3

Is there a cleaner way to do the following, assuming that I have a reason to keep the data sets independent?:

x = {1, 2, 3};
y = {1, 4, 9};

ListPlot[Partition[Riffle[x, y], 2]]

Thanks!

13

I do not think Timo's solution is standard. Here are two methods, using Transpose or Thread, that I have often seen used.

x = {1, 2, 3};
y = {1, 4, 9};
Transpose[{x, y}]
Thread[{x, y}]

Output:

{{1, 1}, {2, 4}, {3, 9}}
{{1, 1}, {2, 4}, {3, 9}}

Both of these methods avoid explicitly referencing the length of your data which is plus in my book.

  • 1
    Justice has been served! ;-) – Timo Apr 13 '10 at 17:55
13

ListPlot[Transpose[{x, y}]]

  • 2
    And it is even cleaner if you use the Transpose short notation: {x,y} ESC tr ESC – gdelfino Apr 15 '10 at 14:22
-1
ListPlot[{x,y}]

EDIT: @Davorak: it certainly will. If OP wants 'y against x' then

ListPlot[y]

would suffice. Either way, I don't understand the complicated answers to a very simple question. But then, I don't understand a lot of the questions on SO.

  • 1
    I do not think so. This will plot two separate trends. – Davorak Apr 8 '10 at 22:25

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