Q.Find the 12th term of a G.P. whose 8th term is 192 and the common ratio is 2.
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Concept understanding — Geometric Progression
Geometric Progression: The Idea of Repeated Multiplication
Imagine you're folding a piece of paper in half. Start with thickness 1 unit. After one fold, thickness becomes 2. After two folds, thickness becomes 4. After three folds, thickness becomes 8. The sequence of thicknesses is:
1, 2, 4, 8, 16, ...
Notice the pattern: each term is obtained by multiplying the previous term by the same number (here, 2). That's the core intuition behind a geometric progression — you keep multiplying by a fixed number, step after step.
This is different from an arithmetic progression, where you keep adding a fixed number. Here, the growth is multiplicative, not additive. That's why geometric progressions grow (or shrink) much faster.
Precise Definition
A Geometric Progression (GP) is a sequence of numbers where the ratio of any term to its preceding term is constant. This constant is called the common ratio, denoted by r.
If the first term is a, then the sequence looks like:
a,ar,ar2,ar3,ar4,…
Note
The common ratio r can be any real number — positive, negative, or even a fraction. If r is negative, the terms alternate in sign. If 0<r<1, the terms get smaller and smaller.
The n-th Term
To find any term directly without listing all previous ones, use the formula:
Tn=a⋅rn−1
where Tn is the n-th term, a is the first term, r is the common ratio, and n is the term number (starting from 1).
Example: For the paper-folding sequence, a=1, r=2. The 5th term is 1⋅25−1=24=16, which matches our list.
Sum of n Terms
There are two cases, depending on whether r=1 or not.
Sum of first n terms of a GP:
Sn=⎩⎨⎧a⋅r−1rn−1,n⋅a,r=1r=1
When r=1, every term is just a, so the sum is simply n×a.
Why the formula works (intuition):
Let S=a+ar+ar2+⋯+arn−1. Multiply both sides by r: rS=ar+ar2+⋯+arn. Subtract the first from the second: rS−S=arn−a, so S(r−1)=a(rn−1), giving the formula above.
Sum of an Infinite GP
If the common ratio r lies strictly between −1 and 1 (i.e., ∣r∣<1), the terms get smaller and smaller, and the sum of all terms approaches a finite value:
S∞=1−ra,for ∣r∣<1
Watch out
If ∣r∣≥1, the infinite sum does not exist (it diverges to infinity or oscillates without settling). Never apply the infinite sum formula when ∣r∣≥1.
Example:1+21+41+81+… has a=1, r=21, so S∞=1−1/21=2. This matches the intuition that repeatedly halving a unit length eventually fills exactly 2 units.
Quick Reference Table
Property
Formula
Condition
Common ratio
r=TnTn+1
Always
n-th term
Tn=arn−1
Always
Sum of n terms
Sn=ar−1rn−1
r=1
Sum of n terms
Sn=na
r=1
Infinite sum
S∞=1−ra
$
Common Mistakes to Avoid
Confusing n and n−1: The first term corresponds to n=1, so the exponent is n−1, not n.
Using infinite sum when ∣r∣≥1: The formula gives a finite number, but the actual sum is infinite — it's a trap.
Forgetting the sign when r is negative: Terms alternate, and the sum formula still works, but be careful with signs in calculations.
Why This Matters
Geometric progressions appear everywhere: compound interest in finance, population growth in biology, radioactive decay in physics, and even in the design of algorithms (binary search halves the problem size each step — a GP with r=1/2). Once you see the pattern of repeated multiplication, you'll spot GPs in many real-world contexts.
Geometric Progression is one of the two central sequence types in the NCERT Class 11 Mathematics chapter on Sequences and Series, and searches like "geometric progression: definition, formula and examples" or "GP sum of n terms important questions" point straight to this concept. It's also a regular fixture in JEE Main, CET, and other competitive exams, especially problems involving compound interest and infinite series.
The key idea is that any term of a Geometric Progression can be expressed using the first term a and the common ratio r.
Step 1: Write the formula for the nth term of a G.P.:
Tn=arn−1
Step 2: Use the given 8th term (T8=192, r=2):
a⋅27=192
a⋅128=192⇒a=128192=23
Step 3: Find the 12th term:
T12=a⋅211=23⋅2048=3⋅1024=3072
✓Final answer
The 12th term is 3072.
In a geometric progression, each term is the previous term multiplied by the common ratio. Using the formula an=arn−1, we find the first term a=23, so the 12th term is a12=23⋅211=3072.
A geometric progression (G.P.) is a sequence where each term after the first is obtained by multiplying the previous term by a fixed number called the common ratio (r). The key idea is that every term can be expressed in terms of the first term (a) and the common ratio.
The general term of a G.P. is given by:
an=a⋅rn−1
where a is the first term, r is the common ratio, and n is the term number.
Here, we are given:
8th term, a8=192
Common ratio, r=2
We need the 12th term, a12.
Find the first term a using the 8th term.
Using the formula for the nth term:
a8=a⋅r8−1=a⋅r7
Substitute the known values:
192=a⋅27
Since 27=128, we have:
192=a⋅128
Solve for a:
a=128192=23
Tip
Always simplify fractions early — it keeps numbers manageable. Here, 192/128 reduces by dividing numerator and denominator by 64, giving 3/2.
Now find the 12th term.
Using the same formula with n=12:
a12=a⋅r12−1=a⋅r11
Substitute a=23 and r=2:
a12=23⋅211
Compute 211:
211=2048
So:
a12=23×2048=3×1024=3072
Watch out
A common mistake is to use a8 directly as a in the formula for a12. Remember: a is always the first term, not any other term. Always go back to the definition an=arn−1.
Verify the pattern (optional but good practice).
If you list the terms starting from a=1.5 and multiplying by 2 each time: