2

I have a list with elements:

Data = {{1, 2}, {2, 7}, {3, 14}}

This is a list of X and Y coordinates, later used for ListPlot.

For all the Y coordinates I basically want to do Y = 1 / Y, so a new list becomes:

DataNew={{1, 1/2}, {2, 1/7}, {3, 1/14}}

How would I do something like this?

3 Answers 3

6

With data = {{1, 2}, {2, 7}, {3, 14}} I recommend:

{#, 1/#2} & @@@ data

Alternatively you could use:

Replace[data, {x_, y_} :> {x, 1/y}, {1}]

I recommend against using either of these:

data /. {x_, y_} -> {x, 1/y}

Cases[data, {x_, y_} -> {x, 1/y}]

Both incorrectly use Rule rather than RuleDelayed, which means they fail to localize the named patterns. Also, the first is not good because of the ambiguity it introduces:

{{1, 2}, {2, 7}} /. {x_, y_} :> {x, 1/y}
{{1, 2}, {1/2, 1/7}}

The second is less troublesome, but IMHO since Cases is a filtering function it should not be used where you really want Replace, as this makes code less clear.


Leonid reminds us that my recommended method does not auto-compile in cases where that is possible (such as a packed array of Reals). If performance is critical it is usually fastest to use the double Transpose method compared below.

dat = RandomReal[99, {50000, 2}];

Do[ {#, 1/#2} & @@@ dat , {50}] // Timing

Do[ Transpose[{#, 1/#2} & @@ Transpose@dat] , {50}] // Timing

{2.074, Null}

{0.032, Null}

1
  • A good addition. I also agree that @@@ looks nicer, and one can usually tune the performance when it is needed. Commented Sep 27, 2012 at 21:19
5

You can use :

{#[[1]], 1/#[[2]]} & /@ Data
3

Also for example:

data = {{1, 2}, {2, 7}, {3, 14}};
newData = data /. {x_, y_} -> {x, 1/y}

or

newData = Cases[data, {x_, y_} -> {x, 1/y}]

or

f[{a_, b_}] := {a, 1/b};
newData = f /@ data

and zillions of other possibilities.

Remember to start all your defined names with lowercase letters!

1
  • Sorry, but I must down-vote this. Reasoning given in my answer.
    – Mr.Wizard
    Commented Sep 15, 2012 at 15:58

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