working but disorganized outcome import workflow
This commit is contained in:
parent
e53ee2b698
commit
6dfbb913e0
22
courses.py
22
courses.py
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@ -1861,6 +1861,27 @@ def list_all_assignments():
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print(f"{a['name']}\t{p}\t{date}")
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def bulk_unenroll():
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course_id = input("course id> ")
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enrollments = fetch(f"{url}/api/v1/courses/{course_id}/enrollments")
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for enrollment in enrollments:
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enrollment_id = enrollment['id']
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skiplist = ['51237','58362','237']
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if enrollment_id in skiplist:
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continue
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# Set the headers and parameters for the DELETE API call
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api_url = f"{url}/api/v1/courses/{course_id}/enrollments/{enrollment_id}"
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# Make the DELETE request
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response = requests.delete(api_url, headers=header)
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# Check the response
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if response.status_code == 200:
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print(f"Successfully unenrolled student with id {enrollment_id} from course {course_id}.")
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else:
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print(f"Failed to unenroll student with id {enrollment_id} from course {course_id}. Error: {response.text}")
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@ -1907,6 +1928,7 @@ if __name__ == "__main__":
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40: ['Enroll GOTT Workshops', enroll_gott_workshops_su23],
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42: ['Add teacher to many shells', teacher_to_many_shells],
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43: ['Bulk unenroll from course', bulk_unenroll],
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# 24: ['Add course evals to whole semester',instructor_list_to_activate_evals],
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# 21: ['Add announcements to homepage', change_course_ann_homepage],
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# TODO wanted: group shell for each GP (guided pathway) as a basic student services gateway....
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@ -14,8 +14,11 @@ displaynames = []
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from canvas_secrets import cq_user, cq_pasw
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from outcomes import quick_add_course_outcomes
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CQ_URL = "https://secure.curricunet.com/scripts/webservices/generic_meta/clients/versions/v4/gavilan.cfc"
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CQ_URL = "https://mws.services.curriqunet.com/scripts/webservices/generic_meta/clients/versions/v4/gavilan.cfc"
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PARAM = "?returnFormat=json&method=getCourses"
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user = cq_user
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@ -669,6 +672,7 @@ def another_request(url,startat):
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newparam = "&skip=" + str(startat)
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print((url+newparam))
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r = requests.get(url+newparam, auth=(user,pasw))
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#print(r.text)
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try:
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mydata = json.loads(r.text, strict=False)
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except Exception as e:
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@ -851,11 +855,11 @@ if __name__ == "__main__":
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options = { 1: ['fetch all courses', fetch_all_classes],
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2: ['process all classes', path_style_test],
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3: ['courses - path style to html catalog', course_path_style_2_html],
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4: ['courses - rank by all versions', course_rank],
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5: ['fetch all programs', fetch_all_programs],
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6: ['process all programs', path_style_prog],
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9: ['show course outcomes', all_outcomes],
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10: ['programs - path style to html catalog', path_style_2_html],
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4: ['show course outcomes', all_outcomes],
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5: ['courses - rank by all versions', course_rank],
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10: ['fetch all programs', fetch_all_programs],
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11: ['process all programs', path_style_prog],
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12: ['programs - path style to html catalog', path_style_2_html],
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}
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print ('')
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@ -13,6 +13,8 @@ f = codecs.open('cache/slo/log.txt','w','utf-8')
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VERBOSE = 1
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TERM = '180'
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SLO_CURRENT_SOURCE = 'cache/slo/2018_slo.csv' # term 21
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#SLO_CURRENT_SOURCE = 'cache/slo/2020_slo.csv'
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@ -294,7 +296,7 @@ def create_dept_group(short):
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r = requests.post(t,data=new_group, headers=header)
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print(r.text)
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def outcomes_attached_to_courses(term=65,limitdept=''):
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def outcomes_attached_to_courses(term=TERM,limitdept=''):
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# For each class in a term, check to see if it has outcomes and/or
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# an outcome group attached to it.
