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Let's consider given a list [4, 5, 2, 19, 3, 8, 9] and given number is 8 then the output should be [4, 5, 2] because in output list there is no element greater than 8 and it is the only list with highest number of consecutive number. Please tell me the code in python 3 *NOTE: Please tell the logic without using import module. Here is my code

test_cases = int(input())
for test_case in range(test_cases):
    n_and_c = list(map(int, input().split()))
    no_of_plots = n_and_c[0]
    max_cost_of_each_plot = n_and_c[1]
    list_of_cost_of_each_plot = list(map(int, input().split()))

    def list_of_required_plots(l_plots, m_plot):
        r = []
        for i in l_plots:
            for j in range(len(l_plots)-1):
                if i < m_plot:
                    r.append(i)        
        return r


    def list_of_eligible_plots(l_plots, r_plots):
        e = []
        e.append(r_plots[0])
        for i in range(len(r_plots) - 1):
            idx = l_plots.index(r_plots[i])
            lp = 0
            for j in range(len(r_plots)-1):
                if l_plots[idx+lp] == r_plots[i+lp] :
                        e.append(r_plots[i+lp])
                        lp+=1
                else:
                    break
            return e



    def max_profit_func(r_plots, m_plot):
        m = 0
        for i in r_plots:
            m+=(m_plot - i)
        return m


    required_plots = list_of_required_plots(list_of_cost_of_each_plot, max_cost_of_each_plot)

    eligible_plots = list_of_eligible_plots(list_of_cost_of_each_plot, required_plots)

    print(eligible_plots)
    if len(required_plots) == 0:
        print(0)
    else:
        max_profit = max_profit_func(eligible_plots, max_cost_of_each_plot)

        print(max_profit)

I am trying to get the explained output for list_of_eligible_plots() in my code. Please any one help or suggest any logic.

Thanks in advance

  • [4, 5, 2] is not consecutive, and neither is [19, 3, 8, 9] or [19, 3, 9]. Can you clarify? – Ajax1234 Aug 3 '18 at 16:39
  • [4, 5, 2] are consecutive with their index values [4, 5, 2] their index is 0, 1, 2 if u need any clarity, please ask. – shaik moeed Aug 3 '18 at 16:42
  • What about [4, 5, 2, 19, 3, 7, 8, 9]? Why do you have this absurd restriction: "NOTE: Please tell the logic without using import module."? – jpmc26 Aug 3 '18 at 17:54
  • As i am submitting this in online assignments, it won't allow other modules. – shaik moeed Aug 3 '18 at 18:32
  • @shaikmoeed So you want us to fix your homework without you explaining exactly what the problem you're having is or narrowing down the code to only the relevant parts or giving an unrelated MCVE. This is very much frowned upon, and it's academically dishonest. – jpmc26 Aug 15 '18 at 2:17
0

Just keep a "max list" and update it as you go.

maxList = []
currList = []
lst = [4,5,2,19,3,8,9]
n = 8
for x in lst:
   if x < n:
       currList.append(x)
       if len(currList) > len(maxList):
           maxList = currList
   else:
       currList = []

I'm pretty sure that will work

  • Thanks you @JimNeedsCofee this helps me. – shaik moeed Aug 3 '18 at 17:30
0

Time for takewhile:

from itertools import takewhile

lst = [4, 5, 2, 19, 3, 8, 9] 
print(list(takewhile(lambda x: x < 8, lst)))

# [4, 5, 2]

How?

Make an iterator that returns elements from the iterable as long as the predicate is true.

0

For grouping elements you can use groupby from itertools (docs here). This code snippet will find sublist with maximal consecutive elements that each element <= number (8 in this case):

from itertools import groupby

l = [4, 5, 2, 19, 3, 8, 9]
number = 8

print(max([list(g) for v, g in groupby(l, key=lambda v: v <= number) if v], key=len))

This will print:

[4, 5, 2]

EDIT (to explain):

1.step is to find groups where elements are <= of selected number:

for v, g in groupby(l, key=lambda v: v <= number):
    print(v, list(g))

Prints:

True [4, 5, 2]
False [19]
True [3, 8]
False [9]

2.step is filter out False groups:

print([list(g) for v, g in groupby(l, key=lambda v: v <= number) if v])

Prints:

[[4, 5, 2], [3, 8]]

3.step is find sublist with maximum number of elements (max() function with key argument, as key we use len() function):

print(max([list(g) for v, g in groupby(l, key=lambda v: v <= number) if v], key=len))

Prints:

[4, 5, 2]
  • As i am submitting this in online challenges, i can't import modules. kindly suggest logic. – shaik moeed Aug 3 '18 at 16:51
  • @shaikmoeed I updated my answer. – Andrej Kesely Aug 3 '18 at 17:02
  • @shaikmoeed The groupby documentation contains equivalent Python code that you can use to define groupby locally – Patrick Haugh Aug 3 '18 at 17:04
0

You can use itertools.takewhile for finding all sub lists that are less than 8 and then use max to find the biggest list

>>> from itertools import takewhile, chain
>>> lst = [4, 5, 2, 19, 3, 8, 9] 
>>> n = 8
>>> itr = iter(lst)
>>> max((list(chain([f], takewhile(lambda x: x<n, itr))) for f in itr), key=len)
[4, 5, 2]

If you dont want to import itertools methods chain and takewhile, you can define it yourself

def takewhile(predicate, iterable):
    # takewhile(lambda x: x<5, [1,4,6,4,1]) --> 1 4
    for x in iterable:
        if predicate(x):
            yield x
        else:
            break

def chain(*iterables):
    # chain('ABC', 'DEF') --> A B C D E F
    for it in iterables:
        for element in it:
            yield element
  • As i am submitting this code in online challenges, I can't use modules in my code. kindly suggest logic. – shaik moeed Aug 3 '18 at 16:55
  • @shaikmoeed. Updated with the definitions of takewhile and chain from itertools. So you dont have to import any module – Sunitha Aug 3 '18 at 17:32

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