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So I have a dictionary which consists of a number and its definition is the corresponding element on the periodic table.

I have built up the dictionary like this:

for line in open("periodic_table.txt"):
    temp.append(line.rstrip())

for t in temp:
    if t[1] != " ":
        elements[x] = t[3:]
    else:
        elements[x] = t[2:]
    x += 1

I know that every element is in table because I ask the program to print the dictionary. The point of this is that the user enters a number or element name and the number and name are both printed like this:

while count == 0:
    check = 0
    line = input("Enter element number or element name: ")
    if line == "":
        count = count + 1
        break
    for key,value in elements.items():
        if line == value:
            print ("Element number for",line,"is",key)
            check = 1
            break
        if line.isdigit():
            if int(line) <= 118 and int(line) > 0:
                print ("Element number",line, "is",elements[int(line)])
                check = 1
                break
    if check == 0:
        print ("That's not an element!")

This works for every element except the last one, Ununoctium, in the dictionary. When the user enters 118 this element is printed, but if they enter 'ununoctium' then the program says "That is not an element!". Why is this and how do I fix it?

Thanks in advance

share|improve this question
2  
What happens if they enter Ununoctium instead? – doctorlove Aug 29 '13 at 10:05
    
is there a problem with capitalisation? Try line.lower() to ensure the user input is all lower case. (and value.lower() for the other side of the test) – Bonlenfum Aug 29 '13 at 10:06
    
you can use pprint.pprint(the_dictionary) to manually check what do you have in your dict – Jakub M. Aug 29 '13 at 10:13
up vote 2 down vote accepted

It is much easier to have python do the lookup for you. Ignoring empty lines for now:

elements = []
for line in open("periodic_table.txt"):
    elements.append(line[3:])

You can then do a lookup like this:

if answer.isdigit():
    print elements[int(answer)]
else:
    print elements.index(answer)
share|improve this answer

I suspect this is a case sensitive issue.
Changing

if line == value:

to

if line.lower() == value.lower():

would solve that problem.
While you are there, why have the if inside the for loop? You could check that first, and then don't need the break

if line.isdigit():
    if int(line) <= 118 and int(line) > 0:
        print ("Element number",line, "is",elements[int(line)])
        check = 1 
        #<-------- break no longer required
else:
    #for loop as above
share|improve this answer
    
I made some changes and am pretty sure it is not a case sensitive issue. – Hayley van Waas Aug 29 '13 at 10:20
    
"Some changes" == these changes? – doctorlove Aug 29 '13 at 10:22
    
Yes the changes you suggested above, but that was not the issue and I have since solved it! The issue was that when the program was building the dictionary it was adding white space in front of the elements that had a 3 digit number, and since the user doesn't enter a white space when entering the element name the program would consider this as incorrect, therefore declaring this as "not an element." – Hayley van Waas Aug 29 '13 at 10:27

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