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courses = getCoursesInTerm(term,show=0,active=0)
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@ -840,7 +842,7 @@ def all_linked_outcomes_in_term(termid=''):
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#terms = [172,174,176,178]
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#for t in terms:
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# all_linked_outcomes_in_term_sub(str(t))
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all_linked_outcomes_in_term_sub('180')
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all_linked_outcomes_in_term_sub(TERM)
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def all_linked_outcomes_in_term_sub(termid=''):
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@ -1277,7 +1279,7 @@ def parse_ilearn_course_names_ALLSEMESTERS():
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def parse_ilearn_course_names(term='178',fresh=0,log=0):
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def parse_ilearn_course_names(term=TERM,fresh=0,log=0):
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non_matches = []
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courses = getCoursesInTerm(term,get_fresh=fresh)
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410
outcomes2022.py
410
outcomes2022.py
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@ -13,7 +13,8 @@
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# + Whether they are present in the relevant classes in iLearn
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# + Insert SLO into course if not present
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# + Mark as inactive (change name) if necessary
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#
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# - Update shell with correct outcomes
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# - Issue:
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# + Course naming / sections joined...
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@ -21,16 +22,16 @@
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import concurrent.futures
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import pandas as pd
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from pipelines import fetch, url, header
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from courses import getCoursesInTerm
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import codecs, json
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from outcomes import quick_add_course_outcomes, code_from_ilearn_name, all_linked_outcomes_in_term
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from courses import getCoursesInTerm, getCourses
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import codecs, json, sys, re, csv, requests, textwrap
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from path_dict import PathDict
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outputfile = ''
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csvwriter = ''
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NUM_THREADS = 20
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get_fresh = 0
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TERM = 180
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TERM = 180 # fa23
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sem_courses = getCoursesInTerm(TERM,get_fresh)
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def escape_commas(s):
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if ',' in s:
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@ -38,15 +39,34 @@ def escape_commas(s):
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else:
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return s
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# shorter list for test?
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#sem_courses = sem_courses[:50]
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print("Got %i courses in current semester." % len(sem_courses))
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def add_outcome_to_course(shell_id=''):
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if shell_id == '':
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shell_id = input("Enter shell id > ")
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course = getCourses(str(shell_id))
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dept, code, crn = code_from_ilearn_name(course['name'])
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print(f"{dept} {code} {crn} for course named: {course['name']}")
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#xyz = input(f"Using: {code} for {course['name']}. Enter a different code, q to skip or press enter to continue > ")
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#if xyz == 'q':
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# return
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#if xyz != '':
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# code = xyz
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cq_course_id = find_recent_cqcourseid(code)
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oc = codecs.open('cache/courses/alloutcomes.csv','r','utf-8')
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reader = csv.reader(oc)
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cols = next(reader) # skip header
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# Filter rows matching the code
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rows = [row for row in reader if row[1] == cq_course_id]
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rows_dicts = [ {cols[i]: r[i] for i in range(len(cols))} for r in rows ]
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#abc = input(f"Using outcomes:\n{rows_dicts}\n\nPress enter to continue > ")
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quick_add_course_outcomes(shell_id, rows_dicts)
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outputfile = codecs.open(f'cache/slo/outcomes_bycourse_{TERM}.output.txt','w','utf-8')
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outputfile.write( "coursename,assessed,courseid,outcome_id,points,title,displayname,description,guid\n")
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def course_slo_getter(q):
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global outputfile, csvwriter
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(name,id) = q
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info = {'ilearnname':name,'ilearnid':id}
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print(" + Thread getting %s %s" % (str(name),str(id)))
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@ -70,6 +90,8 @@ def course_slo_getter(q):
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og['full_outcomes'][this_outcome['id']] = this_outcome
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saveme = [name, this_outcome['assessed'], id, this_outcome['id'], this_outcome['points_possible'], this_outcome['title'], this_outcome['display_name'], this_outcome['description'], this_outcome['vendor_guid'] ]
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saveme2 = [escape_commas(str(x)) for x in saveme]
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csvwriter.writerow([id, name, og['id'], this_outcome['id'], this_outcome['vendor_guid'], this_outcome['points_possible'], this_outcome['mastery_points'], this_outcome['assessed'], this_outcome['description']])
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outputfile.write(",".join(saveme2) + "\n")
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outputfile.flush()
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if type(og_for_course) == list:
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@ -79,25 +101,43 @@ def course_slo_getter(q):
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print(" - Thread %s DONE" % str(id))
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return og_for_course
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raw_log = codecs.open('cache/outcome_raw_log.txt','w','utf-8')
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#raw_log.write( json.dumps(output,indent=2) )
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output = []
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with concurrent.futures.ThreadPoolExecutor(max_workers=NUM_THREADS) as pool:
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futures = []
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for C in sem_courses:
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print("Adding ", C['name'], C['id'], " to queue")
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futures.append( pool.submit(course_slo_getter, [C['name'], C['id']] ) )
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for future in concurrent.futures.as_completed(futures):
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output.append(future.result())
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print(future.result())
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raw_log.write( json.dumps(future.result(),indent=2) + "\n" )
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#print("-- Done")
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#print("results array has %i items" % len(results))
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# I duplicate???
