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Previous year question hub

Measurements - Instrumentation Engineering Previous Year Questions

Practice Measurements - Instrumentation Engineering previous year questions organised from real papers, with year-wise coverage and clear topic navigation.

21Papers
18Years
131Questions
1Topics

Measurements question pattern

Every graph below is calculated only from this selection.

Questions by year

Year-wise coverage for Measurements. Each bar uses a separate theme-derived color.

Difficulty distribution

How the classified questions are distributed by difficulty.

Medium 69 52.7%
Easy 60 45.8%
Hard 2 1.5%

Question type distribution

MCQ, numerical, multiple-select and other formats found in these papers.

MCQ 77 58.8%
Numerical Answer Type (NAT) 40 30.5%
Fill in the blanks 8 6.1%
MSQ 6 4.6%

Subject weightage

Top subjects by unique question coverage.

Instrumentation Engineering
131 Qs

Most asked topics

Top topics across the included previous year papers.

Measurements
131 Qs

Subtopic coverage

Top subtopics inside this exact selection.

Measurement Standards, Errors and Uncertainty
51 Qs
Bridges and Electrical Quantity Measurement
49 Qs
Digital Meters, Oscilloscopes and Spectrum Analysis
31 Qs

Paper coverage

Question coverage for the most populated papers. Every active PYP paper remains listed below.

Instrumentation Engineering (IN) 2026
6 Qs
Instrumentation Engineering (IN) 2025
8 Qs
Instrumentation Engineering (IN) 2024
6 Qs
Instrumentation Engineering (IN) 2023
7 Qs
Instrumentation Engineering (IN) 2022
5 Qs
Instrumentation Engineering (IN) 2021
8 Qs
Instrumentation Engineering (IN) 2020
5 Qs
Instrumentation Engineering (IN) 2019
7 Qs
Instrumentation Engineering (IN) 2018
6 Qs
Instrumentation Engineering (IN) 2017
6 Qs
Instrumentation Engineering (IN) 2016
8 Qs
Instrumentation Engineering (IN) 2014
7 Qs
Instrumentation Engineering (IN) 2013 [Session 1]
3 Qs
Instrumentation Engineering (IN) 2013 [Session 3]
3 Qs
Instrumentation Engineering (IN) 2013 [Session 4]
3 Qs
Instrumentation Engineering (IN) 2013 [Session 2]
2 Qs
Instrumentation Engineering (IN) 2011
6 Qs
Instrumentation Engineering (IN) 2010
10 Qs
Instrumentation Engineering (IN) 2009
9 Qs
Instrumentation Engineering (IN) 2008
7 Qs
Instrumentation Engineering (IN) 2007
9 Qs

Browse by subtopics

Open a focused page built from the same verified paper data.

Included previous year papers

Newest papers appear first. Sort by year, question coverage or name.

PaperYear / sessionQuestions in this viewOpen
Instrumentation Engineering (IN) 202620266View paper
Instrumentation Engineering (IN) 202520258View paper
Instrumentation Engineering (IN) 202420246View paper
Instrumentation Engineering (IN) 202320237View paper
Instrumentation Engineering (IN) 202220225View paper
Instrumentation Engineering (IN) 202120218View paper
Instrumentation Engineering (IN) 202020205View paper
Instrumentation Engineering (IN) 201920197View paper
Instrumentation Engineering (IN) 201820186View paper
Instrumentation Engineering (IN) 201720176View paper
Instrumentation Engineering (IN) 201620168View paper
Instrumentation Engineering (IN) 201420147View paper
Instrumentation Engineering (IN) 2013 [Session 1]20133View paper
Instrumentation Engineering (IN) 2013 [Session 2]20132View paper
Instrumentation Engineering (IN) 2013 [Session 3]20133View paper
Instrumentation Engineering (IN) 2013 [Session 4]20133View paper
Instrumentation Engineering (IN) 201120116View paper
Instrumentation Engineering (IN) 2010201010View paper
Instrumentation Engineering (IN) 200920099View paper
Instrumentation Engineering (IN) 200820087View paper
Instrumentation Engineering (IN) 200720079View paper

Sample previous year questions

A varied preview from the papers represented in this selection, with every available option.

1
2009 · Instrumentation Engineering · Measurements · Digital Meters, Oscilloscopes and Spectrum Analysis
Instrumentation Engineering (IN) 2009
The figure shows a periodic waveform to be displayed on a CRO. A trigger setting which ensures a stationary display is
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2
2010 · Instrumentation Engineering · Measurements · Measurement Standards, Errors and Uncertainty
Instrumentation Engineering (IN) 2010

A person weighing 60 kg receives radiation energy of 0.3 J over the entire body. The dose of radiation absorbed (in rad) is

Open complete paper
3
2011 · Instrumentation Engineering · Measurements · Bridges and Electrical Quantity Measurement
Instrumentation Engineering (IN) 2011
The temperature of a furnace is monitored at a distance of 50 m away. The temperature transmitter has a range of 0−500°C and provides 4−20 mA current output. The measured temperature and the output current have a straight line relationship with positive slope. The temperature is determined from the voltage measured across a resistance of 500Ω in the current loop. If the voltage measured across the resistance is 4 V, the temperature of the furnace is
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4
2013 · Instrumentation Engineering · Measurements · Digital Meters, Oscilloscopes and Spectrum Analysis
Instrumentation Engineering (IN) 2013 [Session 1]

The circuit below incorporates a permanent magnet moving coil milli-ammeter of range 1 mA having a series resistance of 10 kΩ. Assuming constant diode forward resistance of 50 Ω, a forward diode drop of 0.7 V and infinite reverse diode resistance for each diode, the reading of the meter in mA is

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5
2013 · Instrumentation Engineering · Measurements · Measurement Standards, Errors and Uncertainty
Instrumentation Engineering (IN) 2013 [Session 2]
Two ammeters $A_1$ and $A_2$ measure the same current and provide readings $I_1$ and $I_2$, respectively. The ammeter errors can be characterized as independent zero mean Gaussian random variables of standard deviations $\sigma_1$ and $\sigma_2$, respectively. The value of the current is computed as : $I = \mu I_1 + (1-\mu) I_2$. The value of $\mu$ which gives the lowest standard deviation of $I$ is
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6
2013 · Instrumentation Engineering · Measurements · Measurement Standards, Errors and Uncertainty
Instrumentation Engineering (IN) 2013 [Session 3]
Measurement of optical absorption of a solution is disturbed by the additional stray light falling at the photo-detector. For estimation of the error caused by stray light the following data could be obtained from controlled experiments.
Photo-detector output without solution and without stray light is 500 \( \mu \)W.
Photo-detector output without solution and with stray light is 600 \( \mu \)W.
Photo-detector output with solution and with stray light is 200 \( \mu \)W.
The percent error in computing absorption coefficient due to stray light is
Open complete paper