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Each week Mohammad S. Anwar sends out The Weekly Challenge, a chance for all of us to come up with solutions to two weekly tasks. My solutions are written in Python first, and then converted to Perl. It's a great way for us all to practice some coding.
Challenge, My solutions
You are given a list of routes, @routes.
Write a script to find the destination with no further outgoing connection.
This is pretty straight forward so doesn't need too much explanation. I compute two lists, origins has the first values from the routes list while destinations has the second value.
I then use list comprehension to find destinations that are not in the origins list, and store this as dead_ends. I raise an error if there is not exactly one item in this list.
def no_connection(routes: list) -> str: origins = [v[0] for v in routes] destinations = [v[1] for v in routes] dead_ends = [d for d in destinations if d not in origins] if len(dead_ends) > 1: raise ValueError( 'There are multiple routes with no outgoing connection') if len(dead_ends) == 0: raise ValueError('All routes have an outgoing connection') return dead_ends[0]
$ ./ch-1.py B C C D D A A $ ./ch-1.py A Z Z
Compute the number of ways to make change for given amount in cents. By using the coins e.g. Penny, Nickel, Dime, Quarter and Half-dollar, in how many distinct ways can the total value equal to the given amount? Order of coin selection does not matter.
Due to a (now fixed) bug in my code, this took a little longer to complete than I had hoped. I know both Python and Perl have a debugger, but some time you can't beat print statements :)
It's been a while since we have a task that calls for the use of a recursive function. For this task, I have a recursive function called making_change which takes the remaining change, and the last used coin. The first call sets the remaining_change value to the input and the last_coin value to None (undef in Perl).
Each call iterates through the possible coins, and does one of three things:
The combinations value is passed upstream so the final return will have the correct number of combinations.
def making_change(remaining: int, last_coin: int | None = None) -> int: combinations = 0 for coin in [1, 5, 10, 25, 50]: if last_coin and last_coin < coin: continue if coin == remaining: combinations += 1 if coin < remaining: combinations += making_change(remaining-coin, coin) return combinations
There are limits on recursion. Perl will warn when a recursion is (100 deep)[https://perldoc.perl.org/perldiag#Deep-recursion-on-subroutine-%22%25s%22]. This value can only be changed by recompiling Perl. By default, Python will raise a (ResursionError)[https://docs.python.org/3/library/exceptions.html#RecursionError] after 995 recursions, although this value can be modified at runtime.
$ ./ch-2.py 9 2 $ ./ch-2.py 15 6 $ ./ch-2.py 100 292
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