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def outcomes_in_shell(course_id):
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print(f"Getting root outcome group for course id {course_id}")
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root_og = fetch(f"{url}/api/v1/courses/{course_id}/root_outcome_group")
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print(f"Getting outcomes")
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u1 =f"{url}/api/v1/courses/{course_id}/outcome_groups/{root_og['id']}/outcomes"
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outcomes_list = fetch( u1 )
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the_outcomes = []
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#for r in concurrent.futures.as_completed(results):
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# output.append(r.result())
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if 'errors' in outcomes_list:
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print(f"Error: {outcomes_list}")
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if len(outcomes_list):
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for oo in outcomes_list:
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print(f"Getting outcome id {oo['outcome']['id']}")
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outcome = fetch( url + '/api/v1/outcomes/%s' % str(oo['outcome']['id']) )
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outcome['parent_group'] = root_og['id']
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the_outcomes.append(outcome)
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u2 = f"{url}/api/v1/courses/{course_id}/outcome_groups/{root_og['id']}/subgroups"
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g2 = fetch( u2 )
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for subgroup in g2:
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print("doing subgroup id %s" % str(subgroup['id']))
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u3 = f"{url}/api/v1/courses/{course_id}/outcome_groups/{subgroup['id']}/outcomes"
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outcomes_list = fetch( u3 )
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if 'errors' in outcomes_list:
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print(f"Error: {outcomes_list}")
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continue
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if len(outcomes_list):
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for oo in outcomes_list:
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outcome = fetch( f"{url}/api/v1/outcomes/{oo['outcome']['id']}" )
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outcome['parent_group'] = subgroup['id']
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the_outcomes.append(outcome)
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return root_og, the_outcomes, g2
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def ilearn_shell_slo_to_csv(shell_slos):
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@ -148,9 +188,323 @@ def ilearn_shell_slo_to_csv(shell_slos):
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print(df)
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def get_outcomes_term_index():
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global outputfile, csvwriter
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NUM_THREADS = 20
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get_fresh = 0
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sem_courses = getCoursesInTerm(TERM,get_fresh)
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# shorter list for test?
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#sem_courses = sem_courses[:50]
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print("Got %i courses in current semester." % len(sem_courses))
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outputfile = codecs.open(f'cache/slo/outcomes_bycourse_{TERM}.output.txt','w','utf-8')
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outputfile.write( "coursename,assessed,courseid,outcome_id,points,title,displayname,description,guid\n")
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csvfile = codecs.open(f'cache/slo/linked_slos_term_{TERM}_compact.csv','w','utf-8')
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csvwriter = csv.writer(csvfile)
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csvwriter.writerow('courseid coursename ogid oid vendorguid points mastery assessed desc'.split(' '))
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raw_log = codecs.open('cache/outcome_raw_log.txt','w','utf-8')
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#raw_log.write( json.dumps(output,indent=2) )
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output = []
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with concurrent.futures.ThreadPoolExecutor(max_workers=NUM_THREADS) as pool:
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futures = []
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for C in sem_courses:
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print("Adding ", C['name'], C['id'], " to queue")
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futures.append( pool.submit(course_slo_getter, [C['name'], C['id']] ) )
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for future in concurrent.futures.as_completed(futures):
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output.append(future.result())
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print(future.result())
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raw_log.write( json.dumps(future.result(),indent=2) + "\n" )
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csvfile.close()
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ilearn_shell_slo_to_csv(output)
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def classify_shell(lines):
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# given a list of lines like this, determine status of shell
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# (from linked_slos_term_180_compact.csv) outcomes.py all_linked_outcomes_in_term()
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#
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# courseid,coursename,ogid,oid,vendorguid,points,mastery,assessed,desc
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# 16909,AH11 FA23 10003/10014/12251,10860,819,,5,3,False,Use scientific facts and principles to critically analyze nutrition information and use the information to assess personal diet and the diets of other cultures.
