Q.State the number of significant figures in the following:
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Significant Figures Calculation
Significant Figures: The Art of Honest Measurement
Imagine you're measuring the length of a table with a ruler that has marks every millimeter. You see the table edge falls somewhere between 152.3 cm and 152.4 cm. You estimate it as 152.35 cm. But here's the truth: you're certain about 152.3, pretty sure about the 0.05, and guessing about anything beyond that. Significant figures are simply a way to communicate how much of that number you actually know.
The Core Idea
Every measurement has uncertainty. Significant figures (or "sig figs") are the digits in a number that carry meaningful information about its precision. They include all the digits you're sure of, plus one more that you estimate.
A digit is "significant" if removing it would change the precision of the measurement. Zeros can be tricky — they might just be placeholders.
The Rules (Memorize These)
1. Non-zero digits are always significant
123.45 has 5 sig figs. Simple.
2. Zeros between non-zero digits are significant
1002 has 4 sig figs. The zeros are "sandwiched" — they're part of the measurement.
3. Leading zeros are never significant
0.00123 has 3 sig figs. Those zeros just tell you where the decimal point is.
4. Trailing zeros are significant only if there's a decimal point
- 1200 has 2 sig figs (no decimal — zeros are placeholders)
- 1200. has 4 sig figs (decimal tells us those zeros were measured)
- 1200.0 has 5 sig figs
5. Exact numbers have infinite sig figs
If you count 5 apples, that's exactly 5 — no uncertainty. Conversion factors like 1 m=100 cm are exact by definition.
When in doubt, write the number in scientific notation. 1.20×103 clearly has 3 sig figs, while 1.2×103 has 2.
Why This Matters: Calculations
When you multiply or add measurements, the uncertainty propagates. You can't claim more precision than your least precise measurement.
Multiplication and Division
The result should have the same number of sig figs as the measurement with the fewest sig figs.
3.14×2.5=7.85 but you report 7.9 (2 sig figs, because 2.5 has only 2)
Addition and Subtraction
The result should have the same decimal places as the measurement with the fewest decimal places.
12.11+18.0=30.11 but you report 30.1 (one decimal place, because 18.0 has one) …
Why this formula?
Significant Figures: Why the Rules Work
Let’s start with the core idea: significant figures (sig figs) are a way to honestly report how precise a measurement is. The rules for addition/subtraction and multiplication/division aren’t arbitrary — they come directly from how uncertainty propagates through calculations.
1. The Fundamental Idea: Uncertainty is the Key
Every measurement has an uncertainty (error). When we say a length is 12.3 cm, we mean:
- The true value lies somewhere between 12.25 cm and 12.35 cm (assuming ±0.05 cm uncertainty).
- The last digit (3) is uncertain; the digits before it (1 and 2) are certain.
Why this matters: When we combine measurements, the uncertainty in the result depends on the uncertainties of the inputs. Sig fig rules are a shortcut for this uncertainty propagation.
2. Rule for Addition and Subtraction
Statement: The result should have the same number of decimal places as the measurement with the fewest decimal places.
Example:
12.3+4.56=16.86 → round to 16.9 (one decimal place, like 12.3)
Why this holds
Consider two measurements:
- A=12.3±0.05 (uncertainty in the tenths place)
- B=4.56±0.005 (uncertainty in the hundredths place)
When we add:
- Certain digits: 12.3 has certainty up to the tenths place. 4.56 has certainty up to the hundredths place.
- The weaker link: The tenths place of A is uncertain. So in the sum, the hundredths place (from B) is meaningless — because we don’t even know the tenths place of A exactly.
Mathematically, the absolute uncertainty in the sum is:
Δ(A+B)=(ΔA)2+(ΔB)2≈0.052+0.0052≈0.0502
This uncertainty is ~0.05, which affects the tenths place. So reporting the hundredths place is false precision.
Key takeaway: The result’s last significant digit is in the same decimal place as the least precise measurement’s last digit.
