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mamadou diene
Python Web Development Techdegree Student 1,971 PointsGreat work! OK, let's create something a bit more refined. Create a new function named covers_all that takes a single s
i am lost in this one
COURSES = {
"Python Basics": {"Python", "functions", "variables",
"booleans", "integers", "floats",
"arrays", "strings", "exceptions",
"conditions", "input", "loops"},
"Java Basics": {"Java", "strings", "variables",
"input", "exceptions", "integers",
"booleans", "loops"},
"PHP Basics": {"PHP", "variables", "conditions",
"integers", "floats", "strings",
"booleans", "HTML"},
"Ruby Basics": {"Ruby", "strings", "floats",
"integers", "conditions",
"functions", "input"}
}
def covers(arg):
list_of_courses= []
for key, value in COURSES.items():
if value & arg:
list_of_courses.append(key)
return list_of_courses
def covers_all(arg):
list_of_all_courses = []
for course in COURSES.items():
if arg & COURSES [course] == arg:
list_of_all_courses.append(course)
return list_of_all_courses
1 Answer
Kenichi Beveridge
8,734 PointsH Mamadou,
The solution I used for the second part checks that both sets have the same values.
it's quite similar to the first task but also checking to see if the intersection set is identical to the argument set
def covers_all(arg):
course_list = []
for key, value in COURSES.items():
if (arg & value) == arg:
course_list.append(key)
return course_list
Hope this helps