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# 16909,AH11 FA23 10003/10014/12251,10860,820,,5,3,False,Evaluate nutrition information for accuracy and reliability.
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# 16909,AH11 FA23 10003/10014/12251,10860,821,,5,3,False,Analyze and identify the relationship between nutrition and health.
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# 16909,AH11 FA23 10003/10014/12251,10860,822,,5,3,False,Differentiate among food habits and practices related to traditional foods and preparation techniques in selected cultures or religions.
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# 16909,AH11 FA23 10003/10014/12251,10860,823,,5,3,False,Analyze nutritional problems of selected cultures and create a nutritionally balanced menu.
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#
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# 1. number of outcomes
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# 2. points are correct (max=3,mastery=2) or incorrect (max=5,mastery=3)
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# 3. assessed or not
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course_status = {'outcome_count':0, 'id':0, 'name':'', 'assessed_count':0, 'points_ok':1}
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for L in lines:
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#print(L)
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#L = L.split(',')
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course_status['outcome_count'] += 1
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course_status['id'] = L[0]
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course_status['name'] = L[1]
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outcome_status = {'courseid':L[0],'coursename':L[1],'ogid':L[2],'oid':L[3],'vendorguid':L[4],'points':L[5],'mastery':L[6],'assessed':L[7],'desc':L[8], 'pointscorrect':0}
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if L[5] == '5' and L[6] == '3':
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outcome_status['pointscorrect'] = 0
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course_status['points_ok'] = 0
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elif (L[5] == '3.0' or L[5] == '3') and L[6] == '2':
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outcome_status['pointscorrect'] = 1
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else:
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outcome_status['pointscorrect'] = -1
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if L[7] == 'True':
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course_status['assessed_count'] += 1
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return course_status
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def find_recent_cqcourseid(code):
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# code example: CSIS42
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with open('cache/courses/all_courses_ranked.csv', 'r') as f:
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reader = csv.reader(f)
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next(reader) # skip header
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# Filter rows matching the code
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rows = [row for row in reader if row[0] == code]
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print(f"All entries for {code}:\n{rows}")
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if not rows:
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raise ValueError(f"No rows found for code {code}")
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# Sort by 'termineffect', in descending order
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rows.sort(key=lambda row: row[3], reverse=True)
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# Return cqcourseid of the first row
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myrow = rows[0][1]
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print(f"Using: {myrow}")
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return myrow
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def remove_old_outcomes(course_id):
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root_og, current_outcomes, subgroups = outcomes_in_shell(course_id)
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print(f"Got {len(current_outcomes)} outcomes for course id {course_id}")
