Remove element from bash array by content (stored in variable) without leaving a blank slot

I have an array list in a bash script, and a variable var. I know that $var appears in ${list[@]}, but have no easy way of determining its index. I'd like to remove it from list.

This answer achieves something very close to what I need, except that list retains an empty element where $var once was. Note, e.g.:

$ list=(one two three)
$ var="two"
$ list=( "${list[@]/$var}" )
$ echo ${list[@]}
one three
$ echo ${#list[@]}
3

The same thing happens if I use delete=( "$var" ) and replace $var for $delete in the third line. Also, doing list=( "${list[@]/$var/}" ) makes no difference either. (I'll note that, experimenting with the comment to that answer, I managed to match only whole words using list=( "${list[@]/%$var}" ), omitting the #.)

I also saw this answer proposing a nice trick to keep track of index and use unset, but that is unfeasible in my case. Finally, the same issue also appeared here, except that OP was satisfied with the result and probably didn't run into the problem empty elements create for me later on in my script, when I iterate through list. I tried to negate that problem by using expansion as follows, without any apparent effect:

for item in "${list[@]}"; do
  if [ -n ${item:+'x'} ];then
    ...
  fi
done

It's the same when I do [ ${#item} > 0 ], and I'm running out of ideas. Suggestions?

EDIT:

I have no understanding of why this happens, but @l0b0's comment made me notice something. Using the above preamble, I get:

$ for item in "${list[@]}"; do echo "Here!"; done
Here!
Here!
Here!

but:

$ for item in ${list[@]}; do echo "Here!"; done
Here!
Here!

I'm not sure I can omit the quotes in my script, though, as items are considerably more complicated there (file names and paths, both containing spaces and odd characters).