18

I am a beginner at Python, and to those who holds negative thoughts against my post, please leave. I am simply seeking help here and trying to learn. I'm trying to check within a simple data set the 0s and 1s. This will be used towards defining voids and solids on floor plans to define zones in buildings... eventually 0s and 1s will be swapped out with coordinates.

I am getting this error: ValueError: [0, 3] is not in list

I am simply checking if one list is contained in the other.

currentPosition's value is  [0, 3]
subset, [[0, 3], [0, 4], [0, 5], [1, 3], [1, 4], [1, 5], [2, 1], [3, 1], [3, 4], [3, 5], [3, 6], [3, 7]]

Here's the code snippet:

def addRelationship(locale, subset):
    subset = []; subSetCount = 0
    for rowCount in range(0, len(locale)):
        for columnCount in range (0, int(len(locale[rowCount])-1)):
            height = len(locale)
            width = int(len(locale[rowCount]))
            currentPosition = [rowCount, columnCount]
            currentVal = locale[rowCount][columnCount]
            print "Current position is:" , currentPosition, "=", currentVal

            if (currentVal==0 and subset.index(currentPosition)):
                subset.append([rowCount,columnCount])
                posToCheck = [rowCount, columnCount]
                print "*********************************************Val 0 detected, sending coordinate to check : ", posToCheck

                newPosForward = checkForward(posToCheck)
                newPosBackward = checkBackward(posToCheck)
                newPosUp = checkUpRow(posToCheck)
                newPosDown = checkDwnRow(posToCheck)

I am using subset.index(currentPosition) to check and see if [0,3] is in subset but getting the [0,3] is not in list. How come?

8
  • 1
    Please post your actual code.
    – BrenBarn
    Commented Aug 23, 2012 at 17:27
  • 2
    What should this strange code do? Please bring your problem to a minimal and understandable test set. Stackoverflow is not about please-decipher-my-code.
    – user2665694
    Commented Aug 23, 2012 at 17:29
  • 2
    You set subset=[] and then never append anything to it until after an .index call. How could that first .index call not raise a ValueError? subset is always going to be empty by construction.
    – DSM
    Commented Aug 23, 2012 at 17:31
  • 1
    @DSM: It shoudl raise a ValueError. Commented Aug 23, 2012 at 17:32
  • 4
    @user1518600: To be fair to Maulwurfn, this block of code is pretty cryptic. If you explain your algorithm, chances are someone will suggest a better way to accomplish the same thing. This is especially applicable in your case, as a new python coder. Commented Aug 23, 2012 at 17:44

4 Answers 4

30

Let's show some equivalent code that throws the same error.

a = [[1,2],[3,4]]
b = [[2,3],[4,5]]

# Works correctly, returns 0
a.index([1,2])

# Throws error because list does not contain it
b.index([1,2])

If all you need to know is whether something is contained in a list, use the keyword in like this.

if [1,2] in a:
    pass

Alternatively, if you need the exact position but don't know if the list contains it, you can catch the error so your program does not crash.

index = None

try:
    index = b.index([0,3])
except ValueError:
    print("List does not contain value")
3
  • 1
    If you need to capture the index, you should assign it to a variable in the try and assign None in the except.
    – Silas Ray
    Commented Aug 23, 2012 at 17:37
  • If you do the None assignment in the except clause, you skip one assignment operation in the case that an index exists. Yes premature optimization is usually something to avoid, but I think in this case, it also makes the code more explicit.
    – Silas Ray
    Commented Aug 23, 2012 at 17:40
  • 1
    This is a trivial issue, but I prefer to keep creation of variables outside of conditionals just for clarity. It's probably a style I've kept from coding in C, but it makes me more comfortable.
    – danmcardle
    Commented Aug 23, 2012 at 17:44
3

Why complicate things

a = [[1,2],[3,4]]
val1 = [3,4]
val2 = [2,5]

check this

a.index(val1) if val1 in a else -1
a.index(val2) if val2 in a else -1
1
  • This cannot be used as index -1 refers to the last element of the list. Commented Jan 5, 2021 at 6:27
1

subset.index(currentPosition) evaluates False when currentPosition is at index 0 of subset, so your if condition fails in that case. What you want is probably:

...
if currentVal == 0 and currentPosition in subset:
...
1
  • Good catch, but I think that's only part of the problem. Commented Aug 23, 2012 at 17:33
0

I found out that

list = [1,2,3]

for item in range(len(list)):
    print(item)

won't work because it starts at 0, so you need to write

for item in range(1, len(list)):
    print(item)

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