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print(f"Current outcomes:\n{json.dumps(current_outcomes,indent=2)}")
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# Try deleting them
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if 1:
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for deleted_outcome in current_outcomes:
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print(f"Deleting outcome id {deleted_outcome['id']}")
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u9 = f"{url}/api/v1/courses/{course_id}/outcome_groups/{deleted_outcome['parent_group']}/outcomes/{deleted_outcome['id']}"
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print(u9)
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# make the DELETE request (update with your actual access token)
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response = requests.delete(u9, headers=header)
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# check the status of the request
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if response.status_code == 200:
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print(' Delete operation was successful')
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else:
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print(' Failed to delete, response code:', response.status_code)
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print(' Response message:', response.text)
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def repair_outcome_points(course_id):
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# Compare to what Outcomes SHOULD be
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course = getCourses(course_id)
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dept, code, crn = code_from_ilearn_name(course['name'])
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xyz = input(f"Using: {code} for {course['name']}. Enter a different code or press enter to continue > ")
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if xyz != '':
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code = xyz
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cq_course_id = find_recent_cqcourseid(code)
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oc = codecs.open('cache/courses/alloutcomes.csv','r','utf-8')
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reader = csv.reader(oc)
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cols = next(reader) # skip header
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||||
# Filter rows matching the code
|
||||
rows = [row for row in reader if row[1] == cq_course_id]
|
||||
rows_dicts = [ {cols[i]: r[i] for i in range(len(cols))} for r in rows ]
|
||||
abc = input(f"Using outcomes:\n{json.dumps(rows_dicts,indent=2)}\n\nPress enter to continue > ")
|
||||
|
||||
|
||||
return
|
||||
|
||||
outcome_id = 0
|
||||
|
||||
data = {
|
||||
'mastery_points': '2',
|
||||
'calculation_method': 'decaying_average',
|
||||
'calculation_int': '65',
|
||||
'ratings[0][description]': 'Exceeds Expectations',
|
||||
'ratings[0][points]': '3',
|
||||
'ratings[1][description]': 'Meets Expectations',
|
||||
'ratings[1][points]': '2',
|
||||
'ratings[2][description]': 'Does Not Meet Expectations',
|
||||
'ratings[2][points]': '0'
|
||||
}
|
||||
|
||||
response = requests.put(f'{url}/api/v1/outcomes/{outcome_id}.json', headers=header, data=data)
|
||||
|
||||
if response.status_code == 200:
|
||||
print(f"Successfully updated outcome with id {outcome_id}.")
|
||||
else:
|
||||
print(f"Failed to update outcome with id {outcome_id}. Error: {response.text}")
|
||||
|
||||
def add_o_dept_dry_run():
|
||||
add_o_dept(1)
|
||||
|
||||
|
||||
def add_o_dept(dry_run=0):
|
||||
d = input("Enter dept or deps separated with a space > ")
|
||||
d_list = d.split(' ')
|
||||
course_groups = full_term_overview(0)
|
||||
|
||||
dept_shells_to_add = [ a for a in course_groups['no outcomes'] if a['dept'] in d_list ]
|
||||
sorted_dept_shells_to_add = sorted(dept_shells_to_add, key=lambda x: f"{x['dept']}{x['code']}")
|
||||
|
||||
print(f"Adding to {len(sorted_dept_shells_to_add)} shells.")
|
||||
|
||||
for shell in sorted_dept_shells_to_add:
|
||||
print(f"Adding outcomes to {shell['name']}")
|
||||
if not dry_run:
|
||||
try:
|
||||
add_outcome_to_course(shell['id'])
|
||||
except Exception as e:
|
||||
print(f"Failed on {shell['id']}: {e}")
|
||||
else:
|
||||
print(" Dry run, not adding")
|
||||
|
||||
def remove_all_bad_points():
