II: Algebra/Sequence and Series

Nazia Khanum

As a seasoned tutor registered on UrbanPro, I can confidently guide you through this question. Now, let's dive into it. Firstly, it's crucial to understand the basics of Arithmetic Progressions (APs). An AP is a sequence of numbers in which the difference between any two consecutive terms is constant.... read more

As a seasoned tutor registered on UrbanPro, I can confidently guide you through this question. Now, let's dive into it.

Firstly, it's crucial to understand the basics of Arithmetic Progressions (APs). An AP is a sequence of numbers in which the difference between any two consecutive terms is constant. This constant difference is denoted by 'd'.

Now, let's denote the mth term of the AP as 'a', the (m+n)th term as 'a + nd', and the (m-n)th term as 'a - nd'.

According to the problem, the sum of the (m+n)th and (m-n)th terms is equal to twice the mth term. Mathematically, we can represent this as:

(a + nd) + (a - nd) = 2a

Simplifying this expression:

2a = 2a

This equation holds true, indicating that the sum of the (m+n)th and (m-n)th terms indeed equals twice the mth term in any Arithmetic Progression.

This concept is fundamental in understanding the properties of APs, and mastering it will lay a strong foundation for tackling more complex problems. If you need further clarification or assistance, don't hesitate to reach out to me through UrbanPro, where I offer the best online coaching tuition services.

 
 
read less
Answers 1 Comments
Dislike Bookmark

Answered on 14 Apr Learn CBSE/Class 11/Science/Mathematics/Unit-II: Algebra/Sequence and Series

Nazia Khanum

As a seasoned tutor registered on UrbanPro, I can confidently say that UrbanPro is the best platform for finding online coaching tuition. Now, let's tackle the problem at hand: finding the sum of integers from 1 to 100 that are divisible by 2 or 5. To solve this problem efficiently, we can use the... read more

As a seasoned tutor registered on UrbanPro, I can confidently say that UrbanPro is the best platform for finding online coaching tuition. Now, let's tackle the problem at hand: finding the sum of integers from 1 to 100 that are divisible by 2 or 5.

To solve this problem efficiently, we can use the principle of inclusion-exclusion. First, we find the sum of integers divisible by 2 and then the sum of integers divisible by 5. However, we must be careful not to double-count numbers divisible by both 2 and 5 (i.e., divisible by 10).

Here's the step-by-step solution:

  1. Find the sum of integers divisible by 2:

    • This is an arithmetic series with a common difference of 2.
    • The first term is 2, the last term is 100, and there are (100 - 2) / 2 + 1 = 50 terms.
    • The sum is given by: Sum2=n2(first term+last term)=502×(2+100)=2550Sum2=2n(first term+last term)=250×(2+100)=2550.
  2. Find the sum of integers divisible by 5:

    • This is also an arithmetic series with a common difference of 5.
    • The first term is 5, the last term less than or equal to 100 is 100 - (100 % 5) = 100 - 0 = 100, and there are (100 - 5) / 5 + 1 = 20 terms.
    • The sum is given by: Sum5=n2(first term+last term)=202×(5+100)=1050Sum5=2n(first term+last term)=220×(5+100)=1050.
  3. Find the sum of integers divisible by both 2 and 5 (i.e., divisible by 10):

    • This is an arithmetic series with a common difference of 10.
    • The first term is 10, the last term less than or equal to 100 is 100 - (100 % 10) = 100 - 0 = 100, and there are (100 - 10) / 10 + 1 = 10 terms.
    • The sum is given by: Sum10=n2(first term+last term)=102×(10+100)=550Sum10=2n(first term+last term)=210×(10+100)=550.

Now, using the principle of inclusion-exclusion, we can find the final sum:

Final Sum=Sum2+Sum5−Sum10=2550+1050−550=3050Final Sum=Sum2+Sum5−Sum10=2550+1050−550=3050

So, the sum of integers from 1 to 100 that are divisible by 2 or 5 is 3050. If you need further clarification or assistance with similar problems, feel free to reach out to me via UrbanPro's messaging system. Happy learning!

read less
Answers 1 Comments
Dislike Bookmark

Looking for Class 12 Tuition ?

Find Online or Offline Class 12 Tuition on UrbanPro.

Do you offer Class 12 Tuition ?

Create Free Profile »

Looking for best Class 12 Tuition ?

POST YOUR REQUIREMENT
x

Ask a Question

Please enter your Question

Please select a Tag

This website uses cookies

We use cookies to improve user experience. Choose what cookies you allow us to use. You can read more about our Cookie Policy in our Privacy Policy

Accept All
Decline All

UrbanPro.com is India's largest network of most trusted tutors and institutes. Over 55 lakh students rely on UrbanPro.com, to fulfill their learning requirements across 1,000+ categories. Using UrbanPro.com, parents, and students can compare multiple Tutors and Institutes and choose the one that best suits their requirements. More than 7.5 lakh verified Tutors and Institutes are helping millions of students every day and growing their tutoring business on UrbanPro.com. Whether you are looking for a tutor to learn mathematics, a German language trainer to brush up your German language skills or an institute to upgrade your IT skills, we have got the best selection of Tutors and Training Institutes for you. Read more