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Python | Check if all the values in a list that are greater than a given value

Given a list, print all the values in a list that are greater than the given value 

 Examples:

Input : list = [10, 20, 30, 40, 50] 
        given value = 20 
Output : No

Input : list = [10, 20, 30, 40, 50] 
        given value = 5 
Output : Yes

Method 1: Traversal of list

By traversing in the list, we can compare every element and check if all the elements in the given list are greater than the given value or not. 

Implementation:

Python




# python program to check if all
# values in the list are greater
# than val using traversal
 
def check(list1, val):
     
    # traverse in the list
    for x in list1:
 
        # compare with all the values
        # with val
        if val>= x:
            return False
    return True
     
     
# driver code
list1 =[10, 20, 30, 40, 50, 60]
val = 5
if(check(list1, val)):
    print"Yes"
else:
    print"No"
 
val = 20
if(check(list1, val)):
    print"Yes"
else:
    print"No"


Output

Yes
No

Time Complexity: O(n)
Auxiliary Space: O(1)

Method 2: Using all() function:

Using all() function we can check if all values are greater than any given value in a single line. It returns true if the given condition inside the all() function is true for all values, else it returns false. 

Implementation:

Python




# python program to check if all
# values in the list are greater
# than val using all() function
 
def check(list1, val):
    return(all(x > val for x in list1))
     
     
# driver code
list1 =[10, 20, 30, 40, 50, 60]
val = 5
if(check(list1, val)):
    print"Yes"
else:
    print"No"
 
val = 20
if (check(list1, val)):
    print"Yes"
else:
    print"No"


Output

Yes
No

Time Complexity: O(n)
Auxiliary Space: O(1)

Method 3 : Using min() method

Python3




# python program to check if all
# values in the list are greater
# than val
list1 =[10, 20, 30, 40, 50, 60]
val = 5
if(min(list1)>=val):
    print("Yes")
else:
    print("No")


Output

Yes

Time Complexity: O(n)
Auxiliary Space: O(1)

Method 4: Using any function

One approach is using a generator expression with the any function.

Here is an example of how this can be implemented:

Python3




def check_greater(lst, val):
    return not any(x <= val for x in lst)
 
list1 = [10, 20, 30, 40, 50]
val = 20
print(check_greater(list1, val)) # False
 
val = 5
print(check_greater(list1, val)) # True


Output

False
True

Time complexity: O(n), where n is length of list
Auxiliary Space: O(n)

Method #5:Using filter()+lambda functions

Python3




# python program to check if all
# values in the list are greater
 
 
def check(list1, val):
    return(len(list(filter(lambda x: x > val, list1))) == len(list1))
 
 
# driver code
list1 = [10, 20, 30, 40, 50, 60]
val = 5
if(check(list1, val)):
    print("Yes")
else:
    print("No")
val = 20
if (check(list1, val)):
    print("Yes")
else:
    print("No")


Output

Yes
No

Time Complexity : O(N)
Auxiliary Space : O(N)

Method#6: Using Recursive method.

Algorithm:

  1. The check function takes two arguments: list1 and val.
  2. If the length of the list is 0, the function returns True, since an empty list has no elements that could be less than val.
  3. Otherwise, the function checks if the first element in the list is greater than val.
  4. If it is, the function calls itself with the rest of the list (from the second element onward) and the same value val.
  5. If it is not, the function returns False, since not all the elements in the list are greater than val.

Python3




# python program to check if all
# values in the list are greater
# than val using Recursive function
 
def check(list1, val):
    # Base case: if the list is empty, return True
    if len(list1) == 0:
        return True
     
    # Recursive case: check if the first element is greater than val,
    # and if so, call the function recursively with the rest of the list
    # and the same value val. Otherwise, return False.
    if list1[0] > val:
        return check(list1[1:], val)
    else:
        return False
 
     
     
# driver code
list1 =[10, 20, 30, 40, 50, 60]
val = 5
if(check(list1, val)):
    print("Yes")
else:
    print("No")
 
val = 20
if(check(list1, val)):
    print("Yes")
else:
    print("No")
#this code contributed by tvsk


Output

Yes
No

The time complexity of the check() function is O(n), where n is the length of the input list. This is because the function recursively calls itself on a smaller input size until it reaches the base case, which will happen after n iterations if the list is of length n.

The space complexity of the check() function is O(n), where n is the maximum depth of the recursion. In the worst case, the recursion depth will be equal to the length of the input list, so the space complexity is O(n). This is because each function call creates a new stack frame on the call stack, which consumes memory, and this stack grows until the base case is reached.

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