|
||||
course_groups = full_term_overview(0)
|
||||
|
||||
dept_shells_to_zap = [ a for a in course_groups['fix_points'] ]
|
||||
for shell in dept_shells_to_zap:
|
||||
print(f"Removing outcomes from {shell['name']}")
|
||||
remove_old_outcomes(shell['id'])
|
||||
|
||||
|
||||
def full_term_overview(verbose=1):
|
||||
out2 = codecs.open(f'cache/slo_status_{TERM}.json','w','utf-8')
|
||||
out3 = codecs.open(f'cache/slo_status_{TERM}.txt','w','utf-8')
|
||||
fn1 = f"cache/courses_in_term_{TERM}.json"
|
||||
all_courses = json.loads(codecs.open(fn1,'r','utf-8').read())
|
||||
all_courses_status = {}
|
||||
|
||||
# default values for all courses
|
||||
for C in all_courses:
|
||||
dept,code,crn = code_from_ilearn_name(C['name'])
|
||||
all_courses_status[str(C['id'])] = {'outcome_count':0, 'id':C['id'], 'name':C['name'], 'dept':dept, 'code':code, 'crn':crn, 'assessed_count':0, 'points_ok':1}
|
||||
|
||||
# read the existing ilearn outcomes and group by shell
|
||||
filename = f"cache/slo/linked_slos_term_{TERM}_compact.csv"
|
||||
with open(filename, 'r') as csvfile:
|
||||
reader = csv.reader(csvfile)
|
||||
next(reader) # skip header
|
||||
|
||||
# Read the rows into a list
|
||||
rows = list(reader)
|
||||
|
||||
# Sort the rows based on a specific column (e.g., column 0)
|
||||
sorted_rows = sorted(rows, key=lambda x: x[0])
|
||||
|
||||
groups = []
|
||||
current_group = []
|
||||
last_courseid = None
|
||||
for row in sorted_rows:
|
||||
courseid = row[0]
|
||||
if last_courseid != courseid and current_group:
|
||||
# courseid changed from last row to current row
|
||||
groups.append(current_group)
|
||||
current_group = []
|
||||
current_group.append(row)
|
||||
last_courseid = courseid
|
||||
|
||||
# append the last group if any
|
||||
if current_group:
|
||||
groups.append(current_group)
|
||||
|
||||
for g in groups:
|
||||
classified = classify_shell(g)
|
||||
dept,code,crn = code_from_ilearn_name(g[0][1])
|
||||
classified['dept'] = dept
|
||||
classified['code'] = code
|
||||
classified['crn'] = crn
|
||||
all_courses_status[str(classified['id'])] = classified
|
||||
|
||||
#for C in all_courses_status:
|
||||
# print(all_courses_status[C])
|
||||
|
||||
course_groups = {
|
||||
'no outcomes': [],
|
||||
'ok': [],
|
||||
'fix_points_and_scores': [],
|
||||
'fix_points': []
|
||||
}
|
||||
|
||||
for d in all_courses_status.values():
|
||||
outcome_count = d['outcome_count']
|
||||
points_ok = d['points_ok']
|
||||
assessed_count = d['assessed_count']
|
||||
|
||||
if outcome_count == 0:
|
||||
course_groups['no outcomes'].append(d)
|
||||
elif points_ok == 1 and assessed_count > 0:
|
||||
course_groups['fix_points_and_scores'].append(d)
|
||||
elif points_ok == 0 and assessed_count > 0:
|
||||
course_groups['fix_points_and_scores'].append(d)
|
||||
elif points_ok == 1:
|
||||
course_groups['ok'].append(d)
|
||||
elif points_ok == 0:
|
||||
course_groups['fix_points'].append(d)
|
||||
|
||||
# Print out the groups
|
||||
out2.write(json.dumps(course_groups,indent=2))
|
||||
if verbose:
|
||||
for group, dicts in course_groups.items():
|
||||
sorted_dicts = sorted(dicts, key=lambda x: f"{x['dept']}{x['code']}")
|
||||
print(f"{group} - {len(sorted_dicts)} item(s)")
|
||||
out3.write(f"{group} - {len(sorted_dicts)} item(s)\n")
|
||||
for d in sorted_dicts:
|
||||
print(d)
|
||||
out3.write(str(d) + "\n")
|
||||
print("\n")
|
||||
out3.write("\n")
|
||||
|
||||
return course_groups
|
||||
|
||||
def fetch_term_outcomes_and_report():
|
||||
get_outcomes_term_index()
|
||||
full_term_overview()
|
||||
|
||||
if __name__ == "__main__":
|
||||
options = { 1: ['Refresh term outcome list & report', fetch_term_outcomes_and_report],
|
||||
3: ['Add outcomes to course id', add_outcome_to_course],
|
||||
4: ['Fix outcome points', remove_old_outcomes],
|
||||
5: ['Add outcomes to dept, dry run', add_o_dept_dry_run],
|
||||
6: ['Add outcomes to dept', add_o_dept],
|
||||
7: ['Remove all outcomes with wrong points', remove_all_bad_points],
|
||||
}
|
||||
print ('')
|
||||
|
||||
if len(sys.argv) > 1 and re.search(r'^\d+',sys.argv[1]):
|
||||
resp = int(sys.argv[1])
|
||||
print("\n\nPerforming: %s\n\n" % options[resp][0])
|
||||
|
||||
else:
|
||||
print ('')
|
||||
for key in options:
|
||||
print(str(key) + '.\t' + options[key][0])
|
||||
|
||||
print('')
|
||||
resp = input('Choose: ')
|
||||
|
||||
# Call the function in the options dict
|
||||
options[ int(resp)][1]()
|
||||
|
||||
|
||||
|
||||
Loading…
Reference in New Issue