3. Rule for Multiplication and Division
Statement: The result should have the same number of significant figures as the measurement with the fewest significant figures.
Example:
12.3×4.56=56.088 → round to 56.1 (three sig figs, like both inputs)
Why this holds
Let’s use relative uncertainty (percentage error):
- A=12.3±0.05 → relative uncertainty = 12.30.05≈0.00407 (0.407%)
- B=4.56±0.005 → relative uncertainty = 4.560.005≈0.00110 (0.110%)
For multiplication, relative uncertainties add (approximately):
A×BΔ(A×B)≈(AΔA)2+(BΔB)2
Plugging in:
≈0.004072+0.001102≈0.00422 (0.422%)
Now, the absolute uncertainty in the product:
Δ(A×B)≈0.00422×(12.3×4.56)≈0.00422×56.088≈0.237
This uncertainty (~0.2) affects the tenths place of the result. So the result 56.088 has uncertainty in the first decimal — meaning only three digits (5, 6, and the uncertain 1) are meaningful. That’s three sig figs, matching the input with fewer sig figs (both have three here).
Key takeaway: The number of sig figs in the result is limited by the least precise measurement’s number of sig figs, because relative uncertainty is dominated by the measurement with the largest relative error.
4. Why These Rules Are Different …
Concept: Significant Figures Calculation – the number of reliably known digits in a value, excluding leading zeros but including trailing zeros after a decimal.
Reasoning:
- (a) 0.007 m2: Leading zeros are not significant. Only the digit 7 counts → 1.
- (b) 2.64×1024 kg: The coefficient 2.64 has three digits → 3.
- (c) 0.2370 g cm−3: Leading zero ignored; trailing zero after decimal is significant → 4.
- (d) 6.320 J: All digits, including the trailing zero after decimal, are significant → 4. …
Significant figures count all digits known with certainty plus one estimated digit. Leading zeros are never counted; trailing zeros after a decimal point are always counted. The answers are:
- 1
- 3
- 4
- 4
- 4
- 4
The rule for counting significant figures is simple once you see the pattern: zeros are the only troublemakers. Non-zero digits are always significant. Zeros can be either placeholders (not significant) or measured digits (significant), depending on where they sit.
The key distinction: leading zeros — zeros that come before the first non-zero digit — are never significant. They only tell you the decimal place. Trailing zeros after a decimal point are always significant because they indicate the measurement was precise enough to record that zero. Zeros between non-zero digits are always significant.
Let's apply this to each case.
-
(a) 0.007 m2
The digits are 0.0 0 7. The first two zeros are leading zeros — they just position the decimal. Only the 7 is a measured digit.
Watch outA common mistake is to count the zeros before the 7. They are not significant — they only tell you the order of magnitude.
Significant figures: 1
-
(b) 2.64×1024 kg
Scientific notation is a gift: the coefficient 2.64 contains all the significant figures. The 1024 part only tells you the scale. All three digits in 2.64 are non-zero, so all are significant.
Significant figures: 3
-
(c) 0.2370 g cm−3
The digits are 0. 2 3 7 0. The leading zero before the decimal is not significant. The 2, 3, and 7 are non-zero, so they count. The trailing zero after the decimal — the last 0 — is significant because it was actually recorded. It tells us the measurement was precise to four decimal places.
Significant figures: 4
-
(d) 6.320 J
All digits are after a decimal point: 6, 3, 2, 0. The trailing zero is significant — it was written, so it was measured. …
Method: The "Non‑Zero / Zero Rule" Method for Counting Significant Figures
This method uses three simple rules to decide whether a digit is significant.
Steps
-
All non‑zero digits are always significant.
(1–9 count, no exceptions.)
-
Zeros between non‑zero digits are always significant.
(Captive zeros count.)
-
Leading zeros (zeros to the left of the first non‑zero digit) are never significant.
(They only fix the decimal place.)
