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If I have the following code:

foo->call(bar, baz->widget);

With cursor on "b" in "baz" or on "w" in "widget", how would I quickly delete the argument at the cursor?

foo->call(bar);

It can be any argument (first, last, or in the middle).

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2 Answers 2

With my omap-param plugin, just type di, or da,.

It won't be bothered by other brackets. For instance, in f(a+g(42, "string")), foobar), from "a" to "g", da, will just leave foobar in f call.

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For the first argument, this key-combination goes to opening parenthesis, and deletes everything up to the next comma, including the space after it:

T(df,x

For a middle argument, this key-combination goes to the previous comma, and deletes it and everything until the next comma:

F,dt,

For the last argument, this key-combination goes to the previous comma, and deletes it and everything until the closing parenthesis:

F,dt)

-- or --

You can write your own macro to do this sort of thing. A similar example is here.

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1  
B only takes you back to the beginning of baz, not back to the comma, and if there's no space, it'd go too far. Almost, though! –  Jefromi Jan 17 '11 at 3:25
    
This breaks with foo->call(bar, baz->widget()); –  Alex B Jan 17 '11 at 3:27
    
@Jefromi: Updated my answer, thanks! –  Chetan Jan 17 '11 at 3:27
    
Actually, the first one will leave an extra comma. Working on a solution that will delete the comma efficiently as well. –  Chetan Jan 17 '11 at 3:29
    
There we go, that should do it. –  Chetan Jan 17 '11 at 3:31

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