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Programs · Program 3-3

Q.Write the statements to display the minimum marks obtained by a particular student 'Mishti' in all the unit tests for each subject.

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Select only Mishti's rows with a Boolean mask, then take .min() on just the five subject columns — the subject list is given explicitly on purpose, so the (numerically meaningless) UT column doesn't get mixed into the result.

Step 1 — filter to Mishti's rows

dfMishti = df.loc[df.Name == 'Mishti']
print('\nMarks obtained by Mishti in all the Unit Tests\n\n', dfMishti)

Output:

Marks obtained by Mishti in all the Unit Tests
     Name  UT  Maths  Science  S.St  Hindi  Eng
9   Mishti   1     15       22    25     22   22
10  Mishti   2     18       21    25     24   23
11  Mishti   3     17       18    20     25   20

Step 2 — minimum across her 3 rows, subject by subject

dfMishtiMarks = dfMishti[['Maths','Science','S.St','Hindi','Eng']]
print(dfMishtiMarks.min())

Output:

Maths      15
Science    18
S.St       20
Hindi      22
Eng        20
dtype: int64

Why the subject columns are named explicitly

dfMishti.min() (with no column selection) would return a value for every column, including UT (whose minimum, 1, is a test number, not a mark) and Name (whose "minimum" would just be the constant text 'Mishti', since all three rows share it). Neither is useful here — the question only wants the lowest mark per subject. Naming ['Maths','Science','S.St','Hindi','Eng'] explicitly keeps the result to exactly the five real subjects, matching the answer the textbook itself gives.

How this differs from the overall class minimum

Compare Mishti's own minimums above to df.min() computed over the whole class (all 12 rows, no filter):

print(df.min())
Name       Ashravy
UT               1
Maths           12
Science         15
S.St            15
Hindi           15
Eng             13
dtype: object
``` …

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