-
Trailing zeros are significant only if the number contains a decimal point.
(If no decimal point is shown, trailing zeros are ambiguous and are not counted as significant in standard convention.)
Applying the Steps
(a) 0.007 m2
- Leading zeros: not significant.
- Only the 7 is non‑zero.
- Answer: 1 significant figure
(b) 2.64×1024 kg
- The coefficient 2.64 contains 2, 6, 4 — all non‑zero.
- The power of 10 does not affect the count.
- Answer: 3 significant figures
(c) 0.2370 g cm−3
- Leading zero: not significant.
- Digits: 2, 3, 7 are non‑zero → significant.
- Trailing zero after the decimal point: significant (rule 4).
- Answer: 4 significant figures
(d) 6.320 J
- All digits are non‑zero or trailing after a decimal.
- 6, 3, 2, 0 — the zero is trailing and after the decimal.
- Answer: 4 significant figures
(e) 6.032 N m−2 …
Here is a breakdown of the common mistakes students make when determining significant figures, specifically for the given examples, and how to avoid them.
Mistake 1: Misinterpreting Leading Zeros (The "Decimal Point Trap")
The Mistake: Students often count all zeros, including those at the beginning of a number. For example, in (a) 0.007 m2, a common error is to count the three zeros (0.007) and say the answer is 3 significant figures.
Why it happens: Students see zeros and assume they are "significant" without checking their position relative to the decimal point and the first non-zero digit.
How to Avoid (The Rule):
- Leading zeros are NEVER significant. They are only placeholders to locate the decimal point.
- The Rule: Start counting from the first non-zero digit from the left.
- For (a) 0.007 m2: The first non-zero digit is 7. The zeros before it are not significant.
- Correct Answer: 1 significant figure.
Mistake 2: Forgetting the "Trailing Zero" Rule for Numbers Without a Decimal
The Mistake: This is less common in the given examples (since they all have decimals), but it's a classic exam trap. For a number like 7000, students often say it has 4 significant figures.
Why it happens: They assume all zeros are significant, ignoring the ambiguity of trailing zeros in whole numbers.
How to Avoid (The Rule):
- Trailing zeros are significant ONLY if the number contains a decimal point.
- Example: 7000 has 1 significant figure (the 7). 7000. (with a decimal) has 4 significant figures. 7000.0 has 5 significant figures.
- For the given examples: All numbers have a decimal point, so this specific trap is avoided, but it's crucial to remember for other questions.
Mistake 3: Ignoring the "Trailing Zero" Rule for Numbers WITH a Decimal
The Mistake: Students stop counting at the last non-zero digit, ignoring zeros at the end of a number that has a decimal point. For example, in (c) 0.2370 g cm−3, they might say the answer is 3 significant figures (2, 3, 7), ignoring the final zero.
Why it happens: They think the zero at the end is "unnecessary" or just a placeholder.
How to Avoid (The Rule):
- Trailing zeros in a number with a decimal point ARE significant. They indicate the precision of the measurement.
- For (c) 0.2370 g cm−3: The zeros before the 2 are leading (not significant). The digits 2, 3, 7, and the final 0 are all significant.
- Correct Answer: 4 significant figures.
- For (d) 6.320 J: The trailing zero is significant.
- Correct Answer: 4 significant figures.
Mistake 4: Misinterpreting Zeros Between Non-Zero Digits (The "Sandwich" Rule)
The Mistake: Students sometimes think zeros between non-zero digits are not significant, or they get confused about how to count them. For example, in (e) 6.032 N m−2, they might say 3 significant figures (6, 0, 3, 2? or 6, 3, 2?).
Why it happens: They don't have a clear rule for "captive" zeros.
How to Avoid (The Rule):
- Zeros between non-zero digits are ALWAYS significant. They are "captive" zeros.
- For (e) 6.032 N m−2: The zero is between 6 and 3, so it is significant. All digits (6, 0, 3, 2) are significant.
