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Python program to count the pairs of reverse strings

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 243 Views

When it is required to count the pairs of reverse strings, we need to check if each string in a list has its reverse counterpart present. A simple iteration is used to compare strings with their reversed versions. Example Below is a demonstration of counting reverse string pairs − def count_reverse_pairs(string_list): count = 0 visited = set() for i in range(len(string_list)): if i in visited: ...

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Python program to print elements which are multiples of elements given in a list

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 386 Views

When we need to find elements that are multiples of all elements in a given list, we can use list comprehension with the all() function. This approach efficiently filters elements that satisfy the multiple condition for every element in the divisor list. Example Below is a demonstration of finding multiples using list comprehension − numbers = [45, 67, 89, 90, 10, 98, 10, 12, 23] print("The list is:") print(numbers) divisors = [6, 4] print("The division list is:") print(divisors) multiples = [element for element in numbers if all(element % j == 0 for j ...

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Python - Round number of places after the decimal for column values in a Pandas DataFrame

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 586 Views

To round the number of decimal places displayed for column values in a Pandas DataFrame, you can use the display.precision option. This controls how floating-point numbers are displayed without modifying the underlying data. Setting Display Precision First, import the required Pandas library − import pandas as pd Create a DataFrame with decimal values − import pandas as pd dataFrame = pd.DataFrame({ "Car": ['BMW', 'Lexus', 'Tesla', 'Mustang', 'Mercedes', 'Jaguar'], "Reg_Price": [7000.5057, 1500, 5000.9578, 8000, 9000.75768, 6000] }) print("Original DataFrame:") print(dataFrame) ...

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Python Program to print strings based on the list of prefix

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 478 Views

When it is required to print strings based on the list of prefix elements, a list comprehension, the any() operator and the startswith() method are used. Example Below is a demonstration of the same ? my_list = ["streek", "greet", "meet", "leeks", "mean"] print("The list is:") print(my_list) prefix_list = ["st", "ge", "me", "re"] print("The prefix list is:") print(prefix_list) my_result = [element for element in my_list if any(element.startswith(ele) for ele in prefix_list)] print("The result is:") print(my_result) Output The list is: ['streek', 'greet', 'meet', 'leeks', 'mean'] The prefix list is: ['st', ...

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Python Pandas - Convert Nested Dictionary to Multiindex Dataframe

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 2K+ Views

Converting a nested dictionary to a Pandas MultiIndex DataFrame involves restructuring the dictionary keys as hierarchical column indices. This creates a DataFrame with multi-level column headers that represent the nested structure. Creating a Nested Dictionary First, let's create a nested dictionary with sports data − import pandas as pd # Create nested dictionary nested_dict = { 'Cricket': { 'Boards': ['BCCI', 'CA', 'ECB'], 'Country': ['India', 'Australia', 'England'] }, ...

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Python prorgam to remove duplicate elements index from other list

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 316 Views

When working with two lists, you may need to remove elements from the second list at positions where duplicate values occur in the first list. This can be accomplished using enumerate(), sets for tracking duplicates, and list comprehension. Problem Understanding Given two lists of the same length, we want to: Find duplicate elements in the first list Get the indices where these duplicates occur Remove elements from the second list at those duplicate indices Example Here's how to remove elements from the second list based on duplicate indices from the first list − ...

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Python Program to remove a specific digit from every element of the list

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 604 Views

When you need to remove a specific digit from every element of a list, you can use string manipulation with list comprehension and filtering techniques. Example Below is a demonstration of removing digit 3 from all list elements ? numbers = [123, 565, 1948, 334, 4598] print("The list is:") print(numbers) digit_to_remove = 3 print("The digit to remove is:") print(digit_to_remove) result = [] for element in numbers: # Convert to string and filter out the specific digit filtered_digits = ''.join([digit for digit in str(element) if ...

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Python Program to check whether all elements in a string list are numeric

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 3K+ Views

When working with string lists, you often need to check whether all elements contain only numeric characters. Python provides the all() function combined with isdigit() method to accomplish this task efficiently. Using all() and isdigit() The all() function returns True if all elements in an iterable are true, and isdigit() checks if a string contains only digits ? my_list = ["434", "823", "98", "74", "9870"] print("The list is:") print(my_list) my_result = all(ele.isdigit() for ele in my_list) if my_result: print("All the elements in the list are numeric") else: ...

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Python Program to Extract Rows of a matrix with Even frequency Elements

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 292 Views

When working with matrices (lists of lists), we sometimes need to extract rows where each element appears an even number of times. This can be achieved using list comprehension with the all() function and Counter from the collections module. Understanding Even Frequency A row has "even frequency elements" when every unique element in that row appears an even number of times (2, 4, 6, etc.). For example: [1, 1, 2, 2] − Element 1 appears 2 times, element 2 appears 2 times (both even) [3, 3, 3, 4] − Element 3 appears 3 times (odd), so ...

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Python Pandas – Display all the column names in a DataFrame

AmitDiwan
AmitDiwan
Updated on 26-Mar-2026 1K+ Views

To display all the column names in a Pandas DataFrame, use the DataFrame.columns attribute. This returns an Index object containing all column names. Creating a DataFrame First, let's create a sample DataFrame ? import pandas as pd # Create a DataFrame dataFrame = pd.DataFrame({ "Car": ['BMW', 'Audi', 'BMW', 'Lexus', 'Tesla', 'Lexus', 'Mustang'], "Place": ['Delhi', 'Bangalore', 'Hyderabad', 'Chandigarh', 'Pune', 'Mumbai', 'Jaipur'], "Units": [100, 150, 50, 110, 90, 120, 80] }) print("DataFrame:") print(dataFrame) DataFrame: ...

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