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I may be wrong on what I think .splice() is meant to do, but I thought it removed one element of an array. All I want to do here is remove "pears", but it doesn't work:

var my_array = ["apples","pears","bananas","oranges"];

my_array.splice($.inArray("pears",my_array));

$.each(my_array, function(k,v) {
    document.write(v+"<br>");
});

Also at http://jsfiddle.net/jdb1991/nV95v/

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7 Answers 7

up vote 8 down vote accepted

You're missing two arguments:

  • $.inArray wants the second argument to be the subject array
  • splice accepts a second argument to specify the number of elements to be deleted

The code becomes:

var my_array = ["apples","pears","bananas","oranges"];

my_array.splice($.inArray("pears", my_array), 1);

$.each(my_array, function(k,v) {
    document.write(v+"<br>");
});

Live example

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var my_array = ["apples","pears","bananas","oranges"];

my_array.splice($.inArray("pears", my_array), 1);

$.each(my_array, function(k,v) {
    document.write(v+"<br>");
});
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this works for me: http://jsfiddle.net/HbjHV/

var my_array = ["apples","pears","bananas","oranges"];

var pos = $.inArray("pears", my_array);
pos !== -1 && my_array.splice(pos, 1);

$.each(my_array, function(k,v) {
    document.write(v+"<br>");
});
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You need to pass the array to $.inArray and also pass the number of elements to remove into array.splice:

var my_array = ["apples","pears","bananas","oranges"];

my_array.splice($.inArray("pears", my_array), 1);

$.each(my_array, function(k,v) {
    document.write(v+"<br>");
});

http://jsfiddle.net/infernalbadger/nV95v/3/

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Try this

my_array.splice($.inArray("pears", my_array), 1);
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You fogot the array:

$.inArray("pears",my_array)

Docs: http://api.jquery.com/jQuery.inArray/

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Doesn't work, see my jfiddle –  jdborg Nov 10 '11 at 9:21

Please look what arguments .splice() method does recieve!

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