- Correct Answer: 4 significant figures.
- For (f) 0.0006032 m2: The zeros before the 6 are leading (not significant). The zero between 6 and 3 is captive (significant). The digits 6, 0, 3, 2 are significant.
- Correct Answer: 4 significant figures.
Mistake 5: Confusing Scientific Notation with the Number of Significant Figures …
- Council of Higher Secondary Education, Manipur (Higher Secondary 1st Year) 2026Set ANNUAL1 markMCQQ.A piece of paper is found to be 5.32 cm long and 2.4 cm broad. The area of the paper expressed with proper significant figures is -(a) 12.768 cm^2(b) 12.76 cm^2(c) 12.8 cm^2(d) 13 cm^2
›Reveal solutionSolution
5.32×2.4=12.768, but rounded to the fewer significant figures of 2.4 (2 s.f.), the area is 13 cm².
Area =length×breadth=5.32 cm×2.4 cm=12.768 cm2.
Rule of significant figures in multiplication/division: the result must be reported with the same number of significant figures as the measurement with the fewest significant figures.
…
- Council of Higher Secondary Education, Manipur (Higher Secondary 1st Year) 2025Set ANNUAL1 markMCQQ.The significant numbers of 4200 kg is(a) 2(b) 4(c) 3(d) zero
›Reveal solutionSolution
Written as 4200 kg (no decimal point), only 4 and 2 count as significant digits — 2 significant figures.
The rule for significant figures on a number with trailing zeros and no decimal point is that those trailing zeros are NOT counted as significant, because we cannot tell from the way the number is written whether they were actually measured or are simply place-holding zeros needed to show the magnitude of the quantity.
For 4200 kg:
- The non-zero digits 4 and 2 are always significant.
- The two zeros after them, with no decimal point present, are ambiguous — by convention they are treated as not significant. …
- Council of Higher Secondary Education, Manipur (Higher Secondary 1st Year) 2025Set ANNUAL1 markQ.What is meant by significant figures?
›Reveal solutionSolution
Significant figures are the meaningful digits in a number that convey how precisely a quantity was measured.
When a quantity is measured using any instrument, the digits which are known reliably plus the one digit that is uncertain (estimated) are together called significant figures. For example, if a length is reported as 12.35 cm, the digits 1, 2, 3 are certain and the last digit 5 is uncertain (estimated), giving four significant figures in total.
Rules for counting significant figures:
- All non-zero digits are significant (285 cm has 3 sig figs).
- Zeros between two non-zero digits are significant (2.005 has 4 sig figs).
- Leading zeros (before the first non-zero digit) are NOT significant (0.03 has 1 sig fig).
- Trailing zeros after a decimal point ARE significant (0.200 has 3 sig figs).
- Trailing zeros in a number without a decimal point may or may not be significant, and are best expressed in scientific notation to avoid ambiguity. …
- Council of Higher Secondary Education, Manipur (Higher Secondary 1st Year) 2024Set ANNUAL1 markMCQQ.The number of significant figures in the scientific notation 1.23 × 10^5 is –(a) One(b) Three(c) Five(d) Eight
›Reveal solutionSolution
Counting the digits in the coefficient 1.23 (the power of 10 is not counted) gives three significant figures.
In scientific notation N×10n, the exponent 10^n merely fixes the decimal place/order of magnitude and carries no information about precision. Only the digits in the coefficient N are significant.
…
- Council of Higher Secondary Education, Manipur (Higher Secondary 1st Year) 2021Set ANNUAL1 markQ.What is the precision of measurement?
›Reveal solutionSolution
Precision measures how close repeated readings of the same quantity are to each other, regardless of whether they are close to the true value.
In any experimental measurement, two related but distinct ideas describe reliability:
- Accuracy: how close a measured value is to the true/accepted value.
- Precision: how close repeated measurements of the same quantity are to one another (i.e., how reproducible the readings are). …
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