Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

(Mathematica version: 8.0.4)

Given

lst = {{{{1, 2}, 3}, {{4, 5}, 6}}, {{{7, 8, 9, 10, 11}, 13}}};
lst2 = DeleteCases[lst, {x_, y_} /; y > 6, {2}]

gives

{{{{1, 2}, 3}, {{4, 5}, 6}}, {}}

Note the extra empty {} at the end.

I could not find a way to remove it in the same command using DeleteCases (which I think the right command to use for this), so I had to apply it again on the result

lst2 = DeleteCases[lst2, {}]

{{{{1, 2}, 3}, {{4, 5}, 6}}}

question: Is there a trick to do the above in one command without getting the empty {} in the result? so that the command is self contained for all cases?

updatet 1

response to Lou suggestion below, of adding an extra { }

Here is an example where I get different results:

lst={{{{1, 2}, 3}, {{4, 5}, 6}}, {{{7, 8, 9, 10, 11}, 13}}}

now using the method of removing empty {} by an extra application of DeleteCases, we get

lst2 = DeleteCases[lst, {x_, y_} /; y >= 6, {2}]
{{{{1, 2}, 3}}, {}}

lst2 = DeleteCases[lst2, {}]
{{{{1, 2}, 3}}}

now using the method of extra { }

lst2 = DeleteCases[lst, {{x_, y_}} /; y >= 6]
{{{{1, 2}, 3}, {{4, 5}, 6}}}

which is the not the same, I should get only {{{{1, 2}, 3}}}

thanks

share|improve this question
up vote 6 down vote accepted

There seems to be no general automatic way to remove empty lists which emerge as a result of DeleteCases or other structural transformation function, as a part of the original structural operation. Their removal must be a separate operation. This question:

efficient-way-to-remove-empty-lists-from-lists

answers how to do that efficiently after the fact

share|improve this answer

I think that your original solution is a good solution:

$lst = {{{{1, 2}, 3}, {{4, 5}, 6}}, {{{7, 8, 9, 10, 11}, 13}}};

DeleteCases[$lst, {x_, y_} /; y > 6, {2}] // DeleteCases[#, {}] &

It is clear and concise. An alternative would be this:

DeleteCases[$lst, {x_, y_} /; y > 6, {2}] /. {} -> Sequence[]

However, let's persevere and try to find a way to do the job with a single invocation of DeleteCases. We could add an alternative pattern that matches top-level elements that contain only rejected subpairs:

DeleteCases[
  $lst
, (a:{{_, _?NumericQ}..} /; And @@ Map[#[[2]] > 6 &, a, {1}]) |
  ({_, y_?NumericQ} /; y > 6)
, {1, 2}
]

It is inconvenient to write the threshold value (6) twice. We can avoid that:

DeleteCases[
  $lst
, 6 /. n_ :>
    (a:{{_, _?NumericQ}..} /; And @@ Map[#[[2]] > n &, a, {1}]) |
    ({_, y_?NumericQ} /; y > n)
, {1, 2}
]

Alternatively, we could define a local function that matches both top-level elements and individual subpairs:

Module[{test}
, test[elems:{{_, _?NumericQ}..}] := And @@ test /@ elems
; test[{_List, y_?NumericQ}] := y > 6
; DeleteCases[$lst, e_?test, {1, 2}]
]

While these proposals meet the stated requirement to invoke DeleteCases only once, I find them unsatisfactory. My main objection is that they are not as readable as the original solution.

share|improve this answer
lst2 = DeleteCases[DeleteCases[lst, {x_, y_} /; y > 6, {2}], {}] 
share|improve this answer
    
Thanks, but the above is basically what I did. I wanted to see if one can tell DeleteCases not to generate an empty {} during the process itself. – Nasser Dec 29 '11 at 9:36
lst2 = DeleteCases[lst, {{x_, y_}} /; y > 6]

But I suppose you want the first list to be matched to..? Perhaps:

lst2 = DeleteCases[Flatten[lst,1], {x_, y_} /; y >= 6]

it results in {{{1, 2}, 3}}

share|improve this answer
    
Thanks, but your method does not work in general. Please see edit (1) showing an example case – Nasser Dec 29 '11 at 10:12

The other answers are all very good, and I hesitate to give this reply.

The following is just for fun, nothing more:

lst = {{{{1, 2}, 3}, {{4, 5}, 6}}, {{{7, 8, 9, 10, 11}, 13}}};

Using Cases

Cases[lst, {x_, y_} /; ! y > 6, {2}]

Cases[lst, {x_, y_} /; ! y >= 6, {2}]

giving

{{{1, 2}, 3}, {{4, 5}, 6}}

{{{1, 2}, 3}}

share|improve this answer

Why not just use an OR clause in DeleteCases and get delete based on the pattern OR a {}

DeleteCases[lst, {x_, y_} /; y > 6 | {}, {2} ]

On my machine that returns the result:

{{{{1, 2}, 3}, {{4, 5}, 6}}, {{{7, 8, 9, 10, 11}, 13}}}

...which is what I think you wanted.

share|improve this answer
    
thanks, but the answer should come out to be {{{{1, 2}, 3}, {{4, 5}, 6}}} your method did nothing to the list. – Nasser Dec 29 '11 at 23:53

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.